Battery pack and vehicle
By placing a buffer pad between the longitudinal beams and the battery cells in the battery pack, the problem of the battery cells being squeezed when the longitudinal beams are flipped is solved, thereby improving the safety of the battery pack and reducing the risk of stress and deformation of the battery cells.
Patent Information
- Application Number
- CN202520162338.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2035-01-23
AI Technical Summary
When a vehicle collides with a side pillar, the longitudinal beams of the battery pack may overturn and tilt, causing the battery cells to be compressed and potentially cracking, thus endangering the safety of the battery and the vehicle.
A buffer pad is installed between the longitudinal beams of the battery pack and the battery cells. The buffer pad is located on both sides of the beam connection structure to distribute the load when the longitudinal beams deform and reduce the local stress on the battery cells.
By incorporating buffer pads, localized deformation and intrusion of the battery cells are reduced, improving the safety of the battery pack and protecting the structural integrity of the battery cells.
Smart Images

Figure CN223843031U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of battery technology, specifically to a battery pack and a vehicle. Background Technology
[0002] Please refer to Figure 8 and Figure 9 , Figure 8 This is a structural schematic diagram of the location of the longitudinal beam inside a battery pack. Figure 9 for Figure 8 A schematic diagram of the structure when the central longitudinal beam tilts over.
[0003] The battery pack has a longitudinal beam 02 inside the battery box, with battery cells 01 on both sides of the longitudinal beam 02. The longitudinal beam 02 is equipped with a connecting component 03 that connects to the vehicle body, and there is a gap d between the longitudinal beam 02 and the battery cells 01 on both sides.
[0004] To improve driving safety, passenger vehicles must undergo side pole impact testing during development. For example, one test involves impacting a rigid pillar with a diameter of 254mm at a 75° angle at a speed of 32 km / h. During the impact, the vehicle's side panels, sill beams, and seat crossbeams directly bear the impact and crumple zone, absorbing energy and reducing intrusion and damage to the passenger compartment. At this time, due to the inertia of the battery pack, the longitudinal beam 02 of the battery pack will overturn and tip over, causing the longitudinal beam 02 to compress and intrude into the upper part of the battery cell 01. Figure 9 As shown, it can be seen that in the event of a collision, the overturning and tipping of the battery pack based on the longitudinal beam 02 may cause the battery cell 01 to have its own casing cracked, which will endanger the safety of the battery, the vehicle and the people. Utility Model Content
[0005] The purpose of this application is to provide a battery pack and a vehicle that can improve the safety of the battery pack by reducing the pressure on the battery cells caused by the side beams of the battery pack flipping and tilting during a side pillar collision.
[0006] The battery pack provided in this application includes a battery housing and a plurality of battery cells located inside the battery housing. The battery housing has a longitudinal beam extending in a longitudinal direction, and the longitudinal beam has a beam connection structure that connects to the vehicle body.
[0007] The battery pack further includes a buffer pad, the longitudinal beam has two sides distributed in a transverse direction, the transverse direction being perpendicular to the longitudinal direction; there is a gap between the side of the longitudinal beam and the battery cell, the buffer pad is located within the gap, and the buffer pad is distributed on at least one side of the beam connection structure in the transverse direction.
[0008] Optionally, the width of the buffer pad is greater than the width of the beam connection structure, and both the width of the buffer pad and the width of the beam connection structure are dimensions along the longitudinal direction.
[0009] Optionally, the battery cell has a thickness T-cell, the thickness of which is the dimension along the longitudinal direction, and the buffer pad has a width w, satisfying: 1.5T-cell≤w≤3T-cell.
[0010] Optionally, the top of the buffer pad and the top of the battery cell have a height difference h1, and the height of the welding heat-affected zone on the top of the battery cell is h2, satisfying: h1≥h2.
[0011] Optionally, the buffer pad has a height H-sptr, and the battery cell has a height H-cell, with the height direction perpendicular to the longitudinal direction and the transverse direction, satisfying: H-cell·50%≤H-sptr≤H-cell-h2.
[0012] Optionally, the buffer pad has a thickness t, and the gap between the side of the longitudinal beam and the battery cell has a width d. The thickness of the buffer pad and the width of the gap are both dimensions along the transverse direction, satisfying: 0.5d≤t≤0.9d.
