WO2005033015A1 - Pool chlorinator cell ultrasonic cleaner - Google Patents

Pool chlorinator cell ultrasonic cleaner Download PDF

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Publication number
WO2005033015A1
WO2005033015A1 PCT/US2004/032716 US2004032716W WO2005033015A1 WO 2005033015 A1 WO2005033015 A1 WO 2005033015A1 US 2004032716 W US2004032716 W US 2004032716W WO 2005033015 A1 WO2005033015 A1 WO 2005033015A1
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WO
WIPO (PCT)
Prior art keywords
membrane
cell
housing
transducer
electrode
Prior art date
Application number
PCT/US2004/032716
Other languages
French (fr)
Inventor
Boro B. Djordjevic
Original Assignee
Materials And Sensors Technologies, 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 Materials And Sensors Technologies, Inc. filed Critical Materials And Sensors Technologies, Inc.
Priority to AU2004278428A priority Critical patent/AU2004278428A1/en
Publication of WO2005033015A1 publication Critical patent/WO2005033015A1/en

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Classifications

    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • C02F1/461Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
    • C02F1/46104Devices therefor; Their operating or servicing
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B08CLEANING
    • B08BCLEANING IN GENERAL; PREVENTION OF FOULING IN GENERAL
    • B08B17/00Methods preventing fouling
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B08CLEANING
    • B08BCLEANING IN GENERAL; PREVENTION OF FOULING IN GENERAL
    • B08B3/00Cleaning by methods involving the use or presence of liquid or steam
    • B08B3/04Cleaning involving contact with liquid
    • B08B3/10Cleaning involving contact with liquid with additional treatment of the liquid or of the object being cleaned, e.g. by heat, by electricity or by vibration
    • B08B3/12Cleaning involving contact with liquid with additional treatment of the liquid or of the object being cleaned, e.g. by heat, by electricity or by vibration by sonic or ultrasonic vibrations
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/34Treatment of water, waste water, or sewage with mechanical oscillations
    • C02F1/36Treatment of water, waste water, or sewage with mechanical oscillations ultrasonic vibrations
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • C02F1/461Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
    • C02F1/467Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction
    • C02F1/4672Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction by electrooxydation
    • C02F1/4674Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction by electrooxydation with halogen or compound of halogens, e.g. chlorine, bromine
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • C02F1/461Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
    • C02F1/46104Devices therefor; Their operating or servicing
    • C02F1/46109Electrodes
    • C02F2001/46119Cleaning the electrodes
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2103/00Nature of the water, waste water, sewage or sludge to be treated
    • C02F2103/42Nature of the water, waste water, sewage or sludge to be treated from bathing facilities, e.g. swimming pools
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2209/00Controlling or monitoring parameters in water treatment
    • C02F2209/40Liquid flow rate

Definitions

  • This invention generally relates to the maintenance and prevention of mineral deposit accumulations on electrodes which are submerged in the chemical baths of electrolytic cells. More particularly, this invention relates to an apparatus and process that uses ultrasonic cleaning to remove mineral deposits that can accumulate on the electrodes of pool chlorination cells. 2. DESCRIPTION OF THE RELATED ART
  • the maintenance of swimming pools, especially in regard to the chemistry of the pool's water, can be a complex, time-consuming and expensive routine. For fresh- water pools, this usually involves, especially during the warmer season, checking the pool's water almost daily to determine and maintain its pH level and chlorine content.
  • the maintenance of the water's chemistry can be a much easier task due to the development of various automated systems, especially the pool chlorinator cell or the electrolytic chlorination system.
  • This system introduces into the pool's water circulation system an electrolysis or chlorinator cell that uses the water's salt (NaCl) to produce locally elevated concentrations near the cell's electrodes of chlorine (i.e., actually hypochlorite which is generated via local pole chemistry) which acts to kill any algae or bacterial in the water that flows through the chlorinator cell.
