BATTERY MODULE AS WELL AS BATTERY PACK AND VEHICLE WITH THE BATTERY MODULE
Patent Information
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- LG ENERGY SOLUTION LTD
- Filing Date
- 2020-11-11
- Publication Date
- 2026-05-27
Description
TECHNICAL FIELD
[0001] The present invention relates to a battery module, a battery pack and a vehicle including the battery pack.BACKGROUND ART
[0002] 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.
[0003] Secondary batteries widely used at the preset 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 4.5V. Therefore, if a higher output voltage is required, a plurality of battery cells may be connected in series to configure a battery pack. 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.
[0004] 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.
[0005] In the case of a conventional battery module, an electrode lead of a battery cell and a sensing bus bar of a bus bar assembly are closely pressed using a welding jig, and the electrode lead and the sensing bus bar are welded by laser welding or the like. When the electrode lead of the conventional battery cell and the sensing bus bar of the bus bar assembly are welded, protruding step, misalignment or the like may occur between the electrode lead and the sensing bus bar due to the assembly tolerance of the bus bar assembly. In the conventional battery module, if the welding process is performed in the presence of the protruding step or misalignment, welding defects may occur more frequently.
[0006] In order to correct the protruding step or misalignment of the conventional art, the electrode lead and the sensing bus bar may be pressed using a pressing jig or the like. However, in the case of a conventional battery module, generally, the sensing bus bar is mounted in a state of being fixed to the bus bar frame of the bus bar assembly, so the relatively flexible electrode lead is intensively pressed, thereby damaging the electrode lead.
[0007] Therefore, it is requested to find a way to provide a battery module, which may prevent the electrode lead from being damaged while connecting the electrode lead of at least one battery cell and the sensing bus bar of the bus bar assembly and prevent welding quality from being degraded even if protruding step or misalignment occurs due to assembly tolerance or the like, and a battery pack and a vehicle including the battery module.
[0008] KR 2019 0040759 A concerns a battery module including a bus bar assembly for electrode lead bonding. The bus bar assembly of the battery module electrically connects electrode leads of a plurality of battery cells. A bus bar support frame is attached to the front / rear surface of the battery cell stack. Electrode leads pass as a bundle unit through a fitting space in the bus bar support frame. An insertion bus bar is disposed between bundled positive electrode leads and bundled negative electrode leads in respective fitting spaces. The insertion bus bar is connected to the electrode leads.DISCLOSURETechnical Problem
[0009] Therefore, the present invention is directed to providing a battery module, which may prevent an electrode lead from being damaged while connecting the electrode lead of at least one battery cell and a sensing bus bar of a bus bar assembly, and a battery pack and a vehicle including the battery module.
[0010] In addition, the present invention is also directed to providing a battery module, which may prevent welding quality from being degraded even if protruding step or misalignment occurs due to assembly tolerance or the like when the electrode lead of at least one battery cell and the sensing bus bar of the bus bar assembly are connected by welding, and a battery pack and a vehicle including the battery module.
[0011] Moreover, the present invention is also directed to providing a battery module, which may prevent the electrode lead from being damaged at cell swelling of battery cells, and a battery pack and a vehicle including the battery module.Technical Solution
[0012] In one aspect of the present invention, there is provided a battery module as defined in claim 1, comprising: a plurality of battery cells having electrode leads protruding on at least one side thereof; and a bus bar assembly configured to electrically connect the electrode leads of the plurality of battery cells, wherein the bus bar assembly includes: a bus bar frame configured to cover at least one side of the plurality of battery cells; a plurality of lead slots provided to the bus bar frame so that the electrode leads pass therethrough; at least one sensing bus bar disposed between the plurality of lead slots and connected to the electrode leads; and at least one elastic guider configured to elastically support the at least one sensing bus bar and disposed at both left and right sides and a rear side of the at least one sensing bus bar in a left and right direction and a front and rear direction of the bus bar frame.
[0013] The at least one sensing bus bar is configured to be movable along at least one of the left and right direction and the front and rear direction of the bus bar frame while elastically contacting the at least one elastic guider.
[0014] The at least one elastic guider includes: an upper leaf spring provided to the bus bar frame and configured to be elastically deformable in the left and right direction of the bus bar frame; a lower leaf spring provided to the bus bar frame to be spaced apart from the upper leaf spring by a predetermined distance in an upper and lower direction of the bus bar frame and configured to be elastically deformable in the left and right direction of the bus bar frame; and a rear leaf spring provided to the bus bar frame and configured to be elastically deformable in the front and rear direction of the bus bar frame.
