Logical cell, secondary battery module, and secondary battery pack including the same

The logical cell design optimizes space utilization and energy density by arranging pouch cells along the length of a case with reinforcing plates and center bus bars, addressing the inefficiencies of conventional grid-patterned arrangements in secondary battery modules and packs.

JP7804072B2Active Publication Date: 2026-01-21LG ENERGY SOLUTION LTD
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Patent Information

Application Number
JP2024531686
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-24
Filing Date
2022-12-20
Publication Date
2026-01-21
Estimated Expiration
2042-12-20

AI Technical Summary

Technical Problem

Conventional secondary battery modules and packs require a large amount of space and components, reducing energy density and increasing volume due to the arrangement of cells in a grid pattern, which increases the distance between cells and necessitates additional components like module end plates and inter-busbars.

Method used

A logical cell design that arranges pouch cells along the length of a case with reinforcing plates on both sides, using a center bus bar frame assembly and center bus bar to electrically connect pouch cell assemblies, minimizing the need for isolation covers and inter-busbars, and optimizing space utilization.

Benefits of technology

The design enhances ease of handling, maximizes space utilization, and improves safety by reinforcing vulnerable sides, thereby increasing energy density and reducing the overall volume of the secondary battery pack.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention relates to a logical cell, a secondary battery module, and a secondary battery pack including the same, and relates to a logical cell in which a pouch cell assembly in which a plurality of pouch cells are arranged is stored along the length direction inside a case to form a logical cell, and a reinforcing plate is provided on one or other side of the case to reinforce rigidity, thereby maximizing ease of handling of the pouch cell and space utilization rate inside the secondary battery pack, and preventing damage to sides that are vulnerable to impacts, thereby improving safety of the secondary battery.
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Description

[Technical Field]

[0001] This application claims the benefit of priority based on Korean Patent Application No. 10-2021-0187826 filed December 24, 2021, and Korean Patent Application No. 10-2021-0187827 filed December 24, 2021, and all contents disclosed in the documents of said Korean patent applications are incorporated herein by reference.

[0002] The present invention relates to a logical cell, a secondary battery module, and a secondary battery pack including the same. [Background technology]

[0003] Secondary batteries are batteries that can be charged and discharged, unlike primary batteries, which cannot be recharged, and examples of secondary batteries include nickel-cadmium batteries, nickel-metal hydride batteries, lithium-ion batteries, and lithium-ion polymer batteries. These secondary batteries are used not only in small products such as digital cameras, laptops, mobile phones, PDAs, and e-bikes, but also in large products that require high output, such as electric vehicles and hybrid vehicles, as well as in power storage devices that store surplus generated power and renewable energy, and as backup power storage devices.

[0004] These secondary batteries are classified into pouch types and can types depending on the material of the battery case that houses the electrode assembly. Pouch types house the electrode assembly in a pouch made of a flexible polymer material with an irregular shape, while can types house the electrode assembly in a case made of a material such as metal or plastic with a uniform shape.

[0005] Furthermore, secondary batteries can be configured as cells, modules, or packs depending on the unit in which the secondary batteries are assembled. A cell is a basic unit of a secondary battery that can be used by charging and discharging electrical energy, and may be the pouch-type or can-type secondary battery described above. A secondary battery module refers to an assembly in which a certain number of cells are bundled or placed in a frame to protect them from external impact, heat, vibration, etc., and a pack is the final form of a battery system, completed by attaching various control and protection systems such as a BMS and a cooling system to the secondary battery module.

[0006] FIG. 1 is a perspective view of a conventional secondary battery module. FIG. 2 is a perspective view of a conventional secondary battery pack. Referring to FIGS. 1 and 2, conventional secondary battery modules and packs are constructed by arranging cells in the thickness direction of the cells to form a module, and the secondary battery modules are arranged inside a pack case in a grid pattern. However, this method requires a large amount of space and components (A) to arrange or connect the secondary battery modules in a grid pattern. In particular, additional components such as module end plates, isolation covers, and inter-busbars for connecting modules are required, which increases the distance between cells in the pack. This not only reduces the energy density per unit volume of the pack, but also increases the volume of the pack, resulting in problems such as an increase in the space occupied by batteries in the final product.

[0007] Therefore, there is a need to develop a simpler unit cell, a secondary battery module including the same, and a secondary battery pack that can maximize the space utilization rate inside the secondary battery pack, increase the energy density, and reinforce the rigidity to ensure the safety of the secondary battery. Summary of the Invention [Problem to be solved by the invention]

[0008] The present invention has been devised to solve the above problems, and an object of the present invention is to provide a logical cell, a secondary battery module, and a secondary battery pack including the same, which form a logical cell by storing a pouch cell assembly, in which a plurality of pouch cells are arranged, along the length inside a case, and provide a reinforcing plate on one or both sides of the case to reinforce its rigidity, thereby facilitating handling of the pouch cell and maximizing space utilization rate inside the secondary battery pack, and preventing damage to sides that are vulnerable to impact, thereby improving the safety of the secondary battery.

[0009] Another object of the present invention is to provide a logical cell, a secondary battery module, and a secondary battery pack including the same, which can maximize ease of handling of the pouch cells and space utilization within the pack by storing pouch cell assemblies, each having a plurality of pouch cells arranged in an array, along the length of the case and electrically connecting the pouch cell assemblies using a center bus bar frame assembly and a center bus bar to form a logical cell. [Means for solving the problem]

[0010] A logical cell according to an embodiment of the present invention includes a pouch cell assembly formed by arranging a plurality of pouch cells in a thickness direction; a case in which the plurality of pouch cell assemblies are housed along a length direction and which is formed with one and other open ends; a side bus bar frame assembly coupled to the pouch cell assembly at one or other end of the case; an end plate coupled to one side of the side bus bar frame assembly and covering the open one or other end of the case; a side bus bar provided between the side bus bar frame assembly and the end plate, electrically connected to the pouch cell assembly and transmitting output to the outside; and a reinforcing plate provided on one side of the end plate.

