Secondary Battery
20210203019 ยท 2021-07-01
Assignee
Inventors
Cpc classification
H01M10/653
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
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
H01M10/6551
ELECTRICITY
International classification
H01M10/653
ELECTRICITY
H01M10/654
ELECTRICITY
Abstract
A secondary battery according to the present invention, in which an electrode assembly is built in a cylindrical can, a top cap connected to a positive electrode of the electrode assembly is coupled to an upper end of the can, and the can is connected to a negative electrode. The secondary battery includes a cooling member which receives heat generated in the electrode assembly to release the heat and is coupled to a lower portion of the can, wherein the cooling member has a plurality of cooling pins disposed parallel to each other.
Claims
1. A secondary battery in which an electrode assembly is built in a cylindrical can, a top cap connected to a positive electrode of the electrode assembly is coupled to an upper end of the can, and the can is connected to a negative electrode, the secondary battery comprising: a cooling member, which is configured to receive heat generated in the electrode assembly and to release the heat, is coupled to a lower portion of the can, wherein the cooling member comprises a plurality of cooling pins disposed parallel to each other.
2. The secondary battery of claim 1, wherein the cooling pins are disposed in a direction parallel to a longitudinal direction of the can.
3. The secondary battery of claim 2, wherein a bottom surface of the can is provided in a plane that is perpendicular to the longitudinal direction of the can.
4. The secondary battery of claim 2, wherein a bottom surface of the can gradually increases in height from an edge of the bottom surface toward a center of the bottom surface.
5. The secondary battery of claim 4, wherein the electrode assembly has a shape in which a portion of the electrode assembly contacting the bottom surface of the can is concavely recessed to correspond to a shape of the bottom surface of the can and is built in the can to fill a recessed space formed by the shape of the bottom surface of the can.
6. The secondary battery of claim 4, wherein, the cooling pins disposed at the edge of the bottom surface of the can have a relatively short length, and the cooling pins gradually increase in length toward a center of the bottom surface of the can.
7. The secondary battery of claim 6, wherein the electrode assembly has a through-hole that is punched in the center in the longitudinal direction of the can, and the cooling member comprises a center rod inserted into the through-hole.
8. The secondary battery of claim 7, wherein a negative electrode of the electrode assembly is electrically connected to the center rod, and the center rod is electrically connected to the can.
9. The secondary battery of claim 8, wherein the negative electrode of the electrode assembly is electrically connected to an upper end of the center rod.
10. The secondary battery of claim 9, wherein one of the cooling pins has a diameter greater than all other cooling pins.
11. The secondary battery of claim 10, wherein the cooling pin having the diameter greater than that of all the other pins protrudes further downward than the all of the other cooling pins.
12. The secondary battery of claim 10, wherein the cooling pin having the diameter greater than that of all of the other cooling pins is disposed at a position corresponding to the center of the bottom surface of the can.
13. The secondary battery of claim 1, wherein the cooling member has a thermal conductivity equal to the can or is made of a material having thermal conductivity greater than that of the can.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
MODE FOR CARRYING OUT THE INVENTION
[0031] Hereinafter, preferred embodiments 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.
[0032] In order to clearly illustrate the present invention, parts that are not related to the description are omitted, and the same or similar components are denoted by the same reference numerals throughout the specification.
[0033] Also, terms or words used in this specification and claims should not be restrictively interpreted as ordinary meanings or dictionary-based meanings, but should be interpreted as meanings and concepts conforming to the scope of the present invention on the basis of the principle that an inventor can properly define the concept of a term to describe and explain his or her invention in the best ways.
[0034] The present invention relates to a cylindrical type secondary battery in which an electrode assembly 30 is mounted within a cylindrical can 10. A top cap 20 connected to a positive electrode tab 40 of the electrode assembly 30 is coupled to an upper end of the can 10, and the can is connected to a negative electrode tab 60. Also, a cooling member 50 is mounted at a lower portion (a side opposite to the top cap) of the can 10. Hereinafter, embodiments of the present invention will be described in more detail with reference to the accompanying drawings.
Embodiment 1
[0035]
[0036] Referring to the drawings, a cooling member 50, which receives heat generated in an electrode assembly 30 and a can 10 to release the heat, is mounted on a lower portion of the can 10.
[0037] The cooling member 50 has a circular plate shape with a predetermined diameter to be mounted on a bottom surface 11 of the can 10. A plurality of cooling pins 51 disposed parallel to each other on a surface opposite to the surface attached to the bottom surface 11 of the can 10 protrude from the cooling member 50. Here, the cooling member 50 may have the same thermal conductivity as the can 10 or be made of a material having thermal conductivity greater than that of the can 10.
[0038] The cooling pins 51 serve to increase in contact area with air by allowing the cooling member 50 to increase in entire surface area, thereby increasing in heat dissipation.