[0013] Optionally, the surface of the buffer pad facing the battery cell has an area S, satisfying: 2000mm²≤S≤20000mm².
[0014] Optionally, the battery pack includes a buffer component, which includes a connecting pad portion and two buffer pads located on both sides of the connecting pad portion. The connecting pad portion and the buffer pads are an integral structure. The connecting pad portion is supported on the top of the longitudinal beam, and the top of the longitudinal beam is the side of the longitudinal beam closest to the vehicle body.
[0015] Optionally, the buffer component includes a connecting pad portion that connects the connecting pad portion and the buffer pad; the thickness of the connecting pad portion in the transverse direction is less than the thickness of the buffer pad in the transverse direction.
[0016] Optionally, the height of the connecting pad is not less than the height of the welding heat-affected zone at the top of the battery cell.
[0017] Optionally, the cushioning pad is made of any one of EPDM rubber, silicone rubber, polyurethane, or nylon.
[0018] This application also provides a vehicle including any of the battery packs described above.
[0019] In this application, a buffer pad is installed between the longitudinal beams and the battery cells of the battery pack, and the buffer pad is located on both sides of the beam connection structure. With this configuration, when the vehicle is involved in a side pole collision, the longitudinal beams of the battery pack deform due to inertia. The deformation of the longitudinal beams is mainly concentrated in the beam connection structure. The longitudinal beam portion corresponding to this location has the most obvious tendency to squeeze and intrude into the battery cells on one side. However, based on the presence of the buffer pad on at least one side of the beam connection structure, when the side with the buffer is involved in a collision, the load of the longitudinal beam deformation can be distributed to the side of the battery cell on the corresponding side, thereby reducing the local stress on the battery cell.
[0020] The vehicle provided in the application includes the battery pack described in any of the above-mentioned items, and therefore has the same technical effect as the battery pack described above. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the battery pack structure in one embodiment of this application;
[0022] Figure 2 for Figure 1 A structural schematic diagram showing the location of the longitudinal beams inside the battery pack.
[0023] Figure 3 for Figure 2 The main view;
[0024] Figure 4 for Figure 1 A schematic diagram showing the positional distribution of the buffer pad and battery cell from a lateral perspective.
[0025] Figure 5 for Figure 2 A schematic diagram of a structure in which the buffer pad is located on one side of the battery cell;
[0026] Figure 6 This is a structural schematic diagram showing the location of the longitudinal beam inside the battery pack in another embodiment of this application;
[0027] Figure 7 for Figure 6 Schematic diagram of the middle buffer component;
[0028] Figure 8 This is a structural schematic diagram of the location of the longitudinal beam inside a battery pack.
[0029] Figure 9 for Figure 8 A schematic diagram of the structure when the central longitudinal beam tilts over.
[0030] The annotations in the attached figures are explained as follows:
[0031] 100-battery pack;
[0032] 11-Battery cell;
[0033] 12-Longitudinal beam; 121-Beam connection structure;
[0034] 13-Connecting components;
[0035] 14-Buffer component; 141-Buffer pad; 142-Connecting pad; 143-Connecting pad; 143a-Allowing hole;
[0036] 15-Battery housing;
[0037] 01-Battery cell; 02-Longitudinal beam; 03-Connecting component. Detailed Implementation
[0038] To enable those skilled in the art to better understand the technical solutions of this application, the application will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0039] Please refer to Figure 1 and Figure 3 , Figure 1 This is a schematic diagram of the structure of the battery pack 100 in one embodiment of this application; Figure 2 for Figure 1 Structural diagram of the position of longitudinal beam 12 inside the middle battery pack 100; Figure 3 for Figure 2 The main view.
[0040] The battery pack 100 in this embodiment includes a battery housing 15. Figure 1 To illustrate the internal structure of the battery pack 100, the top of the battery housing 15 is not shown. The battery pack 100 also includes battery modules located within the battery housing 15. Each battery module includes multiple battery cells 11, which can be arranged in rows, with multiple rows of cells 11 arranged side-by-side within the battery housing 15. The battery housing 15 has longitudinal beams 12 extending longitudinally along the battery pack 100. Both ends of the longitudinal beams 12 are connected to the battery housing 15. The longitudinal direction of the battery pack 100 is typically the same as the longitudinal direction of the vehicle; however, the longitudinal direction of the battery pack 100 and the longitudinal direction of the vehicle can differ.
