Bipolar battery
The bipolar lead-acid battery design addresses heat trapping and electrolyte corrosion issues by using substrates with reduced connection surfaces and recessed frames for enhanced heat dissipation and mechanical strength, ensuring reliable performance and preventing short circuits.
Patent Information
- Application Number
- JP2023508448
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-26
- Filing Date
- 2021-11-10
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2041-11-10
AI Technical Summary
Bipolar lead-acid batteries face issues with heat trapping during resistance welding, leading to resin substrate softening, seal degradation, gas traps, increased resistance, and electrolyte corrosion, which adversely affect battery performance.
The battery design includes a substrate with through holes and conductors that minimize heat trapping by reducing the connection surface area and using vibration welding with recessed frames to enhance heat dissipation and mechanical strength.
This design prevents heat buildup, reduces gas traps, and minimizes electrolyte intrusion, thereby maintaining battery performance and preventing short circuits, while ensuring reliable electrical connections.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a bipolar storage battery. [Background technology]
[0002] In recent years, the number of power generation facilities using natural energy such as solar and wind power has been increasing. Since it is not possible to control the amount of power generated in such power generation facilities, a storage battery is used to level the power load. That is, when the amount of power generated is greater than the amount of power consumed, the difference is charged to the storage battery, and when the amount of power generated is less than the amount of power consumed, the difference is discharged from the storage battery. Lead-acid batteries are widely used as the storage batteries from the viewpoints of economy, safety, and the like. For example, a bipolar lead-acid battery described in Patent Document 1 is known as such a conventional lead-acid battery.
[0003] This bipolar lead-acid battery has a resin substrate attached to the inside of a picture-frame-shaped resin frame. Lead layers are arranged on both sides of the substrate. A positive electrode active material layer is adjacent to the lead layer on one side of the substrate, and a negative electrode active material layer is adjacent to the lead layer on the other side. The battery also has a frame-shaped resin spacer, inside which a glass mat impregnated with electrolyte is arranged. Multiple frames and spacers are stacked alternately, and the frames and spacers are bonded together with an adhesive or the like.
[0004] Furthermore, the lead layers on both sides of the substrate are connected via through holes provided in the substrate. Paragraph
[0028] of Patent Document 1 describes that this connection is performed by, for example, resistance welding. That is, the bipolar lead-acid battery described in Patent Document 1 includes a positive electrode having a positive current collector plate (lead layer) and a positive active material layer, a negative electrode having a negative current collector plate (lead layer) and a negative active material layer, and a separator (glass mat) interposed between the positive and negative electrodes, and includes a plurality of cell members stacked at intervals, and a plurality of space-forming members that form a plurality of spaces for individually accommodating the plurality of cell members. The space-forming members also include a substrate that covers at least one of the positive and negative electrode sides of the cell members, and a frame (frames of the bipolar plate and end plates and spacers) that surround the side surfaces of the cell members.
[0005] Furthermore, the cell members and the substrates of the space-forming members are arranged in an alternately stacked state, the frame bodies are joined together, and the substrates arranged between the cell members have through holes extending in a direction intersecting the plate surfaces, and the conductors arranged in the through holes conduct electricity between the positive electrode collector plates and negative electrode collector plates of adjacent cell members, so that the multiple cell members are electrically connected in series. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Patent No. 6124894 Summary of the Invention [Problem to be solved by the invention]
[0007] When manufacturing such bipolar lead-acid batteries, if the lead layers on both sides of the substrate are connected by resistance welding through through-holes in the substrate, the lead layers are melted by a large current, which causes heat transfer to the surrounding area, raising the temperature of the resin substrate and trapping heat inside the conductor. Specifically, if the resin substrate becomes too hot, it may soften and reduce the seal between cells. If heat is trapped inside the conductor, gas traps known as blowholes are likely to occur. Gas traps increase the resistance between cells, potentially adversely affecting battery performance. Furthermore, during use of the bipolar lead-acid battery, electrolyte may seep into the gas traps, leading to corrosion. Furthermore, these problems are likely to occur even when the positive and negative current collectors are made of metal layers (metal foils) other than lead layers (lead foils).
