Battery module including heat-shrinkable tube
11594780 · 2023-02-28
Assignee
Inventors
- Jae-Min Yoo (Daejeon, KR)
- Eun-Gyu Shin (Daejeon, KR)
- Jeong-O Mun (Daejeon, KR)
- Yoon-Koo Lee (Daejeon, KR)
Cpc classification
H01M50/24
ELECTRICITY
H01M10/6556
ELECTRICITY
H01M10/653
ELECTRICITY
H01M50/289
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
H01M10/6551
ELECTRICITY
International classification
H01M50/24
ELECTRICITY
H01M10/653
ELECTRICITY
H01M10/6556
ELECTRICITY
Abstract
A battery module having excellent cooling efficiency and allowing easy recycling of inner components at disposal applies a heat-shrinkable tube serving as a module housing and a heatsink to the battery module. The battery module includes a cell assembly including a plurality of pouch-type secondary batteries having electrode leads formed to protrude in a front and rear direction and stacked on each other in a left and right direction; a heatsink located to contact an outer surface of the cell assembly and having a coolant flow path for allowing a coolant to move therein; and a heat-shrinkable tube having a tubular shape with a hollow structure in which the cell assembly and the heatsink are located, the heat-shrinkable tube being thermally shrunken so that the cell assembly and the heatsink are in contact with each other.
Claims
1. A battery module, comprising: a cell assembly including a plurality of pouch-type secondary batteries having electrode leads formed to protrude in a front and rear direction and stacked on each other in a left and right direction; a heatsink located to contact an outer surface of the cell assembly and having a coolant flow path for allowing a coolant to move therein; a heat-shrinkable tube having a tubular shape with a hollow structure in which the cell assembly and the heatsink are located, the heat-shrinkable tube being thermally shrunken so that the cell assembly and the heatsink are pressed into contact with each other by a force applied thereto by the heat-shrinkable tube; and a bus bar assembly, wherein the heatsink has an inlet tube for injecting a coolant and an outlet tube for discharging a coolant, wherein the bus bar assembly includes a bus bar frame located at a front side or a rear side of the cell assembly at which an electrode lead is formed, the bus bar frame having a perforation hole through which at least one electrode lead passes and protrudes, the bus bar frame having a fixing structure opened so that the inlet tube and the outlet tube of the heatsink are respectively inserted and fixed therein, and wherein a plurality of embossing structures partially ridged outward are formed at an outer surface of the heat-shrinkable tube, each embossing structure being a portion of the heat-shrinkable tube having first thickness greater than a second thickness of a remaining portion of the heat-shrinkable tube where the embossing structures are not formed.
2. The battery module according to claim 1, wherein the heatsink has an accommodation groove formed to be dented inward to accommodate a lower portion of each of the plurality of pouch-type secondary batteries of the cell assembly.
3. The battery module according to claim 1, wherein an uneven structure is formed at an outer surface of the heatsink, which faces the heat-shrinkable tube.
4. The battery module according to claim 1, wherein the bus bar assembly further includes: a bus bar mounted to an outer surface of the bus bar frame and having a conductive metal to electrically connect the plurality of pouch-type secondary batteries.
5. The battery module according to claim 1, wherein the heat-shrinkable tube is configured to surround a portion of the outer surface of the bus bar assembly, and wherein a concave portion dented inward is formed at a portion of the heat-shrinkable tube surrounding the outer surface of the bus bar assembly so that the inlet tube and the outlet tube of the heatsink are exposed outward.
6. The battery module according to claim 1, wherein a thermally conductive adhesive is added in the heat-shrinkable tube.
7. The battery module according to claim 6, wherein the thermally conductive adhesive is interposed between the cell assembly and the heatsink.
8. The battery module according to claim 6, wherein the thermally conductive adhesive is interposed between the cell assembly and the heat-shrinkable tube.
9. A battery pack, comprising at least one battery module according to claim 1.
10. A vehicle, comprising the battery pack according to claim 9.
11. The battery module according to claim 1, further comprising: a module cover configured to cover an outer surface of the bus bar assembly.
