Water electrolysis device

JP2026142985APending Publication Date: 2026-09-08CANADEVIA CO LTD
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Patent Information

Application Number
JP2025030311
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2026-09-08

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【0007】 本開示の一態様によれば、酸素気液分離器内の酸素中水素濃度を低減することができる。

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Abstract

Reduce the hydrogen concentration in the oxygen within the oxygen-liquid separator. [Solution] The water electrolysis apparatus (100) includes a catalyst (52) located outside the oxygen vapor-liquid separator (4) to reduce hydrogen mixed with oxygen, and an oxygen circulation line (6) on which a blower (61) is located to return the oxygen that has passed through the catalyst (52) to the oxygen vapor-liquid separator (4).
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Description

[Technical Field]

[0001] The present disclosure relates to a water electrolysis apparatus that electrolyzes water to generate hydrogen and oxygen. [Background Art]

[0002] Conventionally, water electrolysis apparatuses that generate hydrogen and oxygen by electrolyzing water are known. Regarding this type of water electrolysis apparatus, Patent Document 1 discloses a technique in which a catalyst filter is disposed in an oxygen pipe that guides oxygen to the outside of the main body of the water electrolysis apparatus, to reduce hydrogen mixed into oxygen. [Prior Art Documents] [Patent Documents]

[0003] [Patent Document 1] Japanese Unexamined Patent Application Publication No. 2024-117416 [Summary of the Invention] [Problem to be Solved by the Invention]

[0004] However, in the above-mentioned conventional technique, although the concentration of hydrogen in oxygen on the downstream side (secondary side) relative to the catalyst filter is reduced, the concentration of hydrogen in oxygen in the oxygen gas-liquid separator disposed on the upstream side (primary side) relative to the catalyst filter cannot be reduced.

[0005] The present disclosure has been made in view of the above-mentioned conventional problems, and an object thereof is to reduce the concentration of hydrogen in oxygen in an oxygen gas-liquid separator. [Means for Solving the Problem]

[0006] To solve the above problems, a water electrolysis apparatus according to one aspect of the present disclosure includes an oxygen-gas-liquid separator that separates gas-liquid mixed water supplied from a water electrolysis cell into oxygen and water, a catalyst disposed outside the oxygen-gas-liquid separator to reduce hydrogen mixed in with the oxygen, and a circulation line that returns the oxygen that has passed through the catalyst to the oxygen-gas-liquid separator, the circulation line having a blower that sends the oxygen to the oxygen-gas-liquid separator. [Effects of the Invention]

[0007] According to one aspect of this disclosure, the hydrogen concentration in the oxygen within the oxygen-liquid separator can be reduced. [Brief explanation of the drawing]

[0008] [Figure 1] This is a schematic diagram showing an example of the main components of a water electrolysis apparatus according to Embodiment 1 of this disclosure. [Figure 2] This is a schematic diagram showing an enlarged example of the oxygen circulation line and its surrounding configuration as shown in Figure 1. [Figure 3] This is a schematic diagram showing an example of the main components of a water electrolysis apparatus according to Embodiment 2 of this disclosure. [Figure 4] This is a schematic diagram showing an enlarged example of the oxygen circulation line and its surrounding configuration as shown in Figure 3. [Modes for carrying out the invention]

[0009] [Embodiment 1] An embodiment of this disclosure will be described below. Note that the following description is an example of a water electrolysis apparatus related to this disclosure, and the technical scope of this disclosure is not limited to the illustrated example.

[0010] [Configuration of a water electrolysis device] First, with reference to Figure 1, an example of the configuration of the water electrolysis apparatus 100 according to this embodiment will be described. Figure 1 is a schematic diagram showing an example of the main components of the water electrolysis apparatus 100 according to this embodiment.

[0011] As shown in Figure 1, the water electrolysis apparatus 100 includes a water electrolysis cell 1, a DC power supply 2, a hydrogen vapor-liquid separator 3, an oxygen vapor-liquid separator 4, a catalytic filter 5 having a catalyst 52, and an oxygen circulation line (circulation line) 6 in which a blower 61 is located.

[0012] The water electrolysis device 100 is equipped with a catalyst 52 for reducing hydrogen (hydrogen gas) mixed in with oxygen (oxygen gas). The water electrolysis device 100 is configured to reduce the hydrogen concentration in the oxygen within the oxygen gas-liquid separator 4 by returning the oxygen, after the hydrogen has been reduced by the catalyst 52 located outside the oxygen gas-liquid separator 4, to the oxygen gas-liquid separator 4 via the oxygen circulation line 6.

