EP3247820A1 - Solar powered systems and methods for generating hydrogen gas and oxygen gas from water - Google Patents
Solar powered systems and methods for generating hydrogen gas and oxygen gas from waterInfo
- Publication number
- EP3247820A1 EP3247820A1 EP16740578.6A EP16740578A EP3247820A1 EP 3247820 A1 EP3247820 A1 EP 3247820A1 EP 16740578 A EP16740578 A EP 16740578A EP 3247820 A1 EP3247820 A1 EP 3247820A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- unit
- turbine
- steam
- coupled
- solar
- 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.)
- Withdrawn
Links
Classifications
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B1/00—Electrolytic production of inorganic compounds or non-metals
- C25B1/01—Products
- C25B1/02—Hydrogen or oxygen
- C25B1/04—Hydrogen or oxygen by electrolysis of water
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B15/00—Operating or servicing cells
- C25B15/08—Supplying or removing reactants or electrolytes; Regeneration of electrolytes
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B5/00—Electrogenerative processes, i.e. processes for producing compounds in which electricity is generated simultaneously
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03G—SPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
- F03G6/00—Devices for producing mechanical power from solar energy
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03G—SPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
- F03G6/00—Devices for producing mechanical power from solar energy
- F03G6/003—Devices for producing mechanical power from solar energy having a Rankine cycle
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03G—SPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
- F03G6/00—Devices for producing mechanical power from solar energy
- F03G6/02—Devices for producing mechanical power from solar energy using a single state working fluid
- F03G6/04—Devices for producing mechanical power from solar energy using a single state working fluid gaseous
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- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/40—Solar thermal energy, e.g. solar towers
- Y02E10/46—Conversion of thermal power into mechanical power, e.g. Rankine, Stirling or solar thermal engines
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- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/30—Hydrogen technology
- Y02E60/36—Hydrogen production from non-carbon containing sources, e.g. by water electrolysis
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- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P20/00—Technologies relating to chemical industry
- Y02P20/10—Process efficiency
- Y02P20/133—Renewable energy sources, e.g. sunlight
Definitions
- the invention generally concerns a solar-powered system for generating hydrogen gas and oxygen gas from water.
- the invention relates to such a system that utilizes a solar powered turbine unit coupled to a generator and an electrolysis unit.
- Hydrogen (H 2 ) gas is a valuable product and is used as a feed stock in petroleum, chemical, energy and semiconductor industries.
- hydrogen is used in the processing of hydrocarbons (for example, hydrocracking, hydrodealkylation, and hydrodesulfurization processes), the production of ammonia, the production of methanol, various chemical processes (for example, hydrogenation reactions), and as a coolant.
- Hydrogen gas can be recovered as a by-product of chemical or biological reactions, or separated from production of fossil fuels.
- Conventional methods to produce hydrogen include steam reforming of natural gas, thermochemical splitting of water, and electrolysis of water. Hydrogen production as a product of water-splitting offers enormous potential benefits for the energy sector, the environment, and the chemical industry.
- C0 2 carbon dioxide
- S0 2 can be generated as a reaction product when excess water is used as shown in equation (I).
- Carbon dioxide is recognized by government agencies as the primary greenhouse gas produced through human activity and the emission of carbon dioxide is regulated by many governmental agencies.
- the invention is capable of elevating the temperature and pressure of the water, which can then be used in an electrolysis unit.
- elevating the water temperature and pressure the overall electrical energy needed for the water splitting reaction is reduced, which in certain aspects, can be at the expense of using additional heat input from either solar energy or internal heat dissipation.
- the electrical energy is produced using a generator that is coupled to a solar powered turbine unit capable of driving the generator unit and providing steam to the electrolysis unit. This can be done without the use of fossil fuel and without producing carbon dioxide during the water-splitting reaction (see Equation (III) above and compare with Equations (I) and (II)).
- the system can include (a) an electrolysis unit configured to produce hydrogen gas and oxygen gas from water, (b) a first generator unit configured to provide electricity to the electrolysis unit; and (c) a solar- powered turbine unit configured to drive the first generator unit and to supply steam to the steam feed inlet.
- the system includes an air supply unit that feeds compressed air to the oxygen evolution side of the electrolysis unit to maintain less than pure oxygen in the outlet stream.
- a non-limiting example of an air supply unit is an air compressor.
- the electrolysis unit can include a steam feed inlet and at least a first product outlet for hydrogen gas or oxygen gas, or both.
- the hydrogen gas and the oxygen gas exits the electrolysis unit as separate streams through two product outlets.
- the oxygen gas can through a second product outlet and the hydrogen gas can exit through the first product outlet.
- the stream exiting the second product outlet is an oxygen-rich stream that includes oxygen and air.
- the solar-powered turbine unit can include (i) a first turbine coupled to and configured to provide shaft work to the first generator unit; (ii) a steam generation unit coupled to the steam feed inlet of the electrolysis unit and configured to hold water; and (iii) a solar unit configured to generate and provide heat to the steam generation unit.
- the solar unit is configured to generate and provide heat to the working fluid of the turbine.
- the steam produced by the steam generation unit can include pressurized steam.
- the system can also include a product cooling unit coupled to the electrolysis unit and configured to receive and reduce the temperature of the produced hydrogen gas or oxygen gas, or both.
- the system can also include a product cooling unit coupled to the electrolysis unit and configured to receive and reduce the temperature of the produced hydrogen gas and oxygen gas.
