Electrical assembly and battery pack including electrical assembly
11367929 · 2022-06-21
Assignee
Inventors
- Do-Hyeon Kim (Daejeon, KR)
- Tae-Young Kang (Daejeon, KR)
- Duck-Hee Moon (Daejeon, KR)
- Jun-Yeob Seong (Daejeon, KR)
- Sung-Chun Yu (Daejeon, KR)
Cpc classification
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
H01M50/507
ELECTRICITY
H01M2220/20
ELECTRICITY
H01M50/553
ELECTRICITY
International classification
H01M50/20
ELECTRICITY
Abstract
An electrical assembly includes a plate unit disposed on a battery module, at least one electrical equipment loaded on the plate unit, and a pack terminal loaded on the plate unit. The pack terminal includes a terminal bolt configured to be contacted and connected to a connector of an external device; and a nut configured to be fastened to the terminal bolt. The electrical assembly further includes at least one bus bar loaded on the plate unit and configured to electrically connect the pack terminal to a module terminal of the battery module. At a side portion of the plate unit, an insert portion that is open to allow the nut to be inserted therein is formed, and a slot portion is formed to fix the nut inserted through the insert portion at a predetermined position.
Claims
1. An electrical assembly, comprising: a plate unit disposed on a battery module; at least one electrical equipment loaded on the plate unit; a pack terminal loaded on the plate unit, wherein the pack terminal includes a terminal bolt configured to be contacted and connected to a connector of an external device; and a nut configured to be fastened to the terminal bolt; and at least one bus bar loaded on the plate unit and configured to electrically connect the pack terminal to a module terminal of the battery module, wherein, at a side portion of the plate unit, an insert portion is located between an upper surface and a lower surface of the plate unit, the insert portion forming a hole between an edge of the upper surface and an edge of the lower surface and laterally opening to allow the nut to be inserted therein, and a slot portion is formed to fix the nut inserted through the insert portion at a predetermined position, wherein a bus bar mounting groove is formed into the upper surface of the plate unit and is depressed inwards from the upper surface of the plate unit to allow the at least one bus bar to be mounted onto the upper surface of the plate unit without protruding outward from the upper surface of the plate unit, and wherein a portion of the bus bar mounting groove overlaps the nut.
2. The electrical assembly according to claim 1, wherein the slot portion includes: a sliding region having a moving space that extends in a horizontal direction from the insert portion to allow the nut inserted into the insert portion to slide therein; and a placing region communicating with the sliding region and allowing the nut to be placed thereon, the placing region having an upper opening to allow the terminal bolt to be inserted downwards from above.
3. The electrical assembly according to claim 2, wherein the plate unit includes a depressed step that is depressed inwards at a side end of an upper surface of the plate unit to allow at least a portion of the sliding region to be open upwards.
4. The electrical assembly according to claim 2, wherein a support rib that protrudes upwards is formed at a lower surface of the placing region to support a lower surface of the nut.
5. The electrical assembly according to claim 4, wherein the support rib is formed to extend in a horizontal direction along which the nut slides, and wherein an inclined portion connected to the support rib and protruding upwards to have a protruding height that gradually increases toward the support rib is formed at the lower surface of the placing region.
6. The electrical assembly according to claim 2, wherein the nut includes: a support portion positioned to face an inner lower surface and an inner side surface of the slot portion; and a ring portion having a diameter smaller than a planar size of the support portion and protruding upwards from an upper portion of the support portion, wherein an inner lower end of the slot portion has a greater width than an inner upper end of the slot portion to allow both side portions of the support portion to be inserted.
7. The electrical assembly according to claim 6, wherein the support portion has a polygonal planar structure.
8. The electrical assembly according to claim 6, wherein the inner side surface of the upper opening of the placing region is formed to be in contact with an outer circumference of the ring portion, and wherein a fixing protrusion that protrudes to press a side portion of the ring portion is formed at the inner side surface of the upper opening of the placing region.
9. The electrical assembly according to claim 6, wherein an aperture is formed in the support portion and the ring portion to allow the terminal bolt to pass therethrough, and wherein a chamfer structure is formed at an upper portion of the aperture of the ring portion to have an inner diameter that gradually decreases downwards.
