Fuel cell stack load detection device
The load detection device for fuel cell stacks uses a pressing mechanism with dual load detection means and partial plates to accurately measure loads on different parts, addressing the challenge of detecting optimal load conditions during stacking.
Patent Information
- Application Number
- JP2024003523
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-01-12
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2044-01-12
AI Technical Summary
Existing technologies lack the ability to appropriately detect the load applied to the entire power-generating cell during the stacking process of fuel cell stacks, making it difficult to determine optimal load conditions.
A load detection device for fuel cell stacks that includes a pressing mechanism and two load detection means, one above and one below the stack, each equipped with multiple load cells and movable plates divided into partial plates, allowing precise detection of loads applied to different parts of the power-generating cell.
Enables accurate detection of loads applied to various parts of the power-generating cell, including the electrode and frame portions, thereby predicting the behavior and ensuring appropriate load conditions for the entire fuel cell stack.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a load detection device for a fuel cell stack having a stack of multiple power generating cells. [Background technology]
[0002] A polymer electrolyte fuel cell comprises a membrane electrode assembly (MEA). Electrodes are provided on both sides of the solid polymer electrolyte membrane of the membrane electrode assembly. A sealing member is provided on the outer periphery of the membrane electrode assembly. The sealing member is a component for preventing leakage of fuel gas, refrigerant, etc. The membrane electrode assembly is sandwiched between separators to form a power generation cell. The power generation cells are stacked in the number required to obtain the desired voltage to form a stack. The stack is used in the form of a fuel cell stack with end plates and other components attached. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-185920 Summary of the Invention [Problem to be solved by the invention]
[0004] However, no technology has been proposed to date for appropriately detecting the load applied to the entire power-generating cell in the process of stacking the power-generating cells to form a stack, which makes it difficult to find appropriate load conditions.
[0005] An object of the present invention is to provide a load detection device that can appropriately detect the load applied to the entire power generating cell. [Means for solving the problem]
[0006] The fuel cell stack load detection device of the present invention is a fuel cell stack load detection device for manufacturing a fuel cell stack, and includes a pressing means capable of pressing the fuel cell stack in the stacking direction, a first load detection means provided on the upper part of the fuel cell stack and detecting the load of the fuel cell stack when the fuel cell stack is pressed by the pressing means, and a second load detection means provided on the lower part of the fuel cell stack and detecting the load of the fuel cell stack when the fuel cell stack is pressed by the pressing means.
[0007] According to the above-described load detection device, it is possible to provide a load detection device that can appropriately detect the load applied to the entire power generation cell.
[0008] The first load detecting means and the second load detecting means may each include two or more load cells.
[0009] The above-described load detection device can detect loads applied to different parts of the power generating cell.
[0010] The first load detection means and the second load detection means each include a movable plate having one surface in contact with the load cell and the other surface in contact with the fuel cell stack, the movable plate being divided into two or more parts in a planar view, and when the parts are considered to be partial plates, the partial plate included in the first load detection means and the partial plate included in the second load detection means may be arranged in the same position in a planar view, and the load cell included in the first load detection means and the load cell included in the second load detection means may be attached in the same position in a planar view.
[0011] The load detection device described above can accurately detect the loads applied to different parts of the power generating cell.
[0012] The partial plates may include a first partial plate located at the center of the movable plate in a plan view, and a second partial plate covering an outer periphery of the first partial plate in a plan view.
[0013] The load detection device described above can accurately detect the loads applied to the different functional parts of the power generation cell.
[0014] The fuel cell stack may include a power generation cell, the power generation cell including an electrolyte membrane / electrode structure and a resin frame member, the first partial plate being located at a portion where the electrolyte membrane / electrode structures are stacked in a plan view, and the second partial plate being located at a portion where the resin frame members are stacked in a plan view.
[0015] The load detection device described above can accurately detect the load applied to the portion where the electrodes are stacked and the portion where the frame is stacked in the power generating cell. [Effects of the Invention]
[0016] According to the present invention, it is possible to provide a load detection device that can appropriately detect the load applied to the entire power generating cell. [Brief explanation of the drawings]
[0017] [Figure 1] 1 is a perspective view of a fuel cell stack according to an embodiment of the present invention. [Figure 2] 1 is a diagram showing a load detection device for a fuel cell stack according to an embodiment of the present invention; [Figure 3A] FIG. 10 shows a first partial plate. [Figure 3B] FIG. 10 shows a second partial plate. [Figure 4A] 10 is a graph showing the results of load detection on the first partial plate. [Figure 4B] 10 is a graph showing the results of load detection on the second partial plate. DETAILED DESCRIPTION OF THE INVENTION
[0018] (Fuel cell stack) A load detection device 1 for a fuel cell stack 10 according to an embodiment of the present invention will be described. Before describing the load detection device 1, the fuel cell stack 10 will be described. FIG. 1 is a perspective view of the fuel cell stack 10 according to this embodiment. The fuel cell stack 10 includes a stack 14. The stack 14 includes a plurality of stacked power-generating cells 12. FIG. 1 shows a first direction 101, a second direction 102, and a third direction 103. The first direction 101, the second direction 102, and the third direction 103 are perpendicular to one another. The first direction 101 is the direction in which the power-generating cells 12 are stacked. The first direction 101 is referred to as the stacking direction 101. Furthermore, a view in the first direction 101 is referred to as a planar view.
