WO2021113249A1 - Integrated production of hydrogen, petrochemicals, and power - Google Patents

Integrated production of hydrogen, petrochemicals, and power Download PDF

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Publication number
WO2021113249A1
WO2021113249A1 PCT/US2020/062723 US2020062723W WO2021113249A1 WO 2021113249 A1 WO2021113249 A1 WO 2021113249A1 US 2020062723 W US2020062723 W US 2020062723W WO 2021113249 A1 WO2021113249 A1 WO 2021113249A1
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WIPO (PCT)
Prior art keywords
stream
processing facility
hydrogen
carbon dioxide
hydroprocessing
Prior art date
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Ceased
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PCT/US2020/062723
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English (en)
French (fr)
Inventor
Aadesh Harale
Ibrahim ABBA
Aqil Jamal
Abdennour Bourane
Mourad Younes
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.)
Saudi Arabian Oil Co
Aramco Americas
Original Assignee
Saudi Arabian Oil Co
Aramco Americas
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Publication date
Application filed by Saudi Arabian Oil Co, Aramco Americas filed Critical Saudi Arabian Oil Co
Priority to KR1020227022247A priority Critical patent/KR20220112268A/ko
Priority to JP2022533661A priority patent/JP7668797B2/ja
Publication of WO2021113249A1 publication Critical patent/WO2021113249A1/en
Priority to SA523440947A priority patent/SA523440947B1/ar
Priority to SA522432822A priority patent/SA522432822B1/ar
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • 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
    • C10G21/00Refining of hydrocarbon oils, in the absence of hydrogen, by extraction with selective solvents
    • C10G21/003Solvent de-asphalting
    • 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
    • C10G45/00Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02CGAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
    • F02C3/00Gas-turbine plants characterised by the use of combustion products as the working fluid
    • F02C3/20Gas-turbine plants characterised by the use of combustion products as the working fluid using a special fuel, oxidant, or dilution fluid to generate the combustion products
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • B01D53/02Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols by adsorption, e.g. preparative gas chromatography
    • B01D53/04Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols by adsorption, e.g. preparative gas chromatography with stationary adsorbents
    • B01D53/047Pressure swing adsorption
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J19/00Chemical, physical or physico-chemical processes in general; Their relevant apparatus
    • B01J19/24Stationary reactors without moving elements inside
    • B01J19/245Stationary reactors without moving elements inside placed in series
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
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    • C01B3/00Hydrogen; Gaseous mixtures containing hydrogen; Separation of hydrogen from mixtures containing it; Purification of hydrogen; Reversible storage of hydrogen
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    • C01B3/02Production of hydrogen; Production of gaseous mixtures containing hydrogen
    • C01B3/06Production of hydrogen; Production of gaseous mixtures containing hydrogen by reaction of inorganic compounds containing electro-positively bound hydrogen with inorganic reducing agents
    • C01B3/12Production of hydrogen; Production of gaseous mixtures containing hydrogen by reaction of inorganic compounds containing electro-positively bound hydrogen with inorganic reducing agents by reaction of water vapour with carbon monoxide
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    • C01B3/02Production of hydrogen; Production of gaseous mixtures containing hydrogen
    • C01B3/32Production of hydrogen; Production of gaseous mixtures containing hydrogen by reaction of gaseous or liquid organic compounds with gasifying agents, e.g. water, carbon dioxide or air
    • C01B3/34Production of hydrogen; Production of gaseous mixtures containing hydrogen by reaction of gaseous or liquid organic compounds with gasifying agents, e.g. water, carbon dioxide or air by reaction of hydrocarbons with gasifying agents
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    • C01B3/32Production of hydrogen; Production of gaseous mixtures containing hydrogen by reaction of gaseous or liquid organic compounds with gasifying agents, e.g. water, carbon dioxide or air
    • C01B3/34Production of hydrogen; Production of gaseous mixtures containing hydrogen by reaction of gaseous or liquid organic compounds with gasifying agents, e.g. water, carbon dioxide or air by reaction of hydrocarbons with gasifying agents
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    • C01B3/48Production of hydrogen; Production of gaseous mixtures containing hydrogen by reaction of gaseous or liquid organic compounds with gasifying agents, e.g. water, carbon dioxide or air by reaction of hydrocarbons with gasifying agents followed by reaction of water vapour with carbon monoxide
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    • C01B3/50Separation of hydrogen or hydrogen-containing gases from gaseous mixtures, e.g. purification
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    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K3/00Use of inorganic substances as compounding ingredients
    • C08K3/02Elements
    • C08K3/04Carbon
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    • C10G55/00Treatment of hydrocarbon oils, in the absence of hydrogen, by at least one refining process and at least one cracking process
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    • C10G67/04Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one process for refining in the absence of hydrogen only plural serial stages only including solvent extraction as the refining step in the absence of hydrogen
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    • C01B2203/00Integrated processes for the production of hydrogen or synthesis gas
    • C01B2203/04Integrated processes for the production of hydrogen or synthesis gas containing a purification step for the hydrogen or the synthesis gas
    • C01B2203/0465Composition of the impurity
    • C01B2203/047Composition of the impurity the impurity being carbon monoxide
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B2203/00Integrated processes for the production of hydrogen or synthesis gas
    • C01B2203/04Integrated processes for the production of hydrogen or synthesis gas containing a purification step for the hydrogen or the synthesis gas
    • C01B2203/0465Composition of the impurity
    • C01B2203/0475Composition of the impurity the impurity being carbon dioxide
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B2203/00Integrated processes for the production of hydrogen or synthesis gas
    • C01B2203/06Integration with other chemical processes
    • C01B2203/062Hydrocarbon production, e.g. Fischer-Tropsch process
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B2203/00Integrated processes for the production of hydrogen or synthesis gas
    • C01B2203/06Integration with other chemical processes
    • C01B2203/063Refinery processes
    • C01B2203/065Refinery processes using hydrotreating, e.g. hydrogenation, hydrodesulfurisation
    • 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
    • C10G2300/20Characteristics of the feedstock or the products
    • C10G2300/201Impurities
    • C10G2300/205Metal content
    • 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
    • C10G2300/20Characteristics of the feedstock or the products
    • C10G2300/201Impurities
    • C10G2300/205Metal content
    • C10G2300/206Asphaltenes
    • 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
    • C10G2300/40Characteristics of the process deviating from typical ways of processing
    • C10G2300/42Hydrogen of special source or of special composition
    • 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
    • C10G2400/00Products obtained by processes covered by groups C10G9/00 - C10G69/14
    • C10G2400/30Aromatics
    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10JPRODUCTION OF PRODUCER GAS, WATER-GAS, SYNTHESIS GAS FROM SOLID CARBONACEOUS MATERIAL, OR MIXTURES CONTAINING THESE GASES; CARBURETTING AIR OR OTHER GASES
    • C10J2300/00Details of gasification processes
    • C10J2300/16Integration of gasification processes with another plant or parts within the plant
    • C10J2300/164Integration of gasification processes with another plant or parts within the plant with conversion of synthesis gas
    • C10J2300/1656Conversion of synthesis gas to chemicals
    • C10J2300/1659Conversion of synthesis gas to chemicals to liquid hydrocarbons
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05DINDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
    • F05D2220/00Application
    • F05D2220/30Application in turbines
    • F05D2220/32Application in turbines in gas turbines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05DINDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
    • F05D2220/00Application
    • F05D2220/70Application in combination with
    • F05D2220/75Application in combination with equipment using fuel having a low calorific value, e.g. low BTU fuel, waste end, syngas, biomass fuel or flare gas
    • 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
    • Y02CCAPTURE, STORAGE, SEQUESTRATION OR DISPOSAL OF GREENHOUSE GASES [GHG]
    • Y02C20/00Capture or disposal of greenhouse gases
    • Y02C20/40Capture or disposal of greenhouse gases of CO2

Definitions

  • Olefins such as ethylene, propylene, butylene, and butane
  • aromatics such as benzene, toluene, and xylene
  • feedstocks such as petroleum gases and distillates such as naphtha, kerosene, and gas oil.
