The present invention relates to a gasket for a secondary battery.
In a stacked secondary battery including many cell stacks on one another, each cell stack includes a positive electrode plate and a negative electrode plate as flat stack members, and a separator placed between the electrode plates. The spaces between the electrode plates and the separator are filled with an active Material. The stack members are clamped together in the stacking direction with bolts and nuts, for example.
As shown in
As shown in
Known framed gaskets 101 used with the stack members 201 stacked on one another at varying intervals (tightening margins) cannot have appropriate sealing surfaces, and thus cannot achieve stable sealing performance.
Increasing the thickness of the sealants 104 to form sealing surfaces may increase the sealing width when the sealants 104 are compressed, and cause the sealants 104 to enter the area for the active material and decrease the elective areas of the electrode plates.
One or more aspects of the present invention are directed to a secondary battery gasket for use between stack members stacked on one another at varying intervals (tightening margins) to allow the stack members to have appropriate sealing surfaces and achieve stable sealing performance, and to minimize the increase in the sealing width when a sealant is compressed.
One or more aspects of the embodiment provides a gasket for a secondary battery placeable between stack members of a secondary battery, the gasket including:
The gasket for a secondary battery according to the above embodiments of the present invention allows stack members stacked on one another at varying intervals (tightening margins) to have appropriate sealing surfaces and to achieve stable sealing performance, and to minimize the increase in the sealing width when a sealant is compressed.
Embodiments of the present invention will now be described below with reference to the drawings.
As shown in
The spaces between the electrode plates and the separator are filled with an active material.
Each gasket 1 for a secondary battery includes a flat frame 2 and an annular sealant 4. The frame 2 is shaped to extend along a sealing target portion 202 of the stack member 201 at the periphery. The sealant 4 is bonded to a sealing edge (inner periphery) 3 of the frame 2. The frame 2 is formed from a hard material. The frame 2 is preferably formed from a metal, a synthetic resin, a fiber reinforced synthetic resin, or fiber reinforced rubber. The sealant 4 is formed from an elastic material, such as rubber, or a synthetic rubber material (a low-hardness material). The sealant 4 is bonded to the frame 2 by, for example, integral vulcanization molding.
The gasket 1 for a secondary battery includes the frame 2, and is easily attachable. The frame 2 can hold the sealant 4 at the initial accurate positions, and reduce misalignment of the sealing surfaces of the stack members 201 stacked on one another when the sealant 4 is compressed. This structure allows the stack members 201 to be less likely to bend, and thus can provide appropriate tightening margins.
The sealant 4 includes an annular sealing bead 4a. The sealing bead 4a extends along the entire length of the sealing edge 3, and has a thickness greater than the interval between two adjacent stack members 201. The sealing bead 4a is an annular ridge on each of the front and back surfaces of the sealant 4.
The sealing bead 4a includes at least one annular recess 4b extending along the entire length of the sealing edge 3. In the present embodiment, a single annular recess 4b is formed on each of the front and back surfaces of the sealant 4. The annular recesses 4b on the front and back surfaces of the sealant 4 have the same shape and are located opposite to each other across the sealant 4.
Each annular recess 4b in the sealing bead 4a defines two seal parts 4c with the annular recess 4b between them.
The sealing bead 4a and the annular recesses 4b are formed integrally with the sealant 4 in a rubber mold when the frame 2 and the sealant 4 are formed by integral vulcanization molding.
As shown in
As shown in
The structure according to the present embodiment in
As shown in
As shown in
When two or more annular recesses 4b are formed, different numbers of annular recesses 4b may be formed on the front and back surfaces of the sealant 4. As shown in
The annular recesses 4b varying in their number, positions, or shapes between the front and back surfaces of the sealant 4 provide the front and back surfaces of the sealant 4 with different appropriate seal pressures. This structure accommodates asymmetry (such as curvature) between the front and back surfaces of the stack members 201.
When a sealant 4 of a gasket 1 for a secondary battery is compressed, a portion of the sealant 4 (near a sealing edge 3) may deform and be placed between the frame 2 and the stack member 201, as shown in
A frame 2 in the present embodiment includes a recess 2a on its surface near the sealing edge 3. The recess 2a extends along the entire length of the sealing edge 3. The frame 2 including the recess 2a has a thickness near the sealing edge 3 smaller than the interval between the adjacent stack members 201 when the seating beads 4a are compressed.
The thinner portion near the sealing edge 3 forms a space between the portion near the sealing edge 3 and the stack member 201. This prevents a portion of the sealant 4 from being placed between the frame 2 and the stack member 201. This allows the sealant 4 to be compressed to a predetermined thickness. The stack members 201 can thus have appropriate sealing surfaces and achieve stable sealing performance.
The recess 2a is formed by, for example, squeezing the frame 2 in a rubber mold when the frame 2 and the sealant 4 are formed by integral vulcanization molding. In this manner, the recess 2a can be easily formed on the frame 2.
A frame 2 in the present embodiment includes recesses 2a and 2b formed on each of the front and back surfaces of the frame 2 near the sealing edge 3. The frame 2 including the recesses 2a and 2b has a thickness near the sealing edge 3 smaller than the interval between the adjacent stack members 201 when the sealing beads 4a are compressed.
The thinner portion near the sealing edge 3 forms spaces between the portions near the sealing edge 3 and the stack members 201 on both the front and back surfaces of the frame 2. This prevents a portion of the sealant 4 from being placed between the frame 2 and the stack members 201. This allows the sealant 4 to be compressed to a predetermined thickness. The stack members 201 can thus have appropriate sealing surfaces and achieve stable sealing performance.
The recesses 2a and 2b are formed by, for example, squeezing the frame 2 in a rubber mold when the frame 2 and the sealant 4 are formed by integral vulcanization molding. In this manner, the recesses 2a and 2b can be easily formed on the frame 2.
1 gasket for secondary battery
2 frame
2
a,
2
b recess
3 sealing edge
4 sealant
4
a sealing bead
4
b annular recess
4
c seal part
201 stack member
202 sealing target portion
Number | Date | Country | Kind |
---|---|---|---|
2017-136589 | Jul 2017 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2018/023867 | 6/22/2018 | WO | 00 |