[0013] The water electrolysis device 100 may be a solid polymer electrolyte water electrolysis device that electrolyzes pure water to generate hydrogen and oxygen by applying a voltage to a solid polymer electrolyte membrane and passing an electric current through it. The water electrolysis device 100 may be, for example, a proton exchange membrane (PEM) type water electrolysis device. However, the water electrolysis device 100 may also be an anion exchange membrane (AEM) type water electrolysis device. Furthermore, the water electrolysis device 100 may be an alkaline water electrolysis device or a solid oxide type water electrolysis device, etc.

[0014] The water electrolytic cell 1 electrolyzes water using, for example, a solid polymer electrolyte membrane to generate oxygen at the anode and hydrogen at the cathode. The water electrolytic cell 1 may also be, for example, a cell stack in which multiple cells 11 are stacked in one direction.

[0015] A DC power supply 2 is connected to the water electrolysis cell 1. The power required for water electrolysis is supplied to the water electrolysis cell 1 from the DC power supply 2. In addition to power from the commercial power supply, renewable energy sources such as solar power generation and wind power generation, or surplus power from such sources, can be used to supply power to the water electrolysis cell 1.

[0016] Hydrogen generated at the cathode of the water electrolyzer 1 is supplied from the water electrolyzer 1 to the hydrogen gas-liquid separator 3 in the form of gas-liquid mixed water. Oxygen generated at the anode of the water electrolyzer 1 is supplied from the water electrolyzer 1 to the oxygen gas-liquid separator 4 in the form of gas-liquid mixed water.

[0017] The hydrogen gas-liquid separator 3 performs gas-liquid separation on the gas-liquid mixed water containing hydrogen supplied from the water electrolyzer 1 into hydrogen and water. The hydrogen after gas-liquid separation is wet hydrogen containing a large amount of moisture. For this reason, the hydrogen after gas-liquid separation passes through a hydrogen line 7 connected to the hydrogen gas-liquid separator 3 and is supplied to a dehumidifier or the like (not shown), where moisture is removed. On the other hand, the water after gas-liquid separation may be supplied to the water electrolyzer 1 via, for example, the oxygen gas-liquid separator 4 and reused for generating hydrogen.

[0018] The oxygen gas-liquid separator 4 performs gas-liquid separation on the gas-liquid mixed water containing oxygen supplied from the water electrolyzer 1 into oxygen and water. The oxygen after gas-liquid separation flows into an oxygen line 8 connected to the oxygen gas-liquid separator 4, and passes through a catalyst filter 5 disposed in the oxygen line 8, thereby reducing hydrogen mixed in the oxygen. Part of the oxygen after passing through the catalyst filter 5 is returned to the oxygen gas-liquid separator 4 through the oxygen circulation line 6, and the remaining part is discharged to, for example, the atmosphere. On the other hand, the water after gas-liquid separation is supplied to the water electrolyzer 1 through a water circulation line 9 connected to the oxygen gas-liquid separator 4. The water circulation line 9 connects between the water electrolyzer 1 and the oxygen gas-liquid separator 4, and circulates water between the water electrolyzer 1 and the oxygen gas-liquid separator 4. A pump 91 for delivering water from the oxygen gas-liquid separator 4 to the water electrolyzer 1 is disposed in the water circulation line 9.

[0019] Note that a pure water production apparatus (not shown) may be connected to the oxygen gas-liquid separator 4, and pure water obtained by treating tap water such as city water by the pure water production apparatus may be supplied to the oxygen gas-liquid separator 4. Further, when the water electrolysis apparatus 100 is an alkaline water electrolysis apparatus, the pure water may be configured to be supplied to the hydrogen gas-liquid separator 3.

[0020] The catalyst filter 5 is disposed outside the oxygen gas-liquid separator 4 and includes a catalyst 52 that reduces hydrogen mixed into oxygen. The catalyst 52 promotes a water generation reaction that produces water from hydrogen and oxygen. Accordingly, when oxygen that has undergone gas-liquid separation in the oxygen gas-liquid separator 4 passes through the catalyst 52, hydrogen mixed into the oxygen is reduced.