10. The electrical assembly according to claim 9, wherein the slot portion has a recessed portion communicating with the aperture and formed by recessing a portion of the lower surface of the placing region downwards.
11. The electrical assembly according to claim 2, wherein part of a lower surface of the at least one bus bar mounting groove communicates with the upper opening of the placing region.
12. The electrical assembly according to claim 11, wherein a portion of the upper surface of the plate unit is interposed between the nut and the at least one bus bar.
13. A battery pack, comprising: the electrical assembly according to any one of claim 1; a battery module having a plurality of secondary batteries; a lower housing having an open portion that is open upwards and an inner space formed therein to allow the battery module to be disposed in the inner space; and an upper housing configured to cover an upper open portion of the lower housing and having an opening formed to allow a portion of the pack terminal to protrude outwards.
14. A vehicle, comprising the battery pack according to claim 13.
15. The electrical assembly according to claim 1, wherein the bus bar mounting groove includes a barrier provided at an entire outer circumference of the bus bar mounting groove and protruding upwards from the bus bar mounting groove to prevent the bus bar from contacting an external conductive object.
Description
DESCRIPTION OF DRAWINGS
(1) The accompanying drawings illustrate a preferred exemplary embodiment of the present disclosure and together with the following 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.
(2)
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BEST MODE
(12) Hereinafter, preferred exemplary 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.
(13) Therefore, the description proposed herein is merely 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.
(14)
(15) Referring to
(16) The battery module may include a plurality of secondary batteries 200. Further, the plurality of secondary batteries 200 may have a stacking structure where the plurality of secondary batteries 200 are connected in series or in parallel and stacked on one another.
(17) The secondary battery 200 may be a pouch-type secondary battery 200. In particular, the pouch-type secondary battery 200 may include an electrode assembly (not shown), an electrolyte (not shown) and a pouch 220.
(18) The pouch 220 may be composed of two pouches, namely a left pouch and a right pouch, each having a concave accommodation portion 215. The electrode assembly and the electrolyte may be accommodated within the accommodation portion 215. In addition, each of the left pouch and the right pouch includes an outer insulating layer, a metal layer, and an inner adhesive layer. Further, the inner adhesive layers at edges of the left pouch and the right pouch may be fused to each other to form a sealing portion. Moreover, terrace portions S may be formed at both end portions of the pouch 220 at which a positive electrode lead 211 and a negative electrode lead 212 are formed, respectively.
(19) The electrode assembly may be an assembly of a separator and an electrode plate containing an electrode active material, and, for example, at least one positive electrode plate and at least one negative electrode plate may be disposed with a separator interposed therebetween. In addition, a positive electrode tab may be provided at the positive electrode plate of the electrode assembly, and at least one positive electrode tab may be connected to the positive electrode lead 211.
(20) The positive electrode lead 211 may include one end connected to the positive electrode tab and the other end exposed to exterior of the pouch 220. The exposed portion may serve as an electrode terminal of the secondary battery 200, for example a positive electrode terminal of the secondary battery 200.
(21) A negative electrode plate of the electrode assembly may include a negative electrode tab, and at least one negative electrode tab may be connected to a negative electrode lead 212. In addition, the negative electrode lead 212 may include one end connected to the negative electrode tab and the other end exposed to exterior of the pouch, and the exposed portion may serve as an electrode terminal of the secondary battery 200, for example a negative electrode terminal of the secondary battery 200.
(22) Moreover, the positive electrode lead 211 and negative electrode lead 212 may be formed at both ends opposite to each other, with respect to the center of the secondary battery 200. Namely, the positive electrode lead 211 may be provided at one end portion, with respect to the center of the secondary battery 200. In addition, the negative electrode lead 212 may be provided at the other end portion, with respect to the center of the secondary battery 200.
(23) For example, as shown in
(24) In addition, the positive electrode lead 211 and the negative electrode lead 212 may have a plate form. In particular, the positive electrode lead 211 and the negative electrode lead 212 may protrude in a horizontal direction in a standing state to allow their broad surfaces to be oriented to a left side and a right side.
(25) However, the battery module according to the present disclosure is not limited to the pouch-type secondary battery 200 described above, and various kinds of secondary batteries 200 known at the time of filing of this application may be employed.
