EP4436915A1 - Steam methane reforming with process carbon dioxide capture and ammonia firing - Google Patents
Steam methane reforming with process carbon dioxide capture and ammonia firingInfo
- Publication number
- EP4436915A1 EP4436915A1 EP22854591.9A EP22854591A EP4436915A1 EP 4436915 A1 EP4436915 A1 EP 4436915A1 EP 22854591 A EP22854591 A EP 22854591A EP 4436915 A1 EP4436915 A1 EP 4436915A1
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- European Patent Office
- Prior art keywords
- stream
- hydrogen
- fuel
- ammonia
- produce
- 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.)
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- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B3/00—Hydrogen; Gaseous mixtures containing hydrogen; Separation of hydrogen from mixtures containing it; Purification of hydrogen; Reversible storage of hydrogen
- C01B3/02—Production of hydrogen; Production of gaseous mixtures containing hydrogen
- C01B3/32—Production 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
- C01B3/34—Production 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
- C01B3/38—Production 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 using catalysts
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- C01B3/00—Hydrogen; Gaseous mixtures containing hydrogen; Separation of hydrogen from mixtures containing it; Purification of hydrogen; Reversible storage of hydrogen
- C01B3/02—Production of hydrogen; Production of gaseous mixtures containing hydrogen
- C01B3/32—Production 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
- C01B3/34—Production 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
- C01B3/48—Production 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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- C01B3/00—Hydrogen; Gaseous mixtures containing hydrogen; Separation of hydrogen from mixtures containing it; Purification of hydrogen; Reversible storage of hydrogen
- C01B3/50—Separation of hydrogen or hydrogen-containing gases from gaseous mixtures, e.g. purification
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/02—Processes for making hydrogen or synthesis gas
- C01B2203/0205—Processes for making hydrogen or synthesis gas containing a reforming step
- C01B2203/0227—Processes for making hydrogen or synthesis gas containing a reforming step containing a catalytic reforming step
- C01B2203/0233—Processes for making hydrogen or synthesis gas containing a reforming step containing a catalytic reforming step the reforming step being a steam reforming step
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/02—Processes for making hydrogen or synthesis gas
- C01B2203/0283—Processes for making hydrogen or synthesis gas containing a CO-shift step, i.e. a water gas shift step
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/04—Integrated processes for the production of hydrogen or synthesis gas containing a purification step for the hydrogen or the synthesis gas
- C01B2203/0415—Purification by absorption in liquids
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/04—Integrated processes for the production of hydrogen or synthesis gas containing a purification step for the hydrogen or the synthesis gas
- C01B2203/042—Purification by adsorption on solids
- C01B2203/043—Regenerative adsorption process in two or more beds, one for adsorption, the other for regeneration
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- C01B2203/046—Purification by cryogenic separation
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- C01B2203/04—Integrated processes for the production of hydrogen or synthesis gas containing a purification step for the hydrogen or the synthesis gas
- C01B2203/0465—Composition of the impurity
- C01B2203/0475—Composition of the impurity the impurity being carbon dioxide
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/08—Methods of heating or cooling
- C01B2203/0805—Methods of heating the process for making hydrogen or synthesis gas
- C01B2203/0811—Methods of heating the process for making hydrogen or synthesis gas by combustion of fuel
- C01B2203/0816—Heating by flames
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/08—Methods of heating or cooling
- C01B2203/0805—Methods of heating the process for making hydrogen or synthesis gas
- C01B2203/0811—Methods of heating the process for making hydrogen or synthesis gas by combustion of fuel
- C01B2203/0822—Methods of heating the process for making hydrogen or synthesis gas by combustion of fuel the fuel containing hydrogen
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- C01B2203/08—Methods of heating or cooling
- C01B2203/0805—Methods of heating the process for making hydrogen or synthesis gas
- C01B2203/0811—Methods of heating the process for making hydrogen or synthesis gas by combustion of fuel
- C01B2203/0827—Methods of heating the process for making hydrogen or synthesis gas by combustion of fuel at least part of the fuel being a recycle stream
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- C01B2203/12—Feeding the process for making hydrogen or synthesis gas
- C01B2203/1205—Composition of the feed
- C01B2203/1211—Organic compounds or organic mixtures used in the process for making hydrogen or synthesis gas
- C01B2203/1235—Hydrocarbons
- C01B2203/1241—Natural gas or methane
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/12—Feeding the process for making hydrogen or synthesis gas
- C01B2203/1205—Composition of the feed
- C01B2203/1211—Organic compounds or organic mixtures used in the process for making hydrogen or synthesis gas
- C01B2203/1235—Hydrocarbons
- C01B2203/1252—Cyclic or aromatic hydrocarbons
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/14—Details of the flowsheet
- C01B2203/146—At least two purification steps in series
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/14—Details of the flowsheet
- C01B2203/148—Details of the flowsheet involving a recycle stream to the feed of the process for making hydrogen or synthesis gas
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- C01—INORGANIC CHEMISTRY
- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/16—Controlling the process
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- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/16—Controlling the process
- C01B2203/1604—Starting up the process
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- C01B2203/00—Integrated processes for the production of hydrogen or synthesis gas
- C01B2203/16—Controlling the process
- C01B2203/1695—Adjusting the feed of the combustion
Definitions
- the present invention relates to an apparatus and method for hydrogen production using existing industrial units. More specifically, embodiments of the present invention are related to reducing the carbon footprint of a reforming unit via carbon capture and a reduction in produced carbons.
