Rechargeable battery pack
10079381 ยท 2018-09-18
Assignee
Inventors
Cpc classification
H01M10/4257
ELECTRICITY
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
H01M50/154
ELECTRICITY
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
H01M2220/20
ELECTRICITY
H01M50/574
ELECTRICITY
H01M50/553
ELECTRICITY
H01M2220/30
ELECTRICITY
International classification
H01M8/16
ELECTRICITY
H01M10/42
ELECTRICITY
Abstract
A rechargeable battery pack according to an exemplary embodiment of the present invention includes: a battery cell for being charged and discharged; an electrode terminal provided in a cap plate of the battery cell; a protection member disposed above and spaced apart from the cap plate, having one lateral end electrically connected to the electrode terminal, and electrically protecting the battery cell; and a protective circuit module disposed above and spaced apart from the protection member and electrically connected to the other lateral end of the protection member. The other lateral end of the protection member integrally extends to correspond to a connection portion of the protective circuit module.
Claims
1. A rechargeable battery pack comprising: a battery cell for being charged and discharged; an electrode terminal provided in a cap plate of the battery cell the cap plate defining side edges and first and second lateral end edges; a protection member disposed above and spaced apart from the cap plate, having first and second lateral ends respectively adjacent the first and second lateral end edges of the cap plate and a first end that is electrically connected to the electrode terminal and is interposed between the first and second lateral ends, and electrically protecting the battery cell; and a protective circuit module disposed above and spaced apart from the protection member and electrically connected to a second end of the protection member, wherein the second end of the protection member integrally extends from the first end to correspond to a connection portion of the protective circuit module; wherein the protection member includes a protection element and wherein the first end of the protection member is coupled to the electrode terminal wherein the protection member defines an open space between two side walls of the protection member and between the first end of the protection member and a first lateral end of the protection element where the protection element is positioned within the open space and wherein the first lateral end of the protection member is connected to the second end of the protection member by current path portions that define side walls of the open space.
2. The rechargeable battery pack of claim 1, wherein the first end of the protection member forms a first welding portion that is welded to the electrode terminal, and the second end of the protection member forms a second welding portion that is connected to the connection portion of the protective circuit module.
3. The rechargeable battery pack of claim 1, wherein the protection member further includes the protection element that is connected to the first and second welding portions so as to be interposed between the first and second ends and extends in a first direction.
4. The rechargeable battery pack of claim 3, wherein the first and second welding portions are sequentially disposed at one side of the electrode terminal so as to extend in the first direction.
5. The rechargeable battery pack of claim 4, the insulating tape is disposed at an inner side of the protective circuit module in a second direction that crosses the first direction while covering the protection member and the first welding portion.
6. The rechargeable battery pack of claim 5, further comprising a top case that is disposed between the cap plate and the protection member in the second direction while being formed as an insulator.
7. The rechargeable battery pack of claim 6, further comprising a double-sided adhesive tape interposed between the top case and the protection member.
8. The rechargeable battery pack of claim 6, wherein the top case forms an opened portion that corresponds to at least the electrode terminal and the protection element, and the protection element is placed in the opened portion while being spaced apart from an inner side thereof.
9. The rechargeable battery packs of claim 8, wherein the protection member is formed to have a second thickness smaller than a first thickness of the opened portion that is set in the second direction.
10. The rechargeable battery pack of claim 9, wherein the first and second welding portions are sequentially disposed at one side of the protection element in the first direction.
11. The rechargeable battery pack of claim 10, wherein the protection member is further provided with a current path portion that connects the protection element and the second welding portion.
12. The rechargeable battery pack of claim 11, wherein the current path portion is disposed at both lateral sides of the protection element in a third direction that crosses the first direction.
13. The rechargeable battery pack of claim 12, wherein the top case includes: a first coupling protrusion that protrudes in the second direction to be combined to the protection member's side in the first direction; and a second coupling protrusion that protrudes in the second direction to be combined to the second welding portion at an opposite side of the first coupling protrusion in the first direction.
14. The rechargeable battery pack of claim 11, wherein the current path portion is disposed at one side of the protection element in a third direction that crosses the first direction.