[0021] The oxygen circulation line 6 is a return line for returning oxygen that has passed through the catalyst 52 to the oxygen gas-liquid separator 4. A blower (air blowing unit) 61 for feeding oxygen that has passed through the catalyst 52 to the oxygen gas-liquid separator 4 is disposed in the oxygen circulation line 6.

[0022] In the water electrolysis apparatus 100 having such a configuration, part of the oxygen after mixed hydrogen is reduced by the catalyst 52 is returned to the oxygen gas-liquid separator 4 through the oxygen circulation line 6, whereby the hydrogen concentration in oxygen within the oxygen gas-liquid separator 4 can be reduced. Furthermore, since the amount of oxygen flowing into the oxygen circulation line 6 from the oxygen line 8 can be changed by controlling the operation of the blower 61, the hydrogen concentration in oxygen within the oxygen gas-liquid separator 4 can be adjusted.

[0023] [Configuration around oxygen circulation line] Next, a configuration example of the oxygen circulation line 6 and its periphery in the water electrolysis apparatus 100 will be described with reference to FIG. 2. FIG. 2 is an enlarged schematic diagram showing the configuration example of the oxygen circulation line 6 and its periphery shown in FIG. 1.

[0024] As shown in FIG. 2, in the present embodiment, the catalyst filter 5 is disposed in an oxygen line 8 connected to the gas phase section of the oxygen gas-liquid separator 4. In this oxygen line 8, on the upstream side of the catalyst filter 5, that is, between the oxygen gas-liquid separator 4 and the catalyst filter 5, a heat exchanger (cooler) 81 for cooling oxygen and a hydrogen concentration meter 82 for detecting the hydrogen concentration in oxygen may be installed.

[0025] The catalytic filter 5 includes a catalytic cylinder 51 and a catalyst 52 housed within the catalytic cylinder 51. The catalytic cylinder 51 has, for example, a plurality of holes inside that allow a gas (oxygen) to pass through. The inside of the catalytic cylinder 51 may have a honeycomb structure made of, for example, ceramics.

[0026] Catalyst 52 is a hydrogen removal catalyst that promotes the water production reaction, which generates water from hydrogen and oxygen. As catalyst 52, for example, a Pd-supported catalyst, in which palladium (Pd) is supported on an alumina support, or a Pt-supported catalyst, in which platinum (Pt) is supported on an alumina support, can be used. When the oxygen separated into gas and liquid form in the oxygen-gas-liquid separator 4 passes through catalyst 52, the hydrogen and oxygen react with catalyst 52 to form water, thereby reducing the amount of hydrogen mixed with the oxygen.

[0027] The oxygen circulation line 6 is piped to return a portion of the oxygen that has passed through the catalyst 52 to the oxygen vapor-liquid separator 4. The oxygen circulation line 6 includes an upstream end 6A, which is an inlet for oxygen to flow in, and a downstream end 6B, which is an outlet for oxygen to flow out of the oxygen circulation line 6.

[0028] In this embodiment, the oxygen circulation line 6 has its upstream end 6A connected to the oxygen line 8 and its downstream end 6B connected to the oxygen gas-liquid separator 4. Specifically, the upstream end 6A of the oxygen circulation line 6 is connected to the oxygen line 8 downstream of the location of the catalyst 52. The downstream end 6B of the oxygen circulation line 6 is connected to the gas phase of the oxygen gas-liquid separator 4. As a result, the oxygen introduced from the oxygen gas-liquid separator 4 to the oxygen line 8 passes through the catalyst 52 located in the oxygen line 8, where the oxygen is reduced, and then a portion of it flows back into the oxygen circulation line 6 and returns to the oxygen gas-liquid separator 4. This makes it possible to reduce the hydrogen concentration in the oxygen within the oxygen gas-liquid separator 4.

[0029] Thus, in the water electrolysis apparatus 100, the hydrogen concentration in the oxygen downstream (secondary) of the catalyst 52 can be reduced by passing the oxygen from the oxygen-liquid separator 4 through the catalyst 52. Furthermore, by returning a portion of the oxygen that has passed through the catalyst 52 to the oxygen-liquid separator 4, the hydrogen concentration in the oxygen within the oxygen-liquid separator 4, which is located upstream of the catalyst 52, can be reduced.

[0030] Furthermore, the water electrolysis apparatus 100 includes a control unit 10 that controls each part of the water electrolysis apparatus 100. The control unit 10 performs an abnormality detection process to detect an abnormality in the water electrolysis cell 1 based on the temperature of the catalyst 52, for example.