[0019] At one end of the laminate 14 in the stacking direction 101, a first insulator 18 and a first end plate 21 are arranged in this order facing outward from the laminate 14. At the other end of the laminate 14 in the stacking direction 101, a second insulator 19 and a second end plate 22 are arranged in this order facing outward from the laminate 14. The insulators are made of an insulating material such as polycarbonate or phenolic resin. A spacer may be arranged between the laminate 14 and the end plate.
[0020] As shown in Fig. 1, the end plates are rectangular in shape. A connecting bar 24 is disposed between each of the opposing sides of the first end plate 21 and the second end plate 22. Both ends of the connecting bar 24 are fixed to each end plate with bolts 26. By fixing both end plates via the connecting bar 24, the distance between the first end plate 21 and the second end plate 22 is fixed. In addition, a clamping load is applied to each power generation cell 12 in the stacking direction 101.
[0021] The configuration of the power-generating cell 12 and the stack 14 will be described with reference to Fig. 2. Fig. 2 is a diagram showing a load detection device 1 for a fuel cell stack 10 of this embodiment. Fig. 2 shows a state in which the fuel cell stack 10, including the stack 14, etc., is installed on the load detection device 1.
[0022] (power generation cell) 2, the power generating cell 12 has a structure in which a membrane electrode assembly 30 is sandwiched between conductive separators 32. A resin frame member 28 is provided around the membrane electrode assembly 30.
[0023] The membrane electrode assembly 30 includes a solid polymer electrolyte membrane 31. The resin frame member 28 surrounds the outer periphery of the solid polymer electrolyte membrane 31. The resin frame member 28 has a frame shape in a plan view.
[0024] The separator 32 is made of a conductive material such as metal or carbon. A seal member 34 is provided around the outer periphery of the separator 32. The seal member 34 is made of an elastic material such as rubber.
[0025] (Laminate) A stack of a plurality of power generating cells 12 is called a stack 14 . (Seal laminated part) A seal stack portion 40 is formed on the outer edge of the laminate 14. The seal stack portion 40 is a portion where the seal members 34 are stacked on top of each other.
[0026] (electrode stacking section) An electrode laminate portion 41 is formed inside the seal laminate portion 40 in the laminate 14. The electrode laminate portion 41 is a portion where the electrolyte membrane / electrode assemblies 30 are laminated together.
[0027] (frame lamination section) A frame laminated portion 42 is formed between the seal laminated portion 40 and the electrode laminated portion 41. The frame laminated portion 42 is a portion where the resin frame members 28 are laminated together.
[0028] (Fuel cell stack load detection device) Referring to FIG. 2, the load detection device 1 for a fuel cell stack 10 will be described. The load detection device 1 mainly includes a pressing means 72, a control unit 78, a pressing plate 81, a first load detection means 76, a second load detection means 77, and a holding base 80. As shown in FIG. 2, in the stacking direction 101, the direction indicated by an arrow 104 is the upward direction 104. In the stacking direction 101, the direction indicated by an arrow 105 is the downward direction 105. In the load detection device 1, the holding base 80 is disposed in the downward direction 105. In the load detection device 1, the pressing plate 81 is disposed in the upward direction 104. An object that is disposed between the holding base 80 and the pressing plate 81 of the load detection device 1 and that is pressed is referred to as a pressing object 5. In the example shown in FIG. 2, the pressing object 5 is a fuel cell stack 10. The pressing object 5 is not limited to a fuel cell stack 10. The pressing object 5 may also be, for example, a stack 14.
[0029] (Pressing means) The pressing means 72 presses the pressing object 5 in a downward direction 105 by bringing the pressing plate 81 closer to the holder 80. The downward direction 105 is called the pressing direction. The pressing means 72 can apply a load to the pressing object 5. The pressing means 72 can be, for example, a press mechanism such as a servo press.