  • the present invention is generally directed to satisfying the needs set forth above and overcoming the disadvantages identified with prior art devices and methods.
  • the foregoing need can be satisfied by providing a device for preventing the deposition of mineral deposits on and causing the removal of mineral deposits from the electrode of a pool chlorinator cell having a housing with liquid inlet and outlet ports and in which the electrode is submerged.
  • Such a device has: (a) a container having an opening, with this opening being affixed proximate an aperture that is placed in the housing, (b) an ultrasonic membrane which covers the aperture, (c) an ultrasonic, high power transducer mounted in the container and coupled to the membrane in such a manner so as to cause specified, ultrasonic vibrations in the membrane and throughout the liquid contained in the housing, and (d) a frequency modulated power source that drives the transducer.
  • this device projects 100 to 200 watts of acoustical energy over the electrodes immersed in a cell housing.
  • this device is powered such that the flux of energy supplied to the membrane is in the range of 4 to 25 watts per square inch of membrane surface area.
  • FIG. 1 illustrates the housing of the typical pool chlorinator cell.
  • FIG. 2 shows the chlorinator cell's mesh-type electrode assembly removed from the cell's housing (note: other cells may use solid plate or other geometrical designs for the electrode).
  • FIG. 3 illustrates typical housing and power supply for a pool chlorinator cell.
  • FIGS. 4A-4B illustrate a preferred embodiment for a protrusion to the standard pool chlorinator housing which accommodates the ultrasonic cleaning transducer of the present invention.
  • FIG. 5 illustrates the orientation of the transducer housings of the present invention in an embodiment which utilizes two transducers to generate desired insonification zones for better coverage of the electrode surfaces.
  • FIGS. 6A-6B show respective side and top views of a single transducer version of the present invention.
  • FIGS. 9A-9B show respective side and top views of a single transducer version of the present invention in which the electronics for the transducer have been included within the devices' container.
  • the ultrasonic generation membrane and transducers can be located on the bottom or sides of the cell housing with radial or axial orientations to the cell.
  • these ultrasonic membrane can be made of many materials, including stainless steel, titanium, plastic materials, or plastic coated and corrosion protected metals.
  • the typical pool chlorinator cell 2, which uses the trade name "Pool Thing," on which the present invention is applied is shown in FIGS. 1-3.
  • FIG. 1 shows the housing 4 of such a cell 2. This housing is seen to have water inlet 6 and outlet 8 ports in its lower surface and an end cap 10 that provides entry for an electrical connector 12 to mate with the cell's electrode 14 that is sealed within this housing.
  • FIG. 2 shows the cell's mesh-type electrode assembly 16 removed from the cell's housing 4 (note: other cells may use solid plate or other geometrical designs for the electrode).
  • FIG. 3 shows both the cell's housing 4 and the power supply 18 for the cell's electrode 14.
  • the housing 4 of this cell can be modified to include an ultrasonic cleaning device 20 that excellently performs the required cleaning task.
  • the cleaning and inhibition of the deposition is achieved by projecting high power ultrasound at the cell electrodes. This sound beam creates creeping acoustical stress waves along surface of the electrodes, thereby inhibiting the deposition of the minerals.
  • the ultrasonic waves creates the phenomena of localized cavitation near the electrode surface; this phenomena has proven to be essential in removing any accumulation of deposits.
  • the gas bubbles which are generated by such chlorination cells are observed to be dynamically excited, enlarged or collapsed by the sound, thereby providing further dynamical disturbances in the proximity of the electrode surface that contributes to removal of the accumulated mineral deposits.
  • This device can be designed to operate either continuously or intermittently for a cell that is filled with water or a cell that has water flowing through it. Thus, this device is suitable for automated operation to yield truly maintenance-free operation of such cells. Additionally, it involves no additional chemicals and does not require the disassembly of the cell 2.
