Battery packs and devices containing them
The module-less battery pack design with cell units and support plates addresses weight, volume, and handling issues, enhancing energy density and simplifying installation while preventing cell damage, thus improving manufacturing efficiency and reducing costs.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-07-12
- Publication Date
- 2026-03-24
AI Technical Summary
Conventional battery packs face issues of increased weight and volume, reduced energy density, and difficulty in handling and installing large numbers of battery cells, which can lead to damage during assembly.
A battery pack design featuring a module-less structure with cell units arranged in a line, covered by a cell cover and secured by a fixing unit, and supported by a support plate, allowing direct mounting on a pack case without separate module cases, thereby reducing weight and volume while enhancing energy density and simplifying installation.
The design reduces the overall weight and volume of the battery pack, prevents cell damage during assembly, and simplifies the manufacturing process, while improving energy density and enabling easier handling and installation of battery cells.
Smart Images

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Abstract
Description
Technical Field
[0001] Cross - reference to Related Applications This application claims the benefit of priority based on Korean Patent Application No. 10 - 2٠22 - 0089943 filed on July 20, 2022 and Korean Patent Application No. 10 - 2023 - 0090047 filed on July 11, 2023, and all the contents disclosed in the literature of the Korean patent applications are included as part of this specification.
[0002] The present invention relates to a battery pack and a device including the same, and more particularly, to a battery pack manufactured by a cell - to - pack method and a device including the same.
Background Art
[0003] As secondary batteries have attracted much attention as an energy source not only for mobile devices such as mobile phones, digital cameras, and notebook computers but also for power devices such as electric bicycles, electric vehicles, and hybrid electric vehicles, the demand for secondary batteries has been rapidly increasing.
[0004] Recently, battery packs are widely used as a driving or energy storage source for medium - to - large - sized devices such as electric vehicles and energy storage systems. Conventional battery packs include one or more battery modules and a control unit for controlling the charging and discharging of the battery pack, for example, a BMS (Battery Management System) inside a pack case. Here, the battery module is configured in a form that includes a number of battery cells inside a module case. That is, in the case of a conventional battery pack, a number of battery cells (secondary batteries) are housed inside the module case to form respective battery modules, and one or more such battery modules are housed inside the pack case to form a battery pack.
[0005] However, as disclosed in prior art (Korean Patent Publication No. 10-2379227), such battery assembly methods have the problem of increasing the overall weight and volume of the battery pack and decreasing the energy density of the battery pack.
[0006] Furthermore, when the existing cell-to-pack method, which involves directly attaching numerous battery cells to the pack case of a battery pack in order to increase the energy density of the battery pack, is applied to pouch-type battery cells with a flexible case, it becomes difficult to handle or stack a large number of battery cells simultaneously, and there is a risk of damage to the battery cells during the process of attaching them to the pack case. [Overview of the project] [Problems that the invention aims to solve]
[0007] Therefore, the present invention was devised to solve the aforementioned problems, and aims to provide a battery pack and device, etc., in which the overall weight and volume of the battery pack are reduced and the energy density of the battery pack is improved.
[0008] Furthermore, the technical problem that the present invention aims to solve is to provide a battery pack and a device including the same that facilitates the handling and installation of battery cells in the manufacturing process of a battery pack containing a large number of battery cells, prevents damage to the battery cells, simplifies and lightens the structure required for battery cell installation to reduce manufacturing costs, and strengthens the fixing force of the battery cells. [Means for solving the problem]
[0009] A battery pack according to one embodiment of the present invention includes a battery assembly comprising a plurality of cell units arranged in a line in one direction, and a pack case housing the battery assembly in an internal space, wherein each cell unit comprises at least one battery cell and a cell cover covering a portion of the battery cell, and the battery assembly includes a fixing unit that restricts the relative movement of the plurality of cell units by penetrating the cell cover.
[0010] The cell cover has cell cover fastening holes, and the fixing unit can fix the plurality of cell units by passing through the cell cover fastening holes.
[0011] The battery cells are arranged vertically such that one edge corresponds to the bottom surface of the pack case, and the cell cover covers the upper edge of the vertically arranged battery cell, while leaving the lower edge of the battery cell open.
[0012] The cell cover includes a second surface and a third surface arranged parallel to one surface of the battery cell, and a first surface extending between the second surface and the third surface, and the cross-section of the cell cover may have an n-shape.
[0013] The fixing unit is inserted into the second and third surfaces. Cell cover fastening hole It can be formed.
[0014] The cell unit further includes a busbar frame coupled to the longitudinal end of the cell cover, and the electrode leads of the battery cell housed in the cell cover can be electrically connected to busbars mounted on the busbar frame.
[0015] A busbar frame groove is formed on one surface of the busbar frame, and the shape of the busbar frame groove can correspond to the shape of the outer surface of the fixing unit.
[0016] The battery assembly includes a support plate that contacts one surface of the outermost cell unit among the plurality of cell units, and the fixing unit can restrict the relative movement of the plurality of cell units and the support plate by penetrating the support plate.
[0017] The support plate has plate fastening holes, the cell cover has cell cover fastening holes, and the fixing unit can connect multiple cell units and the support plate by passing through the plate fastening holes and the cell cover fastening holes.
[0018] The battery assembly further includes end covers located at the longitudinal ends of the plurality of cell units, the end covers being able to be coupled to the support plate.
[0019] The end cover includes a body portion that covers the longitudinal ends of the plurality of cell units, and a cover extension portion that extends from one edge of the body portion toward the support plate, the cover extension portion of which can correspond to the longitudinal end of the support plate.
[0020] The fixing unit can connect the end cover and the support plate by passing through the cover extension.
[0021] Cell cover fastening holes are formed in the cell cover, plate fastening holes are formed in the support plate, and cover fastening holes are formed in the cover extension. The fixing unit can connect the plurality of cell units, the support plate, and the end cover by passing through the cell cover fastening holes, the plate fastening holes, and the cover fastening holes.
[0022] The battery assembly further includes a second fixing unit, the second fixing unit which can fix the cover extension and the end of the support plate.
[0023] The support plate is formed with second plate fastening holes, the cover extension is formed with cover fastening holes, and the second fixing unit can couple the end cover and the support plate by passing through the second plate fastening holes and the cover fastening holes.
[0024] A cover coupling portion is formed at a position corresponding to the cover extension on the support plate, and the outer surface of the cover coupling portion and the inner surface of the cover extension may be arranged to contact each other.
[0025] The outer surface of the cover coupling portion has a shape recessed toward the inner surface, and the inner surface of the cover extension can be positioned on the outer surface of the recessed cover coupling portion.
[0026] The end cover can include a cover support portion extending from one edge of the body portion toward the lower surface of the cell unit.
[0027] The cell cover can be formed by bending one plate material.
[0028] A device according to another embodiment of the present invention includes at least one of the aforementioned battery packs.
Advantages of the Invention
[0029] According to one aspect of the present invention, instead of a large number of battery cells being housed in separate module cases and mounted on the pack case of the battery pack, they are partially covered by a cell cover having a simplified structure and can be directly mounted on the pack case. As a result, the weight and volume of the entire battery pack are reduced, and while the energy density of the battery pack is improved, damage to the battery cells that occurs during the process of directly mounting a large number of battery cells on the case and using them is prevented, and swelling control of the battery cells and design of a gas venting path can be easily formed.
[0030] Furthermore, by fixing each cell unit, which includes at least one battery cell, to a pair of support plates and a fixing unit that penetrates the cell unit, the handling and installation of battery cells to be mounted in a battery pack can be made easier, while the structure required for mounting the battery cells can be simplified and lightened, reducing manufacturing costs and strengthening the fixing force of the battery cells.
