BATTERY MODULE AND BATTERY PACK AND AUTOMOTIVE WITH IT

DE602019083384T2Active Publication Date: 2026-04-08LG ENERGY SOLUTION LTD
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Patent Information

Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2019-01-24
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Conventional battery modules face issues with electrode leads separating from bus bar units due to swelling, leading to potential short circuits and increased risk of explosion or fire.

Method used

The electrode leads of battery cells are bent at least once and have varying lengths and bends to accommodate swelling, with outermost leads being the longest and most bent, connected via a bus bar unit with a frame and connection bus bars to maintain contact during inflation.

Benefits of technology

Prevents electrode lead separation from bus bar units and reduces tension during swelling, minimizing the risk of short circuits and explosions in battery modules.

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Description

TECHNICAL FIELD

[0001] The present disclosure relates to a battery module, and a battery pack and a vehicle including the battery module.

[0002] The present application claims priority to Korean Patent Application No. 10-2018-0014093 filed on February 5, 2018 in the Republic of Korea.BACKGROUND ART

[0003] Secondary batteries which are highly applicable to various products and exhibit superior electrical properties such as high energy density, etc. are commonly used not only in portable devices but also in electric vehicles (EVs) or hybrid electric vehicles (HEVs) driven by electrical power sources. The secondary battery is drawing attentions as a new energy source for enhancing environment friendliness and energy efficiency in that the use of fossil fuels can be reduced greatly and no byproduct is generated during energy consumption.

[0004] Secondary batteries widely used at present include lithium ion batteries, lithium polymer batteries, nickel cadmium batteries, nickel hydrogen batteries, nickel zinc batteries and the like. An operating voltage of the unit secondary battery cell, namely a unit battery cell, is about 2.5V to 4.6V. Therefore, if a higher output voltage is required, a plurality of battery cells may be connected in series to configure a battery pack.

[0005] In addition, depending on the charge / discharge capacity required for the battery pack, a plurality of battery cells may be connected in parallel to configure a battery pack. Thus, the number of battery cells included in the battery pack may be variously set according to the required output voltage or the demanded charge / discharge capacity.

[0006] Meanwhile, when a plurality of battery cells are connected in series or in parallel to configure a battery pack, it is common to configure a battery module composed of at least one battery cell first, and then configure a battery pack by using at least one battery module and adding other components. Here, the battery cells configuring the battery module or the battery pack are generally pouch-type secondary batteries that may be easily stacked on one another.

[0007] The conventional battery module generally includes a plurality of battery cells and a bus bar unit electrically connected to electrode leads of the plurality of battery cells. Here, the electrode leads and the bus bar units are connected to each other by welding or the like.

[0008] However, in the conventional battery module, when swelling occurs at the battery module, the battery cells are inflated, which may cause the electrode leads connected to the bus bar unit to be separated or disconnected from the bus bar unit.

[0009] Here, the separated or disconnected electrode leads may cause short circuit with surrounding electrical components or adjacent other electrode leads, which may further increase the risk of explosion or fire of the battery module due to swelling.

[0010] Thus, it is demanded to find a way to prevent the electrode leads of the battery cells from being separated from the bus bar units when swelling occurs at the battery module. In addition, it is demanded to find a way to reduce the tension applied to the electrode leads of the battery cells connected to the bus bar units, caused by the inflating force when swelling occurs at the battery module.

[0011] WO 2013 / 133598 A1 and JP 2007 229788A disclose bent electrode leads of the battery cells.DISCLOSURETechnical Problem

[0012] The present disclosure is directed to providing a battery module, which may prevent electrode leads of battery cells from being separated from bus bar units when swelling occurs at the battery module, and a battery pack and a vehicle including the battery module.

