Control device
The control device for a water electrolysis stack reduces hydrogen gas concentration in oxygen gas by supplying cooled water and instantly increasing current during startup, enhancing oxygen gas efficiency and purity.
Patent Information
- Application Number
- JP2023051373
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-28
- Publication Date
- 2025-05-26
- Estimated Expiration
- 2043-03-28
AI Technical Summary
There is a demand to reduce the concentration of hydrogen gas mixed with oxygen gas generated by water electrolysis through an electrolyte membrane during the startup of a water electrolysis stack.
A control device that manages a water supplier, a water temperature regulator, and a power supply device to supply water at a lower temperature than a predetermined temperature to the water electrolysis stack and instantly increase the current from zero to a rated value during startup.
This approach reduces the concentration of hydrogen gas mixed with oxygen gas, improving the efficiency and purity of oxygen gas generated during the startup of the water electrolysis stack.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a control device in an electrolysis system. [Background technology]
[0002] In recent years, research and development of electrolysis systems, including water electrolysis stacks, that contribute to energy efficiency has been conducted in order to ensure that more people have access to affordable, reliable, sustainable and advanced energy.
[0003] A water electrolysis stack electrolyzes water to generate hydrogen gas and oxygen gas. Patent Document 1 discloses a method for starting up a water electrolysis stack. This method sets an upper limit for the stack voltage, and while monitoring the stack voltage and the current flowing through the water electrolysis stack, increases the current stepwise to a rated value. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2010-59503 A Summary of the Invention [Problem to be solved by the invention]
[0005] Recently, there has been a demand for reducing the concentration of hydrogen gas that is mixed into oxygen gas generated by water electrolysis through an electrolyte membrane when a water electrolysis stack is started up.
[0006] The present invention aims to solve the above-mentioned problems. [Means for solving the problem]
[0007] An embodiment of the present invention is a control device that controls a water supplier that supplies water to a water electrolysis stack equipped with a membrane-electrode structure including an electrolyte membrane, an anode electrode, and a cathode electrode, a water temperature regulator that adjusts the temperature of the water supplied to the water electrolysis stack, and a power supply device that supplies current to the membrane-electrode structure, the control device having one or more processors that execute instructions that can be executed by a computer, and upon receiving a command to start the water electrolysis stack, controls the water supplier and the water temperature regulator to supply water to the water electrolysis stack at a temperature lower than a predetermined temperature, and then controls the power supply device to instantly increase the current value of the current supplied to the membrane-electrode structure from zero to a rated value. Effect of the Invention
[0008] According to the above aspect, it is possible to reduce the concentration of hydrogen gas that is mixed into oxygen gas generated by water electrolysis through the electrolyte membrane when the water electrolysis stack is started up. [Brief description of the drawings]
[0009] [Figure 1] FIG. 1 is a schematic diagram showing the configuration of an electrolysis system according to an embodiment. [Diagram 2] FIG. 2 is a flowchart showing the procedure of the startup process. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0010] 1 is a schematic diagram showing the configuration of an electrolysis system 10 according to an embodiment. The electrolysis system 10 includes a water electrolysis stack 12, a gas-liquid separator 14, a power supply unit 16, a water supplier 18, a water temperature regulator 20, and a controller 22.
[0011] The water electrolysis stack 12 has a plurality of unit cells 30 for electrolyzing water. Each unit cell 30 has the same configuration. FIG. 1 shows only one unit cell 30. The unit cell 30 has a membrane-electrode assembly 32. The membrane-electrode assembly 32 includes an electrolyte membrane 34, an anode electrode 36, and a cathode electrode 38. The electrolyte membrane 34 is configured to electrolyze hydroxide ions (OH- The electrolyte membrane 34 is an anion exchange membrane capable of transporting . The electrolyte membrane 34 is sandwiched between an anode electrode 36 and a cathode electrode 38.
[0012] In the unit cells 30, water is electrolyzed based on the current supplied to the membrane-electrode structure 32. The water is supplied to the cathode electrode 38 of each unit cell 30 through a water supply channel 40. The cathode electrode 38 converts a portion of the water into hydrogen ions H + and hydroxide ion OH - It can be decomposed into:
[0013] Hydrogen ion H + The hydrogen gas obtained in each unit cell 30 receives electrons at the cathode electrode 38 and becomes hydrogen gas. The hydrogen gas obtained in each unit cell 30 flows out to the water discharge channel 42 together with the water that was not electrolyzed.
