Fuel cell stack manufacturing equipment

The apparatus addresses the challenge of varying component thickness in fuel cell stack assembly by using load monitoring and control mechanisms to ensure consistent and safe fastening pressure, preventing damage to the stack case.

JP7745016B2Active Publication Date: 2025-09-26HONDA MOTOR CO LTD
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Patent Information

Application Number
JP2024003500
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

Technical Problem

Conventional fuel cell stack manufacturing processes face challenges in controlling the load applied during the fastening operation due to variations in component thickness, making it difficult to ensure consistent and appropriate fastening pressure.

Method used

A fuel cell stack manufacturing apparatus equipped with a pressurizing means, total load detection means, and calculation means to monitor and control the load per unit time, stopping the pressurization when a predetermined load threshold is reached to ensure appropriate fastening without exceeding the stack case's limit load.

Benefits of technology

The apparatus enables consistent and appropriate fastening of fuel cell stacks by maintaining the applied load within safe limits, preventing damage to the stack case and ensuring reliable assembly.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an apparatus for manufacturing a fuel cell stack that can be fastened with an appropriate load for each fuel cell stack.SOLUTION: An apparatus 1 for manufacturing a fuel cell stack 10 includes: pressurizing means 72 capable of pressurizing the fuel cell stack 10 before fastening, along a stacking direction 101; overall load detection means 74 that, when the pressurizing means 72 pressurizes, detects a load of the fuel cell stack 10; and calculation means 79 that calculates a load per unit time for a load detected by the overall load detection means 74. The pressurizing means 72 stops pressurizing in a case where the load per unit time calculated by the calculation means 79 is equal to or greater than a first predetermined value.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a manufacturing apparatus for a fuel cell stack including a stack formed by stacking a plurality of 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] The manufacturing process of a fuel cell stack includes a stack fastening operation, which includes, for example, pushing the lid into the stack case to seat it, and screwing the lid to the stack case. In this stack fastening operation, the application of pressure to the stack case by the lid is conventionally stopped based on the height of the lid after pushing it in, the amount of pressure the lid has been pushed in, or the magnitude of the load when pushing the lid in.

[0005] The thickness of the components that make up the fuel cell stack can vary. Therefore, even if the pressurization operation is stopped under the same conditions, the load on the stack case can vary. In other words, with conventional stack fastening work, it is difficult to control the load on the stack case when the lid is seated on the stack case.

[0006] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a fuel cell stack manufacturing apparatus that can fasten each fuel cell stack with an appropriate load. [Means for solving the problem]

[0007] The fuel cell stack manufacturing apparatus of the present invention is a fuel cell stack manufacturing apparatus for manufacturing a fuel cell stack, and includes a pressurizing means capable of pressurizing the fuel cell stack in the stacking direction before fastening, a total load detection means for detecting the load of the fuel cell stack when pressurized by the pressurizing means, and a calculation means for calculating the load per hour for the load detected by the total load detection means, and the pressurizing means stops pressurizing when the load per hour calculated by the calculation means becomes equal to or greater than a first predetermined value.

[0008] According to the above-described fuel cell stack manufacturing apparatus, it is possible to provide a fuel cell stack manufacturing apparatus that can fasten each fuel cell stack with an appropriate load.

[0009] The calculation means may calculate a rate of change of the load per unit time, and the first predetermined value may be equal to or greater than the value of the load per unit time when the rate of change reaches a second predetermined value.

[0010] According to the above-described fuel cell stack manufacturing apparatus, the first predetermined value can be determined appropriately.

[0011] The fuel cell stack includes a stack case, and the first predetermined value can be a value greater than or equal to the load value per hour when the change rate becomes a second predetermined value, and less than the load value per hour when the stack case's limit load is applied to the stack case.

[0012] According to the above-described fuel cell stack manufacturing apparatus, fastening can be performed with sufficient strength without applying a load exceeding the limit to the stack case. [Effects of the Invention]

[0013] According to the present invention, it is possible to provide a fuel cell stack manufacturing device that can fasten each fuel cell stack with an appropriate load. [Brief explanation of the drawings]

[0014] [Figure 1] 1 is a perspective view of a fuel cell stack according to an embodiment of the present invention. [Figure 2A] FIG. 2 is a diagram showing a fuel cell stack manufacturing apparatus according to the present embodiment before being seated. [Figure 2B] FIG. 2 is a diagram showing the fuel cell stack manufacturing apparatus after being seated according to the present embodiment. [Figure 3] FIG. 10 is a diagram illustrating an outline of contact load detection stop. [Figure 4] 10 is a diagram showing the relationship between the stack length of the fuel cell stack and the load per unit time applied to the fuel cell stack by the pressurizing means. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0015] (Fuel cell stack) A manufacturing apparatus 1 for a fuel cell stack 10 according to an embodiment of the present invention will be described. Before describing the manufacturing apparatus 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 power-generating cells 12 stacked together.

