Secondary Battery and Device Including the Same
20230155264 · 2023-05-18
Assignee
Inventors
Cpc classification
H01M10/6556
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
H01M50/538
ELECTRICITY
H01M10/6551
ELECTRICITY
H01M10/654
ELECTRICITY
International classification
Abstract
A secondary battery includes a jelly roll electrode assembly in which a cathode sheet, an anode sheet, and a separator interposed between the cathode sheet and the anode sheet are wound together. The secondary battery also includes a battery case to which the jelly roll electrode assembly is mounted. The battery case is configured such that a flow path recessed toward the center of the jelly roll electrode assembly is formed in the lower part of the battery case. The flow path includes a first flow path and a second flow path located in the center of the first flow path, and wherein an upper part of the second flow path is opened toward the upper part of the first flow path.
Claims
1. A secondary battery comprising: a jelly roll electrode assembly in which a cathode sheet, an anode sheet, and a separator interposed between the cathode sheet and the anode sheet are wound together; and a battery case to which the jelly roll electrode assembly is mounted, wherein the battery case is configured such that a flow path recessed toward a center of the jelly roll electrode assembly is formed in a lower part of the battery case, wherein the flow path comprises a first flow path and a second flow path located in a center of the first flow path, and wherein an upper part of the second flow path is opened toward an upper part of the first flow path.
2. The secondary battery of claim 1, wherein: a protrusion is formed in at least any one of the first flow path and the second flow path.
3. The secondary battery of claim 2, wherein: the protrusion is formed on the first flow path.
4. The secondary battery of claim 3, wherein: the protrusion comprises at least two protrusions.
5. The secondary battery of claim 4, wherein: the protrusion is formed of a cooling fin.
6. The secondary battery of claim 4, wherein: the at least two protrusions are spaced apart from each other by the same distance.
7. The secondary battery of claim 4, wherein: the protrusions are formed in a linear shape or a semicircular shape.
8. secondary battery of claim 1, wherein: a diameter of the first flow path is smaller than a diameter of a center of the jelly roll electrode assembly.
9. The secondary battery of claim 8, wherein: a height of the first flow path and the second flow path is smaller than a height of the jelly roll electrode assembly.
10. The secondary battery of claim 1, wherein: a nozzle is connected to a lower part of the second flow path, and a positive or negative pressure is applied from the nozzle to an inside of the second flow path.
11. The secondary battery of claim 1, wherein: at least two connection parts are located between the first flow path and the second flow path.
12. The secondary battery of claim 11, wherein: the connection part is extended from a lower part to an upper part of the first flow path or the second flow path.
13. A device comprising the secondary battery as set forth in claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0028] Hereinafter, various embodiments of the present disclosure will be described in detail with reference to the accompanying drawings so that those skilled in the art can easily carry out them. The present disclosure may be modified in various different ways, and is not limited to the embodiments set forth herein.
[0029] Portions that are irrelevant to the description will be omitted to clearly describe the present disclosure, and like reference numerals designate like elements throughout the specification.
[0030] Further, in the drawings, the size and thickness of each element are arbitrarily illustrated for convenience of description, and the present disclosure is not necessarily limited to those illustrated in the drawings. In the drawings, the thickness of layers, regions, etc. are exaggerated for clarity. In the drawings, for convenience of description, the thicknesses of some layers and regions are exaggerated.
[0031] Further, throughout the specification, when a portion is referred to as “including” a certain component, it means that the portion can further include other components, without excluding the other components, unless otherwise stated.
[0032] Further, throughout the specification, when referred to as “planar”, it means when a target portion is viewed from the upper side, and when referred to as “cross-sectional”, it means when a target portion is viewed from the side of a cross section cut vertically.
[0033] Now, the secondary battery according to an embodiment of the present disclosure will be described. However, the secondary battery herein is not limited to a cylindrical battery, and secondary batteries having various shapes may be described with identical or similar contents.
[0034]
[0035] Referring to
[0036] Thereby, the secondary battery 100 according to the present embodiment is configured such that the flow paths 130 and 140 are formed in the lower part of the battery case 120 and thus, the fluid flowing into and moving to the flow paths 130 and 140 can absorb heat generated in the center of the jelly roll electrode assembly 110. Thereby, the secondary battery 100 according to the present embodiment can improve the cooling performance.
[0037] The flow paths 130 and 140 include a first flow path 130 and a second flow path 140 located at the center of the first flow path 130. Here, the upper part of the second flow path 140 is opened toward the upper part of the first flow path 130. Thereby, the fluid flowing into or flowing out to the first flow path 130 from the second flow path 140 may move in all directions toward the upper part of the first flow path 130.
[0038] Further, the first flow path 130 and the second flow path 140 allow the fluid to move through their respective upper parts. In one example, the fluid flowing into the second flow path 140 moves to the upper part of the second flow path 140 and flows into the upper part of the first flow path 130. The fluid flowing into the upper part of the first flow path 130 may move toward the lower part of the first flow path 130. On the contrary, the fluid flowing into the first flow path 130 moves to the upper part of the first flow path 130 and flows into the upper part of the second flow path 140. The fluid flowing into the upper part of the second flow path 140 may move toward the lower part of the first flow path 130.