[0014] Hydroxide ion OH - The hydroxide ions OH migrate to the anode electrode 36 through the electrolyte membrane 34. - releases electrons from the anode electrode 36. - When the unit cells 30 release electrons, oxygen gas and water are generated. The oxygen gas obtained in each unit cell 30 is stored in, for example, an oxygen tank 45 through an oxygen supply line 44.
[0015] A pressure control valve 46 is provided in the oxygen supply passage 44. The pressure control valve 46 maintains the pressure of the oxygen gas generated at the anode electrode 36 of each unit cell 30 at a predetermined pressure, for example, 1 to 100 MPa. In each unit cell 30, a large pressure difference occurs between the anode electrode 36 and the cathode electrode 38 via the electrolyte membrane 34. Due to this pressure difference, most of the water generated at the anode electrode 36 is returned to the cathode electrode 38 through the electrolyte membrane 34. In addition, a cross flow occurs in which hydrogen gas generated at the cathode electrode 38 passes through the electrolyte membrane 34 and moves to the anode electrode 36. leak The pressure control valve 46 may be a solenoid valve whose opening is adjustable, or a back pressure valve.
[0016] The gas-liquid separator 14 separates the hydrogen-containing water supplied from the water electrolysis stack 12 through the water discharge channel 42 into liquid water and hydrogen gas. The liquid water separated by the gas-liquid separator 14 is supplied to the water electrolysis stack 12 through the water supply channel 40. In other words, the gas-liquid separator 14 is a supply source of water supplied to the water electrolysis stack 12. The hydrogen gas separated by the gas-liquid separator 14 may be supplied to, for example, an electrochemical hydrogen boosting device (not shown).
[0017] The power supply device 16 is a device that supplies a current to the membrane electrode structure 32 of each unit cell 30. The power supply device 16 operates under the control of the control device 22. The power supply device 16 applies a voltage to the anode electrode 36 and the cathode electrode 38, and supplies a current between the anode electrode 36 and the cathode electrode 38. The power supply device 16 is configured to be able to adjust the magnitude (current value) of the current supplied between the anode electrode 36 and the cathode electrode 38. The current value is adjusted by the control device 22.
[0018] The water supplier 18 is a device that supplies water to the water electrolysis stack 12. The water supplier 18 operates under the control of the control device 22. The water supplier 18 is provided in a water supply path 40. The water supplier 18 may be a pump or a valve. Fig. 1 shows an example in which the water supplier 18 is a pump.
[0019] The water temperature regulator 20 is a device that adjusts the temperature of water supplied to the water electrolysis stack 12. The water temperature regulator 20 operates under the control of the control device 22. For example, the water temperature regulator 20 may heat or cool the water supplied to the water electrolysis stack 12 by adjusting the amount of heat of the heat exchanger 20A that exchanges heat with the water in the water supply channel 40. In this case, the water temperature regulator 20 adjusts the amount of heat of the heat exchanger 20A so as to reduce the deviation between the water temperature detected by a temperature sensor 48 provided in the water supply channel 40 and a target temperature.
[0020] The control device 22 is a computer that controls the electrolysis system 10. A plurality of sensors are connected to the control device 22. The plurality of sensors includes a temperature sensor 48 and a pressure sensor 50.
[0021] The temperature sensor 48 is a sensor that detects temperature. The temperature sensor 48 is provided in the water supply channel 40 that communicates with the cathode electrode 38 of each unit cell 30. The temperature sensor 48 detects the temperature of water supplied to the water electrolysis stack 12. The water temperature detected by the temperature sensor 48 is supplied to the control device 22.
[0022] The pressure sensor 50 is a sensor that detects the pressure of the gas. The pressure sensor 50 is provided in the oxygen supply channel 44 that communicates with the anode electrode 36 of each unit cell 30. In this embodiment, the pressure sensor 50 is provided in the oxygen supply channel 44 between the pressure control valve 46 and the water electrolysis stack 12. The pressure sensor 50 detects the pressure of the gas generated at the anode electrode 36. The gas detects hydroxide ions OH - The gas pressure detected by the pressure sensor 50 is supplied to the control device 22.
[0023] Further, a command input device 52 is connected to the control device 22. The command input device 52 is a device capable of inputting at least a command to start the water electrolysis stack 12 or a command to stop the water electrolysis stack 12. The command input device 52 may be a lever-type on / off switch.