[0030] (Pressure plate) The pressing plate 81 is a part that is pressed by the pressing means 72 to apply a load to the pressing object 5. The holding table 80 is a part on which the pressing object 5 is placed. The holding table 80 includes a base 83 and an arrangement jig 84. The arrangement jig 84 is placed between the base 83 and the pressing object 5. The arrangement jig 84 has, for example, a shape that enables the first end plate 21 to be stably arranged in a predetermined direction.
[0031] The load detection device 1 of this embodiment includes two load detection means. One load detection means is referred to as first load detection means 76, and the other load detection means is referred to as second load detection means 77. The first load detection means 76 is disposed above the pressing object 5 in the stacking direction 101, in a direction 104 above the pressing object 5. The second load detection means 77 is disposed below the pressing object 5 in the stacking direction 101, in a direction 105 below the pressing object 5.
[0032] (First load detection means) The first load detecting means 76 includes a first fixed member 60 , a movable plate 50 and a load cell 90 .
[0033] (First fixing member) The first fixing member 60 is fixed to the lower surface 82 of the pressing plate 81. The lower surface 82 of the pressing plate 81 is the surface of the pressing plate 81 that faces the pressing object 5. The first fixing member 60 includes an outer frame portion 61 and a recessed portion 62. The outer frame portion 61 is a portion that extends in the downward direction 105 from the lower surface 82 of the pressing plate 81 at the outer periphery of the first fixing member 60. When the pressing object 5 includes a laminate 14, the outer frame portion 61 is arranged at a position corresponding to the seal laminated portion 40 of the laminate 14. The recessed portion 62 is a portion whose outer periphery is surrounded by the outer frame portion 61.
[0034] (movable plate) The movable plate 50 is a plate-like member that is movable in the stacking direction 101. One surface of the movable plate 50 is in contact with the pressing object 5. The other surface of the movable plate 50 is in contact with the load cell 90.
[0035] (load cell) The load cell 90 measures a load by being pressed into the movable plate 50. The load cell 90 is disposed between the first fixing member 60 and the movable plate 50 in the stacking direction 101. The load cell 90 is disposed in a recess 62 of the first fixing member 60. The load cell 90 is fixed to the lower surface 63 of the first fixing member 60 facing downward 105.
[0036] An outer frame portion 61 of the first fixing member 60 covers the outside of the movable plate 50. The outer frame portion 61 of the first fixing member 60 regulates the movement of the movable plate 50 in the stacking direction 101.
[0037] (Second load detection means) In the load detection device 1 of this embodiment, in addition to the first load detection means 76, a second load detection means 77 is arranged below the pressing object 5 in the downward direction 105. The second load detection means 77 has the same configuration as the first load detection means 76. However, the second load detection means 77 is arranged in an orientation in which the first load detection means 76 is upside down.
[0038] Specifically, as shown in Fig. 2, a second fixing member 65 is disposed on a holder 80. An outer frame portion 66 of the second fixing member 65 has a convex shape facing upward 104. A recess 67 of the second fixing member 65 has a concave shape that opens upward 104. A load cell 90 is disposed in the recess 67. The lower surface of the movable plate 50 included in the second load detecting means 77 contacts the load cell 90.
[0039] (Control unit) The control unit 78 is a part that controls the operation of the load detection device 1. The control unit 78 controls the pressing means 72 and adjusts the force that presses the pressing plate 81 and the speed at which the pressing plate 81 moves. The load detected by the load cell 90 is input to the control unit 78.
[0040] In the load detection device 1 of this embodiment, the load detection means are arranged above 104 and below 105 the pressing object 5. Therefore, compared to a load detection device in which the load detection means are arranged only above 104, for example, the load applied to the pressing object 5 can be detected more precisely.
[0041] Furthermore, the first load detecting means 76 and the second load detecting means 77 each include a plurality of load cells 90. Therefore, the load applied to the pressing object 5 can be detected more precisely.
[0042] (Partial plate) In the load detecting device 1 of this embodiment, the movable plate 50 is divided into two parts. As shown in Fig. 2, the movable plate 50 included in the first load detecting means 76 is divided into a first upper partial plate 53 and a second upper partial plate 54. The movable plate 50 included in the second load detecting means 77 is divided into a first lower partial plate 55 and a second lower partial plate 56. This will be described with reference to Figs. 3A and 3B.
[0043] Fig. 3A is a diagram showing a first partial plate 51. Fig. 3B is a diagram showing a second partial plate 52. The movable plate 50 is divided into the first partial plate 51 and the second partial plate 52. In other words, the movable plate 50 is formed by combining the first partial plate 51 and the second partial plate 52.
