WO2000045938A1 - High performance filters based on inorganic fibers and inorganic fiber whiskers - Google Patents

High performance filters based on inorganic fibers and inorganic fiber whiskers Download PDF

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Publication number
WO2000045938A1
WO2000045938A1 PCT/US2000/002841 US0002841W WO0045938A1 WO 2000045938 A1 WO2000045938 A1 WO 2000045938A1 US 0002841 W US0002841 W US 0002841W WO 0045938 A1 WO0045938 A1 WO 0045938A1
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WO
WIPO (PCT)
Prior art keywords
filter media
carbon
fibers
inorganic
coated
Prior art date
Application number
PCT/US2000/002841
Other languages
French (fr)
Inventor
Doug Wilson
Gary Pruett
Shrikant Awasthi
Original Assignee
Hitco Carbon Composites, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hitco Carbon Composites, Inc. filed Critical Hitco Carbon Composites, Inc.
Priority to EP00907138A priority Critical patent/EP1154834A1/en
Priority to JP2000597050A priority patent/JP2002536153A/en
Priority to AU28685/00A priority patent/AU2868500A/en
Publication of WO2000045938A1 publication Critical patent/WO2000045938A1/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/14Other self-supporting filtering material ; Other filtering material
    • B01D39/20Other self-supporting filtering material ; Other filtering material of inorganic material, e.g. asbestos paper, metallic filtering material of non-woven wires
    • B01D39/2055Carbonaceous material
    • B01D39/2065Carbonaceous material the material being fibrous
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/14Other self-supporting filtering material ; Other filtering material
    • B01D39/20Other self-supporting filtering material ; Other filtering material of inorganic material, e.g. asbestos paper, metallic filtering material of non-woven wires
    • B01D39/2068Other inorganic materials, e.g. ceramics
    • B01D39/2082Other inorganic materials, e.g. ceramics the material being filamentary or fibrous
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/04Additives and treatments of the filtering material
    • B01D2239/0471Surface coating material
    • B01D2239/0492Surface coating material on fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/0604Arrangement of the fibres in the filtering material
    • B01D2239/0613Woven
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/0604Arrangement of the fibres in the filtering material
    • B01D2239/0618Non-woven
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/0604Arrangement of the fibres in the filtering material
    • B01D2239/064The fibres being mixed
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/08Special characteristics of binders
    • B01D2239/086Binders between particles or fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/12Special parameters characterising the filtering material
    • B01D2239/1225Fibre length
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/12Special parameters characterising the filtering material
    • B01D2239/1233Fibre diameter
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/12Special parameters characterising the filtering material
    • B01D2239/1258Permeability
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/249921Web or sheet containing structurally defined element or component
    • Y10T428/249953Composite having voids in a component [e.g., porous, cellular, etc.]
    • Y10T428/249978Voids specified as micro
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/29Coated or structually defined flake, particle, cell, strand, strand portion, rod, filament, macroscopic fiber or mass thereof
    • Y10T428/2904Staple length fiber
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/30Self-sustaining carbon mass or layer with impregnant or other layer
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T442/00Fabric [woven, knitted, or nonwoven textile or cloth, etc.]
    • Y10T442/30Woven fabric [i.e., woven strand or strip material]
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T442/00Fabric [woven, knitted, or nonwoven textile or cloth, etc.]
    • Y10T442/50FELT FABRIC
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T442/00Fabric [woven, knitted, or nonwoven textile or cloth, etc.]
    • Y10T442/60Nonwoven fabric [i.e., nonwoven strand or fiber material]

Definitions

  • the present invention is directed to novel high performance filters having characteristics suitable for use in various filtration applications, such as microfiltration. More particularly, this invention is directed to a novel high performance filter media comprising a blend of conventional carbon, ceramic, glass or silica fibers and inorganic fiber whiskers that is low in cost, durable, resistant to chemicals and high temperatures, not subject to particulation, high in mechanical strength and separation efficiency, and biocompatible.
  • Filter systems are now capable of offering low energy, more efficient, and environmentally friendly operations.
  • Such media must offer low cost; durability; chemical resistance, particularly to acids and alkalis; resistance to high temperatures, for both operation and sterilization purposes; no particulation (i. e. , release of filter media particles into the filtrate stream); mechanical strength to cope with pressure swings; separation efficiency, particularly for particles in the OJ to 100 microns range; and biocompatibility for certain applications such as the filtration of blood.
  • Ceramic filter media have made some inroads, however their acceptance is hampered by the following: high cost because expensive and complex manufacturing processes are required; susceptibility to attack by alkalis; limited durability because of their inherent brittleness; and difficulties in controlling pore size distribution and permeability, which are critical aspects of high performance filter media.
  • High temperature composite materials in which a ceramic or carbon matrix is reinforced with a continuous fiber, are used in a variety of applications. They are most commonly used in aircraft brakes.
  • the braking material is made from a carbon matrix reinforced with carbon fibers (carbon/carbon or C/C).
  • Such materials have a high mechanical strength and are capable of operating at extreme temperatures, up to 3000 °C in a non oxidizing atmosphere.
  • Composites in which both the reinforcing fiber and the matrix are both ceramic are used in specialty applications. In particular, they are used in aircraft engine parts where strength at high temperatures and low weight are needed.
  • Such high temperature composite materials do offer some potential for use as filter media.
  • carbon/carbon composites due to the excellent balance of properties, have found use as a filter support.
  • USPN 4,944,996 discloses the use of a carbon/carbon support intended to receive a mineral membrane for separation procedures.
  • USPN 4,500,328 discloses the use of carbon/carbon composites to filter radioactive waste, and the use of activated carbon fiber to increase surface area.
  • USPN 5,183,546 discloses an electrochemical filter consisting of an electrically conductive fibrous material that contains microscopic particles of carbon or active charcoal.
  • 4,968,467 discloses the use of refractory ceramic fibers matted together with a high temperature binder, such as colloidal alumina or silica, to form a tube like "candle filter.
  • USPN 5, 196, 120 discloses the use of a ceramic fiber-ceramic composite filter composed of ceramic fibers, preferably texturized, a carbonaceous layer thereover, and a silicon carbide coating over the carbonaceous layer, which coats substantially all of the fibers. A strong, light weight filter is achieved.
  • USPN 5,138,546 discloses the addition of small carbon or charcoal particles which improves surface area and particle capture ability.
  • this type of filter is not suitable for most high performance applications, particularly in the foodstuffs and chemical industries.
  • These structures exhibit poor bonding of the particles to the substrate.
  • the addition of such particles can only be performed on a random basis. There is little control with respect to uniformity and positioning.
  • the present invention therefore provides a filter media including a structure comprising a blend of inorganic fibers and inorganic fiber whiskers.
  • the filter media of the present invention is low in cost, durable, resistant to chemicals and high temperatures, not subject to particulation, high in mechanical strength and separation efficiency, biocompatible, has a high permeability, a high flow rate and a low pressure drop across the filter media.
  • the present invention also provides an activated high surface area filter media including a structure that is capable of microfiltration and adsorption, the filter media comprising a blend of activated carbon-containing inorganic fibers and inorganic fiber whiskers, wherein the filter media system has an interconnected porosity that is adapted to allow fluid to flow through the filter media system, and a pore size distribution that is adapted to capture particles having a diameter in the range of about OJ to about 100 microns.
  • the present invention further provides a method for preparing a filter media structure comprising mixing together inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry; removing excess water from said slurry by filtration; drying said slurry at a temperature sufficient to fuse the binder to form said filter media structure; and optionally heating said filter media structure at a temperature sufficient to burn off or carbonize the binder.
  • a thin layer of pyrolytic carbon is deposited on the surface of said inorganic fibers and said inorganic fiber whiskers to anchor said fibers and fiber whiskers together, further strengthening the high temperature filter media structure.
  • the present invention provides a further method for preparing the filter media structure comprising inorganic fibers and inorganic fiber whiskers comprising mixing together inorganic fiber whiskers and a resin, impregnating said inorganic fibers with said inorganic fiber whisker/resin mixture to form a random assemblage of inorganic fibers and fiber whiskers; carbonizing said resin/inorganic fiber whisker impregnated inorganic fibers; and optionally depositing a thin layer of pyrolytic carbon on the surface and inside said inorganic fiber whisker/resin assemblage to strengthen the filter media structure.
  • the present invention further provides a method for preparing an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising mixing together inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry; removing excess water from said slurry by filtration; drying said slurry at a temperature sufficient to fuse the binder to form said filter media structure; optionally heating said filter media structure at a temperature sufficient to burn off or carbonize the binder; and partially oxidizing said filter media structure to activate at least one carbon constituent.
  • a thin layer of pyrolytic carbon may be deposited on the surface of said inorganic fibers and said inorganic fiber whiskers before carbonization of the binder to anchor said fibers and fiber whiskers together, further strengthening the high temperature filter media structure before partially oxidizing the filter media structure. Activation, by mild, partial oxidation, creates pores and develops a greater surface area within the carbon fibers.
  • the present invention further provides a method for preparing an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising providing activated inorganic fibers; mixing together activated inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry; removing excess water from said slurry by filtration; drying said slurry at a temperature sufficient to fuse the binder to form said filter media structure; and optionally heating said filter media structure at a temperature sufficient to burn off or to carbonize the binder.
  • the filter media structure is partially oxidized to further activate at least one carbon constituent.
  • the present invention also provides a method for preparing an activated carbon-containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising activated carbon- containing inorganic fibers and inorganic fiber whiskers comprising: mixing together inorganic fibers and inorganic fiber whiskers to form a random assemblage of inorganic fibers and inorganic fiber whiskers; coating said random assemblage of inorganic fibers and inorganic fiber whiskers with one of carbon and a carbon- containing compound to form a filter media structure; carbonizing said filter media structure; and partially oxidizing said filter media structure to activate at least one carbon constituent.
  • an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising the steps of mixing together inorganic fiber whiskers and an organic resin, impregnating said inorganic fibers with said inorganic fiber whisker/resin mixture to form a random assemblage of inorganic fibers and fiber whiskers; carbonizing said inorganic fiber whisker/resin impregnated inorganic fibers; and partially oxidizing the filter media structure to activate at least one carbon constituent.
  • the present invention provides a further method for preparing an activated carbon-containing high performance filter media structure comprising inorganic fibers and inorganic fiber whiskers comprising: providing a plurality of activated inorganic fibers; mixing together said activated inorganic fibers and inorganic fiber whiskers to form a random assemblage of activated inorganic fibers and inorganic fiber whiskers; coating said random assemblage of activated inorganic fibers and inorganic fiber whiskers with one of carbon and a carbon-containing compound to form a filter media structure; carbonizing said filter media structure; and optionally partially oxidizing said filter media structure to activate at least one carbon constituent.