[0011] A logical cell according to an embodiment of the present invention includes a pouch cell assembly formed by arranging a plurality of pouch cells in a thickness direction; a case in which the plurality of pouch cell assemblies are housed along the length direction and which is formed with an open shape at one and other ends; a center bus bar frame assembly provided between the plurality of pouch cell assemblies; and a center bus bar provided on the center bus bar frame assembly and electrically connecting the plurality of pouch cell assemblies. [Effects of the Invention]

[0012] The logical cell according to the present invention is formed by storing a pouch cell assembly, in which a plurality of pouch cells are arranged, along the length inside a case to form a logical cell, and by providing a reinforcing plate on one or both sides of the case to reinforce its rigidity, it is possible to maximize the ease of handling of the pouch cells and the utilization rate of the space inside the secondary battery pack, and to prevent damage to the sides that are vulnerable to impact, thereby improving the safety of the secondary battery.

[0013] The logical cell according to the present invention includes a pouch cell assembly formed by arranging a plurality of pouch cells in a thickness direction; a case in which the plurality of pouch cell assemblies are housed along the length direction and which is formed with one and other open ends; a center bus bar frame assembly provided between the plurality of pouch cell assemblies; and a center bus bar provided on the center bus bar frame assembly and electrically connecting the plurality of pouch cell assemblies, thereby facilitating handling of the pouch cells within a module or pack and maximizing space utilization and energy density within the pack. [Brief explanation of the drawings]

[0014] [Figure 1] FIG. 1 is a perspective view showing a conventional secondary battery module. [Figure 2] FIG. 1 is a perspective view showing a conventional secondary battery pack. [Figure 3]1 is a perspective view showing a logical cell according to a first embodiment of the present invention. [Figure 4a] 1 is an exploded perspective view showing a logical cell according to a first embodiment of the present invention. FIG. [Figure 4b] 1 is an exploded perspective view showing a logical cell according to a first embodiment of the present invention. FIG. [Figure 5] 1 is a perspective view showing a state in which a case of a logical cell according to a first embodiment of the present invention has been removed. FIG. [Figure 6a] 1 is a perspective view showing a state in which a side bus bar is provided between a side bus bar frame assembly of a logical cell according to a first embodiment of the present invention and an end plate provided with a reinforcing plate. FIG. [Figure 6b] 1 is an exploded perspective view showing a side bus bar frame assembly, a reinforcing plate, an end plate, and a side bus bar of a logical cell according to a first embodiment of the present invention. FIG. [Figure 7a] FIG. 2 is a perspective view showing a pair of center bus bar frame assemblies of the logical cell according to the first embodiment of the present invention. [Figure 7b] 1 is an exploded perspective view showing a pair of center bus bar frame assemblies and a center bus bar of a logical cell according to a first embodiment of the present invention. FIG. [Figure 8] 3 is a perspective view showing an insulating plate provided between an end plate and a reinforcing plate of the logical cell according to the first embodiment of the present invention. FIG. [Figure 9] FIG. 10 is a perspective view showing a secondary battery pack according to a third embodiment of the present invention. [Figure 10a] FIG. 10 is a perspective view showing a state in which a center bus bar is provided in a center bus bar frame assembly of a logical cell according to a fourth embodiment of the present invention. [Figure 10b] FIG. 10 is an exploded perspective view showing a center bus bar frame assembly and a center bus bar of a logical cell according to a fourth embodiment of the present invention. [Figure 11]FIG. 10 is an enlarged perspective view showing a center bus bar frame assembly and a center bus bar provided between a plurality of pouch cell assemblies. [Figure 12a] FIG. 10 is a perspective view showing a state in which a front bus bar frame assembly, a front cover plate, and a front bus bar of a logical cell according to a fourth embodiment of the present invention are coupled together. [Figure 12b] FIG. 10 is an exploded perspective view showing a front bus bar frame assembly, a front cover plate, and a front bus bar of a logical cell according to a fourth embodiment of the present invention, with the front bus bar frame assembly, a front cover plate, and a front bus bar disassembled. [Figure 13] FIG. 10 is a view showing a state in which the front bus bar frame assembly and front bus bar of the logical cell according to the fourth embodiment of the present invention are coupled to the leads of the pouch cell assembly. [Figure 14a] FIG. 10 is a perspective view showing a state in which a rear bus bar frame assembly and a rear cover plate of a logical cell according to a fourth embodiment of the present invention are coupled together. [Figure 14b] FIG. 10 is an exploded perspective view showing a rear bus bar frame assembly, a rear cover plate, and a rear bus bar of a logical cell according to a fourth embodiment of the present invention, disassembled. [Figure 15] FIG. 10 is a perspective view showing a secondary battery module according to a fifth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0015] The present invention will now be described in detail with reference to the accompanying drawings, so that those skilled in the art can easily understand and practice the preferred embodiments of the present invention. However, the present invention may be embodied in various different forms and is not limited to the following embodiments.

[0016] In order to clearly explain the present invention, detailed descriptions of parts that are not relevant to the explanation or related known technologies that may unnecessarily obscure the gist of the present invention will be omitted, and in this specification, when assigning reference symbols to components in each drawing, the same or similar reference symbols will be assigned to the same or similar components throughout the specification.

[0017] Furthermore, the terms and words used in this specification and claims should not be interpreted in a limited way to their ordinary or dictionary meanings, but should be interpreted in a way that is consistent with the technical idea of ​​the present invention, based on the principle that inventors can appropriately define the concepts of terms in order to best explain their inventions.

[0018] First embodiment Fig. 3 is a perspective view showing a logical cell according to a first embodiment of the present invention. Fig. 4a is an exploded perspective view showing the logical cell according to the first embodiment of the present invention. Fig. 5 is a perspective view showing the logical cell according to the first embodiment of the present invention with the case removed.

[0019] 3, 4a, and 5, a logical cell 100 according to the first embodiment of the present invention includes a pouch cell assembly 110, a case 120, a side bus bar frame assembly 130, an end plate 140, a side bus bar 150, and a reinforcing plate 160. Here, the logical cell 100 may refer to a unit in which a plurality of pouch cells 111 or pouch cell assemblies 110 are gathered and electrically connected.

[0020] First, the pouch cell assembly 110 is formed by arranging a plurality of pouch cells 111 in a thickness direction (DT), and the case 120 is formed with one and other side ends open, and the plurality of pouch cell assemblies 110 are housed inside along a length direction (DL). The side bus bar frame assembly 130 is coupled to the pouch cell assembly 110 at one or other side end of the case 120, and the end plate 140 is coupled to one side of the side bus bar frame assembly 130 and covers the open one or other side end of the case 120. The side bus bar 150 is provided between the side bus bar 150 frame and the end plate 140, and is electrically connected to the pouch cell assembly 110 to transmit output to the outside.