12. The battery module according to claim 11, wherein the module cover is configured to cover at least a part of an outer portion of the bus bar assembly except for an external input/output terminal portion of the bus bar.
13. The battery module according to claim 1, wherein at least one of the plurality of embossing structures contains air therein.
14. The battery module according to claim 1, wherein the cell assembly includes a buffering pad interposed between two of the plurality of pouch-type secondary batteries.
Description
DESCRIPTION OF DRAWINGS
(1) The accompanying drawings illustrate a preferred embodiment of the present disclosure and together with the foregoing disclosure, serve to provide further understanding of the technical features of the present disclosure, and thus, the present disclosure is not construed as being limited to the drawing.
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BEST MODE
(13) Hereinafter, preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Prior to the description, it should be understood that the terms used in the specification and the appended claims should not be construed as limited to general and dictionary meanings, but interpreted based on the meanings and concepts corresponding to technical aspects of the present disclosure on the basis of the principle that the inventor is allowed to define terms appropriately for the best explanation.
(14) Therefore, the description proposed herein is just a preferable example for the purpose of illustrations only, not intended to limit the scope of the disclosure, so it should be understood that other equivalents and modifications could be made thereto without departing from the scope of the disclosure.
(15)
(16) Here, in
(17) Referring to
(18) Here, the cell assembly 100 may include a plurality of secondary batteries 110.
(19) At this time, the secondary battery 110 may be a pouch-type secondary battery 110. In particular, the pouch-type secondary battery 110 may include an electrode assembly (not shown), an electrolyte (not shown) and a pouch exterior 113.
(20) Here, the electrode assembly may be configured such that at least one positive electrode plate and at least one negative electrode plate are disposed with a separator interposed therebetween. More specifically, the electrode assembly may be classified into a wound type in which one positive electrode plate and one negative electrode plate are wound together with a separator, a stacking type in which a plurality of positive electrode plates and a plurality of negative electrode plates are alternately stacked with a separator interposed therebetween, and the like.
(21) Also, the pouch exterior 113 may be configured to have an outer insulating layer, a metal layer and an inner adhesive layer. The pouch exterior 113 may be configured to include a metal thin film, for example an aluminum thin film, in order to protect inner components such as the electrode assembly and the electrolyte, to enhance electrochemical properties by the electrode assembly and the electrolyte, and to improve heat dissipation. In addition, the aluminum thin film may be interposed between insulating layers made of an insulating material so as to secure electrical insulation with components inside the secondary battery 110 such as the electrode assembly and the electrolyte or with other components outside the secondary battery 110.
(22) In particular, the pouch exterior 113 may be composed of two pouches, at least one of which may have a concave inner space formed therein. In addition, the electrode assembly may be accommodated in the inner space of the pouch. Further, sealing portions S1, S2, S3, S4 are provided at outer circumferential surfaces of two pouches, and the sealing portions S1, S2, S3, S4 of the two pouches are fused to each other to seal the inner space in which the electrode assembly is accommodated.
(23) Each pouch-type secondary battery 110 may include an electrode lead 111 protruding in the front and rear direction, and the electrode lead 111 may include a positive electrode lead 111A and a negative electrode lead 111B.
(24) In more detail, the electrode lead 111 may be configured to protrude forward or rearward from the sealing portions S3, S4 located at the outer circumference of the front or rear side of the pouch exterior 113. In addition, the electrode lead 111 may serve as an electrode terminal of the secondary battery 110.
(25) For example, as shown in
(26) Thus, according to this configuration of the present disclosure, in one secondary battery 110, there is no interference between the positive electrode lead 111A and the negative electrode lead 111B, thereby widening the area of the electrode lead 111. In addition, a welding process between the electrode lead 111 and a bus bar 225 may be performed more easily.