- the product cooling unit can include (i) a second turbine coupled to and configured to provide power to a second generator unit, wherein the second turbine is configured to receive the produced hydrogen gas or oxygen gas, or both; and (ii) a heat transfer unit coupled to and configured to transfer heat produced from the product cooling unit to the steam generator unit.
- the second generator unit can be configured to provide electricity to the electrolysis unit.
- the product cooling unit includes a third turbine coupled to and configured to provide power to the second generator unit or to a third generator unit, wherein the third turbine is configured to receive the produced hydrogen gas or oxygen gas, or both, and wherein the third generator unit is configured to provide electricity to the electrolysis unit.
- the solar powered turbine unit can include (i) the first turbine coupled to and configured to provide shaft work to the first generator unit; (ii) the steam generation unit coupled to the steam feed inlet of the electrolysis unit, (iii) the solar unit configured to generate and provide heat to the steam generation unit; and (iv) a condenser.
- the steam generation unit can include a boiler that is configured to hold water and produce steam.
- the boiler can be coupled to the first turbine and configured to transfer the produced steam from the boiler to the first turbine.
- the first turbine can be coupled to the condenser and configured to transfer steam from the turbine to the condenser.
- the condenser can be configured to condense the steam transferred from the turbine into liquid, and be coupled to and configured to transfer the liquid to the boiler.
- the solar powered turbine unit is a closed-loop gas turbine unit that can include (i) the first turbine coupled to and configured to provide shaft work to the first generator unit; (ii) the steam generation unit coupled to the steam feed inlet of the electrolysis unit, and (iii) the solar unit configured to generate and provide heat to a cooled fluid (for example, a gas) produced from the steam generation unit.
- the steam generation unit can include a first heat exchanger coupled to the first turbine to receive heated fluid from the first turbine. Heat can be transferred in the first heat exchanger from the heated fluid to water to produce steam and cooled fluid.
- the heat exchanger can also be coupled to a compressor and configured to transfer the cooled fluid to the compressor.
- the compressor can be coupled to a second heat exchanger that is configured to heat the cooled fluid with heat produced by the solar unit.
- the second heat exchanger can be coupled to the first turbine to transfer the heated fluid to the first turbine.
- the closed-loop gas turbine unit includes a back pressure steam turbine unit coupled to the first heat and configured to receive heat from the first heat exchanger.
- the back pressure steam turbine can include a fourth turbine couple to and configured to provide shaft work to the first generator unit.
- the first turbine and the fourth turbine are set-up in series of another.
- the back pressure steam turbine unit can include a fourth turbine coupled to and configured to provide power to a fourth generator unit in which the fourth generator unit is configured to provide electricity to the electrolysis unit.
- Embodiment 1 includes a solar-powered system for generating hydrogen gas and oxygen gas from water.
- the system can include (a) an electrolysis unit configured to produce hydrogen gas and oxygen gas from water, the electrolysis unit can include a steam feed inlet and at least a first product outlet for hydrogen gas, oxygen gas or both; (b) a first generator unit configured to provide electricity to the electrolysis unit; and (c) a solar-powered turbine unit configured to drive the first generator unit and to supply steam to the steam feed inlet, the solar-powered turbine unit that includes (i) a first turbine coupled to and configured to provide shaft work to the first generator unit; (ii) a steam generation unit coupled to the steam feed inlet of the electrolysis unit and configured to hold water; and (iii) a solar unit configured to generate and provide heat to the steam generation unit.
- Embodiment 2 is the system of embodiment 1, further including a product cooling unit coupled to the electrolysis unit and configured to receive and reduce the temperature of the produced hydrogen gas or oxygen gas, or, preferably, both.
- Embodiment 3 is the system of embodiment 2, wherein the product cooling unit that includes (i) a second turbine coupled to and configured to provide power to a second generator unit, wherein the second turbine is configured to receive the produced hydrogen gas or oxygen gas, or, preferably, both; and (ii) a heat transfer unit coupled to and configured to transfer heat produced from the product cooling unit to the steam generator unit.
- Embodiment 4 is the system of embodiment 3, wherein the second generator unit is configured to provide electricity to the electrolysis unit.
- Embodiment 5 is the system of embodiment 4, wherein the product cooling unit includes a third turbine coupled to and configured to provide power to the second generator unit or to a third generator unit, wherein the third turbine is configured to receive the produced hydrogen gas or oxygen gas, or, preferably, both, and wherein the third generator unit is configured to provide electricity to the electrolysis unit.
- the product cooling unit includes a third turbine coupled to and configured to provide power to the second generator unit or to a third generator unit, wherein the third turbine is configured to receive the produced hydrogen gas or oxygen gas, or, preferably, both, and wherein the third generator unit is configured to provide electricity to the electrolysis unit.
- Embodiment 6 is the system of any one of embodiments 1-5, wherein the solar powered turbine unit can include (i) the first turbine coupled to and configured to provide shaft work to the first generator unit; (ii) the steam generation unit coupled to the steam feed inlet of the electrolysis unit, wherein the steam generation unit includes a boiler that is configured to hold water and produce steam; (iii) the solar unit configured to generate and provide heat to the boiler; and (iv) a condenser; wherein the boiler is coupled to the first turbine and configured to transfer steam from the boiler to the first turbine, wherein the first turbine is coupled to the condenser and configured to transfer steam from the turbine to the condenser, wherein the condenser is configured to condense the steam transferred from the turbine into liquid, and wherein the condenser is coupled to and configured to transfer the liquid to the boiler.