[0013] In addition, the present disclosure is directed to providing a battery module, which may reduce the tension applied to the electrode leads of the battery cells connected to the bus bar units, caused by the inflating force when swelling occurs at the battery module, and a battery pack and a vehicle including the battery module.Technical Solution

[0014] In one aspect of the present disclosure, there is provided a battery module as defined in the appended set of claims, the battery module comprises: a plurality of battery cells stacked on one another; and a bus bar unit electrically connected to electrode leads of the plurality of battery cells, wherein the electrode leads of the plurality of battery cells are bent at least once to secure a predetermined length and are unbent at least partially due to inflation caused by swelling of the plurality of battery cells.

[0015] Electrode leads of battery cells disposed at outermost sides among the plurality of battery cells may be bent further with a longer length than electrode leads of the other battery cells.

[0016] The electrode leads of the plurality of battery cells have gradually greater lengths from a center portion of the plurality of battery cells in the stacking direction toward the outermost sides.

[0017] The electrode leads of the plurality of battery cells are bent more times from the center portion of the plurality of battery cells in the stacking direction toward the outermost sides.

[0018] The electrode leads of the plurality of battery cells are disposed to be symmetric based on the center portion of the plurality of battery cells in the stacking direction.

[0019] The bus bar unit may include: a bus bar frame configured to cover at least one side of the plurality of battery cells; and a connection bus bar provided to the bus bar frame and connected to the electrode leads of the plurality of battery cells.

[0020] In addition, the present disclosure provides a battery pack as defined in the appended set of claims, the battery pack comprises: at least one battery module according to the former embodiments; and a pack case configured to package the at least one battery module.

[0021] Moreover, the present disclosure provides a vehicle defined in the appended set of claims, the vehicle comprises at least one battery pack according to the above embodiment.Advantageous Effects

[0022] According to various embodiments as above, it is possible to provide a battery module, which may prevent electrode leads of battery cells from being separated from bus bar units when swelling occurs at the battery module, and a battery pack and a vehicle including the battery module.

[0023] In addition, according to various embodiments as above, it is possible to provide a battery module, which may reduce the tension applied to the electrode leads of the battery cells connected to the bus bar units, caused by the inflating force when swelling occurs at the battery module, and a battery pack and a vehicle including the battery module.DESCRIPTION OF DRAWINGS

[0024] The accompanying drawings illustrate a preferred embodiment of the present disclosure and together with the foregoing disclosure, serve to provide further understanding of the technical features of the present disclosure, and thus, the present disclosure is not construed as being limited to the drawing. FIG. 1 is a diagram for illustrating a battery module according to an embodiment of the present disclosure. FIG. 2 is a diagram for illustrating electrode leads of battery cells, employed at the battery module of FIG. 1, according to another embodiment. FIG. 3 is a diagram for illustrating the electrode leads of the battery cells, employed at the battery module of FIG. 1, before swelling. FIG. 4 is a diagram for illustrating the electrode leads of the battery cells, employed at the battery module of FIG. 1, after swelling. FIG. 5 is a diagram for illustrating a battery pack according to an embodiment of the present disclosure. BEST MODE

[0025] The present disclosure will become more apparent by describing in detail the embodiments of the present disclosure with reference to the accompanying drawings. It should be understood that the embodiments disclosed herein are illustrative only for better understanding of the present disclosure, and that the present disclosure may be modified in various ways. In addition, for ease understanding of the present disclosure, the accompanying drawings are not drawn to real scale, but the dimensions of some components may be exaggerated.

[0026] FIG. 1 is a diagram for illustrating a battery module according to an embodiment of the present disclosure, and FIG. 2 is a diagram for illustrating electrode leads of battery cells, employed at the battery module of FIG. 1, according to another embodiment.

[0027] Referring to FIGS. 1 and 2, a battery module 10 may include a battery cell 100, a module case 200, and a bus bar unit 300.

[0028] The battery cell 100 is a secondary battery and may be a pouch-type secondary battery. In addition, the battery cell 100 may also be a cylindrical secondary battery or a rectangular secondary battery.

[0029] Hereinafter, in this embodiment, the battery cell 100 will be explained as a pouch-type secondary battery.

[0030] The battery cell 100 is provided in plural. The plurality of battery cells 100 are stacked to be electrically connected to each other. Specifically, the plurality of battery cells 100 are electrically connected to each other through the bus bar unit 300, explained later.