(27) In addition, a plurality of pouch-type secondary batteries 110 may be included in the battery module 200 and arranged to be stacked in at least one direction. For example, as shown in
(28) Meanwhile, the terms indicating directions such as front, rear, left, right, upper and lower directions used herein may be changed depending on the position of an observer or the shape of an object. For the sake of convenience of description, in the present specification, directions are classified into front, rear, left, right, upper and lower directions, based on the F direction.
(29) The configuration of the pouch-type secondary battery 110 described above is obvious to those skilled in the art and thus will not be described in detail here. In addition, the cell assembly 100 according to the present disclosure may employ various kinds of secondary batteries known at the time of filing of this application.
(30)
(31) Meanwhile, referring to
(32) In addition, the heatsink 260 may have a coolant flow path 264 formed therein so that a coolant 261 moves therein. For example, the heatsink 260 may have a box form with an empty inside and a metal outer wall 263. Further, the coolant flow path 264 of the heatsink 260 may have an inner wall that forms a flow path through which the coolant moves.
(33) Moreover, the coolant 261 may be contained in the heatsink 260 or may be continuously supplied to the outside. For example, the coolant 261 may be water, Freon coolant, ammonia, acetone, methanol, ethanol, naphthalene, sulfur or mercury.
(34) Further, the heatsink 260 may include an outer wall 263 to form a tubular structure. In addition, the outer wall 263 may be made of a material with high thermal conductivity. For example, the material with high thermal conductivity may be aluminum or copper.
(35) In another embodiment, the heatsink 260 may include a heat accumulation unit (not shown) that absorbs heat generated from the secondary battery 110 to vaporize the coolant, and a heat dissipation unit (not shown) where the coolant vaporized at the heat accumulation unit is liquefied by releasing heat to the outside.
(36) Meanwhile, referring to
(37) Further, the heat-shrinkable tube 210 may have a heat shrinkable material whose volume is reduced at a particular temperature. For example, the heat-shrinkable tube 210 may be made using a polyester resin, a polyolefin resin or a polyphenylene sulfide resin. More specifically, the heat-shrinkable tube 210 may include at least one of polyvinyl chloride, polystyrene, polyethylene terephthalate (PET), polyolefin, nylon, polyvinyl chloride (PVC) and polybutylene terephthalate (PBT).
(38) In addition, the heat-shrinkable tube 210 may have a tubular shape in which a hollow structure is formed. For example, as shown in
(39) Moreover, the cell assembly 100 and the heatsink 260 may be located in the hollow structure of the heat-shrinkable tube 210. In this case, the heat-shrinkable tube 210 may be configured to surround a portion of the outer surface of the cell assembly 100 and the heatsink 260. Specifically, when viewed in the F direction, the heat-shrinkable tube 210 may be configured to be in close contact with a portion of the accommodation portion 115 of the secondary battery 110 located at the outermost side in the left and right direction among the plurality of pouch-type secondary batteries 110. That is, the heat-shrinkable tube 210 may be thermally shrunken by applying heat in a state where the cell assembly 100 and the heatsink 260 are accommodated therein, and the thermally shrunken portion of the heat-shrinkable tube 210 may be in close contact with a portion of the cell assembly 100.
(40) Further, the heat-shrinkable tube 210 may have a sidewall to protect the cell assembly 100 from external impact. For example, the heat-shrinkable tube 210 may have a sidewall that forms an inner space for accommodating the cell assembly 100. Specifically, the sidewall may include an upper wall W1, a right wall W4, a left wall W3 and a lower wall W2 formed at upper, lower, left and right sides.
(41) For example, as shown in
(42) Further, the heat-shrinkable tube 210 may be thermally shrunken such that the cell assembly 100 and the heatsink 260 are in close contact with each other. That is, the heat-shrinkable tube 210 may be thermally shrunken by applying heat in a state where the cell assembly 100 and the heatsink 260 are accommodated inside the hollow structure. At this time, the sidewall of the heat-shrinkable tube 210 may press a portion of the outer surface of the cell assembly 100 and the heatsink 260 in the inner direction of the battery module 200. Here, the ‘inner direction’ refers to a direction from the outside toward the center of the inside of the battery module.