  • FIGS. 4A-4B illustrate a preferred embodiment of a standard cell housing 4 that has been modified (i.e., by the introduction of an aperture 11 in the bottom of the housing) to accommodate a single protrusion or container 22 (i.e., the container has an opening 21 which mates with the housing's aperture 11) that houses the ultrasonic generation means of the present invention, i.e., a membrane 24 that is coupled to a piezoelectric or ultrasonic cleaning transducer 26.
  • FIGS. 5 illustrates the orientation of such transducers using an existing housing in an embodiment which utilizes two protrusions 22 and their accompanying transducers 26 and membranes 24 to generate a higher intensity, insonification zone that covers a larger volume of cell electrodes.
  • the present invention achieves its ultrasonic cleaning of the cell's electrode by integrally introducing its ultrasonic generation elements into the cell and powering them so as to achieve insonification of the cell's electrodes. For cells such as that shown in FIGS.
  • 1-3 which have cylindrical housings and are approximately 6 inches in diameter and 12 inches long, it has been found sufficient power to create the desired cleaning effect on their sealed electrode is provided by using generally 20 to 50 kHz signals at power levels of 50 to 300 watts, with preferred power levels being in the range of 100 to 200 watts per transducer, wherein a 3 - 5 inch diameter membrane is coupled to the transducer. This equates to an energy flux in the range of 4 to 25 watts per square inch of membrane surface area.
  • the frequency and power of the necessary insonification field has been found to be a function of: (a) the size of the housing, (b) the size of the enclosed electrode, and (c) the overall geometry and configuration of a specific chlorination cell.
  • the coupling membrane 24 it was found to be important to size the coupling membrane 24 according to the size of the cell 2 and its electrodes 14, and to locate a sufficient number of ultrasonic sources or transducers 22 so as to achieve the desired uniform electrode cleaning throughout the cell. Additionally, it is necessary to provide in the ultrasonic r.f. drive some center frequency modulation so as to remove the effect of standing waves that are noted to exist in the cell's housing. Further, shaping of the cell walls (geometrically and in thickness) were found to improve the direction and distribution of the ultrasonic energy in the cell for enhanced cleaning efficiency.
  • a chlorination cell 2 (approximately 12.5 inches in length and 6 inches in diameter) is modified to include a protrusion that encloses an ultrasonic transducer 26 and its coupled membranes 24. These are located at appropriate geometries so as to project ultrasound over the full volume of the cell's electrodes assembly. See FIGS. 6A-6B.
  • the ultrasonic transducer 26 is mounted beneath a membrane or dome (e.g., 0.04 inch thick 304 stainless steel) that is incorporated into the cell housing.
  • the membrane couples and radiates sound energy into the liquid flowing through the cell.
  • the high power ultrasonic transducer 26 which is schematically shown in FIG. 6A is impedance matched to the membrane and is housed in the r.f. shielded container 22 to eliminate EMF radiation to the surrounding environment.
  • the drive signal to the transducer is delivered via shielded cables from the electronic r.f. signal/power source.
  • the power source can be mounted either adjacent to the membrane or remote from the cell.
  • FIGS. 7A-7C illustrate the arrangement of a two transducer embodiment of the present invention into a cell 2 having a larger size housing 4.
  • This embodiment also includes sensors that are attached to the cell or interfaced to cell's electronics controller. These sensors' outputs are used to control the transducer's power supply. By sensing the presence of liquid in the cell and the on-off operation of the cell's electrodes, this signal is used to switch off the transducer's power supply when liquid is not in the cell or liquid is not flowing through the cell.
  • FIG. 8 A control box, as shown in FIG. 8, which as has programmable timers and power level controls is used to control the operation of the transducer.
  • These electrical and transduction components may be mounted separately or integral to the cell housing and can be of different designs with preferred configuration using modern solid state devices and can be packaged to support one or many ultrasonic transducer drives.
  • FIGS. 9A-9B show respective side and top views of a single transducer version of the present invention in which the electronics for the transducer have been included within the devices' container.