[0024] The control device 22 includes one or more processors and a storage medium. The storage medium may be composed of a volatile memory and a non-volatile memory. Examples of the processor include a CPU, an MCU, etc. Examples of the volatile memory include a RAM, etc. Examples of the non-volatile memory include a ROM, a flash memory, etc. The control device 22 controls a plurality of devices by the processor executing computer-executable instructions. The plurality of devices includes a power supply device 16, a water supplier 18, and a water temperature regulator 20.
[0025] Upon receiving a start-up command to start up the water electrolysis stack 12, the control device 22 starts the start-up process. Fig. 2 is a flowchart showing the procedure of the start-up process. Before the water electrolysis stack 12 is started up (stopped state), the power supply device 16, the water supplier 18, and the water temperature regulator 20 are stopped.
[0026] In step S1, the control device 22 controls the water supplier 18 to supply water to the water electrolysis stack 12 while circulating the water between the water supply channel 40 and the water discharge channel 42. In this case, no current is supplied to the membrane electrode assembly 32 of each unit cell 30. Therefore, water electrolysis is not substantially performed in each unit cell 30.
[0027] In step S2, the controller 22 controls the water temperature regulator 20 to adjust the temperature of the water supplied to the water electrolysis stack 12 to the start-up temperature. The start-up temperature is stored in advance in a storage medium as a target temperature at the start-up of the water electrolysis stack 12. The start-up temperature is set lower than a predetermined temperature at which the water electrolysis stack 12 provides good water electrolysis efficiency. For example, the start-up temperature is 30°C. The start-up temperature is selected from a range of 20°C to 70°C. When the deviation between the water temperature detected by the temperature sensor 48 and the start-up temperature becomes equal to or smaller than a predetermined value, the controller 22 proceeds to step S3.
[0028] In step S3, the control device 22 controls the power supply device 16 to increase the current value of the current supplied to the membrane-electrode structure 32 from zero to the rated value in one go. That is, the control device 22 increases the current value supplied to the membrane-electrode structure 32 instantaneously. In other words, the current command value from the control device 22 is not a command value for gradually increasing the current, but a command value for the rated value is output to the power supply device 16. Therefore, the current value of the current supplied to the membrane-electrode structure 32 is not controlled to increase in steps. Note that "in one go" or "instantaneously" means that it takes 2 seconds or less for the current value to increase from zero to the rated value. In addition, the current value being zero includes the case where a weak current that does not cause ion exchange is supplied to the membrane-electrode structure 32.
[0029] When the current supplied to the membrane electrode assembly 32 is suddenly increased from zero to the rated value, the amount of hydrogen gas in the flow path communicating with the anode electrode 36 of each unit cell 30 is small. This has been made clear from experimental results. The following reasons are considered to be the reasons why such experimental results were obtained.
[0030] That is, in this embodiment, the temperature of the water supplied to the water electrolysis stack 12 is adjusted to be lower than a predetermined temperature at which water electrolysis efficiency is good (step S2). Therefore, the amount of hydrogen gas generated at the cathode electrode 38 is reduced compared to when the water temperature is higher than the predetermined temperature. As a result, the amount of hydrogen gas that passes through the electrolyte membrane 34 and moves to the anode electrode 36 is reduced. On the other hand, when the water temperature is adjusted to be lower than the predetermined temperature, the hydroxide ions OH that pass through the electrolyte membrane 34 from the cathode electrode 38 to the anode electrode 36 are reduced. - decreases.
[0031] In this embodiment, the current supplied to the membrane-electrode assembly 32 is increased from zero to the rated value in one go. - Even if the current supplied to the membrane electrode structure 32 decreases, the amount of oxygen gas generated at the anode electrode 36 per unit time is greater than in the case where the current supplied to the membrane electrode structure 32 increases gradually.
[0032] In other words, the relative amount of hydrogen gas moving to the anode electrode 36 decreases compared to the oxygen gas generated at the anode electrode 36. As a result, it is considered that the amount of hydrogen gas in the flow path communicating with the anode electrode 36 of each unit cell 30 decreases.
[0033] After suddenly increasing the value of the current supplied to the membrane electrode assembly 32, the control device 22 proceeds to step S4. In step S4, the control device 22 compares the pressure detected by the pressure sensor 50 with a predetermined first threshold value. The first threshold value is a threshold value that is compared with the pressure detected by the pressure sensor 50 during the startup process. The first threshold value is stored in advance in a storage medium of the control device 22.