  • an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising the steps of providing activated carbon containing inorganic fibers; mixing together inorganic fiber whiskers and an organic resin; impregnating said activated inorganic fibers with said inorganic fiber whisker/resin mixture to form a filter media structure comprising a random assemblage of inorganic fibers and fiber whiskers; carbonizing said filter media structure; and optionally partially oxidizing said filter media structure to further activate at least one carbon constituent.
  • Figure 1 is a graph comparing the of removal of yeast particles by a filter paper comprising the filter media of the present invention, containing conventional carbon fibers and one of 10%, 25%, 50%, or 65% by volume of inorganic fiber whiskers.
  • Figure 2 is a graph depicting filter fouling and cleanability characteristics of a filter paper comprising the filter media structure of the present invention, by measuring the pressure drop across the filter media structure as a function of flow.
  • Figure 3 is a graph comparing the efficiency of particle retention by the high performance filter paper comprising the filter media compositions of the present invention, containing conventional carbon fibers and one of 0% , 10%, 25%, 50% or 65 % by volume of inorganic fiber whiskers.
  • the filter media of the present invention includes a filter media structure, which comprises a blend of conventional inorganic fibers, such as carbon, ceramic, glass or silica fibers and inorganic fiber whiskers.
  • the filter media of the present invention comprises from about 5 to about 95 percent by volume of inorganic fibers and from about 5 to about 95 percent by volume of inorganic fiber whiskers, based on the total volume of the inorganic fibers and inorganic fiber whiskers.
  • the conventional inorganic fibers are generally from about 1 to about 15 millimeters in length, more preferably from about 5 to about 10 millimeters in length.
  • the inorganic fiber whiskers employed in the present invention are generally from about 3 to about 5000 microns in length, more preferably about 5 to about 2000 microns in length, and most preferably from about 5 to about 300 microns in length.
  • the conventional inorganic fibers are generally from about 3 to about 100 microns, preferably from about 3 microns to about 20 microns in diameter, and more preferably about 5 to about 12 microns.
  • the fiber whiskers employed in the present invention are generally from about 0.03 to about 5 microns in diameter, more preferably from about 0.05 to about 0.2 microns in diameter.
  • the filter media of the present invention contains interconnected porosity, such that a fluid (gaseous or liquid) can flow through it.
  • the filter media structure comprises conventional inorganic fibers, such as carbon and ceramic fibers and inorganic fiber whiskers.
  • Carbon fibers are the most preferred inorganic fiber for use with the present filter media structure. Suitable carbon fibers are derived from PAN, pitch, or rayon precursors by methods well known in the art.
  • the filter media structure may alternatively comprise ceramic fibers including, but not limited to silicon carbide, silicon nitride, aluminosilicate, silica, alumina, zirconia, ceria, glass and mixtures thereof.
  • the inorganic fiber whiskers of the present invention may comprise at least one of alumina, carbon, ceria, zirconia, silica, glass, silicon carbide, silicon nitride, titanium carbide, titanium nitride and mixtures thereof. Carbon whiskers are the most preferred inorganic fiber whiskers for use in the filter media of the present invention.
  • the filter media structure prepared according to the present invention is highly permeable, and the pore size distribution is tailorable to capture most particles in the range of about 0.05 to about 100 microns, preferably 0.05 to about 20 microns. This is enabled by the use of the differing amounts of the inorganic fiber whisker sizes, that are generally from about 0.05 to about 5 microns in diameter, more preferably from about 0.05 to about 0.2 microns in diameter.
  • the filter media structure provides a pore size distribution sufficiently small to trap particles in the range of about 0.05 to about 2 microns, such as when the diameter of the smallest inorganic fiber whiskers is in the range of about 0.05 to about 0.2 microns.
  • the fiber whiskers useful in the present invention include carbon whiskers and ceramic whiskers, such as silicon carbide, silicon nitride, titanium carbide, titanium nitride, silica, alumina, zirconia, ceria and glass.
  • the most preferred fiber whiskers are carbon whiskers.
  • Suitable carbon whiskers for use in the filter media and paper of the present invention are vapor grown carbon whiskers having an average diameter from about OJ to about 0.2 microns, prepared the method disclosed by U.S. Patent No. 5,594,060 (Alig et al).
  • vapor grown carbon whiskers are particularly useful in the novel filter media structures
  • the present invention is not limited only to the above mentioned vapor grown carbon whiskers and, thus, other types of carbon fibrils, filaments, fibroids, whiskers, microfibers, nanofibers meeting the composition and sizes defined above, including but not limited to those prepared by the method disclosed by U.S. Patent No. 5,374,415 (Alig et al), U.S. Patent No. 5,691,054 (Tennent et al) and U.S. Patent No. 4,663,230 (Tennent) may comprise the carbon whisker component of the filter media structure of the present invention.
  • the filter media of the present invention may be constructed in the form of a structure selected from the group consisting of papers; felts; needled felts; fabrics; flat, shaped or corrugated plates; tubes; open cylinders; and corrugated or pleated tubes and cylinders.
  • the filter media of the present invention can be made into a filter paper having small pore diameters, to control the pore size and to trap small particles.
  • the filter paper of the present invention is prepared by conventional means for preparing a ceramic paper, mat or sheet product, by forming a slurry of feltable inorganic fibers, and according to the present invention inorganic fiber whiskers, an organic binder and water, draining the excess water by filtration through a screen, while retaining the fiber/ whisker /binder mixture, and drying the resulting mixture to remove excess moisture, forming a paper.
  • the filter paper of the present invention may be prepared by any known paper-making method, such as that disclosed by United States Patent No. 3,510,394 (Cadotte), which is incorporated herein by reference.
  • the filter paper is highly permeable, has a high flow rate and low pressure drop across the filter paper.
  • the filter paper may also be heat stabilized to higher temperatures depending on the end use and the organic binder used in making the paper.
  • the filter media if comprising carbon fibers, carbon fiber whiskers, and a stabilized or carbonized binder, is capable of operating at temperatures of up to about 500 °C in air and up to about 3000 °C in a non-oxidizing atmosphere.
  • the filter paper of the present invention may be further strengthened by anchoring the inorganic fibers to each other by depositing a small amount of carbon on the fibers by chemical vapor deposition processes.
  • the filter media if comprising ceramic fibers and ceramic whiskers, is capable of operating at temperatures of up to about 2000 °C in air and/or in a non-oxidizing atmosphere.
  • the filter media of the present invention has high strength sufficient to resist loads imparted by fluctuating pressures, namely a strength defined as burst strength.
  • the filter media structures of the present invention may be used for microfiltration and adsorption, and may be used to selectively remove unwanted species in drinking water, milk, fruit juices, alcoholic beverages, such as beer and wine, cooking oil and other foodstuffs.
  • the filter media structures of the present invention are particularly useful in removing microbial agents, such as bacteria, from drinking water, and other soluble contaminants, such as chlorine.
  • the filter media structure of the present invention may be used for air filtration processes, such as removing unwanted particulates from air by microfiltration and removal of unwanted vapors by adsorption.
  • the filter media structure are especially useful for air filtration apparatus and processes in hospitals, clean rooms and gas mask canisters.
  • the filter media structure may also be used to purify blood, blood plasma and to purify chemically aggressive materials comprising acids, alkalis, solvents, and organic chemicals.
  • the filter media structures may also be used to remove particulate matter from air.
  • the filter paper of the present invention can also remove chemical contaminants from gases and liquids.
  • the filter media structures of the present invention may also be used to remove unwanted species or particles in mechanical industrial oils, such as motor oil, used in cooling or lubricating applications, wherein the oil is recirculating oil.
  • the filter media structures of the present invention may also be adapted to remove unwanted particles from printing inks for use in inkjet printer applications.
  • the filter media structures are especially useful for removing unwanted particles from inks that have been previously removed from printed paper products during paper recycling processes.
  • the filter media structures of the present invention may also be adapted to remove unwanted species or particles from process water used in the electronics and pharmaceutical industries.
  • the filter media structures of the present invention may be made into a filter paper by a conventional paper making method comprising mixing together conventional inorganic fibers, inorganic fiber whiskers, and an organic binder system.
  • the inorganic fibers, inorganic fiber whiskers and organic binder are mixed to form a slurry in water.
  • the slurry is filtered to remove excess water, and dried at a temperature sufficient to fuse the organic binder.
  • a thin layer of pyrolytic carbon is deposited on the surface of the filter paper after drying, by known methods, to strengthen the filter media structure and to prevent particulation of the fibers.
  • the organic binder system may be a water soluble or a water insoluble binder system.
  • the water soluble binder may include, but are not limited to organic binders, such as poly vinyl alcohol, sodium alginate and water soluble phenolics.
  • the water insoluble binder may include, but are not limited to organic binders, such as acrylates, methacrylates, polyesters and phenolics.
  • Suitable phenolic resins useful in the present invention include, but are not limited to, phenolics commercially available under the trade designations USP 39 and 91LD, such as supplied by Ashland Chemical, and SC1008 such as supplied by Borden Chemical.
  • Suitable acrylic resins useful in the present invention include, but are not limited to, styrene acrylic resins commercially available under the trade designation Acronol 58885, from BASF Corporation.
  • Suitable polyester resins include, but are not limited to, polyester resins commercially available under the trade designation, Eastman WD, supplied by Eastman Kodak.
  • the filter media of the present invention is made into a filter paper, felt or fabric by a method comprising mixing together inorganic fiber whiskers and a resin selected from the group consisting of phenolic, polyester and acrylic resins, and impregnating inorganic fibers with said inorganic fiber whisker/resin mixture.
  • the filter media structure subsequently undergoes conventional carbon-carbon processing, including carbonizing said resin/inorganic fiber whisker impregnated inorganic fibers; and if desired, partially densifying said carbonized resin/inorganic fiber whisker impregnated inorganic fibers.
  • a thin layer of pyrolytic carbon is deposited on the surface of the inorganic fibers and inorganic fiber whiskers comprising the filter media structure, thus further cementing the inorganic fibers and the inorganic fiber whiskers together.
  • the resin/inorganic fiber whisker impregnated inorganic fibers may be formed into the desired shape on a tool or die.
  • the molded filter media structures are heat- treated in an inert environment to temperatures from about 700°C to about 2900°C in order to convert the organic phases to carbon.
  • the carbonized filter media structures of the present invention are then partially densified by any suitable densification technique, such as chemical vapor infiltrations, or by multiple cycle reimpregnations and carbonizations.
  • the present invention also provides an activated carbon containing filter media including a structure having a high surface area and that is capable of microfiltration and adsorption, the filter media comprising a blend of activated carbon containing inorganic fibers and inorganic fiber whiskers.
  • the filter media system has an interconnected porosity that is adapted to allow fluid to flow through the filter media system, and a pore size distribution that is adapted to capture particles having a diameter in the range of about OJ to about 100 microns.