[0015] The rear leaf spring includes: a first leaf spring provided to the bus bar frame to be disposed near the upper leaf spring and configured to be elastically deformable in the front and rear direction of the bus bar frame; and a second leaf spring provided to the bus bar frame to be spaced apart from the first leaf spring and configured to be elastically deformable in the front and rear direction of the bus bar frame.
[0016] The upper leaf spring may be provided in a pair, and the pair of upper leaf springs may be disposed to face each other with the at least one sensing bus bar being interposed therebetween.
[0017] The lower leaf spring may be provided in a pair, and the pair of lower leaf springs may be disposed to face each other with the at least one sensing bus bar being interposed therebetween.
[0018] The at least one elastic guider may be formed integrally with the bus bar frame.
[0019] The bus bar assembly may include an anti-separation stopper provided to the bus bar frame to prevent the at least one sensing bus bar from being separated forward at the front of the at least one sensing bus bar.
[0020] In addition, the present invention provides a battery pack as defined in claim 6, comprising: at least one battery module according to the above embodiments; and a pack case configured to package the at least one battery module.
[0021] Moreover, the present invention provides a vehicle as defined in claim 7, comprising 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 an electrode lead from being damaged while connecting the electrode lead of at least one battery cell and a sensing bus bar of a bus bar assembly, 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 prevent welding quality from being degraded even if protruding step or misalignment occurs due to assembly tolerance or the like when the electrode lead of at least one battery cell and the sensing bus bar of the bus bar assembly are connected by welding, and a battery pack and a vehicle including the battery module.
[0024] Moreover, according to various embodiments as above, it is possible to provide a battery module, which may prevent the electrode lead from being damaged at cell swelling of battery cells, and a battery pack and a vehicle including the battery module.DESCRIPTION OF DRAWINGS
[0025] The accompanying drawings illustrate a preferred embodiment of the present invention and together with the foregoing disclosure, serve to provide further understanding of the technical features of the present invention, and thus, the present invention is not construed as being limited to the drawing. FIG. 1 is a perspective view for illustrating a battery module according to an embodiment of the present invention. FIG. 2 is a diagram for illustrating main parts of the battery module of FIG. 1. FIG. 3 is a diagram for illustrating a bus bar frame, from which a sensing bus bar of a bus bar assembly of FIG. 2 is excluded. FIGS. 4 to 6 are diagrams for illustrating position correction of the sensing bus bar and electrode leads by an elastic guider when the sensing bus bar and the electrode leads of battery cells of the battery module of FIG. 1 are welded. FIG. 7 is a diagram for illustrating a battery pack according to an embodiment of the present invention. FIG. 8 is a diagram for illustrating a vehicle according to an embodiment of the present invention. BEST MODE
[0026] The present invention will become more apparent by describing in detail the embodiments of the present invention with reference to the accompanying drawings. It should be understood that the embodiments disclosed herein are illustrative only for better understanding of the present invention, and that the present disclosure may be modified in various ways within the scope of the appended claims. 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.
[0027] FIG. 1 is a perspective view for illustrating a battery module according to an embodiment of the present invention, FIG. 2 is a diagram for illustrating main parts of the battery module of FIG. 1, FIG. 3 is a diagram for illustrating a bus bar frame, from which a sensing bus bar of a bus bar assembly of FIG. 2 is excluded, and FIGS. 4 to 6 are diagrams for illustrating position correction of the sensing bus bar and electrode leads by an elastic guider when the sensing bus bar and the electrode leads of battery cells of the battery module of FIG. 1 are welded.
[0028] Referring to FIGS. 1 to 6, a battery module 10 includes a battery cell 100 and a bus bar assembly 200.
[0029] The battery cell 100 is a secondary battery, and may be provided as a pouch-type secondary battery, a rectangular secondary battery or a cylindrical secondary battery. Hereinafter, in this embodiment, it will be described that the battery cell 100 is a pouch-type secondary battery.
[0030] The battery cell 100 is provided in plural. The plurality of battery cells 100 are stacked on each other to be electrically connected to each other, and electrode leads 150 protrude on at least one side thereof.