[0031] Each of the plurality of battery cells 100 may include an electrode assembly, a battery case for accommodating the electrode assembly, and an electrode lead 150 protruding out of the battery case and connected to the electrode assembly.

[0032] Here, the electrode lead 150 of any one battery cell 100 may be electrically connected to the electrode lead 150 of a neighboring battery cell 100. Specifically, the electrode lead 150 of any one battery cell 100 may be connected to the electrode lead 150 and the bus bar unit 300, explained later, of a neighboring battery cell 100 by welding or the like.

[0033] More specifically, the electrode leads 150 of the plurality of battery cells 100 may be bent at least once at the outside of the battery case to secure a predetermined length and may be at least partially unbent due to inflation caused by swelling of the plurality of battery cells 100.

[0034] Meanwhile, the electrode leads 150 of the plurality of battery cells 100 have different protruding lengths out of the battery case. For example, as shown in FIG. 2, the electrode leads 170 of the plurality of battery cells 100 are provided to have lengths which are gradually increased from a center portion C of the plurality of battery cells 100 in the stacking direction toward outermost sides E.

[0035] This is because the battery cells 100 disposed at the outermost sides are moved most severely in the stacking direction among the plurality of battery cells 100 when swelling occurs at the battery module 10.

[0036] More specifically, the electrode leads 170 of the battery cells 100 disposed at the outermost sides E among the plurality of battery cells 100 may be bent further with a greater length than the electrode leads 170 of the other battery cells 100.

[0037] In addition, the electrode leads 170 of the plurality of battery cells 100 are bent more times from the center portion C of the plurality of battery cells 100 in the stacking direction toward the outermost sides E.

[0038] Accordingly, the electrode leads 170 of the plurality of battery cells 100 are arranged to be symmetric based on the center portion C of the plurality of battery cells 100 in the stacking direction.

[0039] The module case 200 may accommodate the plurality of battery cells 100 and package the plurality of battery cells 100. To this end, the module case 200 may have an accommodation space for accommodating the plurality of battery cells 100.

[0040] The bus bar unit 300 may cover at least one side of the plurality of battery cells 100 and be electrically connected to the electrode leads 150 of the plurality of battery cells 100.

[0041] The bus bar unit 300 may include a bus bar frame 320 and a connection bus bar 350.

[0042] The bus bar frame 320 may cover at least one side of the plurality of battery cells 100 and be coupled to the module case 200. The bus bar frame 320 may have a plurality of slots 325 through which the electrode leads 150 of the plurality of battery cells 100 may pass.

[0043] The connection bus bar 350 is provided to the bus bar frame 320 and may be provided in plural. Each of the plurality of connection bus bars 350 may be connected to the electrode leads 150 of two battery cells 100 by welding or the like.

[0044] Hereinafter, the shape of the electrode leads 150 of the plurality of battery cells 100 when swelling occurs at the battery module 100 of this embodiment will be described in detail.

[0045] FIG. 3 is a diagram for illustrating the electrode leads of the battery cells, employed at the battery module of FIG. 1, before swelling, and FIG. 4 is a diagram for illustrating the electrode leads of the battery cells, employed at the battery module of FIG. 1, after swelling.

[0046] Referring to FIGS. 3 and 4, when swelling occurs at the battery module 10, the plurality of battery cells 100 may be inflated. As the plurality of battery cells 100 are inflated, the plurality of battery cells 100 may be displaced inside the module case 200.

[0047] Specifically, as shown in FIG. 4, when the swelling occurs, the battery cells 100 may be pressed and deformed toward the module case 200 to be displaced. The displacement may be most severe at the battery cells 100 disposed at the outermost sides among the plurality of battery cells 100.

[0048] Accordingly, tension may be applied to the electrode leads 150 of the battery cells 100 connected to the bus bar unit 300. In this embodiment, since the electrode leads 150 are initially bent at least once to secure a predetermined length in the space between the connection bus bar 350 of the bus bar unit 300 and the interior of the module case 200, the bent portion may be unbent when the swelling occurs, thereby reducing the tension applied to the electrode leads 150.