[0031] Since the heat generated by catalyst 52 is the heat of combustion of hydrogen mixed with oxygen, the higher the hydrogen concentration in the oxygen passing through catalyst 52, the higher the temperature of catalyst 52. For this reason, control unit 10 monitors the temperature of catalyst 52 by acquiring the detection signal from thermometer 53, which detects the temperature of catalyst 52 (catalyst cylinder 51), and determines that there may be an abnormality in the water electrolytic cell 1 if the temperature of catalyst 52 exceeds a predetermined threshold. In this case, control unit 10 may, for example, stop supplying power from DC power supply 2 to water electrolytic cell 1 and output an abnormality signal indicating that an abnormality has been detected.

[0032] Furthermore, the control unit 10 performs blower control processing, which uses an inverter to control the operation of the blower 61 located in the oxygen circulation line 6, in order to adjust the hydrogen concentration in the oxygen within the oxygen-liquid separator 4 to a desired range.

[0033] The control unit 10 may, for example, control the operation of the blower 61 according to the operating load of the water electrolytic cell 1. Normally, when the water electrolytic cell 1 is operating at a high load, the hydrogen concentration in the oxygen in the oxygen-liquid separator 4 decreases. On the other hand, when the water electrolytic cell 1 is operating at a low load, the hydrogen concentration in the oxygen in the oxygen-liquid separator 4 increases. Therefore, by controlling the operation of the blower 61 according to the operating load of the water electrolytic cell 1, it becomes easier to adjust the hydrogen concentration in the oxygen in the oxygen-liquid separator 4 to a desired range.

[0034] The control unit 10 may, for example, control the operation of the blower 61 according to the electrolysis current value or oxygen generation amount in the water electrolysis cell 1. Alternatively, the control unit 10 may acquire the detection signal from the hydrogen concentration meter 82 located in the oxygen line 8 and control the operation of the blower 61 according to the hydrogen concentration in the oxygen.

[0035] For example, if the hydrogen concentration in the oxygen within the oxygen-liquid separator 4 exceeds 40,000 ppm, there is a risk of hydrogen explosion within the oxygen-liquid separator 4. Therefore, to ensure sufficient safety, it is preferable that the control unit 10 controls the operation of the blower 61 so that the hydrogen concentration in the oxygen within the oxygen-liquid separator 4 can be kept below 20,000 ppm, preferably below 10,000 ppm. The capacity of the oxygen-liquid separator 4, the airflow rate of the blower 61 (blower capacity), or the amount of catalyst 52 used can be appropriately changed according to the scale of the water electrolysis apparatus 100, such as the amount of oxygen generated in the water electrolysis cell 1.

[0036] Furthermore, the control unit 10 may operate the blower 61 during the electrolysis operation of the water electrolytic cell 1 and when the electrolysis operation is stopped. For example, when converting renewable energy to hydrogen, that is, when supplying renewable energy to the water electrolytic cell 1, the electrolysis operation of the water electrolytic cell 1 may be temporarily stopped depending on the power supply situation. In this case, since the operating pressure of the water electrolytic cell 1 is maintained, cross-leakage of oxygen and hydrogen continues to occur. Therefore, when the electrolysis operation of the water electrolytic cell 1 is stopped, no new oxygen and hydrogen are generated, but existing hydrogen permeates through the polymer electrolyte membrane, causing the hydrogen concentration in oxygen within the oxygen-liquid separator 4 to rise. By continuing to operate the blower 61 not only during the electrolysis operation of the water electrolytic cell 1 but also when the electrolysis operation is stopped, the rise in the hydrogen concentration in oxygen within the oxygen-liquid separator 4 during the electrolysis operation stoppage can be suppressed, and the hydrogen concentration in oxygen can be reduced.

[0037] Thus, even when the electrolysis operation of the water electrolytic cell 1 is stopped, the blower 61 may be operated if the water electrolytic cell 1 has operating pressure. This allows, for example, the hydrogen concentration in the oxygen in the oxygen vapor-liquid separator 4 to be sufficiently reduced while the electrolysis operation of the water electrolytic cell 1 is stopped, and the oxygen vapor-liquid separator 4 to be kept on standby until the electrolysis operation is restarted with a low hydrogen concentration in the oxygen vapor-liquid separator 4. Furthermore, for example, if the water electrolytic cell 1 is completely stopped and the operating pressure of the water electrolytic cell 1 is reduced to depressurize it, the blower 61 may be stopped.

