Battery module
11342632 · 2022-05-24
Assignee
Inventors
- Jung-Hoon LEE (Daejeon, KR)
- Dal-Mo KANG (Daejeon, KR)
- Sang-Woo RYU (Daejeon, KR)
- Jeong-O Mun (Daejeon, KR)
- Jin-Yong Park (Daejeon, KR)
- Ho-June Chi (Daejeon, KR)
Cpc classification
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
H01R4/027
ELECTRICITY
Y02T10/70
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
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
H01R43/0263
ELECTRICITY
H01M50/553
ELECTRICITY
B60K6/28
PERFORMING OPERATIONS; TRANSPORTING
B60L50/64
PERFORMING OPERATIONS; TRANSPORTING
International classification
H01M50/502
ELECTRICITY
H01M50/20
ELECTRICITY
B60L50/64
PERFORMING OPERATIONS; TRANSPORTING
B60K6/28
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A battery module includes a plurality of pouch-type secondary batteries arranged to be stacked in at least one direction, each secondary battery having an electrode lead, and a bus bar made of an electrically conductive material and bonded to at least two electrode leads of corresponding secondary batteries to electrically connect the corresponding secondary batteries to each other. Each bonded electrode lead may be configured to protrude from the corresponding secondary battery in a front and rear direction, and at least one of left and right side surfaces of each bonded electrode lead may be bonded to the bus bar.
Claims
1. A battery module, comprising: a plurality of pouch-type secondary batteries arranged to be stacked in at least one direction, each secondary battery having an electrode lead; and a bus bar made of an electrically conductive material and bonded to at least two electrode leads of corresponding secondary batteries to electrically connect the corresponding secondary batteries to each other, wherein each bonded electrode lead is configured to protrude from the corresponding secondary battery in a front and rear direction, and at least one of left and right side surfaces of each bonded electrode lead is bonded to the bus bar, wherein the left and right side surfaces of each bonded electrode lead have larger areas than upper and lower surfaces of each bonded electrode lead, and wherein the left and right side surfaces of each bonded electrode lead are not bent into contact with the bus bar.
2. The battery module according to claim 1, wherein the bus bar includes a main frame having at least one hole formed therein so that one end of each bonded electrode lead extends therethrough, the at least one hole having at least one inclined surface so that a width of the hole in the horizontal direction is continuously increased in a direction along which each bonded electrode lead is inserted into the hole.
3. The battery module according to claim 2, wherein the bus bar includes a main frame having at least one hole formed therein so that one end of each bonded electrode lead extends therethrough and a bonding plate having a front surface, a rear surface and side portions, based on the front and rear direction, and wherein one side portion of the bonding plate is bonded to one side surface of the left or right side surface of one of the bonded electrode leads.
4. The battery module according to claim 3, wherein the bonding plate is bonded to a front surface of the main frame so that an outwardly exposed front surface of the bonding plate protrudes to the front, based on an outwardly exposed front surface of the main frame.
5. The battery module according to claim 4, wherein at least one protrusion is formed at the one side portion of the bonding plate to protrude in a left direction or a right direction, and wherein the at least one protrusion is bonded to an upper or lower surface of one end of the one of the bonded electrode leads.
6. The battery module according to claim 5, wherein the at least one protrusion is formed at a top portion or a bottom portion of the one side portion of the bonding plate, or the top portion and the bottom portion of the one side portion of the bonding plate.
7. The battery module according to claim 4, wherein at least one protrusion is formed at each of the side portions of the bonding plate.
8. The battery module according to claim 3, wherein the bus bar further includes at least one fixing plate closely adhered to the one of the bonded electrode leads, and wherein the fixing plate presses the other side surface of the left or right side surface of the one of the bonded electrode leads so that the one side surface of the one of the bonded electrode leads is closely adhered to the one side portion of the bonding plate.
