Battery cell
The battery cell design uses a trapezoidal and triangular insulating sheet configuration to elevate water intrusion paths and block entry points, effectively preventing water ingress and enhancing reliability against short circuits or leakage.
Patent Information
- Application Number
- JP2023064672
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-04-12
- Publication Date
- 2025-09-03
- Estimated Expiration
- 2043-04-12
AI Technical Summary
There is a concern that water intrusion into battery cells with a rectangular parallelepiped case body can lead to short circuits or leakage currents due to condensation seeping through the folded portions of the insulating sheet.
The battery cell design incorporates a strip-shaped insulating sheet with a trapezoidal portion bonded to the second side surface and a triangular portion overlapping it, setting the water intrusion path higher than the bottom surface, and using the adhesive surface of the second side portion to block water entry through the upper edge of the trapezoidal portion.
This configuration effectively prevents water intrusion into the battery cell, enhancing its reliability by blocking water penetration paths and reducing the risk of short circuits or leakage currents.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a battery cell. [Background technology]
[0002] For example, Japanese Patent Application Laid-Open No. 2013-33668 (Patent Document 1) discloses a battery cell that includes a rectangular outer can and an insulating film that covers the outer can. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-33668 Summary of the Invention [Problem to be solved by the invention]
[0004] As disclosed in the above-mentioned Patent Document 1, a case body having a rectangular parallelepiped appearance and a folding Ge In such a battery cell, there is a concern that if water such as condensation water seeps into the case body from the folded portion of the insulating sheet, a short circuit current or leakage current may occur.
[0005] SUMMARY OF THE INVENTION An object of the present invention is to solve the above-mentioned problems and to provide a battery cell that can more reliably prevent water intrusion. [Means for solving the problem]
[0006] [1] A case body having a rectangular parallelepiped appearance, which has a bottom surface, a pair of first side surfaces each rising from the bottom surface and facing each other, and a pair of second side surfaces each rising from the bottom surface and having an area smaller than each of the first side surfaces, and an adhesive applied to one of the front and back surfaces, which can be folded. Geand a strip-shaped insulating sheet that covers the case body by being attached to the second side surface, the second side surface including a first side that forms a boundary with the bottom surface, and a pair of second sides that rise from the first side and form boundaries with the pair of first side surfaces, the insulating sheet having a bottom portion that is bonded to the bottom surface, a pair of first side portions that are bonded to the pair of first side surfaces, respectively, and a trapezoidal shape that is folded from the bottom portion along the first sides, with the first side as a lower side, and including a pair of first oblique sides that extend from intersections of the first side and each of the second sides in oblique directions relative to each of the second sides, and a trapezoidal portion that is bonded to the second side surface, and a pair of first oblique sides that are folded from the trapezoidal portion along the pair of first oblique sides. Ge and a pair of triangular portions overlapping with the trapezoidal portion, each of the triangular portions including the first oblique side, a second oblique side extending from an intersection of the first side and each of the second sides between the first oblique side and the first side, and a third oblique side connecting the first oblique side and the second oblique side, and the insulating sheet is folded from the triangular portion along the pair of second oblique sides. Ge and folded from the pair of first side portions along the second side. Ge the battery cell further having a pair of second side portions overlapping the second side surface.
[0007] With this battery cell configured, the insulating sheet has a trapezoidal portion that is bonded to the second side surface of the case body, which allows the water intrusion path from the outside to the second side surface to be set at a higher position than the bottom surface of the case body. Furthermore, the insulating sheet has a triangular portion that overlaps the trapezoidal portion, which allows the adhesive surface of the second side portion to be used to block the water intrusion path to the second side surface of the case body through the upper edge of the trapezoidal portion. These features more reliably prevent water from infiltrating the battery cell from the outside.