[0038] [Effects and Effects of Water Electrolysis Devices] Thus, the water electrolysis apparatus 100 according to this embodiment includes an oxygen-gas-liquid separator 4 that separates the gas-liquid mixed water supplied from a water electrolysis cell 1 that electrolyzes water into oxygen and water, a catalyst 52 disposed outside the oxygen-gas-liquid separator 4 to reduce hydrogen mixed in with the oxygen, and an oxygen circulation line 6 that returns the oxygen that has passed through the catalyst 52 to the oxygen-gas-liquid separator 4, and an oxygen circulation line 6 in which a blower 61 that sends oxygen to the oxygen-gas-liquid separator 4 is disposed.

[0039] In the water electrolysis apparatus 100, the oxygen, after the hydrogen mixed with it has been reduced by the catalyst 52, is returned to the oxygen vapor-liquid separator 4, thereby reducing the hydrogen concentration in the oxygen within the oxygen vapor-liquid separator 4. Furthermore, in the water electrolysis apparatus 100, the oxygen circulating through the oxygen circulation line 6 repeatedly passes through the catalyst 52, thus efficiently reducing the hydrogen mixed with the oxygen. Moreover, in the water electrolysis apparatus 100, the amount of oxygen flowing through the oxygen circulation line 6 (the amount of oxygen passing through the catalyst 52) ​​can be changed by controlling the operation of the blower 61, thereby adjusting the hydrogen concentration in the oxygen within the oxygen vapor-liquid separator 4.

[0040] Furthermore, the water electrolysis apparatus 100 according to this embodiment is connected to an oxygen-gas-liquid separator 4 and includes an oxygen line 8 that leads oxygen to the outside of the oxygen-gas-liquid separator 4. The catalyst 52 is located in the oxygen line 8, the upstream end 6A of the oxygen circulation line 6 is connected to the oxygen line 8 downstream of the catalyst 52's location, and the downstream end 6B of the oxygen circulation line 6 is connected to the oxygen-gas-liquid separator 4.

[0041] In the water electrolysis apparatus 100, oxygen introduced from the oxygen vapor-liquid separator 4 to the oxygen line 8 passes through the catalyst 52 located in the oxygen line 8, and a portion of it flows into the oxygen circulation line 6 and is returned to the oxygen vapor-liquid separator 4. Therefore, the water electrolysis apparatus 100 makes it possible to reduce the hydrogen concentration in the oxygen within the oxygen vapor-liquid separator 4.

[0042] [Embodiment 2] Other embodiments of this disclosure are described below. For the sake of convenience, components having the same function as those described in the above embodiments are denoted by the same reference numerals, and their descriptions are not repeated.

[0043] [Configuration of a water electrolysis device] First, with reference to Figure 3, an example of the configuration of the water electrolysis apparatus 101 according to this embodiment will be described. Figure 1 is a schematic diagram showing an example of the main components of the water electrolysis apparatus 101 according to this embodiment.

[0044] As shown in Figure 3, the water electrolysis apparatus 101 includes a water electrolysis cell 1, a DC power supply 2, a hydrogen vapor-liquid separator 3, an oxygen vapor-liquid separator 4, a catalytic filter 5 having a catalyst 52, and an oxygen circulation line (circulation line) 60 on which a blower 61 is located. The water electrolysis apparatus 101 according to this embodiment differs from the water electrolysis apparatus 100 according to the previous embodiment in that the catalytic filter 5 and the hydrogen concentration meter 82 are located in the oxygen circulation line 60.

[0045] [Configuration around the oxygen circulation line] Next, with reference to Figure 4, an example of the configuration of the oxygen circulation line 60 and its surroundings in the water electrolysis device 101 will be described. Figure 4 is a schematic diagram showing an enlarged view of the example of the oxygen circulation line 60 and its surroundings shown in Figure 3.

[0046] As shown in Figure 4, in the water electrolysis apparatus 101, a catalytic filter 5 is located in the oxygen circulation line 60. In this embodiment, the catalytic filter 5 is located in the oxygen circulation line 60 downstream of the blower 61. In addition, a hydrogen concentration meter 82 is located in the oxygen circulation line 60 in the water electrolysis apparatus 101. In this embodiment, the catalytic filter 5 is located in the oxygen circulation line 60 between the blower 61 and the catalytic filter 5.

