Battery packs and devices containing them
The CTP type battery pack design improves energy density and safety by eliminating module frames and incorporating a venting system to manage thermal events, ensuring efficient gas discharge and preventing thermal runaway and structural collapse.
Patent Information
- Application Number
- JP2024529239
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-07-11
- Filing Date
- 2023-07-12
- Publication Date
- 2025-08-13
- Estimated Expiration
- 2043-07-12
AI Technical Summary
Conventional battery packs face issues with energy density and safety due to the presence of additional components like module cases and stacking frames, and thermal events can lead to thermal runaway and structural collapse.
A CTP type battery pack design that omits the battery module configuration, featuring a battery cell assembly with a venting unit and pack cross beam for efficient gas discharge, ensuring each battery cell has a dedicated venting channel and path to prevent thermal runaway and structural collapse.
The design enhances energy density, simplifies assembly, and effectively manages thermal events by directing high-temperature gases and flames outside the pack, minimizing thermal runaway and preventing structural collapse.
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. 10-2022-0089869 filed on July 20, 2022 and Korean Patent Application No. 10-2023-0090045 filed on July 11, 2023, and all contents disclosed in the documents of said Korean patent applications are incorporated herein by reference.
[0002] The present invention relates to a battery pack and a device including the same, and more particularly to a battery pack and a device including the same that, when a thermal event occurs in a cell-to-pack (CTP) type battery pack, allows venting gas to be discharged to the outside of the battery pack along a specific path, thereby minimizing the transfer of thermal runaway inside the battery pack and preventing structural collapse. [Background technology]
[0003] Currently, secondary batteries are not only used as energy sources for wireless mobile devices or wearable devices, which are small, multi-functional products, but are also widely used as energy sources or energy storage systems (ESS) for electric vehicles and hybrid electric vehicles, which are presented as alternatives to existing gasoline and diesel vehicles.
[0004] Generally, the operating voltage of each secondary battery is approximately 2.5V to 4.5V. Therefore, in the case of electric vehicles and power storage devices that require large capacity and high output, battery modules in which multiple secondary batteries are connected in series and / or parallel, and battery packs in which the battery modules are connected in series and / or parallel, are used as energy sources. In other words, a conventional battery pack includes a battery module as a sub-concept, and a battery module includes a battery cell as a sub-concept. The number of battery cells installed in a battery module or the number of battery modules installed in a battery pack can be determined in various ways depending on the output and capacity of the battery pack required for the electric vehicle.
[0005] Meanwhile, conventional battery packs may be disadvantageous in terms of energy density. For example, when a large number of battery cells are housed inside a module case to form a module, the volume and weight of the battery pack may be unnecessarily increased due to the presence of numerous components, such as the module case or a stacking frame, and the space occupied by the battery cells may be reduced. Furthermore, the space occupied by the components themselves, such as the module case or the stacking frame, as well as the space for housing the battery cells may be reduced in order to ensure assembly tolerances for these components. Therefore, conventional battery packs may have limitations in terms of increasing their energy density.
[0006] Furthermore, one of the most important issues in conventional battery packs is safety. In particular, if a thermal event occurs in one of the multiple battery cells included in the battery pack, it is necessary to prevent the propagation of such an event to other battery cells.
[0007] If the thermal propagation between battery cells is not properly suppressed, it may lead to a thermal event in other battery cells included in the battery pack, resulting in a larger problem such as a fire or explosion of the battery pack. Furthermore, a fire or explosion occurring in the battery pack may cause serious damage to the lives and property of people in the surrounding area. Therefore, for such battery packs, a configuration that can properly control the above-mentioned thermal event is required. Summary of the Invention [Problem to be solved by the invention]
[0008] One problem that the present invention aims to solve is to improve the assembly process and energy density of the battery pack by providing a CTP type battery pack that omits the battery module configuration and is assembled in units of battery cells.
[0009] Another problem to be solved by the present invention is to guide venting gas to move along a specific path in advance and be discharged to the outside of the battery pack in preparation for the occurrence of a thermal event in a CTP type battery pack, thereby minimizing the transfer of thermal runaway between battery cells inside the battery pack and preventing structural collapse of the battery pack.
[0010] However, the problems to be solved by the embodiments of the present invention are not limited to the above problems, and may be variously expanded within the scope of the technical ideas included in the present invention. [Means for solving the problem]
[0011] According to one aspect of the present invention, a battery pack includes a battery cell assembly including a plurality of stacked battery cell units, a pack tray on which the battery cell assembly is mounted, a pack cross beam positioned on one side of the battery cell assembly on the pack tray and having a gas passage formed therein, and a venting unit positioned above the battery cell assembly. The battery cell unit includes at least one battery cell and a cell cover partially surrounding the at least one battery cell, the cell cover having at least one vent. The venting unit includes a plurality of venting channels that guide gas emitted from the venting portion to the gas passage, each venting channel being positioned to correspond to a respective one of the battery cell units.
[0012] Each of the venting channels may have an independent venting space that is not shared with another.
[0013] The venting channel may be defined by a partition wall inside the venting unit.
[0014] The venting channel may extend along a length direction of the battery cell unit, which is a direction perpendicular to a direction in which the battery cell units are stacked.
[0015] Each of the venting channels may be in communication with each of the battery cell units in a one-to-one relationship.
[0016] The cell cover may have an open bottom.
[0017] The cell cover may include a top surface portion and a side surface portion, and at least one of the vents may be formed on the top surface portion.
[0018] The venting portion may be in the form of a hole penetrating a portion of the cell cover.
[0019] The venting portion may be a portion of the cell cover that is weaker in rigidity than an adjacent portion and ruptures when a force and / or heat exceeding a certain pressure is applied.
[0020] The venting unit may include an inlet communicating with the venting portion.
[0021] The inlet may be provided with a mesh structure.
[0022] A connection portion may be formed in one of the venting unit and the pack cross beam, and a connection hole coupled to the connection portion may be formed in the other of the venting unit and the pack cross beam. Each of the connection portions may be in one-to-one communication with each of the venting channels.
[0023] The connection portions can be fitted into the corresponding connection holes one-to-one to be coupled.
[0024] A rupture disk that ruptures when pressure exceeds a certain level may be provided inside at least one of the connection portion or the connection hole.
[0025] The venting channel may communicate with the gas passage of the pack cross beam through the connection portion and the connection hole.
[0026] The pack cross beam may include a plurality of mesh portions that define the gas passages, and the mesh portions may be located at points between the connection portions along the length of the pack cross beam.
[0027] A device according to one aspect of the present invention includes the battery pack. [Effects of the Invention]
[0028] According to one aspect of the present invention, a battery pack can be provided that can store battery cells in a pack tray space-efficiently, has a higher energy density than conventional battery packs, and has a simplified assembly process.
[0029] In addition, when a thermal event occurs in a battery cell, the high-temperature venting gas or flame emitted from the battery cell travels along a specific, predetermined path and is discharged to the outside of the battery pack, thereby minimizing the transfer of thermal runaway between battery cells within the battery pack and preventing structural collapse of the battery pack.