[0008] [2] The battery cell described in [1], wherein the trapezoidal portion further includes an upper edge extending parallel to the lower edge and connecting the pair of first oblique edges, the pair of second side edges include overlapping portions that overlap each other on the second side surface, and the length of the upper edge is equal to or greater than the length of the overlapping portions in the direction in which the upper edge extends.
[0009] A battery cell configured in this manner can avoid interference between the first oblique sides corresponding to the folded portions of the trapezoidal and triangular portions and the second side portions.
[0010] [3] The battery cell according to [1] or [2], wherein the trapezoidal portion further includes an upper side extending parallel to the lower side and connecting the pair of first oblique sides, and the length between the lower side and the upper side is equal to or greater than the length of the lower side.
[0011] With a battery cell configured in this manner, the path for water to enter from the outside into the second side surface of the case body can be set at a higher position from the bottom surface of the case body. [Effects of the Invention]
[0012] As described above, according to the present invention, it is possible to provide a battery cell that can more reliably prevent water intrusion. [Brief explanation of the drawings]
[0013] [Figure 1] 1 is a perspective view showing a battery cell according to an embodiment of the present invention. [Figure 2] 2 is a side view showing the battery cell as viewed in the direction indicated by the arrow II in FIG. 1. [Figure 3] 2 is a perspective view showing a first step in assembling the battery cell in FIG. 1. FIG. [Figure 4] 1. FIG. 4 is a side view showing a second step in assembling the battery cell in FIG. [Figure 5] 1. FIG. 4 is a side view showing a third step in assembling the battery cell in FIG. DETAILED DESCRIPTION OF THE INVENTION
[0014] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will be described with reference to the accompanying drawings, in which the same or corresponding elements are designated by the same reference numerals.
[0015] Fig. 1 is a perspective view showing a battery cell according to an embodiment of the present invention. Referring to Fig. 1, battery cell 100 according to the present embodiment is a lithium-ion battery. Battery cell 100 has a power density of 8000 W / L or more. Battery cell 100 is rectangular and has a thin plate shape in the shape of a rectangular parallelepiped.
[0016] In this specification, for the convenience of explaining the structure of the battery cell 100, the axis extending in the thickness direction of the battery cell 100 is referred to as the "Y axis," the axis extending perpendicular to the Y axis and in the vertical direction is referred to as the "Z axis," and the axis extending perpendicular to the Y axis and the Z axis is referred to as the "X axis."
[0017] Typically, a battery module is configured by stacking a plurality of battery cells 100 in the Y-axis direction and electrically connecting them in series. The battery module is installed as a driving power source in vehicles such as hybrid electric vehicles (HEVs), plug-in hybrid electric vehicles (PHEVs), and battery electric vehicles (BEVs).
[0018] Fig. 2 is a side view showing the battery cell as seen in the direction indicated by arrow II in Fig. 1. Fig. 3 is a perspective view showing a first step in assembling the battery cell in Fig. 1.
[0019] 1 to 3, the battery cell 100 has a case body 21. The case body 21 is a rectangular parallelepiped housing. The case body 21 is made of metal. The case body 21 contains an electrode assembly and an electrolyte.
[0020] As shown in FIG. 3, case body 21 has a bottom surface 27, a pair of first side surfaces 28 (28p, 28q), a pair of second side surfaces 29 facing each other, and a top surface 26. Bottom surface 27 is located at the bottom of case body 21. Top surface 26 is located at the top of case body 21. Each of bottom surface 27 and top surface 26 is formed as a plane perpendicular to the Z axis. In a plan view, bottom surface 27 has a rectangular shape with long sides extending in the X axis direction and short sides extending in the Y axis direction.
[0021] The pair of first side surfaces 28 (first side surface 28p and first side surface 28q) face each other in the Y-axis direction. First side surface 28 is made of a plane perpendicular to the Y-axis. In a plan view, first side surface 28 has a rectangular shape with long sides extending in the X-axis direction and short sides extending in the Z-axis direction. First side surface 28 has the largest area of the multiple side surfaces of case body 21. The pair of second side surfaces 29 face each other in the X-axis direction. Second side surface 29 is made of a plane perpendicular to the X-axis. Second side surface 29 has a smaller area than first side surface 28. In a plan view, second side surface 29 has a rectangular shape with short sides extending in the Y-axis direction and long sides extending in the Z-axis direction.