[0008] The object of the present invention is to, when manufacturing a bipolar storage battery through a welding process in which current collector plates on both sides of a substrate are connected by resistance welding or the like via a conductor placed in a through hole in the substrate, make it difficult for heat to be trapped inside the conductor during welding and to make it difficult for heat to be transmitted around the through hole. [Means for solving the problem]
[0009] One aspect of the present invention for solving the above-mentioned problems is a bipolar storage battery having the following configurations (1) to (4). (1) A battery comprising: a positive electrode having a positive electrode current collector and a positive electrode active material layer; a negative electrode having a negative electrode current collector and a negative electrode active material layer; and a separator interposed between the positive electrode and the negative electrode; and a plurality of cell members stacked and arranged with gaps between them; and a plurality of space-forming members that form a plurality of spaces for individually accommodating the plurality of cell members. (2) The space-forming member includes a substrate covering at least one of the positive electrode side and the negative electrode side of the cell member, and a frame surrounding the side surface of the cell member. The cell members and the substrates of the space-forming member are alternately stacked and arranged. The frames are joined together. (3) The substrate disposed between the cell members has through holes extending in a direction intersecting the plate surface, and a conductor disposed in the through holes electrically connects the positive electrode current collector plate and the negative electrode current collector plate of adjacent cell members, thereby electrically connecting the plurality of cell members in series. (4) The area of at least one of the connection surface of the conductor with the positive electrode current collector plate and the connection surface of the conductor with the negative electrode current collector plate is smaller than the cross-sectional area of the conductor parallel to the connection surface at the middle part of the conductor in the thickness direction of the substrate. [Effects of the Invention]
[0010] According to the present invention, when manufacturing a bipolar storage battery through a welding process in which current collector plates on both sides of a substrate are connected by resistance welding or the like via a conductor placed in a through hole in the substrate, it is possible to make it difficult for heat to be trapped inside the conductor during welding and to make it difficult for heat to be transmitted around the through hole. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a cross-sectional view showing a schematic configuration of a bipolar lead-acid battery according to one embodiment of the present invention. [Figure 2] FIG. 2 is a partially enlarged view of the bipolar lead-acid battery of FIG. 1. [Figure 3] 2 is a perspective view showing a stacked and joined state of space forming members that constitute the bipolar lead-acid battery of FIG. 1. FIG. [Figure 4] FIG. 2 is a plan view showing an example of a substrate of a biplate. [Figure 5] 2 is a partially enlarged view showing a conductor and its surrounding area in the bipolar lead-acid battery of FIG. 1. FIG. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, embodiments of the present invention will be described, but the present invention is not limited to the following embodiments. In the following embodiments, limitations that are technically preferable for carrying out the present invention are imposed, but these limitations are not essential requirements of the present invention. In the following, a lead-acid battery will be used as an example from among various storage batteries.
[0013] [Overall structure] First, the overall configuration of the bipolar lead-acid battery of this embodiment will be described. As shown in Fig. 1, the bipolar lead-acid battery 100 of this embodiment has a plurality of cell members 110, a plurality of biplates (space-forming members) 120, a first end plate (space-forming member) 130, a second end plate (space-forming member) 140, and a cover plate 170. While Fig. 1 shows the bipolar lead-acid battery 100 in which three cell members 110 are stacked, the number of cell members 110 is determined by the battery design. Furthermore, the number of biplates 120 is determined according to the number of cell members 110.
[0014] FIG. 2 is a diagram illustrating two biplates 120 extracted from FIG. As shown in FIGS. 1 to 3, the stacking direction of the cell members 110 is the Z direction (the vertical direction in FIGS. 1 to 3), and directions perpendicular to the Z direction and perpendicular to each other are the X direction and the Y direction. The cell member 110 includes a positive electrode 111, a negative electrode 112, and a separator (electrolyte layer) 113. The separator 113 is impregnated with an electrolyte. The positive electrode 111 includes a positive electrode lead foil (positive electrode current collector) 111a and a positive electrode active material layer 111b. The negative electrode 112 includes a negative electrode lead foil (negative electrode current collector) 112a and a negative electrode active material layer 112b. The separator 113 is interposed between the positive electrode 111 and the negative electrode 112. In the cell member 110, the positive electrode lead foil 111a, the positive electrode active material layer 111b, the separator 113, the negative electrode active material layer 112b, and the negative electrode lead foil 112a are stacked in this order.
[0015] The dimensions in the X and Y directions of the positive electrode lead foil 111a and the negative electrode lead foil 112a are larger than the dimensions in the X and Y directions of the positive electrode active material layer 111b and the negative electrode active material layer 112b. The dimension (thickness) in the Z direction of the positive electrode lead foil 111a is larger (thicker) than that of the negative electrode lead foil 112a, and the dimension (thicker) of the positive electrode active material layer 111b is larger (thicker) than that of the negative electrode active material layer 112b. The multiple cell members 110 are stacked and arranged at intervals in the Z direction, and the substrates 121 of the biplates 120 are arranged in these intervals. In other words, the multiple cell members 110 are stacked with the substrates 121 of the biplates 120 sandwiched between them. The plurality of biplates 120, the first end plate 130, and the second end plate 140 are members for forming a plurality of spaces (cells) C that individually accommodate a plurality of cell members 110.
[0016] 2, biplate 120 is composed of substrate 121 having a rectangular planar shape, frame 122 covering the four end faces of substrate 121, and pillars 123 protruding perpendicularly from both sides of substrate 121, with substrate 121, frame 122, and pillars 123 being integrally formed from synthetic resin. Note that the number of pillars 123 protruding from each side of substrate 121 may be one or more. In the Z direction, the dimension of the frame body 122 is larger than the dimension (thickness) of the substrate 121, and the dimension between the protruding end faces of the pillar portions 123 is the same as the dimension of the frame body 122. By stacking multiple biplates 120 with the frame bodies 122 and pillar portions 123 in contact with each other, a space C is formed between the substrates 121, and the dimension of the space C in the Z direction is maintained by the pillar portions 123 in contact with each other.
[0017] The positive electrode lead foil 111a, the positive electrode active material layer 111b, the negative electrode lead foil 112a, the negative electrode active material layer 112b, and the separator 113 are respectively formed with through holes 111c, 111d, 112c, 112d, and 113a through which the columnar portion 123 passes. The substrate 121 of the biplate 120 has a plurality of through holes 121a extending perpendicular to the plate surface (in a direction intersecting the plate surface). A first recess 121b is formed on one surface of the substrate 121, and a second recess 121c is formed on the other surface. The depth of the first recess 121b is greater than the depth of the second recess 121c. The dimensions of the first recess 121b and the second recess 121c in the X and Y directions correspond to the dimensions of the positive electrode lead foil 111a and the negative electrode lead foil 112a in the X and Y directions.
