EP4486938A2 - Verfahren und vorrichtung zur herstellung von wasserstoff aus wasser - Google Patents
Verfahren und vorrichtung zur herstellung von wasserstoff aus wasserInfo
- Publication number
- EP4486938A2 EP4486938A2 EP23710802.2A EP23710802A EP4486938A2 EP 4486938 A2 EP4486938 A2 EP 4486938A2 EP 23710802 A EP23710802 A EP 23710802A EP 4486938 A2 EP4486938 A2 EP 4486938A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- water
- electrodes
- hydrogen
- cell
- electric energy
- 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.)
- Pending
Links
Classifications
-
- 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
- C25B1/044—Hydrogen or oxygen by electrolysis of water producing mixed hydrogen and oxygen gas, e.g. Brown's gas [HHO]
-
- 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
- C25B1/50—Processes
-
- 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
- C25B15/02—Process control or regulation
- C25B15/023—Measuring, analysing or testing during electrolytic production
- C25B15/025—Measuring, analysing or testing during electrolytic production of electrolyte parameters
- C25B15/033—Conductivity
-
- 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
- C25B9/00—Cells or assemblies of cells; Constructional parts of cells; Assemblies of constructional parts, e.g. electrode-diaphragm assemblies; Process-related cell features
- C25B9/07—Common duct cells
-
- 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
Definitions
- the invention in the first place, relates to a method for producing hydrogen from water, comprising: providing a device comprising an electric circuit including an electric energy source and at least two electrodes, and further comprising a cell having an internal space in which the water is present and in which the at least two electrodes are arranged at a distance relative to each other.
- the invention relates to a device designed to produce hydrogen from water, comprising an electric circuit including an electric energy source and at least two electrodes, and further comprising a cell having an internal space configured to contain the water, in which the at least two electrodes are arranged at a distance relative to each other.
- the invention relates to a device designed to generate at least one of heat and electric energy from hydrogen, comprising a device designed to produce hydrogen from water as mentioned here before.
- the invention relates to an entity comprising a device designed to generate at least one of heat and electric energy from hydrogen as mentioned here before.
- the invention provides a method for producing hydrogen from water, comprising: providing a device comprising an electric circuit including an electric energy source and at least two electrodes, and further comprising a cell having an internal space in which the water is present and in which the at least two electrodes are arranged at a distance relative to each other, and continuously setting an extent to which energy is transmitted from the electric energy source to the electrodes in dependence on at least one of an actual value of at least one parameter related to the condition of the water in the cell and an actual time derivative of such at least one parameter.
- the method provides a device designed to produce hydrogen from water, comprising: an electric circuit including an electric energy source and at least two electrodes, a cell having an internal space configured to contain the water, in which the at least two electrodes are arranged at a distance relative to each other, a detecting arrangement configured to detect an actual value of at least one parameter related to the condition of the water in the cell, and a controller arrangement configured to receive and process input from the detecting arrangement and to continuously set an extent to which energy is transmitted from the electric energy source to the electrodes in dependence on the input from the detecting arrangement.
- the invention is based on the insight that when an action of supplying electric energy to the electrodes is initiated, a process is initiated as a result of which the cell is charged as if the cell is a capacitor. At a certain point, the extent to which the cell is charged is such that the water reacts. In the process, a plasma field including micro cavities is created, and splitting of the water molecules takes place as the tiny bubbles implode, through a process involving formation of ions in the water and reactions of these ions involving electrons, wherein the following formula are applicable:
- Putting the invention to practice involves relying on at least one of an actual value of at least one parameter related to the condition of the water in the cell and an actual time derivative of such at least one parameter. In this way, a possibility to act in accordance with the natural behavior of the water in the cell is created, and this offers an opportunity to adapt the supply of energy such that the energy potential of water is used in an optimal fashion and only a minimum of energy is taken from the electric energy source.
- putting the invention to practice involves continuously monitoring the actual value of the at least one parameter related to the condition of the water in the cell.
- a controller value of the extent to which energy is transmitted from the electric energy source to the electrodes is determined by continuously comparing the at least one of the actual value of the at least one parameter related to the condition of the water in the cell and the actual time derivative of such at least one parameter to a respective reference, and the extent to which energy is transmitted from the electric energy source to the electrodes is set in accordance with the controller value.