  • the high surface area allows the media to function both as a microfilter and an adsorber.
  • activation generally refer to the development of a high surface area on inorganic fibers, namely carbon fibers and carbon-coated inorganic fibers.
  • Activation of the carbon fibers and the carbon-coated inorganic fibers can be achieved by thermal activation and chemical activation processes.
  • Activation of the carbon fibers or carbon-coated inorganic fibers is preferably achieved by mild chemical oxidation.
  • functional groups are formed through the interaction of free radicals on the carbon surface with atoms in the atmosphere, such as oxygen and nitrogen. The functional groups render the surface of the carbon reactive and increase the adsorptive properties of the carbon fibers.
  • the activated filter media structure is prepared by mixing together carbon containing inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry. The excess water is removed from the slurry by any known filtration techniques. The slurry is then dried at a temperature sufficient to fuse the binder to form the filter media structure. Optionally, the filter media structure is heated at a temperature sufficient to burn off or to carbonize the binder. The filter media structure is activated by mild oxidation to yield a high surface area media.
  • a thin layer of pyrolytic carbon is deposited on the surface of the inorganic fibers and inorganic fiber whiskers to anchor the fibers and fiber whiskers together, further strengthening the high temperature filter media structure.
  • Binders that provides a high surface area upon carbonization include thermoplastic and thermosetting resin binders.
  • Suitable thermosetting resins that provide a high surface area upon carbonization include, but are not limited to, polyester, vinyl ester, epoxy and phenolic binders.
  • the preferred thermosetting resin that provides a high surface area upon carbonization is a phenolic resin binder.
  • Suitable thermoplastic resin binders that provides a high surface area include, but are not limited to, acrylic polyether ketones (PEEK), polyether sulfones (PES) and polyether imides (PEI).
  • the activated carbon containing filter media structure is prepared by first providing activated inorganic fibers.
  • the activated carbon containing inorganic fibers are mixed together with inorganic fiber whiskers, an organic binder and water to form a slurry.
  • the excess water is removed from the slurry by any known filtration technique.
  • the slurry is dried at a temperature sufficient to fuse the binder to form the filter media structure.
  • the filter media structure is heated at a temperature sufficient to burn off or to carbonize the binder.
  • the activated inorganic fibers can be prepared by mild oxidation of any conventional inorganic fibers described hereinabove.
  • a preferred activated inorganic fiber that is useful for forming the activated filter media structure of the present invention are activated carbon fibers.
  • Suitable activated carbon fibers are those commercially available from Actitex (France), and are a rayon based carbon fiber having a surface area in the range of about 1000 m 2 /g to about 1500 m 2 /g.
  • carbon-coated silica fibers which are prepared by coating microporous silica fibers with a phenolic resin, followed by carbonizing the phenolic resin as described in United States Patent No. 5,834,114 to Economy, which is incorporated herein by reference.
  • Carbon coated silica fibers exhibit surface areas in the range of about 500 m 2 /g to about 1000m 2 /g. Due to the accessibility of the pores in the microporous silica fibers, the fibers also exhibit fast adsorption kinetics.
  • the present invention provides a method for preparing an activated carbon-containing high performance filter media structure having a high surface area comprising activated carbon-containing inorganic fibers and inorganic fiber whiskers comprising mixing together inorganic fibers and inorganic fiber whiskers to form a random assemblage of inorganic fibers and inorganic fiber whiskers.
  • the random assemblage of inorganic fibers and fiber whiskers is then coated with either carbon or a carbon-containing compound to form a filter media structure.
  • the filter media structure is then carbonized and partially oxidized to activate at least one carbon constituent.
  • the carbon may be deposited on the random assemblage of inorganic fibers and fiber whiskers by any suitable chemical vapor deposition process.
  • the random assemblage of fibers and fiber whiskers can be coated with a carbon-containing compound, such as a thermoplastic or thermosetting resin, that provides a high surface area upon carbonization can be used in the present invention.
  • the activated carbon containing filter media structure comprising a blend of inorganic fibers and inorganic fiber whiskers
  • the activated carbon containing filter media structure comprising a blend of inorganic fibers and inorganic fiber whiskers can be prepared by first mixing together inorganic fiber whiskers and an organic resin to form a mixture.
  • the inorganic fibers are impregnated with the inorganic fiber whisker/resin mixture to form a random assemblage of inorganic fibers and fiber whiskers.
  • the resin/inorganic fiber whisker impregnated inorganic fibers are then carbonized.
  • a thin layer of pyrolytic carbon is deposited on the surface and inside said inorganic fiber whisker/resin assemblage to strengthen the filter media structure.
  • the filter media structure is then activated, by partial oxidization, to yield a high surface area media structure, containing activated carbon that is capable of both microfiltration and adsorption.
  • the inorganic fibers may contain activated carbon by being carbon fibers that have been activated, by being carbon coated inorganic fibers whose carbon coating has been activated, or by being inorganic fibers impregnated with a resin that is carbonized and activated.
  • the carbon-containing compound that may provide a high surface area upon carbonization may be the same as the thermoplastic and thermosetting resin binders described hereinabove.
  • Suitable thermosetting resins that provide a high surface area upon carbonization include, but are not limited to, polyester, vinyl ester, epoxy and phenolic binders.
  • the preferred thermosetting resin that provides a high surface area upon carbonization is a phenolic resin binder.
  • Suitable thermoplastic resin binders that may provide a high surface area include, but are not limited to, acrylic, polyether ketone (PEEK), polyether sulfone (PES) and polyether imide (PEI) resins.
  • an activated carbon-containing high performance filter media structure comprising inorganic fibers and inorganic fiber whiskers is prepared by providing a plurality of activated inorganic fibers.
  • the activated inorganic fibers are mixed together with inorganic fiber whiskers to form a random assemblage of activated inorganic fibers and inorganic fiber whiskers.
  • the random assemblage of activated inorganic fibers and inorganic fiber whiskers is coated with one of carbon and a carbon-containing compound to form a filter media structure.
  • the coated filter media structure is carbonized to provide an activated filter media structure having a high surface area and that is capable of microfiltration and adsorption.
  • partially oxidizing said filter media structure to activate at least one carbon constituent.
  • the activated carbon containing filter media structure comprising activated inorganic fibers and inorganic fiber whiskers can be prepared by first providing activated inorganic fibers.
  • the inorganic fiber whiskers and an organic resin are combined together to form a mixture.
  • the activated inorganic fibers are impregnated with the inorganic fiber whisker/resin mixture to form a random assemblage of activated inorganic fibers and fiber whiskers.
  • a thin layer of pyrolytic carbon is optionally deposited on the surface and inside of said random assemblage of inorganic fibers and inorganic fiber whiskers to strengthen the filter media structure.
  • the random assemblage of inorganic fibers and inorganic fiber whiskers is coated with an organic resin.
  • the organic resin coated random assemblage of inorganic fibers and inorganic fiber whiskers is carbonized to produce a filter media having a high surface area.
  • the above described filter media offers substantial versatility in construction such that a variety of constructions can be produced in order to cope with different filter applications.
  • Variations in the inorganic fiber whiskers may be made, such as whisker type (carbon or different types of ceramic whiskers); whisker density (amount of whiskers, based on the total volume of the inorganic fibers and inorganic whiskers); average whisker diameter (from about 0.03 to about 5 microns, more preferably from about 0.03 to about 0.2 microns); whisker length (from about 3 to about 5000 microns, and preferably from about 5 to about 300 microns); and whisker configuration (straight or branched).
  • whisker type carbon or different types of ceramic whiskers
  • whisker density amount of whiskers, based on the total volume of the inorganic fibers and inorganic whiskers
  • average whisker diameter from about 0.03 to about 5 microns, more preferably from about 0.03 to about 0.2 microns
  • whisker length from about 3 to about 5000 microns, and preferably
  • Variations in the conventional inorganic fiber may be made, such as, type of fiber (pitch, PAN, or rayon based carbon fibers and/or various ceramic fibers, such as silicon carbide, silicon nitride, aluminosilicate, silica, glass, alumina, ceria, zirconia and the like).
  • type of fiber pitch, PAN, or rayon based carbon fibers
  • ceramic fibers such as silicon carbide, silicon nitride, aluminosilicate, silica, glass, alumina, ceria, zirconia and the like.
  • the pressure drop across the filter media structures of the present invention is generally from about 0.1 millibar to about 500 millibar, more preferably from about 1.5 millibar to about 150 millibar and most preferably from about 5 millibar to about 15 millibar.
  • the low pressure drop across the filter media structures of the present invention allows for increased flow or throughput of materials through the filter media structure, thus lowering the energy costs associated with conventional pumping processes.
  • the filter media of the present invention has a flow rate across the filter media from about 10 liters/m 2 /hour to about 25,000 liters/m /hour, preferably from about 20 liters/m 2 /hour to about 500 liter/m 2 /hour.
  • the filter media of the present invention also has a strength sufficient to resist loads imparted by fluctuating pressures.
  • a filter paper comprising a blend of inorganic fibers and fiber whiskers according to the present invention was prepared by a conventional paper making method as described hereinabove, and was tested for the ability to remove particulate matter from a feed solution. Filter fouling characteristics, cleanability characteristics and cumulative particle retention efficiency of the filter media and filter paper were evaluated by conventional filtration test methods.
  • Figure 1 depicts the ability of filter papers comprising the filter media of the present invention, containing 10 percent by volume, 25 percent by volume, 50 percent by volume and 65 percent by volume of inorganic fiber whiskers, based on the total volume of the conventional inorganic fibers and fiber whiskers, to remove or capture yeast particles from a feed solution.
  • the results shown in Figure 1 demonstrate that the filter media structure of the present invention, comprising a blend of inorganic fibers and fiber whiskers, effectively captures or removes yeast particles having particle sizes in the range of about 0.28 to about 0.55 microns from a feed solution.
  • Figure 1 also shows the ability of the filter media structure to capture or remove yeast particles increases as the inorganic whisker content of the filter media structure increases.
  • FIG 2 depicts the filter fouling and cleanability characteristics of a filter paper made comprising the filter media of the present invention.
  • Filter fouling was evaluated by measuring the pressure drop across the filter paper as a function of the permeate flux (liter s/meterVhour).
  • Permeate flux refers to the measure of the flow of a feed solution across a unit area of the filter media per unit time.
  • the filter paper of the present invention was used to filter three separate test feeds in succession: 1) Pre-Test clean water; 2) a yeast particle-containing solution; and 3) Post-Test clean water.
  • the filter paper of the present invention has an initial pressure drop of about 12 mbar at a permeate flux of 500 (liters/meter 2 /hour).