[0018] The substrate 121 of the biplate 120 is disposed between adjacent cell members 110 in the Z direction. The positive electrode lead foil 111a of the cell member 110 is placed in the first recess 121b of the substrate 121 of the biplate 120 with an adhesive layer 150 interposed therebetween. The cover plate 170 is for covering the outer edge of the positive electrode lead foil 111a and is a thin frame with rectangular inner and outer outlines. The inner edge of the cover plate 170 overlaps the outer edge of the positive electrode lead foil 111a, and the outer edge of the cover plate 170 overlaps the periphery of the first recess 121b on one surface of the substrate 121. In other words, the rectangle forming the inner outline of the cover plate 170 is smaller than the rectangle forming the outer outline of the positive electrode active material layer 111b, and the rectangle forming the outer outline of the cover plate 170 is larger than the rectangle forming the opening surface of the first recess 121b.
[0019] The adhesive layer 150 wraps around from the end face of the positive electrode lead foil 111a to the outer edge of the opening side of the first recess 121b, and is also disposed between the inner edge of the cover plate 170 and the outer edge of the positive electrode lead foil 111a, and between the outer edge of the cover plate 170 and one surface of the substrate 121. In other words, the cover plate 170 is fixed by the adhesive layer 150 over the periphery of the first recess 121b on one surface of the substrate 121 and the outer edge of the positive electrode lead foil 111a. As a result, the outer edge of the positive electrode lead foil 111a is reliably covered by the cover plate 170 even at the boundary with the periphery of the first recess 121b.
[0020] Furthermore, the negative electrode lead foil 112a of the cell member 110 is disposed in the second recess 121c of the substrate 121 of the biplate 120 via an adhesive layer 150. The outer edge of the negative electrode lead foil 112a may also be covered with a cover plate similar to the cover plate 170 that covers the outer edge of the positive electrode lead foil 111a. A conductor 160 is disposed in the through-hole 121a of the substrate 121 of the biplate 120, and both end faces of the conductor 160 are in contact with and connected to the positive electrode lead foil 111a and the negative electrode lead foil 112a. In other words, the positive electrode lead foil 111a and the negative electrode lead foil 112a are electrically connected by the conductor 160. As a result, all of the multiple cell members 110 are electrically connected in series.
[0021] For example, as shown in FIGS. 4 and 5, the substrate 121 of the biplate 120 has a plurality of cylindrical through-holes 121a, and a conductor 160 is embedded in each through-hole 121a. The conductor 160 shown in FIGS. 4 and 5 consists of a disk-shaped large-diameter portion (middle portion) 161 and a pair of disk-shaped small-diameter portions (end portions) 162 integrally formed at both axial ends of the large-diameter portion 161. The thickness of the disk forming the small-diameter portion 162 is thinner than the thickness of the disk forming the large-diameter portion 161. The small-diameter portion 162 has a bonding surface 162a with the positive electrode lead foil 111a and the negative electrode lead foil 112a. The adhesive layer 150 is not present near the through-holes 121a.
[0022] A space 181 surrounded by the conductor 160, the positive electrode lead foil 111a, the through-hole 121a, and the adhesive layer 150 is formed on the side of the positive electrode lead foil 111a in the thickness direction of the substrate 121. A space 182 surrounded by the conductor 160, the negative electrode lead foil 112a, the through-hole 121a, and the adhesive layer 150 is formed on the side of the negative electrode lead foil 112a in the thickness direction of the substrate 121. The diameter A1 of the large diameter portion 161 is slightly smaller than the diameter of the through-hole 121a, and the ratio (A2 / A1) of the diameter A2 of the small diameter portion 162 to the diameter A1 of the large diameter portion 161 is, for example, 2 / 5. The ratio (S2 / S1) of the area S2 of the connection surface 162a of the small diameter portion 162 with the positive electrode lead foil 111a and the negative electrode lead foil 112a to the cross-sectional area S1 parallel to the connection surface 162a of the large diameter portion 161 is 0.01 or more and 0.50 or less. This ratio (S2 / S1) is preferably 0.03 or more and 0.30 or less.
[0023] 1, the first end plate 130 is composed of a substrate 131 that covers the positive electrode side of the cell member 110, a frame 132 that surrounds the side surface of the cell member 110, and pillars 133 that protrude perpendicularly from one surface of the substrate 131 (the surface facing the substrate 121 of the biplate 120 that is arranged closest to the positive electrode). The planar shape of the substrate 131 is rectangular, and the four end surfaces of the substrate 131 are covered with the frame 132, with the substrate 131, frame 132, and pillars 133 being integrally formed from a synthetic resin. The number of pillars 133 protruding from one surface of the substrate 131 may be one or more, and they should correspond to the pillars 123 of the biplate 120 that come into contact with the pillars 133.
[0024] In the Z direction, the dimension of frame body 132 is larger than the dimension (thickness) of substrate 131, and the dimension between the protruding end faces of column portion 133 is the same as the dimension of frame body 132. By stacking frame body 132 and column portion 133 in contact with frame body 122 and column portion 123 of biplate 120 arranged on the outermost side (positive electrode side), a space C is formed between substrate 121 of biplate 120 and substrate 131 of first endplate 130, and the dimension of space C in the Z direction is maintained by column portion 123 of biplate 120 and column portion 133 of first endplate 130, which are in contact with each other. The positive electrode lead foil 111a, positive electrode active material layer 111b, and separator 113 of the cell member 110 arranged on the outermost side (positive electrode side) have through holes 111c, 111d, and 113a formed therein, respectively, for allowing the columnar portion 133 to pass therethrough.