[0021] Furthermore, the reinforcing plate 160 of the logical cell 100 according to the present invention is provided on one side of the end plate 140. Here, one side of the end plate 140 may refer to the side opposite to the side where the end plate 140 is coupled to the side bus bar frame assembly 130. The reinforcing plate 160 may include a material capable of reinforcing the rigidity of a side region corresponding to one or the other side of the logical cell 100, and preferably may include aluminum.

[0022] In this way, the present invention arranges pouch cells 111 in the thickness direction (DT) to form a pouch cell assembly 110, and stores a plurality of pouch cell assemblies 110 in the length direction (DL) to form a logical cell 100 corresponding to a basic unit, thereby improving the ease of handling of the cells compared to pouch cells 111 inserted into conventional secondary battery modules or packs. In other words, the modularization of pouch cells 111 is achieved at a stage prior to the secondary battery module, and can be applied to secondary battery packs of various structures and sizes.

[0023] In addition, since the secondary battery modules can be arranged in one direction (thickness direction (DT) of the pouch cell 111 or logical cell 100) in the process of arranging them inside the secondary battery pack, the number of isolation covers and inter busbars provided in the secondary battery pack can be minimized, and the gap between the logical cells 100 can be reduced, thereby maximizing the space utilization rate inside the secondary battery pack and ultimately optimizing the volume of the secondary battery pack and maximizing the energy density per unit volume.

[0024] In addition, by further providing a reinforcing plate 160 on one side of the end plate 140, damage to the side that is vulnerable to impact can be prevented, thereby improving the safety of the secondary battery.

[0025] 8, the logical cell 100 according to the present invention may further include an insulating plate 190 provided between the end plate 140 and the reinforcing plate 160. This allows the reinforcing plate 160 to be insulated from the pouch cell assembly 110 by the side bus bar 150 so as not to be electrically connected thereto.

[0026] Referring to Figures 3, 4b, and 5, a logical cell 100 according to a fourth embodiment of the present invention, which will be described later, includes a pouch cell assembly 110, a case 120, a center bus bar frame assembly 230, and a center bus bar 240.

[0027] First, the pouch cell assembly 110 is formed by arranging a plurality of pouch cells 111 in a thickness direction (DT), and the case 120 is formed with one and other side ends open, and the plurality of pouch cell assemblies 110 are housed inside along a length direction (DL). Also, a center bus bar frame assembly 230 is provided between the plurality of pouch cell assemblies 110, and a center bus bar 240 is provided on the center bus bar frame assembly 230 to electrically connect the plurality of pouch cell assemblies 110. In other words, the logical cell 100 of the present invention may refer to a unit in which a plurality of pouch cells 111 or pouch cell assemblies 110 are gathered and electrically connected.

[0028] In this way, the present invention arranges pouch cells 111 in the thickness direction (DT) to form a pouch cell assembly 110, and stores a plurality of pouch cell assemblies 110 in the length direction (DL) to form a logical cell 100 corresponding to a basic unit, thereby improving the ease of handling of the cells compared to pouch cells 111 inserted into conventional secondary battery modules or packs. In other words, the modularization of pouch cells 111 is achieved at a stage prior to the secondary battery module, and can be applied to secondary battery packs of various structures and sizes.

[0029] In addition, in the process of arranging secondary battery modules inside the secondary battery pack, they can be arranged in one direction (thickness direction (DT) of the pouch cell 111 or logical cell 100), which minimizes the number of isolation covers and inter busbars provided inside the secondary battery pack and reduces the gap between the logical cells 100, thereby maximizing the space utilization rate inside the secondary battery pack and ultimately optimizing the volume of the secondary battery pack and maximizing the energy density per unit volume.

[0030] Hereinafter, each component of the logical cell 100 of the present invention will be described in detail with reference to FIGS. 3, 4a, and 5, the pouch cell assembly 110 is formed by assembling a plurality of pouch cells 111. In the present invention, preferably, three pouch cells 111 are arranged side by side in the thickness direction (DT) of the pouch cell 111 in the thickness direction (DT), length direction (DL), and width direction (DT). The pouch cell 111 may include a flexible pouch serving as an outer casing, an electrode assembly housed inside the pouch, a plurality of electrode tabs extending from the electrode assembly, and leads 112 connected to the plurality of electrode tabs and protruding outside the pouch. Therefore, the pouch cell assembly 110 includes leads 112 protruding from the pouch cell 111.

[0031] Next, the case 120 accommodates a plurality of pouch cell assemblies 110 along the length direction (DL), and in the present invention, preferably, two pouch cell assemblies 110 can be accommodated inside along the length direction (DL) of the pouch cell assemblies 110. The case 120 may be formed with an open shape at one and the other ends, and may be covered with end plates 140. As described above, the logical cell 100 according to the present invention can be accommodated inside the case 120, which is additionally provided in addition to the pouch of the pouch cell 111, thereby ensuring further rigidity. This reduces the need for ensuring rigidity for each pack, thereby simplifying the pack structure and volume. Furthermore, insulation can be achieved by providing an insulating sheet between the pouch cell 111 and the case 120.

[0032] Meanwhile, the case 120 may be formed as an integrated unit, or may be formed by combining a first case 121 and a second case 122. More specifically, the first case 121 may be formed in a concave shape to accommodate the pouch cell assembly 110, and the second case 122 may be formed in a flat shape and be combined with the first case 121 on one side thereof. When the case 120 is formed in such a way that it includes the first case 121 and the second case 122 and the second case 122 is combined with the first case 121, the ease of manufacturing the logical cell 100 may be improved.

[0033] In addition, the case 120 may be formed at one or the other open end to correspond to the side shape of the end plate 140. The side shape of the end plate 140 will be described in detail below.