- setting the extent to which energy is transmitted from the electric energy source to the electrodes involves setting one of two values of the extent, one of the two values being significantly lower than the other of the two values.
- the lowest value may be zero, and it is possible that setting the extent to which energy is transmitted from the electric energy source to the electrodes involves setting an interrupted state or a closed state of the electric circuit, for example.
- varying the extent to which energy is transmitted from the electric energy source to the electrodes between a lowest extent and a highest extent is realized by varying the extent between zero and a value related to the closed state of the circuit, i.e. a value dependent on the characteristics of the electric circuit including the electric energy source and the at least two electrodes.
- a practical example of the at least one parameter related to the condition of the water in the cell is the electrical resistance of the water between the at least two electrodes.
- the electric resistance of the water between the at least two electrodes is significantly lower than in the normal condition of the water.
- a parameter related to the condition of the water in the cell can be understood as a parameter of which the value follows from the condition of the water in the cell, in other words, a parameter of which the value is determined by the condition of the water in the cell.
- Practical examples of the value of the parameter are quantifications of features of the water as such and include the above-mentioned value of the electrical resistance of the water between the at least two electrodes and the above-mentioned level of the noise from the water.
- the invention provides a device designed to produce hydrogen from water, comprising the electric circuit including the electric energy source and the at least two electrodes, and the cell having the internal space configured to contain the water, in which the at least two electrodes are arranged at a distance relative to each other, and further comprising a detecting arrangement configured to detect the actual value of at least one parameter related to the condition of the water in the cell, and a controller arrangement configured to receive and process input from the detecting arrangement and to continuously set the extent to which energy is transmitted from the electric energy source to the electrodes in dependence on the input from the detecting arrangement.
- controller arrangement may be configured to set the reference in dependence on input from the detecting arrangement related to an initial condition of the water, and it is also the controller arrangement that may be configured to set the extent to which energy is transmitted from the electric energy source to the electrodes through setting an interrupted state or a closed state of the electric circuit, or, more in general, to set the extent to which energy is transmitted from the electric energy source to the electrodes at an appropriate one of two values of the extent, one of the two values being significantly lower than the other of the two values.
- the detecting arrangement comprises at least one sensor configured to detect the electrical resistance of the water between the at least two electrodes.
- the at least one sensor is a sensor comprising a Wheatstone bridge.
- At least one of the at least two electrodes comprises a plate that is made from titanium Grade 1 , titanium Grade 2 or titanium Grade 5 and that is provided with a mixed metal coating,
- At least one of the at least two electrodes comprises an uncoated plate that is made from titanium Grade 1 , titanium Grade 2 or titanium Grade 5, and
- the device comprises at least one functional group of two electrodes and at least one intermediate plate extending between the electrodes, in which case the at least one intermediate plate of the at least one functional group is optionally made from titanium Grade 1 , titanium Grade 2 or titanium Grade 5 and is provided with a mixed metal coating.
- the electrode functioning as cathode can be provided as an uncoated plate, whereas the electrode functioning as anode can be provided as a plate to which a mixed metal coating is applied.
- the optional at least one intermediate plate can be provided with a mixed metal coating.
- the coating comprises a material that is known to have a large number of free electrons at and underneath the exterior surface of the coating.
- the use of a mixed metal oxide coating, as known from existing processes of splitting water under the influence of electric energy, is not applicable to the context of the invention.
- the number of intermediate plates can be chosen freely in the context of the invention. In this respect, a general principle is that more intermediate plates are needed in case distilled water is used.
- the at least one intermediate plate functions to distribute or reduce local electric peak current on the cathode and anode, and also as additional capacitor in the cell.
- the device comprises more than one cell.
- the device comprises an arrangement configured to receive hydrogen and oxygen from the cell, to separate the hydrogen and the oxygen, and to discharge the hydrogen and the oxygen to separate discharge positions and/or if the device comprises a water supply system configured to supply water to the cell, which water supply system includes a filter unit configured to filter at least metal particles from tap water.
- the device may also be suitable for use with another type of water such as distilled water or sea water, or may be designed so as to be adaptable to different types of water. For example, in the case of sea water, a mechanism for removing salt from the water is needed.