[0025] A recess 131b is formed on one surface of the substrate 131 of the first end plate 130. The dimensions of the recess 131b in the X and Y directions correspond to the dimensions of the positive electrode lead foil 111a in the X and Y directions. The positive electrode lead foil 111a of the cell member 110 is placed in the recess 131b of the substrate 131 of the first end plate 130 via an adhesive layer 150. Similarly to the substrate 121 of the biplate 120, a cover plate 170 is fixed to one surface of the substrate 131 by the adhesive layer 150, and the outer edge of the positive electrode lead foil 111a is securely covered by the cover plate 170, even at the boundary with the periphery of the recess 131b. The first end plate 130 also includes a positive electrode terminal electrically connected to the positive electrode lead foil 111a in the recess 131b.
[0026] The second end plate 140 is composed of a substrate 141 that covers the negative electrode side of the cell member 110, a frame 142 that surrounds the side surface of the cell member 110, and a pillar portion 143 that protrudes perpendicularly from one surface of the substrate 141 (the surface facing the substrate 121 of the biplate 120 that is arranged on the most negative electrode side). The planar shape of the substrate 141 is rectangular, and the four end surfaces of the substrate 141 are covered with the frame 142, with the substrate 141, frame 142, and pillar portion 143 being integrally formed from a synthetic resin. The number of pillar portions 143 protruding from one surface of the substrate 141 may be one or more, and they should correspond to the pillar portions 123 of the biplate 120 that come into contact with the pillar portion 143.
[0027] In the Z direction, the dimension of frame body 142 is larger than the dimension (thickness) of substrate 131, and the dimension between the protruding end faces of two pillar portions 143 is the same as the dimension of frame body 142. By stacking frame body 142 and pillar portions 143 in contact with frame body 122 and pillar portions 123 of biplate 120 arranged on the outermost side (negative electrode side), a space C is formed between substrate 121 of biplate 120 and substrate 141 of second end plate 140, and the dimension of space C in the Z direction is maintained by pillar portions 123 of biplate 120 and pillar portions 143 of second end plate 140, which are in contact with each other. The negative electrode lead foil 112a, the negative electrode active material layer 112b, and the separator 113 of the cell member 110 arranged on the outermost side (negative electrode side) have through holes 112c, 112d, and 113a formed therein, respectively, for allowing the column portion 143 to pass therethrough.
[0028] A recess 141b is formed on one surface of the substrate 141 of the second end plate 140. The dimensions of the recess 141b in the X and Y directions correspond to the dimensions of the negative electrode lead foil 112a in the X and Y directions. The negative electrode lead foil 112a of the cell member 110 is placed in the recess 141b of the substrate 141 of the second end plate 140 with an adhesive layer 150 interposed therebetween. The second end plate 140 also includes a negative electrode terminal electrically connected to the negative electrode lead foil 112a in the recess 141b.
[0029] The biplate 120, first end plate 130, second end plate 140, and cover plate 170 are made of resin, such as a thermoplastic resin. Examples of thermoplastic resins that can be used include acrylonitrile-butadiene-styrene copolymer (ABS resin) and polypropylene. These thermoplastic resins have excellent moldability and sulfuric acid resistance. Therefore, by forming them from these thermoplastic resins, the biplate 120, first end plate 130, second end plate 140, and cover plate 170 are less susceptible to decomposition, deterioration, corrosion, and the like that may occur when they come into contact with the electrolyte.
[0030] As can be seen from the above description, the biplate 120 is a space-forming member that includes a substrate 121 that covers both the positive and negative sides of the cell member 110, and a frame 122 that surrounds the side surfaces of the cell member 110. The first end plate 130 is a space-forming member that includes a substrate 131 that covers the positive side of the cell member 110, and a frame 132 that surrounds the side surfaces of the cell member 110. The second end plate 140 is a space-forming member that includes a substrate 141 that covers the negative side of the cell member 110, and a frame 142 that surrounds the side surfaces of the cell member 110.
[0031] [Regarding the biplate and first and second end plate frames] In the following, when describing the configuration common to the frame body 122 of the biplate 120, the frame body 132 of the first end plate, and the frame body 142 of the second end plate, these frame bodies 122, 132, 142 will be described simply as "frame bodies."
[0032] 1 to 3, the four end faces (outer surfaces; FIG. 3 shows one end face in the X direction) of the frame are formed with a large number of recesses 12. Recesses 12 have one face 12a and the other face 12b that face each other in the Z direction, one face 12c and the other face 12d that face each other in the X direction or the Y direction, and an uneven bottom face 12e. In other words, the frame body has a wall portion 13 that separates adjacent recesses 12, a first plate portion 14 that continuously forms one face 12a of the multiple recesses 12 that face each other in the Z direction, a second plate portion 15 that continuously forms the Z direction and other faces 12b of the multiple recesses 12, and a leg portion 16 that extends from the second plate portion 15 to the opposite side of the first plate portion 14 (upper side in Figures 1 to 3).
