Bipolar electrolyzer for water electrolysis

By integrating a heat insulating member and spring member in the bipolar electrolytic cell design, the issue of reduced seal surface pressure due to thermal expansion is addressed, resulting in a longer-lasting and less maintenance-intensive electrolytic cell.

JP7784802B2Active Publication Date: 2025-12-12ASAHI KASEI KOGYO KABUSHIKI KAISHA
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Patent Information

Application Number
JP2020079709
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-04-28
Publication Date
2025-12-12
Estimated Expiration
2040-04-28

AI Technical Summary

Technical Problem

Existing bipolar electrolytic cells experience reduced seal surface pressure due to thermal expansion, leading to frequent retightening of tie rods, which shortens the cell's lifespan and increases maintenance frequency.

Method used

Incorporating a heat insulating member between the cell stack and press plates, with a thermal expansion coefficient greater than the tie rods, to minimize heat conduction and reduce the need for retightening, along with a spring member to absorb thermal expansion.

Benefits of technology

The solution extends the life of the bipolar electrolytic cell by maintaining seal surface pressure and reducing the frequency of tie rod retightening, thereby enhancing durability and reducing maintenance.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a water-electrolysis bipolar electrolytic cell that can keep a long life even when used under the condition of high frequent occurrence of fluctuating power supply or shutdown.SOLUTION: A water-electrolysis bipolar electrolytic cell comprises: a cell stack (a); a press plate (b) arranged at both ends of the cell stack (a) for applying a wall pressure between gaskets and diaphragms, and between the gaskets and elements; and a tie rod (c) for fastening the cell stack (a) and the press plate (b). In the cell stack (a), stacked are: an anode terminal element having an anode; a cathode terminal element having a cathode; multiple bipolar elements, which are arranged between the anode terminal element and the cathode terminal element, and each of which includes the anode, the cathode, a partition for isolating the anode from the cathode, and an outer frame for bordering the partition; and the diaphragms, each of which is arranged between adjacent elements via the gaskets. The water-electrolysis bipolar electrolytic cell also comprises a heat-insulation member (d) between the press plate (b) and the cell stack (a).SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a bipolar electrolytic cell for water electrolysis. [Background technology]

[0002] In recent years, renewable energy technologies such as wind power generation and solar power generation have been attracting attention in order to solve problems such as global warming caused by greenhouse gases such as carbon dioxide and dwindling fossil fuel reserves.

[0003] Renewable energy output is highly variable because it depends on weather conditions. As a result, it is not always possible to transport the electricity generated by renewable energy to the general power grid, raising concerns about the potential for imbalances in power supply and demand and the instability of the power grid.

[0004] Therefore, research is being conducted into converting electricity generated from renewable energy into a form that can be stored and transported, and using this electricity.Specifically, research is being conducted into generating storable and transportable hydrogen through the electrolysis of water using electricity generated from renewable energy, and using this hydrogen as an energy source or raw material.

[0005] Hydrogen is widely used industrially in oil refining, chemical synthesis, metal refining, etc., and in recent years, the possibility of its use has expanded in hydrogen stations for fuel cell vehicles (FCVs), smart communities, hydrogen power plants, etc. For this reason, there are high expectations for the development of technology to obtain hydrogen, especially from renewable energy sources.

[0006] Methods for electrolyzing water include solid polymer water electrolysis, high-temperature steam electrolysis, and alkaline water electrolysis. However, alkaline water electrolysis is considered to be one of the most promising methods because it has been industrialized for several decades, can be carried out on a large scale, and is inexpensive compared to other water electrolysis devices.

[0007] However, in order to adapt water electrolysis as a means for storing and transporting energy in the future, it is necessary to enable water electrolysis by efficiently and stably utilizing electric power, which has a large output fluctuation as described above, and there is a demand for resolving various issues with electrolytic cells and devices for water electrolysis.

[0008] For example, with regard to extending the life of the device, Patent Document 1 reports that in order to obtain an electrochemical system (fuel cell, electrolyzer, etc.) equipped with a sealing device that exhibits a long life even under conditions of significant temperature changes, an electrochemical system equipped with a terminal bipolar plate and an end plate having different thermal expansion coefficients and a sealing device disposed between the two plates is designed so that the sealing function of the sealing device is provided by sliding of the end plate and / or terminal bipolar plate along the sealing device. Furthermore, Patent Document 2 reports that in order to obtain a high-temperature steam electrolyzer or high-temperature fuel cell with a seal that has sufficient leak resistance even at high temperatures of 500°C or higher, an assembly that is placed between two components with different average thermal expansion coefficients to seal the components is designed so that the assembly is sealed by a combination of orthogonal compression perpendicular to each component, which is achieved by initial clamping, and radial compression, which is achieved by sliding the seal due to the thermal expansion difference. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] Special Publication No. 2017-509123 [Patent Document 2] Special Publication No. 2011-526329 Summary of the Invention [Problem to be solved by the invention]

[0010] Furthermore, particularly in electrolytic cells in which multiple electrolytic cells are connected in series (stacked) by tie rods, when the cell temperature becomes high due to electrolysis, it becomes necessary to retighten the tie rods as described below, and this retightening of the tie rods is a factor that shortens the life of the electrolytic cell. (1) When the cell temperature rises, the elastic modulus of the gasket that seals between the electrode elements that make up the electrolytic cell decreases, causing a decrease in the surface pressure (sealing surface pressure) between the gasket and each element. In addition, the tie rod also rises in temperature due to heat conduction from the cell, causing the cell and tie rod to expand, and the length of the entire electrolytic cell in the stacking direction of the cells to increase. If the thermal expansion (elongation) of the tie rod in the stacking direction is greater than the thermal expansion (elongation) of the stacked cells, the tightening force of the tie rod weakens, further reducing the surface pressure of the seal. (2) If the seal surface pressure drops as in (1) above, it is necessary to secure the seal surface pressure by tightening the tie rod (raising the surface pressure to adjust it back to its original value) in order to prevent leakage of the electrolyte and generated gas. When the tie rod is tightened, the gasket is further compressed in the stack direction, causing it to escape (protrude) outside the tightened surface. (3) After electrolysis is completed and the cell temperature returns to the temperature before electrolysis, the elastic modulus of the gasket recovers, but because it is in a tightened state, the gasket is in an over-compressed state. At this point, even if the tie rod is loosened by the amount of tightening, the permanent strain remains in the gasket, so the sealing surface pressure does not return to its original value before electrolysis. (4) As in (3) above, the gasket and seal surface pressure do not return to the state they were in before electrolysis, so when electrolysis is performed again and the cell temperature becomes high, further retightening is required. (5) Repeated tightening as in (1) to (4) causes the length of the electrolytic cell in the stack direction to gradually shorten compared to the initial state, and the compressive strain of the gasket gradually increases. The over-compressed gasket eventually breaks, causing leakage of the electrolyte and generated gas.

[0011] As mentioned above, retightening the tie rods increases the gasket's protrusion and compressive strain, leading to leakage of electrolyte and generated gas, and tearing or damage to the gasket. Therefore, reducing the number of times the tie rods are retightened leads to a longer life for the water electrolytic cell and water electrolytic cell equipment, and a reduction in the frequency of maintenance.

[0012] In view of the above problems, an object of the present invention is to provide a bipolar electrolytic cell for water electrolysis that has a long life even when used with a variable power supply or under conditions where operation is frequently stopped. [Means for solving the problem]

[0013] That is, the present invention is as follows. [1] an anode terminal element comprising an anode; a cathode terminal element comprising a cathode; a plurality of bipolar elements positioned between the anode terminal element and the cathode terminal element, each element including an anode, a cathode, a partition wall separating the anode and the cathode, and an outer frame that frames the partition wall; A diaphragm disposed between each of the adjacent elements. Cell stack (a) stacked via a gasket; Press plates (b) are disposed on both ends of the cell stack (a) and apply surface pressure between the gasket and the diaphragm, and between the gasket and each of the elements; a tie rod (c) that fastens the cell stack (a) and the press plate (b), a heat insulating member (d) is provided between the press plate (b) and the cell stack (a); The average thermal expansion coefficient α in the stacking direction of the cell stack (a), the press plate (b), and the heat insulating member (d) at the electrolysis temperature is greater than the average thermal expansion coefficient β in the stacking direction of the tie rod (c) at the electrolysis temperature, and the overall stack of the cell stack (a), the press plate (b), and the heat insulating member (d) At electrolysis temperatureThe amount of thermal expansion (length extension in the stack direction) of the tie rod (c) At electrolysis temperature The amount of thermal expansion is greater than the amount of thermal expansion (length extension in the stack direction) A bipolar electrolytic cell for water electrolysis, characterized in that: [2] The bipolar electrolytic cell for water electrolysis according to [1], wherein the thermal conductivity A of the heat insulating member (d) at the electrolysis temperature is smaller than the thermal conductivity B of the press plate (b) at the electrolysis temperature. [3] The bipolar electrolytic cell for water electrolysis according to [1] or [2], wherein the thermal conductivity A of the heat insulating member (d) at 100°C is 1 W / m·K or less. [4] The bipolar electrolytic cell for water electrolysis according to any one of [1] to [3], wherein the heat insulating member (d) has a volume resistivity of 1 kΩ·cm or more at the electrolysis temperature. [5] The bipolar electrolytic cell for water electrolysis according to any one of [1] to [4], wherein the thickness of the gasket is 5 to 20% of the thickness of the bipolar element. [6] a spring member (e) disposed on an outer periphery of the axis of the tie rod (c) and elastically deformable in the stacking direction of the cell stack (a), The bipolar electrolytic cell for water electrolysis according to any one of [1] to [5], wherein an expansion length ΔL in the stack direction of the cell stack (a) at an electrolysis temperature is 75% or less of a total deflection T in the stack direction of the spring member (e). [7] The bipolar electrolytic cell for water electrolysis according to [6], wherein the number of the tie rods (c) is n, and the spring members (e) arranged on the n tie rods (c) have a spring constant of 5 / n to 20 / n kN / mm. [8] The bipolar electrolytic cell for water electrolysis according to any one of [1] to [7], wherein the surface pressure between the gasket and each of the elements during electrolysis is at least twice the maximum internal pressure of the electrolytic cell, and the compressibility of the gasket in the stacking direction of the cell stack (a) is 10 to 25%. [Effects of the Invention]