- the syngas is typically upgraded using a water-gas-shift to convert the carbon monoxide into carbon dioxide and additional hydrogen.
- a purifier typically a pressure swing adsorber (“PSA”)
- PSA pressure swing adsorber
- the PSA tail gas stream is then used as fuel, recycled and combined with the process natural gas for reforming, or recycled to the inlet of the PSA unit.
- Option #1 or #2 can also be combined with option #3 in order to reach an even higher capture rate. It shall be noted that without a CO2 capture unit, all the CO2, either from the process or the combustion will be emitted at the stack.
- the present invention is directed to an apparatus and process that satisfies at least one of these needs.
- the invention may include installation of a more economic process CO2 capture unit first and then to replace the CO2 emission caused by the combustion of remaining hydrocarbons by means of a hydrocarbon free fuel gas (e.g , NH3), such that the flue gas, which is the main CO2 contributor of the process, has a significantly reduced amount of CO2 as compared to a flue gas produced by combustion of CH 4 .
- a hydrocarbon free fuel gas e.g , NH3
- a method for producing hydrogen in a steam methane reformer with reduced carbon emissions can include the steps of: heating a feed stream comprising methane in a first heat exchanger to produce a heated feed stream, wherein the heated feed stream is at a temperature above 500°C; introducing the heated feed stream into a reaction zone under conditions effective for catalytic conversion of the heated feed stream to produce a reformed stream, wherein the reformed stream comprises hydrogen, carbon monoxide, and unreacted methane; introducing the reformed stream in the presence of steam to a shift conversion unit that is configured to produce a shifted gas stream comprising hydrogen and carbon dioxide; and purifying the shifted gas stream to produce a hydrogen product stream and a tail gas; wherein the conditions effective for catalytic conversion of the heated feed stream comprise providing heat to the reaction zone via combustion of a fuel and a hydrogen fuel stream in presence of an oxidizer, wherein the fuel comprises ammonia, wherein a flue gas is
- the method can include the step of removing carbon dioxide from a stream selected from the group consisting of a first stream, a second stream, and combinations thereof, wherein the first stream is the shifted gas stream prior to purification in a hydrogen purification unit, wherein the second stream is the tail gas;
- the hydrogen fuel stream comprises at least a first portion of the tail gas
- the oxidizer is oxygen-enriched combustion air
- the fuel and the hydrogen fuel stream are fed to separate burner systems; • the method can include the step of vaporizing liquid ammonia in an ammonia vaporizer to produce gaseous ammonia, wherein ammonia in the fuel comprises the gaseous ammonia from the ammonia vaporizer;
- the method can include the step of removing NOx from the flue gas using a selective catalytic reduction unit;
- the method can include the step of controlling an amount of unreacted ammonia in the flue gas
- the fuel has an ammonia content greater than 50%;
- the fuel comprising ammonia is preheated to a temperature above 300°C.