[0039] As illustrated in the drawings, the cooling pins 51 are disposed in a direction (vertical direction) parallel to a longitudinal direction (vertical direction in
Embodiment 2
[0040]
[0041] In this embodiment, the bottom surface 11 of the can 10 has a shape that gradually increases in height from an edge of the bottom surface 11 toward a center, i.e., is concavely recessed upward.
[0042] As described above, the shape in which the bottom surface 11 is concavely recessed may increase in robustness to suppress deformation of the can 10 due to an increase in internal pressure. That is, the structure having the concavely recessed shape such as a bottom surface of a beverage can containing carbonated beverage may provide stability to maximally suppress the deformation of the can 10 (when an internal electrolyte is evaporated by heat generation to increase in internal pressure).
[0043] Furthermore, a space formed by the shape of the bottom surface 11 of the can 10 may be configured so that a lower portion of the electrode assembly 30 is expanded to be filled as illustrated in
[0044] Here, when the electrode assembly 30 fills the recessed space formed by the shape of the bottom surface 11 of the can 10, the electrode assembly 30 may increase in capacity, as well as, a contact area between the electrode assembly 30 and the can 10 may increase to more facilitate thermal conduction. Particularly, the portion of the electrode 30, which fills the recessed space may directly contact the cooling member 50 (with the bottom surface of the can therebetween) to more quickly release heat generated in the electrode assembly 30.
[0045] Also, in this embodiment, in the cooling pins 51 formed on the cooling member 50 to correspond to the shape of the bottom surface 11 of the can 10 so that the bottom (i.e., the bottom of the can) of the secondary is maintained in the flat state as illustrated in
[0046] Furthermore, the electrode assembly 30 has a through-hole (into which the center rod is inserted in
[0047] The center rod 52 enters the hole 12 that is punched in the bottom surface 11 of the can 10 and then is inserted into the through-hole. Here, the center rod 52 enters a height at which the center rod 52 does not interfere with a positive electrode tab 40. Since the center rod 52 is disposed at the center of the electrode assembly 30, the heat generated in the electrode assembly 30 may be more quickly conducted to the cooling member 50 that is disposed therebelow.
[0048] In this embodiment, since it is difficult to weld a negative electrode tab 60 to the bottom surface of the can 10 because the bottom surface 11 of the can 10 is not flat, the negative electrode tab 60 is welded to the center rod 52.
Embodiment 3
[0049]
[0050] A secondary battery according to Embodiment 3 of the present invention has the same structure as that according to Embodiment 2 except that one of the cooling pins 51 has a diameter greater than that of each of other cooling pins.
[0051] Here, the cooling pin 51a having the larger diameter is disposed at a position corresponding to a center of a bottom surface 11. Since the cooling pin 51a has a length that protrudes further downward than each of other cooling pins 51, the cooling pin 51a may be used as a negative electrode terminal (electrically connected to an external device).
[0052] The present invention having the above-described constituents may have the effect in which a cooling member 50 having the plurality of cooling pins 51 are coupled to a lower portion of the can 10 to more quickly release the heat generated in the electrode assembly 30.
[0053] Since the bottom surface 11 of the can 10 has a shape that gradually increases in height from an edge to a center of the bottom surface 11, the structural robustness may increase to prevent shape deformation from occurring when swelling occurs due to heat generation.
[0054] Also, the electrode assembly 30 may have a shape that fills a recessed space formed by the shape of the bottom surface of the can to correspond to the shape of the bottom surface 11 of the can 10, thereby increasing in capacity. In addition, a contact area between the electrode assembly and the can may increase to increase in conductivity, thereby improving cooling performance.
[0055] Furthermore, in the electrode assembly 30, the through-hole may be punched in the center in a longitudinal direction of the can 10, and the cooling member 50 may comprise a center rod 52 inserted into the through-hole. As a result, the heat generated in the electrode assembly 30 may be more efficiently released to the outside.
[0056] A negative electrode tab 60 of the electrode assembly 30 is electrically connected to the center rod 52, and thus, the center rod 52 is electrically connected to the can 10. Also, one 51a of the cooling pins 51 may have a diameter greater than that of the other cooling pin. Here, the cooling pin 51a having the larger diameter may be formed at a position corresponding to the center of the bottom surface of the can, and thus, the cooling pin 51a may be used as a negative electrode terminal. Also, since the cooling pin 51a to be used as the negative electrode terminal more increases in diameter, resistance may be reduced to more facilitate the heat release.
[0057] Also, when the cooling pin 51a increases in diameter, a contact area with an external terminal may increase to significantly facilitate the contact with a terminal of a charging/discharging device when the secondary battery is charged and discharged.
[0058] While the embodiments of the present invention have been described with reference to the specific embodiments, it will be apparent to those skilled in the art that various changes and modifications may be made without departing from the spirit and scope of the invention as defined in the following claims.