[0034] If the pressure is equal to or less than the first threshold, the control device 22 remains in step S4. On the other hand, if the pressure exceeds the first threshold, the control device 22 proceeds to step S5. In step S5, the control device 22 controls the water temperature regulator 20 to make the temperature of the water supplied to the water electrolysis stack 12 higher than the start-up temperature. In this case, the water temperature regulator 20 heats the water supplied to the water electrolysis stack 12. This increases the hydroxide ions OH - This increases the migration speed of the gas, resulting in improved water electrolysis efficiency in the water electrolysis stack 12. In other words, the electrolysis efficiency can be adjusted by controlling the behavior of the amount of gas generated by water electrolysis.
[0035] When the control device 22 confirms that the temperature detected by the temperature sensor 48 is higher than the startup temperature, it ends the startup process.
[0036] After completing the above-mentioned startup process, the controller 22 starts a steady operation process. In the steady operation process, the temperature of the water supplied to the water electrolysis stack 12 is maintained at a predetermined temperature (normal temperature) higher than the startup temperature. In addition, in the steady operation process, the current supplied to the membrane-electrode assembly 32 of the water electrolysis stack 12 is maintained at a rated value.
[0037] When a stop command to stop the water electrolysis stack 12 is received, the control device 22 starts a stop process. In this case, the control device 22 controls the power supply device 16 to gradually reduce the value of the current supplied to the membrane electrode assembly 32. In addition, the control device 22 controls the water temperature regulator 20 to gradually reduce the temperature of the water supplied to the water electrolysis stack 12.
[0038] As a result, hydroxide ions OH -The movement speed of the oxygen gas gradually slows down, and the amount of oxygen gas generated at the anode electrode 36 decreases. Therefore, the oxygen gas in the oxygen supply path 44 is gradually depressurized. As a result, compared to a case where the oxygen gas is suddenly depressurized, it is possible to suppress the hydrogen gas that has passed from the cathode electrode 38 through the electrolyte membrane 34 from being mixed into the oxygen gas. As a result, the applications of the depressurized high-purity oxygen gas are expanded. Also, compared to a case where the oxygen gas is suddenly depressurized, the load on the electrolyte membrane 34 can be reduced.
[0039] Thereafter, when the pressure detected by the pressure sensor 50 becomes equal to or lower than a predetermined second threshold, the control device 22 stops the water supplier 18 and ends the stop process. The second threshold is a threshold to be compared with the pressure detected by the pressure sensor 50 during the stop process. The second threshold is stored in advance in a storage medium of the control device 22. The second threshold may be the same as the first threshold, or may be smaller than the first threshold.
[0040] The above embodiment may be modified as follows.
[0041] For example, in step S4, the control device 22 may measure the time since the start of the supply of current to the membrane-electrode assembly 32. In this case, when a predetermined time has elapsed since the start of the supply of current to the membrane-electrode assembly 32, the control device 22 proceeds to step S5.
[0042] In this manner, when a predetermined time has elapsed since the start of supply of current to the membrane electrode assembly 32, the control device 22 can increase the temperature of the water supplied to the water electrolysis stack 12 above the start-up temperature. In this case, comparison of the pressure detected by the pressure sensor 50 with a predetermined threshold value is avoided. Therefore, the load on the control device 22 can be reduced compared to the case of the embodiment.
[0043] In addition, for example, the source of water supplied to the water electrolysis stack 12 is the gas-liquid separator 14 in the above embodiment, but is not limited thereto. For example, the water source may be a water tank. Alternatively, the water source may be a water supply pipe connected to a water treatment facility.
[0044] For example, the electrolysis system 10 is an AEM water electrolysis system in the above embodiment, but is not limited thereto. For example, the electrolysis system 10 may be a PEM water electrolysis system. In the AEM water electrolysis system, as described above, the water electrolysis stack 12 is provided with a membrane-electrode assembly 32 including an electrolyte membrane 34 that is an anion exchange membrane. On the other hand, in the PEM water electrolysis system, the water electrolysis stack 12 is provided with a membrane-electrode assembly 32 including an electrolyte membrane 34 that is a proton exchange membrane.
[0045] The following supplementary notes are further disclosed regarding the above-described embodiment.
[0046] (Appendix 1) The present disclosure relates to a control device (22) for controlling a water supplier (18) that supplies water to a water electrolysis stack (12) provided with a membrane-electrode assembly (32) including an electrolyte membrane (34), an anode electrode (36), and a cathode electrode (38), a water temperature regulator (20) that adjusts the temperature of the water supplied to the water electrolysis stack, and a power supply device (16) that supplies current to the membrane-electrode assembly, the control device (22) having one or more processors that execute computer-executable instructions, and upon receiving a command to start the water electrolysis stack, controls the water supplier and the water temperature regulator to supply the water at a temperature lower than a predetermined temperature to the water electrolysis stack, and then controls the power supply device to supply the water at a temperature lower than a predetermined temperature to the membrane-electrode assembly. The above The current value is increased from zero to the rated value in one go.