[0034] 3, 4b, and 5, the pouch cell assembly 110 is formed by assembling a plurality of pouch cells 111. In the present invention, preferably, two pouch cells 111 are arranged side by side in the thickness direction (DT) of the pouch cell 111 in the thickness direction (DT), length direction (DL), and width direction (DT). The pouch cell 111 may include a soft pouch serving as an outer casing, an electrode assembly housed inside the pouch, a plurality of electrode tabs extending from the electrode assembly, and leads 112 connected to the plurality of electrode tabs and protruding to the outside of the pouch. Therefore, the pouch cell assembly 110 includes leads 112 protruding from the pouch cell 111.

[0035] Next, the case 120 accommodates a plurality of pouch cell assemblies 110 along the length direction (DL). In the present invention, preferably, two pouch cell assemblies 110 can be accommodated along the length direction (DL) of the pouch cell assemblies 110. Furthermore, one and the other end portions are formed in an open shape and can be covered by a front cover plate 260-1 and a rear cover plate 260-2, which will be described later. Thus, the logical cell 100 according to the present invention can be accommodated inside the case 120, which is additionally provided in addition to the pouch of the pouch cell 111, thereby ensuring further rigidity. This reduces the need for ensuring rigidity for each pack, thereby simplifying the pack structure and volume. Furthermore, insulation can be achieved by providing an insulating sheet (I) between the pouch cell 111 and the case 120.

[0036] Meanwhile, the case 120 may be formed as an integrated unit, or may be formed by combining a first case 121 and a second case 122. More specifically, the first case 121 may be formed in a concave shape to accommodate the pouch cell assembly 110, and the second case 122 may be formed in a flat shape and be combined with the first case 121 on one side thereof. When the case 120 is formed in such a way that it includes the first case 121 and the second case 122 and the second case 122 is combined with the first case 121, the ease of manufacturing the logical cell 100 may be improved.

[0037] Next, a side bus bar frame assembly 130 will be described with reference to Figures 4a, 6a, and 6b. Figure 6a is a perspective view showing a side bus bar provided between a side bus bar frame assembly of a logical cell according to a first embodiment of the present invention and an end plate provided with a reinforcing plate. Figure 6b is an exploded perspective view showing the side bus bar frame assembly, reinforcing plate, end plate, and side bus bar of the logical cell according to the first embodiment of the present invention.

[0038] The side bus bar frame assembly 130 may be an insulating injection molded article coupled to the pouch cell assembly 110 at one or the other end of the case 120. As described above, the pouch cell assembly 110 may include leads 112 protruding from the pouch cells 111, and the side bus bar frame assembly 130 may be formed with a plurality of side lead through holes 131 into which the leads 112 of the pouch cell assembly 110 are inserted, and side bus bar mounting portions 132 on which the side bus bars 150 are mounted may be formed in areas between the plurality of side lead through holes 131. The side bus bar mounting portions 132 may be formed in a concave shape so that the side bus bars 150 can be mounted thereon.

[0039] Next, the end plate 140 will be described with reference to FIGS. 4a, 6a, and 6b. The end plate 140 is coupled to one side of the side bus bar frame assembly 130 and covers one or the other open end of the case 120. Here, one side of the side bus bar frame assembly 130 refers to the side opposite to the side where the side bus bar frame assembly 130 is coupled to the pouch cell assembly 110, and may refer to the same direction as the direction toward the outside of the case 120. Furthermore, covering one or the other open end of the case 120 may mean, for example, that one or the other side is finished to match the end surface of the open case 120 without creating a step, but is not necessarily limited thereto, and may mean that even if a step is created, the pouch cell assembly 110 is finished at the end of the case 120 so that it is not exposed to the outside of the case 120.

[0040] Referring to FIG. 6 b, the configuration of the end plate 140 will be described in more detail. The end plate 140 may include a first cover surface 141 , a second cover surface 142 , and a step surface 143 .

[0041] First, the first cover surface 141 may be coupled to the side bus bar frame assembly 130 in abutting contact therewith. That is, the first cover surface 141 is configured to be located on the upper portion of the end plate 140, allowing the end plate 140 to be coupled to the side bus bar frame assembly 130. The first cover surface 141 may be coupled to the side bus bar frame assembly 130 in various ways, for example, may be coupled to the side bus bar frame assembly 130 in abutting contact therewith in a fitting manner.

[0042] The second cover surface 142 may be provided below the first cover surface 141 to be spaced apart from the side bus bar frame assembly 130, and the stepped surface 143 may connect the first cover surface 141 and the second cover surface 142 to form a step between the first cover surface 141 and the second cover surface 142, and the second cover surface 142 may be provided to be spaced apart from the side bus bar frame assembly 130 by the stepped surface 143. That is, the side shape of the end plate 140 may be formed in a stepped shape by forming the stepped surface 143 between the upper first cover surface 141 and the lower second cover surface 142.

[0043] As described above, the second cover surface 142 of the end plate 140 is spaced apart from the side bus bar frame assembly 130 by the stepped surface 143, thereby creating a space between the side bus bar frame assembly 130 and the end plate 140. The leads 112 are bent in the space and joined to the side bus bar 150, and the space can also serve as a buffer space when an external impact is applied.

[0044] In addition, the first cover surface 141 is formed with bus bar through holes 141a that penetrate the front and rear surfaces of the first cover surface 141, and the side bus bars 150 may be bent at their upper regions to pass through the bus bar through holes 141a. As a result, the side bus bars 150 provided between the end plates 140 and the side bus bar frame assemblies 130 are exposed to serve as output terminals. There is no limit to the number of bus bar through holes 141a. However, if the side bus bar frame assemblies 130, the end plates 140, and the side bus bars 150 are provided on both sides of the case 120, one bus bar through hole 141a may be formed. If the side bus bar frame assemblies 130, the end plates 140, and the side bus bars 150 are provided on only one side of the case 120, two bus bar through holes 141a may be formed, and each of the two side bus bars 150 may be exposed to one side to serve as an output terminal. Furthermore, busbar through-holes 141a may be formed not only in first cover surface 141 but also in second cover surface 142 or step surface 143, as necessary.

[0045] The side bus bar 150 is provided between the side bus bar frame assembly 130 and the end plate 140, and is electrically connected to the pouch cell assembly 110 to transmit output to the outside. For this purpose, the side bus bar 150 may be formed of a conductor. Also, the pouch cell assembly 110 includes leads 112 protruding from the pouch cells 111 as described above, and the leads 112 may be electrically connected to the side bus bar 150 by welding. That is, the leads 112 may be formed on both sides of the pouch cell assembly 110, and may be electrically connected to the side bus bar 150 and the center bus bar 180, which will be described later, by welding.