9. The battery module according to claim 8, wherein the bus bar further includes at least one guide plate, the guide plate being connected to the fixing plate, the guide plate being configured to move the fixing plate in a left direction and a right direction.
10. The battery module according to claim 1, wherein the bus bar includes a main frame having at least one hole formed therein so that one end of each bonded electrode lead extends therethrough, the main frame including: a bar-shaped top bar located at an upper portion of the main frame and extending in a horizontal direction, when the main frame stands up in an upper and lower direction; a bar-shaped bottom bar located at a lower portion of the main frame and extending in the horizontal direction; and an extension configured to connect the top bar and the bottom bar.
11. The battery module according to claim 10, wherein the extension has at least one inclined surface so that a thickness of the extension in the horizontal direction is continuously increased in a direction along which each bonded electrode lead is inserted into the hole.
12. The battery module according to claim 10, wherein the extension has at least one opening perforated in a direction along which each bonded electrode lead is inserted into the hole.
13. A battery pack, comprising a battery module according to claim 1.
14. A vehicle, comprising the battery pack according to claim 13.
15. A battery module, comprising: a plurality of pouch-type secondary batteries arranged to be stacked in at least one direction, each secondary battery having an electrode lead; and a bus bar made of an electrically conductive material and bonded to at least two electrode leads of corresponding secondary batteries to electrically connect the corresponding secondary batteries to each other, wherein each bonded electrode lead is configured to protrude from the corresponding secondary battery in a front and rear direction, and at least one of left and right side surfaces of each bonded electrode lead is bonded to the bus bar, wherein the left and right side surfaces of each bonded electrode lead have larger areas than upper and lower surfaces of each bonded electrode lead, wherein the bus bar includes a main frame having at least one hole formed therein so that one end of each bonded electrode lead extends therethrough, wherein the bus bar includes a bonding plate having a front surface, a rear surface and side portions, based on the front and rear direction, wherein one side portion of the bonding plate is bonded to one side surface of the left or right side surface of one of the bonded electrode leads, wherein the bus bar further includes at least one fixing plate closely adhered to the one of the bonded electrode leads, and wherein the fixing plate presses the other side surface of the left or right side surface of the one of the bonded electrode leads so that the one side surface of the one of the bonded electrode leads is closely adhered to the one side portion of the bonding plate.
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
(14) 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. 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) The embodiments of the present disclosure are provided to more fully describe the present disclosure to those skilled in the art, and the shape and size of components in the figures may be exaggerated, omitted or schematically illustrated for better understanding. Thus, the size or ratio of components does not entirely reflect an actual size or ratio.
(16)
(17) Referring to
(18) The secondary battery 100 may be a pouch-type secondary battery 100. In particular, the pouch-type secondary battery 100 may include an electrode assembly, an electrolyte and a pouch exterior.
(19) 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.
(20) Also, the pouch exterior may be configured to have an outer insulating layer, a metal layer and an inner adhesive layer. The pouch exterior 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 100 such as the electrode assembly and the electrolyte or with other components outside the secondary battery 100.
(21) In particular, the pouch exterior 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. Also, sealing portions are provided at outer circumferential surfaces of two pouches, and the sealing portions are fused to each other to seal the inner space in which the electrode assembly is accommodated.
(22) Each pouch-type secondary battery 100 may include an electrode lead 111, and the electrode lead 111 may include a positive electrode lead 111 and a negative electrode lead 112. Here, as shown in
(23) More specifically, the left and right side surfaces of the electrode leads 111, 112 are formed as upper and lower broad surfaces and protrude from the sealing portion of the pouch exterior located in a front and rear direction. The electrode leads 111, 112 may serve as electrode terminals of the secondary battery 100.
(24) Further, the positive electrode lead 111 and the negative electrode lead 112 may be provided in opposite directions with respect to the center of the secondary battery 100. In other words, each secondary battery 100 may be configured such that the electrode leads 111, 112 protrude forward and backward, respectively. For example, as shown in
(25) Thus, according to this configuration of the present disclosure, in one secondary battery 100, there is no interference between the positive electrode lead 111 and the negative electrode lead 112, thereby widening the area of the electrode lead 111. In addition, a welding process between the electrode leads 111 and a welding process between the electrode lead 111 and the bus bar 200 may be performed more easily.