[0031] The present invention can also have various other effects, which will be explained in each embodiment, or effects that can be easily inferred by those skilled in the art will be omitted from the explanation. [Brief explanation of the drawing]
[0032] [Figure 1] This is a drawing showing a battery pack according to one embodiment of the present invention. [Figure 2] This is a drawing showing a battery assembly according to one embodiment of the present invention. [Figure 3] Figure 2 shows a disassembled perspective view of the battery assembly. [Figure 4] This is a drawing showing a cell unit according to one embodiment of the present invention. [Figure 5] Figure 4 shows an exploded perspective view of the cell unit. [Figure 6] This is an enlarged view of section P1 in Figure 2. [Figure 7] This is a modified example of a battery assembly according to one embodiment of the present invention. [Figure 8] This is a modified example of a battery assembly according to one embodiment of the present invention. [Figure 9] This is another variation of the battery assembly according to one embodiment of the present invention. [Figure 10] This is a diagram illustrating how a battery pack according to one embodiment of the present invention is installed in an automobile. [Modes for carrying out the invention]
[0033] Preferred embodiments of the present invention will be described in more detail below with reference to the attached drawings. Terms and words used herein and in the claims should not be interpreted to be limited to their ordinary or dictionary meanings, but rather to mean and to represent the technical idea of the present invention, based on the principle that inventors may appropriately define the concepts of terms in order to best describe their invention. Therefore, it should be understood that the embodiments described herein and the configurations shown in the drawings represent only one of the most preferred embodiments of the present invention and do not represent the entire technical idea of the present invention; and that there may be a variety of equivalents and modifications that can substitute for them at the time of filing.
[0034] In the drawings, the size of each component or specific parts of that component has been exaggerated, omitted, or shown schematically for the sake of clarity and ease of explanation. Therefore, the size of each component does not fully reflect its actual size. Where a specific description of a related known function or configuration would unnecessarily obscure the gist of the invention, such description has been omitted.
[0035] Furthermore, when describing a layer, membrane, region, or plate as being "above" another part, this must be interpreted to include not only cases where the layer, membrane, region, or plate is "directly above" the other part, but also cases where there are other parts in between. Conversely, when describing a layer, membrane, region, or plate as being "directly above" another part, it may mean that there are no other parts in between. Also, being "above" a reference part means being located above or below the reference part, and does not necessarily mean being located "up" in the opposite direction of gravity. On the other hand, describing something as being "below" another part can be understood by referring to the above, just as describing something as being "above" another part can be understood by referring to the above.
[0036] Furthermore, when a specification states that a certain part "includes" a certain component, unless otherwise stated, this means that other components are not excluded and that other components may be included.
[0037] Furthermore, throughout the specification, "on a plane" means when the subject is viewed from above, and "on an end face" means when the subject is viewed from the side of an end face obtained by cutting the subject perpendicularly.
[0038] The following describes a battery pack according to one embodiment of the present invention.
[0039] Figure 1 is a diagram showing a battery pack according to one embodiment of the present invention.
[0040] Referring to Figure 1, the battery pack 1000 of this embodiment may include at least one battery assembly 100 and a pack case 1100 that houses the battery assembly 100 and protects the battery assembly from the external environment.
[0041] The pack case 1100 has a space for mounting each battery assembly 100, and each battery assembly 100 can be housed in the mounting space of the pack case 1100.
[0042] The pack case 1100 may be designed to protect the battery cells 111 from the external environment. The pack case 1100 may include a bottom surface 1110 and a side surface 1120 extending vertically from one corner of the bottom surface 1110, thereby allowing multiple battery cells 111 to be housed in the resulting internal space. The pack case 1100 may also further include a top surface parallel to the bottom surface 1110 and connecting with the side surface 1120. However, the structure of the pack case 1100 is not limited by the above description, and the pack case 1100 may be designed to have a variety of structures to achieve the purpose of protecting the battery cells 111.
[0043] The pack case 1100 may include a crossbeam 1200 that partitions the aforementioned mounting space. The crossbeam 1200 can prevent the battery assembly 100 mounted in the mounting space from separating or moving around. By minimizing the forward, backward, left, and right movement of the battery assembly 100 with the crossbeam 1200, damage to the battery assembly 100 due to external vibrations and shocks can be prevented.
[0044] The crossbeam 1200 may include a first beam 1210 and a second beam 1220 that are positioned perpendicular to each other. The first beam 1210 and the second beam 1220 can be arranged to be spaced apart from each other or to intersect each other to form the plurality of mounting spaces.
[0045] As a specific example, the battery assemblies 100 may be arranged in two rows inside the pack case 1100, and the first beam 1210 may be positioned across the central part of the pack case 1100 so as to separate the battery assemblies 100 arranged in the two rows. The second beam 1220 may be positioned perpendicular to the first beam 1210 so as to separate the battery assemblies 100 arranged in each row, and multiple beams may be positioned at regular intervals. However, this is merely an example of the internal structure of the battery pack 1000, and the structure of the battery pack 1000 in this embodiment is not limited to the above example.
[0046] On the other hand, as described above, the battery assembly 100 of this embodiment may be provided without a separate case to protect the outer surface of the battery assembly 100.
[0047] In other words, the battery assembly 100 of this embodiment can have a module-less structure. Here, a module-less structure may refer to a cell-to-pack structure in which the cell structure is directly coupled to the pack structure without a module case.
[0048] Typically, a conventional battery pack 1000 has a double-assembly structure in which multiple battery cells and many connected components are assembled to form a battery module, and these multiple battery modules are then housed again in the battery pack 1000. In this case, since the battery module includes a module frame that forms its outer surface, the conventional battery cells are double-protected by the module frame of the battery module and the pack case 1100 of the battery pack 1000. However, such a double-assembly structure not only increases the manufacturing cost and manufacturing process of the battery pack 1000, but also has the disadvantage of reducing reassembly capability if some battery cells become defective. Furthermore, if cooling components are located outside the battery module, there is a problem in that the heat transfer path between the battery cells and the cooling components becomes somewhat complex.
[0049] Therefore, in this embodiment, the unit module to be mounted on the battery pack 1000 can be provided in the form of a "battery assembly" in which the module frame is omitted. This allows for a simpler structure of the battery pack 1000, resulting in advantages in manufacturing cost and process, and achieving a lighter battery pack 1000.
[0050] Figure 2 is a drawing showing a battery assembly according to one embodiment of the present invention. Figure 3 is an exploded perspective view of the battery assembly according to Figure 2. Figure 4 is a drawing showing a cell unit according to one embodiment of the present invention. Figure 5 is an exploded perspective view of the cell unit according to Figure 4.
[0051] Referring to Figures 2 and 3, the battery assembly 100 of this embodiment may include a plurality of cell units 110, a support plate 120 supporting one side of the outermost cell unit 110, an end cover 130 covering the front and rear sides of the plurality of cell units 110, and a fixing unit 140 connecting the plurality of cell units 110 to each other. The battery assembly 100 of this embodiment may also further include a handle unit 150.
[0052] The cell unit 110 may be the smallest unit protecting the battery cell 111 (see Figure 4). The cell unit 110 may include at least one battery cell 111 and a cell cover 113 (see Figure 4) that covers part of the battery cell 111.
[0053] As described above, in this embodiment, instead of housing multiple battery cells 111 in a separate module case and mounting them in the pack case 1100 of the battery pack 1000, they can be directly mounted in the pack case 1100 with a simplified cell cover 113 partially covering them. Through such a cell unit 110 structure, the overall weight and volume of the battery pack 1000 can be reduced, and the energy density of the battery pack 1000 can be improved. In addition, damage to the battery cells 111 that occurs during the process of directly mounting a large number of battery cells 111 in the case can be prevented, and the design of battery cell swelling control and gas venting paths can be easily performed.
[0054] On the other hand, prior to the explanation, the cell unit 110 can have a hexahedral shape with a length, width, and thickness, where the length direction is the X-axis, the width direction is the Z-axis, and the thickness direction is the Y-axis. Multiple cell units 110 can be arranged continuously along the thickness direction (Y-axis direction), and the thickness direction (Y-axis direction) can be referred to as the stacking direction of the cell units 110.
[0055] Here, the two opposing surfaces of the cell unit 110 in the longitudinal direction (X-axis direction) can be called the front and rear surfaces, the two opposing surfaces of the cell unit 110 in the thickness direction (Y-axis direction) can be called the side surfaces, and the two opposing surfaces of the cell unit 110 in the width direction (Z-axis direction) can be called the top and bottom surfaces.
[0056] There may be multiple cell units 110, and multiple cell units 110 may be arranged in a line in one direction. The cell units 110 may be stacked in one direction and housed in a pack case 1100. The cell units 110 may be arranged continuously such that their sides are parallel to the sides of adjacent cell units 110.
[0057] The cell unit 110 may be positioned upright along the Z-axis so that its sides are perpendicular to the pack case 1100. The cell unit 110 may be positioned so that its bottom surface corresponds to the bottom surface 1110 of the pack case 1100.
[0058] Details regarding the cell unit 110 will be described in more detail later through Figures 4 and 5.