[0046] 7a is a perspective view showing a pair of center bus bar frame assemblies of a logical cell according to the first embodiment of the present invention, and FIG. 7b is an exploded perspective view showing a pair of center bus bar frame assemblies and a center bus bar of the logical cell according to the first embodiment of the present invention.

[0047] 4a, 7a, and 7b, the logical cell 100 according to the present invention may further include a center bus bar frame assembly 170 and a center bus bar 180. First, a pair of center bus bar frame assemblies 170 may be provided facing each other between the plurality of pouch cell assemblies 110. That is, the center bus bar frame assemblies 170 may be provided at the ends of each of the two pouch cell assemblies 110 housed in the lengthwise direction inside the case 120. The center bus bar 180 may be provided on the center bus bar frame assembly 170 and electrically connect the plurality of pouch cell assemblies 110.

[0048] To explain this in more detail, the pouch cell assembly 110 includes leads 112 protruding from the pouch cells 111, and the center bus bar frame assembly 170 is formed with a plurality of center lead through holes 171 into which the leads 112 of the pouch cell assembly 110 are inserted, and a center bus bar mounting portion 172 on which the center bus bar 180 is mounted may be formed in an area between the plurality of center lead through holes 171. As a result, the leads 112 are bent while passing through the center lead through holes 171, and are electrically connected to the center bus bar 180 of the center bus bar mounting portion 172.

[0049] Second embodiment The second embodiment of the present invention differs from the first embodiment in that it is a secondary battery module including the logical cell 100 of the first embodiment. The second embodiment will be described focusing on the differences, while omitting details common to the first embodiment as much as possible. In other words, if details not described in the second embodiment are necessary, they will obviously be considered to be details of the first embodiment.

[0050] The secondary battery module according to the second embodiment of the present invention includes a logical cell 100, a circuit board, and a cover member. First, referring to FIG. 4a, in the secondary battery module according to the present invention, a plurality of logical cells 100 are provided and arranged so as to be stacked in the thickness direction, and preferably, five logical cells 100 are arranged in the thickness direction of the logical cells 100 to form one secondary battery module. Here, the logical cell 100 can be understood in the same way as the logical cell 100 of the first embodiment, and includes a pouch cell assembly 110 formed by arranging a plurality of pouch cells 111 in the thickness direction, a case 120 in which the plurality of pouch cell assemblies 110 are housed along the length direction and which is formed with one and other end portions open, a side bus bar frame assembly 130 coupled to the pouch cell assembly 110 at one or other end portion of the case 120, an end plate 140 coupled to one side of the side bus bar frame assembly 130 and covering the open one or other end portion of the case 120, a side bus bar 150 provided between the side bus bar frame assembly 130 and the end plate 140, electrically connected to the pouch cell assembly 110 and transmitting output to the outside, and a reinforcing plate 160 provided on one side of the end plate 140.

[0051] The circuit board is a printed circuit board (PCB) that electrically connects the side bus bars 150 of the logical cells 100 and is welded integrally to the logical cells 100 on one or the other side of the logical cells 100 so as to connect components necessary for controlling the secondary battery module.

[0052] In addition, the cover member may be integrally coupled to the plurality of logical cells 100 on one side or the other side of the plurality of logical cells 100 to cover the circuit board. The cover member may be a sensing component that protects the circuit board and bus bars from external impact and performs sensing.

[0053] As described above, the secondary battery module according to the present invention is configured by logical cells 100 in which pouch cell assemblies 110 are housed along the length direction, thereby minimizing the number of components required to connect modules when arranged in a secondary battery pack, maximizing space utilization within the pack, and increasing energy density.

[0054] In addition, while minimizing the structure within the secondary battery pack, a reinforcing plate is provided on one or both sides of the logical cell case to prevent damage to the side portions that are vulnerable to impacts, thereby improving the safety of the secondary battery.

[0055] In addition, the detailed configuration and accompanying effects of the logical cell 100 not separately described in the second embodiment of the present invention can be understood in the same way as the logical cell 100 of the first embodiment.

[0056] Third embodiment The third embodiment of the present invention differs from the first and second embodiments in that it is a secondary battery pack including the logical cell of the first embodiment and the secondary battery module of the second embodiment. Contents common to the first and second embodiments will be omitted as much as possible, and the third embodiment will be described focusing on the differences. In other words, if content not described in the third embodiment is necessary, it is clear that the content of the first and second embodiments will be considered.

[0057] 9 is a perspective view showing a secondary battery pack according to a third embodiment of the present invention. Referring to FIG. 9, a secondary battery pack 1 according to the third embodiment of the present invention includes a pack case 20 and a secondary battery module 10.

[0058] The pack case 20 may have an internal storage space and may be made of a rigid material to protect the secondary battery modules 10 or logical cells stored therein from external impact. The shape and size of the pack case 20 may be variously formed as needed, and the size of the storage space inside the pack case 20 may be formed such that the length of at least one side corresponds to the length of the secondary battery modules 10. The secondary battery modules 10 are stored in the storage space of the pack case 20, and in particular, are arranged in the storage space of the pack case 20 along the thickness direction of the secondary battery modules 10.

[0059] In the past, secondary battery modules 10 were arranged in a grid pattern in the storage space inside a secondary battery pack 1, and structures for connecting the modules occupied the space inside the pack, but in the present invention, secondary battery modules 10 made up of multiple logical cells are arranged in one direction, the thickness direction, thereby increasing the space utilization rate inside the pack and improving energy density.In addition, structures inside the secondary battery pack are minimized, and a reinforcing plate is provided on one or both sides of the case to reinforce the rigidity of the side regions of the logical cells, which are vulnerable to breakage, thereby improving the safety of the secondary battery.

[0060] In addition, the detailed configurations and accompanying effects of the logical cells and secondary battery modules not separately described in the third embodiment of the present invention can be understood in the same way as the logical cells and secondary battery modules in the first and second embodiments.

[0061] Although the present invention has been described above using limited embodiments and drawings, the present invention is not limited thereto, and various implementations are possible within the scope of the technical concept of the present invention and the claims described below by a person having ordinary skill in the art to which the present invention pertains.