[0039] Thereby, the flow paths 130 and 140 include the first flow path 130 and the second flow path 140, and the fluid flowing into the flow paths 130 and 140 can sequentially move through the first flow path 130 and the second flow path 140, so that the movement path of the fluid can be formed long. Further, the long-formed fluid movement path can increase the time during which the fluid flows into the flow paths 130 and 140. Further, the cooling performance of the jelly roll electrode assembly 110 can be improved.
[0040] In addition, the flow paths 130 and 140 allow the fluid to move through the upper parts of the first flow path 130 and the second flow path 140, respectively, so that a movement path formed by the first flow path 130 and the second flow path 140 may be formed longer. Further, cooling can be easily performed not only at the center of the jelly roll electrode assembly 110 adjacent to the outer surface of the battery case, but also at the upper end of the center of the jelly roll electrode assembly 110.
[0041] Referring to
[0042] Referring to
[0043] Thereby, the connection part 150 can fix the second flow path 140 to the first flow path 130 without interfering with the fluid flowing into or moving to the first flow path 130 and the second flow path 140.
[0044] As an example, the connection part 150 can be formed of a material such as a cooling fin. However, the material of the connection part 150 is not limited to the cooling fin, and any member having high thermal conductivity can be included in the present embodiment.
[0045] Therefore, the connection part 150 can increase the movement time of the fluid moving along the connection part 150 in addition to the effect of fixing the first flow path 130 and the second flow path 140 to each other, and thus the cooling performance can also be further improved.
[0046]
[0047] Referring to
[0048] Similarly, referring to
[0049] Therefore, in the secondary battery 100 according to the present embodiment, when the nozzle 150 is connected to the flow paths 130 and 140 and a positive or negative pressure is applied, the fluid in the inside of the flow paths 130 and 140 may move through a movement path formed by the first flow path 130 and the second flow path 140. Thereby, cooling of the center of the jelly roll electrode assembly 110 located adjacent to the flow paths 130 and 140 can be smoothly performed, and the cooling performance can be further improved by the pressure applied from the nozzle 150.
[0050]
[0051] Referring to
[0052] As an example, the protrusion 135 may be formed on the first flow path 130. Here, the protrusion 135 may be formed on the first flow path 130 and may be protruded toward the second flow path 140. Thus, the protrusion 135 is formed on the first flow path 130 adjacent to the jelly roll electrode assembly 110, so that the cooling performance of the jelly roll electrode assembly 110 can be further improved.
[0053] However, the position of the protrusion 135 is not limited thereto, and can be formed on both the first flow path 130 and the second flow path 14.
[0054] More specifically, the height of the protrusion 135 may be smaller than the distance between the first flow path 130 and the second flow path 140. Therefore, the first flow path 130 includes the protrusion 135, so that the movement time of the fluid flowing between the first flow path 130 and the second flow path 140 can be lengthened, and the cooling performance can also be improved.
[0055] Further, the protrusion 135 may include at least two protrusions. The at least two protrusions may be spaced apart from each other by the same distance. Thereby, in the secondary battery 100 according to the present embodiment, the degree of cooling by the fluid flowing between the first flow path 130 and the second flow path 140 may be uniform. However, the present disclosure is not limited thereto, and the at least two protrusions may be spaced apart asymmetrically or by a non-uniform distance.
[0056] Further, the protrusion 135 includes at least two protrusions, and the protrusions may be formed of cooling fins. Thereby, the secondary battery 100 according to the present embodiment can further improve the cooling performance by the fluid flowing between the first flow path 130 and the second flow path 140.
[0057] Further, referring to
[0058]
[0059] Referring to
[0060] Thereby, the length of the protrusion 135 extending along between the first flow path 130 and the second flow path 140 can be maximized, so that the movement time of the fluid flowing between the first flow path 130 and the second flow path 140 can be lengthened. That is, the contact time between the fluid and the first flow path 130 relative to the amount of the injected fluid can be effectively increased, and the cooling performance can also be improved accordingly.
[0061] Referring to
[0062] Thereby, the protrusion 135 includes a plate-shaped projection, so that the contact area with the fluid flowing between the first flow path 130 and the second flow path 140 can be increased, and the cooling performance can also be improved accordingly. In addition, the protrusion 135 is formed on the first flow path 130 adjacent to the jelly roll electrode assembly 110, so that the cooling performance of the jelly roll electrode assembly 110 can be further improved.
[0063] Referring to
[0064] Thereby, the protrusion 135 has a shape extending along the first flow path 130, so that the contact area with the fluid flowing between the first flow path 130 and the second flow path 140 can be maximized, and the cooling performance can also be improved accordingly. In addition, the protrusion 135 is formed on the first flow path 130 adjacent to the jelly roll electrode assembly 110, so that cooling performance for the jelly roll electrode assembly 110 can be further improved.
[0065] The above-mentioned secondary battery can be applied to various devices. Such a device can be applied to a vehicle means such as an electric bicycle, an electric vehicle, or a hybrid vehicle, but the present disclosure is not limited thereto, and is applicable to various devices that can use a secondary battery.
[0066] Although preferred embodiments of the present disclosure have been described in detail above, the scope of the present disclosure is not limited thereto, and various modifications and improvements can be made by those skilled in the art using the basic concepts of the present disclosure defined in the appended claims, which also falls under the scope of the present disclosure.
DESCRIPTION OF REFERENCE NUMERALS
[0067] 100: secondary battery [0068] 110: jelly roll electrode assembly [0069] 120: battery case [0070] 130: first flow path [0071] 140: second flow path [0072] 150: connection part [0073] 200: nozzle