[0016] (Power generating cells and laminates) The power generation cell 12 has a structure in which an electrolyte membrane / electrode assembly is sandwiched between conductive separators. A resin frame member is provided around the electrolyte membrane / electrode assembly. A seal member is provided on the outer peripheral edge of the separator. The seal member is made of an elastic material such as rubber. A stack of multiple power generation cells 12 is called a stack 14. The stack 14 includes an electrode stack portion and a seal stack portion. The electrode stack portion is the portion where the electrolyte membrane / electrode assembly is mainly stacked. The seal stack portion is the portion where the seal member is stacked.

[0017] 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 called the stacking direction 101.

[0018] 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.

[0019] 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 fastening load in the stacking direction 101 is applied to each power generation cell 12.

[0020] Fig. 1 shows a fuel cell stack 10 fastened together using a first end plate 21, a second end plate 22, and a connecting bar 24. The configuration of the fuel cell stack 10 is not limited to the configuration shown in Fig. 1. For example, the fuel cell stack 10 may be fastened together using a stack case and a lid.

[0021] (Fuel cell stack manufacturing equipment) The manufacturing apparatus 1 for the fuel cell stack 10 will be described with reference to Figures 2A and 2B. Figures 2A and 2B are diagrams showing the manufacturing apparatus 1 for the fuel cell stack 10 of this embodiment. Figure 2A shows the manufacturing apparatus 1 for the fuel cell stack 10 before it is seated. Figure 2B shows the manufacturing apparatus 1 for the fuel cell stack 10 in a seated state.

[0022] As shown in FIGS. 2A and 2B , the manufacturing apparatus 1 for a fuel cell stack 10 mainly includes a pressurizing means 72, a total load detecting means 74, a control unit 78, a pressure plate 81, a fixing member 60, and a holding table 80. As shown in FIGS. 2A and 2B , in stacking direction 101, the direction indicated by arrow 104 is the upward direction 104. In stacking direction 101, the direction indicated by arrow 105 is the downward direction 105. In the manufacturing apparatus 1, the holding table 80 is disposed in the downward direction 105. In the manufacturing apparatus 1, the pressure plate 81 is disposed in the upward direction 104. A stack 14 is disposed between the holding table 80 and the pressure plate 81 as part of an object to be pressed. The object to be pressed is an object that is disposed between the holding table 80 and the pressure plate 81 and is pressed by the pressure plate 81.

[0023] (Pressure means) The pressure applying means 72 applies pressure to the object to be pressed in a downward direction 105 by bringing the pressure plate 81 closer to the holder 80. The downward direction 105 is called the pressure applying direction. The pressure applying means 72 can apply a load to the object to be pressed. The pressure applying means 72 is, for example, a press mechanism such as a servo press.

[0024] (Pressure plate) The pressure plate 81 is a part that applies a load to an object to be pressed by being pressed by the pressure means 72. A fixing member 60 is disposed between the pressure plate 81 and the object to be pressed. The support base 80 is a part on which an object to be pressed, such as the fuel cell stack 10, is placed.

[0025] The total load detection means 74 is a means for detecting the total load acting on the entire object to be pressed. The entire object to be pressed includes the electrode laminated portion and the seal laminated portion. The total load detection means 74 is configured with, for example, a load cell. The total load detection means 74 detects the load acting on the pressure plate 81 pressed against the object to be pressed, and outputs the detection result to the control unit 78.

[0026] (Control unit) The control unit 78 is a part that controls the operation of the manufacturing apparatus 1. The control unit 78 controls the pressure means 72 and adjusts the pressure force of the pressure plate 81, the speed at which the pressure plate 81 moves, the timing at which the pressure plate 81 stops, etc. The load detected by the total load detection means 74 is input to the control unit 78. The control unit 78 includes a calculation means 79. The calculation means 79 calculates the load per unit time for the load detected by the total load detection means 74. The calculation means 79 also calculates the rate of change in the load per unit time. The control unit 78 can stop the pressure of the pressure plate 81 by the pressure means 72 when the load per unit time calculated by the calculation means 79 or the rate of change in the calculated load per unit time reaches a predetermined value or more.

[0027] (Stack fastening work) The stack fastening operation will be described in detail with reference to Figures 2A and 2B. Figures 2A and 2B show an example in which lid 27 is brought into contact with stack case 25 from above. The contact of lid 27 with stack case 25 is referred to as seating.