[0022] The second side surface 29 has a first edge 31 and a pair of second edges 32 (32p, 32q). The first edge 31 forms a boundary between the second side surface 29 and the bottom surface 27. The first edge 31 corresponds to a short edge of the second side surface 29 extending in the Y-axis direction. The pair of second edges 32 rise from the first edge 31 and form boundaries with the pair of first side surfaces 28, respectively. The second edges 32 correspond to long edges of the second side surface 29 extending in the Z-axis direction. The lower end of the second edge 32 intersects with the end of the first edge 31 in the Y-axis direction to form a corner of the second side surface 29. The first edge 31 and the second edge 32p intersect at an intersection 76p. The first edge 31 and the second edge 32q intersect at an intersection 76q.
[0023] 1, the battery cell 100 further includes a gas release valve 16. The gas release valve 16 is provided on the top surface 26. The gas release valve 16 is provided in the center of the top surface 26 in the X-axis direction. When gas generated inside the case body 21 causes the internal pressure of the case body 21 to exceed a predetermined value, the gas release valve 16 releases the gas to the outside of the case body 21.
[0024] The battery cell 100 further has electrode terminals 11, each of which is a pair of a positive terminal 11P and a negative terminal 11N. The electrode terminals 11 are provided on the top surface 26. The positive terminal 11P and the negative terminal 11N are provided on either side of the gas release valve 16 in the X-axis direction.
[0025] The battery cell 100 further includes an insulating sheet 51. The insulating sheet 51 is a strip-shaped sheet with one longitudinal direction and a width direction perpendicular to the one longitudinal direction. The insulating sheet 51 has a rectangular shape in plan view. The insulating sheet 51 is made of resin. The material of the insulating sheet 51 may be polypropylene (PP), polyethylene terephthalate (PET), polyphenylene sulfide (PPS), polyimide (PI), or polyolefin (PO).
[0026] The insulating sheet 51 covers the case body 21. The insulating sheet 51 is folded to cover the bottom surface 27, the pair of first side surfaces 28, and the pair of second side surfaces 29 of the case body 21. One of the front and back surfaces of the insulating sheet 51 is an adhesive surface 51a to which an adhesive is applied, and the other of the front and back surfaces of the insulating sheet 51 is a non-adhesive surface 51b to which no adhesive is applied. The insulating sheet 51 is basically provided so that the adhesive surface 51a faces the case body 21.
[0027] The entire bottom surface 27 is covered with an insulating sheet 51. In FIG. 1, the pair of first side surfaces 28 and the pair of second side surfaces 29 are partially exposed from the insulating sheet 51, but the pair of first side surfaces 28 and the pair of second side surfaces 29 may be entirely covered with the insulating sheet 51.
[0028] Fig. 4 is a side view showing a second step in assembling the battery cell in Fig. 1. Fig. 5 is a side view showing a third step in assembling the battery cell in Fig. 1.
[0029] In order to more clearly show the folded structure of insulating sheet 51, the overall length (thickness) of case body 21 in the Y-axis direction in Figures 2 to 5 is shown to be larger than the thickness of case body 21 in Figure 1. Although Figures 2, 4, and 5 show one of the pair of second side faces 29, insulating sheet 51 covers both of the pair of second side faces 29 in the same shape.
[0030] 1 to 5, the insulating sheet 51 has a bottom 61 and a pair of first side portions 62 (62p, 62q). The bottom 61 is bonded to the bottom surface 27. The bottom 61 has a rectangular shape in plan view corresponding to the bottom surface 27. The pair of first side portions 62 (first side portion 62p and first side portion 62q) are bonded to the pair of first side surfaces 28 (first side surface 28p and first side surface 28q), respectively. The first side portions 62 are bent from the bottom 61 along the long sides of the first side portions 62 extending in the X-axis direction. Ge The first side portion 62 has a rectangular shape in plan view that corresponds to the first side surface 28.