Abstract

A device (20) for removing mineral deposits from the electrode (14) of a pool chlorinator cell (2), which has a housing (4) with liquid inlet (6) and outlet (8) ports and in which the electrode is submerged, has: (a) a container (22) having an opening (21) with this opening being affixed proximate an aperture (11) that is placed in the housing, (b) an ultrasonic membrane (24) which covers the opening, (c) an ultrasonic transducer (26) mounted in the container and coupled to the membrane in such a manner so as to cause specified, ultrasonic vibrations in the membrane and throughout the liquid contained in the housing, and (d) a frequency modulated power source that drives the transducer. In a preferred embodiment, this device is powered such that the energy projected to the electrodes is in range of 100 to 200 watts and the flux of energy supplied to the membrane is in the range of 4 to 25 watts per square inch of membrane surface area.

Description

POOL CHLORLN-ATOR CELL ULTRASONIC CLEANER
CROSS-REFER ENCE TO RELATED APPLICATION
This application claims the benefit of U.S. Provisional Patent Application No. 60/508,082, filed October 2, 20O3 by B. Boro Djordjevic.
BACKGROUND OF THE INVENTION
1. FIELD OF THE INVENTION This invention generally relates to the maintenance and prevention of mineral deposit accumulations on electrodes which are submerged in the chemical baths of electrolytic cells. More particularly, this invention relates to an apparatus and process that uses ultrasonic cleaning to remove mineral deposits that can accumulate on the electrodes of pool chlorination cells. 2. DESCRIPTION OF THE RELATED ART The maintenance of swimming pools, especially in regard to the chemistry of the pool's water, can be a complex, time-consuming and expensive routine. For fresh- water pools, this usually involves, especially during the warmer season, checking the pool's water almost daily to determine and maintain its pH level and chlorine content. Unless these factors are carefully controlled, the growth of bacteria and algae in the pool will be excessive with the result that the pool water may pose a health hazard. In addition, the surfaces of the pool may become discolored and unsightly if the water's chemistry is not controlled. To maintain fresh-water pools, frequent addition of acid and chlorine, typically in the form of sodium hypochlorite, is required. These acid and chlorine addition steps can be expensive and time consuming for the average pool owner. For pools that use water having a slight salt content (i.e., much less than seawater, and only about half the content found in human tears), or salt-water pools, the maintenance of the water's chemistry can be a much easier task due to the development of various automated systems, especially the pool chlorinator cell or the electrolytic chlorination system. This system introduces into the pool's water circulation system an electrolysis or chlorinator cell that uses the water's salt (NaCl) to produce locally elevated concentrations near the cell's electrodes of chlorine (i.e., actually hypochlorite which is generated via local pole chemistry) which acts to kill any algae or bacterial in the water that flows through the chlorinator cell. While such systems are generally easy to operate, they can occasionally suffer from maintenance problems associated with mineral deposit accumulations on the cell's electrodes. Maintenance of such chlorinator cells usually involve the cell's periodic removal, disassemble and cleaning in an acid bath solution. Such cells must be regularly monitored and inspected for deposit accumulations on the electrodes. These maintenance problems can present a drawback to the greater use of such cells in the pool industry. Prior attempts to resolve this chlorinator cell maintenance problem have provided only limited successes. For example, means for cleaning pool chlorination cells are disclosed in U.S. Patent Nos. 6,391,167 and 4,088,550 and involve polarity changes to drive the cell's electrodes. However, this approach does not completely eliminate the deposition problem, and it mandates coating on all cell electrodes. Additionally, failure of cells maintained in this manner has reportedly resulted from erosion of the cell coating. Although ultrasonic cleaners have been used in a variety of cleaning applications (from cleaning jewelry and medical equipment to micro circuitry and spacecraft parts), they have yet to be effectively used to address the problems associated with the maintenance of submerged electrodes. Despite the prior art, there still exists a continuing need for improvements in the design of processes and apparatus to maintain submerged electrodes, including those found in pool chlorination cells.