- the solar powered turbine unit can include (i) the first turbine coupled to and configured to provide shaft work to the first generator unit; (ii) the steam generation unit coupled to the steam feed in
- Embodiment 7 is the system of any one of embodiments 1-5, wherein the solar powered turbine unit is a closed-loop gas turbine unit that includes (i) the first turbine coupled to and configured to provide shaft work to the first generator unit; (ii) the steam generation unit coupled to the steam feed inlet of the electrolysis unit, wherein the steam generation unit can include a first heat exchanger coupled to the first turbine to receive heated fluid from the first turbine, wherein heat is transferred in the first heat exchanger from the heated fluid to water to produce steam and cooled fluid; and (iii) the solar unit configured to generate and provide heat to the cooled fluid; and wherein the heat exchanger is coupled to a compressor and configured to transfer the cooled fluid to the compressor, wherein the compressor is coupled to a second heat exchanger that is configured to heat the cooled fluid with heat produced by the solar unit, and wherein the second heat exchanger is coupled to the first turbine to transfer the heated fluid to the first turbine.
- the solar powered turbine unit is a closed-loop gas turbine unit that includes (i) the first
- Embodiment 8 is the system of embodiment 7, further including a back pressure steam turbine unit.
- Embodiment 9 is the system of embodiment 8, wherein the back pressure steam turbine is coupled to the first heat exchanger and configured to receive steam from the heat exchanger.
- Embodiment 10 is the system of embodiment 9, wherein the back pressure steam turbine unit can include a fourth turbine coupled to and configured to provide shaft work to the first generator unit.
- Embodiment 11 is the system of embodiment 9, wherein the back pressure steam turbine unit can include a fourth turbine coupled to and configured to provide power to a fourth generator unit, and wherein the fourth generator unit is configured to provide electricity to the electrolysis unit.
- Embodiment 12 is the system of any one of embodiments 1 to 11, wherein the steam produced by the steam generation unit is pressurized steam.
- Embodiment 13 is the system of any one of embodiments 1 to 12, wherein the system does not produce carbon dioxide during use.
- Embodiment 14 is the system of any one of embodiments 1 to 13, wherein the produced hydrogen gas or the produced oxygen gas, or both, are each used in a downstream chemical process.
- Embodiment 15 is the system of any one of embodiments 1 to 14, wherein the electrolysis unit can include at least two product outlets, wherein the first product outlet is for hydrogen gas and a second product outlet is for oxygen gas.
- Embodiment 16 is the system of embodiment 15, further can include an air supply coupled to the electrolysis unit, wherein the air supply provides air to an oxygen evolution side of the electrolysis unit such that a mixture of oxygen and air are produced from the second outlet.
- Embodiment 17 is a method of generating hydrogen gas and oxygen gas from water with any one of the systems of embodiments 1 to 16. The method can include subjecting water to electrolysis conditions sufficient to produce hydrogen gas and oxygen gas.
- Embodiment 18 is the method of embodiment 17, further including providing the hydrogen gas to one or more storage units, chemical process units, transportation units, or any combination thereof.
- Embodiment 19 is the method of any one of embodiments 17 to 18, further including providing the oxygen gas to one or more storage units, chemical process units, transportation units, or any combination thereof.
- Embodiment 20 is the method of any one of embodiments 17 to 19, wherein the produced hydrogen gas or the produced oxygen gas, or both, are each used in a downstream chemical process.
- Embodiment 21 is the method of any one of embodiments 17 to 20, wherein no carbon dioxide is produced by the system.
- Embodiments 22 is the method of any one of embodiments 17 to 21, wherein the water is in the form of steam produced by the steam generation unit.
- Coupled means either a direct connection or an indirect connection (for example, one or more intervening connections) between one or more objects or components, and not necessarily mechanically; two items that are “coupled” may be unitary with each other.
- fluid refers to a substance or a mixture of compounds that exist in a gas phase, liquid phase, or a mixture thereof and are capable of flowing.
- Non-limiting examples of a fluid include air, liquid carbon dioxide, gaseous carbon dioxide, water, steam, or mixtures thereof.
- substantially and its variations are defined as being largely but not necessarily wholly what is specified as understood by one of ordinary skill in the art, and in one non-limiting embodiment substantially refers to ranges within 10%, within 5%, within 1%, or within 0.5%.
- the systems of the present invention can "comprise,” “consist essentially of,” or “consist of particular ingredients, components, compositions, etc. disclosed throughout the specification. With respect to the transitional phase “consisting essentially of,” in one non- limiting aspect, a basic and novel characteristic of the systems of the present invention are their use of solar energy and the reduced amount of carbon dioxide produced when the system is in use. [0022] Other objects, features and advantages of the present invention will become apparent from the following figures, detailed description, and examples. It should be understood, however, that the figures, detailed description, and examples, while indicating specific embodiments of the invention, are given by way of illustration only and are not meant to be limiting. Additionally, it is contemplated that changes and modifications within the spirit and scope of the invention will become apparent to those skilled in the art from this detailed description.
- FIGS. 1A and B are schematics of a solar-powered system of the present invention for generating hydrogen gas and oxygen gas from water.
- FIG. 2 is a schematic of a solar-powered turbine unit of the present invention.
- FIG. 3 is a schematic of the solar-powered system of the present invention that includes a cooling unit.
- FIG. 4 is a schematic of the solar-powered turbine unit of the present invention that includes a boiler and a condenser.
- FIG. 5 is a schematic of the solar-powered turbine unit of the present invention that includes a closed-loop gas turbine unit.