(26) Meanwhile, the plurality of secondary batteries 200 may be pouch-type secondary batteries 200. In addition, the pouch-type secondary batteries 200 may be stacked in a vertical direction or in a horizontal direction to allow their large surfaces to face each other. In particular, in order to facilitate stacking of the pouch-type secondary batteries 200, the battery module may further include a cartridge. The cartridge may be configured to hold the secondary batteries 200 to stack the secondary batteries 200 on one another without moving. In particular, the cartridge may be made of a polymer material and configured to surround a rim of the pouch-type secondary battery 200. For example, the cartridge may be configured in the form of a rectangular ring with four unit frames whose both ends are interconnected to each other.
(27) In addition to the secondary battery 200 and the cartridge, the battery module may further include end plates made of a metal material and disposed at top and bottom portions of the secondary battery 200, a duct for introducing air into and out of the battery module, and a sensing assembly connected to an electrode lead of the secondary battery 200 to detect a voltage of the secondary battery 200, and the like.
(28) Referring to
(29) Meanwhile, in this specification, the upper, lower, front, rear, right and left directions are defined based on the direction F, unless otherwise specified.
(30) Further, the electrical equipment 310 may be loaded on the wide upper surface of the plate unit 110. The electrical equipment 310 loaded on the plate unit 110 may include at least one of a battery management system (BMS), a current sensor, a relay, and a fuse.
(31) In addition, the electrical assembly 100 may further include a bus bar 150 made of a metal material in addition to the electrical equipment 310. The metal may be copper, aluminum, a copper alloy, an aluminum alloy, or the like.
(32) The bus bar 150 may be loaded onto the plate unit 110 to electrically connect a pack terminal 130 and a module terminal 140 of the battery module. The bus bar 150 may provide a charging and discharging path for the battery pack 300 by connecting the pack terminal 130 to the electrode leads 210 of the plurality of secondary batteries 200 of the battery module. In addition, the bus bar 150 may be configured to electrically connect the current sensor, the relay, and the fuse.
(33) The module terminal 140 may be a terminal configured to electrically connect the plurality of secondary batteries 200 provided in the battery module to the electrical assembly 100, and may include a positive electrode module terminal 140A and a negative electrode module terminal 140B based on electric polarity.
(34) In addition, the pack terminal 130 may be a terminal loaded on the plate unit 110 and provided at the battery pack 300 to be used for electrically connecting an external charging and discharging device or an external electronic device to the battery pack 300. The pack terminal 130 may include a positive electrode pack terminal 130A and a negative electrode pack terminal 130B.
(35) Specifically, the pack terminal 130 may include a terminal bolt 131 contacted and connected to a connector of an external device, and a nut 135 fastened to the terminal bolt 131.
(36) Further, the bus bar 150 may include a positive electrode bus bar 150A and a negative electrode bus bar 150B. The positive electrode bus bar 150A electrically connects the positive electrode module terminal 140A and the positive electrode pack terminal 130A, and the negative electrode bus bar 150B electrically connects the negative electrode module terminal 140B and the negative electrode pack terminal 130B.
(37) Since the bus bar 150 is a component for electrical connection as described above, the bus bar 150 may be made of a material with electrical conductivity. In particular, in order to secure a mechanical strength to some extent, the bus bar 150 may be made of a metal material such as copper or a copper alloy.
(38) Meanwhile, the lower housing 160 may have an upper open portion, and may also have an inner space to allow the battery module to be disposed therein. In particular, the inner space of the lower housing 160 may be configured to be open at an upper portion thereof, to allow the battery module to be accommodated in the inner space of the lower housing 160 downwards from above. For example, the lower housing 160 may have a bottom portion 160d and a sidewall portion 160a to allow the battery module to be accommodated in the inner space defined by the bottom portion 160d and the sidewall portion 160a.
(39) In this case, the battery module is disposed on the upper surface of the bottom portion 160d, and the side surfaces of the battery module may be covered and protected by the sidewall portion 160a. The sidewall portion 160a may have a height corresponding to a height of the battery module. In addition, the lower housing 160 may be configured to receive at least a portion of the plate unit 110 as well as the battery module.
(40) Further, the lower housing 160 may be made of a polymer material to secure rigidity, moldabiliy, electrical insulation, and the like. However, the present disclosure is not limited to a specific material of the lower housing 160, and any material may be applied to the lower housing 160 as long as the electrical insulation is secured.