3. OBJECTS AND ADVANTAGES There has been summarized above, rather broadly, the prior art that is related to the present invention in order that the context of the present invention may be better understood and appreciated. In this regard, it is instructive to also consider the objects and advantages of the present invention. It is an object of the present invention to provide an improved method of cleaning the mineral accumulated deposits on submerged electrodes, especially those used in pool chlorinator cells. It is another object of the present invention to provide for the in-situ, maintenance-free cleaning of pool chlorination cell electrodes; thus minimizing maintenance inspection and labor costs for pool chlorination systems. It is an object of the present invention to provide an improved method of preventing the mineral accumulation and deposits on submerged electrodes, especially those used in pool chlorinator cells. It is yet another object of the present invention to minimize the service and cell cleaning operations associated with the use of pool chlorination systems, regardless of the size and power of such systems. It is a further object of the present invention to provide a method and apparatus that cleans pool chlorination cell electrodes without the use of chemicals, such as acids, and without needing to disassemble the cell's housing. It is a still further object of the present invention to provide methodology for automatically maintaining and cleaning pool chlorinator cell electrodes, especially as it relates to preventing end removing the calcium carbonate that is commonly foπned on chlorinator cell electrode surfaces. These and other objects and advantages of the present invention will become readily apparent as the invention is better understood by reference to the accompanying summary, drawings and the detailed description that follows. SUMMARY OF THE INVENTION
Recognizing the need for the development of improved methods and apparatus for cleaning submerged electrodes, especially those found in pool chlorination cells, the present invention is generally directed to satisfying the needs set forth above and overcoming the disadvantages identified with prior art devices and methods. In accordance with the present invention, the foregoing need can be satisfied by providing a device for preventing the deposition of mineral deposits on and causing the removal of mineral deposits from the electrode of a pool chlorinator cell having a housing with liquid inlet and outlet ports and in which the electrode is submerged. Such a device has: (a) a container having an opening, with this opening being affixed proximate an aperture that is placed in the housing, (b) an ultrasonic membrane which covers the aperture, (c) an ultrasonic, high power transducer mounted in the container and coupled to the membrane in such a manner so as to cause specified, ultrasonic vibrations in the membrane and throughout the liquid contained in the housing, and (d) a frequency modulated power source that drives the transducer. In a first preferred embodiment, this device projects 100 to 200 watts of acoustical energy over the electrodes immersed in a cell housing. In a second preferred embodiment, this device is powered such that the flux of energy supplied to the membrane is in the range of 4 to 25 watts per square inch of membrane surface area. Thus, there has been summarized above, rather broadly, the present invention in order that the detailed description that follows may be better understood and appreciated. There are, of course, additional features of the invention that will be described hereinafter and which will form the subject matter of the claims to this invention. BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 illustrates the housing of the typical pool chlorinator cell. FIG. 2 shows the chlorinator cell's mesh-type electrode assembly removed from the cell's housing (note: other cells may use solid plate or other geometrical designs for the electrode). FIG. 3 illustrates typical housing and power supply for a pool chlorinator cell. FIGS. 4A-4B illustrate a preferred embodiment for a protrusion to the standard pool chlorinator housing which accommodates the ultrasonic cleaning transducer of the present invention. FIG. 5 illustrates the orientation of the transducer housings of the present invention in an embodiment which utilizes two transducers to generate desired insonification zones for better coverage of the electrode surfaces. FIGS. 6A-6B show respective side and top views of a single transducer version of the present invention. FIGS. 7A-7B show respective side and top views of a two transducer version of the present invention. FIG. 7C shows the mounting details for the transducer housing/cavity of a two transducer version of the present invention. FIG. 8 shows a system schematic for a single transducer version of the present invention including its controller for the transducer's drive system. FIGS. 9A-9B show respective side and top views of a single transducer version of the present invention in which the electronics for the transducer have been included within the devices' container.