15. The rechargeable battery pack of claim 9, wherein the first and second welding portions are respectively disposed at both lateral sides of the protection element in the first direction.
16. The rechargeable battery pack of claim 15, wherein the second welding portion is directly connected to the protection element.
17. The rechargeable battery pack of claim 16, wherein the top case includes a coupling protrusion that protrudes in a second direction crossing the first direction so as to be combined with the protection element and the second welding portion therebetween in the first direction.
18. The rechargeable battery pack of claim 17, wherein the second welding portion is formed to have a third thickness smaller than a first thickness of the opened portion that is set in the second direction.
19. The rechargeable battery pack of claim 17, wherein the second welding portion forms a top surface having the same level as that of an opened portion that is set in the second direction.
20. The rechargeable battery pack of claim 19, wherein the second welding portion is formed to have a fourth thickness, which is the same thickness between one side surface of the protection element that is set in the second direction and a surface of the top case.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(10) The present invention will be described more fully hereinafter with reference to the accompanying drawings, in which exemplary embodiments of the invention are shown. As those skilled in the art would realize, the described embodiments may be modified in various different ways, all without departing from the spirit or scope of the present invention. The drawings and description are to be regarded as illustrative in nature and not restrictive. Like reference numerals designate like elements throughout the specification.
(11)
(12) Referring to
(13) The electrode terminal 40 is provided in a cap plate 30 of the battery cell 100. The protection member 200 is formed to electrically protect the battery cell 100 such that it is disposed above and spaced apart from the cap plate 30 with one lateral end electrically connected to the electrode terminal 40. For example, when charging and discharging, the protection member 200 is set to electrically disconnect the battery cell 100 from the protective circuit module 300 if the temperature of the battery cell 100 exceeds a predetermined value.
(14) The protective circuit module 300 is disposed above and spaced apart from the protection member 200, and is electrically connected to the other lateral end of the protection member 200. In this case, the other lateral end of the protection member 200 is integrally formed such that it extends to correspond to a connection portion W of the protective circuit module 300.
(15) The protective circuit module 300 forms an electrical circuit to prevent overcharge, over-discharge, overcurrent, and short-circuit of the battery cell 100, and is provided with various circuit elements.
(16)
(17) Referring to
(18) The battery cell 100 further includes a terminal plate 50 that electrically connects the electrode terminal 40 to the electrode assembly 10, and an insulating case 60 that is provided between the cap plate 30 and the electrode assembly 10. The electrode assembly 10 has a shape corresponding to the internal space of the case 20 such that it can be inserted into the case 20. The electrode assembly 10 is formed by spirally winding a positive electrode 11 and a negative electrode 12 in a jelly roll form while a separator 13 is interposed therebetween as an insulator.
(19) The electrode assembly 10 is provided with a positive electrode lead tab 14 that is connected to the positive electrode 11, and a negative electrode lead tab 15 that is connected to the negative electrode 12. The positive electrode lead tab 14 is connected to a bottom surface of the cap plate 30 by welding, and the case 20 is electrically connected to the positive electrode 11 of the electrode assembly 10 through the cap plate 30 so as to function as a positive terminal.
(20) The negative electrode lead tab 15 is connected by welding to a bottom surface of the terminal plate 50 that is connected to one end of the electrode terminal 40, and the electrode terminal 40 provided in the terminal hole 31 of the cap plate 30 is electrically connected to the negative electrode 12 of the electrode assembly 10 so as to function as a negative terminal.
(21) Though not illustrated, the negative electrode lead tab may be connected to the cap plate so as to function as the negative terminal, while the positive lead tab may be connected to the electrode terminal so as to function as the positive terminal.
(22) As an example, the electrode terminal 40 is inserted into the terminal hole 31 of the cap plate 30 to be riveted while interposing an insulation gasket 41 therebetween. In this case, the insulating gasket 41 electrically insulates the terminal hole 31 and the electrode terminal 40, and forms a sealing structure between the terminal hole 31 and the electrode terminal 40. The terminal plate 50 is electrically connected to the electrode terminal 40 while interposing an insulating plate 55 therebetween. That is, the insulating plate 55 electrically insulates the cap plate 30 from the terminal plate 50, and further forms a sealing structure between the cap plate 30 and the terminal plate 50.
