Cap assembly for secondary battery
10615381 ยท 2020-04-07
Assignee
Inventors
- Byoung Kook Lee (Daejeon, KR)
- Hang Soo Shin (Daejeon, KR)
- Do Gyun Kim (Daejeon, KR)
- Je Jun LEE (Daejeon, KR)
- Jun Tak KIM (Daejeon, KR)
- Byoung Gu Lee (Daejeon, KR)
- Sang Suk Jung (Daejeon, KR)
Cpc classification
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M50/3425
ELECTRICITY
H01M2220/30
ELECTRICITY
International classification
Abstract
The present invention relates to a cap assembly for a secondary battery mounted on an opening of a can. The cap assembly comprises: a top cap; a safety element disposed on a lower portion of the top cap; a safety vent disposed on a lower portion of the safety element; and a gasket surrounding edges of the top cap, the safety element, and the safety vent and mounted on the opening of the can, wherein an impact absorption part absorbing an impact from the gasket is disposed between an inner wall of the gasket and an outer circumferential surface of the safety vent.
Claims
1. A cap assembly for a secondary battery, which is mounted on an opening of a can, the cap assembly comprising: a top cap; a safety element disposed on a lower portion of the top cap; a safety vent disposed on a lower portion of the safety element; a gasket surrounding edges of the top cap, the safety element, and the safety vent and mounted on the opening of the can; and a plurality of support parts spaced apart around the safety vent and disposed between an inner wall of the gasket and an outer circumferential surface of the safety vent to align a reference position of the safety vent, wherein an impact absorption part absorbing an impact from the gasket is disposed between the inner wall of the gasket and the outer circumferential surface of the safety vent.
2. The cap assembly of claim 1, wherein the impact absorption part is an impact absorption space defined between the inner wall of the gasket and the outer circumferential surface of the safety vent.
3. The cap assembly of claim 2, wherein the safety vent has a diameter less than an inner diameter of the gasket so that the impact absorption space is defined.
4. The cap assembly of claim 2, wherein the plurality of support parts are disposed in the impact absorption space.
5. The cap assembly of claim 4, wherein at least three or more support parts are disposed at the same interval on the inner wall of the gasket.
6. The cap assembly of claim 4, wherein the support parts are integrated with the gasket.
7. The cap assembly of claim 4, wherein the support plate is provided as a vertical plate on the inner wall of the gasket.
8. A cap assembly for a secondary battery, which is mounted on an opening of a can, the cap assembly comprising: a top cap; a safety element disposed on a lower portion of the top cap; a safety vent disposed on a lower portion of the safety element; a gasket surrounding edges of the top cap, the safety element, and the safety vent and mounted on the opening of the can; and an impact absorption part disposed between an inner wall of the gasket and an outer circumferential surface of the safety vent, wherein the impact absorption part is provided as at least three or more impact absorption members discrete from the gasket and spaced apart around the outer circumferential surface of the safety vent, the impact absorption members made of a material having elasticity so as to absorb an impact from the gasket.
9. The cap assembly of claim 8, wherein the impact absorption members are attached to the outer circumferential surface of the safety vent.
10. The cap assembly of claim 9, wherein the impact absorption members are attached at the same interval to the outer circumferential surface of the safety vent.
11. The cap assembly of claim 8, wherein a coupling protrusion is disposed on one contact surface of contact surfaces of the safety vent and the gasket, and a coupling groove, which is coupled to the coupling protrusion, is defined in the other contact surface.
12. The cap assembly of claim 11, wherein the coupling protrusion is disposed on the contact surface of the gasket, and the coupling groove is defined in the contact surface of the safety vent.
13. The cap assembly of claim 11, wherein at least three or more coupling protrusions and at least three or more coupling grooves, which are coupled to each other, are provided at the same interval along the contact surfaces of the safety vent and the gasket.
14. A cap assembly for a secondary battery, which is mounted on an opening of a can, the cap assembly comprising: a top cap; a safety element disposed on a lower portion of the top cap; a safety vent disposed on a lower portion of the safety element; and a gasket surrounding edges of the top cap, the safety element, and the safety vent and mounted on the opening of the can, wherein an impact absorption part absorbing an impact from the gasket is disposed between an inner wall of the gasket and an outer circumferential surface of the safety vent, wherein the safety vent and the gasket each have a respective contact surface in contact with one another, and wherein a coupling protrusion is disposed on the contact surface of the gasket and a coupling groove is defined in the contact surface of the safety vent, the coupling protrusion being received within the coupling groove.
