US20090166262A1 - Simultaneous metal, sulfur and nitrogen removal using supercritical water - Google Patents

Simultaneous metal, sulfur and nitrogen removal using supercritical water Download PDF

Info

Publication number
US20090166262A1
US20090166262A1 US11/966,852 US96685207A US2009166262A1 US 20090166262 A1 US20090166262 A1 US 20090166262A1 US 96685207 A US96685207 A US 96685207A US 2009166262 A1 US2009166262 A1 US 2009166262A1
Authority
US
United States
Prior art keywords
water
temperature
hydrocarbons
mixture
process according
Prior art date
Legal status (The legal status 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 status listed.)
Abandoned
Application number
US11/966,852
Inventor
Zunqing He
Lin Li
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Chevron USA Inc
Original Assignee
Chevron USA 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 Chevron USA Inc filed Critical Chevron USA Inc
Priority to US11/966,852 priority Critical patent/US20090166262A1/en
Assigned to CHEVRON U.S.A. INC. reassignment CHEVRON U.S.A. INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: HE, ZUNQING, LI, LIN
Priority to PCT/US2008/083913 priority patent/WO2009085436A1/en
Publication of US20090166262A1 publication Critical patent/US20090166262A1/en
Abandoned legal-status Critical Current

Links

Images

Classifications

    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10GCRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
    • C10G31/00Refining of hydrocarbon oils, in the absence of hydrogen, by methods not otherwise provided for
    • C10G31/08Refining of hydrocarbon oils, in the absence of hydrogen, by methods not otherwise provided for by treating with water
    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10LFUELS NOT OTHERWISE PROVIDED FOR; NATURAL GAS; SYNTHETIC NATURAL GAS OBTAINED BY PROCESSES NOT COVERED BY SUBCLASSES C10G, C10K; LIQUEFIED PETROLEUM GAS; ADDING MATERIALS TO FUELS OR FIRES TO REDUCE SMOKE OR UNDESIRABLE DEPOSITS OR TO FACILITATE SOOT REMOVAL; FIRELIGHTERS
    • C10L1/00Liquid carbonaceous fuels
    • C10L1/02Liquid carbonaceous fuels essentially based on components consisting of carbon, hydrogen, and oxygen only
    • C10L1/026Liquid carbonaceous fuels essentially based on components consisting of carbon, hydrogen, and oxygen only for compression ignition
    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10GCRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
    • C10G2300/00Aspects relating to hydrocarbon processing covered by groups C10G1/00 - C10G99/00
    • C10G2300/10Feedstock materials
    • C10G2300/1011Biomass
    • 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P30/00Technologies relating to oil refining and petrochemical industry
    • Y02P30/20Technologies relating to oil refining and petrochemical industry using bio-feedstock