[0033] The surface of first plate portion 14 opposite second plate portion 15 (lower side in FIGS. 1 to 3) has both ends in the X direction chamfered, and the dimension L2 in the X direction of surface 144 excluding the chamfered portion (the other opposing surface) is greater than the dimension L1 in the X direction of surface 164 of leg portion 16 opposite second plate portion 15 (upper side in FIGS. 1 to 3). The ratio (L2 / L1) of the two dimensions is preferably 5 / 4 or more and 2 or less, and more preferably 3 / 2 (i.e., L1:L2=2:3), and for example, L1 is 4 mm and L2 is 6 mm. In addition, bottom surface 12e has a step, and surface 12f along the step is located at the middle of recess 12 in the Z direction (the stacking direction of cell members 110). Line E in FIG. 2 is a line indicating the position of surface 12f along the step in the Z direction. In other words, bottom surface 12e has first bottom surface 12g and second bottom surface 12h that have the same area but different depths. The depth (dimension in the X direction) of first bottom surface 12g, which is the bottom surface on the positive electrode 111 side of biplate 120, is shallower than the depth of second bottom surface 12h, which is the bottom surface on the negative electrode 112 side of biplate 120.
[0034] The bipolar lead-acid battery 100 has a joining structure formed by vibration welding of opposing surfaces of the frame bodies, and in this joining structure, the opposing surfaces of the frame bodies, i.e., the surface 164 of the leg portion 16 and the surface 144 of the first plate portion 14, are directly joined by vibration welding. The entire surface (one opposing surface) 164 of the leg portion 16 is a contact surface, and the surface (the other opposing surface) 144 of the first plate portion 14 has non-contact surfaces 144a, 144b that do not contact the surface 164 of the leg portion 16, located on the outer and inner sides of the surface 164 of the leg portion 16 in a direction along the substrate surface (the X direction in the cross section shown in FIGS. 1 to 3 ). Furthermore, reinforcing portions 17 are present at corners formed by the non-contact surfaces 144a, 144b of the first plate portion 14 that do not contact the surface 164 of the leg portion 16 and the outer and inner sides of the leg portion 16.
[0035] One of the four end faces of the frame has a notch formed therein to form an injection hole for introducing an electrolyte into space C. When this notch is formed on the side face of the frame on the right side in FIG. 1, for example, it penetrates the frame in the X direction and has a semicircular recessed shape from both end faces of the frame in the Z direction. This notch is not involved in the above-described joining structure, and when the above-described joining structure is formed by vibration welding, the circular injection hole is formed by the opposing notch.
[0036] [Manufacturing method] The bipolar lead-acid battery 100 of this embodiment can be manufactured by a method including the following steps.
[0037] <Production process of biplate with lead foil for positive and negative electrodes> First, the substrate 121 of the biplate 120 is placed on a workbench with the first recess 121b facing up, adhesive is applied to the first recess 121b, and the positive electrode lead foil 111a is placed into the first recess 121b. At this time, the column portion 123 of the biplate 120 is passed through the through hole 111c of the positive electrode lead foil 111a. The adhesive is hardened, and the positive electrode lead foil 111a is attached to one surface of the substrate 121. Next, the substrate 121 is placed on a workbench with the second recess 121c facing upward, and the conductor 160 is inserted into the through-hole 121a. Next, adhesive is applied to the second recess 121c, and the negative electrode lead foil 112a is placed into the second recess 121c. At this time, the column portion 123 of the biplate 120 is passed through the through-hole 112c of the negative electrode lead foil 112a. The adhesive is cured, and the negative electrode lead foil 112a is attached to the other surface of the substrate 121.
[0038] Next, the substrate 121 is placed on a workbench with the first recess 121b side facing up, and adhesive is applied to the outer edge of the positive electrode lead foil 111a and the upper surface of the substrate 121 where the edge of the first recess 121b will be, and the cover plate 170 is placed on top and the adhesive is cured. This fixes the cover plate 170 over the outer edge of the positive electrode lead foil 111a and the portion of the substrate 121 that is continuous with that outer edge (the peripheral edge of the first recess 121b). The dimension (L3) of the portion located on the outer edge of the positive electrode lead foil 111a is made larger than the dimension (L4) of the portion located on the portion of the substrate 121 that is continuous with the outer edge (for example, L3:L4 = 5:4).
[0039] Next, resistance welding is performed to connect the positive electrode lead foil 111a and the negative electrode lead foil 112a with the conductor 160. This resistance welding is performed by passing a current through the entire contact surface between the small diameter portion 162 and the positive electrode lead foil 111a and the negative electrode lead foil 112a. As a result, the entire contact surface melts and becomes a connection surface. In this way, a biplate 120 with lead foils for positive and negative electrodes is obtained. The required number of biplates 120 with lead foils for positive and negative electrodes are prepared.
[0040] <Production process of end plates with lead foil for positive electrodes> The substrate 131 of the first end plate 130 is placed on a workbench with the recess 131b facing up, adhesive is applied to the recess 131b, and the positive electrode lead foil 111a is placed in the recess 131b and the adhesive is allowed to harden. At this time, the column portion 133 of the end plate 130 is passed through the through hole 111c of the positive electrode lead foil 111a. The adhesive is allowed to harden, and the positive electrode lead foil 111a is attached to one surface of the substrate 131.
[0041] Next, adhesive is applied to the outer edge of the positive electrode lead foil 111a and to the upper surface of the substrate 131, which will be the edge of the recess 131b, and the cover plate 170 is placed on top of it and the adhesive is cured. This fixes the cover plate 170 over the outer edge of the positive electrode lead foil 111a and the portion of the substrate 131 that is continuous with the outer edge. The dimension (L3) of the portion located on the outer edge of the positive electrode lead foil 111a is made larger than the dimension (L4) of the portion located on the portion of the substrate 131 that is continuous with the outer edge (for example, L3:L4 = 5:4). This provides a positive electrode end plate with lead foil.