[0030] The effects of the present invention are not limited to those mentioned above, and other effects not mentioned above will be clearly understood by those skilled in the art from the description of the claims. [Brief explanation of the drawings]
[0031] [Figure 1] 1 is a perspective view showing a portion of a battery pack according to an embodiment of the present invention; [Figure 2] FIG. 2 is a perspective view showing the battery pack of FIG. 1 with a venting unit removed. [Figure 3] 1 is a perspective view showing a battery cell assembly and a venting unit according to an embodiment of the present invention; [Figure 4] FIG. 4 is an exploded perspective view of the battery cell assembly of FIG. 3. [Figure 5] FIG. 5 is a perspective view showing one of the battery cell units included in the battery cell assembly of FIGS. 3 and 4. [Figure 6] FIG. 6 is an exploded perspective view of the battery cell unit of FIG. 5. [Figure 7] 7 is a diagram showing a battery cell included in the battery cell unit of FIG. 6. [Figure 8] FIG. 7 is a perspective view showing a cell cover included in the battery cell unit of FIG. 6. [Figure 9] 9(a) and 9(b) are cross-sectional views taken along the line CC' in FIG. 8, showing an embodiment of the present invention. [Figure 10] 1 is a perspective view showing a venting unit according to an embodiment of the present invention; [Figure 11] 2 is a cross-sectional view showing a part of the cross section taken along the line AA' in FIG. 1. FIG. [Figure 12] 2 is a cross-sectional view showing a part of the cross section taken along the line BB' in FIG. 1. FIG. [Figure 13] FIG. 7 is an exploded perspective view showing an enlarged view of a battery cell and a bus bar module included in the battery cell unit of FIGS. 5 and 6. [Figure 14] FIG. 7 is a perspective view showing a bus bar included in the bus bar module of FIGS. 5 and 6. [Figure 15] FIG. 7 is a perspective view showing a bus bar frame included in the bus bar module of FIGS. 5 and 6. [Figure 16] 6 is an enlarged partial view showing a portion of the battery cell unit in FIG. 5 where a bus bar module is attached. DETAILED DESCRIPTION OF THE INVENTION
[0032] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] The present invention may be embodied in various different forms and is not limited to the embodiments set forth herein.
[0033] In order to clearly explain the present invention, parts unnecessary for the explanation are omitted, and the same reference numerals are used throughout the specification to refer to the same or similar components.
[0034] In addition, the size and thickness of each component shown in the drawings are arbitrarily shown for the convenience of explanation, and the present invention is not necessarily limited to those shown in the drawings. In the drawings, thicknesses are exaggerated to clearly show multiple layers and regions. In the drawings, thicknesses of some layers and regions are exaggerated for the convenience of explanation.
[0035] Furthermore, when a layer, film, region, plate, or other part is said to be "on" another part, this does not only mean that it is "directly on" that other part, but also includes cases where there are other parts in between. Conversely, when a part is said to be "directly on" another part, it means that there are no other parts in between. Furthermore, being "on" a reference part means being located above or below the reference part, and does not necessarily mean being "on" in the opposite direction of gravity.
[0036] Furthermore, throughout the specification, when a part is said to "comprise" a certain element, this does not mean that it excludes other elements and may further include other elements, unless specifically stated to the contrary.
[0037] Also, throughout the specification, "on a plane" means when the subject part is viewed from above, and "on a cross section" means when the subject part is cut vertically and viewed from the side.
[0038] Fig. 1 is a perspective view showing a portion of a battery pack according to an embodiment of the present invention. Fig. 2 is a perspective view showing the battery pack of Fig. 1 with a venting unit removed. Fig. 3 is a perspective view showing a battery cell assembly and a venting unit according to an embodiment of the present invention. Fig. 4 is an exploded perspective view of the battery cell assembly of Fig. 3.
[0039] 1 to 4, a battery pack 1000 according to an embodiment of the present invention includes a battery cell assembly 100A in which a plurality of battery cell units 100 are stacked, a pack tray 1100 on which the battery cell assembly 100A is mounted, a pack cross beam 1200 located on one side of the battery cell assembly 100A on the pack tray 1100 and having a gas passage therein, and a venting unit 400 located above the battery cell assembly 100A.
[0040] The pack tray 1100 has a space in which the battery cell assembly 100A is placed, and the battery cell assembly 100A can be accommodated in the placement space of the pack tray 1100. The pack tray 1100 can be in the form of a box with an open top. That is, the pack tray 1100 can include a bottom 1100F and a side wall 1100S extending vertically from one corner of the bottom 1100F, and the battery cell assembly 100A can be accommodated in the placement space formed by the bottom 1100F and the side wall 1100S. Meanwhile, although not specifically shown, the battery pack 1000 according to this embodiment can further include a pack cover that covers the open top of the pack tray 1100.
[0041] The battery pack 1000 according to this embodiment may include a pack cross beam 1200 that defines the mounting space. The pack cross beam 1200 may prevent the battery cell assembly 100A mounted in the mounting space from falling off. The battery pack 1000 according to this embodiment may also include a pack side beam 1500 disposed on the other side of the battery cell assembly 100A. The pack cross beam 1200 and the pack side beam 1500 minimize forward / backward and left / right movement of the battery cell assembly 100A, thereby preventing damage to the battery cell assembly 100A due to external vibrations and impacts. A gas passage is provided inside the pack cross beam 1200, which will be described later.
[0042] The pack cross beam 1200 may extend in the direction in which the battery cell units 100 are stacked within the battery cell assembly 100A, and the pack side beam 1500 may extend in a direction perpendicular to the direction in which the battery cell units 100 are stacked within the battery cell assembly 100A. For example, as shown in FIG. 2, the battery cell units 100 may be stacked in a direction parallel to the Y axis, and the pack cross beam 1200 may extend in a direction parallel to the Y axis, and the pack side beam 1500 may extend in a direction parallel to the X axis that is perpendicular to the Y axis. In this specification, the direction perpendicular to the direction in which the battery cell units 100 are stacked corresponds to the length direction of the battery cell units 100, and the length direction of the battery cell units 100 may be parallel to the X axis.
[0043] The pack cross beam 1200 and the pack side beam 1500 may be spaced apart or intersect with each other to form the multiple mounting spaces. As a specific example, the battery cell assemblies 100A may be arranged in two rows inside the pack tray 1100, and the pack cross beam 1200 may be arranged across the center of the pack tray 1100 to separate the battery cell assemblies 100A arranged in two rows. The pack side beams 1500 may be arranged perpendicular to the pack cross beam 1200 to separate the battery cell assemblies 100A arranged in each row, and multiple pack side beams 1500 may be arranged 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 of this embodiment is not limited to the above example.
[0044] Meanwhile, as described above, the battery cell assembly 100A of this embodiment may be provided with a minimized separate frame that protects the outer surface of the battery cell unit 100. That is, the battery cell assembly 100A of this embodiment may have a module-less structure. Here, the module-less structure may refer to a cell-to-pack structure in which a battery cell structure is directly coupled to a battery pack structure without a module frame.
[0045] Typically, a conventional battery pack 1000 has a double-assembly structure in which a battery module is formed by assembling a plurality of battery cells and various components connected thereto, and the plurality of battery modules are then housed 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 doubly protected by the module frame of the battery module and the pack tray 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 disadvantages such as reduced reassembly if some battery cells are defective. Furthermore, if a cooling member is present outside the battery module, the heat transfer path between the battery cells and the cooling member becomes somewhat complicated.
[0046] Therefore, in this embodiment, the unit modules to be mounted in the battery pack 1000 may be provided in the form of a "battery cell assembly" in which the module frame is omitted. This simplifies the structure of the battery pack 1000, provides advantages in terms of manufacturing cost and manufacturing process, and achieves the effect of reducing the weight of the battery pack 1000.
[0047] In the present embodiment, unlike conventional battery modules and battery packs, there is no need to provide additional components such as a module case, a stacking frame, or fastening members such as bolts for maintaining the stacked state of the battery cells. In other words, by eliminating the space occupied by these components in the present embodiment, the battery cells can occupy more space, which can improve energy density, reduce overall volume and weight, and simplify the manufacturing process.
[0048] The battery cell assembly, the battery cell unit, and the battery cell according to this embodiment will be described in detail below.
[0049] Fig. 5 is a perspective view showing one of the battery cell units included in the battery cell assembly of Fig. 3 and Fig. 4. Fig. 6 is an exploded perspective view of the battery cell unit of Fig. 5. Fig. 7 is a view showing a battery cell included in the battery cell unit of Fig. 6.
[0050] 4 to 7, a battery cell assembly 100A according to one embodiment of the present invention includes a plurality of battery cell units 100 stacked in one direction. The battery cell unit 100 according to one embodiment of the present invention includes at least one battery cell 110 and a cell cover 200 that partially surrounds the at least one battery cell 110.