[0059] The support plate 120 may be for maintaining the overall shape of the stacked cell units 110. The support plate 120 may be for supporting the stacked cell units 110. In the battery pack 1000, the cell units 110 may be positioned so that one side of each cell unit is perpendicular to the bottom surface 1110 of the battery pack 1000, and the support plate 120 may support that side of the cell unit 110 so that it remains upright. The support plate 120 can prevent multiple cell units 110 from separating from each other, thereby fixing the relative positions between the cell units 110. The support plate 120 may be a plate-shaped member and can complement the rigidity of the battery assembly 100 in place of a module frame.
[0060] The support plate 120 may be placed on one surface of the outermost cell unit 110 among the stacked cell units 110. The support plate 120 may be placed on the side surface of the outermost cell unit 110 among the stacked cell units 110.
[0061] Here, there may be two support plates 120 provided to the battery assembly 100 of this embodiment. The support plates 120 may include a first support plate 120a and a second support plate 120b. A pair of support plates 120 may be provided at both ends of the stacking direction of the stacked cell units 110, respectively. The first support plate 120a may contact the outermost cell unit 110 on one side of the stacked cell units 110, and the second support plate 120b may contact the outermost cell unit 110 on the other side of the stacked cell units 110.
[0062] On the other hand, as will be described later, the cell cover 113 included in the cell unit 110 may have a second surface 113b (see Figure 5), a third surface 113c (see Figure 5), and a first surface 113a (see Figure 5) extending between the second surface 113b and the third surface 113c. In this case, the inner surface of the first support plate 120a can contact the outer surface of the second surface 113b of the outermost cell unit 110 on one side. The inner surface of the second support plate 120b can contact the outer surface of the third surface 113c of the outermost cell unit 110 on the other side.
[0063] The support plate 120 can be manufactured from a variety of materials and provided through a variety of manufacturing methods. For example, the support plate 120 can be manufactured from a metallic material, such as aluminum. Alternatively, the support plate 120 can be manufactured from a material combining aluminum and a polymer synthetic resin through insert molding. However, the material and manufacturing method of the support plate 120 should not be limited by the foregoing description, and it may include a variety of materials not mentioned, or be manufactured by other methods.
[0064] The support plate 120 may include a support portion 122 for supporting the cell unit 110, a cover coupling portion 124 for coupling with the end cover 130, and a handle coupling portion 126 for coupling with the handle unit 150.
[0065] The support portion 122 covers most of the area of the support plate 120 and can have a plate-like shape so as to be able to support the cell unit 110. The support portion 122 can have a shape similar to the side shape of the cell unit 110. The plate-like support portion 122 may include both side edges in the length direction (X-axis direction) and the width direction (Z-axis direction).
[0066] On the other hand, the support plate 120 and the multiple cell units 110 are connected by a fixing unit 140, which can restrict relative positional movement. For this reason, a plate fastening hole 123 into which the fixing unit 140 is inserted may be formed in the support portion 122. As will be described later, the plate fastening hole 123 is a cell cover 113 included in the cell unit 110. Cell cover fastening hole It may be formed in a position corresponding to 115 (see Figure 4). The plate fastening hole 123 may be located close to the end of the support plate 120 in the longitudinal direction (X-axis direction). This may be to prevent the fastening unit 140, which penetrates the support plate 120 and the cell cover 113 included in the cell unit 110, from damaging the battery cell 111.
[0067] There may be only one plate fastening hole 123 formed in the support plate 120. However, in order for multiple cell units 110 and the support plate 120 to be stably connected, it is preferable to have multiple fixing units 140, and for that purpose, multiple plate fastening holes 123 may be formed in the support plate 120. To give a specific example, there may be two fixing units 140 provided in the battery assembly 100, and the plate fastening holes 123 may be formed in the support plate 120 near the ends in the longitudinal direction (X-axis direction). When there are multiple plate fastening holes 123, each cell cover 113 is formed Cell cover fastening hole There can also be multiple 115s, and in this case, there are multiple plate fastening holes 123 and multiple cells formed in each cell cover 113 Cell cover fastening hole Each of these can correspond to 115.
[0068] The cover coupling portion 124 may provide a coupling surface between the support plate 120 and the end cover 130. The cover coupling portion 124 may have a form that extends from one edge of the support portion 122.
[0069] The cover coupling portion 124 may be formed on one edge of the periphery of the support portion 122 that corresponds to the end cover 130. The end cover 130 may be positioned close to the end of the support plate 120 in the longitudinal direction (X-axis direction), and the cover coupling portion 124 can be formed on the edge of the support portion 122 in the longitudinal direction (X-axis direction) to provide a coupling surface with the end cover 130. The cover coupling portion 124 may have a form that extends toward the end cover 130 along the edge of the support portion 122 in the longitudinal direction (X-axis direction). The cover coupling portion 124 may have a form that extends parallel to one surface of the support portion 122. In this case, the end cover 130 may be positioned so that its end in the longitudinal direction (Y-axis direction) corresponds to the end of the support plate 120 in the longitudinal direction (X-axis direction).
[0070] There may be two cover coupling portions 124 formed on a single support plate 120. The cover coupling portions 124 can be located on two opposing edges of the support portion 122. To give a more specific example, there may be two end covers 130, and the two end covers 130 can be arranged to correspond to the ends of a single support plate 120 in the longitudinal direction (X-axis direction). The cover coupling portions 124 are formed on both edges of the support portion 122 in the longitudinal direction (X-axis direction), and the two cover coupling portions 124 can correspond to the two end covers 130, respectively. A cover coupling portion 124 located at one end of the support plate 120 in the longitudinal direction (X-axis direction) corresponds to one end cover 130, and a cover coupling portion 124 located at the other end can correspond to the other end cover 130. In this way, there may be multiple cover coupling portions 124 formed on the support portion 122, and each cover coupling portion 124 can be coupled to a cover extension portion 134 formed on each end cover 130.
[0071] On the other hand, there may be two support plates 120 provided to the battery assembly 100, and one end and the other end of a pair of support plates 120 in the longitudinal direction (X-axis direction) can correspond to one end and the other end of a pair of end covers 130 in the longitudinal direction (Y-axis direction), respectively. As a result, one end of one end cover 130 in the longitudinal direction (Y-axis direction) can correspond to a cover coupling portion 124 formed on the first support plate 120a, and the other end can correspond to a cover coupling portion 124 formed on the second support plate 120b.
[0072] A second plate fastening hole 125 may be formed in the cover joint 124 for connection with the end cover 130. The second plate fastening hole 125 may be one or more. For example, there may be one second plate fastening hole 125. In this case, the connection stability of the end cover 130 can be supplemented by the shape of the end cover 130 or the shape of other members. Specifically, the end cover 130 may rotate around the second plate fastening hole 125 as its central axis, but this phenomenon can be prevented by the cover support portion 136 and other components of the end cover 130. Also, if there is one second plate fastening hole 125, manufacturing costs may be reduced and the manufacturing process may be simplified. Another example is that there may be two second plate fastening holes 125. In this case, the reliability of the connection of the end cover 130 can be improved.
[0073] The handle coupling portion 126 may provide a coupling surface between the support plate 120 and the handle unit 150. The handle coupling portion 126 can be coupled to at least one handle unit 150.
[0074] Here, the handle unit 150 may be for stably placing the battery assembly 100 inside the pack case 1100 and may include a handle that can be grasped by the user. One end of the handle unit 150 may be detachably connected to the support plate 120 and can be removed from the support plate 120 after the battery assembly 100 has been installed.
[0075] The handle coupling portion 126 may be formed in a manner that extends from one edge of the support portion 122. The handle coupling portion 126 may be located at one end of the support portion 122 in the width direction (Z-axis direction). More specifically, it may be located above (+Z) the state in which the battery assembly 100 is installed. This may be to facilitate the removal of the handle unit 150 after the battery assembly 100 has been installed.
[0076] The end cover 130 may be for protecting the front or rear surfaces of multiple cell units 110. The end cover 130 can cover the front or rear surfaces of multiple cell units 110. The end cover 130 may be located at the longitudinal ends of the stacked cell units 110. There may be two end covers 130, and the two end covers 130 may be provided at each of the longitudinal ends of the stacked cell units 110.