- FIG. 6 is a schematic of the solar-powered turbine unit of the present invention that includes a closed-loop gas turbine unit and a back-pressure steam turbine unit set-up in series with one another.
- FIG. 7 is a schematic of the solar-powered turbine unit of the present invention that includes a closed-loop gas turbine unit and a back-pressure steam turbine unit and a fourth generator unit set-up in parallel with one another.
- FIG. 8 is a schematic of the solar-powered turbine unit of the present invention that includes a closed-loop gas turbine unit.
- the currently available water-splitting systems require a significant amount of electrical energy. Most of the electrical energy is produced by combustion of fossil fuel, which produces carbon dioxide, a known greenhouse gas. By comparison, the present invention allows for reduced or limited carbon dioxide production by relying on the water- splitting reaction of Equation (III).
- Equation (III) The discovery lies in the combination of solar power, heat recovery, and steam generation to produce sufficient heat and electricity to power an electrolysis unit. Use of the steam in the electrolysis unit reduces the electrical energy needed for the water splitting reaction compared to the electrical energy required when using an electrolysis unit operating at or near ambient temperature fed with water.
- FIGS. 1-7 mechanical or thermal energy is depicted using a line with an open-headed arrow. Mass flow is depicted with a line and a closed-headed arrow. Electrical power is depicted with a dashed line and a closed-headed arrow. It should be understood that inlets, outlets, valves and connectors are known to one of ordinary skill.
- FIGS. 1 A and IB are schematics that depict a solar-powered system of the present invention.
- the solar-powered system 100 can include an electrolysis unit 102, a first generator unit 104, and a solar-powered turbine unit 106.
- Steam feed 108 generated in the solar-powered turbine unit 106 can exit the solar-powered turbine unit 106 and enter the electrolysis unit 102.
- the use of steam instead of water in electrolysis unit 102 lowers the amount of electrical energy required for the electrolytic water-splitting reaction as compared to room temperature electrolytic water-splitting conditions.
- the steam feed may be delivered to the electrolysis unit 102 at a pressure of 1 to 10 bar or 10 bar. In electrolysis unit 102, the steam is split into hydrogen gas and oxygen gas.
- Electrolysis unit 102 can be a high steam temperature electrolysis unit.
- electrolysis unit 102 can be a solid oxide electrolysis system using a solid electrolyte of one or more materials such as, for example, yttria-stabilised zirconia, scandia stabilized zirconia, ceria-based electrolytes, or lanthanum gallate materials.
- Electrolysis conditions sufficient to split water into hydrogen and oxygen can include temperatures of 50 to 1000 °C, 250 to 950 °C, or from 600 to 900 °C and pressures of 0.1 to 1 MPa.
- Hydrogen gas stream 110 can exit electrolysis unit 102 and be used in downstream chemical process, transportation units.
- Oxygen gas stream 112 can exit electrolysis unit 102 and be used in downstream chemical process and/or transportation units.
- the hydrogen gas stream and/or oxygen gas stream can also be stored, transported, or sold.
- Electrolysis unit 102 is capable of converting 50 to 90 mol% water to hydrogen gas and oxygen gas.
- hydrogen gas and oxygen gas generated during water splitting can be collected in a hydrogen collector and an oxygen collector in the electrolysis unit 102.
- the collectors can each provide hydrogen gas or oxygen gas to downstream units, transportation units, storage units, or the like.
- air supply unit 114 is coupled to electrolysis unit 102.
- Air supply unit 114 can provide air stream 116 (for example, compressed air) to the oxygen evolution side of the electrolysis unit to maintain less than pure oxygen in the outlet stream.
- the air entering electrolysis unit 102 can be compressed air.
- the oxygen stream 112 exiting electrolysis unit is an oxygen-rich stream having at least 10 to 90 vol% oxygen, 50 to 80 vol% oxygen, or 60 to 70 vol% oxygen.
- first generator unit 104 is coupled to electrolysis unit 102 and solar-powered turbine unit 106.
- Solar-powered turbine unit 106 can include a first turbine.
- the first turbine can be one or more solar-powered gas turbine, steam turbines, back pressure steam turbines or any combination thereof. Turbines in solar-powered turbine unit generate mechanical energy (shaft work), which is supplied to first generator unit 104.
- First generator unit 104 uses the mechanical energy to generate and provide electrical energy 118 to electrolysis unit 102.
- system 200 depicts a system to make hydrogen and oxygen gases from water that incorporates a steam turbine.
- Solar-powered turbine unit 106 can include first turbine 200, solar heat collection unit 202, and steam generation unit 204.
- First turbine 200 can provide mechanical energy 120 to first generator 104.
- first turbine 200 is a steam turbine.
- Solar heat collection unit 202 can generate and provide heat 208 to the steam generation unit 204 as described throughout this specification.
- Solar heat collection unit 202 can be a high-temperature solar collector that includes a mirror and/or lens system (for example, a solar farm) for sunlight collection and is capable of providing sufficient heat to heat water in to 300 to 1000 °C at 20 to 200 bar of pressure or air to temperatures of about 720 to 1350 °C at 1 to 20 bar.
- the solar collectors are computer controlled mirrors (e.g., heliostats) that orient themselves according to the changing direction of the sunlight over the course of the day.
- Steam generator 204 is coupled to first turbine 200 as described throughout this Specification.
- first turbine 200 is a steam turbine
- steam generator 204 may generate steam feed 210 and steam feed 108.
- Steam feed 210 can be provided to the first turbine, which generates mechanical energy 120 and reduced pressure steam stream 212.