[0041] The side of the longitudinal beam 12 closest to the vehicle body is its top. The top of the longitudinal beam 12 is provided with a connecting part 13 for connecting with the vehicle body. The connecting part 13 is, for example, a fastening bolt that can be threaded onto the vehicle body. Of course, the connecting part 13 can also be other connecting structures, as long as it can fix the battery pack 100 to the vehicle body. Figure 1 The schematic battery box 15 is provided with one longitudinal beam 12. It can be seen that two or more longitudinal beams 12 can also be provided. Each longitudinal beam 12 can be provided with one connecting component 13, or more connecting components 13 can be provided distributed longitudinally along the longitudinal direction of the longitudinal beam 12 to ensure connection reliability.
[0042] The longitudinal beam 12 divides the inner cavity of the battery box 15. The longitudinal beam 12 has two sides distributed laterally, which is perpendicular to the longitudinal direction. Both the lateral and longitudinal directions are perpendicular to the height direction of the battery pack 100. The two sides of the longitudinal beam 12 correspond to the end faces of a row of battery cells 11. The battery cells 11 are generally as follows: Figure 1 The diagram shows a cuboid configuration, with the side surface of the battery cell 11 having the largest area being the large face. Each row of battery cells 11 is arranged with their large faces facing each other, and the ends of the battery cells 11 are the smaller side faces. Of course, the battery cells 11 can also be arranged in other ways. Regardless of the arrangement, both sides of the longitudinal beam 12 will be opposite to several battery cells 12. There is a gap between the longitudinal beam 12 and the end faces of the battery cells 11 to form an assembly gap, allowing the battery cells 11 to be smoothly installed. The width of the gap, d, is, for example, about 4 mm.
[0043] It is worth noting that a buffer pad 141 is provided between the battery cell 11 and the longitudinal beam 12 in this embodiment, that is, a buffer pad 141 is provided in the gap mentioned above. Specifically, the structure of the longitudinal beam 12 used to connect with the vehicle body is defined as the beam connection structure 121. In this embodiment, the beam connection structure 121 is connected to the connecting component 13 to indirectly connect with the vehicle body. It can be seen that the beam connection structure 121 and the connecting component 13 can also be an integral structure. Figure 2 As shown, the connecting component 13 is a fastening bolt, with a portion of the threaded section of the fastening bolt located on the longitudinal beam 12. A through hole is provided at the top of the longitudinal beam 12, through which the fastening bolt passes to connect with the longitudinal beam 12. Therefore, the beam connection structure 121 includes this through hole. It can be seen that the connection method between the connecting component 13 and the longitudinal beam 12 is not limited to this. For example, it can be welded to the top of the longitudinal beam 12. In this case, the beam connection structure 121 includes the portion of the longitudinal beam 12 used for welding the connecting component 13. The structural form of the beam connection structure 121 is not specifically limited. The beam connection structure 121 is the portion of the longitudinal beam 12 used to establish a connection with the connecting component 13 and to transmit force.
[0044] The beam connection structure 121 has buffer pads 141 distributed on at least one side in the transverse direction. In this embodiment, buffer pads 141 are distributed on both sides. Therefore, when projected along the height direction of the battery pack 100, the projection of the beam connection structure 121 is located between the two buffer pads 141.
[0045] With this configuration, when the vehicle experiences a side pole collision, the connection between the battery pack 100 and the vehicle body is the beam connection structure 121. Due to inertia, the longitudinal beam 12 of the battery pack 100 deforms, and the deformation of the longitudinal beam 12 is mainly concentrated in the beam connection structure 121. The longitudinal beam 12 at this location tends to squeeze and intrude into the battery cell 11 on one side. However, based on the presence of the buffer pad 141 on either side of the beam connection structure 121, regardless of which side the collision occurs from, the load of the longitudinal beam 12 deformation can be distributed to the side of the battery cell 11 on the corresponding side, thereby reducing the local stress on the battery cell 11, reducing the local deformation and intrusion of the battery cell 11, protecting the structural safety of the battery cell 11 itself, and thus improving the safety of the battery pack 100.