DESCRIPTION OF THE PREFERRED EMBODIMENT
Before explaining at least one embodiment of the present invention in detail, it is to be understood that the invention is not limited in its application to the details of construction and to the arrangements of the components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments and of being practiced and carried out in various ways. For example, the preferred embodiments disclosed herein are directed to cleaning and removal of mineral deposits on pool chlorinator cells, but can be applied to other systems that use submerged electrodes which are prone to mineral deposit buildups. Also, it is to be understood that the phraseology and terminology employed herein are for the purpose of description and should not be regarded as limiting. Furthermore, it should be recognized that the geometry and location of the electrodes and cell shapes described herein can vary dependent on their applications, design freedoms, aesthetic preferences and location factors. For example, the ultrasonic generation membrane and transducers can be located on the bottom or sides of the cell housing with radial or axial orientations to the cell. Furthermore, these ultrasonic membrane can be made of many materials, including stainless steel, titanium, plastic materials, or plastic coated and corrosion protected metals. The typical pool chlorinator cell 2, which uses the trade name "Pool Thing," on which the present invention is applied is shown in FIGS. 1-3. FIG. 1 shows the housing 4 of such a cell 2. This housing is seen to have water inlet 6 and outlet 8 ports in its lower surface and an end cap 10 that provides entry for an electrical connector 12 to mate with the cell's electrode 14 that is sealed within this housing. FIG. 2 shows the cell's mesh-type electrode assembly 16 removed from the cell's housing 4 (note: other cells may use solid plate or other geometrical designs for the electrode). FIG. 3 shows both the cell's housing 4 and the power supply 18 for the cell's electrode 14. To prevent the attachment of and to cause the removal of mineral deposits that can accumulate on the electrodes of such cells, I have discovered that the housing 4 of this cell can be modified to include an ultrasonic cleaning device 20 that excellently performs the required cleaning task. The cleaning and inhibition of the deposition is achieved by projecting high power ultrasound at the cell electrodes. This sound beam creates creeping acoustical stress waves along surface of the electrodes, thereby inhibiting the deposition of the minerals. Furthermore, high intensity of the ultrasonic waves creates the phenomena of localized cavitation near the electrode surface; this phenomena has proven to be essential in removing any accumulation of deposits. In addition, the gas bubbles which are generated by such chlorination cells are observed to be dynamically excited, enlarged or collapsed by the sound, thereby providing further dynamical disturbances in the proximity of the electrode surface that contributes to removal of the accumulated mineral deposits. This device can be designed to operate either continuously or intermittently for a cell that is filled with water or a cell that has water flowing through it. Thus, this device is suitable for automated operation to yield truly maintenance-free operation of such cells. Additionally, it involves no additional chemicals and does not require the disassembly of the cell 2. The device 20 of the present invention has been found to be capable of multi- year, service-free operation. Furthermore, it has been designed to be easily integrated into the cell's present installation configuration and, consequently, can be easily retrofitted into existing chlorinator cell assemblies. FIGS. 4A-4B illustrate a preferred embodiment of a standard cell housing 4 that has been modified (i.e., by the introduction of an aperture 11 in the bottom of the housing) to accommodate a single protrusion or container 22 (i.e., the container has an opening 21 which mates with the housing's aperture 11) that houses the ultrasonic generation means of the present invention, i.e., a membrane 24 that is coupled to a piezoelectric or ultrasonic cleaning transducer 26. This same protrusion 22 also can contain the electrical circuits 28 that drive the transducer 26, or the necessary electrical signal can be supplied by appropriate electrical cables that connect to the electrical circuits which are remotely located. Meanwhile, FIGS. 5 illustrates the orientation of such transducers using an existing housing in an embodiment which utilizes two protrusions 22 and their accompanying transducers 26 and membranes 24 to generate a higher intensity, insonification zone that covers a larger volume of cell electrodes. The present invention achieves its ultrasonic cleaning of the cell's electrode by integrally introducing its ultrasonic generation elements into the cell and powering them so as to achieve insonification of the cell's electrodes. For cells such as that shown in FIGS. 1-3 which have cylindrical housings and are approximately 6 inches in diameter and 12 inches long, it has been found sufficient power to create the desired cleaning effect on their sealed electrode is provided by using generally 20 to 50 kHz signals at power levels of 50 to 300 watts, with preferred power levels being in the range of 100 to 200 watts per transducer, wherein