Definitions

  • the present invention relates to a process for simultaneous removal of metals, sulfur and nitrogen from heavy oil using supercritical water.
  • Heavy oil typically contains high concentration of sulfur, metals and nitrogen. Such contaminants have very negative effects on the catalysts and equipment used in many processes for further refining to produce high value products.
  • Hydroprocessing is currently the process of choice to remove metal and sulfur from heavy oil. Hydrotreating process typically takes place in a trickle bed or fixed-bed reactor using expensive catalyst such as Mo and requires the use, of high pressure hydrogen which becomes more and more expensive. Hydrogen-addition processes such as hydrotreating or hydrocracking require significant investments in capital and infrastructure. Hydrogen-addition processes also have high operating costs, since hydrogen production costs are highly sensitive to natural gas prices. Some remote heavy oil reserves may not even have access to sufficient quantities of low-cost natural gas to support a hydrogen plant. These hydrogen-addition processes also generally require expensive catalysts and resource intensive catalyst handling techniques, including catalyst regeneration. Therefore there is a need for improved methods/processes for heavy oil treatment to remove sulfur and metal.
  • U.S. Pat. Nos. 4,594,141; 4,483,761; 4,557,820; and 4,559,127 relate to the upgrading of heavy hydrocarbons using supercritical water to reduce sulfur, nitrogen and metals in the products
  • the processes disclose use added olefin or halide components.
  • U.S. Pat. Nos. 3,948,754; 3,948,755 and 3,960,706 relate to a process using supercritical water for metal and sulfur removal without external supply of hydrogen using an externally supplied sulfur and nitrogen resistant catalyst.
  • U.S. Pat. No. 5,611,915 relates to a process to remove sulfur and nitrogen components using supercritical water using high pressure CO.
  • U.S. Patent Application 200310168381, U.S. Patent Application 2005/0040081 and U.S. Patent Application 200510072137 relate to a process and apparatus for treating heavy oil in such a way that vanadium contained in heavy oil is isolated during treatment with supercritical or subcritical water.
  • Oxidizing agent is used to achieve metals removal.
  • vanadium oxide scavenger is used to remove vanadium oxide formed from oxidation of vanadium by the oxidizing agent from reformed oils.
  • U.S. Pat. Nos. 3,989,618 and 4,005,005 relate to a process to upgrade heavy hydrocarbons using supercritical water without external supply of H2 or catalyst.
  • a process according to the present invention overcomes these disadvantages by using supercritical water to upgrade a heavy hydrocarbon feedstock into an upgraded hydrocarbon product or syncrude with highly desirable properties (low sulfur content, low metals content, lower density (higher API), lower viscosity, lower residuum content, etc.).
  • the process neither requires external supply of hydrogen nor must it use catalysts. Further, the process in the present Invention does not produce an appreciable coke by-product.
  • advantages that may be obtained by the practice of the present invention include a high liquid hydrocarbon yield; no need for externally-supplied hydrogen; no need to provide catalyst; significant increases in API gravity in the upgraded hydrocarbon product; significant viscosity reduction in the upgraded hydrocarbon product; and significant reduction in sulfur, metals, nitrogen, TAN, and MCR (micro-carbon residue) in the upgraded hydrocarbon product.
  • the present invention relates to a process for removing metals, sulfur and nitrogen in the upgrading of hydrocarbons comprising: mixing hydrocarbons containing metals, sulfur and nitrogen with a fluid comprising water that has been heated to a temperature higher than its critical temperature in a mixing zone to form a mixture; passing the mixture to a reaction zone; reacting the mixture in the reaction zone under supercritical water conditions in the absence of externally added hydrogen for a residence time sufficient to allow upgrading reactions including demetalation and desulfurization to occur while maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze desulfurization reactions; and recovering upgraded hydrocarbons having a lower concentration of metals, sulfur and nitrogen than the hydrocarbons containing metal and sulfur.
  • FIG. 1 is a process flow diagram of an embodiment of the present invention.
  • FIG. 2 is a process flow diagram of another embodiment of the present invention.
  • the present process is related to processes described in commonly assigned U.S. patent application Ser. Nos. 11/555,048; 11/555,130; 11/555,196; and 11/555,211, all of which were filed on Oct. 31, 2006 and which are incorporated by reference herein. These patent applications relate to various aspects of heavy oil upgrading technology using supercritical water. The present disclosure also relates to processes using supercritical water to upgrade hydrocarbons.
  • Water and hydrocarbons which contain metals, sulfur and nitrogen compounds, preferably heavy hydrocarbons are the two reactants employed in a process according to the present invention.
  • Any heavy hydrocarbon can be suitably upgraded by a process according to the present invention.
  • the preferred heavy hydrocarbons are heavy crude oil, heavy hydrocarbons extracted from tar sands, commonly called tar sand bitumen, such as Athabasca tar sand bitumen obtained from Canada, heavy petroleum crude oils such as Venezuelan Orinoco heavy oil belt crudes, Boscan heavy oil, heavy hydrocarbon fractions obtained from crude petroleum oils particularly heavy vacuum gas oils, vacuum residuum as well as petroleum tar, tar sands and coal tar.
  • Other examples of heavy hydrocarbon feedstocks which can be used are oil shale, shale oil, and asphaltenes.
  • Sources of water include but are not limited to drinking water, treated or untreated wastewater, river water, lake water, seawater produced water or the like.
  • the heavy hydrocarbon feed and a fluid comprising water that has been heated to a temperature higher than its critical temperature are contacted in a mixing zone prior to entering the reaction zone.
  • mixing may be accomplished in many ways and is preferably accomplished by a technique that does not employ mechanical moving parts. Such means of mixing may include, but are not limited to, use of static mixers, spray nozzles, sonic or ultrasonic agitation.
  • the oil and water should be heated and mixed so that the combined stream will reach supercritical water conditions in the reaction zone.
  • the heating sequence is designed so that the temperature and pressure of the hydrocarbons and water will reach reaction conditions in a controlled manner. This will avoid excessive local heating of oil, which will lead to solid formation and lower quality product.
  • the oil should only be heated up with sufficient water present and around the hydrocarbon molecules. This requirement can be met by mixing oil with water before heating up.
  • FIG. 1 shows an embodiment of a process according to the invention.
  • Water is heated up to supercritical conditions by Heater 1 , then the supercritical water mixed with heavy oil feed in the mixer.
  • the temperature of heavy oil feed can be kept in the range of about 100° C. to 200° C. to avoid thermal cracking but still high enough to maintain reasonable pressure drop.
  • Heater 2 is used to raise the temperature of the mixture stream to above the critical temperature of water.