[0062] Fourth embodiment Next, the center bus bar frame assembly 230 will be described in detail with reference to Figures 4b, 10a, 14b, and 15. Figure 4b is an exploded perspective view showing a logical cell according to a fourth embodiment of the present invention. Figure 10a is a perspective view showing a state in which a center bus bar is provided in a center bus bar frame assembly of a logical cell according to the fourth embodiment of the present invention. Figure 14b is an exploded perspective view showing a center bus bar frame assembly and a center bus bar of a logical cell according to the fourth embodiment of the present invention. Figure 15 is an enlarged perspective view showing a state in which a center bus bar frame assembly and a center bus bar are provided between a plurality of pouch cell assemblies.

[0063] As shown in FIGS. 10 a and 14 b , the center bus bar frame assembly 230 may include a pair of support portions 231 and a pair of center bus bar mounting portions 232 .

[0064] A pair of support portions 231 may be formed between the pouch cell assemblies 110 to support the pouch cell assemblies 110 (see FIG. 4b), and a pair of center bus bar mounting portions 232 may be formed between the pair of support portions 231 in a concave shape in a direction perpendicular to the pair of support portions 231. Here, "a pair of support portions 231" may mean that the two support portions 231 are formed to face in opposite directions on the same line. Also, "a pair of center bus bar mounting portions 232" may mean that the two center bus bar mounting portions 232 are formed to face in opposite directions on the same line.

[0065] The center bus bar 240 may be inserted into the center bus bar mounting portion 232. The center bus bar 240 is made of a conductor for transmitting electrical energy, and when inserted into the center bus bar mounting portion 232, may electrically connect the pouch cell assemblies 110 provided on both sides of the center bus bar frame assembly 230. Explaining this in more detail with reference to FIG. 15 , the pouch cell assembly 110 includes leads 112 protruding from the pouch cells 111, and the leads 112 may be connected to the center bus bar 240 by welding to electrically connect a plurality of pouch cell assemblies 110.

[0066] In this manner, a center bus bar mounting portion 232 is formed in a concave shape perpendicular to the support portion 231 formed to support the pouch cell assembly 110, and a bus bar is inserted into the center bus bar mounting portion 232, so that the pouch cell assembly 110 is supported by the support portion 231, and the leads 112 formed to protrude in the longitudinal direction of the pouch cell assembly 110 are connected to the bus bar, thereby electrically connecting the pouch cell assemblies 110 provided on both sides of the center bus bar frame assembly 230.

[0067] As shown in Figures 4b, 12a, 12b, and 13, the logical cell 100 according to the present invention may further include a front bus bar frame assembly 250-1, a front cover plate 260-1, and a front bus bar 270-1. Figure 12a is a perspective view showing the front bus bar frame assembly, front cover plate, and front bus bar of the logical cell according to the fourth embodiment of the present invention, which are coupled together. Figure 12b is an exploded perspective view showing the front bus bar frame assembly, front cover plate, and front bus bar of the logical cell according to the fourth embodiment of the present invention, which are disassembled. Figure 13 is a view showing the front bus bar frame assembly and front bus bar of the logical cell according to the fourth embodiment of the present invention, which are coupled to the leads of the pouch cell assembly.

[0068] 4b, 12a, and 12b, the front bus bar frame assembly 250-1 may be an injection molded product that is coupled to the pouch cell assembly 110 on one side of the case 120. Here, one side of the case 120 may refer to either one of both sides in the length direction of the case 120. The front bus bar frame assembly 250-1 may be formed with a front bus bar 270-1 mounting portion on which the front bus bar 270-1 can be mounted, and a lead through hole through which the lead 112 can pass to be connected to the front bus bar 270-1.

[0069] Furthermore, the front cover plate 260-1 may be coupled to one side of the front bus bar frame assembly 250-1 and cover one open side end of the case 120. Here, one side of the front bus bar frame assembly 250-1 refers to the side opposite to the side where the front bus bar frame assembly 250-1 is coupled to the pouch cell assembly 110, and may refer to the direction toward the outside of the case 120. Furthermore, covering one open side end of the case 120 may mean, for example, that the cover plate is finished to match the end surface of the case 120, which is open on one side, without creating any step, but is not necessarily limited thereto, and may mean that the cover plate is finished at the end of the case 120 so that the pouch cell assembly 110 is not exposed to the outside of the case 120 even if there is a partial step.

[0070] The logical cell 100 according to the present invention may further include a front bus bar 270-1 that is provided between the front bus bar frame assembly 250-1 and the front cover plate 260-1 and is electrically connected to the pouch cell assembly 110 to transmit output to the outside. As described above, the logical cell 100 according to the present invention includes the front bus bar 270-1 that is electrically connected to the pouch cell assembly 110 on one side of the case 120, and thus can transmit output to the outside in one direction, thereby facilitating placement and assembly within the module and pack.

[0071] 13, as described above, the pouch cell assembly 110 includes leads 112 protruding from the pouch cell, and the leads 112 are electrically connected to the front bus bar 270-1 by welding to transmit output to the outside. That is, the leads 112 are formed on both sides of the pouch cell assembly 110 and are electrically connected to the center bus bar and the front bus bar 270-1 by welding, respectively.

[0072] Meanwhile, the front cover plate 260-1 may be coupled to a lower portion of one side of the front bus bar frame assembly 250-1 so that the upper portion of the front bus bar 270-1 is exposed.

[0073] Also, referring to FIG. 4b, the side shape of the open end of the case 120 of the logical cell 100 according to the present invention may be formed to correspond to the side shape of the combined front cover plate 260-1 and front bus bar frame assembly 250-1.

[0074] 4b, 14a, and 14b, the logical cell 100 according to the present invention may include a rear bus bar frame assembly 250-2, a rear cover plate 260-2, and a rear bus bar 270-2. Fig. 14a is a perspective view showing the rear bus bar frame assembly and the rear cover plate of the logical cell according to the fourth embodiment of the present invention combined together. Fig. 14b is an exploded perspective view showing the rear bus bar frame assembly, the rear cover plate, and the rear bus bar of the logical cell according to the fourth embodiment of the present invention disassembled.