(41) Meanwhile, the upper housing 170 may be coupled to the upper portion of the lower housing 160 to cover the upper open portion of the lower housing 160. In particular, the upper housing 170 may be coupled to an upper end of the lower housing 160 and may seal the upper open end of the lower housing 160.
(42) For example, as shown in
(43) In addition, the upper housing 170 may be made of a polymer material, similar to the lower housing 160, but the present disclosure is not necessarily limited to the material of the upper housing 170.
(44) Moreover, the upper housing 170 may have at least one opening 170H formed therethrough in a vertical direction. The opening 170H may be formed above at least one electrical equipment 310. For example, in the upper housing 170 may have an opening 170H to allow a portion of the pack terminal 130 to protrude outward through the opening 170H.
(45)
(46) Referring to
(47) More specifically, the opening of the insert portion 111 may be greater than the size of a vertical cross-section of the central portion of the nut 135. Accordingly, the nut 135 may be inserted into the opening of the insert portion 111 formed in the side portion 110a of the plate unit 110 in a horizontal direction U so that the entire body of the nut 135 may be inserted into the plate unit 110.
(48) Further, the plate unit 110 may have a slot portion 120 configured to fix the nut 135 inserted through the insert portion 111 to an accurate position therein.
(49) The slot portion 120 may slide the nut 135 inserted into the insert portion 111 to be disposed at an installation position of the terminal bolt 131. For example, the slot portion 120 may be recessed inwards from the side portion 110a of the plate unit 110 to form an inner space. In addition, the slot portion 120 may have a moving space formed therein to allow the nut 135 to move therein.
(50) Thus, according to this configuration of the present disclosure, due the plate unit 110, since the nut 135 may be easily inserted and fixed through the slot portion 120 without inserting the nut 135 therein by separate insert injection molding or the like, the manufacturing process may be simplified, and the manufacturing time may be decreased, thereby reducing the production cost.
(51)
(52)
(53) Referring to
(54) Specifically, the sliding region 121 may have a moving space formed therein to allow the nut 135 inserted into the insert portion 111 to slide inwards (in a horizontal direction). Further, the moving space may extend inwards (in the horizontal direction) from the insert portion 111. In other words, after being inserted through the insert portion 111, the nut 135 may slide from the outside to the inside through the moving space formed in the sliding region 121 along the horizontal direction U.
(55) For example, as shown in
(56) The placing region 125 may have an accommodation space that communicates with the sliding region 121 and allows the nut 135 to be placed therein. Further, the placing region 125 may be open upward to have an upper opening 125H to allow the terminal bolt 131 to be inserted downwards from above.
(57) For example, as shown in
(58) In addition, the slot portion 120 may include a placing region 125 having an accommodation space that communicates with the moving space and allows the nut 135 to be placed therein.
(59) Further, as shown in
(60) Thus, according to this configuration of the present disclosure, since the slot portion 120 has the sliding region 121 capable of sliding the nut 135 into the plate unit 110 and the placing region 125 with the upper opening 125H, a worker may easily position the nut 135 at an accurate location within the plate unit 110 and easily insert the terminal bolt 131 into the nut 135, thereby decreasing the manufacturing process time.
(61) Referring to
(62) In other words, the depressed step 110P may extend from the insert portion 111 formed at the side portion 110a of the plate unit 110 to a portion of the sliding region 121. For example, as shown in
(63) Thus, according to this configuration of the present disclosure, since the depressed step 110P formed at the side end 110c of the upper surface of the plate unit 110 upwardly opens the portion of the sliding region 121 that communicates with the insert portion 111, a portion of the nut 135 may be inserted through the open upper portion of the sliding region 121 and then easily inserted into the insert portion 111 by pressing the nut 135 inwards.
(64) Moreover, since it is significantly difficult to insert the nut 135 into the insert portion 111 formed only in the horizontal direction at the side portion 110a of the plate unit 110, the depressed step 110P allows the nut 135 to be inserted both in a vertical direction and a horizontal direction so that the nut 135 is inserted quickly and accurately, thereby effectively decreasing the manufacturing time.