- the device may further comprise components such as a hydrogen flashback arrestor or a catalyst including a nickel mesh and granulate.
- a hydrogen flashback arrestor or a catalyst including a nickel mesh and granulate.
- a catalyst including a nickel mesh and granulate is useful for reducing the speed of an output flow of hydrogen.
- the electric energy source needs to be a high voltage source.
- the electric energy source is a DC voltage source that is configured to supply electric energy at a voltage in a range of 15 to 100 V.
- a practical example of a value of the voltage is 24 V.
- Supplying the electric energy in ultra-short pulses of the low DC voltage to the electrodes suffices to trigger the process of charging the cell until discharge takes place and the supply of electric energy can be terminated or at least significantly reduced. It is practical if the controller arrangement is configured to perform pulse width modulation of the voltage.
- the invention further relates to a method for generating at least one of heat and electric energy from hydrogen, comprising the method for producing hydrogen from water as defined and described here before, receiving produced hydrogen at a reaction position, and supplying oxygen to the hydrogen at the reaction position.
- the reaction position may be in a reaction unit, wherein it may be practical if such a reaction unit is a hydrogen burner or a hydrogen fuel cell.
- the invention relates to a device designed to generate at least one of heat and electric energy from hydrogen, comprising a device designed to produce hydrogen from water as defined and described here before, combined with a reaction unit configured to receive produced hydrogen from the device designed to produce hydrogen from water and to supply oxygen to the hydrogen.
- the device designed to generate at least one of heat and electric energy from hydrogen can function as an on demand system, wherein the device designed to produce hydrogen from water is operated every time there is a need for the at least one of heat and electric energy.
- the oxygen used in the reaction unit may be oxygen produced besides the hydrogen and/or oxygen supplied from another source, particularly a source of oxygen or air.
- the invention also relates to an entity comprising a device designed to generate at least one of heat and electric energy from hydrogen as defined and described here before. It may be so that the entity is chosen from a group including a vehicle, a power system of a building, a temperature regulating system of a building, and an electric power plant. In this respect, it is noted that the invention covers any possible application of hydrogen, particularly any possible industrial application of hydrogen.
- Figure 1 shows a schedule of components of a device designed to produce hydrogen from water
- Figure 2 illustrates how a controller arrangement of the device is connected to other components of the device
- Figures 3 to 5 show views of a body part of a cassette comprising a cell of the device;
- Figure 6 shows the view of the body part from figure 3 again, with various plates inserted in the body part;
- Figures 7 to 9 show views of a bottom part of the cassette; and Figures 10 to 12 show views of a top part of the cassette.
- the invention relates to a way of producing hydrogen from water that involves very high energy efficiency.
- a quantity of water contained in a cell is operated in switched mode conditions.
- the water is alternately put to a plasma condition and subsequently released, as it were, to go back from the plasma condition to the normal condition, wherein in the latter phase, a natural process takes place in the water during which both hydrogen and oxygen are generated.
- the first phase which will hereinafter be referred to as charging phase, is invoked by supplying electric energy to a set of electrodes arranged in the water at a distance relative to each other, thereby charging the combination of the electrodes and the water as if the electrodes are the plates of a capacitor and the water is the dielectric of the capacitor, while during the second phase, which will hereinafter be referred to as discharging phase, the supply of electric energy is terminated or at least drastically reduced, as the natural process during which both hydrogen and oxygen are generated can take place without a further supply of electric energy.
- the invention involves controlling the supply of electric energy in compliance with the behavior of the water. As soon as the water reaches the plasma condition as a result of the supply of electric energy during the charging phase, the water starts behaving differently than in the normal condition. Likewise, when the water returns to the normal condition, the specific behavior of the water related to the plasma condition is absent. These facts can be used for controlling the supply of electric energy in compliance with the behavior of the water. Both the end of the charging phase being the start of the discharging phase and the end of the discharging phase being the start of the charging phase are not imposed on the water, but are determined by the water in a natural way.
- the invention through continuously setting an extent to which energy is transmitted from the electric energy source to the electrodes in dependence on an actual value of at least one parameter related to the condition of the water in the cell and/or an actual time derivative of such at least one parameter.