  • the heavy oil is first partially heated up by water, then the water-oil mixture is heated to supercritical conditions by the second heater (Heater 2 ). Where after mixing with heavy oil, the temperature of the water-oil mixture is higher than the critical temperature of water, a second heater would not be used.
  • reaction zone After the reactants have been mixed, they are passed into a reaction zone in which they are allowed to react under temperature and pressure conditions of supercritical water, i.e. supercritical water conditions, in the absence of externally added hydrogen, for a residence time sufficient to allow upgrading reactions to occur.
  • the reaction is preferably allowed to occur in the absence of externally added catalysts or promoters.
  • Hydrogen as used herein in the phrase, “in the absence of externally added hydrogen” means hydrogen gas. This phrase is not intended to exclude all sources of hydrogen that are available as reactants. Other molecules such as saturated hydrocarbons may act as a hydrogen source during the reaction by donating hydrogen to other unsaturated hydrocarbons. In addition, H 2 may be formed in-situ during the reaction through steam reforming of hydrocarbons and water-gas-shift reaction.
  • the reaction zone preferably comprises a reactor, which is equipped with a means for collecting the reaction products (syncrude, water, and gases), and a section, preferably at the bottom, where any metals or solids (the “dreg stream”) may accumulate.
  • Supercritical water conditions include a temperature from 374° C. (the critical temperature of water) to 1000° C., preferably from 374° C. to 600° C. and most preferably from 374° C. to 400° C., a pressure from 3,205 (the critical pressure of water) to 10,000 psia, preferably from 3,205 psia to 7,200 psia and most preferably from 3,205 to 4,000 psia, an oil/water volume ratio from 1:0.1 to 1:10, preferably from 1:0.5 to 1:3 and most preferably about 1:1 to 1:2.
  • the reactants are allowed to react under these conditions for a sufficient time to allow upgrading reactions to occur.
  • the residence time will be selected to allow the upgrading reactions to occur selectively and to the fullest extent without having undesirable side reactions of coking or residue formation.
  • Reactor residence times may be from 1 minute to 6 hours, preferably from 8 minutes to 2 hours and most preferably from 10 to 40 minutes.
  • the present process includes the feature of maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze desulfurization reactions. Since the metals removed from heavy oil will serve as catalyst for sulfur removal, it is important to maintain metal concentrations inside the reactor. With reference to the embodiment shown in FIG. 1 , such requirement is met by using a CSTR (continuous stirred tank reactor) type reactor. For CSTR metals formed through metals removal reactions are well mixed with feed stream and catalyze sulfur removal reactions, and therefore high removal rate of both metal and sulfur can be achieved.
  • CSTR continuous stirred tank reactor
  • FIG. 2 shows another method of maintaining an effective amount of metal in the reaction zone.
  • part of dreg stream which contains high concentration of metals is recycled back to maintain adequate metal concentration in the reactor.
  • the metal concentration inside the reactor can be controlled by adjusting recycle ratio.
  • Such recycle strategy can also be used to control metal concentration when a CSTR is used.
  • the dreg stream may either be withdrawn from anywhere it forms, for example from the reactor or from a high pressure separator shown in FIG. 2 .
  • a single phase reaction product is withdrawn from the reaction zone, cooled, and separated into gas, effluent water, and upgraded hydrocarbon phases.
  • This separation is preferably done by cooling the stream and using one or more two-phase separators, three-phase separators, or other gas-oil-water separation device known in the art.
  • any method of separation can be used in accordance with the invention.
  • composition of gaseous product obtained by treatment of the heavy hydrocarbons in accordance with the process of the present invention will depend on feed properties and typically comprises light hydrocarbons, water vapor, acid gas (CO 2 and H 2 S), methane and hydrogen.
  • the effluent water may be used, reused or discarded. It may be recycled to e.g. the feed water tank, the feed water treatment system or to the reaction zone.
  • the upgraded hydrocarbon product which is sometimes referred to as “syncrude” herein may be upgraded further or processed into other hydrocarbon products using methods that are known in the hydrocarbon processing art.
  • the process of the present invention may be carried out either as a continuous or semi-continuous process or a batch process or as a continuous process.
  • the entire system operates with a feed stream of oil and a separate feed stream of water and reaches a steady state; whereby all the flow rates, temperatures, pressures, and composition of the inlet, outlet, and recycle streams do not vary appreciably with time.
  • oil feed will be heated up very quickly by supercritical water, and a preferred means for achieving simultaneous removal of metals, sulfur and nitrogen is using a reactor with backmixing behavior or to recycle some of the reactor bottoms (dreg stream) so that the metals removed from the feed oil will serve as catalyst for sulfur removal reactions.
  • the exact pathway may depend on the reactor operating conditions (temperature, pressure, O/W volume ratio), reactor design (mode of contact/mixing, sequence of heating), and the hydrocarbon feedstock.
  • the reactor was immersed in a sand bath at reaction temperature so the temperature inside the reactor was quickly raised to ⁇ 400° C., typically in 3 to 5 minutes.
  • the reaction time was 30 minutes, and after reaction the reactor was quickly cooled down.
  • the upgraded oil product and water were then recovered from the bomb reactor.
  • the properties of the heavy crude feed were as follows: 12.8 API gravity at 60/60; 1329 CST viscosity @40° C.; 13.04 wt % MCRT; 3.54 wt % sulfur; 0.56 wt % nitrogen; 3.05 mg KOH/gm acid number; 1.41 wt % water; 371 ppm Vanadium; and 86 ppm Nickel.
  • the following procedure was performed using a continuous system.
  • the feed oil was heated to 130° C. before entering a mixer.
  • the heated crude was injected into a stream of supercritical water at temperature of 400° C.
  • the water to oil ratio (volume at room temperature) was 3:1.
  • the oil-supercritical water mixture was then injected into a reactor at temperature of 400° C. and pressure of 3400 psig.
  • the upgraded product which formed a homogeneous phase with supercritical water, was withdrawn from the top of the reactor and send to high pressure separator which was operated at the same pressure but lower temperature to achieve oil-water separation.
  • the dreg stream was removed from reactor bottom.
  • Example 2 The properties of the feed crude in Example 2 were as follows: 8 API gravity at 60/60; 65689 CST viscosity @40° C.;. 15.7 wt % MCRT; 4.17 wt % sulfur; 0.68 wt % nitrogen; 5.8 mg KOH/gm acid number; 435 ppm Vanadium; and 104 ppm Nickel.
  • Example 2 The procedure of Example 2 was repeated except that the properties of the feed crude were as follows: 8 API gravity at 60/60; 20,400 CST viscosity @40° C.; 13 wt % MCRT; 5 wt % sulfur; 0.48 wt % nitrogen; 3.8 mg KOH/gm acid number; 215 ppm Vanadium; and 80 ppm Nickel.