(26) A plurality of pouch-type secondary batteries 100 may be included in the battery module 400 and arranged to be stacked in at least one direction. For example, as shown in
(27) Meanwhile, the terms indicating directions such as front, rear, left, right, upper and lower directions 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.
(28) The configuration of the pouch-type secondary battery 100 described above is obvious to those skilled in the art and thus is not described in detail. In addition, the battery module 400 according to the present disclosure may employ various secondary batteries 100 known at the time of filing of this application.
(29) Meanwhile, the battery module 400 may include a bus bar 200.
(30) Here, the bus bar 200 may be made of an electrically conductive metal material having relatively high electric conductivity. For example, the bus bar 200 may have at least one electrically conductive material selected from nickel, copper, aluminum, lead and tin. As an example, the bus bar 200 may include a copper material. However, the present disclosure is not necessarily limited thereto, and various metals may also be used as the material of the bus bar 200.
(31) Also, the bus bar 200 may be bonded to at least two of the electrode leads 111, 112 of the plurality of secondary batteries 100 to electrically connect the plurality of secondary batteries 100.
(32) For example, the bus bar 200 may bond two or more electrode leads 111 having the same polarity so that the plurality of secondary batteries 100 are electrically connected in parallel. Alternatively, the bus bar 200 may bond the electrode leads 111, 112 having different polarities so that the plurality of secondary batteries 100 are electrically connected in series. Moreover, the bus bar 200 may electrically connect the plurality of secondary batteries 100 both in parallel and in series.
(33) In particular, in the battery module 400 of the present disclosure, at least one of the left and right side surfaces of the electrode lead 111 protruding from the secondary battery 100 in the front and rear direction may be bonded to the bus bar 200.
(34) According to this configuration of the present disclosure, in the battery module 400 of the present disclosure, since the side surface at the end of the electrode lead 111 protruding in the front and rear direction is bonded to the bus bar 200, the electrode lead 111 and the bus bar 200 may be reliably bonded without forming a bent structure at the electrode lead 111, different from the conventional technique. Accordingly, the bonding process between the electrode lead 111 and the bus bar 200 may be performed more easily, and the process time is reduced.
(35) In addition, at one end of the electrode lead 111, at least one of the left and right side surfaces of the electrode lead 111 having a relatively larger area than the upper and lower side surfaces thereof may be bonded to the bus bar 200.
(36) Moreover, the electrode lead 111 may extend straight along the front and rear direction along which the electrode lead 111 protrudes. However, the present disclosure is not necessarily limited to the above structure of the electrode lead, and in some cases, one end of the electrode lead 111 may be bent with a predetermined angle with respect to the front and rear direction along which the electrode lead 111 protrudes, so as to be bonded to a portion of the bus bar 200. For example, the electrode lead 111 may be bent in a range of less than 30 degrees with respect to the front and rear direction along which the electrode lead 111 protrudes.
(37)
(38) Referring to
(39) Here, the main frame 230 may be made of an electrically conductive metal material having relatively high electric conductivity. For example, the main frame 230 may include at least one electrically conductive material selected from nickel, copper, aluminum, lead and tin. As an example, the main frame 230 may include a copper material. However, the present disclosure is not necessarily limited thereto, and various metals may be used as the material of the main frame 230.
(40) Also, at least one hole H1 may be formed in the main frame 230. More specifically, the hole H1 may be formed at a position corresponding to the electrode lead 111 so that the electrode lead 111 is positioned inside the main frame 230 without a bent structure. Further, the hole H1 may be shaped such that a distal end of the electrode lead 111 is easily inserted therein, and may have, for example, a rectangle having a width and breadth similar to or larger than those of the distal end of the electrode lead 111.