[0042] <Production process of end plates with lead foil for negative electrodes> The substrate 141 of the second end plate 140 is placed on a workbench with the recess 141b facing up, adhesive is applied to the recess 141b, and the negative electrode lead foil 112a is placed in the recess 141b and the adhesive is allowed to harden. At this time, the column portions 143 of the second end plate 140 are passed through the through holes 112c of the negative electrode lead foil 112a. The adhesive is allowed to harden, resulting in the second end plate 140 with the negative electrode lead foil 112a attached to one surface of the substrate 141.
[0043] <The process of stacking and joining plates> First, the first end plate 130 to which the positive electrode lead foil 111a and the cover plate 170 are fixed is placed on a workbench with the positive electrode lead foil 111a facing up, and the positive electrode active material layer 111b is placed inside the cover plate 170 and placed on the positive electrode lead foil 111a. At this time, the column portions 133 of the first end plate 130 are passed through the through holes 111d of the positive electrode active material layer 111b. Next, the separator 113 and the negative electrode active material layer 112b are placed on the positive electrode active material layer 111b. Next, the biplate 120 with the positive and negative lead foils is placed with the negative lead foil 112a side facing downwards on the first end plate 130. At this time, the column portions 123 of the biplate 120 are passed through the through holes 113a of the separator 113 and the through holes 112d of the negative active material layer 112b, and placed on the column portions 133 of the first end plate 130, and the first plate portion 14 of the frame 122 of the biplate 120 is placed on the legs 16 of the frame 132 of the first end plate 130.
[0044] In this state, the first end plate 130 is fixed, and vibration welding is performed while the biplate 120 is vibrated in the diagonal direction of the substrate 121 with an amplitude of 1.6 mm. As a result, the first plate portion 14 of the frame 122 of the biplate 120 is joined onto the leg portions 16 of the frame 132 of the first end plate 130, and the column portions 123 of the biplate 120 are joined onto the column portions 133 of the first end plate 130. As a result, the biplate 120 is joined onto the first end plate 130, the cell member 110 is placed in the space C formed by the first end plate 130 and the biplate 120, and the positive electrode lead foil 111a is exposed on the upper surface of the biplate 120.
[0045] Next, the positive electrode active material layer 111b, separator 113, and negative electrode active material layer 112b are placed in this order on the resulting assembly in which the biplate 120 is bonded to the first end plate 130. Then, another biplate 120 with positive and negative lead foils is placed with the negative lead foil 112a side facing downward. In this state, the assembly is fixed in place, and vibration welding is performed on the other biplate 120 with positive and negative lead foils while vibrating it in the diagonal direction of the substrate 121 with an amplitude of 1.6 mm. This vibration welding process is continued until the required number of biplates 120 are bonded to the first end plate 130.
[0046] Finally, the positive electrode active material layer 111b, separator 113, and negative electrode active material layer 112b are placed in this order on the uppermost biplate 120 of the combined assembly in which all of the biplates 120 are joined, and then the second end plate 140 is placed with the negative electrode lead foil 112a side facing downward. In this state, the combined assembly is fixed, and vibration welding is performed while the second end plate 140 is vibrated in the diagonal direction of the substrate 141 with an amplitude of 1.6 mm. This results in the second end plate 140 being joined on top of the uppermost biplate 120 of the combined assembly in which all of the biplates 120 are joined. In addition, during the vibration welding process, the synthetic resin forming the first plate portion 14 and the leg portion 16 melts and moves between the non-contact surfaces 144a, 144b of the first plate portion 14 and the outer and inner surfaces of the leg portion 16, where it cools and solidifies, thereby forming reinforcing portions 17 at the corners formed by the non-contact surfaces 144a, 144b and the outer and inner surfaces of the leg portion 16.
[0047] <Electrolyte insertion process> In the process of stacking and joining the plates together, a joining structure is formed by vibration welding the opposing surfaces of the frame bodies, and circular injection holes are formed by the cutouts of the opposing frame bodies at the position of each space C on, for example, one end surface in the X direction of the bipolar lead-acid battery 100. Electrolyte is poured into each space C through these injection holes, and the separators 113 are impregnated with the electrolyte. The injection hole may be formed by providing a notch in the frame body beforehand, as described above, or may be opened using a drill or the like after the frame body is joined.
[0048] [Action, effect] The bipolar lead-acid battery 100 of the embodiment has a joining structure (joint structure by direct joining) by vibration welding the opposing surfaces of the frame bodies, and in this joining structure, one opposing surface 144 is a contact surface over the entire surface, and the other opposing surface 164 has non-contact surfaces 144a, 144b on the outer and inner sides of the one opposing surface 144 in the X and Y directions (directions along the substrate surfaces). Furthermore, L1 is 4 mm and L2 is 6 mm (i.e., L2 / L1 = 5 / 4 or more and 2 or less), and vibration welding is performed while vibrating the substrates 121, 141 in the diagonal direction with an amplitude of 1.6 mm, so that the opposing surfaces of the frame bodies are always in full contact with each other during vibration welding. Therefore, the joint strength between the opposing surfaces of the frame bodies is higher than in a bipolar lead-acid battery configured such that the opposing surfaces of the frame bodies do not always come into full contact with each other during vibration welding. Also, the presence of the reinforcing portion 17 makes the joint strength higher than in a case where the reinforcing portion 17 is not present.