Abstract

A process for removing metals, sulfur and nitrogen in the upgrading of hydrocarbons comprising: mixing hydrocarbons containing metals, sulfur and nitrogen with a fluid comprising water that has been heated to a temperature higher than its critical temperature in a mixing zone to form a mixture; passing the mixture to a reaction zone; reacting the mixture in the reaction zone under supercritical water conditions in the absence of externally added hydrogen for a residence time sufficient to allow upgrading reactions to occur while maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze the upgrading reactions; and recovering upgraded hydrocarbons having a lower concentration of metals, sulfur and nitrogen than the hydrocarbons before reaction is disclosed.

Description

    FIELD OF THE INVENTION
  • The present invention relates to a process for simultaneous removal of metals, sulfur and nitrogen from heavy oil using supercritical water.
  • BACKGROUND OF THE INVENTION
  • Heavy oil typically contains high concentration of sulfur, metals and nitrogen. Such contaminants have very negative effects on the catalysts and equipment used in many processes for further refining to produce high value products. Hydroprocessing is currently the process of choice to remove metal and sulfur from heavy oil. Hydrotreating process typically takes place in a trickle bed or fixed-bed reactor using expensive catalyst such as Mo and requires the use, of high pressure hydrogen which becomes more and more expensive. Hydrogen-addition processes such as hydrotreating or hydrocracking require significant investments in capital and infrastructure. Hydrogen-addition processes also have high operating costs, since hydrogen production costs are highly sensitive to natural gas prices. Some remote heavy oil reserves may not even have access to sufficient quantities of low-cost natural gas to support a hydrogen plant. These hydrogen-addition processes also generally require expensive catalysts and resource intensive catalyst handling techniques, including catalyst regeneration. Therefore there is a need for improved methods/processes for heavy oil treatment to remove sulfur and metal.
  • One alternative to hydrotreating of heavy oil to remove sulfur and metals is to use supercritical water. However, previous processes use either catalyst or processing gas (reducing or oxidizing gas) or both to achieve simultaneous removal of sulfur and metal. Without externally supplied catalyst or hydrogen, the contaminate removal rate was not satisfactory.
  • U.S. Pat. Nos. 4,594,141; 4,483,761; 4,557,820; and 4,559,127 relate to the upgrading of heavy hydrocarbons using supercritical water to reduce sulfur, nitrogen and metals in the products The processes disclose use added olefin or halide components.
  • U.S. Pat. Nos. 3,948,754; 3,948,755 and 3,960,706 relate to a process using supercritical water for metal and sulfur removal without external supply of hydrogen using an externally supplied sulfur and nitrogen resistant catalyst.
  • U.S. Pat. No. 5,611,915 relates to a process to remove sulfur and nitrogen components using supercritical water using high pressure CO.
  • U.S. Patent Application 200310168381, U.S. Patent Application 2005/0040081 and U.S. Patent Application 200510072137 relate to a process and apparatus for treating heavy oil in such a way that vanadium contained in heavy oil is isolated during treatment with supercritical or subcritical water. Oxidizing agent is used to achieve metals removal. In addition, vanadium oxide scavenger is used to remove vanadium oxide formed from oxidation of vanadium by the oxidizing agent from reformed oils.
  • U.S. Pat. Nos. 3,989,618 and 4,005,005 relate to a process to upgrade heavy hydrocarbons using supercritical water without external supply of H2 or catalyst.
  • U.S. Pat. No. 4,446,012 relates to a process of treating heavy oil to removes metals and sulfur using sub-critical water (T=380 to 480 C and P=725 to 2175 psi) in the absence of hydrogen and catalyst.
  • A process according to the present invention overcomes these disadvantages by using supercritical water to upgrade a heavy hydrocarbon feedstock into an upgraded hydrocarbon product or syncrude with highly desirable properties (low sulfur content, low metals content, lower density (higher API), lower viscosity, lower residuum content, etc.). The process neither requires external supply of hydrogen nor must it use catalysts. Further, the process in the present Invention does not produce an appreciable coke by-product.
  • In comparison with the traditional processes for syncrude production, advantages that may be obtained by the practice of the present invention include a high liquid hydrocarbon yield; no need for externally-supplied hydrogen; no need to provide catalyst; significant increases in API gravity in the upgraded hydrocarbon product; significant viscosity reduction in the upgraded hydrocarbon product; and significant reduction in sulfur, metals, nitrogen, TAN, and MCR (micro-carbon residue) in the upgraded hydrocarbon product.
  • SUMMARY OF THE INVENTION
  • The present invention relates to a process for removing metals, sulfur and nitrogen in the upgrading of hydrocarbons comprising: mixing hydrocarbons containing metals, sulfur and nitrogen with a fluid comprising water that has been heated to a temperature higher than its critical temperature in a mixing zone to form a mixture; passing the mixture to a reaction zone; reacting the mixture in the reaction zone under supercritical water conditions in the absence of externally added hydrogen for a residence time sufficient to allow upgrading reactions including demetalation and desulfurization to occur while maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze desulfurization reactions; and recovering upgraded hydrocarbons having a lower concentration of metals, sulfur and nitrogen than the hydrocarbons containing metal and sulfur.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a process flow diagram of an embodiment of the present invention.
  • FIG. 2 is a process flow diagram of another embodiment of the present invention.
  • DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • The present process is related to processes described in commonly assigned U.S. patent application Ser. Nos. 11/555,048; 11/555,130; 11/555,196; and 11/555,211, all of which were filed on Oct. 31, 2006 and which are incorporated by reference herein. These patent applications relate to various aspects of heavy oil upgrading technology using supercritical water. The present disclosure also relates to processes using supercritical water to upgrade hydrocarbons.
  • Reactants
  • Water and hydrocarbons which contain metals, sulfur and nitrogen compounds, preferably heavy hydrocarbons are the two reactants employed in a process according to the present invention.
  • Any heavy hydrocarbon can be suitably upgraded by a process according to the present invention. Preferred are heavy hydrocarbons having an API gravity of less than 20°. Among the preferred heavy hydrocarbons are heavy crude oil, heavy hydrocarbons extracted from tar sands, commonly called tar sand bitumen, such as Athabasca tar sand bitumen obtained from Canada, heavy petroleum crude oils such as Venezuelan Orinoco heavy oil belt crudes, Boscan heavy oil, heavy hydrocarbon fractions obtained from crude petroleum oils particularly heavy vacuum gas oils, vacuum residuum as well as petroleum tar, tar sands and coal tar. Other examples of heavy hydrocarbon feedstocks which can be used are oil shale, shale oil, and asphaltenes.
  • Water
  • Any source of water may be used in the fluid comprising water in practicing the present invention. Sources of water include but are not limited to drinking water, treated or untreated wastewater, river water, lake water, seawater produced water or the like.
  • Mixing
  • In accordance with the invention, the heavy hydrocarbon feed and a fluid comprising water that has been heated to a temperature higher than its critical temperature are contacted in a mixing zone prior to entering the reaction zone. In accordance with the invention, mixing may be accomplished in many ways and is preferably accomplished by a technique that does not employ mechanical moving parts. Such means of mixing may include, but are not limited to, use of static mixers, spray nozzles, sonic or ultrasonic agitation. The oil and water should be heated and mixed so that the combined stream will reach supercritical water conditions in the reaction zone.
  • It was found that by avoiding excessive heating of the feed oil, the formation of byproduct such as solid residues is reduced significantly. In one embodiment, the heating sequence is designed so that the temperature and pressure of the hydrocarbons and water will reach reaction conditions in a controlled manner. This will avoid excessive local heating of oil, which will lead to solid formation and lower quality product. In order to achieve better performance, the oil should only be heated up with sufficient water present and around the hydrocarbon molecules. This requirement can be met by mixing oil with water before heating up.
  • FIG. 1 shows an embodiment of a process according to the invention. Water is heated up to supercritical conditions by Heater 1, then the supercritical water mixed with heavy oil feed in the mixer. The temperature of heavy oil feed can be kept in the range of about 100° C. to 200° C. to avoid thermal cracking but still high enough to maintain reasonable pressure drop. In an embodiment in which after mixing with heavy oil, the temperature of the water-oil mixture would be lower than critical temperature of water, Heater 2 is used to raise the temperature of the mixture stream to above the critical temperature of water. In this embodiment, the heavy oil is first partially heated up by water, then the water-oil mixture is heated to supercritical conditions by the second heater (Heater 2). Where after mixing with heavy oil, the temperature of the water-oil mixture is higher than the critical temperature of water, a second heater would not be used.