- the at least one parameter so as to be a parameter that is different in the normal condition and the plasma condition of the water, controlling the supply of energy in dependence on the at least one parameter can be done in perfect harmony with the highly dynamic process taking place in the water through time. When it comes to supply of energy, the water is allowed to demand exactly what is needed at any time, as it were.
- a practical example of the at least one parameter is the electrical resistance of the water between the electrodes.
- the charging phase takes no more than supplying a pulse of low DC voltage electric energy to the electrodes, wherein the time duration of the pulse can be as short as a duration in a range of 3 to 4 nanoseconds.
- the time of the discharging phase appears to be in more or less the same range.
- the voltage at which the discharging phase starts is determined by the characteristics of the water, and can be in a range of 16 V to 70 V for filtered tap water, or at a higher value for distilled water.
- the discharging phase actually involves a chain reaction in the water, wherein there is no need for additional external energy, as suggested earlier.
- the plasma field invokes micro cavities in the water. A high amount of energy is released locally when the micro cavities implode, and a fraction of water molecules are caused to split as a result.
- Micro plasma balls are generated, which create natural frequencies in the order of as high as tens of MHz, depending on the characteristics of the water.
- the end of the discharging phase is when there are no more imploding micro cavities, and a practical way to find this end of the discharging phase involves monitoring the electrical resistance of the water between the electrodes, as this parameter immediately increases to a larger value at that point. This fact can be used to immediately trigger a new pulse of electric energy, i.e. to re-initiate the charging phase.
- a process during which a charging phase and a discharging phase continuously alternate is obtained, wherein the charging phase requires no more than an ultra-short pulse of low DC voltage and the discharging phase can do without a supply of external energy, or with only a minimum supply of external energy, and wherein the hydrogen that is desired as the outcome of the process is generated during the discharging phase.
- FIG. 1 A general set-up of a practical embodiment of a device 100 that is configured to produce hydrogen from water in accordance with the principles of the invention is illustrated in figures 1 and 2, in which components of the device 100 are diagrammatically shown.
- the device 100 will hereinafter be referred to as hydrogen producing device 100.
- the component of the hydrogen producing device 100 where the actual hydrogen production process is to take place during operation of the device 100 is a cassette 10 which comprises at least one cell 11 , 12.
- Figure 2 illustrates the option of having two cells 11 , 12 in the hydrogen producing device 100. A practical possibility in respect of the design of each of the cells 11 , 12 will be discussed later with reference to figures 3 to 12.
- Each of the cells 11 , 12 is configured to contain water and comprises an internal space 13 that is in fluid communication with a water supply system 20 through a conduit system 21 in which a water supply valve 22 is arranged.
- the water supply system 20 may be connected to any suitable tap water source, such as a large container filled with tap water, or the public water supply system.
- the water supply system 20 is equipped with a filter unit 23 configured to filter at least metal particles from the tap water.
- a filter unit 23 configured to filter at least metal particles from the tap water.
- the electrical resistance of the filtered tap water is in a range of 0.5 MQ/cm 2 to 1 .0 MQ/cm 2 .
- a higher value of the electrical resistance is applicable.
- the scope of the invention is not restricted to a particular type of water.
- a water discharge system 24 including a water discharge conduit 25 and a water discharge valve 26 which allows drainage of water from the cassette 10 in cases of service and maintenance, for example, is connected to the cassette 10.
- the cassette 10 is also provided with a venting system 27 including a venting conduit 28 and a venting valve 29.
- the venting valve 29 functions to avoid counterpressure in the water supply system 20 when water is supplied to the cassette 10, and to allow an intended level of water of the cassette 10 to be actually reached.
- the venting valve 29 also functions to avoid the generation of vacuum when water is drained from the cassette 10 through the water discharge system 24.
- the hydrogen producing device 100 comprises an electric circuit 30 including an electric energy source 31 and functional groups 32 including electrodes arranged in the internal space 13 of the respective cells 11 , 12, at a distance relative to each other.
- the electric energy source 31 is configured to be connected to the mains, and is configured to convert AC electric energy in a voltage range of 90 V to 240 V, at a frequency in a range of 50 Hz to 60 Hz, to a DC voltage of 24 V, for example.