- a method for producing hydrogen in a steam methane reformer with reduced carbon emissions can include a first mode of operation and a second mode of operation, wherein during both modes of operation, the method comprises the steps of: heating a feed stream comprising methane in a first heat exchanger to produce a heated feed stream, wherein the heated feed stream is at a temperature above 500°C; introducing the heated feed stream into a reaction zone under conditions effective for catalytically cracking the heated feed stream to produce reformed stream, wherein the reformed stream comprises hydrogen, carbon monoxide, and unreacted methane; introducing the reformed stream in the presence of steam to a shift conversion unit that is configured to produce a shifted gas stream comprising hydrogen and carbon dioxide; purifying the shifted gas stream to produce a hydrogen product stream and a tail gas; and removing carbon dioxide from a stream selected from the group consisting of a first stream, a second stream, and combinations thereof, wherein the first stream is the shifted gas stream, wherein the
- the method for producing hydrogen in a steam methane reformer can include the steps of: heating a feed stream comprising methane in a first heat exchanger to produce a heated feed stream, wherein the heated feed stream is at a temperature above 500°C; introducing the heated feed stream into a reaction zone under conditions effective for catalytically cracking the heated feed stream to produce a reformed stream and a flue gas stream, wherein the reformed stream comprises hydrogen, carbon monoxide, and unreacted methane; introducing the reformed stream in the presence of steam to a shift conversion unit that is configured to produce a shifted gas stream comprising hydrogen and carbon dioxide; purifying the shifted gas stream to produce a hydrogen product stream and a tail gas; capturing CO2 from the shifted gas stream or from the tail gas stream; storing liquid ammonia in a single storage vessel; vaporizing the liquid ammonia to create a gaseous ammonia stream; and using at least a portion of the gaseous ammonia as
- an apparatus for producing hydrogen in a steam methane reformer with reduced carbon emissions may include: a first heat exchanger configured to heat a feed stream comprising methane to produce a heated feed stream that is at a temperature above 500°C; a reaction zone in fluid communication with the first heat exchanger, wherein the reaction zone is configured to receive the heated feed stream under conditions effective for catalytically cracking the heated feed stream and catalytically crack the heated feed stream to produce a reformed stream, wherein the reformed stream comprises hydrogen, carbon monoxide, and unreacted methane; a shift conversion unit in fluid communication with the reaction zone, wherein the shift conversion unit is configured to receive the reformed stream in the presence of steam and produce a shifted gas stream comprising hydrogen and carbon dioxide; and a hydrogen purification unit configured to receive the shifted gas stream and purify the shifted gas stream to produce a hydrogen product stream and a tail gas; an ammonia source; wherein the conditions effective for catalytically cracking
- the hydrogen fuel stream and the fuel have a combined molar flow rate, wherein a molar flow rate of the hydrogen combined to the combined molar flow rate is between 0.05 and 0.4, preferably between 0.1 and 0.25, more preferably about 0.20; • the hydrogen fuel stream is combusted in an amount that is effective for providing a stable combustion behavior;
- the apparatus can also include a carbon dioxide removal unit that is configured to remove carbon dioxide from a stream selected from the group consisting of a first stream, a second stream, and combinations thereof, wherein the first stream is the shifted gas stream prior to purification, wherein the second stream is the tail gas;
- the hydrogen fuel stream comprises at least a first portion of the tail gas
- a conduit is in fluid communication with the carbon dioxide removal unit and the reaction zone, such that the conduit is configured to send a second portion of the tail gas to the reaction zone;
- the oxidizer is oxygen-enriched combustion air
- the apparatus can also include an ammonia vaporizer configured to vaporize liquid ammonia to produce gaseous ammonia, wherein ammonia in the fuel comprises the gaseous ammonia from the ammonia vaporizer; and/or
- the apparatus can also include a NOx removal unit that is configured to remove NOx from the flue gas using a selective catalytic reduction unit.
- an apparatus for producing hydrogen in a steam methane reformer with reduced carbon emissions can include: a first heat exchanger, a reaction zone, a shift conversion unit, a hydrogen purification unit, and a CO2 removal unit, the apparatus being configured to operate in a first mode of operation and a second mode of operation.
- the apparatus can be configured to: heat a feed stream comprising methane in the first heat exchanger to produce a heated feed stream, wherein the heated feed stream is at a temperature above 500°C; introduce the heated feed stream into the reaction zone under conditions effective for catalytically cracking the heated feed stream to produce reformed stream, wherein the reformed stream comprises hydrogen, carbon monoxide, and unreacted methane; introducing the reformed stream in the presence of steam to the shift conversion unit that is configured to produce a shifted gas stream comprising hydrogen and carbon dioxide; purifying the shifted gas stream in the hydrogen purification unit to produce a hydrogen product stream and a tail gas; and removing carbon dioxide, using a CO2 removal unit, from a stream selected from the group consisting of a first stream, a second stream, and combinations thereof, wherein the first stream is the shifted gas stream, wherein the second stream is the tail gas.
- the conditions effective for catalytically cracking the heated feed stream can include the step of providing heat to the reaction zone via combustion of a fuel and a hydrogen fuel stream in the presence of an oxidizer, wherein the hydrogen fuel stream comprises at least a first portion of the tail gas, wherein a flue gas is produced by the combustion of the fuel and the hydrogen fuel stream.
- the fuel comprises a hydrocarbon
- the apparatus is in fluid communication with an ammonia source such that the fuel comprises ammonia, and the flue gas produced by the second mode of operation comprises less carbon dioxide than the flue gas produced by the first mode of operation.