[0051] The battery cell 110 according to the present embodiment may be a battery cell of various types, such as a pouch-type battery cell, a prismatic battery cell, or a cylindrical battery cell. For example, as shown in Fig. 7, the battery cell 110 according to the present embodiment may be a pouch-type battery cell. While a pouch-type battery cell will be described below, the battery cell 110 according to the present embodiment is not limited thereto, and various types of battery cells may be applied.
[0052] The battery cell 110 according to this embodiment may have a configuration in which an electrode assembly having electrode leads 111 protruding in one or both directions is housed in a pouch case 114. Such a battery cell 110 may have a rectangular sheet shape. The battery cell 110 may be formed by housing an electrode assembly in a pouch case 114 made of a laminate sheet including a resin layer and a metal layer, and then bonding the outer periphery of the pouch case 114. As an example, the battery cell 110 may have a structure in which two electrode leads 111 face each other and protrude from one end 114a and the other end 114b of the cell body 113, respectively. As another embodiment, the electrode leads 111 of the battery cell 110 may both protrude in one direction. One of the electrode leads 111 is a positive electrode lead, and the other is a negative electrode lead.
[0053] The battery cell 110 may be manufactured by bonding both ends 114a, 114b of the pouch case 114 and one side 114c connecting them together while an electrode assembly (not shown) is housed in the pouch case 114. In other words, the battery cell 110 according to this embodiment of the present invention may have a total of three sealing portions 114s, which may be sealed by a method such as fusion welding, and the remaining side may be formed by a folding portion 115. In other words, the battery cell 110 according to this embodiment may be a pouch-type secondary battery in which the electrode assembly is housed inside the pouch case 114 and the outer periphery of the pouch case 114 is sealed to form the sealing portion 114s. In FIG. 7, only the sealing portions 114s formed at both ends 114a and 114b of the pouch case 114 are shown, and the sealing portion on the side facing the folding portion 115 is not shown, but the sealing portion on the side facing the folding portion 115 is folded to one side after sealing is completed to utilize space.
[0054] The laminate sheet pouch case 114 may include an inner resin layer for sealing, a metal layer for preventing penetration of substances, and an outermost resin layer. Based on the electrode assembly inside the pouch case 114, the inner resin layer may be located innermost, the outer resin layer may be located outermost, and the metal layer may be located between the inner and outer resin layers.
[0055] The outer resin layer has excellent tensile strength and weather resistance relative to its thickness, and can have electrical insulation properties to protect the electrode assembly from the outside. This outer resin layer can include polyethylene terephthalate (PET) resin or nylon resin. The metal layer can prevent air, moisture, etc. from entering the pouch-type secondary battery. This metal layer can include aluminum (Al). The inner resin layers can be heat-sealed to each other by applying heat and / or pressure with the electrode assembly inside. This inner resin layer can include cast polypropylene (CPP) or polypropylene (PP).
[0056] The pouch case 114 may be divided into two sections, and a recessed receiving portion in which an electrode assembly can be placed may be formed in at least one of the two sections. A sealing portion 114s may be formed around the outer periphery of the receiving portion by joining the inner resin layers of the two sections of the pouch case 114. The pouch case may be sealed in this manner to manufacture a battery cell 110, which is a pouch-type secondary battery.
[0057] The battery cell unit 100 may include one or more battery cells 110. As an example, FIG. 6 shows a battery cell unit 100 including three battery cells 110. The multiple battery cells 110 may be stacked so as to be electrically connected to each other. In particular, the multiple battery cells 110 may be stacked upright in a direction parallel to the y-axis, with one surface of each cell body 113 facing each other. This allows the electrode leads 111 to protrude in a direction perpendicular to the stacking direction of the battery cells 110. In a battery cell 110, one electrode lead 111 may protrude in the x-axis direction, and the other electrode lead 111 may protrude in the negative x-axis direction. In the case of a battery cell in which the electrode leads 111 protrude in only one direction, the electrode leads 111 may protrude in either the x-axis direction or the negative x-axis direction.
[0058] FIG. 8 is a perspective view showing a cell cover included in the battery cell unit of FIG.
[0059] 5 to 8, the cell cover 200 according to this embodiment partially surrounds at least one battery cell 110, as described above. The cell cover 200 may include a side portion 210 and a top portion 220. The side portion 210 may cover one side of the battery cell 110, and the top portion 220 may cover an upper portion of the battery cell 110. The cell cover 200 may include two side portions 210 and one top portion 220. One surface of the side portion 210 and one surface of the top portion 220 may be perpendicular, and the side portions 210 may extend downward from opposite sides of the top portion 220. The cell cover 200 according to this embodiment may have an open bottom. That is, when the cell cover 200 in FIG. 8 is cut along the yz plane, the cell cover 200 may have an "n" shape. The cell cover 200 may be provided to surround at least a portion of three of the four sides of the six-sided battery cell 110 excluding the two sides on which the electrode leads 111 are formed.
[0060] The cell cover 200 not only delays thermal runaway but also complements the rigidity of the battery cells 110, thereby allowing the battery cells 110 to maintain an upright state. The cell cover 200 covers at least a portion of the battery cells 110, thereby supporting the battery cells 110 and stably maintaining a stacked state of the battery cells 110 arranged upright in one direction. More specifically, the side portion 210 of the cell cover 200 supports the side of the battery cells 110, thereby maintaining the upright state of the battery cells 110. In addition, the lower edge of the cell cover 200 may be placed on the thermal resin layer 1300 on the bottom portion 1100F of the pack tray 1100, thereby allowing the cell cover 200 to stand on its own and maintaining the upright state of the battery cells 110 inside the cell cover 200.
[0061] 9(a) and 9(b) are cross-sectional views taken along the line CC' in FIG. 8, showing an embodiment of the present invention.
[0062] 8, 9(a) and 9(b), at least one venting portion 200V may be formed in the cell cover 200 according to this embodiment. The at least one venting portion 200V may be formed on the upper surface 220 of the cell cover 200.
[0063] If thermal runaway occurs in at least one battery cell 110 inside the cell cover 200, generating high-temperature gas and flame, the venting portion 200V formed in the cell cover 200 functions as a passage for discharging the high-temperature gas and flame to the venting unit 400 (described later). As long as the gas and flame can be efficiently discharged, there is no particular limit to the number and area of the venting portions 200V provided in one cell cover 200. For example, as shown in FIG. 8, three venting portions 200V may be formed on the upper surface 220 of the cell cover 200, and the area of the venting portion 200V formed in the center may be slightly larger than the areas of the other venting portions 200V.
[0064] In the past, when a fire occurs in the battery cell 110, gas and sparks move toward the electrode lead 111, which can cause additional thermal runaway. However, in the present embodiment, the venting portion 200V is formed in the cell cover 200, which can minimize the movement of gas and sparks toward the electrode lead 111. The gas exhaust path through the venting portion 200V can be separated from the electrode lead 111, which can prevent the electrode lead 111 and the electrical components connected thereto from being damaged by gas, sparks, or flames.
[0065] As shown in Fig. 9(a), venting portion 200Va according to one embodiment of the present invention may be in the form of a hole that penetrates a portion of top surface portion 220 of cell cover 200. Alternatively, as shown in Fig. 9(b), venting portion 200Vb according to another embodiment of the present invention may be a portion that makes a portion of top surface portion 220 relatively weaker in rigidity than the adjacent portion, so that the portion will rupture when a force or heat exceeding a certain pressure is applied.
[0066] According to this embodiment, when high-temperature gas or flame is emitted from at least one battery cell 110 surrounded by the cell cover 200, the high-temperature gas or flame is discharged through the venting section 200V and can be guided into the venting unit 400 described below.
[0067] The venting unit 400 according to this embodiment will be described in detail below.