(41) According to this configuration of the present disclosure, in the battery module 400 of the present disclosure, the electrode lead 111 extending straight without a bent structure may be inserted into the hole H1 without interfering with the main frame 230 and then bonded to the bus bar 200.
(42) In addition, the main frame 230 may include a top bar 232, a bottom bar 233 and extensions 234, 235.
(43) Here, when the main frame 230 stands in the upper and lower direction, the top bar 232 may have a bar shape located at an upper portion of the main frame 230 and extending in a horizontal direction.
(44) Also, the bottom bar 233 may have a bar shape located at a lower portion of the main frame 230 and extending in a horizontal direction.
(45) In addition, the extensions 234, 235 may be configured to connect the top bar 232 and the bottom bar 233. More specifically, the extensions 234, 235 may have a rib shape extending from the top bar 232 in a lower direction and connected to the bottom bar 233. Also, the hole H1 may be formed between the extensions 234, 235. As shown in
(46) Referring to
(47) According to this configuration, in the battery module 400 according to the present disclosure, even though the electrode lead 111 is interfered with the main frame 230 while being inserted into the hole H1, the electrode lead 111 may be guided and inserted into the hole H1 along the inclined surface 236 formed at the extension 235. Accordingly, in the present disclosure, the electrode lead 111 may be easily inserted into the bus bar 200 that may facilitate the manufacturing process of the battery module 400, give a benefit for automation and improve the manufacturing efficiency.
(48) In addition, at least one of the extensions 234 and 235 may have at least one opening Q1 formed therein. At this time, the opening Q1 may be formed in at least one extension 234, 235. Also, at least one opening Q1 may be formed in one extension 235.
(49) However, the present disclosure is not limited to the configuration where the opening Q1 is formed in all the extensions 234, 235 provided at the main frame 230, but may also be configured such that the opening Q1 is formed only in a part of the extensions 235. For example, as shown in
(50) Specifically, the opening Q1 may be formed identical to the direction in which the electrode lead 111 is inserted into the hole H1, for example in the front and rear direction of the battery module 400. As shown in
(51) According to this configuration, in the main frame 230, the volume and weight of the bus bar 200 may be effectively reduced according to the number and size of the openings Q1 formed in the extension 235, which may also be helpful for reducing the weight of the battery module 400.
(52) Meanwhile, the bus bar 200 may include bonding plates 210, 211 bonded and electrically connected to the electrode lead 111.
(53) Referring to
(54) Further, the front surface 213 and the rear surface 214 of the bonding plate 210 may be formed to have a larger area than the side portions 215, 216, 217, 218.
(55) In addition, the bonding plates 210, 211 may be located at the front surface of the main frame 230. In addition, a plurality of bonding plates 210, 211 may be located to be spaced apart from each other in a state of standing up in an upper and lower direction.
(56)
(57) Referring to
(58) For example, as shown in
(59) Here, the electrode lead 111 and the bonding plate 210 may be bonded by welding. Specifically, after one end of the electrode lead 111 and a part of the bonding plate 210 are heated and melted by means of welding, one end of the electrode lead and the bonding plate 210 may be bonded while the melted metals are being mixed with each other. For example, the bonding plate 210 and two electrode leads 111 may be welded by irradiating laser in a laser welding method, in a state where they are in contact with each other.
(60) That is, during the welding process, one end of the electrode lead 111 of the bonding plate 210 may be melted, and the melted metal may contact and be bonded to the side portion of the bonding plate 210.
(61) According to this configuration of the present disclosure, the bus bar 200 of the present disclosure is bonded to the side portion of the bonding plate 210 in a state where the electrode lead 111 is inserted into the hole H1 in the front and rear direction along which the electrode lead 111 protrudes, thereby forming a reliable bonding structure between the electrode lead 111 and the bus bar 200. Accordingly, it is possible to exclude a process of bending an end of the electrode lead 111, and thus the manufacturing time and cost may be effectively reduced.