- the ammonia may be pre-split by thermal decomposition over a catalyst at elevated temperature in order to further increase the content of hydrogen in the fuel and improve combustion performance.
- Ni or Ru being non-limiting examples of acceptable catalyst.
- Ammonia is typically stored in liquid form (either cryogenic at -33°C and ambient pressure, or at elevated pressure (—10 bar) at ambient temperature). Therefore, in order to ensure a reliable ammonia fuel supply, an ammonia fuel storage tank and ammonia fuel vaporizer can be included. In the case of the unlikely event gaseous ammonia will be available, the liquid ammonia system can be avoided.
- an ammonia fuel system can be installed completely independent to the hydrocarbon fuel and PSA tail gas fuel system.
- FIG. 1 shows a prior art embodiment of a hydrogen production facility in accordance where CO2 is captured from the synthesis gas in a hydrogen production process.
- FIG. 2 shows an embodiment of a hydrogen production facility in accordance with an embodiment of the present invention.
- FIG. 3 shows an embodiment of a hydrogen production facility in accordance with an embodiment of the present invention.
- FIG. 4 shows an embodiment of a hydrogen production facility in accordance with an embodiment of the present invention.
- the claimed process scheme includes a steam methane reformer, a CO-Shift conversion unit, a H2 purification unit, a cryogenic CO2 capture unit and the usage of hydrogen and/or ammonia or preferably a mixture of ammonia and hydrogen as make up fuel for the reformer.
- FIG. 1 describes a typical hydrogen production process as known and considered as prior art.
- a hydrocarbon feedstock 1, typically natural gas, is used.
- certain feed pretreatment measures can occur and are summarized as pretreatment unit 50. These might include, but are not limited to, the removal of steam reforming catalyst poisons (e.g., sulphur, chloride, heavy metals).
- the feedstock might be heated and enriched with steam as required to achieve effective steam methane reforming process conditions.
- the pretreated steam reformer feedstock 2 is sent to the steam methane reformer 51 for generation of a hydrogen, CO2 and CO containing syngas 3.
- CO2 product 15a can be separated from syngas by a CO2 capture unit 53 using conventional physical or chemical solvent based technologies (e.g., amine wash or methanol wash technologies).
- the H2 rich gas 5 after the CO2 removal might be further purified by a dedicated H2 purification unit 54 to increase the H2 purity of the hydrogen product 6 as required.
- CO2 might be captured from the PSA off gas 7 using a dedicated CO2 separation unit 55.
- the remaining PSA offgas gas 8 might be used as fuel for the steam methane reformer 51.
- the heat demand of the steam reformer 51 is typically higher than the heat supplied by combusting the remaining PSA off gas 8.
- a defined hydrocarbon stream is used as makeup fuel 9.
- NOx might be formed, and a DeNOX unit 57 might be required to reduce the NOx values below environmentally allowable thresholds.
- a CO2 capture unit 56 in the flue gas system might be installed to generate a CO2 product stream 15c and a flue gas stream 10, 11, 12.
- the flue gas CO2 capture unit (56) is the most expensive solution versus CO2 capture from syngas 4 or PSA tail gas 7.
- This prior art process while providing a high overall CO2 capture rate, provides a costly flue gas CO2 capture unit (56) that is just not economically feasible.
- Embodiments of the present invention are intended to overcome this problem.
- the claimed process includes a CO2 capture unit 55 in the PSA offgas 7a or alternatively a syngas CO2 capture unit 53.
- the hydrocarbon make up fuel (9 from FIG. 1) is replaced with carbon-free ammonia fuel 13.
- at least a first portion of the PSA off gas 8a can be mixed with the ammonia fuel 13.
- a portion of the off gases 8b can be recycled and combined with preheated feed 2 for further reaction and recovery.
- the amount of ammonia fuel can be further increased.
- at least a part of the PSA off gas 8b can be recycled to the hydrogen purification unit 54 to recover the H2 contained in the off gas and to increase the overall H2 product yield.
- FIG. 3 illustrates an additional aspect of the invention.
- modem SMR plant might have already a DeNOx unit installed where older plant might not have or might have only reserved provision for future revamp.
- Ammonia is used as reactant for the reduction of NOx to N2 and H2O.
- Ammonia is a toxic and flammable substance and the storage requires various safety precautions and thus lead to additional handling cost.
- a combined liquid ammonia storage (58) and vaporization system (59) is foreseen.
- the liquid ammonia (14) from storage vessel 58 is vaporized by the ammonia vaporization system (59).