[0014] According to the present invention, it is possible to provide a bipolar electrolytic cell for water electrolysis that has a long life even when used under conditions of variable power supply or frequent operation stoppages. [Brief explanation of the drawings]

[0015] [Figure 1] FIG. 1 is a side view showing an example of an entire bipolar electrolytic cell for water electrolysis according to an embodiment of the present invention. [Figure 2] FIG. 2 is a diagram showing a cross section of a zero-gap structure portion inside the electrolysis cell in the dashed rectangular frame portion of FIG. 1. [Figure 3] 1 is a diagram showing an outline of an electrolysis apparatus for water electrolysis according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0016] Hereinafter, an embodiment of the present invention (hereinafter referred to as "the present embodiment") will be described in detail. Note that the present invention is not limited to the following embodiment, and various modifications can be made within the scope of the gist of the present invention.

[0017] <Bipolar electrolyzer for water electrolysis> The bipolar electrolytic cell for water electrolysis of this embodiment is an electrolytic cell including a cell stack (a), press plates (b) located at both ends of the cell stack (a), and tie rods (c) that fasten the cell stack (a) and the press plates (b), and is further characterized by including a heat insulating member (d) between the cell stack (a) and the press plates (b). The cell stack (a) is composed of an anode terminal element having an anode, a cathode terminal element having a cathode, a plurality of bipolar elements positioned between the anode and cathode terminal elements and having an anode, a cathode, a partition wall separating the anode and cathode, and an outer frame bordering the partition wall, stacked (laminated) with gaskets interposed therebetween, and diaphragms disposed between adjacent elements. In this disclosure, the stacking direction of the cell stack (a) is also simply referred to as the "stack direction." The press plate (b) is fastened to the cell stack (a) by tie rods (c), and applies surface pressure (sealing surface pressure) between the gasket and the diaphragm, and between the gasket and each element. The bipolar electrolytic cell for water electrolysis of this embodiment includes a heat insulating member (d) between the cell stack (a) and the press plate (b), thereby reducing heat conduction from the cell stack (a) to the tie rods (c) when the cell stack (a) reaches a high temperature during electrolysis. This prevents the tie rods (c) from expanding and increasing in length in the stack direction, which would otherwise cause a decrease in seal surface pressure. This reduces the number of times the tie rods (c) need to be retightened, resulting in a long-life bipolar electrolytic cell for water electrolysis. Hereinafter, the configuration of an example of a bipolar electrolytic cell for water electrolysis according to this embodiment will be described with reference to the drawings.

[0018] FIG. 1 shows a side view of an example of the entire bipolar electrolytic cell for water electrolysis according to this embodiment. FIG. 2 is a side view of an example of a zero-gap structure of a bipolar electrolytic cell for water electrolysis according to this embodiment, showing the area enclosed by a dashed square frame in FIG. In the example of the bipolar electrolytic cell 50 for water electrolysis according to this embodiment shown in FIGS. 1 and 2 , a press plate (b), a heat insulating member (d), and an anode terminal element 51a are arranged in this order from one end, and further an anode side gasket 7, a diaphragm 4, a cathode side gasket 7, and a bipolar element 60 are arranged in this order. At this time, the bipolar element 60 is arranged so that the cathode 2c faces the anode terminal element 51a. The anode side gasket 7 to the bipolar element 60 are arranged repeatedly as many times as necessary for the designed production volume. After the anode side gasket 7 to the bipolar element 60 are arranged repeatedly as necessary, the anode side gasket 7, the diaphragm 4, and the cathode side gasket 7 are arranged again, and finally a cathode terminal element 51c, a heat insulating member (d), and a press plate (b) are arranged in this order. The bipolar electrolytic cell 50 for water electrolysis is integrated by fastening the entire cell together with tie rods (c) to form the bipolar electrolytic cell 50. The elements from the anode terminal element 51a to the cathode terminal element 51c are referred to as a cell stack (a). The arrangement of the bipolar electrolytic cell 50 for water electrolysis can be arbitrarily selected from either the anode 2a side or the cathode 2c side, and is not limited to the above order. Furthermore, although not particularly limited, the bipolar electrolytic cell 50 for water electrolysis of this embodiment preferably has a zero-gap structure Z in which the diaphragm 4 is in contact with the anode 2 a and the cathode 2 c, as shown in FIG. 2 .

[0019] The bipolar type is one method of connecting a large number of cells to a power source. In this method, multiple bipolar elements 60, one side of which is an anode 2a and the other side of which is a cathode 2c, are arranged in the same direction and connected in series, and only both ends are connected to the power source. The bipolar electrolytic cell 50 for water electrolysis has the advantage of being able to reduce the current of the power supply, and is capable of producing large amounts of compounds, specified substances, etc. in a short period of time through electrolysis. For power supply equipment with the same output, a constant current, high voltage type is cheaper and more compact, so industrially, a bipolar type is preferable to a monopolar type.

[0020] <<Cell stack (a)>> As shown in FIG. 1, the cell stack (a) included in the bipolar electrolytic cell 50 for water electrolysis of this embodiment is configured by stacking a required number of bipolar elements 60 between an anode terminal element 51a and a cathode terminal element 51c. In the cell stack (a), the diaphragms 4 are arranged between the anode terminal element 51a and the bipolar element 60, between adjacent bipolar elements 60, and between the bipolar element 60 and the cathode terminal element 51c. As shown in FIG. 1, adjacent elements 51a, 60, 51c and each element 51a, 60, 51c and the diaphragm 4 are stacked with a gasket 7 interposed therebetween.

[0021] 1 and 2, the bipolar element 60 includes a partition wall 1 that separates the anode 2a and the cathode 2c, and an outer frame 3 that frames the partition wall 1. More specifically, the partition wall 1 is conductive, and the outer frame 3 is provided along the outer edge of the partition wall 1 so as to surround the partition wall 1. In this embodiment, the bipolar element 60 may be used so that the given direction D1 along the partition wall 1 is normally the vertical direction. Specifically, when the partition wall 1 has a rectangular shape in a plan view as shown in Fig. 2, the given direction D1 along the partition wall 1 may be the same as the direction of one of two pairs of opposing sides. In this specification, the vertical direction is also referred to as the electrolyte passage direction.

[0022] In the bipolar electrolytic cell 50 for water electrolysis in this embodiment, as shown in FIG. 2, an electrode chamber 5 through which the electrolyte passes is defined by a partition wall 1, an outer frame 3, and a diaphragm 4. In this embodiment, in particular, the portion between the partition walls 1 between two adjacent bipolar elements 60 and the portion between the partition walls 1 between an adjacent bipolar element 60 and a terminal element in the bipolar electrolytic cell 50 for water electrolysis are referred to as the electrolytic cell 65. The electrolytic cell 65 includes the partition wall 1, anode chamber 5a, anode 2a, and diaphragm 4 of one element, and the cathode 2c, cathode chamber 5c, and partition wall 1 of the other element. In the examples shown in FIGS. 1 and 2 , the partition wall 1, the anode 2a, and the cathode 2c all have a plate-like shape with a predetermined thickness; however, the present invention is not limited thereto, and the cross section may be wholly or partially zigzag or wavy, or may have rounded edges.

[0023] Specifically, the electrode chambers 5 have, at the boundary with the outer frame 3, an electrolyte inlet for introducing the electrolyte into the electrode chambers 5 and an electrolyte outlet for discharging the electrolyte from the electrode chambers 5. More specifically, the anode chamber 5a is provided with an anolyte inlet for introducing the electrolyte into the anode chamber 5a and an anolyte outlet for discharging the electrolyte from the anode chamber 5a. Similarly, the cathode chamber 5c is provided with a catholyte inlet for introducing the electrolyte into the cathode chamber 5c and a catholyte outlet for discharging the electrolyte from the cathode chamber 5c.

[0024] In this embodiment, the anode chamber 5a and the cathode chamber 5c may each be provided with an internal distributor for uniformly distributing the electrolyte solution over the electrode surfaces within the bipolar electrolytic cell 50 for water electrolysis. The electrode chambers 5 may also be provided with a baffle plate that has a function of restricting the flow of the solution within the bipolar electrolytic cell 50 for water electrolysis. Furthermore, the anode chamber 5a and the cathode chamber 5c may each be provided with a protrusion for creating a Karman vortex in order to uniformize the concentration and temperature of the electrolyte solution within the bipolar electrolytic cell 50 for water electrolysis and to promote degassing of gas adhering to the electrodes 2 and the diaphragm 4.