  • An embodiment described herein provides a processing facility.
  • the processing facilit includes an asphaltenes and metals (AM) removal system configured to process a feed stream to produce a power generation stream, a hydroprocessing feed stream, and an asphaltenes stream.
  • a power generation system is fed by the power generation feed stream.
  • a hydroprocessing system is configured to process the hydroprocessing feed stream to form a gas stream and a liquid stream.
  • a hydrogen production system is configured to produce hydrogen, carbon monoxide and carbon dioxide from the gas feed stream.
  • a carbon dioxide conversion system is configured to produce synthetic hydrocarbons from the carbon dioxide, and a cracking system is configured to process the liquid feed stream.
  • Another embodiment described herein provides a method for generating power and petrochemicals in an integrated system.
  • the method includes removing asphaltenes and metals (AM) from a feed stream in an AM removal system to form a power generation stream, a hydroprocessing feed stream, and an asphaltenes stream.
  • the power generation stream is supplied to a power generation system.
  • the hydroprocessing feed stream is processed in a hydroprocessing system to form a gas stream and a liquid stream, and the gas stream is provided to a hydrogen production system.
  • the liquid stream is provided to a cracking system.
  • Figure 1 is an example of a processing facility that utilizes a feed stream to directly fuel a power generator and convert the feed stream into petrochemicals, including aromatic petrochemicals.
  • Figures 2A and 2B are flowcharts of a process for using a feed stream to directly power a generation system while producing petrochemicals.
  • a hydrotreating and cracking process that is part of an integrated system with a power generation system is provided in examples described herein.
  • a feed stream including crude oil or condensates is directly processed to generate power, hydrogen, and petrochemicals, including aromatic petrochemicals, such as benzene, toluene, and paraxylene.
  • these technologies can be used to produce synthetic gases and potentially hydrogen.
  • C02 from steam reforming technologies may be captured, used, or stored.
  • the feed stream is processed in an asphalt and metal removal system to form three streams, including a first stream that is deasphalted and demetallized to form a power generation stream.
  • the power generation stream can be directly used to power a turbine generation system, for example, having a performance similar to diesel fuel. Accordingly the power generation stream would replace a diesel stream from a refinery, lowering the cost of the refining process.
  • a second stream formed from the feed stream is deasphalted, but may have some amount of metals present, and is used for a hydroprocessing feed stream.
  • the third stream includes asphalt and the majority of the metals, and may be used to supply an asphalt product stream, or may be processed in a heavy oil conversion system, a coker, a heavy metal extraction unit, or any combinations thereof.
  • the third stream is fed to a gasifier or partial oxidation unit for hydrogen production, synthetic hydrocarbon production, or both.
  • crude oil refers to whole crude oil from conventional sources, including crude oil that has undergone some pre-treatment.
  • crude oil can refer to material that has been subjected to one or more of water-oil separation, gas-oil separation, desalting, and stabilization.
  • material in a naphtha boiling temperature range may have a boiling point below about 300 °C.
  • Material in a diesel plus boiling temperature range may have a boiling point of greater than about 180 °C.
  • a system is an integrated group of processing equipment configured to perform a particular function, such as power generation, separations, hydroprocessing, cracking, hydrogen production, and the like.
  • systems often include vessels, and other equipment, to perform multiple functions.
  • a hydroprocessing system may include separation vessels to separate effluent into multiple streams.
  • a processing system may include a single vessel, or multiple vessels, and all associated catalysts, pumps, valves, compressors, and process equipment used to perform the designated function.
  • a power generation system may include one or more turbine driven generators, each of which includes one or more combustors, air feed systems, cooling systems, and the like.
  • FIG. 1 is an example of a processing facility 100 that utilizes a feed stream 102 to directly fuel a power generator and to convert the feed stream into hydrogen and petrochemicals, including aromatic petrochemicals.
  • the feed stream 102 which may be a crude oil or condensates stream, is received into an asphaltene and heavy metal (AM) removal system 106.
  • AM asphaltene and heavy metal
  • the feed stream 102 will have a distillation curve ranging from about 0 °C to about 900 °C, or about 30 °C to about 600 °C.
  • the AM removal system 106 may be a solvent deasphalting system that solubilizes lighter hydrocarbons, leaving the less soluble asphaltenes and associated metals behind.
  • Solvent deasphalting units typically operate between 45 °C and 250 °C and at pressures between about 15 and about 50 bar.
  • the ratio of the solvent to the crude oil is between about 4 to 1 and about 13 to 1.
  • the AM removal system provides a power generation stream 108 that can be sent to the power generation system 104 and combusted in a combustor 110 to power gas turbines.
  • the turbines are E class, F class, H class,
  • the power generation stream 108 is a high-purity oil stream that has very low, or no, asphaltene, and a low content of heavy metals such as vanadium and nickel.
  • asphaltene is absent from the power generation stream 108, or is less than about 1 ppm, less than about 5 ppm, or less than about 10 ppm.
  • the power generation stream 108 has less than about 0.5 ppmv, or between about 0.5 and about 0.7 ppmv, or between about 0.7, and 1.2 ppmv.
  • the level of the heavy metals, such as vanadium, in the power generation stream 108 can be controlled to match the requirements of the power generation system 104 in order to maximize the power production while reducing operating costs, for example, due to maintenance, water injection, or chemicals injection to mitigate corrosion. Higher efficiency in gas turbines in a power generation system 104 can be obtained by increasing the firing temperature of the combustors compared to heavier oils or oils that include heavy metals.
  • the power generation stream 108 may include the light ends up to boiling points corresponding to heavy naphtha or kerosene range with boiling temperature up to about 260 °C.
  • sulfur levels in the treated streams for example, the power generation stream 108 and a hydroprocessing feed stream 112 are reduced.
  • the reduction is typically in the range of about 20% to about 30%, compared to the feed stream 102. This lowers the SOx emissions from the power generation system 104, and reduces any need for desulfurization.
  • the hydroprocessing feed stream 112 is a mid-purity stream, for example, free of asphaltenes or having a low asphaltene content, such as less than about 5 wt. %, less than about 7 wt. %, or less than about 10 wt. %. Furthermore, the hydroprocessing feed stream 112 may have a moderate heavy metals content. For example, the heavy metal content can range between about 0.5 ppmv and about 100 % of the heavy metal content of the feed stream 102.
  • the hydroprocessing feed stream 112 may include middle and heavy distillates, for example, with boiling points above 180°C.
  • the hydroprocessing feed stream 112 is routed to a hydroprocessing system 114 for removal of impurities such as sulfur, metals, nitrogen, or other impurities.
  • the hydroprocessing system 114 performs a hydrocracking function to form additional products from the hydroprocessing feed stream 112.
  • a portion of the hydroprocessing feed stream 112 may be combined with the power generation stream 108, for example, to control the level of impurities in a power generation stream 108. This may be performed if the feed stream 102 has a lower asphaltenes or metals content, allowing more of the feed stream 102 to be sent to the power generation system 104.
  • the hydroprocessing system 114 may include a single hydroprocessing vessel with a single catalyst zone or multiple catalyst zones. In other examples, the hydroprocessing system may include multiple vessels, wherein each may use different catalysts and conditions to perform different functions, such as hydrodesulfurization, hydrodemetallation, hydrocracking, and the like. The hydroprocessing system 114 is discussed further herein. A hydrogen stream 116 is provided to the hydroprocessing system 114. [0019] In some examples, selective hydroprocessing or hydrotreating processes can increase the paraffin content, or decrease the viscosity as measured by the Bureau of Mines Correlation Index (BMCI) of a feedstock.