[0077] The end cover 130 can integrally cover the terminal portions of the battery cells included in the multiple cell units 110. The end cover 130 may include a body portion 132 corresponding to the electrode lead portions of the battery cells included in the multiple cell units 110, a cover extension portion 134 extending vertically from one edge of the body portion 132 and connecting to the support plate 120, and a cover support portion 136 extending vertically from the other edge of the body portion 132 and supporting a part of the cell unit 110.
[0078] The body portion 132 can cover the front or rear surfaces of multiple cell units 110. The body portion 132 can be located at the longitudinal ends of multiple cell units 110. The body portion 132 can cover the longitudinal ends of multiple cell units 110. The body portion 132 can cover the terminal portions of the battery cells included in multiple cell units 110. Here, the body portion 132 may also be referred to as the "terminal cover portion".
[0079] The body portion 132 may have a general shape that is plate-like. A plate-shaped body portion 132 may include both side edges in the length direction (Y-axis direction) and both side edges in the width direction (Z-axis direction).
[0080] Cover venting holes 133 may be formed in the body portion 132. There may be multiple cover venting holes 133, and each of the multiple cover venting holes 133 can correspond to a different cell unit 110. However, each cover venting hole 133 does not necessarily have to correspond to a single cell unit 110; multiple cover venting holes 133 can correspond to a single cell unit 110, or a single cover venting hole 133 can correspond to multiple cell units 110. The cover venting holes 133 allow the end cover 130 to protect the cell unit 110 from the external environment while also allowing gases generated from the battery cells 111 to be discharged to the outside. This can prevent a chain reaction of thermal runaway in the battery assembly 100.
[0081] The cover extension 134 may be intended to provide a coupling surface for connecting the end cover 130 and the support plate 120.
[0082] The cover extension 134 may be formed on one edge of the periphery of the body portion 132 that corresponds to the support plate 120. The support plate 120 may be positioned close to the end of the end cover 130 in the longitudinal direction (Y-axis direction), and the cover extension 134 can be formed on the edge of the body portion 132 in the longitudinal direction (Y-axis direction) to provide a coupling surface with the plate 120. The cover extension 134 may have a form that extends from one edge of the body portion 132 toward the support plate 120. The cover extension 134 may have a form that extends perpendicular to one surface of the body portion 132 toward the support plate 120 from one edge of the body portion 132. In this case, the end cover 130 may be located at the end of the support plate 120 in the longitudinal direction (X-axis direction). The end cover 130 may be positioned so that its end in the longitudinal direction (Y-axis direction) corresponds to the end of the support plate 120 in the longitudinal direction (X-axis direction).
[0083] The cover extension 134 can correspond to the end of the support plate 120 in the longitudinal direction (X-axis direction). The cover extension 134 can overlap with the end of the support plate 120 in the longitudinal direction (X-axis direction). The cover extension 134 can be located outside the end of the support plate 120 in the longitudinal direction (X-axis direction). The cover extension 134 can be connected to the end of the support plate 120 in the longitudinal direction (X-axis direction).
[0084] There may be two cover extensions 134 formed on a single end cover 130. The two cover extensions 134 may include a first cover extension 134a and a second cover extension 134b, which are formed on two opposing edges of the body portion 132, respectively. The first cover extension 134a and the second cover extension 134b may be formed on both edges of the body portion 132 in the longitudinal direction (Y-axis direction).
[0085] More specifically, the first support plate 120a and the second support plate 120b can be positioned to correspond to both ends of the end cover 130 in the longitudinal direction (Y-axis direction). The first cover extension 134a located at one end of the end cover 130 in the longitudinal direction (Y-axis direction) can correspond to the first support plate 120a, and the second cover extension 134b located at the other end can correspond to the second support plate 120b. The first cover extension 134a and the second cover extension 134b can have a form that extends perpendicularly to one surface of the body portion 132 toward the first support plate 120a and the second support plate 120b. The first cover extension 134a and the second cover extension 134b can correspond to the ends of the first support plate 120a and the second support plate 120b, respectively. The first cover extension 134a and the second cover extension 134b can overlap and connect with the ends of the first support plate 120a and the second support plate 120b, respectively. The first cover extension 134a can be located outside the first support plate 120a, and the second cover extension 134b can be located outside the second support plate 120b. Here, "outside of a particular member" can be described with reference to the center of the battery assembly 100. Furthermore, as will be described later, the first cover extension 134a and the second cover extension 134b can correspond to the cover connecting portions 124 formed on the first support plate 120a and the second support plate 120b, respectively.
[0086] The cover extension 134 can correspond to the cover coupling portion 124 of the support plate 120. The cover extension 134 can overlap with the cover coupling portion 124. The cover extension 134 can be coupled to the cover coupling portion 124 of the support plate 120. More specifically, the cover extension 134 can be located outside the cover coupling portion 124, and the inner surface of the cover extension 134 can be in contact with the outer surface of the cover coupling portion 124.
[0087] The outer surface of the cover joint 124 can have a recessed shape toward the inner surface so that the cover extension 134 and the cover joint 124 can easily overlap, and the cover extension 134 can be placed on the recessed outer surface. In addition, each corner of the cover extension 134 can have a rounded shape so that interference between the support plate 120 and the end cover 130 can be minimized when the end cover 130 is attached to the assembly of the cell unit 110 and the support plate 120.
[0088] Conventionally, to protect battery cells from the external environment, a module frame was provided that covered the top, bottom, left, and right sides of the stacked battery cells, and end plates that covered the front and rear sides. Furthermore, the module frame and end plates were mainly joined by welding outside the battery cells. However, in this embodiment, by omitting the module frame, the end cover 130 and the support plate 120 are joined, and the end cover 130 and the support plate 120 are joined by fastening members, eliminating the need for an additional welding process. This allows the manufacturing process to be completed more easily and quickly. In addition, a cover extension portion 134 is formed on the end cover 130, and a corresponding cover joining portion 124 is formed on the support plate 120, thereby enabling stable and easy joining between the end cover 130 and the support plate 120.
[0089] A cover fastening hole 135 may be formed in the cover extension 134 for connection with the support plate 120. The cover fastening hole 135 can correspond to a second plate fastening hole 125 formed in the cover connection portion 124. In the manufacturing process of the battery assembly 100 of this embodiment, the end cover 130 may be positioned on the same axis as the cover fastening hole 135 and the second plate fastening hole 125, and a second fixing unit 142 may be inserted into the cover fastening hole 135 and the second plate fastening hole 125, thereby connecting the end cover 130 and the support plate 120. Here, the second fixing unit 142 may be a fastening member such as a bolt or rivet.
[0090] The number of cover fastening holes 135 may be one or more. Refer to the explanation regarding the second plate fastening holes 125 for details. If there are multiple cover fastening holes 135, there may also be multiple second plate fastening holes 125, and multiple cover fastening holes 135 and second plate fastening holes 125 can correspond to each other.
[0091] On the other hand, the cell units 110 in this embodiment can be connected by fixing units 140, and the relative movement of the cell units 110 can be restricted by the fixing units 140. The fixing units 140 can connect the support plate 120 and the cell units 110. After the fixing units 140 pass through the plate fastening holes 123 formed in the first support plate 120a, they are formed in the cell covers 113 included in the plurality of cell units 110. Cell cover fastening hole It is possible to pass through 115 and through the plate fastening holes 123 formed in the second support plate 120b. This restricts the relative movement of the support plate 120 and the cell unit 110, allowing the battery assembly 100 to be blocked.
[0092] In this way, the fixing unit 140 can block together multiple cell units 110, and the relative positions of the cell units 110 are fixed, which can make handling the battery assembly 100 easier. In other words, the fixing unit 140 can make it easier to install the battery cells 111, and the simplification of the structure required for installing the battery cells 111 can achieve effects such as weight reduction and reduction in manufacturing costs.
[0093] The fixing unit 140 may be supplied in the form of a long bolt. The fixing unit 140 may be supplied as a long bolt long enough to penetrate all of the multiple cell units 110 included in the battery assembly 100.
[0094] On the other hand, although the drawing shows the fixing unit 140 penetrating the lower portion of the battery assembly 100, this is not necessarily the case, and it may be provided in other locations as long as the battery cells 111 and electrode leads 112 are not damaged. For example, the fixing unit 140 may be provided penetrating the upper portion of the battery assembly 100, thereby allowing the fixing unit 140 to pass through the plate fastening holes 123 and Cell cover fastening hole The position of 115 can be adjusted.