[0068] FIG. 10 is a perspective view showing a venting unit according to an embodiment of the present invention.
[0069] 2, 3, 5, 6, 8, and 10, the venting unit 400 according to this embodiment is located on top of the battery cell assembly 100A. The venting unit 400 also includes a plurality of venting channels 410 that guide gas emitted from the venting portion 200V of the cell cover 200 to a gas passage in the pack cross beam 1200 (described later), with each venting channel 410 positioned to correspond to a respective battery cell unit 100. When a thermal event occurs in a battery cell 110 included in a particular battery cell unit 100, causing high-temperature gas to be emitted from the battery cell unit 100, the venting unit 400 can guide the high-temperature gas to flow from the venting portion 200V of the battery cell unit 100 to the inside of the pack cross beam 1200.
[0070] The venting unit 400 includes a plurality of venting channels 410, which are passages through which gas can move inside. Each of the venting channels 410 may have an independent venting space that is not shared with other venting channels. The venting unit 400 may include a partition 420 that partitions an internal space, and the venting channels 410 may be partitioned by the partition 420 inside the venting unit 400.
[0071] The venting unit 400 may be a box-shaped structure having an internal space, and this internal space may be partitioned by partitions 420 to provide venting channels 410. The venting channels 410 are completely enclosed by the partitions 420 between each other, do not share space with each other, and have independent venting paths. Therefore, high-temperature gas or flames passing through any one venting channel 410 do not propagate to other adjacent venting channels 410.
[0072] Fig. 11 is a cross-sectional view showing a part of a cross section taken along line AA' in Fig. 1. Fig. 12 is a cross-sectional view showing a part of a cross section taken along line BB' in Fig. 1.
[0073] 3, 6, 8, 10, 11, and 12, the venting unit 400 according to this embodiment may include an inlet 430 that communicates with the venting portion 200V of the battery cell unit 100. The inlet 430 may be formed on the bottom surface of the venting unit 400, and high-temperature gas and flames discharged through the venting portion 200V may flow into the venting channel 410 through the inlet 430.
[0074] The venting channels 410 may be connected along the length of the battery cell units 100, which is a direction perpendicular to the direction in which the battery cell units 100 are stacked. Each venting channel 410 may be in one-to-one communication with each battery cell unit 100. That is, the number of venting channels 410 may match the number of battery cell units 100 in the battery cell assembly 100A, and any one battery cell unit 100 may be in communication only with the venting channel 410 located above it, and may not be in communication with the other venting channels 410.
[0075] High-temperature gases and flames generated in any one battery cell unit 100 are exhausted only to the venting channel 410 connected to it, and movement to other venting channels 410 is restricted. In the battery cell assembly 100A according to this embodiment, the battery cells 110 are housed in the cell cover 200 to form the battery cell unit 100. High-temperature gases and flames generated by thermal runaway in any one battery cell unit 100 are blocked by the side surface 210 of the cell cover 200 and do not propagate to other adjacent battery cell units 100. The cell cover 200 may be made of a material with a high melting point so as not to melt even in the event of thermal runaway. In addition, the cell cover 200 may be made of a material with a mechanical strength above a predetermined range so as to stably support the battery cells 110, thereby protecting the battery cells 110 from external impacts. Examples of materials used for the cell cover 200 include steel and stainless steel (SUS).
[0076] Furthermore, when high-temperature gas or flame is discharged to the corresponding venting channel 410 at the top of the corresponding battery cell unit 100, the high-temperature gas or flame does not flow into adjacent venting channels 410 because each venting channel 410 has an independent venting space that is not shared with other venting channels. Therefore, there is no risk of high-temperature gas or flame backflowing into adjacent venting channels 410 and other battery cell units 100 located below them. If the venting spaces of the venting channels 410 were shared with other venting channels, there would be a risk of high-temperature gas or flame flowing into the battery cell unit 100 in which thermal runaway occurs and the adjacent battery cell unit 100 because the internal pressure therein is relatively low. In this embodiment, by implementing an independent venting path for each battery cell unit 100, the transfer of thermal runaway between battery cells 110 is minimized, and structural collapse of the battery pack is prevented.
[0077] Meanwhile, according to the present embodiment, the inlet 430 may be provided with a mesh structure. The mesh structure may be made of a metal material. When metal particles contained in high-temperature gas or flames pass through the inlet 430, they may be filtered by the mesh structure. When the metal particles come into contact with the mesh structure, their temperature is lowered, thereby reducing the risk of explosion.
[0078] Meanwhile, according to this embodiment, the venting unit 400 and the pack cross beam 1200 may be connected to each other. Specifically, a connection portion may be formed in one of the venting unit 400 or the pack cross beam 1200, and a connection hole for coupling with the connection portion may be formed in the other. For example, as shown in FIG. 12 , a connection portion 440 may be formed in the venting unit 400, and a connection hole 1220 into which the connection portion 440 is inserted may be formed in the pack cross beam 1200. As another embodiment, a connection portion may be formed in the pack cross beam 1200, and a connection hole into which the connection portion of the pack cross beam 1200 is inserted may be formed in the venting unit 400.
[0079] The connecting portions 440 according to this embodiment may be in the form of a pipe so that they can be inserted into and coupled to the connecting holes 1220. The connecting portions 440 may be fitted into and coupled to the corresponding connecting holes 1220 in a one-to-one relationship. In addition, each connecting portion 440 may be in communication with each venting channel 410 in a one-to-one relationship.
[0080] As described above, a gas passage 1210 is provided inside the pack cross beam 1200. That is, the pack cross beam 1200 may be provided with a hollow structure to function as a passage for discharging venting gas to the outside. The venting channel 410 of the venting unit 400 can be connected to the gas passage 1210 inside the pack cross beam 1200 through the connection portion 440 and the connection hole 1220. That is, the venting channel 410 can be connected to the gas passage 1210 of the pack cross beam 1200 through the connection portion 440 and the connection hole 1220.
[0081] As a result, high-temperature gases and flames moving along the venting channels 410 can move to the gas passages 1210 of the pack cross beam 1200 through the connection parts 440 and the connection holes 1220, and ultimately be discharged to the outside of the battery pack 1000. The pack cross beam 1200 according to this embodiment not only prevents the battery cell assembly 100A from moving loosely or coming off, but also performs a venting function of discharging high-temperature gases and flames generated by thermal runaway of the battery cell units 100 to the outside of the battery pack 1000.
[0082] Meanwhile, according to this embodiment, a rupture disc 450 having a structure that ruptures when a certain pressure is applied may be provided inside at least one of the connection part 440 or the connection hole 1220. The certain pressure may be adjusted by adjusting the thickness or material of the rupture disc 450. Structurally, it is more preferable that the rupture disc 450 is provided inside the connection part 440. The rupture disc 450 may be formed of a membrane structure that ruptures when a certain pressure is applied.
[0083] Gas emitted from a certain battery cell unit 100 is guided along the venting channel 410 corresponding to that battery cell unit 100, and the pressure of the gas ruptures the rupture disk 450 of the connection part 440 corresponding to that venting channel 410, allowing it to be discharged into the gas passage 1210 of the pack cross beam 1200. The gas flow in the gas passage 1210 of the pack cross beam 1200 does not flow back to other connection parts 440 that are blocked by rupture disks 450, as shown in FIG. 12, but is instead directed toward a separate gas exhaust port (not shown) provided in the pack cross beam 1200. In other words, the gas exhaust port is connected to the outside air, and the other connection parts 440 are blocked by rupture disks 450, so that the gas flow in the gas passage 1210 of the pack cross beam 1200 can be directly directed toward the gas exhaust port. Since the individual venting path for each battery cell unit 100 is maintained even within the pack cross beam 1200, the transfer of thermal runaway between the battery cells 110 can be prevented.