(62) Meanwhile, the bonding plate 210 may be bonded to the front surface of the main frame 230. For example, as shown in
(63) In addition, bonding plates 210, 211 according to another embodiment of the present disclosure may be configured to be positioned in front of the distal end of the electrode lead 111. By this configuration, in one side portion 215 or the other side portion 216 of the bonding plate 210, which is positioned in front of the distal end of the electrode lead 111, only a region corresponding to an inner side with respect to the front surface of the bonding plate 210 may be bonded to left and right side surfaces of one end of the electrode lead 111.
(64) According to this configuration of the present disclosure, the bus bar 200 of the present disclosure may prevent the electrode lead 111 from being separated from the bus bar 200 due to impact or interference of an external object.
(65)
(66) Referring to
(67) In addition, the fixing plate 241 may have a material with a melting point higher than the melting point of the electrode lead 111. For example, the fixing plate 241 may be made of steel, stainless steel, or the like. According to this configuration, when the electrode lead 111 and the bonding plates 210, 211 are bonded to together by welding, the fixing plate having a relatively high melting point is not melted, thereby preventing the fixing plate 241 from being melted and thus bonded to the melted electrode lead 111.
(68) Further, the fixing plate 241 may have a material with low electric conductivity. For example, the fixing plate 241 may be made of a non-conductive plastic material.
(69) In addition, the fixing plate 241 may have a front surface, a rear surface and side portions, based on a front and rear direction. In detail, the fixing plate 241 may be formed such that the front surface and the rear surface thereof are relatively larger than the side portions.
(70) For example, as shown in
(71) Moreover, the fixing plate 241 may be positioned to face the bonding plate 210 with the electrode lead 111 interposed therebetween. For example, as shown in
(72) In addition, the fixing plate 241 may be configured to be movable on the front surface of the main frame 230. That is, the fixing plate 241 may be configured to be movable in the left and right direction on the front surface of the main frame 230 so that one end of the electrode lead 111 is closely adhered to each side portion of the bonding plates 210, 211.
(73) For example, as shown in
(74) According to this configuration of the present disclosure, the left and right side surfaces at one end of the electrode lead 111 may be welded with high reliability to the left and right side portions of the bonding plate 210 of the bus bar 201, and thus the electrode lead 111 and the bus bar 201 may be bonded firmly.
(75)
(76) Referring to
(77) For example, as shown in
(78)
(79) Referring to
(80) Specifically, the protrusion 212 may be formed at a top portion or a bottom portion of one side portion or the other side portion of the bonding plates 210, 211, or at the top portion and the bottom portion thereof. For example, as shown in
(81) In addition, the protrusion 212 may be bonded to the upper or lower surface of one end of the electrode lead 111. For example, as shown in
(82) According to this configuration, the bus bar 202 according to still another embodiment of the present disclosure may further increase the bonding area between the electrode lead 111 and the bonding plate 210, and the electrode lead 111 and the bus bar 202 may be bonded more firmly.
(83) A battery pack according to the present disclosure may include one or more battery modules 400 according to the present disclosure. In addition, the battery pack according to the present disclosure may further include, in addition to the battery module 400, a pack case for accommodating the battery module 400, various devices for controlling charge and discharge of the battery module 400 such as a battery management system (BMS), a current sensor, a fuse and the like.
(84) In addition, the battery pack according to the present disclosure may be applied to a vehicle such as an electric vehicle or a hybrid electric vehicle. In other words, the vehicle according to the present disclosure may include the battery pack of the present disclosure.
(85) 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 locations for convenience in explanation and may vary based on a location of an observer or an object.
(86) 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.
INDUSTRIAL APPLICABILITY
(87) The present disclosure relates to a battery module, in particular, the present disclosure may be applied to industries associated with a battery pack configured using the battery modules and a vehicle driven by the battery pack, for example an electrical vehicle.