15. The cap assembly of claim 14, wherein at least three or more coupling protrusions and at least three or more coupling grooves, which are coupled to each other, are provided at the same interval along the contact surfaces of the safety vent and the gasket.
16. The cap assembly of claim 14, wherein the impact absorption part is an impact absorption space defined between the inner wall of the gasket and the outer circumferential surface of the safety vent.
17. The cap assembly of claim 14, wherein the impact absorption part is provided as an impact absorption member discrete from the gasket, the impact absorption member made of a material having elasticity so as to absorb an impact from the gasket.
18. The cap assembly of claim 17, wherein the impact absorption member is attached to the outer circumferential surface of the safety vent.
19. The cap assembly of claim 18, wherein at least three or more impact absorption members are attached at the same interval to the outer circumferential surface of the safety vent.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
MODE FOR CARRYING OUT THE INVENTION
(10) Hereinafter, an embodiment of the present invention will be described in detail with reference to the accompanying drawings in such a manner that the technical idea of the present invention may easily be carried out by a person with ordinary skill in the art to which the invention pertains. The present invention may, however, be embodied in different forms and should not be construed as limited to the embodiments set forth herein. In the drawings, anything unnecessary for describing the present invention will be omitted for clarity, and also like reference numerals in the drawings denote like elements.
(11) As illustrated in
(12) The electrode assembly 100 may be manufactured by stacking a first electrode and a second electrode with a separate between the first and second electrodes and winding the stack in a roll shape. A first electrode tab connected to the cap assembly 300 is disposed on the first electrode, and a second electrode tab connected to the can 200 is disposed on the second electrode.
(13) The can 200 has a cylindrical shape so that an opening is defined in a top surface thereof and also accommodates an electrolyte together with the electrode assembly 100.
(14) The cap assembly 300 is mounted on the opening of the can 200 and comprises a top cap 310, a safety element 320 disposed on a lower portion of the top cap 310, a safety vent 330 disposed on a lower portion of the safety element 320, and a gasket 340 surrounding edges of the top cap 310, the safety element 320, and the safety vent 330 and mounted on the opening of the can 200.
(15) The top cap 310 is disposed in a shape that protrudes upward from the uppermost portion of the cam assembly 300 to provide a positive electrode terminal.
(16) Also, a gas hole 311 through which a gas is discharged may be defined in the top cap 310. Thus, when a gas is generated from the electrode assembly 100, the gas may be discharged to the outside of the cap assembly 300 through the gas hole 311.
(17) The safety element 320 is interposed between the top cap 310 and the safety vent 330 to electrically connect the top cap 310 to the safety vent 330. In addition, when current flows in the battery due to overheating of the battery, the safety vent prevents the current from being transmitted to the top cap 310. For example, the safety vent 320 may be provided as a positive temperature coefficient (PTC) element.
(18) The safety vent 330 is disposed to come into contact with the safety element 320 on the lower portion of the safety element 320. When an internal pressure of the secondary battery increases to a predetermined level or more, the safety vent 330 is configured to be ruptured.
(19) That is, when a pressure within the can 200 increases to a predetermined level or more due to the generation of the gas from the electrode assembly 100, the safety vent 330 is ruptured to discharge the gas within the can 200 to the outside through the gas hole 311 of the top cap 310.
(20) The gasket 340 is configured to seal a gap between the cap assembly 300 and the can 200. The gasket 340 surrounds the edges of the tap cap 310, the safety element 320, and the safety vent 330 and is mounted on the opening of the can 200 to seal the can 200.
(21) In the secondary battery according to the present invention, when an external impact is applied to the cap assembly 300, the external impact may be transmitted as it is to the safety vent 340 through the gasket 340 to rupture the safety vent 340. As a result, the secondary battery may have a problem in quality.
(22) That is, the safety vent 340 is not ruptured by the gas pressure within the can 200, but is ruptured by the external impact to cause the problem in quality of the secondary battery.
(23) To solve the problem, in the cap assembly 300 of the secondary battery according to the present invention, the external impact may be prevented from being transmitted to the safety vent 330 through the gasket 340 to prevent the safety vent 330 from being ruptured by the external impact.