[0044] The first partial plate included in the first load detection means 76 is referred to as the first upper partial plate 53, and the first partial plate included in the second load detection means 77 is referred to as the first lower partial plate 55. The first upper partial plate 53 and the first lower partial plate 55 have the same shape at least in a plan view.
[0045] Similarly, the second partial plate included in the first load detection means 76 is referred to as the second upper partial plate 54, and the second partial plate included in the second load detection means 77 is referred to as the second lower partial plate 56. The second upper partial plate 54 and the second lower partial plate 56 have the same shape at least in a plan view.
[0046] (First partial plate) 3A, the first partial plate 51 is a plate located in the center of the movable plate 50 in plan view. The first partial plate 51 has a quadrangular shape in plan view.
[0047] (Second partial plate) 3B, the second partial plate 52 is a plate located on the outer periphery of the movable plate 50 in a plan view. The second partial plate 52 has a rectangular frame shape in a plan view. The second partial plate 52 has a shape that covers the outer periphery of the first partial plate 51 in a plan view.
[0048] The first partial plate 51 is disposed within the frame of the second partial plate 52, thereby forming the entire movable plate 50.
[0049] The first upper partial plate 53 and the first lower partial plate 55 are arranged to overlap in a plan view. Similarly, the second upper partial plate 54 and the second lower partial plate 56 are arranged to overlap in a plan view.
[0050] That is, the first upper partial plate 53 and the first lower partial plate 55 are disposed at the same position in a plan view, and the second upper partial plate 54 and the second lower partial plate 56 are disposed at the same position in a plan view.
[0051] The number of partial plates into which the movable plate is divided is not limited to two. The movable plate may be divided into three or more partial plates. Furthermore, the partial plates and their shapes in plan view are not limited to the examples shown in Figures 3A and 3B.
[0052] (load cell) The load cell 90 will now be described. As described above, two or more load cells 90 are included in each of the first load detection means 76 and the second load detection means 77. Furthermore, each of the first partial plate 51 and the second partial plate 52 is in contact with one or more load cells 90.
[0053] In the example shown in Fig. 2, at the position in the third direction 103 shown in Fig. 2 (at the position of the cross section shown in Fig. 2), the first load detection means 76 and the second load detection means 77 each include four load cells 90. The load cells 90 included in the first load detection means 76 are referred to as a first load cell 91, a second load cell 92, a third load cell 93, and a fourth load cell 94. These load cells 90 are lined up in order in the second direction 102.
[0054] Similarly, the load cells 90 included in the second load detection means 77 are a fifth load cell 95, a sixth load cell 96, a seventh load cell 97, and an eighth load cell 98. These load cells 90 are lined up in order in the second direction 102.
[0055] 2 illustrates load cells 90 aligned in the second direction 102 at a position in the third direction 103. A plurality of load cells 90 may be arranged in the third direction 103. That is, a plurality of load cells 90 may be arranged two-dimensionally on the fixing member.
[0056] (Partial plate and load cell) 2, a second load cell 92 and a third load cell 93 are in contact with the first upper partial plate 53. Also, a first load cell 91 and a fourth load cell 94 are in contact with the second upper partial plate 54.
[0057] Similarly, a sixth load cell 96 and a seventh load cell 97 abut the first lower partial plate 55. A fifth load cell 95 and an eighth load cell 98 abut the second lower partial plate 56.
[0058] With this configuration, the loads acting on the first upper partial plate 53, the second upper partial plate 54, the first lower partial plate 55 and the second lower partial plate 56 can be detected separately.
[0059] The load applied to the first upper partial plate 53 can be the sum of the loads of the second load cell 92 and the third load cell 93. The load applied to the second upper partial plate 54 can be the sum of the loads of the first load cell 91 and the fourth load cell 94. The same can be done for the first lower partial plate 55 and the second lower partial plate 56.
[0060] An example of load detection using the load detection device 1 of this embodiment will be described. FIG. 4A is a graph showing the load detection results for the first partial plate 51. FIG. 4B is a graph showing the load detection results for the second partial plate 52. The X-axis in FIGS. 4A and 4B represents the thickness d (mm) of the fuel cell stack 10 as the pressing object 5. The Y-axis in FIGS. 4A and 4B represents the load W (kN) detected by the load cell 90.
[0061] Line CT in Figure 4A shows the load on the first upper partial plate 53, and line CL in Figure 4A shows the load on the first lower partial plate 55. Line OT in Figure 4B shows the load on the second upper partial plate 54, and line OL in Figure 4B shows the load on the second lower partial plate 56.