[0025] 1 and 2 , the rectangular partition wall 1 and the rectangular diaphragm 4 are arranged in parallel, and the inner surface of the rectangular outer frame 3 provided on the edge of the partition wall 1 on the partition wall 1 side is perpendicular to the partition wall 1, resulting in the electrode chamber 5 having a rectangular parallelepiped shape. The shape of the electrode chamber 5 is not limited to this and may be modified as appropriate depending on the planar shapes of the partition wall 1 and the diaphragm 4, the angle between the inner surface of the outer frame 3 on the partition wall 2 side and the partition wall 2, etc., and any shape may be used as long as the effects of the present invention are obtained.

[0026] The bipolar electrolytic cell 50 for water electrolysis is usually fitted with headers, which are pipes for distributing or collecting the electrolyte, and is provided with an anode inlet header for introducing the electrolyte into the anode chamber 5a and a cathode inlet header for introducing the electrolyte into the cathode chamber 5c, both located at the lower part of the outer frame 3 at the edge of the partition wall 1. Similarly, an anode outlet header for discharging the electrode solution from the anode chamber 5a and a cathode outlet header for discharging the electrolyte from the cathode chamber 5c are provided at the upper part of the outer frame 3 at the edge of the partition wall 1. The arrangement of the headers attached to the bipolar electrolytic cell 50 for water electrolysis is typically an internal header type or an external header type, but either type may be employed in the present invention, and is not particularly limited.

[0027] In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, the electrolyte distributed in the anode inlet header is introduced into the anode chamber 5a through the anolyte inlet, passes through the anode chamber 5a, is discharged from the anode chamber 5a through the anolyte outlet, and is collected in the anode outlet header.

[0028] The bipolar electrolytic cell 50 for water electrolysis of this embodiment may include a plurality of rectifying plates 6 arranged parallel to a given direction D1 along the partition wall 1 in order to reduce convection that occurs in the electrolysis chamber 5 due to turbulence in the gas-liquid flow in the electrolysis chamber 5 and suppress a local increase in the temperature of the electrolytic solution (see FIG. 2 ).

[0029] In the cell stack (a), the thickness of the gasket 7 is preferably 5 to 20% of the thickness of the bipolar element, more preferably 5 to 15%, and even more preferably 5 to 10%. As will be described later, the outer frame, partition walls, etc. of the bipolar element 60 are made of materials such as stainless steel (SUS), steel, nickel, etc., and the gasket 7 is made of material such as rubber, so the thermal expansion coefficient of the gasket 7 is higher than that of the bipolar element 60, and the thicker the gasket 7 (the longer its length in the stack direction), the higher the average thermal expansion coefficient of the entire cell stack (a). Therefore, by setting the thickness of the gasket 7 within the above range, the average thermal expansion coefficient of the cell stack (a) can be reduced, and a decrease in sealing surface pressure can be prevented. The specific thickness of the gasket 7 is determined depending on the size and shape of the bipolar electrolytic cell 50 for water electrolysis, but is preferably 0.5 to 10 mm, more preferably 2 to 7 mm, and even more preferably 3 to 6 mm, for example.

[0030] Furthermore, it is preferable that the surface pressure (sealing surface pressure) between the gasket 7 and each element 51a, 60, 51c during electrolysis is at least twice the maximum internal pressure of the bipolar electrolytic cell 50 for water electrolysis, and that the compression ratio of the gasket 7 in the stacking direction of the cell stack (a) is 10 to 30%. When the sealing surface pressure and the compression ratio of the gasket 7 are within the above ranges, there is no leakage of the electrolyte or generated gas, and the gasket is less likely to break or be damaged. The seal surface pressure is more preferably 5 times or more, and even more preferably 10 times or more, the maximum internal pressure of the bipolar electrolytic cell 50 for water electrolysis. The maximum internal pressure of the bipolar electrolytic cell 50 for water electrolysis can be measured by a pressure gauge provided in the outlet flow path for the generated gas. The seal surface pressure can be determined by inserting a load cell between the press plate (b) and the heat insulating member (d) and measuring the load in the stack direction. The compression ratio of the gasket 7 in the stacking direction is more preferably 13 to 25%, and even more preferably 15 to 20%. The compression ratio of the gasket 7 refers to the shrinkage ratio of the length of the gasket 7 in the stack direction compared before and after electrolysis.

[0031] <<Press plate (b)>> In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, press plates (b) are arranged on both ends of the cell stack (a). The press plates (b) are fastened to the cell stack (a) by tie rods (c), and the fastening load of the tie rods (c) applies surface pressure (sealing surface pressure) between the gasket 7 and the diaphragm 4, and between the gasket 7 and each of the elements 51a, 60, and 51c. The gasket 7 to which surface pressure is applied by the press plates (b) seals the spaces between each bipolar element and the diaphragm 4, and between adjacent bipolar elements, against the electrolytic solution and the generated gas, thereby preventing leakage of the electrolytic solution and the generated gas to the outside of the bipolar electrolytic cell 50 for water electrolysis and mixing of the generated gas between the two electrode chambers.

[0032] The material of the press plate (b) is not particularly limited, and any conventionally known material can be used, such as stainless steel, carbon steel for mechanical structures, and nickel.

[0033] <<Tie rod (c)>> In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, the tie rods (c) are attached to the press plates (b) and fasten the cell stack (a) and the press plates (b) together, thereby integrating the bipolar electrolytic cell 50 for water electrolysis.

[0034] The tie rod (c) is preferably made of a material with a small thermal expansion coefficient, specifically titanium or the like.

[0035] The average thermal expansion coefficient β of the tie rod (c) in the stack direction at the electrolysis temperature is 12×10 -6 K -1 It is preferable that the value is equal to or less than 8×10 -6 K -1 or less, and more preferably 3×10 -6 K -1 The following is the result. In the present disclosure, the electrolysis temperature refers to the temperature of the electrolyte during electrolysis, and may be 80±30°C.

[0036] <<Insulating material (d)>> In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, the heat insulating member (d) plate is disposed between the cell stack (a) and the press plate (b) to reduce heat conduction from the cell stack (a) to the press plate (b) during electrolysis. This prevents the tie rods (c) in contact with the press plate (b) from expanding and increasing in length in the stack direction, which would result in a decrease in seal surface pressure, and reduces the number of times the tie rods (c) need to be retightened, thereby achieving a long-life bipolar electrolytic cell for water electrolysis.

[0037] The material of the heat insulating member (d) is preferably one with low thermal conductivity, and specific examples thereof include polytetrafluoroethylene (PTFE), polyvinyl chloride, polyether ether ketone (PEEK), polyoxymethylene (POM), and the like.

[0038] The thermal conductivity A of the heat insulating member (d) at 100°C is preferably 10 W / m·K or less, more preferably 1 W / m·K or less, even more preferably 0.5 W / m·K or less, still more preferably 0.3 W / m·K or less, and particularly preferably 0.1 W / m·K or less. Furthermore, in a preferred example of the bipolar electrolytic cell 50 for water electrolysis according to this embodiment, the thermal conductivity A of the heat insulating member (d) at the electrolysis temperature is smaller than the thermal conductivity B of the press plate (b) at the electrolysis temperature. Since the thermal conductivity A is smaller than the thermal conductivity B, heat conduction to the tie rod (c) in contact with the press plate (b) is reduced, and the temperature rise of the tie rod (c) can be reduced, thereby reducing the thermal expansion of the tie rod (c) and preventing a decrease in the seal surface pressure. The thermal conductivity can be measured specifically by the method described in the examples below.

[0039] The heat insulating member (d) is preferably electrically insulating, and therefore has a volume resistivity of 1 kΩ·cm or more at the electrolysis temperature, more preferably 1 MΩ·cm or more, and even more preferably 1 GΩ·cm or more.

[0040] <<Spring member (e)>> The bipolar electrolytic cell 50 for water electrolysis of this embodiment may further include a spring member (e) elastically deformable in the stacking direction of the cell stack (a) on the outer periphery of the axis of the tie rod (c). When the spring member (e) is provided, when the cell stack (a) thermally expands (i.e., its length in the stacking direction) the spring member (e) compresses, thereby absorbing the amount of thermal expansion of the cell stack (a), thereby preventing a decrease in seal surface pressure.

[0041] The spring member (e) is not particularly limited and may be any conventionally known member, a suitable example of which is a disc spring. The material of the spring member (e) is also not particularly limited and may be, for example, stainless steel, spring steel, or carbon steel for mechanical structures.

[0042] Furthermore, it is preferable to use a spring member (e) whose expansion length ΔL in the stack direction of the cell stack (a) at the electrolysis temperature of the cell stack (a) is 75% or less of the total deflection T, where T is the total deflection of the spring member (e). More preferably, the spring member has ΔL of 50% or less of the total deflection T, and even more preferably 25% or less. When the relationship between the expansion length ΔL and the total deflection T is within the above range, the spring member (e) can effectively absorb the amount of thermal expansion of the cell stack (a). The total deflection T refers to the value obtained by subtracting the length of the spring when in close contact from the free length of the spring.