(43) Thus, according to this configuration of the present disclosure, since the heat-shrinkable tube 210 is thermally shrunken by applying heat in a state where the cell assembly 100 and heatsink 260 are accommodated in the hollow structure and the thermally shrunken outer wall allows the cell assembly 100 and the heatsink 260 to be in close contact with each other, the spaced distance between the cell assembly 100 and the heatsink 260 is reduced and the contact area is increased, thereby realizing a uniform heat conduction distance between the cell assembly 100 and the heatsink 260 as a whole.
(44) As a result, the battery module 200 of the present disclosure may quickly discharge the heat generated during the operation of the battery module 200 to the outside through the heatsink 260 in close contact therewith with high thermal conductivity, and the plurality of secondary batteries 110 of the cell assembly are thermally balanced, thereby maximizing the life of the battery module 200.
(45) Further, the heat-shrinkable tube 210 may include a transparent material. Accordingly, if the battery module 200 includes the voltage sensing member 227, the state of the voltage sensing member 227 and the cell assembly 100 accommodated in the heat-shrinkable tube 210 may be visually checked, thereby facilitating the maintenance of the battery module 200.
(46)
(47) Referring to
(48) For example, as shown in
(49) Thus, according to this configuration of the present disclosure, as the accommodation groove G1 dented inward direction is formed at the outer surface 260a of the heatsink 260B facing the cell assembly 100, the plurality of pouch-type secondary batteries 110 of the cell assembly 100 pressurized by the outer sidewall of the thermally shrunken heat-shrinkable tube 210 may be in close contact with the accommodation grooves G1 of the heatsink 260B in a wider contact area. Accordingly, the heat dissipation efficiency of the battery module 200 may be increased, and the plurality of pouch-type secondary batteries 110 of the cell assembly 100 may be prevented from moving due to external impact at the outer surface 260a of the heatsink 260B.
(50)
(51) Referring to
(52) Moreover, a portion (not shown) of the thermally shrunken heat-shrinkable tube 210 may be thermally shrunken to closely contact the outer surfaces of the protrusion 269b and the insert 269a of the uneven structure 269.
(53) For example, as shown in
(54) Thus, according to this configuration of the present disclosure, since the uneven structure 269 is formed at the outer surface of the heatsink 260C facing the heat-shrinkable tube 210, the contact area between the heat-shrinkable tube 210 and the heatsink 260C may be effectively increased, and the heat-shrinkable tube 210 may be fixed to the insert 269a of the uneven structure 269.
(55) Accordingly, the bonding force (the friction force) between the heat-shrinkable tube 210 and the heatsink 260C may be increased. In addition, the heatsink 260C located inside the hollow structure of the heat-shrinkable tube 210 may be prevented from moving due to external impact. Further, since the heatsink 260C increases the contact area with the heat-shrinkable tube 210 to efficiently transfer the heat generated from the cell assembly 100 to the heat-shrinkable tube 210, the heat dissipation efficiency of the battery module 200 may be further enhanced.
(56) Meanwhile, referring to
(57)
(58) Meanwhile, referring to
(59) Specifically, the bus bar assembly 220 may be located at a front side or a rear side of the cell assembly 100 at which the electrode leads 111 are formed. In addition, the bus bar assembly 220 may include a bus bar frame 222. Further, the bus bar frame 222 may include an electrically insulating material. For example, the electrically insulating material may be plastic.
(60) Further, the bus bar assembly 220 may include a bus bar 225 having a conductive metal to electrically connect the plurality of pouch-type secondary batteries 110. For example, the conductive metal may be copper, copper alloy, aluminum, aluminum alloy, nickel, or the like. Also, the bus bar 225 may be mounted to an outer surface of the bus bar frame 222.
(61) Specifically, the bus bar 225 may be mounted and fixed to the outer side of the bus bar frame 222. In addition, the bus bar 225 may be provided in plural so that the plurality of bus bars 225 are arranged side by side in a left and right direction at the outer surface of the bus bar frame 222. Further, the plurality of bus bars 225 may have different electrical polarities depending on the location of the bus bar frame 222.