  • Other methods of mixing and heating sequences based on the above teachings may be used to accomplish these objectives as will be recognized by those skilled in the art.
  • Reaction Conditions
  • After the reactants have been mixed, they are passed into a reaction zone in which they are allowed to react under temperature and pressure conditions of supercritical water, i.e. supercritical water conditions, in the absence of externally added hydrogen, for a residence time sufficient to allow upgrading reactions to occur. The reaction is preferably allowed to occur in the absence of externally added catalysts or promoters.
  • “Hydrogen” as used herein in the phrase, “in the absence of externally added hydrogen” means hydrogen gas. This phrase is not intended to exclude all sources of hydrogen that are available as reactants. Other molecules such as saturated hydrocarbons may act as a hydrogen source during the reaction by donating hydrogen to other unsaturated hydrocarbons. In addition, H2 may be formed in-situ during the reaction through steam reforming of hydrocarbons and water-gas-shift reaction.
  • The reaction zone preferably comprises a reactor, which is equipped with a means for collecting the reaction products (syncrude, water, and gases), and a section, preferably at the bottom, where any metals or solids (the “dreg stream”) may accumulate.
  • Supercritical water conditions include a temperature from 374° C. (the critical temperature of water) to 1000° C., preferably from 374° C. to 600° C. and most preferably from 374° C. to 400° C., a pressure from 3,205 (the critical pressure of water) to 10,000 psia, preferably from 3,205 psia to 7,200 psia and most preferably from 3,205 to 4,000 psia, an oil/water volume ratio from 1:0.1 to 1:10, preferably from 1:0.5 to 1:3 and most preferably about 1:1 to 1:2.
  • The reactants are allowed to react under these conditions for a sufficient time to allow upgrading reactions to occur. Preferably, the residence time will be selected to allow the upgrading reactions to occur selectively and to the fullest extent without having undesirable side reactions of coking or residue formation. Reactor residence times may be from 1 minute to 6 hours, preferably from 8 minutes to 2 hours and most preferably from 10 to 40 minutes.
  • The present process includes the feature of maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze desulfurization reactions. Since the metals removed from heavy oil will serve as catalyst for sulfur removal, it is important to maintain metal concentrations inside the reactor. With reference to the embodiment shown in FIG. 1, such requirement is met by using a CSTR (continuous stirred tank reactor) type reactor. For CSTR metals formed through metals removal reactions are well mixed with feed stream and catalyze sulfur removal reactions, and therefore high removal rate of both metal and sulfur can be achieved.
  • FIG. 2 shows another method of maintaining an effective amount of metal in the reaction zone. In this embodiment part of dreg stream which contains high concentration of metals is recycled back to maintain adequate metal concentration in the reactor. The metal concentration inside the reactor can be controlled by adjusting recycle ratio. Such recycle strategy can also be used to control metal concentration when a CSTR is used. The dreg stream may either be withdrawn from anywhere it forms, for example from the reactor or from a high pressure separator shown in FIG. 2.
  • Reaction Product Separation
  • After the reaction has progressed sufficiently, a single phase reaction product is withdrawn from the reaction zone, cooled, and separated into gas, effluent water, and upgraded hydrocarbon phases. This separation is preferably done by cooling the stream and using one or more two-phase separators, three-phase separators, or other gas-oil-water separation device known in the art. However, any method of separation can be used in accordance with the invention.
  • The composition of gaseous product obtained by treatment of the heavy hydrocarbons in accordance with the process of the present invention will depend on feed properties and typically comprises light hydrocarbons, water vapor, acid gas (CO2 and H2S), methane and hydrogen. The effluent water may be used, reused or discarded. It may be recycled to e.g. the feed water tank, the feed water treatment system or to the reaction zone.
  • The upgraded hydrocarbon product, which is sometimes referred to as “syncrude” herein may be upgraded further or processed into other hydrocarbon products using methods that are known in the hydrocarbon processing art.
  • The process of the present invention may be carried out either as a continuous or semi-continuous process or a batch process or as a continuous process. In the continuous process the entire system operates with a feed stream of oil and a separate feed stream of water and reaches a steady state; whereby all the flow rates, temperatures, pressures, and composition of the inlet, outlet, and recycle streams do not vary appreciably with time. For continuous operations such as those shown in FIG. 1 and FIG. 2, oil feed will be heated up very quickly by supercritical water, and a preferred means for achieving simultaneous removal of metals, sulfur and nitrogen is using a reactor with backmixing behavior or to recycle some of the reactor bottoms (dreg stream) so that the metals removed from the feed oil will serve as catalyst for sulfur removal reactions.
  • While not being bound to any theory of operation, it is believed that a number of upgrading reactions are occurring simultaneously at the supercritical water conditions used in the present process. In a preferred embodiment of the invention the major chemical/upgrading reactions are believed to be:
  • Thermal Cracking: CxHy→lighter hydrocarbons
  • Steam Reforming: CxHy+2xH2O=xCO2+(2x+y/2)H2
  • Water-Gas-Shift: CO+H2O=CO2+H2
  • Demetalization: CxHyNiw+H2O/H2→NiO/Ni(OH)2+lighter hydrocarbons
  • Desulfurization: CxHySz+H2O/H2=H2S+lighter hydrocarbons
  • The exact pathway may depend on the reactor operating conditions (temperature, pressure, O/W volume ratio), reactor design (mode of contact/mixing, sequence of heating), and the hydrocarbon feedstock.
  • The following Examples are illustrative of the present invention, but are not intended to limit the invention in any way beyond what is contained in the claims which follow.
  • EXAMPLE 1 Experimental Process Description
  • A bomb reactor was loaded with a water and a heavy oil feed with API=12.8, which was a heavy crude oil which was diluted with a diluent hydrocarbon at a ratio of 5:1 (20 vol % of diluent). The reactor was immersed in a sand bath at reaction temperature so the temperature inside the reactor was quickly raised to ˜400° C., typically in 3 to 5 minutes. The reaction time was 30 minutes, and after reaction the reactor was quickly cooled down. The upgraded oil product and water were then recovered from the bomb reactor.
  • The properties of the heavy crude feed were as follows: 12.8 API gravity at 60/60; 1329 CST viscosity @40° C.; 13.04 wt % MCRT; 3.54 wt % sulfur; 0.56 wt % nitrogen; 3.05 mg KOH/gm acid number; 1.41 wt % water; 371 ppm Vanadium; and 86 ppm Nickel.
  • After the super critical water treatment upgraded product (syncrude) had the following properties: 19.2 API gravity at 60/60; 3.15 wt % MCRT; 0.54 wt % sulfur; 0.21 wt % nitrogen; 5.16 ppm Vanadium; and 1.09 ppm Nickel. Substantial reductions in metals and sulfur were observed, with simultaneous increase in the API gravity and a significant decrease in the viscosity of the original crude oil feedstock.
  • EXAMPLE 2
  • The following procedure was performed using a continuous system. The feed oil was heated to 130° C. before entering a mixer. The heated crude was injected into a stream of supercritical water at temperature of 400° C. The water to oil ratio (volume at room temperature) was 3:1. The oil-supercritical water mixture was then injected into a reactor at temperature of 400° C. and pressure of 3400 psig. The upgraded product, which formed a homogeneous phase with supercritical water, was withdrawn from the top of the reactor and send to high pressure separator which was operated at the same pressure but lower temperature to achieve oil-water separation. The dreg stream was removed from reactor bottom.
  • The properties of the feed crude in Example 2 were as follows: 8 API gravity at 60/60; 65689 CST viscosity @40° C.;. 15.7 wt % MCRT; 4.17 wt % sulfur; 0.68 wt % nitrogen; 5.8 mg KOH/gm acid number; 435 ppm Vanadium; and 104 ppm Nickel.
  • After the super critical water treatment upgraded product (syncrude) had the following properties: 20.5 API gravity at 60/60; 10.9 CST viscosity @400° C., 2.2 wt % MCRT; 3.17 wt % sulfur; 0.29 wt % nitrogen; 40.9 ppm Vanadium; and 5.9 ppm Nickel.
  • EXAMPLE 3
  • The procedure of Example 2 was repeated except that the properties of the feed crude were as follows: 8 API gravity at 60/60; 20,400 CST viscosity @40° C.; 13 wt % MCRT; 5 wt % sulfur; 0.48 wt % nitrogen; 3.8 mg KOH/gm acid number; 215 ppm Vanadium; and 80 ppm Nickel.
  • After the super critical water treatment upgraded product (syncrude) had the following properties: 18 API gravity at 60/60; 21 CST viscosity @40° C. 3 wt % MCRT; 4 wt % sulfur; 0.27 wt % nitrogen; 41 ppm Vanadium; and 8 ppm Nickel.
  • For Examples 2 and 3, substantial reductions in metals, nitrogen and sulfur were observed, with simultaneous increase in the API gravity and a significant decrease in the viscosity of the original crude oil feedstock.
  • There are numerous variations on the present invention which are possible in light of the teachings,and supporting examples described herein. It is therefore understood that within the scope of the following claims, the invention may be practiced otherwise than as specifically described or exemplified herein.