[0043] The spring member (e) preferably has a spring constant of 5 / n to 20 / n kN / mm, more preferably 5 / n to 15 / n kN / mm, and even more preferably 5 / n to 10 / n kN / mm, where n is the number of tie rods (c) to which the spring member (e) is attached. If the spring constant is within the above range, the spring member (e) can effectively absorb the thermal expansion of the cell stack (a).

[0044] In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, the average coefficient of thermal expansion α in the stacking direction of the entire stack of the cell stack (a), the press plate (b), and the heat insulating member (d) at the electrolysis temperature is preferably larger than the average coefficient of thermal expansion β in the stacking direction of the tie rod (c) at the electrolysis temperature. In other words, the amount of thermal expansion (length extension in the stacking direction) of the entire stack of the cell stack (a), the press plate (b), and the heat insulating member (d) is preferably larger than the amount of thermal expansion (length extension in the stacking direction) of the tie rod (c). This makes it possible to prevent a decrease in the tightening force of the tie rod (c) when the cell stack (a), the press plate (b), the heat insulating member (d), and the tie rod (c) thermally expand during electrolysis.

[0045] The average thermal expansion coefficient α in the stack direction at the electrolysis temperature of the cell stack (a), press plate (b), and heat insulating member (d) is 10 × 10 -6 K -1It is preferable that the ratio is 30×10 or more, and more preferably 30×10 -6 K -1 More preferably, it is 50×10 -6 K -1 That's all. The average thermal expansion coefficient α can be determined by the method described in the examples below.

[0046] Hereinafter, each of the components of the bipolar electrolytic cell 50 for water electrolysis of this embodiment other than the press plate (b), tie rods (c), heat insulating members (d), and spring members (e) will be described in detail. In addition, preferred embodiments for enhancing the effects of the present invention will be described in detail below.

[0047] -Bulkhead- The shape of the partition wall 1 in this embodiment may be a plate shape having a predetermined thickness, but is not particularly limited to this. The shape of the partition wall 1 in plan view is not particularly limited, and may be rectangular (square, oblong, etc.) or circular (circle, ellipse, etc.), and the rectangle may have rounded corners. In an embodiment, the partition wall 1 and the outer frame 3 may be integrated by joining them by welding or a other method. For example, the partition wall 1 may be provided with a flange portion protruding in a direction perpendicular to the plane of the partition wall 1 (an anode flange portion protruding toward the anode 2a side, and a cathode flange portion protruding toward the cathode 2c side), and the flange portions may be formed as part of the outer frame 3.

[0048] Note that the partition wall 1 may usually be used so that a given direction D1 along the partition wall 1 is the vertical direction. Specifically, when the partition wall 1 has a rectangular shape in a plan view as shown in Fig. 2, the partition wall 1 may be used so that the given direction D1 along the partition wall 1 is the same direction as the direction of one pair of opposing sides. In this specification, the vertical direction is also referred to as the electrolyte passage direction.

[0049] The material of the partition wall 1 is preferably an electrically conductive material from the viewpoint of realizing a uniform supply of power, and is preferably stainless steel, steel, nickel, a nickel alloy, mild steel, or a nickel alloy plated with nickel from the viewpoint of durability and heat resistance.

[0050] -electrode- In hydrogen production by water electrolysis according to this embodiment, reducing energy consumption, specifically reducing the electrolysis voltage, is a major issue. Since this electrolysis voltage is highly dependent on the electrodes 2, the performance of both electrodes 2 is important.

[0051] The electrolysis voltage for water electrolysis is divided into the theoretically required voltage for water electrolysis, the overvoltage for the anode reaction (oxygen generation), the overvoltage for the cathode reaction (hydrogen generation), and the voltage due to the distance between the electrodes 2, the anode 2a and the cathode 2c. Here, overvoltage refers to the voltage that must be applied in excess of the theoretical decomposition potential when a certain current is passed, and its value depends on the current value. When passing the same current, power consumption can be reduced by using an electrode 2 with a lower overvoltage.

[0052] In order to achieve a low overvoltage, the electrode 2 must have high electrical conductivity, high oxygen generating capacity (or hydrogen generating capacity), and high wettability of the surface of the electrode 2 with the electrolyte.

[0053] As the electrode 2 for water electrolysis, in addition to having a low overvoltage, the electrode 2 is less susceptible to corrosion of the substrate and catalytic layer of the electrode 2, separation of the catalytic layer, dissolution in the electrolyte, and adhesion of inclusions to the diaphragm 4, even when an unstable current such as that from renewable energy is used.

[0054] In this embodiment, the electrode 2 is preferably porous in order to increase the surface area available for electrolysis and to efficiently remove gas generated by electrolysis from the surface of the electrode 2. In particular, in the case of a zero-gap electrolytic cell, it is necessary to degas the gas generated from the back side of the surface in contact with the diaphragm 4, and therefore it is preferable that the surface of the electrode 2 opposite to the surface in contact with the membrane is perforated.

[0055] Examples of the porous body include plain woven mesh, punched metal, expanded metal, and metal foam.

[0056] The electrode 2 in this embodiment may be the substrate itself, or may have a highly reactive catalyst layer on the surface of the substrate, but is preferably one having a highly reactive catalyst layer on the surface of the substrate.

[0057] The material of the substrate is not particularly limited, but mild steel, stainless steel, nickel, and nickel-based alloys are preferred in terms of resistance to the usage environment.

[0058] The catalytic layer of the anode 2a preferably has high oxygen generating capacity, and nickel, cobalt, iron, platinum group elements, or the like can be used. To achieve the desired activity and durability, the catalytic layer can be formed as a single metal, a compound such as an oxide, a composite oxide or alloy made of multiple metal elements, or a mixture thereof. An organic substance such as a polymer may be included to improve durability and adhesion to the substrate.

[0059] The catalytic layer of the cathode 2c preferably has high hydrogen generation capacity, and nickel, cobalt, iron, platinum group elements, or the like can be used. To achieve the desired activity and durability, the catalytic layer can be formed as a single metal, a compound such as an oxide, a composite oxide or alloy made of multiple metal elements, or a mixture thereof. An organic substance such as a polymer material may be included to improve durability and adhesion to the substrate.

[0060] Examples of methods for forming a catalyst layer on a substrate include plating methods, thermal spraying methods such as plasma spraying, thermal decomposition methods in which a precursor layer solution is applied to a substrate and then heat is applied, methods in which a catalyst substance is mixed with a binder component and then fixed to the substrate, and vacuum film formation methods such as sputtering.

[0061] -Outer frame- The shape of the outer frame 3 in this embodiment is not particularly limited as long as it can frame the partition wall 1, but it may be a shape that has an inner surface that is perpendicular to the plane of the partition wall 1 and extends along the outer periphery of the partition wall 1. The shape of the outer frame 3 is not particularly limited and may be determined appropriately in accordance with the shape of the partition wall 1 in a plan view.

[0062] The material for the outer frame 3 is preferably a conductive material, and from the standpoint of alkali resistance and heat resistance, stainless steel, steel, nickel, nickel alloy, mild steel, or nickel alloy plated with nickel is preferred.

[0063] -diaphragm- The diaphragm 4 used in the bipolar electrolytic cell 50 for water electrolysis of this embodiment is an ion-permeable diaphragm 4 that separates the generated hydrogen gas and oxygen gas while conducting ions. The ion-permeable diaphragm 4 can be an ion exchange membrane having ion exchange capacity or a porous membrane that is permeable to the electrolytic solution. The ion-permeable diaphragm 4 preferably has low gas permeability, high ionic conductivity, low electronic conductivity, and high strength.

[0064] --Porous membrane-- The porous membrane has a structure with multiple fine through-holes that allow the electrolyte to pass through the diaphragm 4. Ion conduction occurs when the electrolyte permeates the porous membrane, so control of the porous structure, such as pore size, porosity, and hydrophilicity, is extremely important. On the other hand, it is also required that not only the electrolyte but also the generated gas does not pass through, i.e., the membrane has gas barrier properties. Control of the porous structure is also important from this perspective.

[0065] The porous membrane has a plurality of fine through-holes, and examples thereof include polymer porous membranes, inorganic porous membranes, woven fabrics, nonwoven fabrics, etc. These can be produced by known techniques. Examples of methods for producing porous polymer membranes include a phase inversion method (microphase separation method), an extraction method, a stretching method, and a wet gel stretching method.

[0066] The porous membrane preferably contains a polymer material and hydrophilic inorganic particles, and the presence of the hydrophilic inorganic particles can impart hydrophilicity to the porous membrane.

[0067] ---Polymer materials--- Examples of polymeric materials include polysulfone, polyethersulfone, polyphenylsulfone, polyvinylidene fluoride, polycarbonate, tetrafluoroethylene-perfluoroalkyl vinyl ether copolymer, tetrafluoroethylene-ethylene copolymer, polyvinylidene fluoride, polytetrafluoroethylene, perfluorosulfonic acid, perfluorocarboxylic acid, polyethylene, polypropylene, polyphenylene sulfide, polyparaphenylene benzobisoxazole, polyketone, polyimide, polyetherimide, etc. Among these, polysulfone, polyethersulfone, polyphenylsulfone, polyphenylene sulfide, and polytetrafluoroethylene are preferred, and polysulfone is more preferred. These may be used alone or in combination of two or more.