  • BMCI Bureau of Mines Correlation Index
  • the hydroprocessing feed stream 112 may be improved by hydrotreating to saturate multiple carbon-carbon bonds, followed by mild hydrocracking of aromatics, especially polyaromatics.
  • contaminants such as metals, sulfur and nitrogen can be removed by passing the feedstock through a series of layered catalysts that perform the catalytic functions of one or more of demetallization, desulfurization, and denitrogenation.
  • the sequence of catalysts to perform hydrodemetallization (HDM) and hydrodesulfurization (HDS) can include a hydrodemetallization catalyst, an intermediate catalyst, a hydrodesulfurization catalyst, and a final catalyst.
  • the catalyst in the HDM section can be based on a gamma alumina support, with a surface area of between about 140 m2/g and about 240 m2/g.
  • This catalyst has a ver high pore volume, such as a pore volume in excess of about 1 cm3/g.
  • the pore size can be predominantly macroporous, which provides a large capacity for the uptake of metals on the surface of the catalyst, and optionally dopants.
  • the active metals on the catalyst surface can be sulfides of nickel (Ni), molybdenum (Mo), or both, with a molar ratio of Ni:(Ni+Mo) of less than about 0.15.
  • the concentration of nickel is lower on the HDM catalyst than other catalysts as some nickel and vanadium is anticipated to be deposited from the feedstock itself, thus acting as a catalyst.
  • the dopant can be one or more of phosphorus, boron, silicon and halogens, for instance, as described in U.S. Patent Publication Number US 2005/0211603, the contents of which are incorporated by reference here in their entirety.
  • the catalyst can be in the form of alumina extrudates or alumina beads.
  • alumina beads can be used to facilitate un-loading of the catalyst HDM beds in the reactor as the metal can uptake will range between from 30 to 100% at the top of the bed.
  • An intermediate catalyst can be used to perform a transition between the hydrodemetallization and hydrodesulfurization functions.
  • the intermediate catalyst can have intermediate metal loadings and pore size distribution.
  • the catalyst in the HDM/HDS reactor can be an alumina based support in the form of extrudates, at least one catalytic metal from group VI (for instance, molybdenum, tungsten, or both), or at least one catalytic metals from group VIII (for instance, nickel, cobalt, or both), or a combination of any two or more of them.
  • the catalyst can contain at least one dopant, such as one or more of boron, phosphorous, halogens, and silicon.
  • the intermediate catalyst can have a surface area of between about 140 m 2 /g and about 200 m 2 /g, a pore volume of at least about 0.6 cmVg, and mesoporous pores sized between about 12 nm and about 50 nm.
  • the catalyst in the HDS section can include gamma alumina based support materials with a surface area towards the higher end of the HDM range, such as between about 180 m 2 /g and about 240 m 2 /g.
  • the higher surface for the HDS catalyst results in relatively smaller pore volume, such as a pore volume of less than about 1 cm 3 /g.
  • the catalyst contains at least one element from group VI, such as molybdenum, and at least one element from group VIII, such as nickel.
  • the catalyst also contains at least one dopant, such as one or more of boron, phosphorous, silicon, and halogens.
  • cobalt (Co) can be used to provide relatively higher levels of desulfurization.
  • the metals loading for the active phase is higher as the desired activity is higher, such that the molar ratio of Ni:(Ni+Mo) is between about 0.1 and about 0.3 and the molar ratio of (Co+Ni):Mo is between about 0.25 and about 0.85.
  • a final catalyst can perform hydrogenation of the feedstock rather than having a primary function of hydrodesulfurization.
  • the final catalyst can replace the intermediate catalyst and the catalyst in the HDS section.
  • the final catalyst can be promoted by nickel and the support can be wide pore gamma alumina.
  • the final catalyst can have a surface area towards the higher end of the HDM range, such as between about 180 m2/g and about 240 m2/g. The higher surface area for the final catalyst results in relatively smaller pore volume, such as a pore volume of less than about 1 cm3/g.
  • the hydroprocessing system 114 processes the hydroprocessing feed stream 112 with hydrogen from the hydrogen stream 116.
  • the hydrogen stream 116 can be either imported to the hydroprocessing system 114, for example, being produced in other systems of the processing facility 100.
  • the hydrogen may be added at 0.1 mol. %, 0.5 mol. %, 1 mol. %, 5 mol. %, or higher, as a proportion of the hydroprocessing feed stream 112. This may improve products from a cracker, as cracking of materials having higher hydrogen contents results in better products.
  • the hydroprocessing system 114 also increases the amount of feed available for cracking or power production via conversion.
  • the hydroprocessing system 114 can carry out one or more of the following processes, generally in separate reaction zones: hydrodemetallization, hydrodearomatization, hydrodenitrogenation, hydrodesulfurization, and hydrocracking.
  • the processes may be performed in single reactors having multiple zones, or in multiple reactors.
  • the hydroprocessing system 114 can include one or more beds containing an effective amount of hydrodemetallization catalyst.
  • the hydroprocessing system 114 can include one or more beds containing an effective amount of hydroprocessing catalyst having one or more of hydrodearomatization, hydrodenitrogenation, hydrodesulfurization, and hydrocracking functions.
  • the hydroprocessing system 114 can include multiple catalyst beds, such as two, three, four, five, or another number of catalyst beds. In some examples, the hydroprocessing system 114 can include multiple reaction vessels each containing one or more catalyst beds of the same or different function.
  • the hydroprocessing system 114 can operate at a temperature betw een about 300 °C and about 450 °C, such as about 300 °C, about 350 °C, about 400 °C, about 450 °C, or another temperature.
  • the hydroprocessing system 114 can operate at a pressure between about 30 bar and about 180 bar, such as about 30 bar, about 60 bar, about 90 bar, about 120 bar, about 150 bar, about 180 bar, or another pressure.
  • the hydroprocessing system 114 can operate with a liquid hour space velocity between about 0.1 h 1 and about 10 h 1 , such as about 0.1 h 1 , about 0.5 h 1 , about 1 h 1 , about 2 h 1 , about 4 h 1 , about 6 h 1 , about 8 h 1 , about 10 h 1 , or another liquid hour space velocity.
  • the liquid hour space velocit is the ratio of the flow rate of a reactant liquid through a reactor to the volume of the reactor.
  • the products from the hydroprocessing system 114 include a liquid stream 118 and a gas stream 120.
  • the liquid stream 118 and the gas stream 120 may be produced from hydroprocessed effluent by a separator in the hydroprocessing system 114.
  • the separator may be a high pressure cold or hot separator.
  • the effluent can be cooled in a heat exchanger prior to the separator.
  • the separator separates the hydroprocessed effluent into the gas stream 120, which generally includes lower carbon number liquids, such as C4 and below, with boiling point up to about 180° C, and the liquid stream 118, which generally has a boiling point greater than about 180° C, such as materials with carbon numbers of C5 and above.
  • the separator is a flash separation device such as a flash drum, followed by a heat exchanger or condenser. In some embodiments, the separator operates in the absence of a flash zone. In these embodiments, the separator can include a cyclonic phase separation device, a splitter, or another type of separation device based on physical or mechanical separation of vapors and liquids. As for a flash separation device, these devices may be followed by a heat exchanger or condenser to condense the gas stream 120.
  • the gas stream 120 is routed to a hydrogen production system 122.
  • the gas stream 120 can be used to produce a hydrogen stream 124, for example, using a steam reforming system, a gasification system, a partial oxidation system, or combinations thereof.