(62) Further, the bus bar frame 222 may have a perforation hole H1 through which at least one electrode lead 111 protrudes. Specifically, the ends of the plurality of electrode leads 111 may penetrate through the perforation hole H1 of the bus bar frame 222 to protrude from the secondary battery 110 in a front and rear direction. Accordingly, the perforation hole H1 may be located and sized such that the end of the electrode lead 111 inserted through the bus bar frame 222 is easily contacted and connected with a body of the bus bar 225.
(63) In addition, the bus bar frame 222 may have a fixing structure opened so that the inlet tube 265 and the outlet tube 267 of the heatsink 260 are inserted and fixed therein, respectively. Specifically, the fixing structure may be a fixing tube 222p having an opening perforated in a portion of the bus bar frame 222 in a front and rear direction.
(64) Further, the fixing tube 222p may have a tubular shape with a hollow structure. The fixing tube 222p may have a diameter that allows the inlet tube 265 and the outlet tube 267 of the heatsink 260 to be inserted and fixed therein. In addition, the fixing tube 222p may be formed at a portion of the bus bar frame 222 located corresponding to the inlet tube 265 and the outlet tube 267.
(65) For example, as shown in
(66) Thus, according to this configuration of the present disclosure, since the fixing structure opened so that the inlet tube 265 and the outlet tube 267 of the heatsink 260 are respectively inserted and fixed therein is formed at the bus bar frame 222 of the bus bar assembly 220, the heatsink 260 may prevent the bus bar assembly 220 from moving due to external impact. Accordingly, it is possible to effectively prevent the contact coupling between the bus bar 225 mounted to the bus bar assembly 220 and the electrode leads 111 of the plurality of secondary batteries 110 of the cell assembly 100 from being released.
(67) Referring to
(68) In addition, the module cover 240 may have an open portion H2 formed at an upper portion thereof so that a connector 227a configured to be electrically connected to an external BMS device of a voltage sensing member 227 may be exposed to the outside.
(69) Also, the module cover 240B located at the rear side of the battery module 200 may be configured to cover the bus bar 225 mounted to the bus bar assembly 220.
(70)
(71) Referring to
(72) For example, as shown in
(73) At this time, an open portion O1 (
(74) In addition, a concave portion C1 dented inward may be formed at a portion of the heat-shrinkable tube 210 surrounding the outer surface of the bus bar assembly 220, such that the inlet tube 265 and the outlet tube 267 of the heatsink 260 are exposed to the outside.
(75) For example, as shown in
(76) Thus, according to this configuration of the present disclosure, since the concave portion C1 capable of exposing the inlet tube 265 and the outlet tube 267 of the heatsink 260 is formed at the heat-shrinkable tube 210, the heatsink 260 may be easily connected to a coolant supply device that supplies a coolant to the heatsink 260.
(77)
(78) Referring to
(79) For example, as shown in
(80) Thus, according to this configuration of the present disclosure, since the open holes C2 perforated to expose the inlet tube 265 and the outlet tube 267 of the heatsink 260 are formed at the heat-shrinkable tube 210, the heatsink 260 may be easily connected to a coolant supply device that supplies a coolant to the heatsink 260. In addition, since the inlet tube 265 and outlet tube 267 of the heatsink 260 are inserted into the open holes C2 of the heat-shrinkable tube 210, the outer surface of the heat-shrinkable tube 210 may be stably fixed to the outer surface of the bus bar frame 222.
(81)
(82) Referring to
(83) In addition, the embossing structure E1 may be a portion having a relatively greater thickness in the outer direction than the remaining portion where the embossing structure E1 of the heat-shrinkable tube 210C is not formed.
(84) In another embodiment, the embossing structure E1 may contain air therein and may be configured to have high elasticity as a whole. Alternatively, the embossing structure E1 may contain a material with high elastic force, such as rubber.