[0046] As mentioned earlier, the buffer pads 141 are mainly installed on both sides of the beam connection structure 121 to address the impact of deformation on the battery cell 11 caused by the vehicle body collision transmitted to the longitudinal beam 12. Obviously, the area of the side surface of the buffer pad 141 facing the battery cell 11 or the longitudinal beam 12 should not be too small to ensure the dispersion of the load generated by the deformation of the longitudinal beam 12. The larger the area of the battery cell 11 covered by the buffer pad 141, the wider the load distribution of the longitudinal beam 12, which is more conducive to reducing the local stress on the battery cell 11. However, considering cost factors and the weakening effect of load dispersion at locations too far from the beam connection structure 121, the area of the buffer pad 141 should not be too large. In this embodiment, the area of the side surface of the buffer pad 141 facing the battery cell 11 or the longitudinal beam 12 is defined as S. The recommended value is 2000mm²≤S≤20000mm². Within this area range, the amount of material deposited on the battery cell 11 when the longitudinal beam 12 deforms can be reduced to below the required value, for example, below 4mm.
[0047] Please continue to refer to this. Figure 4 , Figure 4 for Figure 1 The diagram shows the positional distribution of the buffer pad 141 and the battery cell 11 from a horizontal perspective.
[0048] In this embodiment, the top of the buffer pad 141 and the top of the battery cell 11 have a height difference h1, with the top of the buffer pad 141 being lower than the top of the battery cell 11. The battery cell 11 has a housing, which includes a main housing with an upper opening and a top cover for sealing the opening. An electrical connector 111 is also provided on the top cover. The top cover constitutes the top of the battery cell 11 and needs to be welded to the main housing of the battery cell 11. The area around the weld between the top cover and the main housing is a relatively weak area in the structural strength of the battery cell 11. The welding position around the top should be kept as stress-free as possible. Depending on the actual situation, the heat-affected zone around the top of the battery cell 11 can be defined. That is, for the housing of the battery cell 11, the portion within a predetermined distance radiating outward from the top welding position is considered part of the heat-affected zone. The predetermined distance, for the end face of the battery cell 11, is represented by height. That is, the portion of the end face of the battery cell 11 at a predetermined distance from the top in the height direction belongs to the weld heat-affected zone. This predetermined distance can be defined as h2, and the height of the weld heat-affected zone of the battery cell 11 is h2. In this embodiment, the height h2 is, for example, 7 mm. Therefore, when designing the buffer pad 141, h1 ≥ h2 can be satisfied, meaning the buffer pad 141 can avoid the weld heat-affected zone, thereby reducing or preventing the transfer of the load from the deformation of the longitudinal beam 12 to the weld heat-affected zone of the battery cell 11.
[0049] like Figure 4 As shown, the buffer pad 141 is defined with a height H-sptr. As mentioned earlier, the distance between the top of the buffer pad 141 and the top of the battery cell 11 is the height h1. The height of the battery cell 11 is defined as H-cell, which satisfies: H-sptr ≤ H-cell - h2. However, it is obvious that the height H-sptr of the buffer pad 141 should not be too small, so as to distribute the load in the height direction. In this embodiment, H-sptr is also limited to ≥ H-cell·50%, that is, the height can not be less than half the height of the battery cell 11 to avoid concentrated load distribution. It can be seen that the height H-sptr of the buffer pad 141 can satisfy: H-cell·50% ≤ H-sptr ≤ H-cell - h2.
[0050] This embodiment can also limit the width of the buffer pad 141 along the longitudinal direction. The width of the buffer pad 141 can be greater than the width of the beam connection structure 121, so as to fully distribute and transfer the deformation force of the longitudinal beam 12 transmitted by the beam connection structure 121. The width of the buffer pad 141 and the width of the beam connection structure 121 are both longitudinal dimensions. Of course, considering cost factors, the width of the buffer pad 141 in the longitudinal direction does not need to be too large. For example, the battery cell 11 can be defined to have a thickness T-cell, and the thickness of the battery cell 11 is its longitudinal dimension. If the buffer pad 141 is defined to have a width w, then the following condition can be met: 1.5T-cell ≤ w ≤ 3T-cell. That is, the width of the buffer pad 141 can be 1.5 times to 3 times the thickness of the battery cell 11. In this way, the buffer pad 141 can transfer the deformation force of the longitudinal beam 12 to more than one battery cell 11 to achieve the purpose of uniform load distribution. However, similar to the analysis principle of the area of the buffer pad 141 mentioned above, if the width of the buffer pad 141 is too large, the number of corresponding battery cells 11 will be too large. Some battery cells 11 that are far away from the beam connection structure 121 will contribute less to the load transfer distribution. Therefore, considering the design cost, it is sufficient to meet the buffering requirements and control the cost by having the buffer pad 141 correspond to 2 to 3 battery cells 11 in the lateral direction. Here, "corresponding" means that after the collision, the buffer pad 141 can contact 2 to 3 battery cells 11 to transfer the load.