[0049] Thus, in this embodiment, when swelling occurs at the battery module 10, it is possible to more effectively prevent the electrode leads 150 connected to the bus bar unit 300 from being separated or disconnected from the bus bar unit 300 due to the inflation of the battery cells 100.

[0050] In this embodiment, when swelling occurs at the battery module 10, it is possible to prevent the electrode leads 150 of the battery cells 100 from being separated or disconnected, thereby greatly reducing the risk of short circuit with surrounding electrical components or adjacent other electrode leads 150.

[0051] Thus, in this embodiment, when swelling occurs at the battery module 10, it is possible to significantly solve the risk of explosion or fire of the battery module 100.

[0052] FIG. 5 is a diagram for illustrating a battery pack according to an embodiment of the present disclosure.

[0053] Referring to FIG. 5, a battery pack 1 may include at least one battery module 10 according to the former embodiment and a pack case 50 for packaging the at least one battery module 10.

[0054] The battery pack 1 may be provided to a vehicle as a power source of the vehicle. As an example, the battery pack 1 may be provided to an electric vehicle, a hybrid electric vehicle, or any other vehicle that may use the battery pack 1 as a power source.

[0055] In addition, the battery pack 1 may be provided to other devices, instruments, equipment or the like such as an energy storage system using a secondary battery as well as the vehicle.

[0056] The devices, instruments and equipment such as the vehicle including the battery pack 1 as well as the battery pack 1 according to this embodiment include the battery module 10 described above. Thus, it is possible to implement the battery pack 1 as well as the devices, instruments and equipment such as the vehicle including the battery pack 1, which has all of the advantages of the battery module 10 described above.

[0057] According to various embodiments as above, it is possible to provide a battery module 10, which may prevent electrode leads 150, 170 of battery cells 100 from being separated from bus bar units 300 when swelling occurs at the battery module 10, and a battery pack 1 and a vehicle including the battery module.

[0058] In addition, according to various embodiments as above, it is possible to provide a battery module 10, which may reduce the tension applied to the electrode leads 150, 170 of the battery cells 100 connected to the bus bar units 300, caused by the inflating force when swelling occurs at the battery module 10, and a battery pack 1 and a vehicle including the battery module.

[0059] While the embodiments of the present disclosure have been shown and described, it should be understood that the present disclosure is not limited to the specific embodiments described, and that various changes and modifications can be made within the scope of the present disclosure by those skilled in the art, and these modifications should not be understood individually from the technical ideas and views of the present disclosure.

Claims

1. A battery module, comprising: an even number greater than two battery cells (100) stacked on one another; and a single bus bar unit (300) electrically connected to electrode leads (150) of the battery cells, wherein the electrode leads (150) of the battery cells (100) have gradually greater lengths from the center portion (C) of the battery cells in the stacking direction toward the outermost sides, the electrode leads (150) of the battery cells (100) are bent more times from the center portion of the battery cells in the stacking direction toward the outermost sides, the electrode leads (150) of the battery cells are disposed to be symmetric based on the center portion of the battery cells in the stacking direction, and the electrode leads (150) of the battery cells are bent at least once to secure a predetermined length and are unbent at least partially due to inflation caused by swelling of the battery cells, and wherein a common connection point of the electrode leads (150) to the bus bar unit (300) is at a position in the plan orthogonal to the stacking direction and containing the center of the stack .

2. The battery module according to claim 1, wherein the single bus bar unit (300) includes: a bus bar frame (320) configured to cover at least one side of the battery cells (100); and a connection bus bar (350) provided to the bus bar frame (320) and connected to the electrode leads (150) of the battery cells.

3. A battery pack (1), comprising: at least one battery module (10) defined in claim 1; and a pack case (50) configured to package the at least one battery module.

4. A vehicle, comprising at least one battery pack defined in claim 3.