(24) For example, as illustrated in
(25) That is, the impact absorption space may be provided as an empty space between the gasket 340 and the safety vent 330 to absorb the external impact so that the external impact is not transmitted to the safety vent 330 through the gasket 340, thereby preventing the safety vent 330 from being ruptured by the external impact.
(26) Here, as illustrated in
(27) A gap between the inner wall of the gasket 340 and the outer circumferential surface of the safety vent 330 may be about 0.01 mm to about 0.30 mm. That is, when the gap is less than about 0.01 mm, the impact may be transmitted to the safety vent 330 due to pushing and compression of the gasket 340. When the gap is greater than about 0.30 mm, the safety vent 330 may be largely shaken within the gasket 340 by the external impact to cause short-circuit of the connected first electrode tab.
(28) Although not described in the present invention, a groove may be defined along an inner circumferential surface of an inner diameter of the gasket 340 corresponding to an outer diameter of the safety vent 300, and the impact absorption part may be provided between the gasket 340 and the safety vent 330 through a space defined by the groove.
(29) There is a problem in fixing the safety vent 330 at a reference position because the safety vent 330 has the outer diameter less than the inner diameter of the gasket 340. For this, a support part 341 for fixing the safety vent 330 at the reference position may be provided.
(30) That is, as illustrated in
(31) Here, at least three or more support parts 341, preferably, three support parts 341 may be disposed on the inner diameter of the gasket 340 at the same interval. Thus, the safety vent 330 may be fixed at the reference position, and the impact absorption part 350 may be maximally secured between the gasket 340 and the safety vent 330.
(32) The support part 341 may be integrated with the gasket 340. That is, when the gasket 340 is manufactured, the gasket 340 may be molded together with the support part 341 to improve easy of manufacture.
(33) The support part 341 may be provided as a vertical plate that is vertically perpendicular to the inner wall of the gasket 340 when viewed in
(34) Here, the support part 341 may be removed from the gasket 340 after the safety vent 330 is fixed at the reference position. Thus, the contact surface between the inner diameter of the gasket 340 and the outer circumferential surface of the safety vent 330 may be completely removed.
(35) As illustrated in
(36) For example, the coupling protrusion 342 may be provided on one contact surface of the contact surfaces of the safety vent 330 and the gasket 340, i.e., the contact surface of the gasket 340, and the coupling groove 331, which is coupled to the coupling protrusion 342, may be provided in the other contact surface, i.e., the contact surface of the safety vent 330 to improve the fixing force of the safety vent against the external impact.
(37) As illustrated in
(38) In the cap assembly 300 of the secondary battery according to the present invention, the impact absorption part 350 may be provided to absorb the impact transferred from the gasket 340 and thereby to prevent the impact from being transmitted to the safety vent 340 even though the gasket 340 is shaken or compressed by the external impact. Thus, it may prevent the safety vent 340 from being ruptured by the external impact, to prevent defects from occurring, and to improve the quality.
(39) Hereinafter, in description of an electrode assembly according to another embodiment of the present invention, components having the same constituent and function as those of the foregoing embodiment have been given the same reference numeral in the drawings, and thus duplicated description will be omitted.
(40)
(41) As illustrated in
(42) Here, an impact absorption part 350 may be disposed between the gasket 340 and the safety vent 330. The impact absorption part 350 may be provided as an impact absorption member made of a material having elasticity.
(43) As described above, when the impact absorption part is provided as an impact absorption space, the separate support part for fixing the safety vent at a reference position may be required, and the safety vent may be finely shaken by the impact.
(44) However, the impact absorption part 350 made of the material having the elasticity according to this embodiment may absorb the external impact and prevent the safety vent 330 from being shaken.
(45) That is, as illustrated in
(46) As described above, the impact absorption member may be easily fixed at the reference position of the safety vent 330 and absorb and block the impact transmitted from the gasket 340 to the safety vent 330.
(47) As illustrated in
(48) Thus, in the cap assembly 300 according to this embodiment, the impact absorption member may be provided between the gasket 340 and the safety vent 330 to prevent the safety vent 330 from being ruptured by the external impact and also to easily fix the safety vent 330 at the reference position.
(49) Accordingly, the scope of the present invention is defined by the appended claims rather than the foregoing description and the exemplary embodiments described therein. Various modifications made within the meaning of an equivalent of the claims of the invention and within the claims are to be regarded to be in the scope of the present invention.