- water 214 enters steam generation unit 204 and can be pressurized and/or heated to produce the steam feed 210.
- a solar-powered system of the present invention can include a cooling unit.
- FIG. 3 depicts a schematic of the solar-powered system 300 having solar-powered turbine unit 106 and electrolysis unit 102 coupled to cooling unit 302.
- the cooling unit 302 can include second turbine 304, second generator unit 306, third turbine 308, third generator unit 310, and heat transfer unit 312.
- the electrolysis unit is fed with a compressed air stream 116 ⁇ See, for example FIG. IB) that is used to sweep the oxygen produced at one of the electrodes of the electrolysis unit, to produce an oxygen-rich gas stream 112.
- hydrogen gas stream 110 can exit electrolysis unit 102 at a temperature of 800 to 1000 °C and pressure of 1 to 10 bar, and be expanded in second turbine 304. Expansion of hydrogen gas stream 110 in second turbine 304 generates mechanical energy 316 and hot hydrogen gas stream 318. Generated mechanical energy 316 is provided to second generation unit 306, which produces electrical energy 320 that is provided to electrolysis unit 102. Electrical energy 320 can be used to power electrolysis unit 102 or other equipment such as, for example, air supply unit 114. Hot hydrogen gas stream 118 can exit second turbine 304 and undergo heat exchange in heat transfer unit 312 to form cooled hydrogen gas stream 322 and recovered heat energy 324. Recovered heat energy 324 can be transferred to steam generation unit 106.
- oxygen-rich gas stream 112 can exit electrolysis unit 102 having a temperature of 800 to 1000 °C and a pressure of to 10 bar, and be expanded in third turbine 308. Expansion of the oxygen in the third turbine 308 generates mechanical energy 326 and hot oxygen-rich gas stream 328. Generated mechanical energy 326 is provided to third generation unit 310, which produces electrical power 330. Electrical power 330 can be used to power the electrolysis unit 102 or other equipment. In some embodiments, electrical power 320 and electrical power 330 can enter electrolysis unit at the same inlet. It should be understood that the electrical power can be connected to the electrolysis unit through one or more inlets.
- Hot oxygen-rich gas stream 318 can exit third turbine 308 and undergo heat exchange in heat transfer unit 312 to form cooled oxygen gas stream 332 and recovered heat energy 324' .
- Recovered heat energy 324' from heat recovery unit 312 can be transferred to steam generation unit 106.
- recovered heat energy 324' is combined with recovered heat energy 324, however, it should be understood that heat energy 324' can be provided separately to steam generation unit 106.
- Cooled hydrogen gas stream 322 and cooled oxygen-rich gas stream can have a final temperature at or near ambient temperatures, for example, a temperature from 20 to 30 °C, or 25 °C. While heat transfer unit 312 is shown as one unit more than one unit may be necessary to maintain sufficient temperature difference for heat transfer.
- heat transfer unit 312 can include one or more heat exchangers with each heat exchanger performing heat exchange with hot hydrogen stream 318 and hot oxygen stream 328 to produce cooled hydrogen stream 322 and cooled oxygen- rich stream 332, or multiple heat exchangers arranged in series or parallel.
- Cooled hydrogen gas stream 314 can be used in downstream chemical process, stored, transported, or sold.
- Cooled oxygen gas stream 318 can be used in downstream chemical processes and/or transportation units, stored, transported, or sold.
- Produced electrical energy 320 and 330 can be used to power the electrolysis unit 102, combined with electrical energy 118, or used to power other equipment requiring electrical energy.
- solar-powered system 400 includes a first turbine that converts heat into electrical power.
- the solar-powered turbine unit 106 can include first turbine 200, solar unit 202, boiler 402, condenser 404, and pump 406.
- first turbine 200 is a steam powered turbine.
- Solar unit 202 can be a high-temperature solar collector for sunlight collection that is capable of providing sufficient heat to heat water in boiler 402 to 300 to 600 °C at 20 to 200 bar of pressure.
- Pump 406 pumps water steam 408 from condenser 404 into boiler 402. Pump 406 pressurizes water stream 408 such that it enters the boiler 402 as a high pressure water stream 410.
- high pressure water stream 410 is heated by solar heat energy 208 and, optionally, by the thermal heat energy 322 (See, for example, heat recovery system described in FIG. 3), to a temperature that vaporizes the water to form steam, which is provided to other units as steam feed 210 and steam feed 108.
- the generated steam is high pressure steam.
- the boiler 402 can be any conventional solar boiler. In some instances, the boiler 402 can be a series of boilers such as when the first boiler converts pumped water to saturated steam and then subsequently, a second boiler heats the steam beyond its saturation temperature to produce superheated steam.
- a portion of the steam feed, steam feed 210, can exit boiler 402 and enter first turbine 200.
- First turbine 200 expands steam 210 to generate mechanical energy 120 and low pressure expanded steam 212.
- Mechanical energy (shaft work) 120 can be provided to first generator 104, which generates and supplies electrical power 118 to electrolysis unit 102.
- Expanded steam 212 can exit the first turbine 200 and enter condenser 404.
- condenser 404 expanded steam 212 is cooled at a constant pressure to condense the steam to water. In some embodiments, the steam 212 is cooled to a temperature and pressure to produce saturated steam.
- the amount of steam provided to the electrolysis unit 102 can be regulated by a valve 412. As shown in FIG. 4, all the heat and electrical energy needed to run the electrolysis unit 102 is provided without the use of fossil fuel, and thus no carbon dioxide is generated during use. In some embodiments, cooling unit 302 is not used. D. Solar-Powered System With A Solar-Powered Gas Turbine Unit
- the solar-powered turbine unit 106 includes a solar-powered gas turbine using a suitable working fluid such as air or carbon dioxide.