  • the filter paper After filtering a feed solution containing yeast particles and subsequent cleaning, the filter paper exhibited a pressure drop of about 15 mbar at a permeate flux of 500 (liters/meter 2 /hour). With time, the pressure drop across the filter paper increases as yeast particles build up on the filter paper. However, upon cleaning, the filter paper regains similar pressure drop characteristics as compared to a new filter paper, which has not previously been subjected to the filtration process. Therefore, the results demonstrate that the filter media structure of the present can be easily cleaned and used in subsequent filtration processes, without loss of particle retention efficiency.
  • Figures 3 depicts the cumulative particle retention efficiency of the filter paper of the present invention, containing 0 percent by volume (comparative) JO percent by volume, 25 percent by volume, and 50 percent by volume of inorganic fiber whiskers, based on the total volume of the conventional inorganic fibers and fiber whiskers, as a function of particle size (microns).
  • the results shown in Figure 3 further demonstrate that the filter media structure of the present invention, containing from about 10 percent by volume to about 50 percent by volume of inorganic fiber whiskers is highly effective at capturing or removing particles from a feed solution, having a particle size from about 1 micron to about 10 microns.
  • Filter papers comprising the filter media of the present invention were evaluated for the ability to filter or remove unwanted yeast particles from beer products following the brewing process.
  • the objective of beer filtration is to remove all unwanted yeast particles remaining in the beer after the brewing process. It is also desirable to remove unwanted proteins, which contribute to haziness of the beer during the cooling process.
  • a resulting beer product should be free of all unwanted yeast particles and haze-causing proteins, while retaining the proteins that are responsible for the taste and head retention of the beer.
  • the results of the filtration test demonstrate that the filter media structures of the present invention exhibited continued operation at high flow rates, namely 100 liter s/m 2 /h.
  • the filter media structures of the present invention experienced very low pressures drop, namely, from about 5 millibar to about 15 millibar without significant fouling or particle build-up on the filter media structure.
  • the filter media structure retained particle retention efficiency without, noticeable evidence of performance deterioration after cleaning of the filter media structure.
  • the state of the art ceramic filters presently used for beer filtration require a cross flow velocity of about 360 m/min, to prevent build up or fouling of the filter structure.
  • the filter media structures of the present invention based on a blend of inorganic fibers and inorganic fiber whiskers, requires a cross flow velocity of only about 10 m/min.
  • a filtration system based on the filter media structures of the present invention, due its high permeability are, therefore, capable of operating at lower pumps speeds. The ability to operate at lower pumps speeds results in a corresponding decrease in the production costs of beer products.
  • the high performance filter media structures of the present invention were evaluated for the ability to remove unwanted particulates from air.
  • the tests were conducted using a sodium chloride smoke according to BS 4000, which measures the penetration of the sodium chloride smoke through the filter media.
  • the particle sizes within the sodium chloride smoke were from about 0.05 microns to about 0.6 microns.
  • a filter media prepared according to the present invention comprising a fiber: whisker blend of 50:50 exhibited a particle retention efficiency of about 100 percent.
  • the filter media comprising a fiber: whisker blend of 65:35 exhibited a particle efficiency of about 99.34 percent.
  • the particle retention efficiency of both filter media were compared to the leading glass fiber filtration media, commercially available Lydall, Inc. under the trademark LYDAIR ® , which exhibited a particle retention efficiency of 99.97 percent.
  • the results of the air filtration tests above demonstrate that the performance of the filter media structures, based on a blend of inorganic fibers and inorganic fiber whiskers, is comparable or superior to the state of the art glass fiber filtration media, with the added advantage that the inventive filter media is heat resistant and strong.
  • the filtration media of the present invention may activated to produce a filtration media and filtration media structures having a high surface area that are capable of adsorption of vapors and gases.
  • the filter media structures of the present invention differ from prior filter media and filter media structures in that, according to one embodiment of the present invention, the filter media structure is prepared by the mixing or blending of inorganic fibers, inorganic fiber whiskers and an organic binder.
  • the mixture of inorganic fibers, inorganic fiber whiskers and an organic binder is made into paper by conventional paper-making techniques.
  • a filter media structure is prepared by impregnating a felt or fabric comprising carbon fibers with a resin/inorganic fiber whisker mixture, followed by subsequent carbon-carbon processing.
  • the filter media structure prepared according to the present embodiment may comprise inorganic fiber whiskers of only one diameter or may be bimodal, comprising inorganic fiber whiskers having two different diameters.
  • Previous filters include only a filter media structure comprising carbon whiskers grown directly on a carbon-carbon substrate.
  • the filter media structure of the present invention may be bimodal in composition.
  • the term bimodal refers to a filter media structure comprising inorganic fiber whiskers having a particular diameter, inorganic fiber whiskers having a diameter smaller than the diameter of the inorganic fibers and an organic binder.
  • the filter media structure of the present invention may also be a trimodal composition.
  • trimodal refers to a filter media structure comprising a mixture or blend of inorganic fibers and inorganic fiber whiskers having three different diameters and an organic binder.
  • a filter paper prepared according to the present invention may comprise from 5 to about 40 percent by volume of inorganic fibers having a diameter from about 5 to about 20 microns, based on the total volume of inorganic fibers and fiber whiskers.
  • the inorganic fibers are mixed or blended with about 10 to about 50 percent by volume of inorganic fiber whiskers, having a diameter of about 0J to about 0.3 microns, based on the total volume of inorganic fibers and inorganic fiber whiskers, and about 10 to about 85 percent by volume of inorganic fiber whiskers, having a diameter of about 0.03 to about 0.06 microns, based on the total volume of the inorganic fibers and fiber whiskers.
  • the resulting trimodal filter media structure prepared according to the present invention is capable of filtering particles having a particle size in the range of about 0.03 to about 0.06 microns.
  • the present invention therefore provides a filter media structure that can be made into the form of a filter paper comprising a mixture of conventional inorganic fibers and inorganic fiber whiskers, having a high permeability, high flow rate and a low pressure drop across the filter paper.
  • the present invention further provides an activated filter media structure prepared by either activating the carbon present in the filter media structure or, alternatively, by adding activated carbon constituents to the other filter media constituents, also having a high permeability, high flow rate and a low pressure drop across the filter paper.
  • the objects of the present invention are accomplished by the production and use of high performance filter media structure comprising a blend of inorganic fibers and inorganic fiber whiskers for use as a filter media system.
  • the advantages of this filter media with respect to durability, chemical and high temperature resistance, particulation, mechanical strength, particle retention efficiency, and high permeability have been demonstrated. It should be understood that the present invention is not limited to the specific embodiments described above, but includes the variations, modifications, and equivalent embodiments that are defined by the following claims.

Abstract

A filter media structure, which is capable of operating in the micro- and nanofiltration regime, offers: low cost, durability, high temperature and chemical resistance, high permeability, high flow rate, low pressure drop across the filter media, high mechanical strength, separation efficiency, and biocompatibility. The filter media structure is comprised of blend of carbon or ceramic fibers and inorganic fiber whiskers generally having a diameter of from about 0.03 to about 5 microns. In one embodiment, filter media structure is comprised of blend of activated carbon-containing inorganic fibers and inorganic fiber whiskers generally having a diameter of from about 0.03 to about 5 microns.

Description

HIGH PERFORMANCE FILTERS BASED ON INORGANIC FIBERS AND INORGANIC FIBER WHISKERS
TECHNICAL FIELD OF THE INVENTION
The present invention is directed to novel high performance filters having characteristics suitable for use in various filtration applications, such as microfiltration. More particularly, this invention is directed to a novel high performance filter media comprising a blend of conventional carbon, ceramic, glass or silica fibers and inorganic fiber whiskers that is low in cost, durable, resistant to chemicals and high temperatures, not subject to particulation, high in mechanical strength and separation efficiency, and biocompatible.
BACKGROUND OF THE INVENTION
The prior art provides many types of materials which remove, filter, or capture gases and particulate materials. These filters of the art, while fairly effective in the applications for which they were designed, do not offer the efficiency, performance, and durability demanded by new, high performance applications.
The demand for higher quality materials, reduced manufacturing costs, and environmentally clean processes is forcing industry to move away from traditional methods of separation and purification, such as distillation and pasteurization, towards the use of filtration. Filter systems are now capable of offering low energy, more efficient, and environmentally friendly operations. Unfortunately, the widespread use of high performance filtration is restricted by the lack of suitable filter media materials. Such media must offer low cost; durability; chemical resistance, particularly to acids and alkalis; resistance to high temperatures, for both operation and sterilization purposes; no particulation (i. e. , release of filter media particles into the filtrate stream); mechanical strength to cope with pressure swings; separation efficiency, particularly for particles in the OJ to 100 microns range; and biocompatibility for certain applications such as the filtration of blood.
Table 1 below lists the currently available filter media materials together with their advantages and disadvantages.
Table 1: Currently Available Filter Media Materials
Figure imgf000004_0001
As presented in Table 1 , no one filtration material offers the required balance of properties needed for new, high performance applications.
Ceramic filter media have made some inroads, however their acceptance is hampered by the following: high cost because expensive and complex manufacturing processes are required; susceptibility to attack by alkalis; limited durability because of their inherent brittleness; and difficulties in controlling pore size distribution and permeability, which are critical aspects of high performance filter media.
High temperature composite materials, in which a ceramic or carbon matrix is reinforced with a continuous fiber, are used in a variety of applications. They are most commonly used in aircraft brakes. In this application, the braking material is made from a carbon matrix reinforced with carbon fibers (carbon/carbon or C/C). Such materials have a high mechanical strength and are capable of operating at extreme temperatures, up to 3000 °C in a non oxidizing atmosphere. Composites in which both the reinforcing fiber and the matrix are both ceramic are used in specialty applications. In particular, they are used in aircraft engine parts where strength at high temperatures and low weight are needed.
Such high temperature composite materials do offer some potential for use as filter media. For example, carbon/carbon composites, due to the excellent balance of properties, have found use as a filter support. USPN 4,944,996 discloses the use of a carbon/carbon support intended to receive a mineral membrane for separation procedures. USPN 4,500,328 discloses the use of carbon/carbon composites to filter radioactive waste, and the use of activated carbon fiber to increase surface area. USPN 5,183,546 discloses an electrochemical filter consisting of an electrically conductive fibrous material that contains microscopic particles of carbon or active charcoal.
Ceramic matrix composites have been used as hot gas filters. USPN
4,968,467 discloses the use of refractory ceramic fibers matted together with a high temperature binder, such as colloidal alumina or silica, to form a tube like "candle filter. " USPN 5, 196, 120 discloses the use of a ceramic fiber-ceramic composite filter composed of ceramic fibers, preferably texturized, a carbonaceous layer thereover, and a silicon carbide coating over the carbonaceous layer, which coats substantially all of the fibers. A strong, light weight filter is achieved.