[0062] 4A and 4B, as shown in Fig. 4A, the load at the central portion of the pressing object 5 detected by the first partial plate 51 in a plan view is higher on the lower side (CL) than on the upper side (CT). On the other hand, as shown in Fig. 4B, the load at the peripheral portion of the pressing object 5 detected by the second partial plate 52 in a plan view is higher on the upper side (OT) than on the lower side (OL).
[0063] From these results, it is inferred that the pressing object 5 has a shape in which the peripheral portion is raised and the central portion is recessed.
[0064] Furthermore, if the relationship between the loads on the upper and lower sides is the opposite of the example shown in Figures 4A and 4B, it is inferred that the pressing object 5 will have a shape in which the central portion is raised and the peripheral portions are lowered.
[0065] Furthermore, if there is no difference in the magnitude relationship of the loads on the upper and lower sides, it is assumed that the pressing object 5 has a flat shape.
[0066] In this way, by arranging the movable plate and the load cell on the upper and lower sides, dividing the movable plate into partial plates, and making it possible to measure the load of each partial plate, it is possible to grasp the shape of the pressed object 5 and the shared load of each part of the pressed object 5. This makes it possible to predict the behavior of the pressed object 5 when pressed.
[0067] When the pressing object 5 is a fuel cell stack 10, it is possible to predict the behavior of the entire fuel cell stack 10 or the entire stack 14 included in the fuel cell stack 10 when pressed. Also, when the pressing object 5 is a stack 14, it is possible to predict the behavior of the entire stack 14 when pressed.
[0068] (Positional relationship between the electrode laminate and frame laminate) In the load detection device 1 of this embodiment, the first upper partial plate 53 and the first lower partial plate 55 are located in the electrode stack portion 41 in a plan view. On the other hand, the second upper partial plate 54 and the second lower partial plate 56 are located in the frame stack portion 42 in a plan view.
[0069] By arranging the first partial plate 51 and the second partial plate 52 in the positions described above, it is possible to separately detect the load applied to the electrode stack portion 41, which is the portion where the electrolyte membrane / electrode assemblies 30 are stacked in the stack body 14, and the load applied to the frame stack portion 42, which is the portion where the resin frame members 28 are stacked in the stack body 14. This makes it possible to more accurately detect the load applied to each functional portion of the power generation cell.
[0070] Although the present invention has been described above as an embodiment, it is not limited to the above-described embodiment, and various changes, modifications, and combinations are possible. [Explanation of symbols]
[0071] 1. Load detection device 5. Pressing object 10. Fuel Cell Stack 12 Power generation cells 14 Laminate 50 Movable Plate 51 First partial plate 52 Second partial plate 53 First upper partial plate 54 second upper partial plate 55 First Lower Part Plate 56 Second lower partial plate 60 First fixing member 65 Second fixing member 72 Pressing means 76 First load detection means 77 Second load detection means 90 load cells
Claims
1. A fuel cell stack load detection device for manufacturing a fuel cell stack, comprising: a pressing means capable of pressing the fuel cell stack in a stacking direction; a first load detection means provided on an upper portion of the fuel cell stack, the first load detection means detecting a load on the fuel cell stack when the fuel cell stack is pressed by the pressing means; a second load detection means provided below the fuel cell stack, for detecting the load of the fuel cell stack when the fuel cell stack is pressed by the pressing means.
2. 2. The fuel cell stack load detection device according to claim 1, wherein the first load detection means and the second load detection means each include two or more load cells.
3. the first load detection means and the second load detection means each include a movable plate having one surface in contact with the load cell and the other surface in contact with the fuel cell stack; the movable plate is divided into two or more portions in a plan view, When the part is defined as a partial plate, the partial plate included in the first load detection means and the partial plate included in the second load detection means are disposed at the same position in a plan view, 3. The load detection device for a fuel cell stack according to claim 2, wherein the load cell included in the first load detection means and the load cell included in the second load detection means are attached at the same position in a plan view.
4. 4. The load detection device for a fuel cell stack according to claim 3, wherein the partial plates include a first partial plate located at the center of the movable plate in a plan view, and a second partial plate covering an outer periphery of the first partial plate in a plan view.
5. The fuel cell stack includes a power generation cell, the power-generating cell includes a membrane electrode assembly and a resin frame member; the first partial plate is located in a portion where the electrolyte membrane / electrode assemblies are stacked in a plan view, The load detection device for a fuel cell stack according to claim 4 , wherein the second partial plate is located at a portion where the resin frame members are stacked together in a plan view.
Citation Information
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