- FIG. 5 depicts a schematic of a solar-powered system 500 that includes first turbine 200 in combination with the first generator 104, electrolysis unit 102, solar unit 202, steam generation unit 204, and cooling unit 302.
- first turbine 200 is a gas turbine.
- First turbine 200 provides mechanical energy 120 to generator 104, which produces electrical power 118 that is supplied to electrolysis unit 102.
- the electrolysis unit 102 produces the hydrogen gas stream 110 and the oxygen-rich gas stream 112 as described throughout this Specification.
- oxygen-rich gas stream is a mixture of compressed air stream 116 and oxygen generated in electrolysis unit 102.
- the generated hydrogen gas stream 110 and/or the oxygen-rich gas stream 112 is expanded through the turbines 304 and 308 and the expanded gases undergo heat exchange as they pass through the heat transfer unit 312.
- the recovered heat 324, 324' from the heat transfer unit 312 can be transferred to the steam generation unit 204 and used as a source of heat in the generation of steam in System 500.
- solar unit 106 includes first turbine 200, steam generation unit 204 and solar units 202.
- Steam generation unit 204 can be a heat recovery steam generation unit capable of recovering heat from more than one source and producing steam.
- Steam generation unit 204 can include any pumps and/or water inlets and outlets necessary to provide sufficient steam (e.g., high pressure steam) to electrolysis unit 102.
- steam generation unit 204 includes first heat exchanger 502, which receives heated fluid 504 (for example, heated air or carbon dioxide) from first turbine 200. Heated fluid 504 can be used as a working fluid in first heat exchanger 502 to provide heat for steam generation from water.
- heated fluid 504 for example, heated air or carbon dioxide
- steam generation unit 204 can have one or more shell and tube heat exchangers.
- Steam 208 generated in steam generation unit 204 exits and enters electrolysis unit 102, where it is subjected to conditions sufficient to electrolytically dissociate the steam into hydrogen and oxygen.
- Partially cooled fluid 506 exits heat exchanger 502 and enters compressor 508.
- compressor 508 the partially cooled fluid 506 is compressed to form compressed fluid 510.
- Compressed fluid 510 exits compressor 508 at a pressure of 1 to 20 bar, and enters second heat exchanger unit 512.
- the compressed air can have a temperature of about 250 to 300 °C upon entering second heat exchanger unit 512.
- Second heat exchanger unit 512 can include one or more heat exchangers. As shown in FIG. 5, second heat exchanger unit 512 includes three heat exchangers 514, 516 and 518. Heat exchangers 514, 516 and 518 are coupled to solar units 202.
- Solar units 202 can include multiple solar collectors, mirrors and lens that collect solar heat at sufficiently high temperatures near 500 °C to greater than 1000 °C, and provide the heat to each of heat exchangers 514, 516 and 518. Solar units 202 are capable of providing a desired amount of heat to heat exchangers 514, 516 and 518. For example, as compressed fluid 510 passes through heat exchangers 514, 516 and 518, the compressed fluid is heated progressively in each heat exchanger until a temperature of the compressed fluid is about 720 to 1350 °C at a pressure of 1 to 20 bar. Hot compressed fluid 520 exits the heat exchanger unit 514 and enters first turbine 200.
- first turbine 200 hot compressed air 520 is sufficiently expanded to generate mechanical energy 120, which is provided to the first generator 104 and the compressor 508.
- Hot exhaust stream 504 exits first turbine 200 and enters heat exchanger 502 to continue the thermodynamic cycle.
- the combination of the first heat exchanger 502, the compressor 508, heat exchanger 514, and first turbine 200 can constitute a closed Brayton cycle; however other thermodynamic heat recovery cycles can be used.
- a portion or all of compressed fluid 510 may be at a sufficient temperature that heat exchanger unit 512 is not necessary, thus compressed fluid stream 510' may be sent directly to first turbine 200.
- a portion of compressed fluid 510 flow can be regulated by valve 522.
- Solar powered turbine unit 106 as described for system 500 provides a thermally efficient "green" system to produce the energy required for electrolysis of water with minimal to no generation of carbon dioxide emissions.
- a solar-powered combined cycle system can be used to generate steam and electricity for the electrolysis unit 102.
- FIGS. 6 and 7 depict schematics of the solar-powered combined cycle stream system 600.
- System 600 incudes the features of the solar powered turbine system described in FIG. 5 in combination with a back-pressure steam turbine 602.
- back-pressure steam turbine 602 is used to provide additional mechanical energy to first generator unit 104.
- the back-pressure steam turbine 602 receives steam feed 604 from steam generation unit 204.
- Steam feed 604 can be generated in steam generation unit 204 as described throughout this Specification. Expansion of steam feed 604 in back-pressure steam turbine 602 generates additional mechanical energy 606 that can be provided to power generator unit 104.
- Expanded steam stream 608 exits the back-pressure steam turbine 602 and enters the electrolysis unit 102 to be used as a source of heated water in the generation of hydrogen and oxygen. In some embodiments, expanded steam stream 608 is mixed with steam feed 108 entering the electrolysis unit 102.
- solar-powered system 700 includes back-pressure steam turbine 702 and fourth generator unit 704 in combination with solar heat generation unit 106, first generator unit 104, electrolysis unit 102, and cooling unit 300.