[0051] like Figure 5 As shown, Figure 5 for Figure 2 A schematic diagram of the structure of the buffer pad 141 located on one side of the battery cell 11.
[0052] The buffer pad 141 can be defined to have a thickness t, which is the dimension extending laterally perpendicular to the longitudinal direction. There is a gap d between the longitudinal beam 12 and the battery cell 11, and the width of this gap is also a lateral dimension. This gap can satisfy 0.5d ≤ t ≤ 0.9d. That is, the buffer pad 141 does not need to fill the entire gap laterally; a certain distance can be reserved. This facilitates assembly and helps control costs. Of course, t = d is also acceptable. When fixing the buffer pad 141, it can be glued to both sides of the longitudinal beam 12, or it can be glued to the end face of the battery cell 11. Considering that the buffer pad 141 corresponds to more than one battery cell 11, gluing it to the longitudinal beam 12 is easier to operate.
[0053] The buffer pad 141 described above can be made of any of the following materials: EPDM rubber, silicone rubber, polyurethane, or nylon. Buffer pads 141 made of such materials have an elastic modulus that easily meets the buffering requirements. If the elastic modulus is too low, the buffer pad 141 will easily deform excessively under compressive force and lose its supporting effect; if the elastic modulus is too high, the buffering effect will be limited when the battery cell 11 is subjected to excessive force. In this embodiment, the elastic modulus E value of the buffer pad 141 can meet the following requirement: E = 50~2000 MPa.
[0054] Please continue to refer to this. Figure 6 and Figure 7 , Figure 6 This is a structural schematic diagram of the location of the longitudinal beam 12 inside the battery pack 100 in another embodiment of this application; Figure 7 for Figure 6 A schematic diagram of the structure of the buffer component 14.
[0055] In this embodiment, the battery pack 100 has a basically the same structure as the battery pack 100 in the above embodiment, except that in the above embodiment, the two buffer pads 141 are independently arranged on both sides of the longitudinal beam 12, while Figures 6 to 7 The buffer pads 141 on both sides of the longitudinal beam 12 are configured as an integral structure. Specifically, the battery pack in this embodiment includes a buffer component 14, which includes a connecting pad portion 143 and buffer pads 141 located on both sides of the connecting pad portion 143. In this embodiment, the connecting pad portion 143 and the buffer pads 141 on both sides are connected by a connecting pad portion 142. The connecting pad portion 143, the buffer pads 141, and the connecting pad portion 142 are integral structures. The buffer component 14 is roughly U-shaped or saddle-shaped. In this way, the buffer component 14 can straddle the longitudinal beam 12, and the connecting pad portion 143 is supported on the top of the longitudinal beam 12. The buffer pads 141 on both sides are located on the corresponding side of the longitudinal beam 12. The specific structural form of the buffer pads 141 can be understood with reference to the above embodiment, and will not be repeated here.
[0056] With this configuration, the buffer component 14 can be placed on the longitudinal beam 12 to complete the arrangement of the two buffer pads 141. After assembly, the position of the buffer pads 141 in the height direction is determined, eliminating the need for measurement before installation and simplifying assembly. For example, the distance between the two buffer pads 141 can be slightly less than the thickness of the longitudinal beam 12 in the transverse direction. Then, after the buffer component 14 spans the longitudinal beam 12, the buffer pads 141 can be pressed against the side of the longitudinal beam 12, directly achieving limited installation without the need for adhesive. Of course, adhesive can further improve the connection effect between the buffer pads 141 and the longitudinal beam 12. It is understood that since the two buffer pads 141 need to be distributed on both sides of the beam connection structure 121, the connecting pad portion 143 can also be provided with clearance holes 143a, through which the connecting component 13 can pass through the clearance holes 143a to the connecting pad portion 143.