[0084] In addition, the pack cross beam 1200 may include a plurality of mesh portions 1230 that define the gas passages 1210, and the mesh portions 1230 may be located at points between the connection portions 440 along the length direction of the pack cross beam 1200. Here, the length direction of the pack cross beam 1200 may be the direction in which the pack cross beam 1200 extends, which may be the direction in which the battery cell units 100 are stacked. In FIG. 12, the length direction of the pack cross beam 1200 is parallel to the Y axis. The mesh portions 1230 may be made of a metal material.
[0085] The pack cross beam 1200 having the mesh portion 1230 can once again filter flames and particles passing through the gas passage 1210. Also, as the gas passes through the mesh portion 1230, it has the effect of lowering the temperature.
[0086] 1, 6, and 11, a thermal resin layer 1300 formed by applying a thermal resin may be positioned on the bottom 1100F of the pack tray 1100, and the battery cell assembly 100A may be disposed on the thermal resin layer 1300. The thermal resin may include a thermally conductive adhesive material, specifically, at least one of silicone, urethane, and acrylic. The thermal resin is liquid when applied and hardens after application to secure the battery cell assembly 100A. In addition, the thermal resin has excellent thermal conductivity, allowing heat generated in the battery cells 110 to be quickly dissipated to the outside through the underside of the battery pack 1000.
[0087] As described above, the cell cover 200 according to this embodiment may include a side portion 210 and an upper portion 220, and may be open at the bottom with respect to the battery cells 110 positioned inside the cell cover 200. In the case of a battery cell assembly 100A including a battery cell unit 100 having such a structure, the battery cells 110 may directly face the bottom 1100F of the pack tray 1100. In addition, the battery cells 110 included in the battery cell assembly 100A may directly contact the thermal resin layer 1300 provided on the bottom 1100F of the pack tray 1100. Because the battery cells 110 directly contact the thermal resin layer 1300 of each battery pack 1000, the cooling performance of the battery pack 1000 can be further improved. Heat generated from each battery cell 110 is directly transferred to the bottom 1100F of the pack tray 1100 and immediately released, improving cooling performance. In this case, there is a thermal resin layer 1300 between the battery cell 110 and the bottom 1100F of the pack tray 1100 for heat transfer only, without any structure such as a frame, so the heat transfer path is simplified and the air gap between each layer can be reduced, thereby improving cooling efficiency and performance.
[0088] A heat sink 1400 may be positioned between the thermal resin layer 1300 and the bottom 1100F of the pack tray 1100. A cooling channel 1400C, which is a space through which a coolant flows, may be provided inside the heat sink 1400. Heat generated from each battery cell 110 may be discharged to the outside through the thermal resin layer 1300, the heat sink 1400, and the bottom 1100F of the pack tray 1100.
[0089] The busbar module 300 of the battery cell unit 100 according to one embodiment of the present invention will now be described in detail.
[0090] Fig. 13 is an enlarged exploded perspective view showing a battery cell and a bus bar module included in the battery cell unit of Fig. 5 and Fig. 6. Fig. 14 is a perspective view showing a bus bar included in the bus bar module of Fig. 5 and Fig. 6.
[0091] 5, 6, 8, 13, and 14, the battery cell unit 100 according to this embodiment may include at least one busbar module 300 that covers at least a portion of a portion of the battery cell 110 where the electrode lead 111 is disposed. Openings 200P may be formed in the cell cover 200 according to this embodiment. The openings 200P may be formed on both sides of the cell cover 200 in a direction in which the electrode lead 111 protrudes from the battery cell 110. The busbar modules 300 may be attached to these openings 200P.
[0092] The bus bar module 300 may include a bus bar 310 connected to the electrode lead 111. The bus bar 310 according to the present embodiment is a member for electrically connecting the battery cells 110 and may include a metal material such as copper or aluminum. More specifically, the bus bar 310 may include a lead coupling portion 311 coupled to the electrode lead 111 of the battery cell 110 and a terminal portion 312 extending from the lead coupling portion 311.
[0093] When the bus bar 310 is erected from the ground, the lead coupling portion 311 may extend vertically and may be coupled to the electrode lead 111 of the battery cell 110 by a method such as welding. The terminal portion 312 is a portion exposed to the outside of the cell cover 200 and serves to guide the electrical connection of the battery cell unit 100. The terminal portion 312 may be formed with a hole 312H for coupling the terminal portion 312 to an external bus bar.
[0094] Meanwhile, the bus bar 310 according to this embodiment may further include a bent portion 313 located between the lead coupling portion 311 and the terminal portion 312. The bent portion 313 may be a portion extending at a predetermined angle from the lead coupling portion 311. When the lead coupling portion 311 of the bus bar 310 is coupled to the electrode lead 111, the bent portion 313 may be disposed so as to face the electrode lead 111 toward the inside of the cell cover 200. As shown in FIG. 3 , the upper portions of the sealing portions 114s of both ends 114a and 144b of the cell body 113 may be cut. The bent portion 313 extending at a predetermined angle may be provided in the bus bar 310 to correspond to the shape of both ends 114a and 144b of the cell body 113.
[0095] 8, the cell cover 200 according to this embodiment may have a cutout 200N that exposes a portion of the bus bar 310. The cell cover 200 includes a cover portion 230 that protrudes from an end of the cell cover 200 due to the cutout 200N.
[0096] A cutout shape 200N may be provided by cutting out a portion of the side portion 210 and a portion of the top portion 220 at the upper end of the opening 200P of the cell cover 200. Unlike the recessed portion of the side portion 210 along the cutout shape 200N, the uncut portion corresponds to the cover portion 230 having a relatively protruding shape. In other words, the cutout shape 200N and the cover portion 230 may be provided in the opening 200P.
[0097] A portion of the bus bar 310 may be exposed toward the upper side of the cell cover 200 through the cutout shape 200N. More specifically, the terminal portion 312 may be exposed toward the upper side of the cell cover 200 through the cutout shape 200N. In addition, the cutout shape 200N may allow the upper side 230U of the cover portion 230 and the terminal portion 312 to be spaced apart from each other.
[0098] The cutout shape 200N may be changed depending on the position and size of the busbar 310 in the busbar module 300 according to this embodiment. The cutout shape 200N prevents contact between the cell cover 200 and the busbar 310, thereby ensuring electrical insulation of the busbar module 300. The cutout shape 200N may be set within a range that ensures electrical insulation of the busbar module 300. For example, if the overall position of the busbar 310 or the position of the terminal portion 312 of the busbar 310 is adjusted downward, the cutout shape 200N may be further cut downward. In particular, the cell cover 200 may include a metal material to support and protect at least one battery cell 110 disposed therein. In this case, the cutout shape 200N provided in the cell cover 200 according to this embodiment prevents the busbar 310, particularly the terminal portion 312, from coming into contact with the cell cover 200, thereby preventing a short circuit and ensuring electrical insulation of the busbar module 300.
[0099] Meanwhile, the cover portion 230 of the cell cover 200 may cover the side surface of the busbar module 300. More specifically, the cell cover portion 230 may cover the side surface of the busbar frame 320 of the busbar module 300. Therefore, the cover portion 230 may protect the busbar module 300 from external impacts and vibrations, and the busbar module 300 may be stably mounted in the opening portion 200P of the cell cover 200.
[0100] In addition, the weight of the cell cover 200 can be reduced by the amount of the cutout shape 200N formed in the cell cover 200. As a result, the energy density of the battery cell unit 100 and the battery cell assembly 100A including the same can be further improved, while the weight can be reduced and manufacturing costs can be reduced.
[0101] FIG. 15 is a perspective view showing a bus bar frame included in the bus bar module of FIGS. 5 and 6. FIG.
[0102] 13 to 15, the bus bar module 300 according to this embodiment may further include a bus bar frame 320 to which the bus bar 310 is attached and which includes an electrically insulating material.
[0103] Bus bar frame 320, which includes an electrically insulating material, can cover at least a portion of bus bar 310. Therefore, bus bar frame 320 can prevent bus bar 310 from coming into contact with parts other than electrode lead 111 and causing a short circuit.