- Back-pressure steam turbine 702 provides mechanical energy to fourth generator unit 704, which then generates electrical energy 706 for electrolysis unit 102.
- a portion of steam feed 108, steam feed 708, is used in back-pressure steam turbine 702.
- Steam feed 708 is expanded in steam generation unit 204 to produce mechanical energy 710 and hot expanded steam 712, which can be used as water source in electrolysis unit 102.
- hot expanded steam 712 is combined with steam feed 108 prior to entering electrolysis unit 102.
- hot expanded steam 712 can be provided directly to electrolysis unit.
- cooling unit 302 is not used in the systems 600 and 700 depicted in FIGS. 6 and 7.
- the combined cycle power generation systems described in FIGS. 6 and 7 provides a thermally efficient, and novel "green" system to produce the energy required for water- splitting reactions without generating carbon dioxide emissions.
- Hydrogen gas and oxygen gas can be produced from water using systems 100 through 700 described throughout this specification.
- water in the form of steam can be provided from solar-powered turbine unit 106 to the electrolysis unit 102.
- the steam can be produced using the systems 400 through 700 described in Sections C-E of this specification.
- electrolysis unit 102 the steam is subjected to conditions sufficient to generate hydrogen and oxygen.
- the hydrogen and oxygen can be collected individually in the electrolysis unit 102 and/or collected as one gas stream and separated in a unit coupled to the electrolysis unit.
- the hydrogen gas, the oxygen gas, or both can be provided to one or more storage units, chemical processing units, transportation units, or any combination thereof. Since no fossil fuel is used to generate electricity in systems 100 to 700 and no carbon-based feed stocks are use, the system generates minimal or no carbon dioxide.
- the systems 100 to 700 can be automated with suitable sensors and/or thermocouples to acquire data during the process.
- the acquired data can be transmitted to one or more computer systems.
- the computer systems can include components such as CPUs or applications with an associated machine readable medium or article which may store an instruction or a set of instructions that, if executed by a machine, may cause the machine to perform a method and/or operations in accordance with the methods of the present invention.
- the flow of the fluids, opening or closing of valves associated with the inlets and outlets for the various turbines, compressors, heat exchangers, generators, electrolysis unit, etc. can be controlled.
- Such a machine may include, for example, any suitable processing platform, computing platform, computing device, processing device, computing system, processing system, computer, processor, or the like, and may be implemented using any suitable combination of hardware and/or software.
- the machine-readable medium or article may include, for example, any suitable type of memory unit, memory device, memory article, memory medium, storage device, storage article, storage medium and/or storage unit, for example, memory, removable or non-removable media, erasable or non-erasable media, writeable or re-writeable media, digital or analog media, hard disk, floppy disk, Compact Disk Read Only Memory (CD-ROM), Compact Disk Recordable (CD-R), Compact Disk Rewriteable (CD-RW), optical disk, magnetic media, magneto-optical media, removable memory cards or disks, various types of Digital Versatile Disk (DVD), a tape, a cassette, or the like.
- CD-ROM Compact Disk Read Only Memory
- CD-R Compact Disk Recordable
- CD-RW Compact Dis
- the instructions may include any suitable type of code, such as source code, compiled code, interpreted code, executable code, static code, dynamic code, and the like.
- the instructions may be implemented using any suitable high-level, low-level, object- oriented, visual, compiled and/or interpreted programming language, such as C, C++, Java, BASIC, Perl, Matlab, Pascal, Visual BASIC, assembly language, machine code, and so forth.
- the computer system may further include a display device such as monitor, an alphanumeric input device such as keyboard, and a directional input device such as mouse.
- FIG. 8 is a schematic of the solar-powered turbine unit of the present invention that includes a closed-loop gas turbine unit and is a simplified schematic of FIG. 5.
- a total of 214.82 kWh solar energy is collected by solar units 202.
- those solar energy are further transferred to the working fluid.
- Fluid 520 enters the first turbine 200, where the hot compressed air 520 is sufficiently expanded to generate mechanical energy 120. Assuming an 80% of gas turbine efficiency, the total amount of energy in stream 120 can be calculated as:
- the mechanical energy in stream 120 is provided to the first generator 104 and the compressor 508 at a ratio of 85% to 15%, respectively.
- the mechanical energy provided to the first generator 104 is:
- the electrical power 118 finally goes into the electrolysis unit 102.
- 18 kg water in stream 108 directly enters electrolysis unit 102.
- hydrogen and oxygen gas are produced in the electrolysis unit 102.