[0095] The cell unit of this embodiment will be described below.
[0096] Referring to Figures 4 and 5, the cell unit 110 of this embodiment may include a battery cell 111 in which an electrode assembly is housed in an electrolyte solution, a cell cover 113 covering at least a portion of the battery cell 111, a busbar frame 116 for guiding the connection between the battery cell 111 and a conductive member, and an insulating cover 118 for protecting the battery cell 111 and the conductive member connected thereto.
[0097] The battery cell 111 of this embodiment is the basic unit for charging and discharging and may be provided in a pouch type that maximizes the number of cells stacked per unit area. A battery cell 111 provided in a pouch type may be manufactured by housing an electrode assembly including a positive electrode, a negative electrode, and a separator membrane in a cell case, injecting an electrolyte material, and then heat-sealing the cell case. However, it is obvious that the battery cell 111 does not necessarily have to be provided in a pouch type and can be provided in prismatic, cylindrical, or other various forms as long as the storage capacity required by the later-mounted device is achieved.
[0098] The battery cell 111 may include a housing for housing an electrode assembly and a sealing portion formed on the edge of the battery cell 111 to seal the electrode assembly. In the case of a pouch-type battery cell, the battery cell can be manufactured by housing the electrode assembly in the cell case and then sealing the edge of the cell case located outside the electrode assembly. When the electrode assembly is housed in the inner space formed by folding the cell case and the three open edges are sealed to form the battery cell 111, the sealing portion may be formed on three of the four edges of the cell case, in which case the remaining edge may be referred to as the unsealed portion. However, contrary to the foregoing, it is also possible to heat-seal all four edges of the cell case to manufacture the battery cell 111, in which case the sealing portion may be formed on all four edges of the battery cell 111.
[0099] As shown in Figure 5, the battery cell 111 can have a hexahedral shape with a length, width, and thickness, where the length is the X-axis, the width is the Z-axis, and the thickness is the Y-axis. Based on the hexahedral shape, the battery cell 111 can be described as having two faces (faces on the XZ plane) corresponding to the housing where the electrode assembly is located, and four faces located on the edges of the housing. However, in the case of the pouch-type battery cell 111, it is provided in an overall flat shape, and the thickness value of the sealing part formed by heat fusion is small, so for the sake of explanation, the battery cell 111 will be described below as having two faces corresponding to the housing and four edges located on the outside of the housing.
[0100] The battery cell 111 may include electrode leads 112 for electrical connection to a conductive member. The electrode leads 112 may be positioned projecting in one direction from one edge of the cell case. One end of the electrode lead 112 may be electrically connected to the positive or negative electrode of an electrode assembly by being located inside the battery cell 111, and the other end of the electrode lead 112 may be electrically connected to another member, such as a busbar, by being exposed outside the battery cell 111. There may be two electrode leads 112, and the two electrode leads 112 may be located at both ends of the battery cell 111 in the longitudinal direction (X-axis direction). One of the two electrode leads 112 may be the positive lead and the other may be the negative lead.
[0101] On the other hand, there may be multiple battery cells 111 housed in the cell cover 113. Multiple battery cells 111 can be stacked in one direction to form a cell stack. Here, the side surface of the cell stack may refer to one surface of the outermost battery cell 111 among the multiple battery cells 111. The top and bottom surfaces of the cell stack may be surfaces where the edges of the battery cells 111 are arranged side by side, and the front and rear surfaces of the cell stack may be surfaces where the electrode leads 112 of the battery cells 111 are located. Each surface of the cell stack may correspond to each surface of the cell unit 110.
[0102] The cell cover 113 may be intended to cover at least a portion of the outer surface of the battery cell 111. The cell cover 113 improves the cooling efficiency of the battery pack 1000 by covering part of the battery cell 111 and exposing the other part toward the pack case 1100, and can guide the gas generated in the battery cell 111 in a predetermined direction.
[0103] The cell cover 113 can cover two opposing surfaces of the cell stack, and one surface that shares a corner with those two surfaces. The cell cover 113 can cover two sides and the top surface of the cell stack. The cell cover 113 can cover the side and one edge of the outermost battery cell 111.
[0104] The cell cover 113 may include a second surface 113b and a third surface 113c that are parallel to each other and located at a distance from each other, and a first surface 113a that extends between the second surface 113b and the third surface 113c. The second surface 113b and the third surface 113c may correspond to the sides of the cell unit 110. The first surface 113a may correspond to the top surface of the cell unit 110.
[0105] One edge of the first surface 113a may be connected to one edge of the second surface 113b, and the other edge of the first surface 113a may be connected to one edge of the third surface 113c. Alternatively, the second surface 113b may be described as extending in a first direction from one edge of the first surface 113a, and the third surface 113c may be described as extending in a first direction from the other edge of the first surface 113a. In this case, the first direction is substantially perpendicular to the first surface 113a and is indicated as the -Z axis direction in the drawing. Thus, the cross-section of the cell cover 113 may be n-shaped, where the cross-section refers to the cross-section of the cell cover 113 in the longitudinal direction (X axis direction).
[0106] The second surface 113b and the third surface 113c of the cell cover 113 may be formed flat. The first surface 113a of the cell cover 113 may be formed flat. An N-shaped cell cover 113 may be formed by bending a single sheet metal in the same direction. Such a bending process may be performed using methods such as pressing or roll forming. However, the cell cover 113 does not necessarily have to be provided as a single piece; it is also possible for the cell cover 113 to be formed by connecting multiple sheet metal pieces.
[0107] The cell cover 113 can cover one side of the battery cell 111. In this embodiment, there may be multiple battery cells 111 housed in the cell cover 113, and the second surface 113b and the third surface 113c can cover one side of the outermost battery cell 111 among the multiple battery cells 111.
[0108] The second surface 113b and the third surface 113c of the cell cover 113 can be positioned parallel to one surface of the battery cell 111. More specifically, as shown in Figure 5, the second surface 113b can cover the left side of one surface of a battery cell 111 located on the outermost left side (+Y axis) of a group of battery cells 111. The third surface 113c can cover the right side of one surface of a battery cell 111 located on the outermost right side (-Y axis) of a group of battery cells 111.
[0109] The cell cover 113 can cover one edge of the battery cell 111. The first surface 113a of the cell cover 113 can cover at least a portion of one edge of the battery cell 111. The cell cover 113 can cover the upper edge of a battery cell 111 that is positioned vertically such that one edge corresponds to the bottom surface 1110 of the pack case 1100. The first surface 113a of the cell cover 113 can correspond to the upper edge of the upright battery cell 111. The edge of the battery cell 111 that corresponds to the bottom surface 1110 of the pack case 1100 may be a portion where an unsealed area is formed.
[0110] The cell cover 113 can separate the battery cell 111 housed inside from adjacent battery cells 111, thereby preventing gas generated in the battery cell 111 from moving to adjacent battery cells 111. Furthermore, by having the cell cover 113 in contact with or near one surface of the battery cell 111, heat generated in the battery cell 111 can be transferred to the cell cover 113, thereby promoting heat dissipation from the battery cell 111. Additionally, if the lower edge of the cell cover 113 is positioned in contact with the pack case 1100, a heat transfer path can be formed between the battery cell 111, the cell cover 113, and the pack case 1100, thereby improving the overall cooling efficiency of the battery pack 1000. Here, the lower edge of the cell cover 113 may refer to the edge located on the -Z axis on the second surface 113b and the third surface 113c.
[0111] The cell cover 113 does not need to cover the lower edge corresponding to the bottom surface 1110 of the pack case 1100 with the vertically positioned battery cell 111, and the lower edge of the battery cell 111 may be exposed toward the bottom surface 1110. This allows the heat generated by the battery cell 111 to be quickly dissipated toward the bottom surface 1110 of the pack case 1100 by contacting or being located close to the bottom surface 1110 of the pack case 1100. In this case, if a cooling member is located on the bottom surface 1110 of the pack case 1100, this heat dissipation effect can be further improved.
[0112] On the other hand, an adhesive may be provided between the battery cell 111 and the pack case 1100 so that the battery cell 111 can be stably positioned in the pack case 1100. More specifically, an adhesive may be interposed between one edge of the battery cell 111 and the bottom surface 1110 of the pack case 1100. In this case, the edge of the battery cell 111 to which the adhesive is provided may be an unsealed portion. Examples of adhesives include thermally conductive resin, TIM, etc., and any known material having thermal conductivity or adhesive properties can be applied. In addition, such an adhesive may be provided between the cell cover 113 and the pack case 1100, or between the battery cell 111 and the cell cover 113, in order to make the structure of the battery pack 1000 more rigid.