  • a water or steam stream 126 may be added to provide make up water for water shift reactions.
  • an air or oxygen stream may also be fed to the reactors of the hydrogen production system 122.
  • the hydrocarbons are contacted with the steam at about 700 °C to about 1000 °C, for example, in a steam reforming reactor, over a nickel catalyst, producing and Fh, CO, and CO2.
  • a second vessel such as a separation vessel
  • the CO is reacted with more steam to form Fk and CO2 in a water shift reaction.
  • the stream does not go through a water shift reaction but is fed into a hydrogen separation process effectively separating the hydrogen from the remaining CO and CO2.
  • the CO/CO2 containing stream is then fed to unit 136 which converts CO and CO2 to synthetic fuels or chemicals.
  • the hydrocarbons from the gas stream 120 are also converted into Fk, CO, and CO2.
  • the hydrocarbons are reacted with a controlled amount of oxygen, steam, or both, at greater than about 700 °C, for example, without combustion, in a gasification reactor.
  • the process is exothermic, allowing heat to be generated for use in other portions of the process.
  • a second vessel such as a separation vessel, the CO may be reacted with more steam to form H2 and CO2 in a water shift reaction.
  • the separation sections and water shift systems may be integrated.
  • the integration of the systems can be achieved using a membrane reformer in which hydrogen selective membranes are used in conjunction with a reforming catalyst, such as a nickel catalyst. This will allow combining reforming, water-gas shift operations allowing process intensification of the hydrogen production process.
  • the hydrogen stream 124 is used as the source of the hydrogen stream 116 provided to the hydroprocessing system 114.
  • the gas generated in the gasifier may be water shifted in a membrane reactor that can operate at about 250 °C to about 300 °C with a hydrogen selective membrane and a water-gas shift catalyst integrated in the membrane reactor, such as a nickel catalyst. This also allows for the separation of CO2, formed in-situ, which is removed as a CO2 stream 128.
  • a pressure swing absorption (PSA) system may be included in the hydrogen production system 122 for the purification of hydrogen, including a raw hydrogen stream 130 produced in a cracking system, such as a reformer 132, and separated in a products separation system 134.
  • the raw hydrogen stream 130 includes hydrogen and methane and is sourced from a demethanizer inside the products separation system 134.
  • the raw hydrogen stream 130 is routed to the PSA system in the hydrogen production system 122.
  • the PSA system may include two columns filled with a zeolite absorbent, one active column and one regenerating column.
  • the hydrogen streams are combined and flowed through the active column, which absorbs impurities from the hydrogen flow.
  • the purity of the hydrogen in the hydrogen stream 124 is greater than about 80 vol. %, greater than about 90 vol. %, greater than about 95 vol. %, or higher.
  • the CC stream 128 is routed to a CO2 conversion system 136 for conversion of the CO2 to synthetic hydrocarbons or other useful products.
  • the conversion may be performed through hydrogenation or through further reforming in dry or wet conditions with lighter hydrocarbons. If wet conditions are used, a steam stream may be added.
  • the CO formed in the hydrogen production system 122 may be routed to the CO2 conversion system 136 along with, or instead of, the CO2.
  • the CO2 conversion reaction may include a steam reaction to convert CO2 to Fk and CO, if needed.
  • the feedstocks may then be fed to a Fischer- Tropsch reactor to convert the hydrogen and carbon monoxide to hydrocarbons.
  • the catalyst may be a cobalt-based catalyst, an iron-based catalyst, a ruthenium-based catalyst, or a combination.
  • the CO2 conversion system 136 may produce a product stream 138 that includes methane or syngas as furnace fuel for other systems, such as the hydroprocessing system 114 or the reformer 132, among others.
  • the product stream 138 is used as a make-up stream for a sales gas pipeline.
  • the product stream 138 is used as a feedstock for a number of other chemicals or synthetic fuels streams.
  • the CO2 is hydrogenated using hydrogen from the hydrogen stream 116, for example, forming dimethyl ether (DME), methanol, or other oxygenated compounds as part of the product stream 138.
  • the CO2 stream 128 is provided to a CO2 pipeline for enhanced oil recovery or sequestration.
  • a portion of the liquid stream 118 from the hydroprocessing system 114 may be blended into the power generation stream 108 to form a blended stream.
  • the blending of the liquid stream 118 which has been hydroprocessed, may be used to adjust the Wobbe index of the fuel feeding the power generation system 104 and reduce its sulfur content.
  • the Wobbe index is a measure of the energy output that may be obtained from the combustion of a fuel, and is calculated by dividing the calorific value obtained from burning a fuel by the square root of the specific gravity of the fuel. Lighter hydrocarbons, for example, with lower carbon numbers, generally have lower Wobbe indices than heavier hydrocarbons.
  • the Wobbe index for methane may be around 50 MJ/Nm 3
  • the Wobbe index for in butane may be around 88 MJ/Nm 3 .
  • the remaining liquid stream 118 from the hydroprocessing system 114 is routed to a reformer 132, such as a naphtha reforming system.
  • the reformer 132 may be a continuous catalytic reforming (CCR) system.
  • the reformer 132 is replaced with a cracking system, for example, including a steam cracking furnace. Because the liquid stream 118 was processed in the hydroprocessing system 114 upstream of the reformer 132, no further hydrotreating of the liquid stream 118 is performed before the liquid stream 118 is fed into the reformer 132.
  • the reformer 132 converts the liquid stream 118 into a reformate stream 140, or effluent, that is rich in aromatics, such as benzene, toluene, and xylene (BTX).
  • aromatics such as benzene, toluene, and xylene (BTX).
  • the reformate stream 140 may include hydrogen, liquid propane gas, and a paraffinic raffinate.
  • the reformer 132 enables a high production of xylene at the expense of a lower production of benzene.
  • the reformer 132 includes one or more reactors that use reactions such as hydrocracking, isomerization, dehydrocyclization, and dehydrogenation to convert the liquid stream 118 into the reformate stream 140.
  • the reformer 132 can include a catalyst that is compatible with catalytic processes that maximize production of aromatics.
  • the catalyst can be a mono- or bi-functional metal catalyst, including one or more of platinum, palladium, rhenium, tin, gallium, bismuth, or other metal catalysts.
  • the catalyst may be a halogen containing catalyst, a catalyst employing a zeolite such as zeolite L or a ZSM-5 zeolite, a catalyst employing a crystalline or amorphous support that is mesoporous or microporous, such as an alumina, silica, or alumina silica support, or another type of catalyst that can maximize aromatics production.
  • the catalysts may include hydroprocessing catalysts, as described herein.
  • the operating conditions of the reformer 132 can be selected to maximize aromatics production.
  • the reformer 132 can operate at a pressure between about 0.01 bar and about 50 bar, such as about 0.01 bar, about 0.1 bar, about 0.5 bar, about 1 bar, about 5 bar, about 10 bar, about 20 bar, about 30 bar, about 40 bar, about 50 bar, or another pressure.
  • the molar ratio of hydrogen to hydrocarbon in the reformer 132 can be between about 1:1 and about 10:1, such as about 1:1, about 2:1, about 4:1, about 6:1, about 8:1, about 10: 1, or another ratio.
  • the reformer 132 can operate at a temperature between about 400 °C and about 600 °C, such as about 400 °C, about 450 °C, about 500 °C, about 550 °C, about 600 °C, or another temperature.
  • the reformer 132 can operate with a liquid hour space velocity between about 0.1 h 1 and about 5 h such as about 0.1 h 1 , about 0.5 h 1 , about 1 h 1 , about 2 h 1 , about 3 h 1 , about 4 h 1 , about 5 h 1 , or another liquid hour space velocity.