[0104] The bus bar frame 320 may include a perimeter portion 321 that surrounds the terminal portion 312 and is attached to the cutout shape 200N of the cell cover 200. An upper hole 321H may be formed in the perimeter portion 321, and the bus bar 310 may be inserted into the interior space of the bus bar frame 320 through the upper hole 321H. The bus bar 310 may be fixed inside the bus bar frame 320 in various ways, but for example, a method in which a protrusion 320PR provided in the interior space of the bus bar frame 320 is inserted into a hole 311H formed in the bus bar 310 may be applied.
[0105] Meanwhile, slits 320S may be formed in the bus bar frame 320. The electrode leads 111 of the battery cells 110 may pass through the slits 320S and bend to be coupled to the lead coupling portions 311 of the bus bar 310. There is no particular limitation on the coupling method between the electrode leads 111 and the lead coupling portions 311, but welding may be used as an example. Bus bar openings 320P may be formed in the bus bar frame 320, and welding between the electrode leads 111 and the lead coupling portions 311 may be performed through the bus bar openings 320P. After the coupling between the electrode leads 111 and the lead coupling portions 311 is completed, the bus bar cover 330 and the insulating sheet 340 may be assembled to the bus bar frame 320, covering the bus bar openings.
[0106] FIG. 16 is an enlarged partial view showing the portion of the battery cell unit of FIG. 5 where the bus bar module is attached.
[0107] 13 to 16 , in this embodiment, the perimeter portion 321 surrounding the terminal portion 312 of the busbar 310 may be located between the terminal portion 312 and the cover portion 230. The cutout shape 200N can separate the upper side 230U of the cover portion 230 and the terminal portion 312, and at the same time, the perimeter portion 321 made of an electrically insulating material is interposed between the terminal portion 312 and the cover portion 230, thereby further ensuring electrical insulation of the busbar module 300. When the perimeter portion 321 of the busbar frame 320 is assembled to the cutout shape 200N of the cell cover 200, the structural stability and electrical insulation of the busbar module 300 can be improved.
[0108] The structure of a battery cell assembly 100A according to one embodiment of the present invention will now be described.
[0109] 2 to 6, the battery cell assembly 100A of this embodiment may include a plurality of battery cell units 100, a support plate 120 that supports one side of the outermost battery cell unit 100 among the plurality of battery cell units 100, an end cover 130 that covers the front and rear sides of the plurality of battery cell units 100, and a fixing unit 140 that connects the plurality of battery cell units 100 to one another. The battery cell assembly 100A of this embodiment may also include a handle unit 150.
[0110] As described above, in this embodiment, the plurality of battery cells 110 are not housed in a separate module case and then mounted on the pack tray 1100 of the battery pack 1000, but may be directly mounted on the pack tray 1100 while being partially covered by the cell cover 200 having a simplified structure. This battery cell unit 100 structure can reduce the overall weight and volume of the battery pack 1000 and improve the energy density of the battery pack 1000. In addition, damage to the battery cells 110 that may occur when a plurality of battery cells 110 are directly mounted in a case and used can be prevented, and swelling control of the battery cells and design of a gas venting path can be easily performed.
[0111] Meanwhile, prior to the description, the battery cell unit 100 may have a hexahedral shape having a horizontal (length), vertical (width), and thickness. Here, the vertical direction may be the X-axis, the horizontal direction may be the Z-axis, and the thickness direction may be the Y-axis. Multiple battery cell units 100 may be arranged consecutively along the thickness direction (Y-axis direction), and the thickness direction (Y-axis direction) may be referred to as the stacking direction of the battery cell units 100.
[0112] Here, the two opposing faces in the length direction (X-axis direction) of the battery cell unit 100 are the front and rear faces, the two opposing faces in the thickness direction (Y-axis direction) of the battery cell unit 100 are side faces, and the two opposing faces in the width direction (Z-axis direction) of the battery cell unit 100 can be called the top and bottom faces.
[0113] There may be a plurality of battery cell units 100, and the plurality of battery cell units 100 may be arranged side by side in one direction. The battery cell units 100 may be stacked in one direction and stored in the pack tray 1100. The battery cell units 100 may be arranged consecutively such that their side surfaces are parallel to the side surfaces of the adjacent battery cell units 100.
[0114] The battery cell unit 100 can be arranged upright along the Z-axis direction so that its side is perpendicular to the pack tray 1100. The battery cell unit 100 can be arranged so that its lower surface corresponds to the bottom 1100F of the pack tray 1100.
[0115] The support plate 120 may be a member for maintaining the overall shape of the stacked battery cell units 100. The support plate 120 may be a member for supporting the stacked battery cell units 100. In the battery pack 1000, the battery cell units 100 may be arranged with one surface thereof perpendicular to the bottom 1100F of the battery pack 1000, and the support plate 120 may support that surface of the battery cell units 100 so that the surface can remain upright. The support plate 120 may prevent the plurality of battery cell units 100 from separating from each other, thereby fixing the relative positions of the battery cell units 100. The support plate 120 may be a plate-shaped member and may complement the rigidity of the battery cell assembly 100A in place of a module frame.
[0116] The support plate 120 may be disposed on one surface of the outermost battery cell unit 100 among the stacked battery cell units 100. The support plate 120 may be disposed on a side surface of the outermost battery cell unit 100 among the stacked battery cell units 100.
[0117] Here, the battery cell assembly 100A of this embodiment may have two support plates 120. 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 in the stacking direction of the stacked battery cell units 100. The first support plate 120a may contact the outermost battery cell unit 100 on one side of the stacked battery cell units 100, and the second support plate 120b may contact the outermost battery cell unit 100 on the other side of the stacked battery cell units 100.
[0118] The support plate 120 may be made of various materials and may be provided through various manufacturing methods. For example, the support plate 120 may be made of a metal material, such as aluminum. As another example, the support plate 120 may be made of a material that combines 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 above description, and the support plate 120 may include various materials not mentioned above or may be manufactured through other manufacturing methods.
[0119] The support plate 120 may include a support portion 122 that supports the battery cell unit 100 , 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 .
[0120] The support portion 122 occupies most of the area of the support plate 120 and may have a plate-like shape so as to be able to support the battery cell unit 100. The support portion 122 may have a shape similar to the side shape of the battery cell unit 100. The plate-like support portion 122 may include both side edges in the length direction (X-axis direction) and width direction (Z-axis direction).
[0121] Meanwhile, the support plate 120 and the plurality of battery cell units 100 are connected by the fixing units 140, which may limit relative positional movement. To this end, the support portion 122 may be formed with plate fastening holes 123 into which the fixing units 140 are inserted. As will be described below, the plate fastening holes 123 may be formed at positions corresponding to the cell unit fastening holes 115 of the cell covers 200 included in the battery cell units 100. The plate fastening holes 123 may be located near the ends of the support plate 120 in the length direction (X-axis direction). This may be to prevent the fixing units 140, which penetrate the support plate 120 and the cell covers 200 included in the battery cell units 100, from damaging the battery cells 110.
[0122] There may be one plate fastening hole 123 formed in the support plate 120. However, in order to stably connect the plurality of battery cell units 100 and the support plate 120, it is preferable to have a plurality of fastening units 140, and therefore a plurality of plate fastening holes 123 may be formed in the support plate 120. For a specific example, there may be two fastening units 140 provided in the battery cell assembly 100A, and the plate fastening holes 123 may be formed near both ends of the support plate 120 in the longitudinal direction (X-axis direction). When there are a plurality of plate fastening holes 123, there may also be a plurality of cell unit fastening holes 115 formed in each cell cover 200, and in this case, the plurality of plate fastening holes 123 and the plurality of cell unit fastening holes 115 formed in each cell cover 200 may correspond to each other.