[0031] 2, 4, and 5, the insulating sheet 51 further has a trapezoidal portion 52. The trapezoidal portion 52 is bonded to the second side surface 29. The trapezoidal portion 52 has a trapezoidal shape in a plan view. The trapezoidal portion 52 is bent from the bottom portion 61 along the first edge 31 of the second side surface 29.
[0032] The trapezoidal portion 52 has an upper side 54, a lower side 56, and a pair of first oblique sides 53 (53p, 53q). The upper side 54 and the lower side 56 extend parallel to each other. The upper side 54 connects the first oblique sides 53p and the first oblique sides 53q. The pair of first oblique sides 53 extend between the upper side 54 and the lower side 56. The pair of first oblique sides 53 are arranged symmetrically with respect to the center line of the second side surface 29 extending in the Z-axis direction.
[0033] The lower side 56 extends in the Y-axis direction. The lower side 56 overlaps with the first side 31 of the second side surface 29. The upper side 54 extends in the Y-axis direction at a position spaced apart from the first side 31 in the Z-axis direction. The length of the upper side 54 in the Y-axis direction is shorter than the length of the lower side 56 in the Y-axis direction. The first oblique side 53 extends diagonally relative to the first side 31 and the second side 32. The first oblique side 53p extends from the intersection 76p between the first side 31 and the second side 32p. The first oblique side 53q extends from the intersection 76q between the first side 31 and the second side 32q.
[0034] The angle formed between the first side 31 and the first oblique side 53 may be equal to or greater than 45°, or may be less than 45°.
[0035] The insulating sheet 51 further has a pair of triangular portions 71 (71p, 71q). The pair of triangular portions 71 are arranged on the second side surface 29. The pair of triangular portions 71 are superimposed on the trapezoidal portion 52 on the second side surface 29. The triangular portion 71p is bent from the trapezoidal portion 52 along the first oblique side 53p. The triangular portion 71q is bent from the trapezoidal portion 52 along the first oblique side 53q.
[0036] The triangular portion 71p and the triangular portion 71q partially overlap each other on the trapezoidal portion 52.
[0037] The triangular portion 71 (71p, 71q) has a first oblique side 53 (53p, 53q), a second oblique side 72 (72p, 72q), and a third oblique side 73 (73p, 73q).
[0038] The triangular portion 71 shares the first hypotenuse 53 with the trapezoidal portion 52. The first hypotenuse 53 is a portion of the triangular portion 71 bent from the trapezoidal portion 52. The second hypotenuse 72p starts from the intersection 76p and extends between the first side 31 and the first hypotenuse 53p. The second hypotenuse 72q starts from the intersection 76q and extends between the first side 31 and the first hypotenuse 53q. The second hypotenuse 72p and the second hypotenuse 72q intersect with each other on the center line of the second side surface 29 extending in the Z-axis direction.
[0039] The third hypotenuse 73 connects the first hypotenuse 53 and the second hypotenuse 72. The third hypotenuse 73p starts from the intersection of the top side 54 and the first hypotenuse 53p and extends between the top side 54 and the first hypotenuse 53p. The third hypotenuse 73q starts from the intersection of the top side 54 and the first hypotenuse 53q and extends between the top side 54 and the first hypotenuse 53q. The third hypotenuse 73p and the third hypotenuse 73q intersect with each other on the center line of the second side surface 29 extending in the Z-axis direction.
[0040] The corner of the triangular portion 71p including the intersection of the second hypotenuse 72p and the third hypotenuse 73p and the corner of the triangular portion 71q including the intersection of the second hypotenuse 72q and the third hypotenuse 73q overlap each other.