[0047] Furthermore, the upstream end 6A of the oxygen circulation line 60 is not connected to the oxygen line 8, but is connected to the oxygen gas-liquid separator 4. In other words, in the water electrolysis apparatus 101, a catalyst 52 is placed in the oxygen circulation line 60, and both the upstream end 6A and the downstream end of the oxygen circulation line 60 are connected to the gas phase section of the oxygen gas-liquid separator 4. As a result, some of the oxygen in the oxygen gas-liquid separator 4 flows directly into the oxygen circulation line 60, passes through the catalyst 52 placed in the oxygen circulation line 60, and is returned to the oxygen gas-liquid separator 4. This makes it possible to reduce the hydrogen concentration in the oxygen within the oxygen gas-liquid separator 4.

[0048] [Effects and Effects of Water Electrolysis Devices] Thus, the water electrolysis apparatus 101 according to this embodiment includes an oxygen-gas-liquid separator 4 that separates the gas-liquid mixed water supplied from a water electrolysis cell 1 that electrolyzes water into oxygen and water, a catalyst 52 disposed outside the oxygen-gas-liquid separator 4 to reduce hydrogen mixed in with the oxygen, and an oxygen circulation line 60 that returns the oxygen that has passed through the catalyst 52 to the oxygen-gas-liquid separator 4, and an oxygen circulation line 60 on which a blower 61 that sends oxygen to the oxygen-gas-liquid separator 4 is disposed.

[0049] According to the water electrolysis device 101, the hydrogen concentration in the oxygen in the oxygen gas-liquid separator 4 can be reduced by returning the oxygen, after the hydrogen mixed with oxygen has been reduced by the catalyst 52, to the oxygen gas-liquid separator 4. Furthermore, according to the water electrolysis device 101, since the oxygen circulating through the oxygen circulation line 60 repeatedly passes through the catalyst 52, the hydrogen mixed with oxygen can be efficiently reduced. In addition, according to the water electrolysis device 101, the amount of oxygen flowing through the oxygen circulation line 60 (the amount of oxygen passing through the catalyst 52) ​​can be changed by controlling the operation of the blower 61, thereby adjusting the hydrogen concentration in the oxygen in the oxygen gas-liquid separator 4.

[0050] Furthermore, in the water electrolysis apparatus 101 according to this embodiment, the catalyst 52 is located in the oxygen circulation line 60, and the upstream end 6A and the downstream end 6B of the oxygen circulation line 60 are connected to the oxygen gas-liquid separator 4.

[0051] In the water electrolysis apparatus 101, the oxygen in the oxygen-gas-liquid separator 4 flows directly into the oxygen circulation line 60, passes through the catalyst 52 located in the oxygen circulation line 60, and is then returned to the oxygen-gas-liquid separator 4. Therefore, the water electrolysis apparatus 101 makes it possible to reduce the hydrogen concentration in the oxygen within the oxygen-gas-liquid separator 4.

[0052] 〔summary〕 A water electrolysis apparatus according to Embodiment 1 of the present disclosure includes an oxygen-gas-liquid separator that separates gas-liquid mixed water supplied from a water electrolysis cell into oxygen and water, a catalyst disposed outside the oxygen-gas-liquid separator to reduce hydrogen mixed in with the oxygen, and a circulation line (oxygen circulation line 6, 60) that returns the oxygen that has passed through the catalyst to the oxygen-gas-liquid separator, the circulation line having a blower (blower 61) that sends the oxygen to the oxygen-gas-liquid separator.

[0053] According to the above configuration, the hydrogen concentration in the oxygen within the oxygen-gas-liquid separator can be reduced by returning the oxygen, after the hydrogen mixed with oxygen has been reduced by a catalyst, to the oxygen-gas-liquid separator. Furthermore, according to the above configuration, the amount of oxygen flowing through the circulation line can be changed by controlling the operation of the blower, thereby allowing the hydrogen concentration in the oxygen within the oxygen-gas-liquid separator to be adjusted.

[0054] In the water electrolysis apparatus according to Embodiment 2 of the present disclosure, in Embodiment 1, the air blower may operate in accordance with the operating load of the water electrolysis cell.