[0113] Furthermore, in the battery pack 1000 of this embodiment, a cell cover 113 is provided for each battery cell 111, which eliminates the need for a module case to protect the modularized battery cells 111. The battery cells 111 can then be directly placed and housed inside the pack case 1100 without a module case. In the case of pouch-type battery cells, the cell case is made of a flexible material, making it vulnerable to external impacts and prone to low rigidity. Therefore, it can be difficult to house the battery cells themselves inside the pack case 1100 without a module case. However, in this embodiment, the cell cover 113 complements the rigidity of the battery cell 111, allowing the battery cells 111 to be directly housed inside the pack case 1100 and maintaining the stacked state. In addition, the cell cover 113 eliminates the need for conventional module cases, stacking frames, bolts, and other fastening members, simplifying the manufacturing process, streamlining the internal structure, and thereby improving energy density.
[0114] In this way, the rigidity of the battery cell 111 is complemented by the cell cover 113, making it easier to handle the battery cell 111 during the assembly process of the battery pack 1000. More specifically, the assembly process can be made easier by gripping the cell cover 113, which is connected to the battery cell 111, when placing the battery cell 111 into the pack case 1100.
[0115] The cell cover 113 may be manufactured from a material with a high melting point to prevent melting even in the event of thermal runaway inside the battery pack 1000. Furthermore, the cell cover 113 may be manufactured from a material with mechanical strength above a predetermined range to stably support the battery cell 111, thereby protecting the battery cell 111 from external impacts. Examples of materials used for the cell cover 113 include steel and stainless steel (SUS).
[0116] On the other hand, the cell cover 113 can not only delay thermal runaway but also complement the rigidity of the battery cell 111, thereby allowing the battery cell 111 to maintain an upright position. The cell cover 113 can support the battery cell 111 by covering at least a portion of it, thereby stably maintaining the stacked state of the battery cells 111 arranged upright in one direction. More specifically, the upright position of the battery cell 111 can be maintained by the second surface 113b and the third surface 113c of the cell cover 113 supporting the sides of the cell stack. In addition, the lower edge of the cell cover 113 can rest on the bottom surface 1110 of the pack case 1100, thereby allowing the cell cover 113 to stand on its own and maintain the upright position of the battery cell 111 inside the cell cover 113.
[0117] On the other hand, depending on the embodiment, a coupling groove may be formed on the bottom surface 1110 of the pack case 1100. The lower edge of the cell cover 113 can be inserted into the coupling groove and fixed to the bottom surface 1110. In this way, by coupling the cell cover 113 with the bottom surface 1110 of the pack case 1100 through the coupling groove, the cell cover 113 can be placed on the pack case 1100 more stably, and the upright position of the battery cell 111 can be maintained. In addition, the position of the cell cover 113 can be guided, making it easier to assemble the cell cover 113, preventing the cell cover 113 from moving, and preventing the gap between the second surface 113b and the third surface 113c of the cell cover 113 from widening. Here, the coupling groove may be formed extending along the longitudinal direction (X-axis) of the pack case 1100, and the length of the coupling groove may be similar to or greater than the length of the cell cover 113.
[0118] As shown in Figure 5, the cell cover 113 can be bonded to the top of the battery cell 111 so as to cover the battery cell 111. Here, an adhesive thermal conductive resin or the like may be provided between the cell cover 113 and the battery cell 111, but this is not necessarily required, and it is also possible that no other material is interposed between the cell cover 113 and the battery cell 111. This may be to maximize the number of battery cells 111 housed inside the pack case 1100 by minimizing the volume of the cell cover 113 and the battery cell 111, thereby maximizing the energy density of the battery pack 1000.
[0119] In this embodiment, the cell cover 113 is shown to cover three battery cells 111, but this is not necessarily the case. Depending on the designer's intention, the cell cover 113 can be designed to cover four or more battery cells 111, or two or fewer.
[0120] In this embodiment, it has been explained that the cell cover 113 is provided to all battery cells 111, but this is not necessarily the case, and the cell cover 113 may be provided to only some of the battery cells 111.
[0121] Although the cell cover 113 in this embodiment was described as having an n-shape, it can be configured in other shapes as long as it achieves the objective of preventing gases and other substances from being transferred to the electrode leads 112 and other electrical components. For example, the cell cover can be formed in a square shape, a U-shape, an O-shape, an L-shape, or the like.
[0122] On the other hand, although not specifically shown, the cell cover 113 of this embodiment may be provided with a clamping member. The clamping member can prevent the cell cover 113 from spreading or deforming by fixing the two different ends of the cell cover 113 together. For example, the clamping member may be provided at the lower end of the cell cover 113 where the lower edge of the battery cell 111 is located, so as to maintain the enclosed state of the battery cell 111 by preventing the second surface 113b and the third surface 113c from spreading. In one specific example, the clamping member may be a tape. In another specific example, the clamping member may be an elastic metal material.
[0123] Referring again to Figures 4 and 5, venting holes 114 may be formed in the cell cover 113. The venting holes 114 may be for venting gas generated in the battery cell 111 housed inside the cell cover 113 to the outside of the cell cover 113.
[0124] Here, the venting holes 114 can be formed on one surface of the cell cover 113 that does not correspond to the electrode leads 112 of the battery cell 111. Specifically, the venting holes 114 can be formed on the first surface 113a of the cell cover 113.
[0125] There may be multiple venting holes 114, and the multiple venting holes 114 may be arranged spaced apart from each other.
[0126] Conventionally, when a fire occurred in the battery cell 111, there was a problem that gas and sparks would move towards the electrode lead 112, causing an additional thermal runaway phenomenon. However, in this embodiment, by forming venting holes 114 in the cell cover 113, the movement of gas and sparks in the direction of the electrode lead 112 can be minimized. The venting holes 114 allow the gas exhaust path to be separated from the electrode lead 112, and damage to the electrode lead 112 and the electrical components connected thereto by gas, sparks, or flames can be prevented.
[0127] A fixing unit 140 is inserted into the cell cover 113. Cell cover fastening hole 115 may be provided. Multiple cell units 110 Cell cover fastening hole By connecting through 115 and the fixing unit 140, relative movement is restricted, allowing for stable positioning inside the pack case 1100.
[0128] Cell cover fastening hole 115 can be formed on one surface of the cell cover 113 facing one surface of the battery cell 111. Cell cover fastening hole 115 may be formed on the second surface 113b and the third surface 113c, respectively, and formed on the second surface 113b Cell cover fastening hole Formed on 115 and the third surface 113c Cell cover fastening hole It can be positioned on the same axis as 115. On the other hand, the fixing unit 140 must not damage the battery cell 111, so the fixing unit 140 is inserted. Cell cover fastening hole The position of 115 can be separated from the part corresponding to the battery cell 111 by the cell cover 113. To give a specific example, Cell cover fastening hole 115 can be located at the end of the cell cover 113 in the longitudinal direction (X-axis direction).
[0129] The busbar frame 116 may be for ensuring that the battery cell 111, which is covered by the cell cover 113, is electrically connected to an external conductive member or an adjacent battery cell 111. The busbar frame 116 may support the electrode leads 112 of at least one battery cell 111 and be configured to electrically connect the electrode leads 112 of the aforementioned battery cell 111 to the electrode leads 112 of an adjacent battery cell 111.
[0130] The busbar frame 116 can be equipped with busbars made of an electrically conductive material such as copper and busbar housings made of a plastic material such as PC. Specifically, the busbar terminals are located on one side of the busbar housing, and the other side of the busbar housing faces the battery cell 111. The electrode leads 112 of the battery cell 111 can pass through slots provided in the busbar housing and come into contact with the busbars, and the electrode leads 112 and the busbars can be joined by applying a welding process or the like to the side where the electrode leads 112 and the busbars overlap. This can form an electrical connection between the electrode leads 112 and the busbars.
[0131] The busbar frame 116 can be coupled to the cell cover 113. The busbar frame 116 can be coupled to the longitudinal (X-axis) end of the cell cover 113. The longitudinal (X-axis) end of the cell cover 113 may be open and may be covered by the busbar frame 116. There may be two busbar frames 116, each positioned at the longitudinal (X-axis) end of the cell cover 113.