(65)
(66) Referring to
(67) For example, as shown in
(68) Thus, according to this configuration of the present disclosure, since the support rib 125R allows the nut 135 to be spaced from the lower surface of the placing region 125 by a predetermined distance, while the terminal bolt 131 is being inserted into and fastened with the nut 135, the lower portion of the round rod of the terminal bolt 131 may be prevented from colliding with the lower surface of the placing region 125, thereby effectively reducing the defect rate of the product.
(69) In addition, since the lower surface of the nut 135 is supported upwards by the support rib 125R, a portion of the upper portion of the nut 135 may face the upper ceiling of the placing region 125. In other words, the nut 135 may be pressed upwards by the support rib 125R at the lower surface of the placing region 125 and thus be pressurized and fixed by the lower surface of the placing region 125 and the upper ceiling.
(70) Thus, according to this configuration of the present disclosure, due to the support rib 125R, since the nut 135 may be placed and fixed by simply sliding the nut 135 to the slot portion 120 without a separate fixing member, it is possible to decrease the material cost, ensure easy manufacturing, and shorten the manufacturing time, thereby enhancing the manufacturing efficiency.
(71) Further, the support rib 125R may extend in the horizontal direction along which the nut 135 slides. In other words, the support rib 125R may extend in the horizontal direction along which the nut 135 slides to allow the nut 135 to be stably placed on the support rib 125R while sliding.
(72) In addition, an inclined portion 125S (
(73) Thus, according to this configuration of the present disclosure, the nut 135 may be moved to the support rib 125R over the upper surface of the inclined portion 125S, and the nut 135 may be easily placed on the support rib 125R while sliding. Accordingly, the nut 135 may be easily inserted into the placing region 125 of the slot portion 120.
(74)
(75) Referring to
(76) Specifically, the support portion 135A of the nut 135 may be positioned to face an inner lower surface and an inner side surface of the slot portion 120. In other words, the support portion 135A may have a shape corresponding to the inner structure of the slot portion 120 to face the inner lower surface and the inner side surface of the slot portion 120 when the nut 135 slides along the sliding region 121.
(77) Referring to
(78) Thus, according to this configuration of the present disclosure, since the inner lower end 120b of the slot portion 120 is wider than the inner upper end 120a, the nut 135 may be effectively prevented from being released upwards after being inserted into the slot portion 120.
(79) In addition, the support portion 135A may have a polygonal planar structure. In other words, the support portion 135A may have a polygonal planar structure to prevent the nut 135 from rotating about the center axis of an aperture 135H after being inserted into the placing region 125 of the slot portion 120.
(80) For example, as shown in
(81) Thus, according to this configuration of the present disclosure, the support portion 135A may prevent the nut 135 from rotating while the terminal bolt 131 is rotationally inserted into the nut 135 along the thread, thereby facilitating the fastening of the terminal bolt 131.
(82) Referring to
(83) Moreover, the ring portion 135B may have a smaller diameter than the planar size of the support portion 135A. In addition, an outer circumference 135S of the ring portion 135B may be formed to abut an inner side surface 125P of the upper opening 125H of the placing region 125. In other words, the ring portion 135B may be positioned to expose at least partially through the upper opening 125H of the placing region 125.
(84) For example, as shown in
(85) Thus, according to this configuration of the present disclosure, the ring portion 135B of the nut 135 is formed with a smaller diameter than the planar size of the support portion 135A and is thus positioned to be exposed to the exterior through the upper opening 125H of the placing region 125, thereby facilitating insertion of the terminal bolt 131.
(86) Referring to
(87) For example, as shown in
(88) Thus, according to this configuration of the present disclosure, the fixing protrusion 125T effectively prevents the nut 135 from sliding toward the insertion portion 111 after the nut 135 is inserted into and placed in the placing region 125, thereby improving the efficiency of the insertion process. In addition, the position of the terminal bolt 131 may be effectively prevented from being changed after the terminal bolt 131 is fastened.
(89)
(90)
(91) Moreover, a chamfer structure 135C may be formed at the upper portion of the aperture 135H of the ring portion 135B to allow the diameter to gradually decrease downwards. In other words, the chamfer structure 135C may be inclined toward the central axis of the aperture 135H of the ring portion 135B. For example, as shown in
(92) Thus, according to this configuration of the present disclosure, the chamfer structure 135C of the nut 135 may guide the terminal bolt 131 to be fastened and also exert a movement force to the nut 135 to allow the position of the nut 135 to be corrected in accordance with the position of the terminal bolt 131.