[0057] In this embodiment, the connecting pad 142 is closer to the connecting pad 143. Figure 7 In this configuration, the connecting pad 142 is located above the buffer pad 141. The thickness of the connecting pad 142 in the lateral direction can be set to be less than the thickness of the buffer pad 141. For example, the thickness of the connecting pad 142 can be less than half the thickness of the buffer pad 141. The thickness of the connecting pad 142 is set to be as small as possible, serving only to connect the buffer pad 141 and the connecting pad 143. The height of the connecting pad 142 can be greater than or equal to the height h2 of the welding heat-affected zone of the battery cell 11. Similar to the principle described in the above embodiment, setting the connecting pad 142 to be as thin as possible and its height not less than h2 also minimizes the transfer of load to the welding heat-affected zone. As an example, the connecting pad 142 can also be configured as a mesh structure, etc. Of course, the buffer pad 141 can also be directly connected to the connecting pad 143.
[0058] This embodiment also provides a vehicle that includes the battery pack 100 described in any of the above embodiments, which has the same technical effects as the battery pack 100 in the above embodiments, and will not be described again.
[0059] The above are merely preferred embodiments of this application. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this application, and these improvements and modifications should also be considered within the scope of protection of this application.
Claims
1. A battery pack, characterized in that, Includes a battery housing (15) and a plurality of battery cells (11) located within the battery housing (15), the battery housing (15) having a longitudinal beam (12) extending longitudinally, the longitudinal beam (12) having a beam connection structure (121) for connection with the vehicle body. The battery pack (100) also includes a buffer pad (141), the longitudinal beam (12) has two sides distributed in a transverse direction, the transverse direction being perpendicular to the longitudinal direction; there is a gap between the side of the longitudinal beam (12) and the battery cell (11), the buffer pad (141) is located in the gap, and the buffer pad (141) is distributed on at least one side of the beam connection structure (121) in the transverse direction.
2. The battery pack according to claim 1, characterized in that, The width of the buffer pad (141) is greater than the width of the beam connection structure (121), and the width of the buffer pad (141) and the width of the beam connection structure (121) are both dimensions along the longitudinal direction.
3. The battery pack according to claim 2, characterized in that, The cell (11) has a thickness T-cell, the thickness of the cell (11) being the dimension along the longitudinal direction, and the buffer pad (141) has a width w, satisfying: 1.5T-cell≤w≤3T-cell.
4. The battery pack according to claim 1, characterized in that, The top of the buffer pad (141) and the top of the battery cell (11) have a height difference h1, and the height of the welding heat-affected zone on the top of the battery cell (11) is h2, satisfying: h1≥h2.
5. The battery pack according to claim 4, characterized in that, The buffer pad (141) has a height H-sptr, and the cell (11) has a height H-cell, the height direction being perpendicular to the longitudinal direction and the transverse direction, satisfying: H-cell·50%≤H-sptr≤H-cell-h2.
6. The battery pack according to claim 1, characterized in that, The buffer pad (141) has a thickness t, and the gap between the side of the longitudinal beam (12) and the battery cell (11) has a width d. The thickness of the buffer pad (141) and the width of the gap are both dimensions along the transverse direction, satisfying: 0.5d≤t≤0.9d.
7. The battery pack according to any one of claims 1-6, characterized in that, The buffer pad (141) has an area S on the side facing the battery cell (11) such that: 2000mm²≤S≤20000mm².
8. The battery pack according to any one of claims 1-6, characterized in that, The battery pack (100) includes a buffer component (14), which includes a connecting pad (143) and two buffer pads (141). The two buffer pads (141) are located on both sides of the connecting pad (143). The connecting pad (143) and the buffer pads (141) are an integral structure. The connecting pad (143) is supported on the top of the longitudinal beam (12), and the top of the longitudinal beam (12) is the side of the longitudinal beam (12) closest to the vehicle body.
9. The battery pack according to claim 8, characterized in that, The buffer component (14) includes a connecting pad (142) that connects the connecting pad (143) and the buffer pad (141); the thickness of the connecting pad (142) in the transverse direction is less than the thickness of the buffer pad (141) in the transverse direction.
10. The battery pack according to claim 9, characterized in that, The height of the connecting pad (142) is not less than the height of the welding heat-affected zone at the top of the battery cell (11).
11. The battery pack according to any one of claims 1-6, characterized in that, The material of the cushioning pad (141) is any one of EPDM rubber, silicone rubber, polyurethane, and nylon.
12. A vehicle, characterized in that, Includes the battery pack (100) as described in any one of claims 1-11.