[0068] It is preferable to control the pore size of the porous membrane in order to obtain appropriate membrane properties such as separation ability, strength, etc. When used for water electrolysis, it is also preferable to control the pore size of the porous membrane from the viewpoints of preventing mixing of oxygen gas generated from the anode 2a and hydrogen gas generated from the cathode 2c and reducing voltage loss during electrolysis. The larger the average pore size of the porous membrane, the larger the amount of ion passing through the porous membrane per unit area, and particularly in electrolysis, the better the ion permeability of the porous membrane becomes, which tends to facilitate reduction in voltage loss. Also, the larger the average pore size of the porous membrane, the smaller the contact surface area with alkaline water becomes, which tends to suppress degradation of the polymer. On the other hand, the smaller the average pore size of the porous membrane, the higher the separation accuracy of the porous membrane, and the better the gas barrier property of the porous membrane in electrolysis tends to be. Furthermore, when hydrophilic inorganic particles having a small particle size, as described later, are supported on the porous membrane, they can be firmly held without falling off. This allows the high holding ability of the hydrophilic inorganic particles to be imparted, and the effect can be maintained for a long period of time.

[0069] From this viewpoint, the porous membrane of this embodiment preferably has an average pore size in the range of 0.1 to 1.0 μm. When the pore size is in this range, the porous membrane can achieve both excellent gas barrier properties and high ion permeability. The pore size of the porous membrane is preferably controlled in the temperature range in which it is actually used. Therefore, for example, when the porous membrane is used as an electrolysis diaphragm 4 in an environment of 90°C, it is preferable that the pore size satisfy the above-mentioned range at 90°C. The porous membrane more preferably has an average pore size of 0.1 to 0.5 μm, which is the range in which the porous membrane can achieve even better gas barrier properties and high ion permeability as a diaphragm 4 for water electrolysis.

[0070] The average pore size of the porous membrane can be measured by the following method. The average pore size of a porous membrane refers to the average water permeation pore size measured using an integrity tester (Sartorius Stedim Japan, "Sartocheck Junior BP-Plus") using the following method. First, the porous membrane, including the core material, is cut to a specified size to serve as a sample. This sample is placed in a pressure-resistant container and filled with pure water. Next, the pressure-resistant container is placed in a thermostatic chamber set to a specified temperature. Measurement begins once the temperature inside the pressure-resistant container has reached the specified temperature. Once measurement begins, the top side of the sample is pressurized with nitrogen, and the pressure and permeation flow rate are recorded as pure water permeates through the bottom side of the sample. The average water permeation pore size can be calculated using the Hagen-Poiseuille equation below, using the gradient of pressure versus water permeation flow rate between pressures of 10 kPa and 30 kPa. Average permeable pore diameter (m)={32ηLμ0 / (εP)} 0.5 Here, η is the viscosity of water (Pa·s), L is the thickness of the porous membrane (m), μ0 is the apparent flow velocity, and μ0 (m / s) = flow rate (m 3 / s) / flow area (m 2 ) where ε is the porosity and P is the pressure (Pa).

[0071] It is preferable to control the porosity of the porous membrane of the diaphragm 4 from the viewpoints of gas barrier properties, maintaining hydrophilicity, preventing a decrease in ion permeability due to adhesion of bubbles, and further obtaining stable electrolysis performance (low voltage loss, etc.) for a long period of time. From the viewpoint of achieving high levels of gas barrier properties and low voltage loss, the lower limit of the porosity of the porous membrane is preferably 30% or more, more preferably 35% or more, and even more preferably 40% or more. The upper limit of the porosity is preferably 70% or less, more preferably 65% ​​or less, and even more preferably 55% or less. When the porosity of the porous membrane is the above upper limit or less, ions can easily permeate the membrane, and the voltage loss of the membrane can be suppressed.

[0072] The porosity of the porous film refers to the open porosity determined by Archimedes' method, and can be calculated by the following formula. Porosity P(%)=ρ / (1+ρ)×100 Here, ρ=(W3-W1) / (W3-W2), W1 is the dry mass (g) of the porous membrane, W2 is the mass (g) of the porous membrane in water, and W3 is the mass (g) of the porous membrane saturated with water.

[0073] To measure the porosity, a porous membrane washed with pure water is cut into three pieces measuring 3 cm x 3 cm to be used as measurement samples. First, W2 and W3 of the sample are measured. Then, the porous membrane is left to dry for 12 hours or more in a dryer set at 50°C, and W1 is measured. Then, the porosity is calculated from the values ​​of W1, W2, and W3. The porosity of the three samples is calculated, and their arithmetic average value is taken as the porosity P.

[0074] The thickness of the porous membrane is not particularly limited, but is preferably 100 to 700 μm, more preferably 100 to 600 μm, and even more preferably 200 to 600 μm. When the thickness of the porous membrane is equal to or greater than the lower limit, it is less likely to be broken by piercing or the like, and it is less likely to short-circuit between electrodes. Furthermore, the gas barrier property is improved. When the thickness is equal to or less than the upper limit, the voltage loss is less likely to increase. Furthermore, the influence of variations in the thickness of the porous membrane is reduced. Furthermore, when the thickness of the diaphragm is 100 μm or more, it is less likely to be broken by puncture or the like, and short circuits between electrodes are less likely to occur. It also has good gas barrier properties. When the thickness is 600 μm or less, voltage loss is less likely to increase. Furthermore, the influence of variations in the thickness of the porous membrane is reduced. If the thickness of the porous membrane is 250 μm or more, better gas barrier properties can be obtained, and the strength of the porous membrane against impact can be further improved. From this viewpoint, the lower limit of the thickness of the porous membrane is more preferably 300 μm or more, even more preferably 350 μm or more, and even more preferably 400 μm or more. On the other hand, if the thickness of the porous membrane is 700 μm or less, the ion permeability is less likely to be hindered by the resistance of the electrolyte contained in the pores during operation, and better ion permeability can be maintained. From this viewpoint, the upper limit of the thickness of the porous membrane is more preferably 600 μm or less, even more preferably 550 μm or less, and even more preferably 500 μm or less.

[0075] ---Hydrophilic inorganic particles--- The porous membrane preferably contains hydrophilic inorganic particles to exhibit high ion permeability and high gas barrier properties. The hydrophilic inorganic particles may be attached to the surface of the porous membrane, or may be partially embedded in the polymer material constituting the porous membrane. Furthermore, when the hydrophilic inorganic particles are encapsulated in the voids of the porous membrane, they are less likely to be detached from the porous membrane, and the performance of the porous membrane can be maintained for a long period of time.

[0076] Examples of hydrophilic inorganic particles include at least one inorganic material selected from the group consisting of oxides or hydroxides of zirconium, bismuth, and cerium, oxides of Group IV elements of the periodic table, nitrides of Group IV elements of the periodic table, and carbides of Group IV elements of the periodic table. Among these, from the viewpoint of chemical stability, oxides of zirconium, bismuth, and cerium and oxides of Group IV elements of the periodic table are more preferred, oxides of zirconium, bismuth, and cerium are even more preferred, and zirconium oxide is even more preferred.

[0077] The hydrophilic inorganic particles are preferably in the form of fine particles.

[0078] --Porous support-- When a porous membrane is used as the diaphragm 4, the porous membrane may be used together with a porous support. Preferably, the porous membrane has a structure in which the porous support is embedded, and more preferably, the porous membrane is laminated on both sides of the porous support. Alternatively, the porous membrane may have a structure in which the porous membrane is laminated symmetrically on both sides of the porous support.

[0079] Examples of the porous support include mesh, porous membrane, nonwoven fabric, woven fabric, and composite fabric containing a nonwoven fabric and a woven fabric contained within the nonwoven fabric. These may be used alone or in combination of two or more. More preferred embodiments of the porous support include, for example, a mesh substrate made of polyphenylene sulfide monofilament, or a composite fabric containing a nonwoven fabric and a woven fabric contained within the nonwoven fabric.

[0080] --Ion exchange membrane-- Ion exchange membranes include cation exchange membranes that selectively allow cations to pass through and anion exchange membranes that selectively allow anions to pass through, and either type of exchange membrane can be used. The material of the ion exchange membrane is not particularly limited, and known materials can be used. For example, fluorine-containing resins and modified resins of polystyrene-divinylbenzene copolymers are preferably used. Fluorine-containing ion exchange membranes are particularly preferred because of their excellent heat resistance and chemical resistance.

[0081] Examples of fluorine-containing ion exchange membranes include those that have the function of selectively permeating ions generated during electrolysis and contain a fluorine-containing polymer having an ion exchange group. The fluorine-containing polymer having an ion exchange group as used herein refers to a fluorine-containing polymer having an ion exchange group or an ion exchange group precursor that can be converted to an ion exchange group by hydrolysis. Examples include polymers that have a fluorinated hydrocarbon main chain, have functional groups that can be converted to ion exchange groups by hydrolysis or the like as pendant side chains, and are melt-processable.

[0082] The molecular weight of the fluorine-containing copolymer is not particularly limited, but the melt flow index (MFI) of the precursor measured in accordance with ASTM:D1238 (measurement conditions: temperature 270°C, load 2160 g) is preferably 0.05 to 50 (g / 10 min), more preferably 0.1 to 30 (g / 10 min).