[0075] The rear bus bar frame assembly 250-2 may be an injection molded part that is coupled to the pouch cell assembly 110 on the other side of the case 120. Here, the other side of the case 120 may refer to the other side opposite one of both sides in the length direction of the case 120. The rear bus bar frame assembly 250-2 may be formed with a rear bus bar 270-2 mounting portion on which the rear bus bar 270-2 can be mounted, and a lead 112 through-hole through which the lead 112 can pass and be coupled to the rear bus bar 270-2.

[0076] Furthermore, the rear cover plate 260-2 may be coupled to one side of the rear bus bar frame assembly 250-2 and cover the other open end of the case 120. One side of the rear bus bar frame assembly 250-2 refers to the side opposite to the side where the rear bus bar frame assembly 250-2 is coupled to the pouch cell assembly 110, and may refer to the direction toward the outside of the case 120. Furthermore, covering the other end of the case 120 may mean, for example, that the other side is finished to match the end surface of the open case 120 without any step, but is not necessarily limited thereto, and may mean that the pouch cell assembly 110 is finished at the end of the case 120 so that the pouch cell assembly 110 is not exposed to the outside of the case 120 even if there is a partial step.

[0077] In addition, the rear bus bar 270-2 is provided between the rear bus bar frame assembly 250-2 and the rear cover plate 260-2 and can electrically connect the pouch cells 111 of the pouch cell assembly 110. That is, the rear bus bar 270-2 can serve to electrically connect the pouch cells 111 of the pouch cell assembly 110 without transmitting the output of the pouch cell assembly 110 to the outside.

[0078] Meanwhile, rear cover plate 260-2 may be coupled to one side of rear bus bar frame assembly 250-2 to cover the entire surface of rear bus bar 270-2. That is, rear bus bar 270-2 located on the other side of case 120 is provided between rear bus bar frame assembly 250-2 and rear cover plate 260-2 and is not exposed to the outside due to rear cover plate 260-2 covering the entire surface of rear bus bar frame assembly 250-2. As a result, in logical cell 100 according to the present invention, front bus bar 270-1 provided on one side of case 120, which is unidirectional, transmits output to the outside. As a result, in logical cell 100 according to the present invention, output terminals of the bus bar are unified in one direction (one side of the case), facilitating component combination, cell connection, and module formation.

[0079] Fifth embodiment The fifth embodiment of the present invention differs from the fourth embodiment in that it is a secondary battery module 10 including the logical cell 100 of the fourth embodiment. The fifth embodiment will be described focusing on the differences, while omitting as much as possible the content common to the fourth embodiment. In other words, if content not described in the fifth embodiment is necessary, it is clear that it will be considered to be content of the fourth embodiment.

[0080] 15, a secondary battery module 10 according to a fifth embodiment of the present invention includes a logical cell 100, a circuit board 300, and a cover member 400. Fig. 15 is a perspective view showing the secondary battery module according to the fifth embodiment of the present invention.

[0081] First, in the secondary battery module 10 according to the present invention, the logical cell 100 is configured such that a plurality of logical cells 100 are stacked in the thickness direction, and preferably five logical cells 100 are arranged in the thickness direction to configure one secondary battery module 10. Here, the logical cell 100 can be understood as the logical cell 100 of the fourth embodiment, and includes a pouch cell assembly 110 formed by arranging a plurality of pouch cells 111 in the thickness direction, as shown in FIG. 4b, a case 120 that houses the plurality of pouch cell assemblies 110 along the length direction and is formed with one and other open ends, a center bus bar frame assembly 230 provided between the plurality of pouch cell assemblies 110, and a center bus bar 240 provided on the center bus bar frame assembly 230 and electrically connecting the plurality of pouch cell assemblies 110.

[0082] The circuit board 300 is a printed circuit board (PCB) 300 that electrically connects the front bus bars 270-1 of the plurality of logical cells 100 and is welded integrally to the plurality of logical cells 100 on one side of the plurality of logical cells 100 so as to connect components necessary for controlling the secondary battery module 10.

[0083] In addition, the cover member 400 may be integrally coupled to the plurality of logical cells 100 on one side of the plurality of logical cells 100 to cover the circuit board 300. The cover member 400 may be a sensing component that protects the circuit board 300 and the bus bar from external impact and performs sensing.

[0084] As described above, the secondary battery module 10 according to the present invention is configured by logical cells 100 in which pouch cell assemblies 110 are housed along the length direction, thereby minimizing the number of components required to connect modules when arranged in a secondary battery pack, maximizing space utilization within the pack, and increasing energy density.

[0085] The logical cell 100 may further include a front bus bar frame assembly 250-1 coupled to the pouch cell assembly 110 at one side of the case 120, a front cover plate 260-1 coupled to one side of the front bus bar frame assembly 250-1 and covering one open end of the case 120, and a front bus bar 270-1 provided between the front bus bar frame assembly 250-1 and the front cover plate 260-1 and electrically connected to the pouch cell assembly 110 to transmit output to the outside. In this case, the circuit board 300 may be integrally welded to the front bus bars 270-1 of the plurality of logical cells 100.

[0086] As described above, the logical cell 100 of the secondary battery module 10 according to the present invention is provided with a front bus bar 270-1 electrically connected to the pouch cell assembly 110 on one side of the case 120, thereby unifying the output direction of the secondary battery module 10 to a single direction, facilitating placement and assembly within the pack, simplifying the structure, and improving the energy density within the secondary battery pack.

[0087] In addition, the detailed configuration and accompanying effects of the logical cell 100 not separately described in the fifth embodiment of the present invention can be understood in the same way as the logical cell 100 of the fourth embodiment.

[0088] Sixth embodiment The sixth embodiment of the present invention differs from the fourth and fifth embodiments in that it is a secondary battery pack 1 including the logical cell 100 of the fourth embodiment and the secondary battery module 10 of the fifth embodiment. Contents common to the fourth and fifth embodiments will be omitted as much as possible, and the sixth embodiment will be described focusing on the differences. In other words, if content not described in the sixth embodiment is necessary, it is clear that the content will be considered to be that of the fourth and fifth embodiments.

[0089] A secondary battery pack 1 according to the sixth embodiment of the present invention includes a pack case 20 and a secondary battery module 10. Fig. 12 is a perspective view showing the secondary battery pack according to the sixth embodiment of the present invention.