(23) The case 20 allows insertion of the electrode assembly 10 and the insulating case 60 into the opening that is provided in its upper part. Further, the case 20 is formed as a conductor such that it accommodates the electrode assembly 10 along with the cap plate 30 and function as the electrode terminal 40. For example, the case 20 may be made of aluminum or an aluminum alloy.
(24) The insulating case 60 is provided between the electrode assembly 10 and the terminal plate 50 inside the case 20 such that it electrically insulates the terminal electrode 10 from the terminal plate 50. That is, the insulating case 60 electrically insulates the positive electrode 11 of the electrode assembly 10 from the terminal plate 50 having negative polarity. Further, the insulating case 60 is provided with tab holes 141 and 151 through which the positive and negative lead tabs 14 and 15 penetrate.
(25) Accordingly, the positive electrode lead tab 14 may penetrate through the tab hole 141 to be connected to the cap plate 30, while the negative electrode lead tab 15 may penetrate through the tab hole 151 to be connected to the terminal plate 50.
(26) The cap plate 30 is further provided with an electrolyte injection opening 32. The electrolyte injection opening 32 allows injection of the electrolyte solution into the case 20 after the case 20 and the cap plate 30 are combined and welded together. The electrolyte injection opening 32 is sealed with a sealing cap 33 after the injection of the electrolyte solution.
(27) The protection member 200 includes a protection element 203, and a first welding portion 201 and a second welding portion 202 that are connected to the protection element 203. As an example, the protection element 203 may be a resistive element having a positive temperature coefficient (PTC).
(28) As an example, one end of the protection member 200 forms the first welding portion 201 that is welded to the electrode terminal 40, while the other end forms the second welding portion 202 that is connected to the connection portion W of the protective circuit module 300. The one end and the other end of the protection member 200 may form a bonding portion or a connection portion that respectively forms a conductive structure. The integrally formed protection member 200 may reduce the number of parts and work processes when connecting the battery cell 100 and the protective circuit module 300, thereby improving productivity. Thus, the rechargeable battery pack 1 according to the first exemplary embodiment may lower parts cost to be competitive in price.
(29) That is, when the battery cell 100 is electrically connected to the protective circuit module 300, the number of parts around the protection element 203 is reduced, and thus the number of work processes can be reduced when assembling the rechargeable battery pack 1. Accordingly, the productivity may be improved.
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(31) Referring to
(32) The second welding portion 202 is connected to an opposite side of the first welding portion 201 of the protection element 203 in a first direction (x-axis direction) such that it is finally connected to the connection portion W of the protective circuit module 300.
(33) Further, the first and second welding portions 201 and 202 are sequentially disposed at one end of the electrode terminal 40 in the first direction (x-axis direction).
(34) The rechargeable battery pack 1 according to the first exemplary embodiment may further include an insulating tape 400 and a top case 500. The insulating tape 400 covers the protection member 200 and is disposed at an inner side of the protective circuit module 300 in a second direction (z-axis direction) that crosses the first direction, such that it prevents an unnecessary short-circuit between the protection member 200 and the protective circuit module 300. That is, the insulating tape 400 covers the protection element 203 and the first welding portion 201 such that it prevents the protection element 203 or the first welding portion 201 from being short-circuited with the protective circuit module 300. Further, by exposing the second welding portion 202, the insulating tape 400 allows a connection of the connection portion W of the protective circuit module 300 to the second welding portion 202 through welding.
(35) The top case 500 is formed of an insulating material and is disposed between the cap plate 30 and the protection member 200 in the second direction (z-axis direction), such that it prevents the protection member 200 connected to the electrode terminal 40 from being short-circuited with the cap plate 30.
(36) The rechargeable battery pack 1 according to the first exemplary embodiment further includes a double-sided adhesive tape 600 that is interposed between the top case 500 and the protection member 200 (for convenience, illustrated only in
(37) A structure in which the double-sided adhesive tape 600 easily attaches the protection member 200 to the top case 500 not only lowers a manufacturing cost for the protection member 200 and the top case 500 but also allows ease of assembly of the protection member 200 and the top case 500 compared with an insert-molded structure.