[0083] Examples of the ion exchange group of the ion exchange membrane include cation exchange groups such as sulfonic acid groups, carboxylic acid groups and phosphate groups, and anion exchange groups such as quaternary ammonium groups.

[0084] By adjusting the equivalent mass (EW) of the ion exchange groups, ion exchange membranes can be endowed with excellent ion exchange capacity and hydrophilicity. Furthermore, they can be controlled to have many smaller clusters (microscopic areas where ion exchange groups coordinate and / or adsorb water molecules), which tends to improve alkali resistance and ion selective permeability. The equivalent weight EW can be measured by salt-substituting the ion-exchange membrane and back-titrating the resulting solution with an alkaline or acid solution. The equivalent weight EW can be adjusted by the copolymerization ratio of the raw material monomers, the selection of the monomer species, etc. The equivalent mass EW of the ion exchange membrane is preferably 300 or more from the viewpoint of hydrophilicity and water resistance of the membrane, and is preferably 1300 or less from the viewpoint of hydrophilicity and ion exchange capacity.

[0085] The thickness of the ion exchange membrane is not particularly limited, but is preferably in the range of 5 to 300 μm from the viewpoint of ion permeability and strength.

[0086] The ion exchange membrane may be subjected to a surface treatment to improve the hydrophilicity of the surface, such as by coating with hydrophilic inorganic particles such as zirconium oxide or by providing the surface with fine irregularities.

[0087] From the viewpoint of membrane strength, it is preferable to use the ion exchange membrane together with a reinforcing material. The reinforcing material is not particularly limited, and examples thereof include general nonwoven fabrics, woven fabrics, and porous membranes made of various materials. In this case, the porous membrane is not particularly limited, but is preferably a PTFE-based membrane that has been stretched and made porous.

[0088] ((Zero gap structure)) In the bipolar element 60 of the zero-gap cell, a means for reducing the inter-electrode distance is preferably provided by disposing an elastic spring between the electrode 2 and the partition wall 1 and supporting the electrode 2 with this spring. For example, in a first example, a spring made of a conductive material may be attached to the partition wall 1, and the electrode 2 may be attached to this spring. In a second example, a spring may be attached to an electrode rib attached to the partition wall 1, and the electrode 2 may be attached to this spring. When adopting such a configuration using an elastic body, the strength, number, shape, and the like of the spring must be appropriately adjusted as necessary to prevent uneven contact pressure between the electrode 2 and the diaphragm 4.

[0089] -Electrode chamber- In the bipolar electrolytic cell 50 for water electrolysis in this embodiment, as shown in FIG. 2, an electrode chamber 5 through which the electrolyte passes is defined by a partition wall 1, an outer frame 3, and a diaphragm 4.

[0090] In this embodiment, the header 10 of the bipolar electrolytic cell can be arranged in either an internal header type or an external header type, and for example, in the example shown in the figure, the space occupied by the anode 2a and the cathode 2c themselves may also be considered to be part of the space inside the electrode chamber 5. Furthermore, particularly when a gas-liquid separation box is provided, the space occupied by the gas-liquid separation box may also be considered to be part of the space inside the electrode chamber 5.

[0091] -Rectifier plate- In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, it is preferable that the rectifying plates 6 (anode rectifying plates, cathode rectifying plates) are attached to the partition wall 1, and the rectifying plates 6 are physically connected to the electrodes 2. With this configuration, the rectifying plates 6 serve as supports for the electrodes 2, making it easy to maintain the zero gap structure Z. Here, the electrode 2 may be provided on the rectifying plate 6, or the current collector 2r, the conductive elastic body 2e, and the electrode 2 may be provided on the rectifying plate 6 in this order. In the bipolar electrolytic cell 50 for water electrolysis described above as an example, the cathode chamber 5c has a structure in which the current rectifying plate 6, the current collector 2r, the conductive elastic body 2e, and the electrode 2 are stacked in this order, and the anode chamber 5a has a structure in which the current rectifying plate 6 and the electrode 2 are stacked in this order.

[0092] In the example of the bipolar electrolytic cell 50 for water electrolysis described above, the cathode chamber 5c employs the above-mentioned structure of "rectifying plate 6-current collector 2r-conductive elastic body 2e-electrode 2," and the anode chamber 5a employs the above-mentioned structure of "rectifying plate 6-electrode 2." However, the present invention is not limited to this, and the anode chamber 5a may also employ the "rectifying plate 6-current collector 2r-conductive elastic body 2e-electrode 2" structure.

[0093] The current rectifying plates 6 (anode current rectifying plates, cathode current rectifying plates) preferably have not only the role of supporting the anode 2a or the cathode 2c but also the role of transmitting current from the partition wall 1 to the anode 2a or the cathode 2c.

[0094] In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, it is preferable that at least a part of the rectifying plate 6 is conductive, and it is more preferable that the entire rectifying plate 6 is conductive. With this configuration, it is possible to suppress an increase in cell voltage due to electrode deflection.

[0095] Conductive metals are generally used as the material for the rectifying plate 6. For example, nickel-plated mild steel, stainless steel, nickel, etc. can be used.

[0096] The distance between adjacent anode rectifying plates or the distance between adjacent cathode rectifying plates is determined taking into consideration the electrolysis pressure and the pressure difference between the anode chamber 5a and the cathode chamber 5c.

[0097] The length of the current plates 6 (anode current plates, cathode current plates) may be determined appropriately depending on the size of the partition walls 1. The height of the rectifying plate 6 may be determined appropriately depending on the distance from the partition wall 1 to each flange portion, the thickness of the gasket 7, the thickness of the electrode 2 (anode 2a, cathode 2c), the distance between the anode 2a and the cathode 2c, etc. The thickness of the rectifying plate 6 may be 0.5 to 5 mm, taking into consideration cost, manufacturability, strength, etc., and a thickness of 1 to 2 mm is easy to use, but is not particularly limited.

[0098] -gasket- In the bipolar electrolytic cell 50 for water electrolysis of this embodiment, it is preferable that a gasket 7 having a diaphragm 4 is sandwiched between the outer frames 3 that frame the partition walls 1. The gasket 7 is used to seal the space between the bipolar element 60 and the diaphragm 4 and between the bipolar elements 60 against the electrolyte and the generated gas, and can prevent leakage of the electrolyte or the generated gas to the outside of the electrolytic cell and mixing of gases between the two electrode chambers.

[0099] The gasket 7 generally has a rectangular or annular structure with the electrode surface hollowed out to match the surface that contacts the element frame. The diaphragm 4 can be stacked between elements by sandwiching it between two such gaskets. Furthermore, the gasket 7 preferably has a slit that can accommodate the diaphragm 4 so that it can hold the diaphragm 4, and also has openings that allow the accommodated diaphragm 4 to be exposed on both surfaces of the gasket 7. This allows the gasket 7 to accommodate the edge of the diaphragm 4 within the slit, thereby covering the end faces of the edge of the diaphragm 4. This more reliably prevents electrolyte and gas from leaking from the end faces of the diaphragm 4.

[0100] The material of the gasket 7 is not particularly limited, and known insulating rubber materials, resin materials, etc. can be selected. Examples of rubber and resin materials that can be used include natural rubber (NR), styrene-butadiene rubber (SBR), chloroprene rubber (CR), butadiene rubber (BR), acrylonitrile-butadiene rubber (NBR), silicone rubber (SR), ethylene-propylene rubber (EPT), ethylene-propylene-diene rubber (EPDM), fluororubber (FR), isobutylene-isoprene rubber (IIR), urethane rubber (UR), and chlorosulfonated polyethylene rubber (CSM). Fluororesin materials include polytetrafluoroethylene (PTFE), tetrafluoroethylene-perfluoroalkyl vinyl ether copolymer (PFA), tetrafluoroethylene-ethylene copolymer (ETFE), and chlorotrifluoroethylene-ethylene copolymer (ECTFE). Resin materials include polyphenylene sulfide (PPS), polyethylene, polyimide, and polyacetal. Among these, ethylene-propylene-diene rubber (EPDM) and fluororubber (FR) are particularly suitable in terms of elastic modulus and alkali resistance.

[0101] A reinforcing material may be embedded in the gasket 7. This can prevent the gasket 7 from being crushed when it is sandwiched and pressed between frames during stacking, making it easier to prevent damage. Such reinforcing materials can be made of known metal materials, resin materials, carbon materials, etc., and specific examples include metals such as nickel and stainless steel, resins such as nylon, polypropylene, PVDF, PTFE, and PPS, and carbon materials such as carbon particles and carbon fibers.

[0102] The size of the gasket 7 is not particularly limited and may be designed to match the dimensions of the electrode chamber 5 and the membrane, but the width is preferably 10 to 40 mm. In this case, when the gasket 7 has a slit portion, the size of the slit portion is preferably set so that the inner dimensions of the slit are 0.5 to 5 mm larger in length and width than the size of the membrane.

[0103] The thickness of the gasket 7 is as described above. Furthermore, when the gasket 7 has a slit portion, the opening width of the slit portion may be 0.5 to 1.0 times the thickness of the film.