[0031] The bus bar assembly 200 is for electrically connecting electrode leads 150 of the plurality of battery cells 100, and is disposed at one side of the plurality of battery cells 100.
[0032] The bus bar assembly 200 includes a bus bar frame 210, a lead slot 220, a sensing bus bar 230, and an elastic guider 240, and may further include an anti-separation stopper 250.
[0033] The bus bar frame 210 covers at least one side of the plurality of battery cells 100. To this end, the bus bar frame 210 may have a size and shape capable of covering at least one side of the plurality of battery cells 100.
[0034] The lead slot 220 is provided to the bus bar frame 210 and allows the electrode leads 100 of the plurality of battery cells 100 to pass therethrough. The lead slot 220 are provided in plural.
[0035] The sensing bus bar 230 is disposed between the plurality of lead slots 220 and is connected to the electrode leads 150 of the battery cells 100. At least one sensing bus bar 230 or a plurality of sensing bus bars 230 may be provided. Hereinafter, in this embodiment, it will be described that the sensing bus bar 230 is provided in plural.
[0036] The plurality of sensing bus bars 230 may be connected with the electrode leads 150 of the plurality of battery cells 100 passing through the lead slots 220 by welding such as laser welding. Here, the electrode leads 150 may be welded to the sensing bus bar 230 in a non-bending manner with no bending.
[0037] The plurality of sensing bus bars 230 are provided to be movable along at least one of a left and right direction and a front and rear direction of the bus bar frame 210 while elastically contacting the elastic guider 240, explained later.
[0038] The plurality of sensing bus bars 230 may have at least one guide groove 235.
[0039] The at least one guide groove 235 may be inserted into a device such as a mounting jig during the assembly process of the sensing bus bar 230 to guide mounting of the sensing bus bar 230.
[0040] The at least one guide groove 235 may be provided in plural. The plurality of guide grooves 235 may be disposed to be spaced apart from each other by a predetermined distance along a longitudinal direction of the sensing bus bar 230.
[0041] The elastic guider 240 elastically supports the at least one sensing bus bar 230, and is disposed at both left and right sides and a rear side of the at least one sensing bus bar 230 in a left and right direction and a front and rear direction of the bus bar frame 210.
[0042] The elastic guider 240 may be provided in plural. The plurality of elastic guiders 240 may be formed integrally with the bus bar frame 210. The plurality of elastic guiders 240 include an upper leaf spring 242, a lower leaf spring 244 and a rear leaf spring 246.
[0043] The upper leaf spring 242 is provided to the bus bar frame 210 and is configured to be elastically deformable in a left and right direction of the bus bar frame 210. The upper leaf spring 242 may be provided in a pair. The pair of upper leaf springs 242 may be disposed to face each other with the at least one sensing bus bar 230 being interposed therebetween.
[0044] The lower leaf spring 244 is provided to the bus bar frame 210 to be spaced apart from the upper leaf spring 242 by a predetermined distance in an upper and lower direction of the bus bar frame 210, and is configured to be elastically deformable in a left and right direction of the bus bar frame 210.
[0045] The lower leaf spring 244 may be provided in a pair. The pair of lower leaf springs 244 may be disposed to face each other with the at least one sensing bus bar 230 being interposed therebetween.
[0046] The rear leaf spring 246 may elastically support the sensing bus bar 230 and may be disposed at the rear of the sensing bus bar 230 in a front and rear direction of the bus bar frame 210.
[0047] By means of the rear leaf spring 246, the plurality of sensing bus bars 230 may be provided to be movable along a front and rear direction of the bus bar frame 210 while elastically contacting the rear leaf spring 246, respectively.
[0048] The rear leaf spring 246 includes a first leaf spring 247 and a second leaf spring 248.
[0049] The first leaf spring 247 is provided to the bus bar frame 210. The first leaf spring 247 is configured to be elastically deformable in a front and rear direction of the bus bar frame 210.
[0050] The second leaf spring 248 is provided to the bus bar frame 210 to be spaced apart from the first leaf spring 210 by a predetermined distance. The second leaf spring 248 is configured to be elastically deformable in a front and rear direction of the bus bar frame 210, similar to the first leaf spring 247.
[0051] The anti-separation stopper 250 is provided to the bus bar frame 210, and when the sensing bus bar 230 moves back and forth at the front of the sensing bus bar 230, the anti-separation stopper 250 may prevent the sensing bus bar 230 from being separated forward.