[0132] One side of the busbar frame 116 can face the battery cell 111 and can be housed inside the cell cover 113. A portion of the busbar frame 116, including one side, can be positioned between the second surface 113b and the third surface 113c of the cell cover 113, thereby forming a portion of the busbar frame 116 on the second surface 113b and the third surface 113c. Cell cover fastening hole It can correspond to at least a portion of 115. Therefore, a busbar frame groove 117 may be formed in the busbar frame 116 so that a portion of the busbar frame 116 does not obstruct the movement of the fixed unit 140 that penetrates the cell cover 113.
[0133] The busbar frame groove 117 may guide the position of the fixing unit 140 between the second surface 113b and the third surface 113c. The busbar frame groove 117 may be formed to correspond with the fixing unit 140. The inner circumferential surface of the busbar frame groove 117 may have a shape that corresponds to the outer circumferential surface of the fixing unit 140. There are no restrictions on the shape of the busbar frame groove 117 as long as it corresponds to the outer circumferential surface of the fixing unit 140. The busbar frame groove 117 may be in the form of a hole, but it may also be formed in a form in which one surface facing the battery cell 111 is recessed toward the other surface. To give a specific example, the busbar frame groove 117 may be formed to have a semicircular cross-section, or it may be formed to have a circular shape with an inscribed angle greater or smaller than a semicircle.
[0134] On the other hand, a circular groove 116a may be formed on the lower surface (the surface on the -Z axis) of the busbar frame 116. The circular groove 116a of the busbar frame 116 can correspond to a jig used in the charging and discharging process of the battery cell 111. Through the circular groove 116a, the pins of the jig can be electrically connected to the busbar or electrode leads 112, thereby allowing a voltage to be applied to the battery cell 111 during the charging and discharging process.
[0135] Furthermore, a relief portion 136a may be formed in one corner of the cover support portion 136 of the end cover 130 so as not to obstruct the circular groove 116a formed on the lower surface of the busbar frame 116. The shape of the relief portion 136a can include a semicircular shape. As shown in Figure 3, the shape of the relief portion 136a may be a shape in which multiple semicircles are arranged in a series. Each semicircle of the relief portion 136a can correspond to the circular groove 116a of the busbar frame 116.
[0136] The insulating cover 118 may be intended to prevent the electrode leads 112 of the battery cell 111 housed in the cell cover 113 from being short-circuited. For this purpose, the insulating cover 118 may be made of an insulating polymer synthetic resin.
[0137] Figure 6 is an enlarged view of section P1 in Figure 2.
[0138] Referring to Figure 6, the fixing unit 140 of this embodiment can be inserted into the plate fastening hole 123 of the support plate 120, thereby enabling a stable connection between the support plate 120 and the cell unit 110, or between a cell unit 110 and an adjacent cell unit 110. Furthermore, the second fixing unit 142 can be inserted into the cover fastening hole 135 of the end cover 130 and the second plate fastening hole 125 of the support plate 120, thereby enabling a stable connection between the support plate 120 and the end cover 130. The second plate fastening hole 125 can be positioned even closer to the end of the support plate 120 in the longitudinal direction (X-axis direction) than the plate fastening hole 123. This may be to prevent the cover extension 134 of the end cover 130, which corresponds to a part of the support plate 120, from being unnecessarily long.
[0139] On the other hand, the end cover 130 may include a cover support portion 136 that extends vertically from the other edge of the body portion 132 and supports a part of the cell unit 110. Due to the cover support portion 136, the cross-sectional shape of the end cover 130 in the longitudinal direction (Y-axis direction) may be L-shaped.
[0140] The cover support portion 136 may be formed on one edge of the periphery of the body portion 132 that corresponds to the bottom surface 1110 of the pack case 1100. The cover support portion 136 may be formed on the lower edge of the body portion 132. The cover support portion 136 may have a form that extends perpendicularly from the lower edge of the body portion 132 to one surface of the body portion 132. This ensures that at least a portion of the lower surface of the cell unit 110 located on the bottom surface 1110 is covered and protected by the cover support portion 136.
[0141] As shown in Figure 6, the end cover 130 can cover the front or rear surfaces of multiple cell units 110, i.e., the areas where the busbar terminals are located, as well as the edges of the bottom surfaces of multiple cell units 110. Since the cell cover 113 included in the cell unit 110 has a lower surface that omits the bottom surface 1110 of the pack case 1100, the lower corners of the cell cover 113 may be exposed to the outside. Therefore, in the battery assembly 100, the edges of many second surfaces 113b and third surfaces 113c are exposed on the bottom surface, which may cause interference between the edges of the second surfaces 113b and third surfaces 113c and other components during the process of mounting the battery assembly 100 into the pack case 1100 after it has been assembled. However, this problem can be minimized by the end cover 130 partially protecting the edges of the second surfaces 113b and third surfaces 113c through the cover support portion 136. Furthermore, the cover support portion 136 can also complement the rigidity of the battery assembly 100 by supporting multiple cell units 110 that are positioned in an upright position.
[0142] Figures 7 and 8 show modified examples of a battery assembly according to one embodiment of the present invention.
[0143] Referring to Figures 7 and 8, the end cover 130 of the battery assembly 100 in this modification can be connected to the support plate 120 by a fixing unit 140. In this modification, the second fixing unit 142 may be omitted, and the end cover 130, the support plate 120, and the multiple cell units 110 can be connected together by the fixing unit 140.
[0144] In this modified example, the cover fastening hole 135 of the cover extension 134 can correspond to the plate fastening hole 123 of the support plate 120. The fixing unit 140 corresponds to the cover fastening hole 135, the plate fastening hole 123 and the cell unit 110. Cell cover fastening holeIf 115 is arranged on the same axis, it can pass through the aforementioned coupling hole, thereby allowing multiple members to be joined together. In this way, by joining not only the cell unit 110 and the support plate 120 but also the end cover 130 with the fixing unit 140, the manufacturing process can be completed quickly and easily. Furthermore, the manufacturing process becomes simpler, and costs can be reduced by omitting members such as the second fixing unit 142.
[0145] On the other hand, as shown in the figure, the cover extension 134 of the end cover 130 can have a longer form to correspond to the plate fastening holes 123 of the support plate 120. However, in order to prevent the cover extension 134 from extending unnecessarily, the plate fastening holes 123 on the support plate 120 and the cell cover 113 Cell cover fastening hole It is also possible for 115 to move closer to the end in the longitudinal direction (X-axis direction).
[0146] On the other hand, for a more stable connection between the end cover 130 and the support plate 120, as shown in Figure 8, the end cover 130 and the support plate 120 can also be additionally connected by a second fixing unit 142 in addition to the fixing unit 140. By first fixing the end cover 130 with the fixing unit 140 and then doubly fixing it with the second fixing unit 142, the detachment of the end cover 130 from the support plate 120 can be minimized. Also, as shown in Figure 6, if the end cover 130 is fixed only by the second fixing unit 142, the end cover 130 is more likely to separate from the support plate 120 during the insertion of the second fixing unit 142, making it difficult to position the connection holes on the same axis. However, as shown in Figure 8, if the end cover 130 is first fixed to the support plate 120 with the fixing unit 140, the insertion of the second fixing unit 142 can be made easier.
[0147] On the other hand, although Figure 8 shows that one second fixing unit 142 is provided, two or more second fixing units 142 may be provided. Providing multiple second fixing units 142 improves the effect of preventing the end cover 130 from detaching, but it also increases the complexity of the process, so it cannot be said that simply increasing the number of second fixing units 142 is a gain.
[0148] Thus, two or more cover fastening holes 135 may be formed in the cover extension 134, with one of the two cover fastening holes 135 corresponding to the fixing unit 140 and the other corresponding to the second fixing unit 142. In this case, one of the two cover fastening holes 135 may correspond to the plate fastening hole 123 and the other corresponding to the second plate fastening hole 125.
[0149] On the other hand, the handle coupling portion 126 of this embodiment may also be provided in a form different from that described above.
[0150] Figure 9 shows another variation of the battery assembly according to one embodiment of the present invention.