  • the products separation system 134 includes an aromatics extraction system to separate aromatics from reformate stream 140 using extraction techniques such as solvent extraction, extractive distillation, or other extraction techniques.
  • the aromatic extraction system receives the reformate stream 140, as well as other product streams generated herein, and produces aromatics and non-aromatics product streams.
  • the aromatics product streams include a benzene product stream 142, a toluene product stream 144, a paraxylene product stream 146, and a heavy aromatics product stream 148.
  • Non- aromatics streams that may be produced from the products separation system 134 include a recycle stream 150 that generally includes fully saturated light hydrocarbons, such as ethane and propane.
  • Other streams that may be produced from the products separation system 134 may include pyrolysis gasoline streams, heavy fuel oil streams, and the like.
  • the recycle stream 150 may be provided to the reformer 132, the hydrogen production system 122, or divided between both, depending on the economics of hydrogen production or chemicals production.
  • the reformer 132 is replaced with another type of cracking system for processing the liquid stream 118.
  • a steam cracking system may be used in place of the reformer 132.
  • the steam cracking system is a combination of gas and liquid furnaces.
  • a steam feed is provided to one or more the furnaces of the steam cracking system.
  • the furnaces can be flexible or may be customized for some of the feed sent to the steam cracking system.
  • the flow through the steam cracking furnaces of the steam cracking system may provide a total exposure time of about 1 millisecond (ms), about 2 ms, about 5 ms, or about 10 ms.
  • a quench tower may be provided immediately after the steam cracking furnace to cool the effluent from the steam cracking furnace and stop further reactions from taking place.
  • the steam cracking system may use the recycle stream 150 from the products separation system 134 as a secondary feed.
  • the product stream from the steam cracking system is provided to the products separation system 134.
  • the product stream from the steam cracking system may include low carbon number compounds, such as ethane and propane, as well as aromatic compounds, such as benzene, toluene, and xylene.
  • the AM removal system 106 generates an asphaltene stream 152 that includes the asphaltenes and heavy metals from the feed stream 102.
  • the asphaltene stream 152 is used internally in other units of the processing facility 100, for example, being blended with diesel or kerosene to produce heavy oil with a specific viscosity, such as 180 cSt or 380 cSt.
  • the asphaltene stream 152 can be provided as fuel to the cement industry or as a product stream for asphalt production.
  • the asphaltene stream 152 may be used to form other products in a heavy oil conversion system (HOCS) 154 or a coker 156.
  • HOCS heavy oil conversion system
  • the asphaltenes stream 152 has a theoretical boiling point of greater than about 600 °C, however, asphaltenes are generally solids or softened solids at the processing temperatures used.
  • the asphaltene stream 152 may be reacted with a hydrogen stream 116 to form a cracked product stream 158 that includes lighter hydrocarbons than the asphaltene stream 152.
  • the cracked product stream 158 is provided to the products separation system 134.
  • the cracked product stream 158 may have a boiling point between about 150 °C and about 205 °C.
  • a portion of the cracked product stream 158 may be provided to the reformer 132, as shown in Fig. 1.
  • At least a portion of the heavy aromatics product stream 148 may be returned to the HOCS 154 for further processing.
  • the HOCS 154 may generate a fuel oil product stream 160.
  • the fuel oil product stream 160 may include the heavier hydrocarbons which cannot be converted in the hydrogen production system 122, the reformer 132, or recycled to the hydroprocessing system 114.
  • the fuel oil product stream 160 may also be a purge stream if a portion of a pyoil stream is recycled to the HOCS 154.
  • the fuel oil product stream 160 may be a high sulfur, low viscosity, and high density fuel oil, as it is generated from the asphaltenes stream 152.
  • the aromaticity of the fuel oil product stream 160 will provide a viscosity of less than about 200 centistokes (cSt), less than about 180 cSt, less than about 150 cSt, or lower.
  • the fuel oil product stream 160 may be used as a bunker oil for shipping.
  • the economic value of this fuel oil may be adjusted by varying the streams used to form the fuel oil product stream 160 and by adjusting the operating conditions of the different systems.
  • a higher proportion of the heavy aromatics product stream 148 from the products separation system 134 may be used in the HOCS 154 to lower the sulfur content.
  • the fuel oil product stream 160 may be provided to the coker 156 for further processing, for example, to increase the yield of lower molecular weight hydrocarbons.
  • the asphaltene stream 152 is provided to the coker 156.
  • a coker is a processing unit that converts heavy hydrocarbons, such as the asphaltene stream 152, into lower molecular weight hydrocarbons, including hydrocarbon gases, naphtha, light and heavy gas oils, and petroleum coke.
  • the coker 156 can include any type of commercial coking unit, such as a delayed coker or a fluid coker.
  • a light hydrocarbons stream 162 is produced by thermal cracking of the asphaltene stream 152.
  • the light hydrocarbons stream 162 may have a boiling point between about 150 °C and about 205 °C.
  • steam may be injected into the coker 156 to facilitate the reactions.
  • the light hydrocarbon stream 162 is provided to the products separation system 134. At least a portion of the heavy aromatics product stream 148 may be returned to the coker 156 for further processing.
  • a petroleum coke product stream 164 is provided as a product stream from the coker 156. In embodiments described herein, the petroleum coke product stream 164 is generally fuel grade, for example, high in sulfur and metals.
  • the petroleum coke product stream 164 may be further processed, for example, in a rotary kiln to remove residual volatile hydrocarbons.
  • the composition of the petroleum coke product stream 164 may be as shown in Table 1.
  • the products separation system 134 includes all systems for producing the chemical products from the conversion process.
  • the products separation system 134 includes the demethanizer, the quench columns, hydrogenation reactors, primary fractionation columns, compressor and sets of columns to allow the production of the benzene product stream 142, the toluene product stream 144, the paraxylene product stream 146, the heavy aromatics product stream 148, as well as other product streams including ethylene, propylene, mixed C4s, and pyrolysis gasoline, among others.
  • the products separation system 134 further includes the high- distillation temperature (HDT) and aromatics separation section to treat the pygas and separate BTX from this stream.
  • HDT high- distillation temperature
  • the products separation system 134 is fed by the reformate stream 140 from the reformer 132. It is also fed with the cracked product stream 158 from the HOCS 154, and the light hydrocarbon stream 162 from the coker 156. As described herein, the products separation system 134 produces the heavy aromatics product stream 148, which can be recycled to the HOCS 154, or provided as a product stream to other processes.
  • FIGS 2A and 2B are flowcharts of a process 200 for using a feed stream to directly power a generation system while producing petrochemicals.
  • the process begins at block 202, when a feed stream, such as a crude oil or condensate feed, is fed to an asphaltene and metals (AM) removal system.
  • a feed stream such as a crude oil or condensate feed
  • AM asphaltene and metals
  • a high-purity oil stream is fed to a power generation system from the AM removal system, as described herein.
  • a mid-purity stream is fed to a hydroprocessing system.
  • a gas stream from the hydroprocessing system is fed to a hydrogen production system.
  • a hydrogen product stream is supplied from the hydrogen production system. Portions of the hydrogen product stream can be used as a feedstock for the hydroprocessing system, the heavy oils conversion system, or the carbon dioxide conversion system.
  • the CO and carbon dioxide from the hydrogen production system of block 208 is processed in the carbon dioxide conversion system of block 212 to form synthetic fuels and other chemicals. At block 214, these are provided as synthetic product streams, which may be used as fuels or in downstream processes.
  • a liquid stream from the hydroprocessing system is fed to a cracking system.
  • the cracking system may be a reformer, a steam cracker, or another type of cracking system.
  • the effluent from the cracking system is fed to a products separation system.
  • a benzene product stream is supplied from the products separation system.