[0123] The cover connecting portion 124 may provide a connecting surface between the support plate 120 and the end cover 130. The cover connecting portion 124 may have a shape extending from one edge of the support portion 122.
[0124] The cover coupling part 124 may be formed on one edge of the periphery of the support part 122 that corresponds to the end cover 130. The end cover 130 may be disposed near an end of the support plate 120 in the length direction (X-axis direction), and the cover coupling part 124 may be formed on an edge of the support part 122 in the length direction (X-axis direction) to provide a coupling surface with the end cover 130. The cover coupling part 124 may have a shape that extends from the edge of the support part 122 in the length direction (X-axis direction) toward the end cover 130. The cover coupling part 124 may have a shape that extends parallel to one surface of the support part 122. In this case, the end cover 130 may be disposed such that an end of its length direction (Y-axis direction) corresponds to an end of the support plate 120 in the length direction (X-axis direction).
[0125] There may be two cover coupling portions 124 formed on one support plate 120. The cover coupling portions 124 may be located on two opposing edges of the support portion 122. More specifically, there may be two end covers 130, and the two end covers 130 may be arranged to correspond to the respective ends of one support plate 120 in the length direction (X-axis direction). The cover coupling portions 124 may be formed on both edges of the support portion 122 in the length direction (X-axis direction), and the two cover coupling portions 124 may correspond to the two end covers 130, respectively. The cover coupling portion 124 located at one end of the support plate 120 in the length direction (X-axis direction) may correspond to one end cover 130, and the cover coupling portion 124 located at the other end may correspond to the other end cover 130. In this manner, a plurality of cover coupling portions 124 may be formed on the support portion 122, and each cover coupling portion 124 may be coupled to a cover extension portion 134 formed on each end cover 130.
[0126] Meanwhile, the battery cell assembly 100A may include two support plates 120, and one end and the other end of the pair of support plates 120 in the length direction (X-axis direction) may correspond to one end and the other end of the pair of end covers 130 in the length direction (Y-axis direction). Thus, one end of one end cover 130 in the length direction (Y-axis direction) may correspond to the cover coupling portion 124 formed on the first support plate 120a, and the other end may correspond to the cover coupling portion 124 formed on the second support plate 120b.
[0127] The cover coupling portion 124 may have a second plate fastening hole 125 formed therein for coupling with the end cover 130. The number of second plate fastening holes 125 may be one or more. For example, there may be one second plate fastening hole 125. In this case, the coupling stability of the end cover 130 may be complemented by the shape of the end cover 130 or the shape of another component. In addition, when there is one second plate fastening hole 125, there are effects of reducing manufacturing costs and simplifying the manufacturing process. In addition, as another example, there may be two second plate fastening holes 125. In this case, the coupling reliability of the end cover 130 may be improved.
[0128] 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 may be coupled to at least one handle unit 150.
[0129] Here, the handle unit 150 may be used to stably place the battery cell assembly 100A inside the pack tray 1100 and may include a handle that can be gripped by a user. One end of the handle unit 150 may be detachably coupled to the support plate 120, and the handle unit 150 may be removed from the support plate 120 after the installation of the battery cell assembly 100A is complete.
[0130] The handle coupling part 126 may be formed to extend from one edge of the support part 122. The handle coupling part 126 may be located at one end of the support part 122 in the width direction (Z-axis direction). More specifically, it may be located on the upper side based on the state in which the battery cell assembly 100A is installed. This may facilitate removal of the handle unit 150 after installation of the battery cell assembly 100A is complete.
[0131] The end covers 130 may be for protecting the front or rear of the plurality of battery cell units 100. The end covers 130 may cover the front or rear of the plurality of battery cell units 100. The end covers 130 may be located at the ends of the stacked battery cell units 100 in the length direction. There may be two end covers 130, and two end covers 130 may be provided at both ends of the stacked battery cell units 100 in the length direction.
[0132] The end cover 130 can integrally cover terminal portions of the battery cells included in the plurality of battery cell units 100. The end cover 130 can include a body portion 132 that corresponds to portions of the electrode leads 111 of the battery cells 110 included in the plurality of battery cell units 100, and a cover extension portion 134 that extends perpendicularly from one edge of the body portion 132 and is coupled to the support plate 120.
[0133] The body part 132 may cover the front or rear of the plurality of battery cell units 100. The body part 132 may be located at an end of the plurality of battery cell units 100 in the length direction. The body part 132 may cover an end of the plurality of battery cell units 100 in the length direction. The body part 132 may cover terminal portions of the battery cells included in the plurality of battery cell units 100. Here, the body part 132 may also be referred to as a "terminal cover part."
[0134] The body portion 132 may have a general plate-like shape. The plate-like body portion 132 may have both side edges in the length direction (Y-axis direction) and both side edges in the width direction (Z-axis direction).
[0135] A cover vent hole 133 may be formed in the body portion 132. There may be a plurality of cover vent holes 133, and each of the plurality of cover vent holes 133 may correspond to each battery cell unit 100. However, each cover vent hole 133 does not necessarily have to correspond to one battery cell unit 100. A plurality of cover vent holes 133 may correspond to one battery cell unit 100, or one cover vent hole 133 may correspond to multiple battery cell units 100. The cover vent holes 133 allow the end cover 130 to protect the battery cell units 100 from the external environment while also allowing gases generated from the battery cells 110 to be discharged to the outside. This may prevent a chain reaction of thermal runaway in the battery cell assembly 100A.
[0136] The cover extension 134 may be for providing a mating surface for mating the end cover 130 and the support plate 120 .
[0137] The cover extension portion 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 disposed near an end of the end cover 130 in the longitudinal direction (Y-axis direction), and the cover extension portion 134 may be formed on an edge of the body portion 132 in the longitudinal direction (Y-axis direction) to provide a coupling surface with the support plate 120. The cover extension portion 134 may have a shape that extends from one edge of the body portion 132 toward the support plate 120. The cover extension portion 134 may have a shape that extends from one edge of the body portion 132 toward the support plate 120 perpendicular to one surface of the body portion 132. In this case, the end cover 130 may be located at an end of the support plate 120 in the longitudinal direction (X-axis direction). The end cover 130 may be disposed such that an end of the end cover 130 in the longitudinal direction (Y-axis direction) corresponds to an end of the support plate 120 in the longitudinal direction (X-axis direction).
[0138] The cover extension 134 may correspond to an end of the support plate 120 in the length direction (X-axis direction). The cover extension 134 may overlap with an end of the support plate 120 in the length direction (X-axis direction). The cover extension 134 may be located outside the end of the support plate 120 in the length direction (X-axis direction). The cover extension 134 may be coupled to an end of the support plate 120 in the length direction (X-axis direction).
[0139] There may be two cover extensions 134 formed on one end cover 130. The two cover extensions 134 may include a first cover extension 134a and a second cover extension 134b formed on two opposing edges of the body portion 132. The first cover extension 134a and the second cover extension 134b may be formed on both edges of the body portion 132 in the length direction (Y-axis direction).
[0140] More specifically, the first support plate 120a and the second support plate 120b may be positioned to correspond to both ends of the end cover 130 in the length direction (Y-axis direction). The first cover extension 134a located at one end of the end cover 130 in the length direction (Y-axis direction) may correspond to the first support plate 120a, and the second cover extension 134b located at the other end may correspond to the second support plate 120b. The first cover extension 134a and the second cover extension 134b may extend perpendicular 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 may correspond to 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 may overlap and be coupled to the ends of the first support plate 120a and the second support plate 120b, respectively. The first cover extension 134a may be positioned on the outer side of the first support plate 120a, and the second cover extension 134b may be positioned on the outer side of the second support plate 120b. Here, the "outside" of a particular member may be described with reference to the center of the battery cell assembly 100A. In addition, as described below, the first cover extension 134a and the second cover extension 134b may correspond to the cover coupling portions 124 formed on the first support plate 120a and the second support plate 120b, respectively.