(38) The top case 500 is formed with an opened portion 503 that corresponds to at least the electrode terminal 40 and the protection element 203.
(39) In the first exemplary embodiment, the opened portion 503 is formed to correspond to the first welding portion 201 and the protection element 203, and further to some of the second welding portion 202. Further, the protection element 203 is formed to have a second thickness t2 that is smaller than a first thickness t1 of the opened portion 503 set in the second direction (z-axis direction). Thus, the protection element 203 is placed in the opened portion 503 while spaced apart from an inner wall of the opened portion 503. That is, the protection element 203 is placed in a space that is set by the cap plate 30, the opened portion 503, and the insulating tape 400.
(40) In the protection member 200, the first and second welding portions 201 and 202 are sequentially disposed at one side of the protection element 203 in the first direction (x-axis direction). Thus, welding between the first and second welding portions 201 and 202 can be easily performed.
(41) That is, the first welding portion 201 is connected to the electrode terminal 40 at one side of the protection element 203, while the second welding portion 202 is connected to the connection portion W of the protective circuit module 300 at one side of the first welding portion 201. The protection member 200 further includes a current path portion 204 for interconnecting the protection element 203 and the second welding portion 202. The current path portion 204 connects one side of the protection element 203 to dispose the second welding portion 202 at one side of the first welding portion 201. Further, the current path portion 204 is disposed at both lateral sides of the protection element 203 in a third direction (y-axis direction) that crosses the first direction (x-axis direction).
(42) Thus, the current path portion 204 enables stable current flow from the opposite side of the first welding portion 201 of the protection element 203 to the second welding portion 202.
(43) The top case 500 includes a first coupling protrusion 501 and a second coupling protrusion 502 that protrude in the second direction (z-axis direction). The first coupling protrusion 501 is combined to the protection member 200 at one side of the protection element 203 in the first direction (x-axis direction), while the second coupling protrusion 502 is combined to the second welding portion 202 at an opposite side of the first coupling protrusion 501 in the first direction (x-axis direction). The protection member 200 is attached to the top case 500 in the z-axis direction while interposing the double-sided adhesive tape 600 therebetween, and is combined to the top case 500 in the x-axis and y-axis directions while interposing the first and second coupling protrusions 501 and 502 therebetween.
(44) The double-sided adhesive tape 600 may be formed such that it corresponds to the protection member 200 and does not overlap the first and second coupling protrusions 501 and 502 at the same time. Thus, the protection member 200 and the top case 500 may stably maintain their adhesive and coupling forces between them.
(45) Various exemplary embodiments will now be described. Compared with the configurations of the first exemplary embodiment and the aforementioned exemplary embodiment, a description of the same configurations will be omitted while different configurations will be described.
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(48) Referring to
(49) That is, in the third exemplary embodiment, since the protection member 230 does not include a configuration that corresponds to the current path portions 204 and 224 of the first and second exemplary embodiments, the protection member 230 is formed to have a simpler structure than the protection members 200 and 220 of the first and second exemplary embodiments.
(50) A top case 530 is provided with a coupling protrusion 531 that protrudes in the second direction (z-axis direction). The coupling protrusion 531 is formed to be combined with the protection element 233 and the second welding portion 232 therebetween in the first direction (x-axis direction). The second welding part 232 is formed to have a third thickness t3 that is smaller than a first thickness t1 of an opened portion 533 that is set in the second direction (z-axis direction).
(51) The second welding portion 232 is connected to one side of the protection element 233 such that it is mounted on a surface of the top case 530 at one side of the opened portion 533. The first welding portion 231 and the protection element 233 are placed in the opened portion 533 while spaced apart from an inner wall thereof. That is, the protection element 233 is placed in a space that is set by the cap plate 30, the opened portion 533, and an insulating tape 430.
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(53) The second welding portion 242 is formed to have a fourth thickness t4, which is the same thickness between one side surface of the protection element 233 that is set in the second direction (z-axis direction) and a surface of a top case 540. The second welding portion 242 can be more stably connected to the connection portion W of the protective circuit module 300 as it is formed thicker to have the fourth thickness t4.
(54) While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.