[0049] In the bipolar lead-acid battery 100 of the embodiment, the numerous recesses 12 formed on the four end faces (outer surfaces) of the frame increase the surface area of the end faces of the frame that are exposed to the outside air, resulting in higher heat dissipation compared to a bipolar lead-acid battery that does not have such recesses. Also, because the bottom surfaces 12e of the recesses 12 have steps, the surface area of the end faces of the frame that are exposed to the outside air increases compared to when the bottom surfaces of the recesses 12 are flat, resulting in higher heat dissipation. Furthermore, since the surface 12f that follows the step of the bottom surface 12e of the recess 12 is located at the middle position of the recess 12 in the Z direction, more effective heat dissipation is achieved at the position where heat from the positive electrode 111 side and the negative electrode 112 side of the substrate 121 converge, compared to when the surface 12f is located at a position shifted from the middle position of the recess 12 in the Z direction. As a result, the bipolar lead-acid battery 100 of the embodiment can prevent deterioration of battery performance due to heat buildup inside the battery.
[0050] Furthermore, when recesses are provided on the end surfaces of the frame, there is a concern that the mechanical strength of the frame may be reduced against pressure during vibration welding. In contrast, in the bipolar lead-acid battery 100 of the embodiment, the wall portions 13 extending in the Z direction, which are created by providing multiple recesses 12 in the X and Y directions, reduce the reduction in the mechanical strength of the frame against pressure during vibration welding, thereby suppressing deformation. As a result, the reliability of joining by vibration welding is increased. Furthermore, since the cover plate 170 reliably covers the outer edge of the positive electrode lead foil 111a, even at the boundary with the periphery of the first recess 121b, the electrolyte is prevented from penetrating the edge of the positive electrode lead foil 111a, even if the positive electrode 111 is corroded by sulfuric acid in the electrolyte and growth occurs. As a result, the electrolyte is prevented from penetrating the interface between the positive electrode lead foil 111a and the adhesive layer 150 and reaching the negative electrode lead foil 111a through the gap between the through-hole 121a of the substrate 121 and the conductor 160, and the bipolar lead-acid battery 100 of the embodiment also has the effect of preventing short circuits and making it less likely for battery performance to deteriorate.
[0051] Furthermore, the area S2 of the connection surface 162a of the conductor 160 with the positive electrode lead foil 111a and the negative electrode lead foil 112a is smaller than the cross-sectional area S1 of the large diameter portion 161, which is the intermediate portion (S1>S2), and resistance welding is performed by passing current through the entire contact surface between the small diameter portion 162 and the positive electrode lead foil 111a and the negative electrode lead foil 112a, so that the entire contact surface melts and becomes a connection surface, and the surface of the large diameter portion 161 on the positive electrode lead foil 111a side and the surface on the negative electrode lead foil 112a side do not melt. In contrast, if the diameter of the through hole 121a is made slightly larger than the diameter A2 of the small diameter portion 162, and a conductor consisting of a cylindrical body having the same diameter as the small diameter portion 162 and the same axial dimension as the conductor 160 is used, and resistance welding is performed by passing current through the entire contact surface between this conductor and the positive electrode lead foil 111a and the negative electrode lead foil 112a (first case), the entire surface of the conductor on the positive electrode lead foil 111a side and the entire surface of the conductor on the negative electrode lead foil 112a side will melt and become the connection surface.
[0052] Compared to the first case, in the bipolar lead-acid battery 100 of this embodiment, only a portion of the surface (small diameter portion 162) of the conductor 160 on the positive electrode lead foil 111a side and a portion of the surface (small diameter portion 162) of the conductor 160 on the negative electrode lead foil 112a side melt to form a connection surface, so that the volume of the conductor increases only in the portion that is outside the small diameter portion 162 of the large diameter portion 161 in plan view, and the heat capacity of the conductor increases by the amount of this increase in volume. In other words, compared to the first case, this portion acts as a heat dissipation promoting portion during resistance welding, making it easier for heat to be released from inside the conductor, making it less likely for heat to be trapped in the conductor, and making it more difficult for heat to be transferred from the conductor to the periphery of the through hole 121a.
[0053] On the other hand, when a cylindrical conductor having the same diameter as the large diameter portion 161 and the same axial dimension as the conductor 160 is used and resistance welding is performed by passing current through the entire contact surface between this conductor and the positive lead foil 111a and the negative lead foil 112a (second case), the entire surface of the conductor on the positive lead foil 111a side and the entire surface of the conductor on the negative lead foil 112a side are melted and become the connection surface. Compared to the second case, the bipolar lead-acid battery 100 of this embodiment has a smaller area of the conductor to be melted and used as the connection surface, so the amount of heat generated during resistance welding is smaller. As a result, the amount of heat transferred to the conductor is reduced, making it less likely for heat to be trapped in the conductor and for heat to be transferred from the conductor to the periphery of the through hole 121a.