[0047] This makes it possible to reduce the relative amount of hydrogen gas permeating through the electrolyte membrane compared to oxygen gas, thereby reducing mixing of hydrogen gas generated by electrolysis of water with oxygen gas generated by the same electrolysis of water.
[0048] (Appendix 2) The present disclosure may provide a control device as described in Supplementary Note 1, wherein when a pressure detected by a pressure sensor (50) provided in a flow path communicating with the anode electrode exceeds a threshold value after the supply of the current to the membrane-electrode structure is started, the water temperature regulator is controlled to make the temperature of the water supplied to the water electrolysis stack higher than the predetermined temperature. This makes it possible to adjust the electrolysis efficiency according to the behavior of the amount of gas generated by electrolysis of water.
[0049] (Appendix 3) The present disclosure may provide the control device according to Appendix 1, wherein when a predetermined time has elapsed since the supply of the current to the membrane-electrode assembly is started, the control device controls the water temperature regulator to make the temperature of the water supplied to the water electrolysis stack higher than the predetermined temperature. , regulation This makes it possible to adjust the electrolysis efficiency by controlling the behavior of the amount of gas generated by the electrolysis of water while reducing the load on the control device.
[0050] (Appendix 4) The present disclosure relates to a control device according to any one of Supplementary Note 1 to Supplementary Note 3, and when the control device receives the command to stop the water electrolysis stack, the control device may control the power supply device to gradually reduce the current value and the water temperature regulator to gradually lower the water temperature. This allows the water electrolysis to be gradually stopped. As a result, mixing of hydrogen gas generated by water electrolysis and oxygen gas generated by the water electrolysis can be reduced compared to the case where the water electrolysis is immediately stopped.
[0051] The present invention is not limited to the above disclosure, and various configurations can be adopted without departing from the gist of the present invention. [Explanation of symbols]
[0052] 10...Electrolysis system 12...Water electrolysis stack 14... Gas-liquid separator 16... Power supply device 18...Water supply device 20...Water temperature regulator 22...Control device 30...Unit cell 32...Membrane / electrode structure 34...Electrolyte membrane 36: Anode electrode 38: Cathode electrode
Claims
1. a water supplier that supplies water to a water electrolysis stack including a membrane-electrode structure including an electrolyte membrane, an anode electrode, and a cathode electrode; a water temperature regulator for adjusting the temperature of the water supplied to the water electrolysis stack; a power supply device for supplying a current to the membrane-electrode assembly; A control device for controlling one or more processors for executing computer-executable instructions; upon receiving the command to start the water electrolysis stack, controlling the water supplier and the water temperature regulator to supply the water at a temperature lower than a predetermined temperature to the water electrolysis stack, and then controlling the power supply device to instantly increase the current value of the current supplied to the membrane electrode assembly from zero to a rated value; a control device that, when a pressure detected by a pressure sensor provided in a flow path communicating with the anode electrode exceeds a threshold value after the supply of the current to the membrane-electrode structure is started, controls the water temperature regulator to make the temperature of the water supplied to the water electrolysis stack higher than the predetermined temperature.
2. A water electrolysis stack including a membrane-electrode structure including an electrolyte membrane, an anode electrode, and a cathode electrode, and a water supplier that supplies water to the water electrolysis stack. a water temperature regulator for adjusting the temperature of the water supplied to the water electrolysis stack; a power supply device for supplying a current to the membrane-electrode assembly; A control device for controlling one or more processors for executing computer-executable instructions; upon receiving the command to start the water electrolysis stack, controlling the water supplier and the water temperature regulator to supply the water at a temperature lower than a predetermined temperature to the water electrolysis stack, and then controlling the power supply device to instantly increase the current value of the current supplied to the membrane electrode assembly from zero to a rated value; a control device that controls the water temperature regulator to make the temperature of the water supplied to the water electrolysis stack higher than the predetermined temperature when a predetermined time has elapsed since the supply of the current to the membrane-electrode assembly is started.
3. The control device according to claim 1 or 2, a control device that, upon receiving the command to stop the water electrolysis stack, controls the power supply device to gradually reduce the current value and controls the water temperature regulator to gradually lower the temperature of the water.
Citation Information
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