[0028] 2A shows a state before the stack is seated during the stack fastening operation. During the stack fastening operation, the pressure plate 81 is moved in the direction of arrow A1 by the pressure means 72. The direction of arrow A1 is parallel to the downward direction 105.

[0029] (seated) 2B shows the state after the lid 27 has been seated in the stack fastening operation. When the pressure plate 81 is further pressed in the direction of arrow A1, the lid 27 is seated on the stack case 25, as shown in FIG. 2B. Arrow A2 in FIG. 2B indicates the part of the lid 27 that has been seated on the stack case 25.

[0030] (Screw fastening) In the stack fastening operation, after the lid 27 is seated on the stack case 25, the lid 27 is screwed to the stack case 25 using a screw or the like such as the bolt 26 shown in FIG.

[0031] (Limit load) Here, there are cases where the load that can be applied to the stack case after it has been seated is limited. This load is called the limit load. The pressure applied to the lid 27 by the pressure means 72 via the pressure plate 81 must be within a range in which the lid 27 is seated on the stack case 25 and a load that exceeds the limit load is not applied to the stack case 25.

[0032] Conventionally, the application of pressure to the lid 27 is stopped based on the position of the lid 27 in the stacking direction 101 or the load on the lid 27. Therefore, it is difficult to control the load on the stack case 25 when it is seated due to the influence of variations in the thickness of the members included in the stack 14 or the parts involved in fastening the stack.

[0033] In the manufacturing apparatus 1 of this embodiment, by using the contact load detection stop function, even if there is variation in the thickness of the parts, the load applied to the stack case 25 can be kept constant and the stack fastening work can be performed.

[0034] (Contact load detection stop function) The contact load detection stop function will be described with reference to Fig. 3. Fig. 3 is a diagram for explaining the outline of determining the timing to stop pressure application by contact load detection. The X axis of Fig. 3 represents the time T from the start of the pressure application operation. The Y axis of Fig. 3 represents the load per time, i.e., W / T.

[0035] In the manufacturing apparatus 1 of this embodiment, the timing to stop the pressurizing operation of the pressurizing means 72 is determined by the load per unit time. The load per unit time when the pressurizing operation is stopped is set to a threshold value TH. As shown in FIG. 3, the value of the threshold value TH is determined in advance. The predetermined value of the threshold value TH is called a first predetermined value. Then, when the load per unit time reaches the threshold value TH, the pressurizing operation is stopped. In FIG. 3, the point at which the load per unit time reaches the threshold value TH is shown as point P1.

[0036] As shown in Figure 3, by determining the timing for stopping pressurization based on the load per unit time, a load exceeding the limit load is not applied to the stack case 25, and each fuel cell stack 10 can be fastened with an optimal load.

[0037] (How to calculate the load per unit time) The load per time (W / T) can be calculated as follows. While the pressure applying means 72 applies pressure to the pressure plate 81 under predetermined conditions, for example, at a constant speed, the total load detecting means 74 detects the total load acting on the lid 27 and the like. The load acting on the pressure plate 81 detected by the total load detecting means 74 is input to the control unit 78. The control unit 78 includes a calculation means 79. The calculation means 79 calculates the load per time. In this way, the load per time can be calculated. The control unit 78 may also calculate the rate of change in the load per time.

[0038] (How to determine the threshold) The method for determining the threshold value TH will be explained with reference to FIG. 4. FIG. 4 is a diagram showing the relationship between the stack length of the fuel cell stack and the load per unit time applied to the fuel cell stack by the pressurizing means. The X-axis of FIG. 4 represents the stack length [mm] of the fuel cell stack. The Y-axis of FIG. 4 represents the load per unit time applied to the fuel cell stack in WkN / 0.1 sec (seconds). The load per unit time applied to the fuel cell stack was recorded every 0.1 seconds. Note that the values ​​on the Y-axis in FIG. 4 are merely examples. The value of the load per unit time applied to the fuel cell stack will vary depending on the configuration of the fuel cell stack, etc.

[0039] Arrow A10 in Figure 4 indicates the direction of change in stack length L of fuel cell stack 10 as pressurization of fuel cell stack 10 by pressurizing means 72 progresses. The direction indicated by arrow A10 is called pressurization direction A10. In the graph of Figure 4, the X-axis is divided into a first region R1, a second region R2, and a third region R3 in that order along the pressurization direction A10.

[0040] (First area) The first region R1 is the region from the start of pressurization to line L1 in Figure 4. The first region R1 is the region where compression mainly reduces the stack length L of the power generation cells 12. In the first region R1, the load per unit time is almost constant. In the example shown in Figure 4, the load per unit time is almost constant at around 1.5 kN / sec.