Despite the advances made in the art, of which the above are examples, ceramic and carbon based composite materials have not previously been suited to high performance filtration. This is especially true for microfiltration because of the difficulties in achieving the required porosity, surface area and permeability required for efficient separation. In general, pore size distribution and the ability of the filter to retain or capture particulate matter is a function of the fiber diameter (Filters and Filtration Handbook. Third Edition, 1992). In the art outlined above, fiber diameters range from 7 microns for conventional carbon fibers to 100 microns and above for some ceramic fibers. The diameters of such fibers are too large. These fibers do not provide the small pores required for efficient small particulate retention.
USPN 5,138,546 discloses the addition of small carbon or charcoal particles which improves surface area and particle capture ability. However, this type of filter is not suitable for most high performance applications, particularly in the foodstuffs and chemical industries. These structures exhibit poor bonding of the particles to the substrate. In addition, there is a tendency for such constructions to particulate, in other words, release undesired particles into the filtrate stream. Also, the addition of such particles can only be performed on a random basis. There is little control with respect to uniformity and positioning.
In light of the disadvantages of the prior art, there is therefore presently a need to develop high performance filter media capable of operating in the microfiltration regime which offer: low cost; durability; chemical resistance, particularly to acids and alkalis; resistance to high temperatures, for both operation and sterilization purposes; no particulation (i. e., release of filter media particles into the filtrate stream); mechanical strength to cope with pressure swings; separation efficiency, particularly for particles in the OJ to 100 micron range; and biocompatibility for certain applications, such as the filtration of blood.
SUMMARY OF THE INVENTION
It is therefore an object of the present invention to provide a filter media having a high degree of mechanical integrity and stiffness, which is capable of resisting pressure changes with pulsed flows.
It is another object of the present invention to provide a filter media having controlled pore size.
It is another object of the present invention to provide a filter media having a high level of permeability.
It is another object of the present invention to provide a filter media having a high flow rate through the filter media.
It is another object of the present invention to provide a filter media having a low pressure drop across the filter media.
It is another object of the present invention to provide a filter media, which in the microfiltration range, provides a pore size distribution sufficiently small to trap most particles in the range of about 0.05 to about 100 microns.
The present invention therefore provides a filter media including a structure comprising a blend of inorganic fibers and inorganic fiber whiskers. The filter media of the present invention is low in cost, durable, resistant to chemicals and high temperatures, not subject to particulation, high in mechanical strength and separation efficiency, biocompatible, has a high permeability, a high flow rate and a low pressure drop across the filter media. In one embodiment, the present invention also provides an activated high surface area filter media including a structure that is capable of microfiltration and adsorption, the filter media comprising a blend of activated carbon-containing inorganic fibers and inorganic fiber whiskers, wherein the filter media system has an interconnected porosity that is adapted to allow fluid to flow through the filter media system, and a pore size distribution that is adapted to capture particles having a diameter in the range of about OJ to about 100 microns.
The present invention further provides a method for preparing a filter media structure comprising mixing together inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry; removing excess water from said slurry by filtration; drying said slurry at a temperature sufficient to fuse the binder to form said filter media structure; and optionally heating said filter media structure at a temperature sufficient to burn off or carbonize the binder. In one embodiment, a thin layer of pyrolytic carbon is deposited on the surface of said inorganic fibers and said inorganic fiber whiskers to anchor said fibers and fiber whiskers together, further strengthening the high temperature filter media structure.
The present invention provides a further method for preparing the filter media structure comprising inorganic fibers and inorganic fiber whiskers comprising mixing together inorganic fiber whiskers and a resin, impregnating said inorganic fibers with said inorganic fiber whisker/resin mixture to form a random assemblage of inorganic fibers and fiber whiskers; carbonizing said resin/inorganic fiber whisker impregnated inorganic fibers; and optionally depositing a thin layer of pyrolytic carbon on the surface and inside said inorganic fiber whisker/resin assemblage to strengthen the filter media structure.
The present invention further provides a method for preparing an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising mixing together inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry; removing excess water from said slurry by filtration; drying said slurry at a temperature sufficient to fuse the binder to form said filter media structure; optionally heating said filter media structure at a temperature sufficient to burn off or carbonize the binder; and partially oxidizing said filter media structure to activate at least one carbon constituent. In one embodiment, a thin layer of pyrolytic carbon may be deposited on the surface of said inorganic fibers and said inorganic fiber whiskers before carbonization of the binder to anchor said fibers and fiber whiskers together, further strengthening the high temperature filter media structure before partially oxidizing the filter media structure. Activation, by mild, partial oxidation, creates pores and develops a greater surface area within the carbon fibers.
The present invention further provides a method for preparing an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising providing activated inorganic fibers; mixing together activated inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry; removing excess water from said slurry by filtration; drying said slurry at a temperature sufficient to fuse the binder to form said filter media structure; and optionally heating said filter media structure at a temperature sufficient to burn off or to carbonize the binder. In one embodiment, the filter media structure is partially oxidized to further activate at least one carbon constituent.
The present invention also provides a method for preparing an activated carbon-containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption comprising activated carbon- containing inorganic fibers and inorganic fiber whiskers comprising: mixing together inorganic fibers and inorganic fiber whiskers to form a random assemblage of inorganic fibers and inorganic fiber whiskers; coating said random assemblage of inorganic fibers and inorganic fiber whiskers with one of carbon and a carbon- containing compound to form a filter media structure; carbonizing said filter media structure; and partially oxidizing said filter media structure to activate at least one carbon constituent. In one embodiment, an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption is prepared comprising the steps of mixing together inorganic fiber whiskers and an organic resin, impregnating said inorganic fibers with said inorganic fiber whisker/resin mixture to form a random assemblage of inorganic fibers and fiber whiskers; carbonizing said inorganic fiber whisker/resin impregnated inorganic fibers; and partially oxidizing the filter media structure to activate at least one carbon constituent.
The present invention provides a further method for preparing an activated carbon-containing high performance filter media structure comprising inorganic fibers and inorganic fiber whiskers comprising: providing a plurality of activated inorganic fibers; mixing together said activated inorganic fibers and inorganic fiber whiskers to form a random assemblage of activated inorganic fibers and inorganic fiber whiskers; coating said random assemblage of activated inorganic fibers and inorganic fiber whiskers with one of carbon and a carbon-containing compound to form a filter media structure; carbonizing said filter media structure; and optionally partially oxidizing said filter media structure to activate at least one carbon constituent.
In one embodiment, an activated carbon containing high performance filter media structure having a high surface area and that is capable of microfiltration and adsorption is prepared comprising the steps of providing activated carbon containing inorganic fibers; mixing together inorganic fiber whiskers and an organic resin; impregnating said activated inorganic fibers with said inorganic fiber whisker/resin mixture to form a filter media structure comprising a random assemblage of inorganic fibers and fiber whiskers; carbonizing said filter media structure; and optionally partially oxidizing said filter media structure to further activate at least one carbon constituent. BRIEF DESCRIPTION OF DRAWINGS
Figure 1 is a graph comparing the of removal of yeast particles by a filter paper comprising the filter media of the present invention, containing conventional carbon fibers and one of 10%, 25%, 50%, or 65% by volume of inorganic fiber whiskers.
Figure 2 is a graph depicting filter fouling and cleanability characteristics of a filter paper comprising the filter media structure of the present invention, by measuring the pressure drop across the filter media structure as a function of flow.
Figure 3 is a graph comparing the efficiency of particle retention by the high performance filter paper comprising the filter media compositions of the present invention, containing conventional carbon fibers and one of 0% , 10%, 25%, 50% or 65 % by volume of inorganic fiber whiskers.
DETAILED DESCRIPTION OF THE INVENTION
The filter media of the present invention includes a filter media structure, which comprises a blend of conventional inorganic fibers, such as carbon, ceramic, glass or silica fibers and inorganic fiber whiskers. The filter media of the present invention comprises from about 5 to about 95 percent by volume of inorganic fibers and from about 5 to about 95 percent by volume of inorganic fiber whiskers, based on the total volume of the inorganic fibers and inorganic fiber whiskers. The conventional inorganic fibers are generally from about 1 to about 15 millimeters in length, more preferably from about 5 to about 10 millimeters in length. The inorganic fiber whiskers employed in the present invention are generally from about 3 to about 5000 microns in length, more preferably about 5 to about 2000 microns in length, and most preferably from about 5 to about 300 microns in length. The conventional inorganic fibers are generally from about 3 to about 100 microns, preferably from about 3 microns to about 20 microns in diameter, and more preferably about 5 to about 12 microns. The fiber whiskers employed in the present invention are generally from about 0.03 to about 5 microns in diameter, more preferably from about 0.05 to about 0.2 microns in diameter. The filter media of the present invention contains interconnected porosity, such that a fluid (gaseous or liquid) can flow through it.
The filter media structure comprises conventional inorganic fibers, such as carbon and ceramic fibers and inorganic fiber whiskers. Carbon fibers are the most preferred inorganic fiber for use with the present filter media structure. Suitable carbon fibers are derived from PAN, pitch, or rayon precursors by methods well known in the art. The filter media structure may alternatively comprise ceramic fibers including, but not limited to silicon carbide, silicon nitride, aluminosilicate, silica, alumina, zirconia, ceria, glass and mixtures thereof. The inorganic fiber whiskers of the present invention may comprise at least one of alumina, carbon, ceria, zirconia, silica, glass, silicon carbide, silicon nitride, titanium carbide, titanium nitride and mixtures thereof. Carbon whiskers are the most preferred inorganic fiber whiskers for use in the filter media of the present invention.
The filter media structure prepared according to the present invention is highly permeable, and the pore size distribution is tailorable to capture most particles in the range of about 0.05 to about 100 microns, preferably 0.05 to about 20 microns. This is enabled by the use of the differing amounts of the inorganic fiber whisker sizes, that are generally from about 0.05 to about 5 microns in diameter, more preferably from about 0.05 to about 0.2 microns in diameter. In the microfiltration and nanofiltration range, the filter media structure provides a pore size distribution sufficiently small to trap particles in the range of about 0.05 to about 2 microns, such as when the diameter of the smallest inorganic fiber whiskers is in the range of about 0.05 to about 0.2 microns.
As described hereinabove, the fiber whiskers useful in the present invention include carbon whiskers and ceramic whiskers, such as silicon carbide, silicon nitride, titanium carbide, titanium nitride, silica, alumina, zirconia, ceria and glass. The most preferred fiber whiskers are carbon whiskers. Suitable carbon whiskers for use in the filter media and paper of the present invention, are vapor grown carbon whiskers having an average diameter from about OJ to about 0.2 microns, prepared the method disclosed by U.S. Patent No. 5,594,060 (Alig et al). Although vapor grown carbon whiskers are particularly useful in the novel filter media structures, the present invention is not limited only to the above mentioned vapor grown carbon whiskers and, thus, other types of carbon fibrils, filaments, fibroids, whiskers, microfibers, nanofibers meeting the composition and sizes defined above, including but not limited to those prepared by the method disclosed by U.S. Patent No. 5,374,415 (Alig et al), U.S. Patent No. 5,691,054 (Tennent et al) and U.S. Patent No. 4,663,230 (Tennent) may comprise the carbon whisker component of the filter media structure of the present invention.