a 3 - 5 inch diameter membrane is coupled to the transducer. This equates to an energy flux in the range of 4 to 25 watts per square inch of membrane surface area. The frequency and power of the necessary insonification field has been found to be a function of: (a) the size of the housing, (b) the size of the enclosed electrode, and (c) the overall geometry and configuration of a specific chlorination cell. In the development of the present invention, it was found to be important to size the coupling membrane 24 according to the size of the cell 2 and its electrodes 14, and to locate a sufficient number of ultrasonic sources or transducers 22 so as to achieve the desired uniform electrode cleaning throughout the cell. Additionally, it is necessary to provide in the ultrasonic r.f. drive some center frequency modulation so as to remove the effect of standing waves that are noted to exist in the cell's housing. Further, shaping of the cell walls (geometrically and in thickness) were found to improve the direction and distribution of the ultrasonic energy in the cell for enhanced cleaning efficiency. It was further found to be advisable to adapt and program the present invention's power source so as to provide continuous lower power insonification to inhibit depositions and, as needed, to intermittently introduce higher power levels for the cleaning and removal of stubborn mineral deposits. As examples of the manner by which the present invention may be constructed, there follows a description for constructing preferred embodiments of the present invention which is fitted to a specific pool chlorinator cells 2: (a) A chlorination cell 2 (approximately 12.5 inches in length and 6 inches in diameter) is modified to include a protrusion that encloses an ultrasonic transducer 26 and its coupled membranes 24. These are located at appropriate geometries so as to project ultrasound over the full volume of the cell's electrodes assembly. See FIGS. 6A-6B. The ultrasonic transducer 26 is mounted beneath a membrane or dome (e.g., 0.04 inch thick 304 stainless steel) that is incorporated into the cell housing. The membrane couples and radiates sound energy into the liquid flowing through the cell. The high power ultrasonic transducer 26 which is schematically shown in FIG. 6A is impedance matched to the membrane and is housed in the r.f. shielded container 22 to eliminate EMF radiation to the surrounding environment. The drive signal to the transducer is delivered via shielded cables from the electronic r.f. signal/power source. The power source can be mounted either adjacent to the membrane or remote from the cell. An electronic control assembly and power supply, which has a controlled frequency source and amplifiers, provides between 100 to 200 watts of electrical energy to the transducer. This acoustical energy is directed towards the electrodes via coupling membrane 24. (b) FIGS. 7A-7C illustrate the arrangement of a two transducer embodiment of the present invention into a cell 2 having a larger size housing 4. This embodiment also includes sensors that are attached to the cell or interfaced to cell's electronics controller. These sensors' outputs are used to control the transducer's power supply. By sensing the presence of liquid in the cell and the on-off operation of the cell's electrodes, this signal is used to switch off the transducer's power supply when liquid is not in the cell or liquid is not flowing through the cell. A control box, as shown in FIG. 8, which as has programmable timers and power level controls is used to control the operation of the transducer. These electrical and transduction components may be mounted separately or integral to the cell housing and can be of different designs with preferred configuration using modern solid state devices and can be packaged to support one or many ultrasonic transducer drives. (c) FIGS. 9A-9B show respective side and top views of a single transducer version of the present invention in which the electronics for the transducer have been included within the devices' container. With respect to the above description, it is to be realized that the optimum dimensional relationships for the parts of the invention, to include variations in size, materials, shape, form, function and manner of operation, assembly and use, are deemed readily apparent and obvious to one skilled in the art, and all equivalent relationships to those illustrated in the drawings and described in the specification are intended to be encompassed by the present invention. Thus, there are a large number of possible operational configurations and material selections available to achieve the electrode cleaning operation described herein. For example, a specific embodiment of the present invention can be altered by changing considerations of: manufacturing costs, esthetic appeal of the apparatus, cell electrode size requirements, water pumping requirements, etc. Therefore, the foregoing is considered as illustrative only of the principles of the present invention. Further, since numerous modifications and changes will readily occur to those skilled in the art, it is not desired to limit the invention to the exact construction and operation shown and described, and accordingly, all suitable modifications and equivalents may be resorted to, falling within the scope of the invention as hereinafter set forth in the claims.