[0041] The insulating sheet 51 further has a pair of second side portions 41 (41p, 41q). The pair of second side portions 41 overlap the second side surface 29. The second side portion 41p is bent from the triangular portion 71p along the second oblique side 72p. Ge and is folded from the first side portion 62p along the second side 32p. Ge The second side portion 41q is bent from the triangular portion 71q along the second oblique side 72q. Ge and is bent from the first side portion 62q along the second side 32q. Ge It is being done.
[0042] The pair of second side portions 41 have overlapping portions 46. Second side portion 41p and second side portion 41q overlap each other on second side surface 29 at overlapping portions 46. At overlapping portions 46, second side portion 41p overlaps second side surface 29, and further, second side portion 41q overlaps second side portion 41p. At the position where triangular portion 71p and triangular portion 71q partially overlap each other, trapezoidal portion 52, triangular portion 71p, second side portion 41p, triangular portion 71q, and second side portion 41q are layered in this order on second side surface 29.
[0043] Second side portion 41p is adhered to a portion of second side surface 29, triangular portion 71p, and trapezoidal portion 52. Second side portion 41q is adhered to a portion of second side surface 29, second side portion 41p, triangular portion 71q, and trapezoidal portion.
[0044] The length Lk of the upper side 54 is equal to or greater than the length Lj of the overlapping portion 46 in the Y-axis direction along which the upper side 54 extends (Lk≧Lj). With this configuration, when the overlapping portion 46 is provided on the pair of second side portions 41, interference between the trapezoidal portion 52 and the first oblique side 53q corresponding to the folded-back portion of the triangular portion 71q and the second side portion 41p can be avoided.
[0045] Next, the process of covering the case body 21 with the insulating sheet 51 in the battery cell 100 in FIG. 1 will be described.
[0046] 3, first, a bottom portion 61 is provided on the insulating sheet 51. Specifically, the case body 21 is placed on the strip-shaped insulating sheet 51 so that the adhesive surface 51a of the insulating sheet 51 faces the bottom surface 27 of the case body 21. The insulating sheet 51 is adhered to the bottom surface 27. At this time, the longitudinal direction of the insulating sheet 51 corresponds to the X-axis direction, and the short side direction (width direction) of the insulating sheet 51 corresponds to the Y-axis direction. The length of the insulating sheet 51 in the X-axis direction is greater than the length of the case body 21 in the X-axis direction, and the length of the insulating sheet 51 in the Y-axis direction is greater than the length of the case body 21 in the Y-axis direction.
[0047] Next, the first side portion 62 is provided on the insulating sheet 51. Specifically, the insulating sheet 51 is folded 90 degrees along the long side of the first side surface 28 extending in the X-axis direction. The insulating sheet 51 is adhered to the first side surface 28.
[0048] 3 and 4, next, trapezoidal portion 52 is provided on insulating sheet 51. Specifically, insulating sheet 51 is folded at 90° along first side 31 of second side surface 29. Insulating sheet 51 is adhered to second side surface 29 in an area corresponding to the trapezoidal shape of trapezoidal portion 52.
[0049] 4 and 5, next, triangular portion 71p and second side portion 41p are provided on insulating sheet 51. Specifically, insulating sheet 51 is folded toward the front along first oblique side 53p of trapezoidal portion 52, and further folded toward the front along second oblique side 72p of triangular portion 71p. Insulating sheet 51 is adhered to triangular portion 71p, a portion of trapezoidal portion 52, and a portion of second side surface 29.
[0050] 5 and 2, next, triangular portion 71q and second side portion 41q are provided on insulating sheet 51. Specifically, insulating sheet 51 is folded toward the front along first oblique side 53q of trapezoidal portion 52, and further folded toward the front along second oblique side 72q of triangular portion 71q. Insulating sheet 51 is adhered to triangular portion 71q, part of trapezoidal portion 52, part of second side surface 29, and part of second side portion 41p. Through these steps, battery cell 100 in FIG. 1 is completed.