- the hydrogen producing device 100 further comprises a controller arrangement 40 that is configured to realize functioning of the device 100 as envisaged.
- the controller arrangement 40 is electrically connected to the electric energy source 31 and comprises a boost up converter and a pulse width modulation controller.
- a detecting arrangement 41 is provided to detect an actual value of at least one parameter related to the condition of the water in the respective cells 11 , 12.
- the at least one parameter is the electrical resistance of the water between the electrodes of a functional group 32
- the detecting arrangement 41 comprises a sensor 42 configured to detect the electrical resistance as mentioned.
- a sensor may comprise a Wheatstone bridge with two input areas of the Wheatstone bridge being located in the internal space 13 of the respective cells 11 , 12, at a distance relative to each other, or may be designed in any other suitable way.
- Each of the water supply valve 22, the water discharge valve 26 and the venting valve 29 mentioned earlier may be a solenoid valve and is also controlled by the controller arrangement 40. Further components connected to the controller arrangement 40 include a temperature sensor 43, a cooling system 44 including one or more fans, a pressure switch 45, a leakage sensor 46, and a start/stop button 47. In general, it is practical if the device 100 comprises a panel including various user interface elements such as one or more displays, buttons and/or touch screens.
- a gas output system 50 is connected to the cassette 10, which gas output system 50 comprises a pressure switch 51 , a catalyst 52 configured to reduce speed of an output flow of hydrogen, a check valve 53, and a flashback valve 54.
- control of electric energy to the electrodes through time is controlled by means of the controller arrangement 40 on the basis of the actual value of the electrical resistance of the water between the electrodes, as detected by the detecting arrangement 41 .
- the controller arrangement 40 is configured to set the extent to which energy is transmitted from the electric energy source 31 to the electrodes through setting one of an interrupted state and a closed state of the electric circuit 30. Hence, the value of the extent is zero in the interrupted state.
- the controller arrangement 40 is configured to set the closed state of the electric circuit when the electrical resistance of the water is at a first reference value, and to set the interrupted state of the electric circuit when the electrical resistance of the water has dropped from the first reference value to below a second reference value that is lower than the first reference value.
- a practical example of the first reference value is 1.0 MQ/cm 2
- a practical example of the second reference value is 0.5 MQ/cm 2 .
- controller arrangement 40 being configured in this way, it is achieved that the supply of electric energy to the electrodes is terminated at the very moment the condition of the water changes from the normal condition to the plasma condition and the above- mentioned chain reaction caused by imploding cavities in the water starts, as the electrical resistance of the water between the electrodes decreases significantly at that moment, and that the supply of electric energy to the electrodes is restored at the very moment the chain reaction dies out and the condition of the water changes from the plasma condition to the normal condition, as the electrical resistance of the water between the electrodes increases significantly at that moment.
- Both the plate-shaped cathode electrodes 33 and the intermediate plates 35 may be made from titanium Grade 1 , titanium Grade 2 or titanium Grade 5 and be provided with a mixed metal coating, while the plate-shaped anode electrodes 34 may be made from titanium Grade 1 , titanium Grade 2 or titanium Grade 5 as well, yet may be without any coating.
- the plates 33, 34, 35 are provided as metal plates which are capable to survive the imposed reactor conditions for a sufficiently long time.
- a practical example for the distance between two adjacent plates 33, 34, 35 is 3 mm. In the case of a larger distance, the pulse of electric energy supplied to the water during the charging phase would need to be provided at higher voltages, while the electric current would be at a lower level.
- the top part 80 is provided with openings 82 for letting out hydrogen and oxygen produced during operation of the cell 11 , and also has openings 83 enabling communication between a gas pressure sensor and the internal space 13 of the cell 11 . Further, the top part 80 is provided with a separation wall 84 having a number of openings, which separation wall 84 has a function in reducing the oxygen.
- the cassette 10 having the features as described here before is of a design that is both compact and robust, and that is useful to enable the operation of the cell 11 to produce hydrogen as described earlier, and represents only one practical possibility existing in the context of the invention.
- the hydrogen producing device 100 may comprise more than one cell 11 , 12, in which case the device 100 may comprise as many single-cell cassettes as cells 11 , 12, or a multiplecell cassette that is designed so as to include all of the cells 11 , 12.