[0090] The pack case 20 may have an internal storage space and may be made of a rigid material to protect the secondary battery modules 10 or logical cells 100 stored therein from external impact. The shape and size of the pack case 20 may be variously formed as needed, and the size of the storage space inside the pack case 20 may be formed such that the length of at least one side corresponds to the length of the secondary battery modules 10. The secondary battery modules 10 are stored in the storage space of the pack case 20, and in particular, are arranged in the storage space of the pack case 20 along the thickness direction of the secondary battery modules 10.

[0091] In the past, secondary battery modules 10 were arranged in a grid pattern in the storage space inside the secondary battery pack 1, and structures for connecting the modules occupied the space inside the pack. However, in the present invention, secondary battery modules 10 composed of multiple logical cells 100 are arranged in one direction, that is, the thickness direction, thereby increasing the space utilization rate inside the pack and improving the energy density.

[0092] In addition, the detailed configurations and accompanying effects of the logical cell 100 and secondary battery module 10 not separately described in the sixth embodiment of the present invention can be understood in the same way as the logical cell 100 and secondary battery module 10 in the first and second embodiments. [Explanation of symbols]

[0093] 1: Secondary battery pack 10: Secondary battery module 20: Pack case 100: Logical Cell 110: Pouch cell assembly 111: Pouch cell 112: Lead 120: Case 121: First Case 122: Second Case 130: Side bus bar frame assembly 131: Side lead through hole 132: Side bus bar mounting section 140: End plate 141: First cover 141a: Busbar through hole 142: Second cover side 143: Step surface 150: Side bus bar 160: Reinforcement plate 170: Center bus bar frame assembly 171: Center lead through hole 172: Center bus bar mounting section 180: Center bus bar 190: Insulation plate 230: Center bus bar frame assembly 231: Support part 232: Center bus bar mounting section 240: Center bus bar 250-1: Front bus bar frame assembly 250-2: Rear bus bar frame assembly 260-1: Front cover plate 260-2: Rear cover plate 270-1: Front bus bar 270-2: Rear bus bar 300: Circuit board 400: Cover material

Claims

1. a case in which the pouch cell assembly is housed; a side bus bar frame assembly coupled to the pouch cell assembly at one or the other end of the case; an end plate coupled to one side of the side bus bar frame assembly and covering one or the other open end of the case; a side bus bar provided between the side bus bar frame assembly and the end plate, electrically connected to the pouch cell assembly, and transmitting an output to the outside; a reinforcing plate provided on one side of the end plate; Including, The end plate is a first cover surface coupled to the side bus bar frame assembly so as to abut against the side bus bar frame assembly; a second cover surface provided below the first cover surface and spaced apart from the side bus bar frame assembly; Logical cells, including:

2. The end plate is a step surface connecting the first cover surface and the second cover surface and forming a step between the first cover surface and the second cover surface; The second cover surface is The logical cell of claim 1 , wherein the step surface separates the logical cell from the side bus bar frame assembly.

3. The first cover surface has a bus bar through hole having a shape penetrating through the front and rear surfaces of the first cover surface; The side bus bar is The logical cell of claim 1 , wherein an upper region is bent and adapted to pass through the busbar through-holes.

4. The pouch cell assembly comprises: a plurality of pouch cells; a lead protruding from the pouch cell; The side bus bar frame assembly includes: a plurality of side lead through holes into which the leads of the pouch cell assembly are inserted; The logical cell according to claim 1 , wherein a side bus bar mounting portion on which the side bus bar is mounted is formed in an area between the plurality of side lead through holes.

5. a pair of center bus bar frame assemblies provided between the plurality of pouch cell assemblies so as to face each other; The logical cell of claim 1 , further comprising: a center bus bar provided on the center bus bar frame assembly and electrically connecting the plurality of pouch cell assemblies.

6. The pouch cell assembly comprises: a plurality of pouch cells; a lead protruding from the pouch cell; The center bus bar frame assembly a plurality of center lead through holes into which the leads of the pouch cell assembly are inserted; The logical cell according to claim 5 , wherein a center bus bar mounting portion on which the center bus bar is mounted is formed in an area between the plurality of center lead through holes.

7. The case is a first case formed in a recessed shape to accommodate the pouch cell assembly; The logical cell according to claim 1 , further comprising: a planar second case coupled to one side of the first case.

8. The case is The logical cell according to claim 1 , wherein the open end portion of the logical cell is formed to correspond to the side shape of the end plate.

9. The logical cell of claim 1 , further comprising an insulating plate disposed between the end plate and the reinforcing plate.

10. a plurality of logical cells arranged so as to overlap in a thickness direction; a circuit board integrally welded to the plurality of logical cells on one side or the other side of the plurality of logical cells; a cover member for covering the circuit board on one side or the other side of the plurality of logical cells; Including, The logical cell is a pouch cell assembly formed by arranging a plurality of pouch cells in a thickness direction; a case in which a plurality of the pouch cell assemblies are housed along a length direction and which is formed with one and the other end portions open; a side bus bar frame assembly coupled to the pouch cell assembly at one or the other end of the case; an end plate coupled to one side of the side bus bar frame assembly and covering one or the other open end of the case; a side bus bar provided between the side bus bar frame assembly and the end plate, electrically connected to the pouch cell assembly, and transmitting an output to the outside; a reinforcing plate provided on one side of the end plate; A secondary battery module comprising:

11. A pack case with internal storage space, a plurality of secondary battery modules arranged in a thickness direction and provided in a storage space of the pack case; Including, The secondary battery module includes: a plurality of logical cells arranged so as to overlap in a thickness direction; a circuit board integrally welded to the plurality of logical cells on one side or the other side of the plurality of logical cells; a cover member for covering the circuit board on one side or the other side of the plurality of logical cells; Including, The logical cell is a pouch cell assembly formed by arranging a plurality of pouch cells in a thickness direction; a case in which a plurality of the pouch cell assemblies are housed along a length direction and which is formed with one and the other end portions open; a side bus bar frame assembly coupled to the pouch cell assembly at one or the other end of the case; an end plate coupled to one side of the side bus bar frame assembly and covering one or the other open end of the case; a side bus bar provided between the side bus bar frame assembly and the end plate, electrically connected to the pouch cell assembly, and transmitting an output to the outside; a reinforcing plate provided on one side of the end plate; a secondary battery pack including:

Citation Information

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