  • a toluene product stream is supplied from the products separation system.
  • a paraxylene product stream is supplied from the product separation system.
  • a heavy aromatic product stream is supplied from the product separation system.
  • a recycle stream including light hydrocarbons is fed from the product separation system to the hydrogen production system, the cracking system, or both.
  • a hydrogen rich gas from the product separation system is fed to the hydrogen production system.
  • the hydrogen rich gas may be further purified, for example, in a pressure swing absorption (PSA) system incorporated into the hydrogen production system.
  • PSA pressure swing absorption
  • an asphaltene product stream is supplied from the AM removal system.
  • the asphaltene product stream is supplied to a heavy oil conversion system.
  • a heavy oil product stream is supplied from the heavy oil conversion system.
  • a light hydrocarbon effluent stream is provided from the heavy oil conversion system to the products separation system.
  • the asphaltene product stream is supplied to a coker.
  • a petroleum coke product stream is supplied from the coker.
  • a light hydrocarbon effluent stream is provided from the coker to the products separation system.
  • the heavy oil conversion system, the coker, or both may be omitted. For example, if a crude oil or condensate stream does not have a high content of high carbon number materials, such as a light crude, the heavy oil conversion system may not be needed. Further, if the economics of the process do not favor the fuel oil product stream, the heavy oil conversion system may be bypassed or eliminated.
  • the heavy oil conversion system is present, but configured to be bypassed.
  • An embodiment described herein provides a processing facility.
  • the processing facility includes an asphaltenes and metals (AM) removal system configured to process a feed stream to produce a power generation stream, a hydroprocessing feed stream, and an asphaltenes stream.
  • a a power generation system is fed by the power generation feed stream.
  • a hydroprocessing system is configured to process the hydroprocessing feed stream to form a gas stream and a liquid stream.
  • a hydrogen production system is configured to produce hydrogen, carbon monoxide and carbon dioxide from the gas feed stream.
  • a carbon dioxide conversion system is configured to produce synthetic hydrocarbons from the carbon dioxide, and a cracking system is configured to process the liquid feed stream.
  • the feed stream includes a crude oil.
  • the feed stream includes a condensate.
  • the power generation system includes a gas turbine.
  • the gas turbine is E class, F class, or H class, or higher.
  • the hydrogen production system includes a steam reforming reactor. In an aspect, the hydrogen production system includes a gasification reactor.
  • the hydrogen production system includes a pressure swing absorption system. In an aspect, wherein the hydrogen production system includes a water shift system converting carbon monoxide to carbon dioxide.
  • the carbon dioxide conversion system includes a Fischer- Tropsch reactor.
  • the carbon dioxide conversion system includes a dry reforming process.
  • the processing facility includes a hydrogen separation system configured to purify the hydrogen and send carbon monoxide and carbon dioxide to the carbon dioxide conversion system.
  • the hydroprocessing system includes a hydrodemetallization zone, a hydrodearomatization zone, a hydrodenitrogenation zone, a hydrodesulfurization zone, or a hydrocracking zone, or any combinations thereof.
  • the cracking system includes a reformer. In an aspect, at least a portion of the hydrogen produced in the hydrogen production system is supplied to the reformer.
  • the reformer includes an isomerization reactor, a hydrocracking reactor, a dehydrocyclization reactor, or a dehydrogenation reactor, or any combinations thereof.
  • the cracking system includes a steam cracker.
  • the processing facility includes a heavy oil conversion system. In an aspect, the processing facility includes a coker.
  • the processing facility includes a products separation system configured to separate product streams from the cracking system, a heavy oil conversion system, or a coker, or any combinations thereof.
  • the products separation system is configured to provide a raw hydrogen stream to the hydrogen production system.
  • the products separation system is configured to feed a light hydrocarbon stream to the cracking system, or the hydrogen production system, or both.
  • the products separation system includes an aromatics separation system.
  • the products separation system is configured to produce a benzene product stream, a toluene product stream, a paraxylene product stream, or a heavy aromatics stream, or any combinations thereof.
  • the products separation system is configured to feed at least a portion of the heavy aromatics stream to the heavy oil conversion system, or the coker, or both.
  • Another embodiment described herein provides a method for generating power and petrochemicals in an integrated system.
  • the method includes removing asphaltenes and metals (AM) from a feed stream in an AM removal system to form a power generation stream, a hydroprocessing feed stream, and an asphaltenes stream.
  • the power generation stream is supplied to a power generation system.
  • the hydroprocessing feed stream is processed in a hydroprocessing system to form a gas stream and a liquid stream, and the gas stream is provided to a hydrogen production system.
  • the liquid stream is provided to a cracking system.
  • the method includes blending at least a portion of the hydroprocessing feed stream with the power generation stream to form a blended stream, and supplying the blended stream to the power generation system. In an aspect, the method includes blending at least a portion of the liquid stream with the power generation stream to form a blended stream, and supplying the blended stream to the power generation system.
  • the method includes providing a hydrogen stream to the hydroprocessing system from the hydrogen production system.
  • the method includes separating hydrogen from the carbon monoxide and carbon dioxide, and feeding the carbon monoxide and carbon dioxide to the carbon dioxide conversion system.
  • a hydrogen product stream is provided from the hydrogen production system.
  • carbon dioxide is provided from the hydrogen production system to a carbon dioxide conversion system.
  • a synthetic product stream is provided from the carbon dioxide conversion system.
  • an effluent is fed from the cracking system to a products separation system.
  • the method includes supplying an asphaltene stream from the AM removal system.
  • the asphaltene stream is fed to a heavy oil conversion system (HOCS).
  • HOCS heavy oil conversion system
  • a light hydrocarbon effluent stream from the HOCS is provided to a products separation system.
  • a heavy oil product stream is provided from the HOCS.
  • the method includes feeding the asphaltene stream to a coker.
  • a petroleum coke product stream is provided from the coker.
  • a light hydrocarbon effluent stream is provided from the coker to a products separation system.
  • the method includes feeding a light hydrocarbon stream from a products separation system to the hydrogen production system. In an aspect, the method includes feeding a light hydrocarbon stream from a products separation system to the cracking system.
  • the method includes sending a raw hydrogen stream from a product separation system to the hydrogen production system.
  • a products separation system including an aromatics extraction system is included in the processing facility'.
  • a benzene product stream is provided from the products separation system.
  • a toluene product stream is provided from the products separation system.
  • a paraxy lene product stream is provided from the products separation system.
  • the heavy aromatics product stream is provided from a products separation system. In an aspect, the heavy aromatics product stream is provided to a heavy oils conversion unit. In an aspect, the heavy aromatics product stream is provided to a coker.

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US11718575B2 (en) 2021-08-12 2023-08-08 Saudi Arabian Oil Company Methanol production via dry reforming and methanol synthesis in a vessel
US11787759B2 (en) 2021-08-12 2023-10-17 Saudi Arabian Oil Company Dimethyl ether production via dry reforming and dimethyl ether synthesis in a vessel
US11578016B1 (en) 2021-08-12 2023-02-14 Saudi Arabian Oil Company Olefin production via dry reforming and olefin synthesis in a vessel
US12258272B2 (en) 2021-08-12 2025-03-25 Saudi Arabian Oil Company Dry reforming of methane using a nickel-based bi-metallic catalyst
US11617981B1 (en) 2022-01-03 2023-04-04 Saudi Arabian Oil Company Method for capturing CO2 with assisted vapor compression
CN120265735A (zh) * 2022-11-28 2025-07-04 巴斯夫欧洲公司 用于操作裂化工艺的方法

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1130080A1 (en) * 1998-10-30 2001-09-05 JGC Corporation Gas turbine fuel oil and production method thereof and power generation method
US20050211603A1 (en) 2004-03-23 2005-09-29 Denis Guillaume Doped spherically-shaped supported catalyst and process for hydrotreating and hydroconverting metal-containing oil fractions
US9067850B2 (en) * 2011-09-15 2015-06-30 Johnson Matthey Public Limited Company Synthesis gas and Fischer Tropsch integrated process
WO2018142351A1 (en) * 2017-02-02 2018-08-09 Sabic Global Technologies B.V. A process for the preparation of a feedstock for a hydroprocessing unit and an integrated hydrotreating and steam pyrolysis process for the direct processing of a crude oil to produce olefinic and aromatic petrochemicals

Family Cites Families (88)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US978576A (en) 1909-01-27 1910-12-13 Henry E Goodell Miter-box.