- a lower heating value (LHV) of hydrogen, 33.31 kWh/kg, and a 90% efficiency of electrolysis are used to calculate the amount of hydrogen generated:
- the amount of oxygen generated can be quantified based on the chemical reaction of water-splitting given in Equation (III) and the molecular weight of each chemical component:
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Abstract
Description
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201562106056P | 2015-01-21 | 2015-01-21 | |
| PCT/US2016/013872 WO2016118487A1 (en) | 2015-01-21 | 2016-01-19 | Solar powered systems and methods for generating hydrogen gas and oxygen gas from water |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3247820A4 EP3247820A4 (en) | 2017-11-29 |
| EP3247820A1 true EP3247820A1 (en) | 2017-11-29 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP16740578.6A Withdrawn EP3247820A1 (en) | 2015-01-21 | 2016-01-19 | Solar powered systems and methods for generating hydrogen gas and oxygen gas from water |
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|---|---|
| US (1) | US20160369411A1 (en) |
| EP (1) | EP3247820A1 (en) |
| KR (1) | KR20170088932A (en) |
| CN (1) | CN107109668A (en) |
| WO (1) | WO2016118487A1 (en) |
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| ES2982501T3 (en) * | 2017-07-25 | 2024-10-16 | Topsoe As | Method for improving the efficiency of a synthesis gas plant for the production of ammonia |
| KR20190051178A (en) * | 2017-11-06 | 2019-05-15 | 숙명여자대학교산학협력단 | Service method and system of renewable energy |
| US10995009B2 (en) * | 2018-11-11 | 2021-05-04 | Christopher Papile | Renewable energy produced ammonia, apparatus, method and materials |
| WO2021102400A1 (en) | 2019-11-21 | 2021-05-27 | Ohmium International, Inc. | Systems and methods of ammonia synthesis |
| JP7353163B2 (en) * | 2019-12-25 | 2023-09-29 | 三菱重工業株式会社 | Ammonia derivative manufacturing plant and ammonia derivative manufacturing method |
| US20220033984A1 (en) * | 2020-07-28 | 2022-02-03 | Ohmium International, Inc. | Modular system for hydrogen and ammonia generation without direct water input from central source |
| KR102560010B1 (en) * | 2021-01-06 | 2023-07-27 | 한국과학기술원 | Nuclear power load response generation system using solar heat |
| CN115234308B (en) * | 2022-08-22 | 2024-10-22 | 清华四川能源互联网研究院 | Pressure energy recovery system for hydrogen production by water electrolysis |
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| US4216067A (en) * | 1979-07-02 | 1980-08-05 | Glen Mitchell | Solar energy operated hydrogen refining process |
| US4246080A (en) * | 1979-07-25 | 1981-01-20 | Shinn William A | Solar-energy-process-converter system |
| ES2137349T3 (en) * | 1992-11-25 | 1999-12-16 | John Beavis Lasich | PRODUCTION OF HIGH PERFORMANCE HYDROGEN FROM SOLAR RADIATION. |
| CA2088947C (en) * | 1993-02-05 | 1996-07-16 | Daniel A. Warkentin | Hydrogen fuelled gas turbine |
| US7482078B2 (en) * | 2003-04-09 | 2009-01-27 | Bloom Energy Corporation | Co-production of hydrogen and electricity in a high temperature electrochemical system |
| US7188478B2 (en) * | 2004-09-13 | 2007-03-13 | General Electric Company | Power generation system and method of operating same |
| CN1966776A (en) * | 2005-11-17 | 2007-05-23 | 刘志平 | Solar hydrogen making process |
| CN101074802A (en) * | 2006-05-17 | 2007-11-21 | 林文章 | Energy system |
| US20090125152A1 (en) * | 2007-11-09 | 2009-05-14 | Markron Technologies, Llc | Method of measurement, control, and regulation for the solar thermal hybridization of a fossil fired rankine cycle |
| ES2581388T3 (en) * | 2008-04-16 | 2016-09-05 | General Electric Technology Gmbh | Solar thermal power plant |
| US8808529B2 (en) * | 2009-02-17 | 2014-08-19 | Mcalister Technologies, Llc | Systems and methods for sustainable economic development through integrated full spectrum production of renewable material resources using solar thermal |
| FR2982876A1 (en) * | 2011-11-21 | 2013-05-24 | Commissariat Energie Atomique | SYSTEM FOR CONVERTING SOLAR ENERGY IN ELECTRIC AND CHEMICAL ENERGY AND METHOD FOR OPERATING SUCH A SYSTEM |
| FR2985522B1 (en) * | 2012-01-09 | 2014-03-14 | Commissariat Energie Atomique | INSTALLATION OF HIGH TEMPERATURE WATER VAPOR ELECTROLYSIS (HVAC) WITH ALLOTHERMIC PRODUCTION OF HYDROGEN |
| US9328426B2 (en) * | 2012-03-26 | 2016-05-03 | General Electric Company | Systems and methods for generating oxygen and hydrogen for plant equipment |
| US20140203557A1 (en) * | 2013-01-24 | 2014-07-24 | General Electric Company | System and Method for Extending Minimum Turn Down Load of Combined Cycle Power Plant |
| US20140298810A1 (en) * | 2013-04-03 | 2014-10-09 | Geoffrey Robinson | Power Generation System and Method |
| HK1217527A1 (en) * | 2013-07-19 | 2017-01-13 | Itm动力(研究)有限公司 | Pressure reduction system |
| JP6230344B2 (en) * | 2013-09-06 | 2017-11-15 | 株式会社東芝 | Steam turbine plant |
| JP6363471B2 (en) * | 2014-10-31 | 2018-07-25 | 株式会社東芝 | Hydrogen production apparatus and hydrogen production method |
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- 2016-01-19 WO PCT/US2016/013872 patent/WO2016118487A1/en not_active Ceased
- 2016-01-19 KR KR1020177017172A patent/KR20170088932A/en not_active Ceased
- 2016-01-19 CN CN201680004484.4A patent/CN107109668A/en active Pending
- 2016-01-19 EP EP16740578.6A patent/EP3247820A1/en not_active Withdrawn
- 2016-01-19 US US15/111,114 patent/US20160369411A1/en not_active Abandoned
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|---|---|
| US20160369411A1 (en) | 2016-12-22 |
| KR20170088932A (en) | 2017-08-02 |
| EP3247820A4 (en) | 2017-11-29 |
| CN107109668A (en) | 2017-08-29 |
| WO2016118487A1 (en) | 2016-07-28 |
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