[0104] The elastic modulus of the gasket 7 is not particularly limited and is designed depending on the material and cell area of ​​the electrode 2. A preferred range of the elastic modulus is a tensile stress of 0.20 to 20 MPa at 100% deformation, and from the viewpoint of sealing properties and cell strength when stacked, a range of 1.0 to 10 MPa is more preferred. The tensile stress can be measured in accordance with JIS K6251. For example, an Autograph AG manufactured by Shimadzu Corporation may be used.

[0105] In particular, in this embodiment, it is preferable that the thickness of the gasket 7 is 3.0 to 10 mm and the tensile stress at 100% deformation is 1.0 to 10 MPa from the viewpoint of suppressing an increase in cell voltage due to electrode deflection, as well as from the viewpoint of sealing properties and cell strength when stacked.

[0106] In this embodiment, it is preferable to cover the surface of the gasket 7 with an insulating resin sheet (for example, a fluororesin such as polytetrafluoroethylene). By doing so, the elements 60 are insulated from one another, and it is possible to prevent the charge accumulated in each element 60 during the energization step (the step in which electrolysis of the electrolyte is performed) from affecting the other elements 60 during the stop step (the step in which electrolysis of the electrolyte is stopped).

[0107] -Header- The bipolar electrolytic cell 50 for water electrolysis has a cathode chamber 5c and an anode chamber 5a for each electrolytic cell 65. In order to continuously perform the electrolytic reaction in the bipolar electrolytic cell 50 for water electrolysis, it is necessary to continuously supply an electrolyte solution containing a sufficient amount of raw materials to be consumed by electrolysis to the cathode chamber 5c and the anode chamber 5a of each electrolytic cell 65.

[0108] The electrolytic cell 65 is connected to electrolyte supply and discharge pipes called headers that are common to multiple electrolytic cells 65. In general, the anode distribution pipe is called the anode inlet header, the cathode distribution pipe is called the cathode inlet header, the anode collection pipe is called the anode outlet header, and the cathode collection pipe is called the cathode outlet header. The electrolytic cell 65 is connected to each electrode distribution pipe and each electrode collection pipe via hoses or the like.

[0109] The header material is not particularly limited, but must be able to withstand the corrosiveness of the electrolyte used and the operating conditions such as pressure and temperature. Materials that may be used for the header include iron, nickel, cobalt, PTFE, ETFE, PFA, polyvinyl chloride, polyethylene, etc.

[0110] In this embodiment, the range of the electrode chambers 5 varies depending on the detailed structure of the outer frame 3 provided at the outer end of the partition wall 1, and the detailed structure of the outer frame 3 may differ depending on the arrangement of headers (pipes for distributing or collecting the electrolyte) attached to the outer frame 3. Representative arrangements of headers in a bipolar electrolytic cell 50 for water electrolysis are an internal header type and an external header type.

[0111] --Internal Header-- The internal header type refers to a type in which the bipolar electrolytic cell 50 for water electrolysis and a header (a pipe for distributing or collecting the electrolyte) are integrated.

[0112] More specifically, in the internal header type bipolar electrolytic cell, an anode inlet header and a cathode inlet header are provided in the partition wall 1 and / or at a lower part in the outer frame 3, and are provided so as to extend in a direction perpendicular to the partition wall 1, and an anode outlet header and a cathode outlet header are provided in the partition wall 1 and / or at an upper part in the outer frame 3, and are provided so as to extend in a direction perpendicular to the partition wall 1.

[0113] The anode inlet header, cathode inlet header, anode outlet header, and cathode outlet header inherent in an internal header type bipolar electrolyzer are collectively referred to as internal headers.

[0114] In an example of the internal header type, an anode inlet header and a cathode inlet header are provided in a part of a lower portion of the outer frame 3 at the end edge of the partition 1, and similarly, an anode outlet header and a cathode outlet header are provided in a part of an upper portion of the outer frame 3 at the end edge of the partition 1.

[0115] --External headers-- The external header type refers to a type in which the bipolar electrolytic cell 50 for water electrolysis and the header (a pipe for distributing or collecting the electrolyte) are independent.

[0116] In the external header type bipolar electrolytic cell, an anode inlet header and a cathode inlet header are provided independently, running parallel to the bipolar electrolytic cell for water electrolysis 50 in a direction perpendicular to the current-carrying surface of the electrolytic cell 65. The anode inlet header and cathode inlet header are connected to each electrolytic cell 65 with hoses.

[0117] The anode inlet header, cathode inlet header, anode outlet header, and cathode outlet header, which are externally connected to an external header type bipolar electrolyzer, are collectively called external headers. In an example of the external header type, a tubular member is installed in a header through hole provided in a lower portion of the outer frame 3 at the edge of the partition 1, and the tubular member is connected to an anode inlet header and a cathode inlet header. Similarly, a tubular member (e.g., a hose or a tube) is installed in a header through hole provided in an upper portion of the outer frame 3 at the edge of the partition 1, and the tubular member is connected to an anode outlet header and a cathode outlet header.

[0118] The internal header type and external header type bipolar electrolytic cell 50 for water electrolysis may have a gas-liquid separation box therein for separating the gas generated by electrolysis from the electrolytic solution. The installation position of the gas-liquid separation box is not particularly limited, and it may be installed between the anode chamber 5a and the anode outlet header or between the cathode chamber 5c and the cathode outlet header.

[0119] The surface of the gas-liquid separation box may be coated with a coating material that is sufficiently resistant to the corrosiveness of the electrolyte and to operating conditions such as pressure and temperature. The coating material may be insulating in order to increase the electrical resistance of the leakage current circuit inside the electrolytic cell. EPDM, PTFE, ETFE, PFA, polyvinyl chloride, polyethylene, etc. may be used as the coating material.

[0120] <Electrolyzer for water electrolysis> FIG. 3 shows an outline of an electrolysis device 70 for water electrolysis using the bipolar electrolysis cell 50 for water electrolysis of this embodiment. The electrolysis device 70 for water electrolysis of this embodiment includes the bipolar electrolytic cell 50 for water electrolysis of this embodiment, a liquid feed pump 71 for circulating the electrolytic solution, a gas-liquid separation tank 72 for separating the electrolytic solution from hydrogen and / or oxygen, and a water supply device 73 for supplying water consumed by electrolysis.

[0121] According to the electrolysis device 70 for water electrolysis of this embodiment, the effects of the bipolar electrolytic cell 50 for water electrolysis of this embodiment can be obtained. That is, according to this embodiment, a bipolar electrolysis device for water electrolysis having a long life even when used under conditions of variable power supply or frequent operation stoppages can be obtained.

[0122] The components of the water electrolysis device 70 of this embodiment will be described below.

[0123] - Liquid delivery pump - The liquid feed pump 71 used in this embodiment is not particularly limited and may be determined as appropriate.

[0124] -Gas-liquid separation tank- The gas-liquid separation tank 72 used in this embodiment includes a hydrogen separation tank 72h that separates the hydrogen gas generated in the cathode chamber 5c from the electrolyte, and an oxygen separation tank 72o that separates the oxygen gas generated in the anode chamber 5a from the electrolyte. The hydrogen separation tank 72h is connected to the cathode chamber 5c, and the oxygen separation tank 72o is connected to the anode chamber 5a.

[0125] The mixture of the electrolyte and generated gas discharged from the electrolytic cell 65 is introduced into the gas-liquid separation tank 72. If gas-liquid separation is not performed properly, oxygen gas and hydrogen gas will be mixed when the electrolytes in the cathode chamber 5c and anode chamber 5a are mixed, resulting in a decrease in gas purity. In the worst case, there is a risk of explosive gas formation.

[0126] The gas and electrolyte that flow into the gas-liquid separation tank 72 are separated into the gas phase in the upper layer of the tank and the liquid phase in the lower layer of the tank. The degree of gas-liquid separation is determined by the flux of the electrolyte in the gas-liquid separation tank 72, the floating speed of the generated gas bubbles, and the residence time in the gas-liquid separation tank 72.

[0127] After the gas has been separated, the electrolyte flows out of the outlet at the bottom of the tank and flows back into the electrolytic cell 65, thereby forming a circulation path. Because the oxygen and hydrogen gas discharged from the outlet at the top of the tank both contain alkaline mist, it is preferable to install a device downstream of the outlet that can liquefy the excess mist and return it to the gas-liquid separation tank 72, such as a mist separator or a cooler.

[0128] The gas-liquid separation tank 72 may be provided with a level gauge to monitor the liquid level of the electrolyte stored therein.

[0129] Furthermore, the gas-liquid separation tank 72 is preferably provided with a pressure relief valve, which allows the pressure to be safely reduced if it exceeds the design pressure due to the increase in pressure caused by the gas generated during electrolysis.

[0130] The inlet to the gas-liquid separation tank 72 is preferably located above the electrolyte surface in order to improve gas-liquid separation, but is not limited to this. In order to prevent the liquid level in the electrolytic cell from dropping when circulation is stopped, it is preferable that the electrolyte level in the gas-liquid separation tank 72 be higher than the upper surface of the electrolytic cell, but this is not limitative. It is preferable to provide a shutoff valve between the electrolytic cell 65 and the gas-liquid separation tank 72, but this is not a limitation.

[0131] An alkali-resistant metal such as nickel is used as the material for the gas-liquid separation tank 72. On the other hand, when a general-purpose metal such as iron is used as the tank housing material, the electrolyte-contacting surface inside the tank may be coated with a fluorine-based resin or the like, but the material for the gas-liquid separation tank 72 in the present invention is not limited thereto.