JPS4934527B1 (enExample) 1969-04-25 1974-09-14
US3856659A (en) 1972-12-19 1974-12-24 Mobil Oil Corp Multiple reactor fcc system relying upon a dual cracking catalyst composition
US3979757A (en) 1973-04-19 1976-09-07 Kilby Jack S Electrostatic display system with toner applied to head
US4090949A (en) 1974-07-31 1978-05-23 Mobil Oil Corportion Upgrading of olefinic gasoline with hydrogen contributors
US4134824A (en) 1977-06-07 1979-01-16 Union Carbide Corporation Integrated process for the partial oxidation-thermal cracking of crude oil feedstocks
US4264435A (en) 1978-04-05 1981-04-28 The Dow Chemical Company Crude oil cracking using partial combustion gases
US4297203A (en) 1980-04-14 1981-10-27 Standard Oil Company (Indiana) Apparatus for the catalytic cracking of hydrocarbons
US4466946A (en) 1982-03-12 1984-08-21 Standard Oil Company (Indiana) CO2 Removal from high CO2 content hydrocarbon containing streams
JPS59159887A (ja) 1983-03-03 1984-09-10 Mitsubishi Heavy Ind Ltd 炭化水素からオレフインを製造するための熱分解法
US4992160A (en) 1983-05-02 1991-02-12 Uop Conversion of crude oil feeds by catalytic cracking
JPS601138A (ja) 1983-06-17 1985-01-07 Mitsubishi Heavy Ind Ltd 炭化水素からオレフイン、および芳香族炭化水素を選択的に製造するための熱分解法
JPS6011584A (ja) 1983-06-30 1985-01-21 Mitsubishi Heavy Ind Ltd 炭化水素から石油化学製品を選択的に製造するための熱分解法
JPS6011585A (ja) 1983-06-30 1985-01-21 Mitsubishi Heavy Ind Ltd 炭化水素から石油化学製品を製造するための熱分解法
JPS60219292A (ja) 1984-04-13 1985-11-01 Mitsubishi Heavy Ind Ltd 石油化学製品の選択的製造法
US4717407A (en) 1984-12-21 1988-01-05 Air Products And Chemicals, Inc. Process for recovering helium from a multi-component gas stream
US4589896A (en) 1985-01-28 1986-05-20 Air Products And Chemicals, Inc. Process for separating CO2 and H2 S from hydrocarbons
US4830728A (en) 1986-09-03 1989-05-16 Mobil Oil Corporation Upgrading naphtha in a multiple riser fluid catalytic cracking operation employing a catalyst mixture
US5837032A (en) 1991-01-30 1998-11-17 The Cynara Company Gas separations utilizing glassy polymer membranes at sub-ambient temperatures
US5407467A (en) 1993-10-25 1995-04-18 Membrane Technology And Research, Inc. Sour gas treatment process
US5401300A (en) 1993-10-25 1995-03-28 Membrane Technology And Research, Inc. Sour gas treatment process including dehydration of the gas stream
US5407466A (en) 1993-10-25 1995-04-18 Membrane Technology And Research, Inc. Sour gas treatment process including membrane and non-membrane treatment steps
EP0684066A3 (en) 1994-05-26 1996-05-22 Boc Group Inc Process for the recovery of a light element from a diluted raw gas.
US6293979B1 (en) 1994-12-19 2001-09-25 Council Of Scientific & Industrial Research Process for the catalytic conversion of methane or natural gas to syngas or a mixture of carbon monoxide and hydrogen
JP3580518B2 (ja) 1996-06-05 2004-10-27 新日本石油株式会社 重質油の流動接触分解法
US6190533B1 (en) 1996-08-15 2001-02-20 Exxon Chemical Patents Inc. Integrated hydrotreating steam cracking process for the production of olefins
US5906728A (en) 1996-08-23 1999-05-25 Exxon Chemical Patents Inc. Process for increased olefin yields from heavy feedstocks
US5904837A (en) 1996-10-07 1999-05-18 Nippon Oil Co., Ltd. Process for fluid catalytic cracking of oils
US6033555A (en) 1997-06-10 2000-03-07 Exxon Chemical Patents Inc. Sequential catalytic and thermal cracking for enhanced ethylene yield
US5976361A (en) 1997-08-13 1999-11-02 Ormat Industries Ltd. Method of and means for upgrading hydrocarbons containing metals and asphaltenes
US6179900B1 (en) 1997-10-09 2001-01-30 Gkss Forschungszentrum Geesthacht Gmbh Process for the separation/recovery of gases
NO319519B1 (no) 1997-10-15 2005-08-22 Res Inst Petroleum Processing Fremgangsmate for fremstilling av etylen og propylen ved katalytisk pyrolyse av tunge hydrokarboner
US20030129109A1 (en) 1999-11-01 2003-07-10 Yoram Bronicki Method of and apparatus for processing heavy hydrocarbon feeds description
US6361582B1 (en) 2000-05-19 2002-03-26 Membrane Technology And Research, Inc. Gas separation using C3+ hydrocarbon-resistant membranes
US6531515B2 (en) 2001-02-20 2003-03-11 Chevron U.S.A. Inc. Hydrocarbon recovery in a fischer-tropsch process
US6656346B2 (en) 2001-06-07 2003-12-02 King Fahd University Of Petroleum And Minerals Fluid catalytic cracking process for heavy oil
US6896717B2 (en) 2002-07-05 2005-05-24 Membrane Technology And Research, Inc. Gas separation using coated membranes
US6743961B2 (en) 2002-08-26 2004-06-01 Equistar Chemicals, Lp Olefin production utilizing whole crude oil
US7019187B2 (en) 2002-09-16 2006-03-28 Equistar Chemicals, Lp Olefin production utilizing whole crude oil and mild catalytic cracking
US20040065584A1 (en) 2002-10-08 2004-04-08 Bishop Adeana Richelle Heavy lube oil from fischer- tropsch wax
US7132042B2 (en) 2002-10-08 2006-11-07 Exxonmobil Research And Engineering Company Production of fuels and lube oils from fischer-tropsch wax
US6979757B2 (en) 2003-07-10 2005-12-27 Equistar Chemicals, Lp Olefin production utilizing whole crude oil and mild controlled cavitation assisted cracking
US7045554B2 (en) 2003-09-03 2006-05-16 Conocophillips Company Method for improved Fischer-Tropsch catalyst stability and higher stable syngas conversion
US20050217479A1 (en) 2004-04-02 2005-10-06 Membrane Technology And Research, Inc. Helium recovery from gas streams
US7247765B2 (en) 2004-05-21 2007-07-24 Exxonmobil Chemical Patents Inc. Cracking hydrocarbon feedstock containing resid utilizing partial condensation of vapor phase from vapor/liquid separation to mitigate fouling in a flash/separation vessel
KR101318966B1 (ko) 2005-03-16 2013-10-17 퓨얼코어 엘엘씨 합성 탄화수소 화합물 제조를 위한 시스템, 방법 및 조성물
US7374664B2 (en) 2005-09-02 2008-05-20 Equistar Chemicals, Lp Olefin production utilizing whole crude oil feedstock
WO2007047657A1 (en) 2005-10-20 2007-04-26 Exxonmobil Chemical Patents Inc. Hydrocarbon resid processing