- the gaseous ammonia is the used as steam reformer fuel 13a and as reactant 13b for the DeNOx unit.
- FIG. 4 provides another embodiment of the present invention in which dedicated CO2 separation unit 55 is preferably a cryogenic type separation device that is configured to separate CO2 and hydrogen from the PSA off gas stream 7a.
- This unit can produce carbon dioxide 15b, a hydrogen stream 16, and off gas 8.
- off gas 8a can be used for fuel, and second off gas 8b can be recycled to a location upstream the SMR 51.
- hydrogen stream 16 can be split, with one portion being used as fuel, which helps with flame stability, while the other portion can be recycled to the PSA for further refinement.
- flow off gas 8a can be reduced or even eliminated entirely if flow rate of hydrogen stream 16 is sufficient for combustion purposes. This advantageously further reduces CO2 in the resulting flue gas 10.
- the trim fuel ratio can be higher, meaning the ratio of additional fuel versus waste fuel streams (PSA or CB offgas) is higher, and the effect of replacing natural gas with ammonia on the CO2 emissions is relatively higher compared to low trim fuel ratio plant setups (w/o CO2 removal).
- oxy gen-enriched combustion air (23%) can be used to improve flame stability, increase the flame temperature and thus, the heat flux to the tubes.
- a selective catalytic reduction (“SCR”) unit can be installed to treat the high NOx levels.
- SCR selective catalytic reduction
- ammonia is expected to be present in a significantly high concentration in the flue gases. It is therefore possible to make use of the ammonia already existing in the flue gas to optimally reduce the NOx through the SCR, ideally without injecting additional ammonia.
- the SMR can operate in two modes: Conventional mode (with natural gas plus PSA tail gas (or residue from cryocap)) and NH3/H2 off gas mode (no Natural gas injection).
- Conventional mode with natural gas plus PSA tail gas (or residue from cryocap)
- NH3/H2 off gas mode no Natural gas injection
- the first mode may be used for the first years of operation of the plant, and the second mode later on when CO2 emissions must be further reduced. In this case, burners and fuel system are designed accordingly.
- Table I and Table II below show comparative data that compares an embodiment of the prior art (using NG as fuel) with results in which the fuel is at least partially replaced with ammonia (stream 13a) (i.e., 85% ammonia or 100% ammonia). As can be seen, there is a significant reduction in carbon dioxide emission.
- Table I Comparison of Prior Art with Embodiments of the Invention
- Table II Another Comparison of Prior Art with Embodiments of the Invention
- stable combustion behavior can be determined by measuring an extinction stretch rate of the flame produced by certain embodiments of the invention.
- combustion can be considered stable as long as the extinction stretch rate of a flame produced according to certain embodiments of the present invention is within 15%, preferably within 10%, more preferably within 5% of the extinction stretch rate of a flame produced using methane, off-gasses and air.
- the invention has be described primarily in accordance with a steam methane reforming production unit, the invention can be equally applied to other hydrogen production facilities such as, but not limited to, autothermal reforming.
- embodiments of the invention include the combination of reducing CO2 in the flue gas by using a fuel gas comprised of ammonia, as well as carbon capture on the resulting process streams (i.e., streams that result from the conversion of the feed stream to hydrogen).
- Optional or optionally means that the subsequently described event or circumstances may or may not occur.
- the description includes instances where the event or circumstance occurs and instances where it does not occur.
- Ranges may be expressed herein as from about one particular value, and/or to about another particular value. When such a range is expressed, it is to be understood that another embodiment is from the one particular value and/or to the other particular value, along with all combinations within said range.
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Abstract
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Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/US2022/054001 WO2024136886A1 (en) | 2022-12-23 | 2022-12-23 | Steam methane reforming with process carbon dioxide capture and ammonia firing |
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| Publication Number | Publication Date |
|---|---|
| EP4436915A1 true EP4436915A1 (en) | 2024-10-02 |
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| Application Number | Title | Priority Date | Filing Date |
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| EP22854591.9A Pending EP4436915A1 (en) | 2022-12-23 | 2022-12-23 | Steam methane reforming with process carbon dioxide capture and ammonia firing |
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| Country | Link |
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| EP (1) | EP4436915A1 (en) |
| KR (1) | KR20250126601A (en) |
| WO (1) | WO2024136886A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| MY193368A (en) * | 2017-12-21 | 2022-10-07 | Casale Sa | Process for producing a hydrogen-containing synthesis gas |
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- 2022-12-23 EP EP22854591.9A patent/EP4436915A1/en active Pending
- 2022-12-23 WO PCT/US2022/054001 patent/WO2024136886A1/en not_active Ceased
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