Claims (20)

1. A process for removing metals, sulfur and nitrogen in the upgrading of hydrocarbons comprising:
(a) mixing hydrocarbons containing metals, sulfur and nitrogen with a fluid comprising water that has been heated to a temperature higher than its critical temperature in a mixing zone to form a mixture;
(b) passing the mixture to a reaction zone;
(c) reacting the mixture in the reaction zone under supercritical water conditions in the absence of externally added hydrogen for a residence time sufficient to allow upgrading reactions to occur while maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze the upgrading reactions; and
(d) recovering upgraded hydrocarbons having a lower concentration of metals, sulfur and nitrogen than the hydrocarbons of step (a).
2. A process according to claim 1, wherein the hydrocarbons are heavy hydrocarbons selected from the group consisting of whole heavy petroleum crude oil, tar sand bitumen, heavy hydrocarbon fractions obtained from crude petroleum oils, heavy vacuum gas oils, vacuum residuum, petroleum tar, coal tar and their mixtures.
3. A process according to claim 1, wherein the fluid comprising water enters the mixing zone at a temperature sufficiently higher than the critical temperature of water so as to cause the resulting mixture to have a temperature higher than the critical temperature of water.
4. A process according to claim 3, wherein the temperature of the fluid comprising water is from 400° C. to 600° C.
5. A process according to claim 1, wherein the hydrocarbons in step (a) are at a temperature of from 100° C. to 200° C.
6. A process according to claim 1, wherein the supercritical water conditions include a temperature from 374° C. to 1000° C., a pressure from 3,205 psia to 10,000 psia an oil/water volume ratio from 1:0.1 to 1:5 and where the residence time is from 1 minute to 6 hours.
7. A process according to claim 1, wherein the supercritical water conditions include a temperature from 374° C. to 600° C., a pressure from 3,205 psia to 7,200 psia, an oil/water volume ratio from 1:0.5 to 1:3 and where the residence time is from 8 minutes to 2 hours.
8. A process according to claim 1, wherein the supercritical water conditions include a temperature from 374° C. to 400° C. a pressure from 3,205 psia to 4,000 psia, an oil/water volume ratio from 1:1 to 1:2 and where the residence time is from 10 to 40 minutes.
9. A process according to claim 1, wherein the mixture in the reaction zone is reacted in the absence of any externally supplied catalyst or promoter.
10. A process according to claim 1, further comprising the step of heating the mixture formed in step (a) to a temperature higher than the supercritical temperature of water before passing the mixture to the reaction zone.
11. A process for removing metals and sulfur in the upgrading of hydrocarbons comprising:
(a) mixing hydrocarbons containing metals and sulfur with a fluid comprising water having a temperature higher than the critical temperature of water in a mixing zone to form a mixture having a temperature higher than the critical temperature of water;
(b) passing the mixture to a reaction zone;
(c) reacting the mixture in the reaction zone under supercritical water conditions in the absence of externally added hydrogen for a residence time sufficient to allow upgrading reactions including demetalation and desulfurization to occur while maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze desulfurization reactions; and
(d) recovering upgraded hydrocarbons having a lower concentration of metals and sulfur than the hydrocarbons of step (a)
12. A process according to claim 11, wherein the hydrocarbons are heavy hydrocarbons selected from the group consisting of whole heavy petroleum crude oil, tar sand bitumen, heavy hydrocarbon fractions obtained from crude petroleum oils, heavy vacuum gas oils, vacuum residuum, petroleum tar, coal tar and their mixtures
13. A process according to claim 11, wherein the fluid comprising water enters the mixing zone at a temperature sufficiently higher than the critical temperature of water so as to cause the resulting mixture to have a temperature higher than the critical temperature of water.
14. A process according to claim 13, wherein the temperature of the fluid comprising water is from 400° C. to 600° C.
15. A process according to claim 11, wherein the heavy hydrocarbons in step (a) are at a temperature of from 100° C. to 200° C.
16. A process according to claim 10, wherein the supercritical water conditions include a temperature from 374° C. to 1000° C., a pressure from 3,205 psia to 10,000 psia an oil/water volume ratio from 1:0.1 to 1:5 and where the residence time is from 1 minute to 6 hours.
17. A process according to claim 10, wherein the supercritical water conditions include a temperature from 374° C. to 600° C., a pressure from 3,205 psia to 7,200 psia, an oil/water volume ratio from 1:0.5 to 1:3 and where the residence time is from 8 minutes to 2 hours.
18. A process according to claim 10, wherein the supercritical water conditions include a temperature from 374° C. to 400° C., a pressure from 3,205 psia to 4,000 psia, an oil/water volume ratio from 1:1 to 1:2 and where the residence time is from 10 to 40 minutes.
19. A process according to claim 10, further comprising the step of heating the mixture formed in step (a) to a temperature higher than the critical temperature of water before passing the mixture to the reaction zone.
20. A process for removing metals and sulfur in the upgrading of hydrocarbons comprising:
(a) mixing hydrocarbons containing metals and sulfur with a fluid comprising water that has been heated to a temperature higher than its critical temperature in a mixing zone to form a mixture;
(b) passing the mixture to a reaction zone;
(c) reacting the mixture in the reaction zone under supercritical water conditions in the absence of externally added hydrogen for a residence time sufficient to allow upgrading reactions including demetalation and desulfurization to occur while maintaining an effective amount of metals, derived from the hydrocarbon undergoing upgrading, in the reaction zone to catalyze desulfurization reactions;
(d) separating a dreg stream containing metals from the reaction product;
(e) passing at least a portion of the dreg stream to the reaction zone; and
(g) recovering upgraded hydrocarbons having a lower concentration of metals and sulfur than the hydrocarbons of step (a).
US11/966,852 2007-12-28 2007-12-28 Simultaneous metal, sulfur and nitrogen removal using supercritical water Abandoned US20090166262A1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
US11/966,852 US20090166262A1 (en) 2007-12-28 2007-12-28 Simultaneous metal, sulfur and nitrogen removal using supercritical water
PCT/US2008/083913 WO2009085436A1 (en) 2007-12-28 2008-11-18 Simultaneous metal, sulfur and nitrogen removal using supercritical water

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US11/966,852 US20090166262A1 (en) 2007-12-28 2007-12-28 Simultaneous metal, sulfur and nitrogen removal using supercritical water

Publications (1)

Publication Number Publication Date
US20090166262A1 true US20090166262A1 (en) 2009-07-02

Family

ID=40796818

Family Applications (1)

Application Number Title Priority Date Filing Date
US11/966,852 Abandoned US20090166262A1 (en) 2007-12-28 2007-12-28 Simultaneous metal, sulfur and nitrogen removal using supercritical water

Country Status (2)

Country Link
US (1) US20090166262A1 (en)
WO (1) WO2009085436A1 (en)

Cited By (24)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110003901A1 (en) * 2008-12-30 2011-01-06 Chevron U.S.A. Inc. Ft water treating and recovery
WO2012099778A1 (en) * 2011-01-19 2012-07-26 Saudi Arabian Company Process including supercritical water treatment and sulfur adsorption of heavy hydrocarbon feedstocks
WO2013066852A1 (en) * 2011-10-31 2013-05-10 Saudi Arabian Oil Company Supercritical water process to upgrade petroleum
CN103642519A (en) * 2013-12-27 2014-03-19 成都博晟能源科技有限公司 Method for low-pressure demetallization and dechlorination of coal tar
WO2016123198A1 (en) 2015-01-28 2016-08-04 Applied Research Associates, Inc. Hydrothermal cleanup process
US20170073594A1 (en) * 2014-03-05 2017-03-16 The Chugoku Electric Power Co., Inc. Gasification system
US9914885B2 (en) 2013-03-05 2018-03-13 Saudi Arabian Oil Company Process to upgrade and desulfurize crude oil by supercritical water
US9920258B2 (en) 2015-12-15 2018-03-20 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US9926497B2 (en) 2015-10-16 2018-03-27 Saudi Arabian Oil Company Method to remove metals from petroleum
US10011790B2 (en) 2015-12-15 2018-07-03 Saudi Arabian Oil Company Supercritical water processes for upgrading a petroleum-based composition while decreasing plugging
US10066176B2 (en) 2015-12-15 2018-09-04 Saudi Arabian Oil Company Supercritical water upgrading process to produce high grade coke
US10066172B2 (en) 2015-12-15 2018-09-04 Saudi Arabian Oil Company Supercritical water upgrading process to produce paraffinic stream from heavy oil
WO2018170040A1 (en) * 2017-03-14 2018-09-20 Saudi Arabian Oil Company Integrated supercritical water and steam cracking process
US10106748B2 (en) 2017-01-03 2018-10-23 Saudi Arabian Oil Company Method to remove sulfur and metals from petroleum
US10113118B2 (en) 2013-12-21 2018-10-30 Steeper Energy Aps Process and apparatus for producing hydrocarbon
US10526552B1 (en) 2018-10-12 2020-01-07 Saudi Arabian Oil Company Upgrading of heavy oil for steam cracking process
US10577546B2 (en) 2017-01-04 2020-03-03 Saudi Arabian Oil Company Systems and processes for deasphalting oil
US10752847B2 (en) 2017-03-08 2020-08-25 Saudi Arabian Oil Company Integrated hydrothermal process to upgrade heavy oil
US10815434B2 (en) 2017-01-04 2020-10-27 Saudi Arabian Oil Company Systems and processes for power generation
WO2020252420A1 (en) * 2019-06-14 2020-12-17 Saudi Arabian Oil Company Supercritical water process to produce bottom free hydrocarbons
US11118439B2 (en) 2019-12-06 2021-09-14 Saudi Arabian Oil Company Displacing fluid for enhanced oil recovery
CN114989854A (en) * 2022-07-14 2022-09-02 太原理工大学 Method for improving yield of light oil produced by oil shale pyrolysis
US11781075B2 (en) 2020-08-11 2023-10-10 Applied Research Associates, Inc. Hydrothermal purification process
KR102658017B1 (en) 2019-06-14 2024-04-16 사우디 아라비안 오일 컴퍼니 Supercritical water process to produce bottom-free hydrocarbons