The filter media of the present invention may be constructed in the form of a structure selected from the group consisting of papers; felts; needled felts; fabrics; flat, shaped or corrugated plates; tubes; open cylinders; and corrugated or pleated tubes and cylinders.
The filter media of the present invention can be made into a filter paper having small pore diameters, to control the pore size and to trap small particles. The filter paper of the present invention is prepared by conventional means for preparing a ceramic paper, mat or sheet product, by forming a slurry of feltable inorganic fibers, and according to the present invention inorganic fiber whiskers, an organic binder and water, draining the excess water by filtration through a screen, while retaining the fiber/ whisker /binder mixture, and drying the resulting mixture to remove excess moisture, forming a paper. The filter paper of the present invention may be prepared by any known paper-making method, such as that disclosed by United States Patent No. 3,510,394 (Cadotte), which is incorporated herein by reference. The filter paper is highly permeable, has a high flow rate and low pressure drop across the filter paper. The filter paper may also be heat stabilized to higher temperatures depending on the end use and the organic binder used in making the paper.
The filter media, if comprising carbon fibers, carbon fiber whiskers, and a stabilized or carbonized binder, is capable of operating at temperatures of up to about 500 °C in air and up to about 3000 °C in a non-oxidizing atmosphere. For high temperature applications where higher strength is required, the filter paper of the present invention may be further strengthened by anchoring the inorganic fibers to each other by depositing a small amount of carbon on the fibers by chemical vapor deposition processes. The filter media, if comprising ceramic fibers and ceramic whiskers, is capable of operating at temperatures of up to about 2000 °C in air and/or in a non-oxidizing atmosphere. The filter media of the present invention has high strength sufficient to resist loads imparted by fluctuating pressures, namely a strength defined as burst strength.
The filter media structures of the present invention may be used for microfiltration and adsorption, and may be used to selectively remove unwanted species in drinking water, milk, fruit juices, alcoholic beverages, such as beer and wine, cooking oil and other foodstuffs. The filter media structures of the present invention are particularly useful in removing microbial agents, such as bacteria, from drinking water, and other soluble contaminants, such as chlorine.
The filter media structure of the present invention may be used for air filtration processes, such as removing unwanted particulates from air by microfiltration and removal of unwanted vapors by adsorption. The filter media structure are especially useful for air filtration apparatus and processes in hospitals, clean rooms and gas mask canisters.
The filter media structure may also be used to purify blood, blood plasma and to purify chemically aggressive materials comprising acids, alkalis, solvents, and organic chemicals. In addition, the filter media structures may also be used to remove particulate matter from air. In the activated state, the filter paper of the present invention can also remove chemical contaminants from gases and liquids.
The filter media structures of the present invention may also be used to remove unwanted species or particles in mechanical industrial oils, such as motor oil, used in cooling or lubricating applications, wherein the oil is recirculating oil. The filter media structures of the present invention may also be adapted to remove unwanted particles from printing inks for use in inkjet printer applications. The filter media structures are especially useful for removing unwanted particles from inks that have been previously removed from printed paper products during paper recycling processes.
The filter media structures of the present invention may also be adapted to remove unwanted species or particles from process water used in the electronics and pharmaceutical industries.
The filter media structures of the present invention may be made into a filter paper by a conventional paper making method comprising mixing together conventional inorganic fibers, inorganic fiber whiskers, and an organic binder system. The inorganic fibers, inorganic fiber whiskers and organic binder are mixed to form a slurry in water. The slurry is filtered to remove excess water, and dried at a temperature sufficient to fuse the organic binder. Optionally, a thin layer of pyrolytic carbon is deposited on the surface of the filter paper after drying, by known methods, to strengthen the filter media structure and to prevent particulation of the fibers.
The organic binder system may be a water soluble or a water insoluble binder system. The water soluble binder may include, but are not limited to organic binders, such as poly vinyl alcohol, sodium alginate and water soluble phenolics. The water insoluble binder may include, but are not limited to organic binders, such as acrylates, methacrylates, polyesters and phenolics. Suitable phenolic resins useful in the present invention include, but are not limited to, phenolics commercially available under the trade designations USP 39 and 91LD, such as supplied by Ashland Chemical, and SC1008 such as supplied by Borden Chemical.
Suitable acrylic resins useful in the present invention include, but are not limited to, styrene acrylic resins commercially available under the trade designation Acronol 58885, from BASF Corporation.
Suitable polyester resins include, but are not limited to, polyester resins commercially available under the trade designation, Eastman WD, supplied by Eastman Kodak.
In another embodiment, the filter media of the present invention is made into a filter paper, felt or fabric by a method comprising mixing together inorganic fiber whiskers and a resin selected from the group consisting of phenolic, polyester and acrylic resins, and impregnating inorganic fibers with said inorganic fiber whisker/resin mixture. The filter media structure subsequently undergoes conventional carbon-carbon processing, including carbonizing said resin/inorganic fiber whisker impregnated inorganic fibers; and if desired, partially densifying said carbonized resin/inorganic fiber whisker impregnated inorganic fibers. Optionally, a thin layer of pyrolytic carbon is deposited on the surface of the inorganic fibers and inorganic fiber whiskers comprising the filter media structure, thus further cementing the inorganic fibers and the inorganic fiber whiskers together.
The resin/inorganic fiber whisker impregnated inorganic fibers may be formed into the desired shape on a tool or die. The molded filter media structures are heat- treated in an inert environment to temperatures from about 700°C to about 2900°C in order to convert the organic phases to carbon. The carbonized filter media structures of the present invention are then partially densified by any suitable densification technique, such as chemical vapor infiltrations, or by multiple cycle reimpregnations and carbonizations.
In one embodiment, the present invention also provides an activated carbon containing filter media including a structure having a high surface area and that is capable of microfiltration and adsorption, the filter media comprising a blend of activated carbon containing inorganic fibers and inorganic fiber whiskers. The filter media system has an interconnected porosity that is adapted to allow fluid to flow through the filter media system, and a pore size distribution that is adapted to capture particles having a diameter in the range of about OJ to about 100 microns. The high surface area allows the media to function both as a microfilter and an adsorber.
The term "activated", "activation" or "surface activation" may be used interchangeably, throughout the specification, generally refer to the development of a high surface area on inorganic fibers, namely carbon fibers and carbon-coated inorganic fibers. Activation of the carbon fibers and the carbon-coated inorganic fibers can be achieved by thermal activation and chemical activation processes. Activation of the carbon fibers or carbon-coated inorganic fibers is preferably achieved by mild chemical oxidation. During chemical activation, functional groups are formed through the interaction of free radicals on the carbon surface with atoms in the atmosphere, such as oxygen and nitrogen. The functional groups render the surface of the carbon reactive and increase the adsorptive properties of the carbon fibers.
In one preferred embodiment, the activated filter media structure is prepared by mixing together carbon containing inorganic fibers, inorganic fiber whiskers, an organic binder and water to form a slurry. The excess water is removed from the slurry by any known filtration techniques. The slurry is then dried at a temperature sufficient to fuse the binder to form the filter media structure. Optionally, the filter media structure is heated at a temperature sufficient to burn off or to carbonize the binder. The filter media structure is activated by mild oxidation to yield a high surface area media. In one alternative embodiment, before oxidizing the filter media structure, a thin layer of pyrolytic carbon is deposited on the surface of the inorganic fibers and inorganic fiber whiskers to anchor the fibers and fiber whiskers together, further strengthening the high temperature filter media structure.
Any binder that provides a high surface area upon carbonization can be used in the present invention. Binders that provides a high surface area upon carbonization include thermoplastic and thermosetting resin binders. Suitable thermosetting resins that provide a high surface area upon carbonization include, but are not limited to, polyester, vinyl ester, epoxy and phenolic binders. The preferred thermosetting resin that provides a high surface area upon carbonization is a phenolic resin binder. Suitable thermoplastic resin binders that provides a high surface area include, but are not limited to, acrylic polyether ketones (PEEK), polyether sulfones (PES) and polyether imides (PEI).
In another preferred embodiment, the activated carbon containing filter media structure is prepared by first providing activated inorganic fibers. The activated carbon containing inorganic fibers are mixed together with inorganic fiber whiskers, an organic binder and water to form a slurry. The excess water is removed from the slurry by any known filtration technique. The slurry is dried at a temperature sufficient to fuse the binder to form the filter media structure. Optionally, the filter media structure is heated at a temperature sufficient to burn off or to carbonize the binder.
The activated inorganic fibers can be prepared by mild oxidation of any conventional inorganic fibers described hereinabove. A preferred activated inorganic fiber that is useful for forming the activated filter media structure of the present invention are activated carbon fibers. Suitable activated carbon fibers are those commercially available from Actitex (France), and are a rayon based carbon fiber having a surface area in the range of about 1000 m2/g to about 1500 m2/g.
Another preferred type of inorganic fibers useful in preparing the filter media structures of the present invention are carbon-coated silica fibers, which are prepared by coating microporous silica fibers with a phenolic resin, followed by carbonizing the phenolic resin as described in United States Patent No. 5,834,114 to Economy, which is incorporated herein by reference. Carbon coated silica fibers exhibit surface areas in the range of about 500 m2/g to about 1000m2/g. Due to the accessibility of the pores in the microporous silica fibers, the fibers also exhibit fast adsorption kinetics.
In another preferred embodiment, the present invention provides a method for preparing an activated carbon-containing high performance filter media structure having a high surface area comprising activated carbon-containing inorganic fibers and inorganic fiber whiskers comprising mixing together inorganic fibers and inorganic fiber whiskers to form a random assemblage of inorganic fibers and inorganic fiber whiskers. The random assemblage of inorganic fibers and fiber whiskers is then coated with either carbon or a carbon-containing compound to form a filter media structure. The filter media structure is then carbonized and partially oxidized to activate at least one carbon constituent.
The carbon may be deposited on the random assemblage of inorganic fibers and fiber whiskers by any suitable chemical vapor deposition process. Alternatively, the random assemblage of fibers and fiber whiskers can be coated with a carbon-containing compound, such as a thermoplastic or thermosetting resin, that provides a high surface area upon carbonization can be used in the present invention.