[0054] In this way, in the bipolar lead-acid battery 100 of the embodiment, since the conductor 160 satisfies S1>S2, the resin substrate 121 is prevented from becoming too hot and heat is prevented from being trapped inside the conductor 160 compared to when S1=S2 (the first and second cases), thereby preventing deterioration of battery performance and corrosion caused by gas accumulation. Furthermore, in the bipolar lead-acid battery 100 of the embodiment, the ratio (S2 / S1) of the area S2 of the connection surface 162a to the cross-sectional area S1 of the large diameter portion 161 is 0.01 or more and 0.50 or less, so that the thermal performance during resistance welding (the performance of making it difficult for heat to be trapped in the conductor and making it difficult for heat to be transferred from the conductor to the periphery of the through hole) is particularly high, and the electrical conductivity is also good. A smaller ratio (S2 / S1) is preferable in terms of thermal performance during resistance welding, but if the ratio (S2 / S1) is too small, it is disadvantageous in terms of electrical conductivity. In order to achieve both thermal performance and electrical conductivity during resistance welding, the ratio (S2 / S1) is preferably 0.01 or more and 0.50 or less.
[0055] [Differences between the embodiment and one aspect of the present invention] In the above embodiment, both ends of the conductor 160 are small-diameter portions 162 (ends having a connection surface with a smaller cross-sectional area than the intermediate portion), but only one end may be a small-diameter portion. The diameter of the small-diameter portion may decrease from the large-diameter portion toward the contact surface, or the conductor may have a shape in which the diameter decreases from one contact surface to the other. When the conductor has a shape in which the diameter decreases from one contact surface to the other, the cross-sectional area parallel to the connection surface of the intermediate portion is the cross-sectional area at the center position in the thickness direction of the substrate.
[0056] Furthermore, in the above embodiment, in order to make it easier to insert the conductor 160 into the through hole 121a of the substrate 121, the diameter of the intermediate portion 161 of the conductor 160 is made slightly smaller than the diameter of the through hole 121a, but the diameter of the intermediate portion 161 of the conductor 160 may be made even smaller than the diameter of the through hole 121a, thereby providing a clear gap between the intermediate portion 161 and the through hole 121a. In the above embodiment, the conductor 160 is composed of the large diameter portion 161 and the small diameter portion 162, and the entire contact surface of the small diameter portion 162 with the positive electrode lead foil 111a and the negative electrode lead foil 111a is used as the connection surface, but the conductor may be a cylindrical member with a single diameter, and only a part of the contact surface of the conductor with the positive electrode lead foil 111a and the negative electrode lead foil 111a may be used as the connection surface. In this case, the spaces 181 and 182 are not formed.
[0057] In the above embodiment, a bipolar lead-acid battery has been described in which the positive electrode current collector plate is made of positive lead foil and the negative electrode current collector plate is made of negative lead foil. However, one aspect of the present invention can also be applied to a bipolar lead-acid battery in which the positive electrode current collector plate and the negative electrode current collector plate are made of a metal other than lead (e.g., aluminum, copper, or nickel), an alloy, or a conductive resin. [Explanation of symbols]
[0058] 12 Recessed portion of frame 12e Uneven bottom of recess 12th floor: Surface along the step 12g First bottom 12h Second bottom 13 Wall separating adjacent recesses 14 First plate 15 Second plate 16 Legs 17 Reinforcement 100 Bipolar lead-acid battery 110 Cell member 111 Positive electrode 112 Negative electrode 111a Positive electrode lead foil (positive electrode current collector plate) 112a Lead foil for negative electrode (negative electrode current collector plate) 111b Active material layer for positive electrode 112b Active material layer for negative electrode 113 Separator 120 Biplate 121 Biplate substrate 121a Through hole in board 121b First recess of substrate 121c second recess in the substrate 122 Biplate frame 130 First end plate 131 First end plate substrate 132 First end plate frame 140 Second End Plate 141 Second end plate substrate 142 Second end plate frame 144a,144b Non-contact surface 144 First plate surface (opposing surface) 150 Adhesive layer 160 Conductor 161 Large diameter part (middle part) of conductor 162 Small diameter part of conductor (small formed end) 162a Small diameter connection surface 164 Leg surface (one of the opposing surfaces) 170 Cover Plate C Cell (space for accommodating cell components) E Line indicating the position of the surface along the step in the Z direction
Claims
1. a plurality of cell members each including a positive electrode having a positive electrode current collector and a positive electrode active material layer, a negative electrode having a negative electrode current collector and a negative electrode active material layer, and a separator interposed between the positive electrode and the negative electrode, the cell members being stacked and arranged with a gap between them; a plurality of space forming members that form a plurality of spaces that individually accommodate the plurality of cell members; and the space forming member includes a substrate that covers at least one of the positive electrode side and the negative electrode side of the cell member, and a frame that surrounds a side surface of the cell member, The cell members and the substrates of the space forming members are arranged in an alternately stacked state, The frame bodies are joined together, the substrate disposed between the cell members has a through hole extending in a direction intersecting with the plate surface, the conductors disposed in the through holes electrically connect the positive electrode current collector plates and the negative electrode current collector plates of adjacent cell members, thereby electrically connecting the plurality of cell members in series; A bipolar storage battery, wherein an area S2 of at least one of the connection surface of the conductor with the positive electrode current collector plate and the connection surface of the conductor with the negative electrode current collector plate is smaller than a cross-sectional area S1 of the conductor parallel to the connection surface of the middle part of the conductor in the plate thickness direction of the substrate.
2. 2. The bipolar storage battery according to claim 1, wherein a ratio (S2 / S1) of an area S2 of the connection surface, which is smaller than the cross-sectional area S1 of the intermediate portion, to the cross-sectional area S1 of the intermediate portion is 0.01 or more and 0.50 or less.
3. 3. The bipolar storage battery according to claim 1, wherein said positive electrode current collector plate is made of positive electrode lead foil, and said negative electrode current collector plate is made of negative electrode lead foil.
Citation Information
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