US7396449B2 (en) 2006-03-01 2008-07-08 Equistar Chemicals, Lp Olefin production utilizing condensate feedstock
WO2007108014A1 (en) 2006-03-20 2007-09-27 Cri Ehf Process for producing liquid fuel from carbon dioxide and water
JP2008011132A (ja) 2006-06-29 2008-01-17 Nec Electronics Corp 90度移相器
US20080011644A1 (en) 2006-07-13 2008-01-17 Dean Christopher F Ancillary cracking of heavy oils in conjuction with FCC unit operations
US20080011645A1 (en) 2006-07-13 2008-01-17 Dean Christopher F Ancillary cracking of paraffinic naphtha in conjuction with FCC unit operations
US7550642B2 (en) 2006-10-20 2009-06-23 Equistar Chemicals, Lp Olefin production utilizing whole crude oil/condensate feedstock with enhanced distillate production
GB2444055B (en) 2006-11-23 2011-11-23 Gtl F1 Ag Gas to liquids plant with consecutive Fischer-Tropsch reactors and hydrogen make-up
US20080277314A1 (en) 2007-05-08 2008-11-13 Halsey Richard B Olefin production utilizing whole crude oil/condensate feedstock and hydrotreating
US20080283445A1 (en) 2007-05-16 2008-11-20 Powers Donald H Hydrocarbon thermal cracking using atmospheric residuum
US7404889B1 (en) 2007-06-27 2008-07-29 Equistar Chemicals, Lp Hydrocarbon thermal cracking using atmospheric distillation
US7858834B2 (en) 2007-08-17 2010-12-28 Equistar Chemicals, Lp Olefin production utilizing a feed containing condensate and crude oil
US20090050523A1 (en) 2007-08-20 2009-02-26 Halsey Richard B Olefin production utilizing whole crude oil/condensate feedstock and selective hydrocracking
US7744747B2 (en) 2008-01-02 2010-06-29 Equistar Chemicals, Lp Olefin production utilizing whole crude oil/condensate feedstock with a partitioned vaporization unit
KR101026536B1 (ko) 2009-06-12 2011-04-01 한국화학연구원 피셔-트롭쉬 합성 반응용 철계열의 촉매와 이의 제조방법
US7825164B1 (en) 2009-11-18 2010-11-02 Chevron U.S.A. Inc. Process of synthesis gas conversion to liquid fuels using mixture of synthesis gas conversion catalyst and dual functionality catalyst
KR20130069610A (ko) 2010-03-31 2013-06-26 카운실 오브 사이언티픽 엔드 인더스트리얼 리서치 수소/합성가스 발생기
EP2624935A1 (en) 2010-10-06 2013-08-14 L'Air Liquide Société Anonyme pour l'Etude et l'Exploitation des Procédés Georges Claude Carbon dioxide removal process
EA201390991A1 (ru) 2010-12-30 2013-12-30 Шеврон Ю.Эс.Эй. Инк. Использование газоразделительных мембран для повышения добычи в областях, содержащих высокие концентрации сероводорода
US8704030B2 (en) 2011-06-17 2014-04-22 Uop Llc Process of separating gases using polyimide membranes
GB201120399D0 (en) 2011-11-25 2012-01-11 Air Fuel Synthesis Ltd Convertion of carbon dioxide
CA2885161A1 (en) 2012-10-16 2014-04-24 Loren K. Starcher Increasing combustibility of low btu natural gas
US9328035B1 (en) 2013-01-03 2016-05-03 University Of South Florida Systems and methods for producing liquid hydrocarbon fuels
CA2809503C (en) * 2013-03-13 2015-05-05 Expander Energy Inc. Partial upgrading process for heavy oil and bitumen
CN105050944B (zh) 2013-03-27 2017-10-27 托普索公司 生产烃的方法
KR101405518B1 (ko) 2013-05-22 2014-06-11 한국과학기술연구원 피셔-트롭시 합성반응용 코발트계 촉매의 제조방법
CA2938299A1 (en) 2013-11-13 2015-05-21 Nexen Energy Ulc Conversion of synthesis gas into liquid hydrocarbons via fischer tropsch synthesis
US8828121B1 (en) 2014-02-19 2014-09-09 Membrane Technology And Research, Inc. Gas separation membranes based on perfluorinated polymers
CN105992632A (zh) 2014-04-09 2016-10-05 埃克森美孚上游研究公司 纯化天然气的方法和系统
FR3020356A1 (fr) 2014-04-29 2015-10-30 Univ Lille Sciences Tech Procede de reformage sec d'au moins un alcane.
CN105214658A (zh) 2014-05-29 2016-01-06 苏州工业园区新国大研究院 甲烷二氧化碳重整制合成气的催化剂及其制备方法
CN106660020A (zh) 2014-07-17 2017-05-10 沙特基础全球技术有限公司 橄榄石催化剂用于甲烷的二氧化碳重整的用途
KR102039453B1 (ko) 2015-04-28 2019-11-01 지멘스 악티엔게젤샤프트 오일 함유 연료로부터의 아스팔텐 분리 장치 및 공정
EP3303521A1 (de) 2015-06-03 2018-04-11 Siemens Aktiengesellschaft Verfahren und vorrichtung zur abtrennung von asphaltenen aus einem asphaltenhaltigen brennstoff
WO2016207892A1 (en) 2015-06-25 2016-12-29 Technology Innovation Momentum Fund (Israel) Limited Partnership, C/O Ramot At Tel-Aviv University Ltd. Catalyst for dry reforming of methane and method for the preparation thereof
US9926497B2 (en) * 2015-10-16 2018-03-27 Saudi Arabian Oil Company Method to remove metals from petroleum
CN109072092A (zh) * 2016-04-22 2018-12-21 西门子股份公司 用于净化含沥青的燃料的方法
US10844296B2 (en) 2017-01-04 2020-11-24 Saudi Arabian Oil Company Conversion of crude oil to aromatic and olefinic petrochemicals
US10851316B2 (en) 2017-01-04 2020-12-01 Saudi Arabian Oil Company Conversion of crude oil to aromatic and olefinic petrochemicals
US10689587B2 (en) 2017-04-26 2020-06-23 Saudi Arabian Oil Company Systems and processes for conversion of crude oil
CN110709492A (zh) 2017-06-05 2020-01-17 沙特基础工业全球技术公司 原油向低沸点化学原料的转化

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1130080A1 (en) * 1998-10-30 2001-09-05 JGC Corporation Gas turbine fuel oil and production method thereof and power generation method
US20050211603A1 (en) 2004-03-23 2005-09-29 Denis Guillaume Doped spherically-shaped supported catalyst and process for hydrotreating and hydroconverting metal-containing oil fractions
US9067850B2 (en) * 2011-09-15 2015-06-30 Johnson Matthey Public Limited Company Synthesis gas and Fischer Tropsch integrated process
WO2018142351A1 (en) * 2017-02-02 2018-08-09 Sabic Global Technologies B.V. A process for the preparation of a feedstock for a hydroprocessing unit and an integrated hydrotreating and steam pyrolysis process for the direct processing of a crude oil to produce olefinic and aromatic petrochemicals

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
WEISS H ET AL: "COKING OF OIL SANDS, ASPHALTENES AND RESIDUAL OILS IN THE LR-PROCESS", UNITAR CONFERENCE, XX, XX, 9 August 1988 (1988-08-09), pages A - C, III, XP002913524 *

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