In a variation of this embodiment, the activated carbon containing filter media structure comprising a blend of inorganic fibers and inorganic fiber whiskers can be prepared by first mixing together inorganic fiber whiskers and an organic resin to form a mixture. The inorganic fibers are impregnated with the inorganic fiber whisker/resin mixture to form a random assemblage of inorganic fibers and fiber whiskers. The resin/inorganic fiber whisker impregnated inorganic fibers are then carbonized. Optionally, a thin layer of pyrolytic carbon is deposited on the surface and inside said inorganic fiber whisker/resin assemblage to strengthen the filter media structure. The filter media structure is then activated, by partial oxidization, to yield a high surface area media structure, containing activated carbon that is capable of both microfiltration and adsorption. The inorganic fibers may contain activated carbon by being carbon fibers that have been activated, by being carbon coated inorganic fibers whose carbon coating has been activated, or by being inorganic fibers impregnated with a resin that is carbonized and activated.
The carbon-containing compound that may provide a high surface area upon carbonization may be the same as the thermoplastic and thermosetting resin binders described hereinabove. Suitable thermosetting resins that provide a high surface area upon carbonization include, but are not limited to, polyester, vinyl ester, epoxy and phenolic binders. The preferred thermosetting resin that provides a high surface area upon carbonization is a phenolic resin binder. Suitable thermoplastic resin binders that may provide a high surface area include, but are not limited to, acrylic, polyether ketone (PEEK), polyether sulfone (PES) and polyether imide (PEI) resins.
In another embodiment, an activated carbon-containing high performance filter media structure comprising inorganic fibers and inorganic fiber whiskers is prepared by providing a plurality of activated inorganic fibers. The activated inorganic fibers are mixed together with inorganic fiber whiskers to form a random assemblage of activated inorganic fibers and inorganic fiber whiskers. The random assemblage of activated inorganic fibers and inorganic fiber whiskers is coated with one of carbon and a carbon-containing compound to form a filter media structure. The coated filter media structure is carbonized to provide an activated filter media structure having a high surface area and that is capable of microfiltration and adsorption. Optionally, partially oxidizing said filter media structure to activate at least one carbon constituent.
In a variation of this embodiment, the activated carbon containing filter media structure comprising activated inorganic fibers and inorganic fiber whiskers can be prepared by first providing activated inorganic fibers. The inorganic fiber whiskers and an organic resin are combined together to form a mixture. The activated inorganic fibers are impregnated with the inorganic fiber whisker/resin mixture to form a random assemblage of activated inorganic fibers and fiber whiskers. A thin layer of pyrolytic carbon is optionally deposited on the surface and inside of said random assemblage of inorganic fibers and inorganic fiber whiskers to strengthen the filter media structure. The random assemblage of inorganic fibers and inorganic fiber whiskers is coated with an organic resin. The organic resin coated random assemblage of inorganic fibers and inorganic fiber whiskers is carbonized to produce a filter media having a high surface area.
SPECIFIC EMBODIMENTS
The above described filter media offers substantial versatility in construction such that a variety of constructions can be produced in order to cope with different filter applications. Variations in the inorganic fiber whiskers may be made, such as whisker type (carbon or different types of ceramic whiskers); whisker density (amount of whiskers, based on the total volume of the inorganic fibers and inorganic whiskers); average whisker diameter (from about 0.03 to about 5 microns, more preferably from about 0.03 to about 0.2 microns); whisker length (from about 3 to about 5000 microns, and preferably from about 5 to about 300 microns); and whisker configuration (straight or branched). Variations in the conventional inorganic fiber may be made, such as, type of fiber (pitch, PAN, or rayon based carbon fibers and/or various ceramic fibers, such as silicon carbide, silicon nitride, aluminosilicate, silica, glass, alumina, ceria, zirconia and the like).
The pressure drop across the filter media structures of the present invention is generally from about 0.1 millibar to about 500 millibar, more preferably from about 1.5 millibar to about 150 millibar and most preferably from about 5 millibar to about 15 millibar. The low pressure drop across the filter media structures of the present invention allows for increased flow or throughput of materials through the filter media structure, thus lowering the energy costs associated with conventional pumping processes. The filter media of the present invention has a flow rate across the filter media from about 10 liters/m2/hour to about 25,000 liters/m /hour, preferably from about 20 liters/m2/hour to about 500 liter/m2/hour.
The filter media of the present invention also has a strength sufficient to resist loads imparted by fluctuating pressures.
GENERAL EXPERIMENTAL
A filter paper comprising a blend of inorganic fibers and fiber whiskers according to the present invention was prepared by a conventional paper making method as described hereinabove, and was tested for the ability to remove particulate matter from a feed solution. Filter fouling characteristics, cleanability characteristics and cumulative particle retention efficiency of the filter media and filter paper were evaluated by conventional filtration test methods.
Figure 1 depicts the ability of filter papers comprising the filter media of the present invention, containing 10 percent by volume, 25 percent by volume, 50 percent by volume and 65 percent by volume of inorganic fiber whiskers, based on the total volume of the conventional inorganic fibers and fiber whiskers, to remove or capture yeast particles from a feed solution. The results shown in Figure 1 demonstrate that the filter media structure of the present invention, comprising a blend of inorganic fibers and fiber whiskers, effectively captures or removes yeast particles having particle sizes in the range of about 0.28 to about 0.55 microns from a feed solution. Figure 1 also shows the ability of the filter media structure to capture or remove yeast particles increases as the inorganic whisker content of the filter media structure increases.
Figure 2 depicts the filter fouling and cleanability characteristics of a filter paper made comprising the filter media of the present invention. Filter fouling was evaluated by measuring the pressure drop across the filter paper as a function of the permeate flux (liter s/meterVhour). Permeate flux, as used throughout the specification, refers to the measure of the flow of a feed solution across a unit area of the filter media per unit time. The filter paper of the present invention was used to filter three separate test feeds in succession: 1) Pre-Test clean water; 2) a yeast particle-containing solution; and 3) Post-Test clean water. As shown in Figure 2, the filter paper of the present invention has an initial pressure drop of about 12 mbar at a permeate flux of 500 (liters/meter2/hour). After filtering a feed solution containing yeast particles and subsequent cleaning, the filter paper exhibited a pressure drop of about 15 mbar at a permeate flux of 500 (liters/meter2/hour). With time, the pressure drop across the filter paper increases as yeast particles build up on the filter paper. However, upon cleaning, the filter paper regains similar pressure drop characteristics as compared to a new filter paper, which has not previously been subjected to the filtration process. Therefore, the results demonstrate that the filter media structure of the present can be easily cleaned and used in subsequent filtration processes, without loss of particle retention efficiency.
Figures 3 depicts the cumulative particle retention efficiency of the filter paper of the present invention, containing 0 percent by volume (comparative) JO percent by volume, 25 percent by volume, and 50 percent by volume of inorganic fiber whiskers, based on the total volume of the conventional inorganic fibers and fiber whiskers, as a function of particle size (microns). The results shown in Figure 3 further demonstrate that the filter media structure of the present invention, containing from about 10 percent by volume to about 50 percent by volume of inorganic fiber whiskers is highly effective at capturing or removing particles from a feed solution, having a particle size from about 1 micron to about 10 microns. The results shown in Figure 3 further demonstrate that the filter media structure of the present invention, containing from about 25 percent by volume to about 65 percent by volume of inorganic fiber whiskers, are highly effective at capturing or removing particles from a feed solution, having a particle size from about 0J to about 1 micron.
Filter papers comprising the filter media of the present invention were evaluated for the ability to filter or remove unwanted yeast particles from beer products following the brewing process. The objective of beer filtration is to remove all unwanted yeast particles remaining in the beer after the brewing process. It is also desirable to remove unwanted proteins, which contribute to haziness of the beer during the cooling process. A resulting beer product should be free of all unwanted yeast particles and haze-causing proteins, while retaining the proteins that are responsible for the taste and head retention of the beer.
To test the filter papers comprising the filter media of the present invention, a filtration test was used in which the yeast particles were removed from previously unfiltered beer following the brewing process.
The results of the filtration test demonstrate that the filter media structures of the present invention exhibited continued operation at high flow rates, namely 100 liter s/m2/h. The filter media structures of the present invention experienced very low pressures drop, namely, from about 5 millibar to about 15 millibar without significant fouling or particle build-up on the filter media structure. The filter media structure retained particle retention efficiency without, noticeable evidence of performance deterioration after cleaning of the filter media structure. An excellent clarity beer, having good head retention and taste, resulted from filtration with the filter media structure of the present invention, indicating that the unwanted yeast particles and undesired proteins were removed.
Conventional filters for filtering unwanted yeast particles from beer products employ various filtering substances, such as the diatomaceous earth, Kieselguhr. The filtering substance, Kieselguhr, however, is only moderately effective in removing yeast particles from beer, and many health and safety hazards are associated with its disposal. In contrast, the filter media structures of the present invention do not require any further filtering substances, such as diatomaceous earth.
The state of the art ceramic filters presently used for beer filtration require a cross flow velocity of about 360 m/min, to prevent build up or fouling of the filter structure. In contrast, the filter media structures of the present invention, based on a blend of inorganic fibers and inorganic fiber whiskers, requires a cross flow velocity of only about 10 m/min. A filtration system based on the filter media structures of the present invention, due its high permeability are, therefore, capable of operating at lower pumps speeds. The ability to operate at lower pumps speeds results in a corresponding decrease in the production costs of beer products.
The results of the filtration tests above demonstrate that the performance of the filter media structures, based on a blend of inorganic fibers and inorganic fiber whiskers, is superior in comparison to the state of the art ceramic filters, and other conventional filters requiring additional filtering substances, such as diatomaceous earth.
The high performance filter media structures of the present invention were evaluated for the ability to remove unwanted particulates from air. The tests were conducted using a sodium chloride smoke according to BS 4000, which measures the penetration of the sodium chloride smoke through the filter media. The particle sizes within the sodium chloride smoke were from about 0.05 microns to about 0.6 microns. Two different filter media compositions, namely fiber: whisker blends of 50:50 and 65:35, were tested for penetration of sodium chloride through the filter media.
A filter media prepared according to the present invention comprising a fiber: whisker blend of 50:50 exhibited a particle retention efficiency of about 100 percent. The filter media comprising a fiber: whisker blend of 65:35 exhibited a particle efficiency of about 99.34 percent. The particle retention efficiency of both filter media were compared to the leading glass fiber filtration media, commercially available Lydall, Inc. under the trademark LYDAIR®, which exhibited a particle retention efficiency of 99.97 percent.
The results of the air filtration tests above demonstrate that the performance of the filter media structures, based on a blend of inorganic fibers and inorganic fiber whiskers, is comparable or superior to the state of the art glass fiber filtration media, with the added advantage that the inventive filter media is heat resistant and strong. Whereas conventional glass filtration media cannot be activated, the filtration media of the present invention may activated to produce a filtration media and filtration media structures having a high surface area that are capable of adsorption of vapors and gases.
The filter media structures of the present invention differ from prior filter media and filter media structures in that, according to one embodiment of the present invention, the filter media structure is prepared by the mixing or blending of inorganic fibers, inorganic fiber whiskers and an organic binder. The mixture of inorganic fibers, inorganic fiber whiskers and an organic binder is made into paper by conventional paper-making techniques.