[0151] Referring to Figure 9, the handle coupling portion 126 can extend perpendicularly from one edge of the support portion 122 to one surface of the support portion 122. The handle coupling portion 126 can extend perpendicularly to one surface of the support portion 122 toward the outside of the support portion 122. One surface of the handle coupling portion 126 can be placed on the crossbeam 1200, thereby allowing the battery assembly 100 to be stably positioned. At this time, the handle unit 150 can be coupled to the other surface of the handle coupling portion 126. The handle coupling portion 126 shown in Figure 9 can form a larger coupling surface with the handle unit 150 than the handle coupling portion 126 shown in Figures 2 and 3. As a result, if the handle coupling portion 126 of Figure 9 is provided, it will be easier to attach and detach the handle unit 150.
[0152] Figure 10 is a diagram illustrating how a battery pack according to one embodiment of the present invention is installed in an automobile.
[0153] Referring to Figure 10, the aforementioned battery pack 1000 can be mounted on an automobile. Thus, the battery pack of this embodiment can be applied to means of transport such as electric bicycles, electric vehicles, and hybrid vehicles, but the present invention is not limited thereto and can be applied to a variety of devices that can use battery modules and battery packs including them.
[0154] On the other hand, although the battery assembly 100 was described in this embodiment with the case removed, it is also possible for the battery assembly 100 to be provided with a separate case attached to the battery pack. Furthermore, the battery assembly 100 of this embodiment can also be applied to a battery module housed in a rack of an ESS (Energy Storage System).
[0155] Although preferred embodiments of the present invention have been described in detail above, the scope of the present invention is not limited thereto. Various modifications and improvements made by those skilled in the art, utilizing the basic concepts of the present invention as defined in the claims, also fall within the scope of the present invention. [Explanation of Symbols]
[0156] 1000: Battery Pack 1100: Pack Case 1200: Crossbeam 100: Battery Assembly 110: Cell Unit 111: Battery cell 113: Cell cover 116: Busbar Frame 118: Insulating cover 120: Support plate 130: End cover 140: Fixed Unit 142: Second Fixed Unit 150: Handle Unit
Claims
1. A battery assembly including multiple cell units arranged in a single direction, and The internal space includes a pack case for housing the battery assembly, The cell unit includes at least one battery cell and a cell cover that covers a portion of the battery cell. The battery assembly includes a fixing unit that restricts the relative movement of the plurality of cell units by penetrating the cell cover, The battery assembly includes a support plate that contacts one surface of the outermost cell unit among the plurality of cell units. The fixing unit penetrates the support plate, thereby restricting the relative movement between the plurality of cell units and the support plate. The support plate has plate fastening holes formed therein. The cell cover has cell cover fastening holes formed therein. The fixing unit connects the multiple cell units and the support plate by passing through the plate fastening holes and the cell cover fastening holes. The battery cells are arranged vertically such that one edge corresponds to the bottom surface of the pack case. The cell cover covers the upper edge of the vertically positioned battery cells, leaving the lower edge of the battery cells open, in a battery pack.
2. The cell cover has cell cover fastening holes formed therein. The battery pack according to claim 1, wherein the fixing unit fixes the plurality of cell units by passing through the cell cover fastening holes.
3. A battery assembly comprising a plurality of cell units arranged in a line in one direction, and The internal space includes a pack case for housing the battery assembly, The cell unit includes at least one battery cell and a cell cover that covers a portion of the battery cell. The battery assembly includes a fixing unit that restricts the relative movement of the plurality of cell units by penetrating the cell cover, The battery assembly includes a support plate that contacts one surface of the outermost cell unit among the plurality of cell units. The fixing unit penetrates the support plate, thereby restricting the relative movement between the plurality of cell units and the support plate. The support plate has plate fastening holes formed therein. The cell cover has cell cover fastening holes formed therein. The fixing unit connects the multiple cell units and the support plate by passing through the plate fastening holes and the cell cover fastening holes. The cell cover includes a second surface and a third surface arranged parallel to one surface of the battery cell, and a first surface extending between the second surface and the third surface. The battery pack has an N-shaped cross-section for the cell cover.
4. The battery pack according to claim 3, wherein cell cover fastening holes into which the fixing unit is inserted are formed on the second and third surfaces.
5. A battery assembly comprising a plurality of cell units arranged in a line in one direction, and The internal space includes a pack case for housing the battery assembly, The cell unit includes at least one battery cell and a cell cover that covers a portion of the battery cell. The battery assembly includes a fixing unit that restricts the relative movement of the plurality of cell units by penetrating the cell cover, The battery assembly includes a support plate that contacts one surface of the outermost cell unit among the plurality of cell units. The fixing unit penetrates the support plate, thereby restricting the relative movement between the plurality of cell units and the support plate. The support plate has plate fastening holes formed therein. The cell cover has cell cover fastening holes formed therein. The fixing unit connects the multiple cell units and the support plate by passing through the plate fastening holes and the cell cover fastening holes. The cell unit further includes a busbar frame that connects to the longitudinal end of the cell cover, A battery pack in which the electrode leads of the battery cells housed in the cell cover are electrically connected to busbars mounted on the busbar frame.
6. A busbar frame groove is formed on one surface of the busbar frame. The battery pack according to claim 5, wherein the shape of the busbar frame groove corresponds to the shape of the outer circumferential surface of the fixing unit.
7. A battery assembly comprising a plurality of cell units arranged in a line in one direction, and The internal space includes a pack case for housing the battery assembly, The cell unit includes at least one battery cell and a cell cover that covers a portion of the battery cell. The battery assembly includes a fixing unit that restricts the relative movement of the plurality of cell units by penetrating the cell cover, The battery assembly includes a support plate that contacts one surface of the outermost cell unit among the plurality of cell units. The fixing unit penetrates the support plate, thereby restricting the relative movement between the plurality of cell units and the support plate. The support plate has plate fastening holes formed therein. The cell cover has cell cover fastening holes formed therein. The fixing unit connects the multiple cell units and the support plate by passing through the plate fastening holes and the cell cover fastening holes. The battery assembly further includes end covers located at the longitudinal ends of the plurality of cell units, The end cover is connected to the support plate, and the battery pack.
8. The end cover includes a body portion that covers the longitudinal ends of the plurality of cell units, and a cover extension portion that extends from one edge of the body portion toward the support plate. The battery pack according to claim 7, wherein the cover extension corresponds to the end of the support plate in the longitudinal direction.
9. The battery pack according to claim 8, wherein the fixing unit connects the end cover and the support plate by passing through the cover extension.
10. The cell cover has cell cover fastening holes formed therein. The support plate has plate fastening holes formed therein. Cover fastening holes are formed in the aforementioned cover extension. The battery pack according to claim 9, wherein the fixing unit connects the plurality of cell units, the support plate, and the end cover by passing through the cell cover fastening holes, the plate fastening holes, and the cover fastening holes.
11. The battery assembly further includes a second fixing unit, The battery pack according to claim 8, wherein the cover extension and the end of the support plate are fixed by the second fixing unit.
12. The support plate has a second plate fastening hole formed therein. Cover fastening holes are formed in the aforementioned cover extension. The battery pack according to claim 11, wherein the second fixing unit connects the end cover and the support plate by passing through the second plate fastening hole and the cover fastening hole.
13. The support plate has a cover connecting portion formed at a position corresponding to the cover extension portion. The battery pack according to claim 8, wherein the outer surface of the cover connecting portion and the inner surface of the cover extension portion are arranged to be in contact with each other.
14. The outer surface of the cover joint has a shape that is recessed toward the inner surface. The battery pack according to claim 13, wherein the inner surface of the cover extension is located on the outer surface of the recessed cover joint.
15. The battery pack according to claim 8, wherein the end cover includes a cover support portion extending from one edge of the body portion toward the lower surface of the cell unit.
16. A battery assembly comprising a plurality of cell units arranged in a line in one direction, and The internal space includes a pack case for housing the battery assembly, The cell unit includes at least one battery cell and a cell cover that covers a portion of the battery cell. The battery assembly includes a fixing unit that restricts the relative movement of the plurality of cell units by penetrating the cell cover, The battery assembly includes a support plate that contacts one surface of the outermost cell unit among the plurality of cell units. The fixing unit penetrates the support plate, thereby restricting the relative movement between the plurality of cell units and the support plate. The support plate has plate fastening holes formed therein. The cell cover has cell cover fastening holes formed therein. The fixing unit connects the multiple cell units and the support plate by passing through the plate fastening holes and the cell cover fastening holes. The aforementioned cell cover is a battery pack formed by bending a single sheet of material.
17. A device comprising the battery pack described in claim 1.
Citation Information
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