[0141] The cover extension portion 134 may correspond to the cover connecting portion 124 of the support plate 120. The cover extension portion 134 may overlap the cover connecting portion 124. The cover extension portion 134 may be connected to the cover connecting portion 124 of the support plate 120. More specifically, the cover extension portion 134 may be located outside the cover connecting portion 124, and the inner surface of the cover extension portion 134 may contact the outer surface of the cover connecting portion 124.
[0142] To allow the cover extension 134 and the cover coupling portion 124 to easily overlap, the outer surface of the cover coupling portion 124 may have a recessed shape toward the inner surface, and the cover extension 134 may be placed on the recessed outer surface. In addition, each corner of the cover extension 134 may have a rounded shape, thereby minimizing interference between the support plate 120 and the end cover 130 when the end cover 130 is attached to the combination of the battery cell unit 100 and the support plate 120.
[0143] In the past, a module frame covering the top, bottom, left, and right sides of stacked battery cells and end plates covering the front and back sides were provided to protect the battery cells from the external environment. Furthermore, the module frame and end plates were typically connected to each other outside the battery cells by welding. However, in this embodiment, the module frame is omitted, and the end cover 130 and the support plate 120 are connected to each other using fastening members, eliminating the need for an additional welding process. This makes it easier and faster to complete the manufacturing process. Furthermore, the end cover 130 is formed with a cover extension portion 134, and the support plate 120 is formed with a corresponding cover coupling portion 124, thereby allowing the end cover 130 and the support plate 120 to be connected to each other stably and easily.
[0144] The cover extension portion 134 may have a cover fastening hole 135 formed therein for coupling to the support plate 120. The cover fastening hole 135 may correspond to the second plate fastening hole 125 formed in the cover coupling portion 124. In a manufacturing process of the battery cell assembly 100A of this embodiment, the end cover 130 may be disposed so that the cover fastening hole 135 and the second plate fastening hole 125 are positioned on the same axis, and a second fastening unit may be inserted into the cover fastening hole 135 and the second plate fastening hole 125, thereby coupling the end cover 130 to the support plate 120. Here, the second fastening unit may be a fastening member such as a bolt or a rivet.
[0145] The number of cover fastening holes 135 may be one or more. For this, refer to the description of the second plate fastening holes 125. When there are multiple cover fastening holes 135, there may also be multiple second plate fastening holes 125, and the multiple cover fastening holes 135 and second plate fastening holes 125 may correspond to each other.
[0146] Meanwhile, the battery cell units 100 of this embodiment may be connected by a fixing unit 140, and the relative movement of the battery cell units 100 may be restricted by the fixing unit 140. The fixing unit 140 may connect the support plate 120 and the battery cell units 100. The fixing unit 140 may pass through the plate fastening holes 123 formed in the first support plate 120a, then through the cell unit fastening holes 115 formed in the cell covers 200 included in the plurality of battery cell units 100, and then through the plate fastening holes 123 formed in the second support plate 120b. As a result, the relative movement of the support plate 120 and the battery cell units 100 may be restricted, and the battery cell assembly 100A may be blocked.
[0147] In this way, the fixing unit 140 can block multiple battery cell units 100, and the relative positions of the battery cell units 100 can be fixed, making it easier to handle the battery cell assembly 100A. In other words, the fixing unit 140 can make it easier to install the battery cells 110, and the structure required for installing the battery cells 110 can be simplified, thereby achieving effects such as weight reduction and reduced manufacturing costs.
[0148] The fixing unit 140 may be provided in the form of a long bolt having a length sufficient to pass through all of the plurality of battery cell units 100 included in the battery cell assembly 100A.
[0149] Meanwhile, in the drawings, the fixing unit 140 is shown as penetrating the lower portion of the battery cell assembly 100A, but this is not necessarily limited thereto, and the fixing unit 140 can be provided in other positions as long as it does not damage the battery cells 110 and the electrode leads 111. For example, the fixing unit 140 can be provided so as to penetrate the upper portion of the battery cell assembly 100A, thereby adjusting the positions of the plate fastening holes 123 and the cell unit fastening holes 115 through which the fixing unit 140 passes.
[0150] In this embodiment, terms indicating directions such as front, back, left, right, up, and down are used, but these terms are merely for convenience of explanation and may change depending on the position of the object of interest, the position of the observer, etc.
[0151] One or more battery cell assemblies according to the present embodiment described above may be mounted together with various control and protection systems such as a battery management system (BMS), a battery disconnect unit (BDU), and a cooling system to form a battery pack.
[0152] The battery pack can be applied to various devices, specifically, transportation means such as electric bicycles, electric vehicles, and hybrids, and energy storage systems (ESS), but is not limited thereto, and can be applied to various devices that can use secondary batteries.
[0153] Although the preferred embodiments of the present invention have been described in detail above, the scope of the present invention is not limited thereto, and various modifications and improvements made by those skilled in the art using the basic concept of the present invention defined in the claims also fall within the scope of the present invention. [Explanation of symbols]
[0154] 100: Battery cell unit 100A: Battery cell assembly 110: Battery cell 200: Cell cover 200V: Venting section 300: Busbar module 400: Venting unit 410: Venting Channel 1100: Pack tray 1200: Pack Cross Beam 1210: Gas passage
Claims
1. a battery cell assembly in which a plurality of battery cell units are stacked; a pack tray on which the battery cell assembly is mounted; a pack cross beam positioned on one side of the battery cell assembly on the pack tray, the pack cross beam having a gas passage therein; a venting unit located on an upper portion of the battery cell assembly; Including, The battery cell unit includes at least one battery cell and a cell cover partially surrounding the at least one battery cell; At least one vent is formed in the cell cover, the venting unit includes a plurality of venting channels that guide the gas ejected from the venting portion to the gas passage; The battery pack has the venting channels positioned to correspond to the battery cell units, respectively.
2. The battery pack according to claim 1 , wherein each of the venting channels has an independent venting space that is not shared with another.
3. The battery pack according to claim 1 , wherein the venting channel is defined by a partition wall inside the venting unit.
4. The battery pack according to claim 1 , wherein the venting channel is continuous along a length direction of the battery cell unit, which is a direction perpendicular to a direction in which the battery cell units are stacked.
5. The battery pack according to claim 1 , wherein each of the venting channels communicates with each of the battery cell units in a one-to-one relationship.
6. The battery pack according to claim 1 , wherein the cell cover has an open bottom.
7. the cell cover includes a top portion and a side portion; The battery pack according to claim 1 , wherein at least one of the vents is formed in the top surface.
8. The battery pack of claim 1 , wherein the venting portion is a hole penetrating a portion of the cell cover.
9. The battery pack according to claim 1 , wherein the venting portion is a portion of the cell cover that is weaker in rigidity than an adjacent portion and ruptures when a force and / or heat exceeding a certain pressure is applied.
10. The battery pack according to claim 1 , wherein the venting unit includes an inlet communicating with the venting portion.
11. The battery pack of claim 10 , wherein the inlet is provided with a mesh structure.
12. a connection portion is formed in one of the venting unit and the pack cross beam, and a connection hole coupled to the connection portion is formed in the other of the venting unit and the pack cross beam; The battery pack according to claim 1 , wherein each of the connection portions communicates with each of the venting channels in a one-to-one correspondence.
13. The battery pack according to claim 12 , wherein the connection portions are fitted into the corresponding connection holes one-to-one to be coupled.
14. The battery pack according to claim 12 , wherein a rupture disk configured to rupture at a certain pressure or more is provided inside at least one of the connection portion or the connection hole.
15. The battery pack according to claim 12 , wherein the venting channel communicates with the gas passage of the pack cross beam through the connection portion and the connection hole.
16. The pack cross beam includes a plurality of mesh portions that define the gas passages, The battery pack according to claim 15 , wherein the mesh portion is located at every point between the connection portions along the length of the pack cross beam.
17. A device comprising the battery pack of claim 1.
Citation Information
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