A filter media structure is prepared by impregnating a felt or fabric comprising carbon fibers with a resin/inorganic fiber whisker mixture, followed by subsequent carbon-carbon processing. The filter media structure prepared according to the present embodiment may comprise inorganic fiber whiskers of only one diameter or may be bimodal, comprising inorganic fiber whiskers having two different diameters. Previous filters include only a filter media structure comprising carbon whiskers grown directly on a carbon-carbon substrate.
The filter media structure of the present invention may be bimodal in composition. The term bimodal refers to a filter media structure comprising inorganic fiber whiskers having a particular diameter, inorganic fiber whiskers having a diameter smaller than the diameter of the inorganic fibers and an organic binder.
The filter media structure of the present invention may also be a trimodal composition. The term trimodal refers to a filter media structure comprising a mixture or blend of inorganic fibers and inorganic fiber whiskers having three different diameters and an organic binder. For example, a filter paper prepared according to the present invention may comprise from 5 to about 40 percent by volume of inorganic fibers having a diameter from about 5 to about 20 microns, based on the total volume of inorganic fibers and fiber whiskers. The inorganic fibers are mixed or blended with about 10 to about 50 percent by volume of inorganic fiber whiskers, having a diameter of about 0J to about 0.3 microns, based on the total volume of inorganic fibers and inorganic fiber whiskers, and about 10 to about 85 percent by volume of inorganic fiber whiskers, having a diameter of about 0.03 to about 0.06 microns, based on the total volume of the inorganic fibers and fiber whiskers. The resulting trimodal filter media structure prepared according to the present invention is capable of filtering particles having a particle size in the range of about 0.03 to about 0.06 microns.
The present invention therefore provides a filter media structure that can be made into the form of a filter paper comprising a mixture of conventional inorganic fibers and inorganic fiber whiskers, having a high permeability, high flow rate and a low pressure drop across the filter paper. The present invention further provides an activated filter media structure prepared by either activating the carbon present in the filter media structure or, alternatively, by adding activated carbon constituents to the other filter media constituents, also having a high permeability, high flow rate and a low pressure drop across the filter paper.
The objects of the present invention are accomplished by the production and use of high performance filter media structure comprising a blend of inorganic fibers and inorganic fiber whiskers for use as a filter media system. The advantages of this filter media with respect to durability, chemical and high temperature resistance, particulation, mechanical strength, particle retention efficiency, and high permeability have been demonstrated. It should be understood that the present invention is not limited to the specific embodiments described above, but includes the variations, modifications, and equivalent embodiments that are defined by the following claims.

Claims

WE CLAIM:
1. A high performance filter media including a structure comprising a blend of inorganic fibers and inorganic fiber whiskers, wherein the filter media has an interconnected porosity that is adapted to allow fluid to flow through the filter media, and a pore size distribution that is adapted to capture particles having a diameter in the range of about OJ to about 100 microns, and wherein the filter media is adapted for at least one of microfiltration and adsorption.
2. The high performance filter media, according to claim 1, wherein the inorganic fibers are selected from the group consisting of carbon fibers, activated carbon fibers, ceramic fibers and substantially carbon-coated activated ceramic fibers.
3. The high performance filter media, according to claim 2, wherein the carbon fibers and activated carbon fibers are derived from a precursor fiber selected from the group consisting of PAN, pitch or rayon.
4. The high performance filter media, according to claim 2, wherein the ceramic fibers are selected from the group consisting of silicon carbide, silicon nitride, aluminosilicate, glass, silica, alumina, zirconia, ceria and mixtures thereof.
5. The high performance filter media of claim 2, wherein the substantially carbon-coated activated ceramic fibers are selected from the group consisting of carbon-coated silicon carbide, carbon-coated silicon nitride, carbon-coated aluminosilicate, carbon-coated glass, carbon-coated silica, carbon-coated alumina, carbon-coated zirconia, carbon-coated ceria and mixtures thereof.
6. The high performance filter media, according to claim 1, wherein the inorganic fiber whiskers are selected from the group consisting of carbon, activated carbon, silicon carbide, silicon nitride, titanium carbide, titanium nitride, alumina, zirconia, ceria, silica, glass and mixtures thereof.
7. The filter media, according to claim 1, wherein the filter media structure comprises about 5 to about 95 weight percent inorganic fibers and wherein the filter media comprises about 5 to about 95 weight percent inorganic fiber whiskers, based on the total volume of the inorganic fibers and the fiber whiskers.
8. The filter media, according to claim 1, wherein the fibers have a length of about 1 to about 15 millimeters and a diameter of about 3 to about 100 microns.
9. The filter media, according to claim 1, wherein the fiber whiskers have a length of about 3 to about 5000 microns and a diameter of about 0.03 to about 5 microns.
10. The filter media, according to claim 1, wherein the filter media structure is selected from the group consisting of paper, felt, needled felt, woven fabric and non- woven fabric.
11. The filter media, according to claim 1, wherein said filter media has a permeability as measured by a pressure drop across the filter media from about 0J millibar to about 500 millibar.
12. The filter media, according to claim 1, having a flow rate through the filter media from about 10 liters/m2/h to about 25,000 liters/m2/h.
13. The filter media, according to claim 1, wherein said filter media after cleaning has a particle retention efficiency similar to unused filter media.
14. The filter media, according to claim 1, wherein said filter media has strength sufficient to resist loads imparted by fluctuating pressures.
15. The filter media, according to claim 1, wherein said filter media comprises conventional carbon fibers and carbon whiskers, and wherein said filter media is operable at temperatures of from the freezing point of the first condensing gas to about 500°C in air and up to about 3000°C in a non-oxidizing atmosphere.
16. The filter media, according to claim 1, wherein said filter media comprises conventional ceramic fibers and ceramic whiskers, and wherein said filter media is operable at temperatures of up to about two-thirds of the lowest melting temperature of the ceramic fibers and whiskers comprising said filter media.
17. The activated filter media, according to claim 1, wherein said filter media is adapted for use in at least one of: i) microfiltration processes, ii) nanofiltration processes, iii) high purity filtration processes, iv) use in removing unwanted species from process water, v) selectively removing unwanted species in foodstuffs, vi) removing unwanted species from drinking water, vii) selectively removing unwanted species in milk, viii) selectively removing unwanted species in fruit juices, ix) selectively removing unwanted species in alcoholic beverages, x) selectively removing unwanted species in cooking oil, xi) purifying whole blood and blood plasma, xii) purifying chemically aggressive materials, xiii) purifying acids, xiv) purifying alkalis, xv) purifying solvents, xvi) purifying organic chemicals, xvii) removing unwanted particles from industrial oils, xviii) removing unwanted particles, xix) removing fibers and unwanted particles from printing ink, and xx) removing particulate matter from the air.
18. A method for preparing a filter media structure comprising inorganic fibers and inorganic fiber whiskers, said filter media having an interconnected porosity that is adapted to allow fluid to flow through the filter media, and a pore size distribution that is adapted to capture particles having a diameter in the range of about OJ to about 100 microns, and wherein said filter media is adapted for at least one of microfiltration and adsorption comprising the steps of: mixing together inorganic fibers; inorganic fiber whiskers; a binder and water to form a slurry; removing the excess water from the slurry by filtration; drying said slurry at a temperature sufficient to fuse the binder to form said filter media structure; and optionally burning off the binder or carbonizing said filter media structure.
19. The method of claim 18, further comprising partially oxidizing said filter media structure to activate at least one carbon constituent.
20. A method for preparing a filter media structure comprising inorganic fibers and inorganic fiber whiskers, said filter media having an interconnected porosity that is adapted to allow fluid to flow through the filter media, and a pore size distribution that is adapted to capture particles having a diameter in the range of about OJ to about 100 microns, and wherein said filter media is adapted for at least one of microfiltration and adsorption comprising the steps of: mixing together inorganic fibers and inorganic fiber whiskers to form a random assemblage of inorganic fibers and inorganic fiber whiskers; coating said random assemblage of inorganic fibers and inorganic fiber whiskers with one of carbon and a carbon-containing compound to form a filter media structure; and carbonizing said filter media structure.
21. The method of claim 20, further comprising partially oxidizing said filter media structure to activate at least one carbon constituent.
22. The method of claim 20, wherein said carbon is derived from a chemical vapor deposition process.
23. The method of claim 20, wherein the carbon-containing compound is an organic resin.
24. The method according to claim 23, wherein the carbon-containing organic resin is selected from the group consisting of thermoplastic and thermosetting resins.
25. The method of claim 24, wherein the thermosetting resin is selected from the group consisting of polyester, vinyl ester, epoxy and phenolic resins.
26. The method of claim 25, wherein the thermosetting resin is a phenolic resin.
27. The method of claim 24, wherein the thermoplastic resin is selected from the group consisting of acrylic, polyether ketone, polyether sulfone, and polyether imide resins.
28. The method according to claims 19 or 20, wherein the inorganic fibers are selected from the group consisting of carbon fibers, activated carbon fibers, ceramic fibers and substantially carbon-coated ceramic fibers.
29. The method according to claim 28, wherein the carbon fibers and activated carbon fibers are derived from a precursor selected from the group consisting of
PAN, pitch or rayon.
30. The method according to claim 28, wherein the ceramic fibers are selected from the group consisting of silicon carbide, silicon nitride, aluminosilicate, glass, silica alumina, ceria, zirconia and mixtures thereof.
31. The method according to claim 28, wherein the substantially carbon-coated ceramic fibers are selected from the group consisting of carbon-coated silicon carbide, carbon-coated silicon nitride, carbon-coated aluminosilicate, carbon-coated glass, carbon-coated silica, carbon-coated alumina, carbon-coated ceria, carbon-coated zirconia and mixtures thereof.
32. The method according to claims 19 or 20, wherein the inorganic fiber whiskers are selected from the group consisting of carbon, activated-carbon, silicon carbide, silicon nitride, titanium carbide, titanium nitride, alumina, ceria, silica, zirconia and mixtures thereof.
33. The method according to claims 19 or 20, wherein the filter media comprises about 5 to about 95 volume percent inorganic fibers and from about 5 to about 95 volume percent inorganic fiber whiskers based on the total volume of the inorganic fibers and the fiber whiskers.
34. The method according to claims 19 or 20, wherein the inorganic fiber have a length of about 1 to about 15 millimeters and a diameter of about 3 to about 100 microns.
35. The method according to claims 19 or 20, wherein inorganic fiber whiskers have a length of about 3 to about 5000 microns and a diameter of about 0.03 to about 5 microns.
PCT/US2000/002841 1999-02-05 2000-02-04 High performance filters based on inorganic fibers and inorganic fiber whiskers WO2000045938A1 (en)

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US6155432A (en) 2000-12-05
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