Claims

CLAIMS I claim:
1. A device (20) for preventing the deposition of mineral deposits on or causing the removal of mineral deposits from the electrode (14) of a pool chlorinator cell (2), said cell having a housing (4) with liquid inlet (6) and outlet (8) ports and in which said electrode is submerged, said device comprising: a container (22) having an opening (21), wherein said cell housing having placed therein an aperture (11), wherein said container opening being configured to mate with said housing aperture and being affixed proximate said aperture, a membrane (24) which covers said opening, and an ultrasonic transducer (26) mounted in said container and coupled to said membrane (24) in such a manner so as to cause ultrasonic vibrations in said membrane.
2. The device (20) as recited in Claim 1, further comprising a frequency modulated power source that drives said transducer.
3. The device (20) as recited in Claim 2, wherein said transducer (26) configured so as to operate at power levels in the range of approximately 50 to 3O0 watts.
4. The device (20) as recited in Claim 3, wherein said membrane (24) configured to operate at energy flux levels in the range of 4 to 25 watts per square inch of membrane surface area.
5. The device (20) as recited in Claim 4 further comprising a sensor that senses the power to said electrode and uses said sensed power to control the operation of said transducer power supply.
6. A device for preventing the deposition of mineral deposits on or causing the removal of mineral deposits from an electrode which is submerged in the liquid contained by the enclosure of an electrolytic cell, said device comprising: a means for generating within said liquid an ultrasonic field having specified, controlled frequencies, a means for housing said ultrasonic field generating means, wherein said housing means having an opening that is affixed proximate an aperture that is placed in said enclosure, a means for supplying specified, frequency modulated power to said ultrasonic field generating means so as to enable the removal of said mineral deposits.
7. The device as recited in Claim 6 wherein said means of said device are configured so as to be applicable when said electrolytic cell is a pool chlorinator cell (2).
8. The device of Claim 7, wherein the flux of energy supplied to said ultrasonic field generating means is in the range of 4 to 25 watts per square inch of aperture surface area.
9. A method for preventing the deposition of mineral deposits on or causing the removal of mineral deposits from the electrode (14) of a pool chlorinator cell (2), said cell having a housing (4) with liquid inlet (6) and outlet (8) ports and in which said electrode is submerged, said method comprising the steps of: making an aperture (11) in said housing so as to expose said electrode, affixing proximate said aperture the opening (21) of a container (22) that is configured to be attached to said housing, covering said opening with an ultrasonic membrane, mounting in said container an ultrasonic transducer (26), coupling said transducer (26) to said membrane (24), powering said transducer so as to cause specified ultrasonic vibrations in said membrane and throughout said liquid in said housing.
10. The method as recited in Claim 9, wherein the power supplied to said transducer (26) is in the range of approximately 50 to 300 watts.
11. The method as recited in Claim 9, wherein the flux of energy supplied to said membrane (24) is in the range of 4 to 25 watts per square inch of membrane surface area.
12. The method as recited in Claim 9 further comprising the step of using a sensor to sense the power to said electrode and using said sensed power to control the powering of said transducer (26).
PCT/US2004/032716 2003-10-02 2004-10-04 Pool chlorinator cell ultrasonic cleaner WO2005033015A1 (en)

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