[0132] Considering the installation volume, it is preferable that the capacity of the gas-liquid separation tank 72 is small. However, if the volume is too small, the liquid level in the tank will fluctuate if the pressure difference between the cathode 2c and the anode 2a increases or if there is a fluctuation in the electrolysis current value, and therefore it is necessary to take this fluctuation into consideration. Similarly, if the tank height is low, it is susceptible to the influence of the above fluctuations, so it is preferable to make it high.

[0133] -Water supply device- The water supply device 73 used in this embodiment is not particularly limited and may be determined as appropriate. As the water, ordinary tap water may be used, but when considering long-term operation, it is preferable to use ion-exchanged water, RO water, ultrapure water, etc.

[0134] -others- The electrolysis apparatus 70 for water electrolysis of this embodiment may include a rectifier 74, an oxygen concentration meter 75, a hydrogen concentration meter 76, a flow meter 77, a pressure meter 78, a heat exchanger 79, and a pressure control valve 80, in addition to the bipolar electrolytic cell 50 for water electrolysis, a liquid feed pump 71, a gas-liquid separation tank 72, and a water supply device 73.

[0135] Furthermore, the water electrolysis apparatus 70 of this embodiment preferably further includes a detector that detects the interruption of power supply and a controller that automatically stops the solution feed pump when the power supply is interrupted. The inclusion of the detector and the controller makes it possible to efficiently reduce the effects of self-discharge without manual operation, even when using a power source that fluctuates greatly, such as renewable energy.

[0136] The bipolar electrolytic cell for water electrolysis and the electrolytic device for water electrolysis according to the embodiments of the present invention have been described above with reference to the drawings. However, the bipolar electrolytic cell for water electrolysis and the electrolytic device for water electrolysis according to the present invention are not limited to the above examples, and appropriate modifications can be made to the above embodiments. [Example]

[0137] The present invention will be specifically explained below with reference to examples and comparative examples, but it goes without saying that the present invention is not limited to these examples and can be practiced in various modified forms within the scope of the gist of the present invention.

[0138] Example 1 A bipolar electrolysis system for water electrolysis was used, as shown in Figure 3. Specifically, the bipolar electrolysis cell for water electrolysis consisted of a cell stack (a) consisting of one anode terminal element, four bipolar elements, one cathode terminal element, and five diaphragms stacked as shown in Figure 1 via five rubber gaskets (compression rate before electrolysis: 20%). All components of each element, such as the partition walls and outer frame, that came into contact with the electrolyte were nickel. The anode was nickel (with a cobalt catalyst layer), and the cathode was nickel (with platinum and palladium catalyst layers). Other components included two stainless steel press plates (b), six titanium tie rods (c) (three for each press plate (b)), two PTFE heat insulating members (d), and six stainless steel spring members (e) (disc springs) (one for each tie rod (c)). A potassium hydroxide aqueous solution was used as the electrolyte. Current density 6000A / m 2 The electrolysis was carried out for 7 hours at an atmospheric temperature of 10°C, the temperature of the electrolytic cell during electrolysis was 100°C, and the internal pressure of the electrolytic cell during electrolysis was adjusted to 0.01 MPa. The configuration of the bipolar electrolytic cell for water electrolysis and the measurement results are shown in Table 1. The average thermal expansion coefficient α of the cell stack (a), the press plate (b), and the heat insulating member (d) was calculated using the following formula. α=(t (a) α (a) +t (b) α (b) +t (d) α (d) ) / (t (a) +t (b) +t (d) ) (In the formula, t (a) , t (b) , and t (d) represent the lengths (thicknesses) of the cell stack (a), press plate (b), and heat insulating member (d) in the stacking direction, respectively, and α (a , ) α (b) , α (d) represent the thermal expansion coefficients of the cell stack (a), press plate (b), and heat insulating member (d), respectively.) The internal pressure and seal surface pressure of the electrolytic cell were measured by a pressure gauge provided at the outlet header of the electrolytic cell and a load cell installed between the press plate (b) and the heat insulating member (d), respectively.

[0139] Example 2 The experiment was carried out in the same manner as in Example 1, except that the material of the tie rod (c) was changed to SUS. The configuration of the bipolar electrolytic cell for water electrolysis and the measurement results are shown in Table 1.

[0140] (Comparative Example 1) The same procedure as in Example 1 was carried out except that a SUS member (d') was used instead of the heat insulating member (d) and the tie rod (c) was made of SUS. The configuration of the bipolar electrolytic cell for water electrolysis and the measurement results are shown in Table 1.

[0141] [Table 1]

[0142] In Comparative Example 1, the seal surface pressure (surface pressure applied between the gasket and each element) decreased from 2 MPa before electrolysis to 1.9 MPa during electrolysis, making it necessary to retighten the tie rods. On the other hand, in Examples 1 and 2, the seal surface pressure increased from 2 MPa before electrolysis to 2.3 MPa and 2.1 MPa, respectively, during electrolysis, making it unnecessary to retighten the tie rods. [Industrial Applicability]

[0143] The bipolar electrolytic cell for water electrolysis of the present invention has a long life even when used under conditions of variable power supply or frequent operation stoppages, and can therefore be operated stably for a long period of time even when operated under a variable power supply such as renewable energy. [Explanation of symbols]

[0144] (a) Cell stack (b) Press plate (c) Tie rod (d) Heat insulating material (e) Spring member 1 Bulkhead 2 electrodes 2a anode 2c cathode 2e Conductive elastic body 2r current collector 3 Outer frame 4 Diaphragm 5 Electrode chamber 5a Anode chamber 5c cathode chamber 6 Rectifier plate 7 Gasket 50 Bipolar electrolyzer for water electrolysis 51a Anode terminal element 51c Cathode Terminal Element 60 Multi-pole element 65 Electrolysis Cell 70 Electrolyzer 71 Liquid transfer pump 72 Gas-liquid separation tank 72h Hydrogen Separation Tank 72o Oxygen Separation Tank 73 Water supply device 74 Rectifier 75 Oxygen concentration meter 76 Hydrogen concentration meter 77 Flow meter 78 Pressure Gauge 79 Heat exchanger 80 Pressure control valve D1: given direction along the partition (electrolyte flow direction) Z Zero gap structure

Claims

1. an anode terminal element comprising an anode; a cathode terminal element comprising a cathode; a plurality of bipolar elements positioned between the anode terminal element and the cathode terminal element, each element including an anode, a cathode, a partition wall separating the anode and the cathode, and an outer frame that frames the partition wall; A diaphragm disposed between each of the adjacent elements. A cell stack (a) stacked via a gasket; press plates (b) disposed at both ends of the cell stack (a) and applying surface pressure between the gasket and the diaphragm, and between the gasket and each of the elements; a tie rod (c) fastening the cell stack (a) and the press plate (b), a heat insulating member (d) is provided between the press plate (b) and the cell stack (a); The average thermal expansion coefficient α in the stacking direction at the electrolysis temperature of the cell stack (a), the press plate (b), and the heat insulating member (d) is greater than the average thermal expansion coefficient β in the stacking direction at the electrolysis temperature of the tie rod (c), and the amount of thermal expansion (elongation in the stacking direction) of the entire stack of the cell stack (a), the press plate (b), and the heat insulating member (d) at the electrolysis temperature is greater than the amount of thermal expansion (elongation in the stacking direction) of the tie rod (c) at the electrolysis temperature. A bipolar electrolytic cell for water electrolysis, characterized in that:

2. 2. The bipolar electrolytic cell for water electrolysis according to claim 1, wherein the thermal conductivity A of the heat insulating member (d) at the electrolysis temperature is smaller than the thermal conductivity B of the press plate (b) at the electrolysis temperature.

3. 3. The bipolar electrolytic cell for water electrolysis according to claim 1 or 2, wherein the thermal insulation member (d) has a thermal conductivity A at 100°C of 1 W / m·K or less.

4. The bipolar electrolytic cell for water electrolysis according to any one of claims 1 to 3, wherein the heat insulating member (d) has a volume resistivity of 1 kΩ cm or more at an electrolysis temperature.

5. 5. The bipolar electrolytic cell for water electrolysis according to claim 1, wherein the thickness of the gasket is 5 to 20% of the thickness of the bipolar element.

6. a spring member (e) arranged on an outer periphery of the axis of the tie rod (c) and elastically deformable in the stacking direction of the cell stack (a), 6. The bipolar electrolytic cell for water electrolysis according to any one of claims 1 to 5, wherein an expansion length ΔL of the cell stack (a) in the stack direction at an electrolysis temperature is 75% or less of a total deflection T of the spring member (e) in the stack direction.

7. 7. The bipolar electrolytic cell for water electrolysis according to claim 6, wherein the number of tie rods (c) is n, and the spring members (e) arranged on the n tie rods (c) have a spring constant of 5 / n to 20 / n kN / mm.

8. 8. The bipolar electrolytic cell for water electrolysis according to any one of claims 1 to 7, wherein a surface pressure between the gasket and each of the elements during electrolysis is at least twice the maximum internal pressure of the electrolytic cell, and a compressibility of the gasket in a stacking direction of the cell stack (a) is 10 to 25%.

Citation Information

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