[0052] The anti-separation stopper 250 may include a pair of stopper hooks 250 provided at upper and lower sides of the at least one sensing bus bar 230 to restrict movement of upper and lower ends of the at least one sensing bus bar 230 over a predetermined distance when the at least one sensing bus bar 230 moves forward.
[0053] In the battery module 10 according to this embodiment, during the assembly process of the battery cells 100 and the bus bar assembly 200, problems such as protruding step and misalignment may occur between the electrode leads 150 of the battery cells 100 and the sensing bus bar 230 of the bus bar assembly 200 due to assembly tolerance or the like. In particular, problems such as protruding step may frequently occur in a front and rear direction of the electrode leads 150 of the battery cells 100 and the sensing bus bar 230 of the bus bar assembly 200, and problems such as misalignment may frequently occur in a left and right direction thereof.
[0054] In this embodiment, even after the sensing bus bar 230 is placed on the bus bar frame 210, the sensing bus bar 230 is guided through the upper leaf spring 242 and the lower leaf spring 244 of the elastic guider 240 to move in a left and right direction. So a worker or the like may fix the electrode leads 150 and the sensing bus bar 230 by welding or the like after correcting the misalignment.
[0055] In addition, in this embodiment, since the sensing bus bar 230 is elastically movable in a front and rear direction of the bus bar frame 210 by means of the rear leaf spring 246 of the elastic guider 240, a worker or the like may fix the electrode leads 150 and the sensing bus bar 230 by welding or the like after correcting the protruding step in a front and rear direction.
[0056] In this embodiment, since the sensing bus bar 230 is guided by the elastic guider 240 to move in at least one of a left and right direction and a front and rear direction, even when protruding step or misalignment occurs between the electrode lead 150 and the sensing bus bar 230, the electrode lead 150 and the sensing bus bar 230 may be corrected to proper positions and then coupled to each other by welding.
[0057] Meanwhile, by moving in a front and rear direction and in a left and right direction, the sensing bus bar 230 may be tilted, which allows more accurate position correction.
[0058] As a result, in this embodiment, even if a problem such as misalignment occurs between the electrode leads 150 and the sensing bus bar 230, the welding process may be carried out after moving the sensing bus bar 230, which is movable in a left and right direction and in a front and rear direction, to the correct position, so it is possible to prevent welding defects caused by misalignment in advance.
[0059] Moreover, when correcting the misalignment, the elastic guider 240 may elastically support the sensing bus bar 230 moving in a left and right direction and in a front and rear direction, so it is possible to significantly reduce damage to the electrode lead 150 that may occur when the position of the sensing bus bar 230 is adjusted.
[0060] Further, in this embodiment, in the battery module 10, the battery cells 100 may be inflated in a thickness direction due to an abnormal situation such as overheating of the battery cells 100. That is, the battery cells 100 may be inflated in a left and right direction due to cell swelling.
[0061] In this embodiment, during cell swelling of the battery cells 100, by means of the elastic guider 240, the sensing bus bar 230 and ends of the electrode leads 150 welded to the sensing bus bar 230 may be elastically moved in a left and right direction and in a front and rear direction.
[0062] As the sensing bus bar 230 and the ends of the electrode leads 150 welded to the sensing bus bar 230 move in a left and right direction and in a front and rear direction, it is possible to compensate for the length of the electrode leads 150 that tend to be stretched due to the cell swelling of the battery cells 100.
[0063] Therefore, the battery module 10 according to this embodiment may effectively prevent damage to the electrode leads 150 caused by a tensile stress by minimizing the tensile stress applied to the electrode leads 150 during cell swelling of the battery cells 100.
[0064] FIG. 7 is a diagram for illustrating a battery pack according to an embodiment of the present invention, and FIG. 8 is a diagram for illustrating a vehicle according to an embodiment of the present invention.
[0065] Referring to FIGS. 7 and 8, 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.
[0066] The battery pack 1 may be provided to a vehicle as a fuel source of a vehicle V. As an example, the battery pack 1 may be provided to an electric vehicle, a hybrid electric vehicle, and various other-type vehicles V capable of using the battery pack 1 as a fuel source.
[0067] In addition, the battery pack 1 may be provided in other devices, instruments or facilities such as an energy storage system using a secondary battery, in addition to the vehicle V.