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR101606680B1 (en) * 2007-11-28 2016-03-25 사우디 아라비안 오일 컴퍼니 Continuous process for lowering pour point and paraffinic content of highly waxy crude oil
US20090159498A1 (en) * 2007-12-20 2009-06-25 Chevron U.S.A. Inc. Intergrated process for in-field upgrading of hydrocarbons
US8394260B2 (en) * 2009-12-21 2013-03-12 Saudi Arabian Oil Company Petroleum upgrading process
CN112065540B (en) * 2020-09-09 2021-09-21 安徽江淮汽车集团股份有限公司 NSC desulfurization method

Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3948754A (en) * 1974-05-31 1976-04-06 Standard Oil Company Process for recovering and upgrading hydrocarbons from oil shale and tar sands
US3948755A (en) * 1974-05-31 1976-04-06 Standard Oil Company Process for recovering and upgrading hydrocarbons from oil shale and tar sands
US3960706A (en) * 1974-05-31 1976-06-01 Standard Oil Company Process for upgrading a hydrocarbon fraction
US3989618A (en) * 1974-05-31 1976-11-02 Standard Oil Company (Indiana) Process for upgrading a hydrocarbon fraction
US4005005A (en) * 1974-05-31 1977-01-25 Standard Oil Company (Indiana) Process for recovering and upgrading hydrocarbons from tar sands
US4446012A (en) * 1982-12-17 1984-05-01 Allied Corporation Process for production of light hydrocarbons by treatment of heavy hydrocarbons with water
US4483761A (en) * 1983-07-05 1984-11-20 The Standard Oil Company Upgrading heavy hydrocarbons with supercritical water and light olefins
US4557820A (en) * 1984-05-24 1985-12-10 The Standard Oil Company Conversion of high boiling organic materials to low boiling materials
US4559127A (en) * 1984-05-24 1985-12-17 The Standard Oil Company Conversion of high boiling organic materials to low boiling materials
US4594141A (en) * 1984-12-18 1986-06-10 The Standard Oil Company Conversion of high boiling organic materials to low boiling materials
US4840725A (en) * 1987-06-19 1989-06-20 The Standard Oil Company Conversion of high boiling liquid organic materials to lower boiling materials
US5611915A (en) * 1994-03-09 1997-03-18 Exxon Research And Engineering Company Process for removal of heteroatoms under reducing conditions in supercritical water
US20030168381A1 (en) * 2002-03-08 2003-09-11 Nobuyuki Hokari Process and apparatus for treating heavy oil with supercritical water and power generation system equipped with heavy oil treating apparatus
US20050040081A1 (en) * 2003-08-05 2005-02-24 Hirokazu Takahashi Heavy oil treating method and heavy oil treating system
US20050072137A1 (en) * 2003-10-07 2005-04-07 Nobuyuki Hokari Heavy oil reforming method, an apparatus therefor, and gas turbine power generation system

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2057971A (en) * 1933-03-20 1936-10-20 Friedrich Uhde Ingenieur Buro Method of hydrogenating carbonaceous materials
US3471398A (en) * 1967-03-08 1969-10-07 Universal Oil Prod Co Method for the conversion of hydrocarbons
ZA753184B (en) * 1974-05-31 1976-04-28 Standard Oil Co Process for recovering upgraded hydrocarbon products
DE2854061A1 (en) * 1978-12-14 1980-07-03 Linde Ag METHOD FOR PREHEATING HYDROCARBONS BEFORE THERMAL CLEAVING
US4778585A (en) * 1983-07-14 1988-10-18 Research Foundation Of The City Univ. Of Ny Two-stage pyrolysis of coal for producing liquid hydrocarbon fuels

Patent Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3948754A (en) * 1974-05-31 1976-04-06 Standard Oil Company Process for recovering and upgrading hydrocarbons from oil shale and tar sands
US3948755A (en) * 1974-05-31 1976-04-06 Standard Oil Company Process for recovering and upgrading hydrocarbons from oil shale and tar sands
US3960706A (en) * 1974-05-31 1976-06-01 Standard Oil Company Process for upgrading a hydrocarbon fraction
US3989618A (en) * 1974-05-31 1976-11-02 Standard Oil Company (Indiana) Process for upgrading a hydrocarbon fraction
US4005005A (en) * 1974-05-31 1977-01-25 Standard Oil Company (Indiana) Process for recovering and upgrading hydrocarbons from tar sands
US4446012A (en) * 1982-12-17 1984-05-01 Allied Corporation Process for production of light hydrocarbons by treatment of heavy hydrocarbons with water
US4483761A (en) * 1983-07-05 1984-11-20 The Standard Oil Company Upgrading heavy hydrocarbons with supercritical water and light olefins
US4557820A (en) * 1984-05-24 1985-12-10 The Standard Oil Company Conversion of high boiling organic materials to low boiling materials
US4559127A (en) * 1984-05-24 1985-12-17 The Standard Oil Company Conversion of high boiling organic materials to low boiling materials
US4594141A (en) * 1984-12-18 1986-06-10 The Standard Oil Company Conversion of high boiling organic materials to low boiling materials
US4840725A (en) * 1987-06-19 1989-06-20 The Standard Oil Company Conversion of high boiling liquid organic materials to lower boiling materials
US5611915A (en) * 1994-03-09 1997-03-18 Exxon Research And Engineering Company Process for removal of heteroatoms under reducing conditions in supercritical water
US20030168381A1 (en) * 2002-03-08 2003-09-11 Nobuyuki Hokari Process and apparatus for treating heavy oil with supercritical water and power generation system equipped with heavy oil treating apparatus
US20050040081A1 (en) * 2003-08-05 2005-02-24 Hirokazu Takahashi Heavy oil treating method and heavy oil treating system
US20050072137A1 (en) * 2003-10-07 2005-04-07 Nobuyuki Hokari Heavy oil reforming method, an apparatus therefor, and gas turbine power generation system