(93) In addition, a gap G of a predetermined size may be formed between the outer surface of the placing region 125 and the outer surface of the nut 135. Thus, the nut 135 may be moved within the gap G based on the position of the terminal bolt 131. For example, as shown in
(94) In other words, the gap G may be utilized as an extra space for reducing the accumulative tolerance at the installation position of the terminal bolt 131 finally assembled. Accordingly, the gap G may be formed to precisely set the position of the terminal bolt 131.
(95) Thus, according to this configuration of the present disclosure, since the gap G of a predetermined size and spaced apart from the outer surface of the nut 135 is formed at the placing region 125 of the slot portion 120, the accumulative tolerance for the position of the terminal bolt 131 may be effectively decreased.
(96) Referring to
(97) In addition, a recess depth Z of the recessed portion 125D may be set to prevent the lower portion of the round rod 131b of the terminal bolt 131 inserted into the aperture 135H of the nut 135 from reaching the lower surface of the placing region 125. For example, as shown in
(98) Thus, according to this configuration of the present disclosure, when the terminal bolt 131 is inserted into the nut 135, the recessed portion 125D may effectively prevent the lower portion of the terminal bolt 131 from colliding with the lower surface of the placing region 125.
(99)
(100) Referring to
(101) Specifically, the bus bar mounting groove 112 may be formed to allow the bus bar 150 to be inserted downwards from above. The bus bar mounting groove 112 may be configured such that the bus bar 150 is inserted into the bus bar mounting groove 112 without protruding outward. Further, a barrier 112S that protrudes upwards may be formed at the outer circumference of the bus bar mounting groove 112.
(102) For example, as shown in
(103) Thus, according to this configuration of the present disclosure, the bus bar mounting groove 112 is formed to have an indented structure to which the bus bar 150 is easily loaded, and the barrier 112S is formed to prevent the loaded bus bar 150 from contacting an external conductive object. Thus, the bus bar 150 may be stably loaded, thereby enhancing the stability of the product.
(104) Referring to
(105) Referring to
(106) In addition, the other end of the bus bar 150 may have an insert hole H2 that is open to allow the terminal bolt 131 to be inserted therein. Moreover, the periphery of the insert hole H2 of the bus bar 150 may be contacted and connected with the nut 135.
(107) For example, as shown in
(108) Referring to
(109) Moreover, in a state where the bus bar 150 is loaded in the bus bar mounting groove 112, the terminal bolt 131 may be inserted into the insert hole H2 of the bus bar 150 and the aperture 135H of the nut 135. In other words, the terminal bolt 131 may be electrically connected to a plurality of secondary batteries 200 of the battery module via the bus bar 150 loaded to the plate unit 110.
(110) Referring to
(111) Meanwhile, even though it is illustrated in various exemplary embodiments that the battery pack 300 includes only one electrical assembly 100, the present disclosure is not necessarily limited thereto, and the battery pack 300 of the present disclosure may also include two or more electrical assemblies 100.
(112) In addition, the battery pack 300 according to the present disclosure may be applied to vehicles such as electric vehicles or hybrid electric vehicles. In other words, the vehicle according to the present disclosure may include the battery pack 300 of the present disclosure as described above.
(113) The present disclosure has been described in detail. However, it should be understood that the detailed description and specific examples, while indicating preferred exemplary 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.
(114) Meanwhile, even though the terms indicating directions such as upper, lower, left and right 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.
REFERENCE SIGNS
(115) 300: battery pack 310: electrical equipment 200: secondary battery 100: electrical assembly 130: pack terminal 131: terminal bolt 135: nut 135A: support portion 135B: ring portion 135H: aperture 135C: chamfer structure 140: module terminal 150: bus bar H2: insert hole 110: plate unit 111: insert portion 120: slot portion 121: sliding region 125: placing region 110P: depressed step 125R: support rib 125T: fixing protrusion 125D: recessed portion 112: bus bar mounting groove 160: lower housing 170: upper housing
INDUSTRIAL APPLICABILITY
(116) The present disclosure relates to an electrical assembly and a battery pack including the electrical assembly. In addition, the present disclosure is applicable to industries associated with electronic devices or vehicles including the battery pack.