[0068] As described above, the battery pack 1 of this embodiment and devices, instruments or facilities such as a vehicle, which have the battery pack 1, include the battery module 10 as described above, and thus it is possible to implement a battery pack 1 having all the advantages of the battery module 10 described above, or devices, instruments, facilities or the like such as a vehicle, which have the battery pack 1.
[0069] According to various embodiments as above, it is possible to provide a battery module 10, which may prevent an electrode lead 150 from being damaged while connecting the electrode lead 150 of at least one battery cell 100 and a sensing bus bar 230 of a bus bar assembly 200, and a battery pack 1 and a vehicle V including the battery module 10.
[0070] In addition, according to various embodiments as above, it is possible to provide a battery module 10, which may prevent welding quality from being degraded even if protruding step or misalignment occurs due to assembly tolerance or the like when the electrode lead 150 of at least one battery cell 100 and the sensing bus bar 230 of the bus bar assembly 200 are connected by welding, and a battery pack 1 and a vehicle V including the battery module.
[0071] Moreover, according to various embodiments as above, it is possible to provide a battery module 10, which may prevent the electrode lead 150 from being damaged at cell swelling of battery cells 100, and a battery pack 1 and a vehicle V including the battery module.
[0072] While the embodiments of the present invention have been shown and described, it should be understood that the present invention is not limited to the specific embodiments described, and that various changes and modifications can be made within the scope of the appended claims.
Claims
1. A battery module (10), comprising: a plurality of battery cells (100) having electrode leads (150) protruding on at least one side thereof; and a bus bar assembly (200) configured to electrically connect the electrode leads (150) of the plurality of battery cells (100), wherein the bus bar assembly (200) includes: a bus bar frame (210) configured to cover at least one side of the plurality of battery cells (100); a plurality of lead slots (220) provided to the bus bar frame (210) so that the electrode leads (150) pass therethrough; at least one sensing bus bar (230) disposed between the plurality of lead slots (220) and connected to the electrode leads (150); and at least one elastic guider (240) configured to elastically support the at least one sensing bus bar (230) and disposed at both left and right sides and a rear side of the at least one sensing bus bar (230) in a left and right direction and a front and rear direction of the bus bar frame (210), wherein the at least one sensing bus bar (230) is configured to be movable along at least one of the left and right direction and the front and rear direction of the bus bar frame (210) while elastically contacting the at least one elastic guider (240), and wherein the at least one elastic guider (240) includes: an upper leaf spring (242) provided to the bus bar frame (210) and configured to be elastically deformable in the left and right direction of the bus bar frame (210); a lower leaf spring (244) provided to the bus bar frame (210) to be spaced apart from the upper leaf spring (242) by a predetermined distance in an upper and lower direction of the bus bar frame (210) and configured to be elastically deformable in the left and right direction of the bus bar frame (210); and a rear leaf spring (246) provided to the bus bar frame (210) and configured to be elastically deformable in the front and rear direction of the bus bar frame (210), and wherein the rear leaf spring (246) includes: a first leaf spring (247) provided to the bus bar frame (210) to be disposed near the upper leaf spring (242) and configured to be elastically deformable in the front and rear direction of the bus bar frame (210); and a second leaf spring (248) provided to the bus bar frame (210) to be spaced apart from the first leaf spring (247) and configured to be elastically deformable in the front and rear direction of the bus bar frame (210).
2. The battery module (10) according to claim 1, wherein the upper leaf spring (242) is provided in a pair, and the pair of upper leaf springs (242) are disposed to face each other with the at least one sensing bus bar (230) being interposed therebetween.
3. The battery module (10) according to claim 1, wherein the lower leaf spring (244) is provided in a pair, and the pair of lower leaf springs (244) are disposed to face each other with the at least one sensing bus bar (230) being interposed therebetween.
4. The battery module (10) according to claim 1, wherein the at least one elastic guider (240) is formed integrally with the bus bar frame (210).
5. The battery module (10) according to claim 1, wherein the bus bar assembly (200) includes an anti-separation stopper (250) provided to the bus bar frame (210) to prevent the at least one sensing bus bar (230) from being separated forward at the front of the at least one sensing bus bar (230).
6. A battery pack (1), comprising: at least one battery module (10) as defined in claim 1; and a pack case (50) configured to package the at least one battery module (10).
7. A vehicle (V), comprising at least one battery pack (1) as defined in claim 6.