[0055] According to the above configuration, since the blower operates in accordance with the operating load of the water electrolytic cell, it becomes easier to adjust the hydrogen concentration in the oxygen within the oxygen-liquid separator to a desired range by changing the amount of oxygen flowing through the circulation line according to the amount of oxygen generated in the water electrolytic cell, for example.

[0056] In the water electrolysis apparatus according to embodiment 3 of the present disclosure, in embodiment 1 or 2, the blower unit may operate during the electrolysis operation of the water electrolysis cell and when the electrolysis operation is stopped.

[0057] In the above configuration, the blower operates not only during the electrolysis operation of the water electrolytic cell but also when the electrolysis operation is stopped, so the hydrogen concentration in the oxygen in the oxygen-liquid separator can be efficiently reduced when the electrolysis operation is stopped. Therefore, with the above configuration, for example, when the electrolysis operation of the water electrolytic cell is stopped, the hydrogen concentration in the oxygen-liquid separator can be sufficiently reduced, and the oxygen-liquid separator can be kept on standby until the electrolysis operation is restarted with a low hydrogen concentration in the oxygen-liquid separator.

[0058] In the water electrolysis apparatus according to aspect 4 of the present disclosure, in any of aspects 1 to 3, the apparatus further comprises an oxygen line connected to the oxygen gas-liquid separator and for leading the oxygen to the outside of the oxygen gas-liquid separator, the catalyst is arranged in the oxygen line, the upstream end of the circulation line is connected to the oxygen line downstream of the catalyst's position, and the downstream end of the circulation line is connected to the oxygen gas-liquid separator.

[0059] In the above configuration, oxygen introduced from the oxygen-gas-liquid separator to the oxygen line passes through a catalyst placed in the oxygen line, and a portion of it flows into the circulation line and is returned to the oxygen-gas-liquid separator. Therefore, the hydrogen concentration in the oxygen within the oxygen-gas-liquid separator can be reduced.

[0060] In the water electrolysis apparatus according to aspect 5 of the present disclosure, in any of aspects 1 to 3, the catalyst may be arranged in the circulation line, and the upstream and downstream ends of the circulation line may each be connected to the oxygen vapor-liquid separator.

[0061] In the above configuration, the oxygen in the oxygen-gas-liquid separator flows directly into the circulation line, passes through a catalyst placed in the circulation line, and is then returned to the oxygen-gas-liquid separator. Therefore, the hydrogen concentration in the oxygen within the oxygen-gas-liquid separator can be reduced.

[0062] This disclosure is not limited to the embodiments described above, and various modifications are possible within the scope of the claims. Embodiments obtained by appropriately combining the technical means disclosed in different embodiments are also included in the technical scope of this disclosure. [Explanation of symbols]

[0063] 1: Water electrolyzer 4: Oxygen-gas-liquid separator 6. 60: Oxygen circulation line (circulation line) 6A: Upstream end 6B: Downstream end 8: Oxygen line 10: Control Unit 61: Blower (air blower) 100, 101: Water electrolysis equipment

Claims

1. An oxygen-gas-liquid separator separates the gas-liquid mixture supplied from a water electrolytic cell that electrolyzes water into oxygen and water, A catalyst is placed outside the oxygen-gas-liquid separator to reduce hydrogen mixed with the oxygen, A circulation line that returns the oxygen that has passed through the catalyst to the oxygen vapor-liquid separator, the circulation line having a blower unit that sends the oxygen to the oxygen vapor-liquid separator, A water electrolysis device, including a water electrolysis device.

2. The water electrolysis apparatus according to claim 1, wherein the blowing unit operates in accordance with the operating load of the water electrolysis cell.

3. The water electrolysis apparatus according to claim 1 or 2, wherein the blowing unit operates during the electrolysis operation of the water electrolysis cell and when the electrolysis operation is stopped.

4. The oxygen gas-liquid separator is further connected to an oxygen line that guides the oxygen to the outside of the oxygen gas-liquid separator, The catalyst is placed in the oxygen line, The upstream end of the circulation line is connected to the oxygen line downstream of the catalyst placement position. The water electrolysis apparatus according to claim 1 or 2, wherein the downstream end of the circulation line is connected to the oxygen vapor-liquid separator.

5. The catalyst is placed in the circulation line, The water electrolysis apparatus according to claim 1 or 2, wherein the upstream and downstream ends of the circulation line are each connected to the oxygen vapor-liquid separator.

Citation Information

Patent Citations

  • Water electrolysis apparatus

    JP2024117416A