- the hydrogen producing device 100 is designed to function at low voltage and high frequency as determined by the characteristics of the water that is made to decompose, wherein the water is continually and alternately charged and discharged, and wherein both the charging phase and the discharging phase take no more than a few nanoseconds.
- a method comprises providing a device 100 comprising an electric circuit 30 including an electric energy source 31 and at least two electrodes 33, 34, and further comprising a cell 11 , 12 having an internal space 13 in which the water is present and in which the at least two electrodes 33, 34 are arranged at a distance relative to each other, and continuously setting an extent to which energy is transmitted from the electric energy source 31 to the electrodes 33, 34 in dependence on at least one of an actual value of at least one parameter related to the condition of the water in the cell 11 , 12 and an actual time derivative of such at least one parameter.
- the hydrogen production process is controlled in a way that involves taking into account the actual and natural behavior/response of the water in the process, as a result of which the hydrogen production process can be highly energy-efficient.
Landscapes
- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Electrochemistry (AREA)
- Materials Engineering (AREA)
- Metallurgy (AREA)
- Organic Chemistry (AREA)
- Inorganic Chemistry (AREA)
- Analytical Chemistry (AREA)
- Automation & Control Theory (AREA)
- Electrolytic Production Of Non-Metals, Compounds, Apparatuses Therefor (AREA)
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| NL2031152A NL2031152B1 (en) | 2022-03-03 | 2022-03-03 | Method and device for producing hydrogen from water |
| PCT/NL2023/050099 WO2023167585A2 (en) | 2022-03-03 | 2023-03-02 | Method and device for producing hydrogen from water |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4486938A2 true EP4486938A2 (de) | 2025-01-08 |
Family
ID=80685536
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23710802.2A Pending EP4486938A2 (de) | 2022-03-03 | 2023-03-02 | Verfahren und vorrichtung zur herstellung von wasserstoff aus wasser |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP4486938A2 (de) |
| NL (1) | NL2031152B1 (de) |
| WO (1) | WO2023167585A2 (de) |
Family Cites Families (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6126794A (en) * | 1998-06-26 | 2000-10-03 | Xogen Power Inc. | Apparatus for producing orthohydrogen and/or parahydrogen |
| JP4642513B2 (ja) * | 2005-03-16 | 2011-03-02 | 日本碍子株式会社 | 水素発生方法 |
| CA2590437A1 (en) * | 2007-05-30 | 2008-11-30 | Kuzo Holding Inc. | Reaction controller for electrolysis apparatus and method of using same |
| CL2015001947A1 (es) * | 2015-07-09 | 2017-04-07 | Soc De Servicios Mineros North Tracer Ltda | Sistema para mejorar el rendimiento de obtencion de hidrogeno en un proceso de electrolisis, donde la celda de electrolisis comprende un tubo interior (catodo), un tubo exterior (anodo), y un conjunto electrodo litio-paladio, el tubo exterior conteniendo al tubo interior que contiene el conjunto litio-paladio; y metodo asociado. |
| WO2018032120A1 (es) * | 2016-08-15 | 2018-02-22 | Garces Baron Jorge | Sistema y método de electrólisis para una alta tasa de transformación de energía eléctrica |
| JP2021517205A (ja) * | 2018-03-09 | 2021-07-15 | ウニベルシテ カソリーク デ ルーベン | 水電解のプロセス強化のためのシステム |
| DE102018009361A1 (de) * | 2018-11-29 | 2020-06-04 | Jalal Taktouk | Energiesparende und explosionssichere elektrolytische Erzeugung von Wasserstoff aus verschiedenen Arten von Wasser unter Verwendung eines Wasserkondensators in einem Resonanzkreis |
-
2022
- 2022-03-03 NL NL2031152A patent/NL2031152B1/en active
-
2023
- 2023-03-02 EP EP23710802.2A patent/EP4486938A2/de active Pending
- 2023-03-02 WO PCT/NL2023/050099 patent/WO2023167585A2/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| WO2023167585A2 (en) | 2023-09-07 |
| NL2031152B1 (en) | 2023-09-08 |
| WO2023167585A3 (en) | 2023-11-23 |
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