[0041] (Second Area) The second region R2 is the region from line L1 in FIG. 4 to line L2 in FIG. 4. The second region R2 is a region where the stack length L of the packing (not shown) arranged between the stack case 25 and the lid 27, in addition to the power generation cells 12, becomes smaller due to compression. This packing is arranged to prevent leakage of hydrogen and the like. In the second region R2, the load per unit time increases gradually as the stack length L becomes smaller. The reason why the trends in the change in the load per unit time differ between the first region R1 and the second region R2 is because the packing is compressed in the second region R2. In the second region R2, the load per unit time increases to approximately 0.5 kN / s.

[0042] (Third Area) The third region R3 is the region from line L2 in FIG. 4 to the point where pressurization stops. The third region R3 is the region from when the lid 27 is seated on the stack case 25 until pressurization stops. P10 in FIG. 4 indicates the point where the lid 27 is seated. P11 indicates the point where pressurization stops. In the third region R3, the stack length L does not decrease significantly. This is because the stack case 25 and the lid 27 are less likely to compress than the power generation cells 12 and the like. Furthermore, in the third region R3, the load per unit time rises sharply. This is because the load is applied to the stack case 25 and the lid 27, which are less likely to shrink, rather than the power generation cells 12 and the like, in the third region R3.

[0043] (Overshoot) The pressurization from seating P10 to pressurization stop P11 is called overshoot. The load applied during the overshoot becomes the case load. The case load is the load applied to the stack case 25. Arrow A11 in Figure 4 indicates the case load. For example, if the load at seating P10 is 46.6 kN and the load at pressurization stop P11 is 51.3 kN, the case load will be the difference, 4.7 kN.

[0044] In the manufacturing apparatus 1 of this embodiment, when the value of the load per unit time reaches a predetermined value (threshold value), the application of pressure is stopped. The threshold value is preferably set to the value at the time when the predetermined pressure is applied after seating. This makes it possible to prevent insufficient fastening, for example, even if there is variation in thickness among the components included in the fuel cell stack 10. In the example shown in FIG. 4, the threshold value is preferably set to a value equal to or greater than 0.5 kN / 0.1 second, which is the load per unit time at seating P10.

[0045] As mentioned above, there may be a limit (limit load) on the load that can be applied to the stack case 25 after it has been seated. The threshold value is preferably set to a value that prevents a load exceeding the limit load from being applied to the stack case 25 due to overshoot. In the example shown in Fig. 4, when the limit load of the stack case 25 is 10 kN, the point in time when the load applied to the stack case 25 reaches 4.7 kN is set as the point in time P11 when pressurization is stopped. In this case, the load per time as the threshold value is set to a value slightly exceeding 1.4 kN / 0.1 seconds.

[0046] The load per unit time at the time of sitting can be determined by the change in the load per unit time. As shown in Figure 4, the load per unit time increases sharply after sitting P10. Therefore, the position where the load per unit time starts to change at a rate (second predetermined value) of 0.1 kN / 0.1 sec or more can be determined to be the position where sitting P10 occurs.

[0047] The present invention is not particularly limited to the above-described embodiment, and various modifications are possible without departing from the spirit of the present invention. [Explanation of symbols]

[0048] 1 Manufacturing equipment 10. Fuel Cell Stack 12 Power generation cells 14 Laminate 18 First Insulator 19 Second Insulator 21 First end plate 22 Second end plate 24 Connecting bar 25 Stack Case 26 volts 27 Lid 60 Fixing member 72 Pressurizing means 74 Total load detection means 78 Control Unit 79 Calculation Method 80 Holding stand 81 Pressure plate 101 first direction, stacking direction 102 Second Direction 103 The Third Direction A10 Pressure direction R1 First Region R2 Second Region R3 The third region P10 Seated P11 Pressurization stop

Claims

1. A fuel cell stack manufacturing apparatus for manufacturing a fuel cell stack, comprising: a pressure applying means for applying pressure to the fuel cell stack in the stacking direction before fastening; a total load detection means for detecting the load of the fuel cell stack when pressurized by the pressurizing means; a calculation means for calculating a load per unit time for the load detected by the total load detection means, The fuel cell stack manufacturing apparatus, wherein the pressurizing means stops pressurizing when the load per unit time calculated by the calculating means becomes equal to or greater than a first predetermined value.

2. the calculation means calculates a rate of change of the load per time, 2. The fuel cell stack manufacturing apparatus according to claim 1, wherein the first predetermined value is equal to or greater than the value of the load per unit time when the rate of change reaches a second predetermined value.

3. the fuel cell stack includes a stack case; 3. The fuel cell stack manufacturing apparatus of claim 2, wherein the first predetermined value is greater than or equal to the load value per hour when the change rate becomes the second predetermined value, and is less than the load value per hour when the stack case is subjected to the limit load of the stack case.

Citation Information

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