[0051] In this embodiment, by providing the insulating sheet 51 with a trapezoidal portion 52 that is adhered to the second side surface 29 of the case body 21, the path of water penetration from the outside into the second side surface 29 can be set at a position higher than the bottom surface 27 of the case body 21. Furthermore, by providing the insulating sheet 51 with a triangular portion 71 that overlaps the trapezoidal portion 52, the adhesive surface 51a of the second side portion 41 can be used to block the path of water penetration into the second side surface 29 of the case body 21 through the upper edge 54 of the trapezoidal portion 52. This makes it possible to more reliably prevent water from penetrating into the battery cells 100 from the outside.
[0052] The length Lh between the lower side 56 and the upper side 54 (the height of the trapezoidal portion 52) may be equal to or greater than the length Li of the lower side 56 (Lh≧Li). With this configuration, the path for water to penetrate from the outside into the second side surface 29 of the battery cell 100 can be set at a position higher than the bottom surface 27 of the case body 21.
[0053] The embodiments disclosed herein should be considered to be illustrative in all respects and not restrictive. The scope of the present invention is defined by the claims, not by the above description, and is intended to include all modifications within the meaning and scope of the claims. [Explanation of symbols]
[0054] 11 electrode terminal, 11N negative electrode terminal, 11P positive electrode terminal, 16 gas exhaust valve, 21 case body, 26 top surface, 27 bottom surface, 28, 28p, 28q first side surface, 29 second side surface, 31 first edge, 32, 32p, 32q second edge, 41, 41p, 41q second side portion, 46 overlapping portion, 51 insulating sheet, 51a adhesive surface, 51b non-adhesive surface, 52 trapezoidal portion, 53, 53p, 53q first hypotenuse, 54 upper edge, 56 lower edge, 61 bottom portion, 62, 62p, 62q first side portion, 71, 71p, 71q triangular portion, 72, 72p, 72q second hypotenuse, 73, 73p, 73q third hypotenuse, 76p, 76q intersection, 100 Battery cell.
Claims
[Claim 1] a case body having a bottom surface, a pair of first side surfaces each rising from the bottom surface and facing each other, and a second side surface rising from the bottom surface and having an area smaller than each of the first side surfaces, and having an appearance of a rectangular parallelepiped; a strip-shaped insulating sheet that has an adhesive applied to one of the front and back surfaces and that covers the case body by being folded; the second side surface includes a first side that forms a boundary with the bottom surface, and a pair of second sides that rise from the first side and form boundaries with the pair of first side surfaces, respectively; The insulating sheet is a bottom portion bonded to the bottom surface; a pair of first side portions respectively bonded to the pair of first side surfaces; a trapezoidal portion that is bent from the bottom along the first side, has the first side as its bottom side, and has a trapezoidal shape including a pair of first oblique sides that extend obliquely from intersections of the first side and each of the second sides to each of the second sides, and is bonded to the second side surface; a pair of triangular portions bent from the trapezoidal portion along the pair of first oblique sides and overlapping with the trapezoidal portion; each of the triangular portions includes the first hypotenuse, a second hypotenuse extending from an intersection of the first side and each of the second sides between the first hypotenuse and the first side, and a third hypotenuse connecting the first hypotenuse and the second hypotenuse; The insulating sheet is a pair of second side portions that are bent from the triangular portion along the pair of second oblique sides and from the pair of first side portions along the second sides and overlap the second side surfaces, the trapezoidal portion further includes an upper side extending parallel to the lower side and connecting the pair of first oblique sides, The pair of second side portions include overlapping portions that are overlapped with each other on the second side surfaces, A battery cell, wherein the length of the upper side is equal to or greater than the length of the overlapping portion in the direction in which the upper side extends, and the length between the lower side and the upper side is equal to or greater than the length of the lower side.
Citation Information
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