(85) For example, as shown in
(86) Thus, according to this configuration of the present disclosure, since the plurality of embossing structures E1 are further formed at the heat-shrinkable tube 210C, it is possible to effectively absorb external shocks and minimize impacts applied to the cell assembly 100 accommodated therein, thereby effectively improving the safety and durability of the battery module 200.
(87) Referring to
(88) In addition, the thermally conductive adhesive 250 may be added to be interposed between the cell assembly 100 and the heatsink 260. Specifically, the thermally conductive adhesive 250 may be added to contact the lower surface of the plurality of secondary batteries 110 of the cell assembly 100 and the upper surface of the heatsink 260. For example, as shown in
(89) Thus, according to this configuration of the present disclosure, since the thermally conductive adhesive 250 is added to be interposed between the cell assembly 100 and the heatsink 260, the empty space created between the plurality of secondary batteries 110 and the heatsink 260 may be minimized, thereby reducing an amount of air occupied by the empty space. Also, since the thermal conductivity of heat generated from the secondary batteries 110 may be dramatically increased, it is possible to improve the cooling efficiency of the battery module 200.
(90) In addition, the cell assembly 100 may include a buffering pad 120 interposed between the plurality of secondary batteries 110. Specifically, the buffering pad 120 may have a material whose volume is easily changed according to an external pressing force. For example, the material of the buffering pad 120 may be a sponge or a nonwoven fabric. For example, as shown in
(91) Therefore, according to this configuration of the present disclosure, when the battery module of the present disclosure is charged or discharged, the buffering pad 120 may absorb the force caused by the volume change of the plurality of secondary batteries of the cell assembly, thereby giving a buffer function. Accordingly, it is possible to prevent the cell assembly located inside the heat-shrinkable tube from moving.
(92)
(93) Referring to
(94) For example, as shown in
(95) Thus, according to this configuration of the present disclosure, if the thermally conductive adhesive 250 is added between the cell assembly 100 and the heat-shrinkable tube 210, the empty space formed between the heat-shrinkable tube 210 and the plurality of secondary batteries 110 may be minimized, thereby reducing an amount of air occupied by the empty space. Also, since the thermal conductivity of heat generated from the secondary batteries 110 may be dramatically increased, it is possible to improve the cooling efficiency of the battery module 200.
(96) Further, referring to
(97) In addition, the battery pack according to the present disclosure may be applied to a vehicle (not shown) such as an electric vehicle. In other words, the vehicle according to the present disclosure may include the battery pack according to the present disclosure.
(98) Further, the energy storage system (not shown) may store power generated by the power generation unit and supplying the power to a power grid. In addition, the power grid may be a commercial grid or a grid of a small district. Moreover, in some cases, the energy storage system may be a power storage device that stores power at smart grid, and the energy storage system may be a load or a power converter that directly consumes the produced power.
(99) Meanwhile, even though the terms indicating directions such as upper, lower, left, right, front and rear directions are used in the specification, it is obvious to those skilled in the art that these merely represent relative positions for convenience in explanation and may vary based on a position of an observer or an object.
(100) The present disclosure has been described in detail. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the disclosure, are given by way of illustration only, since various changes and modifications within the scope of the disclosure will become apparent to those skilled in the art from this detailed description.
(101) TABLE-US-00001 Reference Signs 200: battery module 100: cell assembly 110: pouch-type secondary battery 111: electrode lead 220: bus bar assembly 222: bus bar frame 225: bus bar 240A, 240B: module cover 210: heat-shrinkable tube W1, W2, W3, W4: outer wall, lower wall, left wall, right wall E1: embossing structure 250: thermally conductive adhesive 260: heatsink 265, 267: inlet tube, outlet tube 264: coolant flow path 261: coolant 222p: fixing tube G1: accommodation groove 269: uneven structure
INDUSTRIAL APPLICABILITY
(102) The present disclosure relates to a battery module including a heat-shrinkable tube. Also, the present disclosure is applicable to industries related to a battery pack or a vehicle, which include the battery module.