Cited By (49)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110003901A1 (en) * 2008-12-30 2011-01-06 Chevron U.S.A. Inc. Ft water treating and recovery
WO2012099778A1 (en) * 2011-01-19 2012-07-26 Saudi Arabian Company Process including supercritical water treatment and sulfur adsorption of heavy hydrocarbon feedstocks
US8535518B2 (en) 2011-01-19 2013-09-17 Saudi Arabian Oil Company Petroleum upgrading and desulfurizing process
US9951283B2 (en) 2011-01-19 2018-04-24 Saudi Arabian Oil Company Petroleum upgrading and desulfurizing process
WO2013066852A1 (en) * 2011-10-31 2013-05-10 Saudi Arabian Oil Company Supercritical water process to upgrade petroleum
US8864978B2 (en) 2011-10-31 2014-10-21 Saudi Arabian Oil Company Supercritical water process to upgrade petroleum
US9914885B2 (en) 2013-03-05 2018-03-13 Saudi Arabian Oil Company Process to upgrade and desulfurize crude oil by supercritical water
US10113118B2 (en) 2013-12-21 2018-10-30 Steeper Energy Aps Process and apparatus for producing hydrocarbon
CN103642519A (en) * 2013-12-27 2014-03-19 成都博晟能源科技有限公司 Method for low-pressure demetallization and dechlorination of coal tar
US20170073594A1 (en) * 2014-03-05 2017-03-16 The Chugoku Electric Power Co., Inc. Gasification system
EP4239038A3 (en) * 2015-01-28 2023-11-22 Applied Research Associates, Inc. Hydrothermal cleanup process
EP3250660A4 (en) * 2015-01-28 2018-06-27 Applied Research Associates, Inc. Hydrothermal cleanup process
WO2016123198A1 (en) 2015-01-28 2016-08-04 Applied Research Associates, Inc. Hydrothermal cleanup process
US10071322B2 (en) 2015-01-28 2018-09-11 Applied Research Associates, Inc. Hydrothermal cleanup process
US9926497B2 (en) 2015-10-16 2018-03-27 Saudi Arabian Oil Company Method to remove metals from petroleum
US10202552B2 (en) 2015-10-16 2019-02-12 Saudi Arabian Oil Company Method to remove metals from petroleum
US10995281B2 (en) 2015-12-15 2021-05-04 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US10066172B2 (en) 2015-12-15 2018-09-04 Saudi Arabian Oil Company Supercritical water upgrading process to produce paraffinic stream from heavy oil
US10119081B2 (en) 2015-12-15 2018-11-06 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US10066176B2 (en) 2015-12-15 2018-09-04 Saudi Arabian Oil Company Supercritical water upgrading process to produce high grade coke
US10344228B2 (en) 2015-12-15 2019-07-09 Saudi Arabian Oil Company Supercritical water upgrading process to produce high grade coke
US10384179B2 (en) 2015-12-15 2019-08-20 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US11021660B2 (en) 2015-12-15 2021-06-01 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US10011790B2 (en) 2015-12-15 2018-07-03 Saudi Arabian Oil Company Supercritical water processes for upgrading a petroleum-based composition while decreasing plugging
US10543468B2 (en) 2015-12-15 2020-01-28 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US9920258B2 (en) 2015-12-15 2018-03-20 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US10640715B2 (en) 2015-12-15 2020-05-05 Saudi Arabian Oil Company Supercritical reactor systems and processes for petroleum upgrading
US10703988B2 (en) 2017-01-03 2020-07-07 Saudi Arabian Oil Company System to remove sulfur and metals from petroleum
US10106748B2 (en) 2017-01-03 2018-10-23 Saudi Arabian Oil Company Method to remove sulfur and metals from petroleum
US10577546B2 (en) 2017-01-04 2020-03-03 Saudi Arabian Oil Company Systems and processes for deasphalting oil
US10815434B2 (en) 2017-01-04 2020-10-27 Saudi Arabian Oil Company Systems and processes for power generation
US10752847B2 (en) 2017-03-08 2020-08-25 Saudi Arabian Oil Company Integrated hydrothermal process to upgrade heavy oil
US11149216B2 (en) 2017-03-08 2021-10-19 Saudi Arabian Oil Company Integrated hydrothermal process to upgrade heavy oil
US10703999B2 (en) 2017-03-14 2020-07-07 Saudi Arabian Oil Company Integrated supercritical water and steam cracking process
KR102347805B1 (en) * 2017-03-14 2022-01-06 사우디 아라비안 오일 컴퍼니 Integrated supercritical water and steam cracking process
US11149218B2 (en) 2017-03-14 2021-10-19 Saudi Arabian Oil Company Integrated supercritical water and steam cracking process
WO2018170040A1 (en) * 2017-03-14 2018-09-20 Saudi Arabian Oil Company Integrated supercritical water and steam cracking process
KR20190119652A (en) * 2017-03-14 2019-10-22 사우디 아라비안 오일 컴퍼니 Integrated Supercritical Water and Steam Cracking Process
US10526552B1 (en) 2018-10-12 2020-01-07 Saudi Arabian Oil Company Upgrading of heavy oil for steam cracking process
US10975317B2 (en) 2018-10-12 2021-04-13 Saudi Arabian Oil Company Upgrading of heavy oil for steam cracking process
US11230675B2 (en) 2018-10-12 2022-01-25 Saudi Arabian Oil Company Upgrading of heavy oil for steam cracking process
US11149215B2 (en) 2019-06-14 2021-10-19 Saudi Arabian Oil Company Supercritical water process to produce bottom free hydrocarbons
US10920158B2 (en) 2019-06-14 2021-02-16 Saudi Arabian Oil Company Supercritical water process to produce bottom free hydrocarbons
CN114008178A (en) * 2019-06-14 2022-02-01 沙特阿拉伯石油公司 Supercritical water process for producing residue-free hydrocarbons
WO2020252420A1 (en) * 2019-06-14 2020-12-17 Saudi Arabian Oil Company Supercritical water process to produce bottom free hydrocarbons
KR102658017B1 (en) 2019-06-14 2024-04-16 사우디 아라비안 오일 컴퍼니 Supercritical water process to produce bottom-free hydrocarbons
US11118439B2 (en) 2019-12-06 2021-09-14 Saudi Arabian Oil Company Displacing fluid for enhanced oil recovery
US11781075B2 (en) 2020-08-11 2023-10-10 Applied Research Associates, Inc. Hydrothermal purification process
CN114989854A (en) * 2022-07-14 2022-09-02 太原理工大学 Method for improving yield of light oil produced by oil shale pyrolysis

Also Published As

Publication number Publication date
WO2009085436A1 (en) 2009-07-09

Similar Documents

Publication Publication Date Title
US20090166262A1 (en) Simultaneous metal, sulfur and nitrogen removal using supercritical water
US20080099377A1 (en) Process for upgrading heavy hydrocarbon oils
US20080099378A1 (en) Process and reactor for upgrading heavy hydrocarbon oils
EP2588569B1 (en) Removal of sulfur compounds from petroleum stream
US20080099374A1 (en) Reactor and process for upgrading heavy hydrocarbon oils
US20080099376A1 (en) Upgrading heavy hydrocarbon oils
US9951283B2 (en) Petroleum upgrading and desulfurizing process
US9957450B2 (en) Petroleum upgrading process
US20090166261A1 (en) Upgrading heavy hydrocarbon oils
CA2784295C (en) Process mixing water, oxidant and heavy oil under supercritical temperature and pressure conditions and eventually submitting the mixture to microwave treating
CN110607190A (en) Method for removing metals from petroleum
WO2009073447A2 (en) Process for upgrading heavy and highly waxy crude oil without supply of hydrogen
CA2707688C (en) Process for the desulfurization of heavy oils and bitumens
KR20130033356A (en) Process for upgrading hydrocarbons and device for use therein
US8894845B2 (en) Alkali metal hydroprocessing of heavy oils with enhanced removal of coke products
CN115678601A (en) Hydrogenation-free upgrading process for heavy crude oil

Legal Events

Date Code Title Description
AS Assignment

Owner name: CHEVRON U.S.A. INC., CALIFORNIA

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:HE, ZUNQING;LI, LIN;REEL/FRAME:020831/0962;SIGNING DATES FROM 20080305 TO 20080310

STCB Information on status: application discontinuation

Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION