Module position adjusting tool
By designing a module position adjustment tooling, using the first and second plates to contact the module side, the module is pushed to ensure that the output pole copper busbar holes are aligned with the output pole base holes, solving the misalignment problem in module installation and achieving a stable installation process and module protection.
Patent Information
- Application Number
- CN202521949830.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-11
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2035-09-11
AI Technical Summary
The holes on the output copper busbar of the module may be misaligned with the holes on the output base, causing a connection failure and affecting the normal installation of the module.
A module position adjustment tool is designed, including a first plate and a second plate connected vertically, which contact the first side and the second side of the module respectively. The module is pushed by applying a force parallel to the end face of the module to ensure that the output pole copper busbar hole position is aligned with the output pole base hole position.
The alignment of the output pole copper busbar holes with the output pole base holes ensures the normal installation of the module and avoids direct contact with the module surface during the adjustment process, thus protecting the integrity of the module.
Smart Images

Figure CN223451086U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to battery assembly technical field, specifically, relate to a module position adjustment frock. BACKGROUND
[0002] The module is the key component of the battery, and the step of installing the module into the battery box is also a key link in the battery assembly process, which has an important influence on the electrical connection reliability of the whole battery.
[0003] In the related art, the end face of the module is often provided with an output pole copper bar, and the output pole base is located in the battery box. However, when the module is installed into the battery box, the hole positions of the output pole copper bar and the output pole base may be misaligned in the direction parallel to the end face of the module, which may result in that the output pole copper bar and the output pole base cannot be connected smoothly, and further affect the normal installation of the module. SUMMARY
[0004] The problem solved by the utility model is how to ensure that the hole positions of the output pole copper bar and the output pole base are aligned to ensure the normal installation of the module.
[0005] To solve the above problems, the utility model provides a module position adjustment frock.
[0006] The utility model provides a module position adjustment frock, be used for the position adjustment of module in battery box, the end face of module is equipped with output pole copper bar, the side of module includes first side surface and second side surface, the first side surface sets up and is connected with the end face of module perpendicularly upwards, the second side surface is connected to the end face and the first side surface of module perpendicularly respectively, the module position adjustment frock includes perpendicularly connected first plate body and second plate body, the side of first plate body close to second plate body is used for contacting with first side surface, the side of second plate body close to first plate body is used for contacting with second side surface.
[0007] Optionally, the lower part of the second side surface is provided with a flexible circuit board, and the side of the second plate body close to the first plate body is used for contacting with the upper part of the second side surface.
[0008] Optionally, the flexible circuit board comprises a main body segment and a lead-out segment, the lead-out segment is connected to the upper edge of the main body segment, and one end of the second plate body away from the first plate body is provided with an avoiding notch for avoiding the lead-out segment.
[0009] Optionally, the module position adjusting tool further comprises a connecting plate and a limiting structure, the connecting plate is connected to one end of the first plate body close to the second plate body, the limiting structure is arranged on the connecting plate, and when the output copper bar is aligned with the output base in the battery box, the limiting structure is limitedly matched with the battery box.
[0010] Optionally, the limiting structure comprises a first limiting block and a second limiting block, the first limiting block and the second limiting block are arranged on the side of the connecting plate close to the second plate body, and the first limiting block is located between the second limiting block and the second plate body; when the output copper bar is aligned with the output base, the side of the first limiting block close to the second plate body is limitedly matched with the side of the cross beam of the battery box away from the module, or the side of the second limiting block close to the second plate body is limitedly matched with the side of the wall of the battery box away from the module.
[0011] Optionally, the limiting structure is provided with two, and the two limiting structures are respectively located at two ends of the connecting plate along the length direction.
[0012] Optionally, the end of the connecting plate away from the first plate body is provided with a notch, and the notch is located between the two limiting structures.
[0013] Optionally, the connection of the side of the first plate body close to the second plate body is provided with an avoiding groove, and the two ends of the avoiding groove are through along the extension direction of the connection.
[0014] Optionally, the end face of the end of the second plate body away from the first plate body is configured as an inclined face, and the inclined face gradually inclines to the first plate body from one end to the other end along the thickness direction of the second plate body.
[0015] Optionally, the side of the first plate body away from the second plate body is provided with two holding parts, and the two holding parts are arranged at intervals along the length direction of the first plate body.
[0016] The beneficial effect of the module position adjusting tool is that in the first plate body and the second plate body connected perpendicularly, the side of the first plate body close to the second plate body can be in contact with the first side, and the side of the second plate body close to the first plate body can be in contact with the second side, so that the two plate bodies can contact two sides of the module perpendicularly respectively, the tool and the module are clamped, the tool can replace the side of the module as a stress point, therefore, after the module is placed in the battery box, if there is a misalignment between the output pole copper bar and the output pole base in the direction parallel to the end face of the module, the tool can be placed on the module, and force is applied on the first plate body or the second plate body and the direction of the force is parallel to the end face of the module, at this time, the module can be pushed and displaced in the direction parallel to the end face of the module, so as to ensure that the hole position of the output pole copper bar is aligned with the hole position of the output pole base, and normal installation of the module is ensured. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 A placing diagram of the module position adjusting tool of the utility model embodiment on the module is shown in the figure.
[0018] Figure 2 A structure diagram of the module position adjusting tool and the module of the utility model embodiment is shown in the figure.
[0019] Figure 3 A structure diagram of the module position adjusting tool of the utility model embodiment is shown in the figure.
[0020] Figure 4 A limiting diagram of the module position adjusting tool and the box wall of the utility model embodiment is shown in the figure.
[0021] Figure 5 A side view of the module position adjusting tool and the box wall limiting of the utility model embodiment is shown in the figure.
[0022] Figure 6 A side view of the module position adjusting tool and the beam limiting of the utility model embodiment is shown in the figure.
[0023] Explanation of reference signs:
[0024] 10, module; 11, output copper row; 12, first side; 13, second side; 14, flexible circuit board; 141, main body section; 142, lead-out section; 20, module position adjusting tool; 21, first plate body; 211, holding part; 22, second plate body; 221, avoiding notch; 222, inclined surface; 23, connecting plate; 231, notch; 24, limiting structure; 241, first limiting block; 242, second limiting block; 25, avoiding groove; 30, battery box; 31, output base; 32, cross beam; 33, box wall. DETAILED DESCRIPTION
[0025] In order to make the above-mentioned purpose, features and advantages of the present application more obvious and easy to understand, the specific embodiments of the present application will be described in detail below with reference to the drawings. Although some embodiments of the present application are shown in the drawings, it should be understood that the present application can be implemented in various forms, and should not be interpreted as being limited to the embodiments described herein, on the contrary, these embodiments are provided to make the present application more thorough and complete. It should be understood that the drawings and embodiments of the present application are only for illustrative purposes, and are not intended to limit the scope of protection of the present application.
[0026] The X-axis in the drawings represents the front and rear positions, and the positive direction of the X-axis represents the front side, and the negative direction of the X-axis represents the rear side; the Y-axis in the drawings represents the left and right positions, and the positive direction of the Y-axis represents the left side, and the negative direction of the Y-axis represents the right side; the Z-axis in the drawings represents the up and down positions, and the positive direction of the Z-axis represents the upper side, and the negative direction of the Z-axis represents the lower side. It should be noted that the meanings of the aforementioned X-axis, Y-axis and Z-axis are only for the convenience of describing the present application and simplifying the description, and are not intended to indicate or imply that the devices or elements referred to must have a specific orientation, structure and operation, and therefore cannot be understood as limiting the present application.
[0027] The term "comprising" and its variants as used herein are open-ended, i.e. "including but not limited to"; the term "based on" is "at least partially based on"; the term "one embodiment" means "at least one embodiment"; the term "another embodiment" means "at least one additional embodiment"; the term "some embodiments" means "at least some embodiments"; the term "optionally" means "optional embodiments". Related definitions of other terms will be given in the following description. It should be noted that the "first", "second", etc. concepts mentioned in the present application are only used to distinguish different devices, modules or units, and are not intended to limit the functions performed by these devices, modules or units or their mutual dependence.
[0028] It should be noted that the modification of "one" and "multiple" in the utility model is illustrative rather than restrictive, and those skilled in the art should understand that unless otherwise explicitly indicated in the context, it should be understood as "one or more".
[0029] The utility model provides a kind of module position adjustment tool, which is described in detail below with specific examples.
[0030] As Figure 1 And Figure 2 The utility model embodiment provides a kind of module position adjustment tool 20, for the position adjustment of module 10 in battery box 30, the end face of module 10 is equipped with output pole copper bar 11, the side of module 10 includes first side 12 and second side 13, first side 12 is set up towards up and is vertically connected with the end face of module 10, second side 13 is vertically connected to the end face of module 10 and first side 12 respectively;Module position adjustment tool 20 includes vertically connected first plate body 21 and second plate body 22, the side of first plate body 21 close to second plate body 22 is used for contacting with first side 12, the side of second plate body 22 close to first plate body 21 is used for contacting with second side 13.
[0031] Specifically, in combination with Figure 1 And Figure 4 , output pole copper bar 11 is provided with hole position, and output pole base 31 in battery box 30 is provided with hole position for pairing with the hole position of output pole copper bar 11, so that output pole copper bar 11 is connected with output pole base 31. Specifically, as Figure 1 And Figure 2 The end face of module 10 is the surface of the end of module 10 along the X-axis direction (front-rear direction), and output pole copper bar 11 is arranged on the end face, first side 12 can be the upper side of module 10, and second side 13 can be two and respectively left side and right side of module 10, when using the present module position adjustment tool 20, if the hole position of output pole copper bar 11 is right to the hole position of output pole base 31 along the direction parallel to the end face of module 10 (Y-axis direction), second plate body 22 can be contacted with the right side of module 10, so that when the tool is applied with the thrust parallel to the end face of module 10, module 10 can move left with right, to eliminate the left-right deviation between the hole position of output pole copper bar 11 and the hole position of output pole base 31;If the hole position of output pole copper bar 11 is left to the hole position of output pole base 31 along the direction parallel to the end face of module 10, second plate body 22 can be contacted with the left side of module 10, so that when the tool is applied with the thrust parallel to the end face of module 10, module 10 can move right with left, to eliminate the left-right deviation between the hole position of output pole copper bar 11 and the hole position of output pole base 31.
[0032] Specifically, one end of the first plate body 21 along the width direction is connected with one end of the second plate body 22 along the width direction, so that the first plate body 21 and the second plate body 22 form an L-shaped structure.
[0033] In the embodiment, in the vertically connected first plate body 21 and the second plate body 22, the side of the first plate body 21 close to the second plate body 22 can be in contact with the first side 12, and the side of the second plate body 22 close to the first plate body 21 can be in contact with the second side 13, so that the two plate bodies can respectively contact the two sides of the module 10 perpendicular to each other, realize the clamping of the tooling and the module 10, and make the tooling be able to replace the side of the module 10 as a force point. Therefore, after the module 10 is placed in the battery box 30, if there is a misalignment between the output pole copper bar 11 and the output pole base 31 in the direction parallel to the end face of the module 10, the tooling can be placed on the module 10, and a force is applied on the first plate body 21 or the second plate body 22 and the direction of the force is parallel to the end face of the module 10. At this time, the module 10 can be pushed to move in the direction parallel to the end face of the module 10, so as to ensure that the hole position of the output pole copper bar 11 is aligned with the hole position of the output pole base 31, and the normal installation of the module 10 is ensured. Moreover, since the first plate body 21 and the second plate body 22 are in contact with the first side 12 and the second side 13 of the module 10 at the same time, the stability of the displacement process of the module 10 can also be ensured. At the same time, using the tooling to adjust the position of the module 10 can also avoid the damage of the module 10 caused by the direct contact of the assembly personnel with the surface of the module 10.
[0034] Optionally, as shown in Figure 1 and Figure 2 , the lower part of the second side 13 is provided with a flexible circuit board 14; and the side of the second plate body 22 close to the first plate body 21 is used to contact the upper part of the second side 13.
[0035] Specifically, the width of the second plate body 22 can be shorter than the width of the second side 13, so as to be staggered with the flexible circuit board 14 up and down. It should be noted that the flexible circuit board 14 is a commonly used component in the battery, which is usually attached to the side of the module 10 and used to be connected to the collection terminal and the battery management system respectively, so as to transmit the voltage, temperature and other data collected by the collection terminal to the battery management system.
[0036] In the optional embodiment, the flexible circuit board 14 provided on the lower part of the second side 13 can play a role in transmitting voltage, temperature and other data, and because the side of the second plate body 22 close to the first plate body 21 is only used to contact the upper part of the second side 13, the second plate body 22 can be staggered with the flexible circuit board 14 up and down, so that the flexible circuit board 14 can be prevented from being pressed and damaged.
[0037] Optionally, as shown in Figure 2 The flexible circuit board 14 comprises a main body segment 141 and a lead-out segment 142, the lead-out segment 142 is connected to the upper edge of the main body segment 141; the second plate body 22 is provided with an avoiding gap 221 at the end away from the first plate body 21 for avoiding the lead-out segment 142.
[0038] Specifically, the lead-out segment 142 in the flexible circuit board 14 can be two, the two lead-out segments 142 are respectively connected to the two ends of the upper edge of the main body segment 141, one of the lead-out segments 142 can lead the voltage, temperature and other data into the flexible circuit board 14, and the other lead-out segment 142 can lead the voltage, temperature and other data out of the flexible circuit board 14; accordingly, the second plate body 22 can be provided with two avoiding gaps 221 corresponding to the two lead-out segments 142.
[0039] In the optional embodiment, by connecting the lead-out segment 142 to the upper edge of the main body segment 141, the contact area of the flexible circuit board 14 with the module 10 can be increased without increasing the length of the flexible circuit board 14, and the attachment effect of the flexible circuit board 14 on the module 10 can be improved; and by providing the avoiding gap 221 at the end of the second plate body 22 away from the first plate body 21, the lead-out segment 142 can be avoided, and the flexible circuit board 14 can be effectively prevented from being crushed.
[0040] Optionally, as shown in Figure 2 and Figure 3 The module position adjusting tool 20 further comprises a connecting plate 23 and a limiting structure 24, the connecting plate 23 is connected to the end of the first plate body 21 close to the second plate body 22, the limiting structure 24 is provided on the connecting plate 23, and the limiting structure 24 is in limiting cooperation with the battery box 30 when the output copper bar 11 is aligned with the output base 31 in the battery box 30.
[0041] Specifically, as shown in Figure 3 The upper side of the connecting plate 23 is coplanar with the upper side of the first plate body 21, and the lower side of the connecting plate 23 is coplanar with the lower side of the first plate body 21.
[0042] In the optional embodiment, the connecting plate 23 is connected to the end of the first plate body 21 close to the second plate body 22, so that the limiting structure 24 is installed; through the limiting structure 24, in the process of pushing the module 10, the limiting structure 24 can be in limiting cooperation with the battery box 30 when the output copper bar 11 is aligned with the output base 31, so as to limit the continuous movement of the module 10, thereby preventing the module 10 from being pushed through.
[0043] Optionally, as shown in Figure 3 to Figure 6As shown, the limiting structure 24 includes a first limiting block 241 and a second limiting block 242, both of which are arranged on the side of the connecting plate 23 close to the second plate body 22, and the first limiting block 241 is located between the second limiting block 242 and the second plate body 22; when the output copper bar 11 is aligned with the output base 31, the side of the first limiting block 241 close to the second plate body 22 is in limiting cooperation with the side of the cross beam 32 of the battery box 30 away from the module 10, or the side of the second limiting block 242 close to the second plate body 22 is in limiting cooperation with the side of the box wall 33 of the battery box 30 away from the module 10.
[0044] For example, as shown in Figure 4 and Figure 5 If the hole position of the output copper bar 11 is right of the hole position of the output base 31, the second plate body 22 can be inserted between the right side of the module 10 and the box wall 33, and then the jig is pushed to move the module 10 leftward until the side of the second limiting block 242 close to the second plate body 22 is in contact with the side of the box wall 33 away from the module 10, which means that the output copper bar 11 is aligned with the output base 31, and the position of the module 10 is adjusted; as shown in Figure 6 If the hole position of the output copper bar 11 is left of the hole position of the output base 31, the second plate body 22 can be inserted between the left side of the module 10 and the cross beam 32, and then the jig is pushed to move the module 10 rightward until the side of the first limiting block 241 close to the second plate body 22 is in contact with the side of the cross beam 32 away from the module 10, which means that the output copper bar 11 is aligned with the output base 31, and the position of the module 10 is adjusted. It can be understood that in actual battery products, the two opposite sides of the module 10 used for the second side may be close to the box wall 33 of the battery box 3 and the cross beam 32 inside the battery box 3, respectively, that is, when the output copper bar 11 is aligned with the output base 31, the box wall 33 may need to be used as the structure for limiting cooperation with the jig, or the cross beam 32 may need to be used as the structure for limiting cooperation with the jig, and the distance between the box wall 33 and the module 10 will be greater than the distance between the cross beam 32 and the module 10, so two limiting blocks with different distances from the second plate body 22 need to be set, that is, the limiting structure 24 needs to include two kinds of first limiting block 241 and second limiting block 242, and the first limiting block 241 is located between the second limiting block 242 and the second plate body 22.
[0045] In this optional embodiment, when the module 10 is arranged between the cross beam 32 and the box wall 33 of the battery box 3, when the module 10 is pushed in the direction away from the cross beam 32, the first limit block 241 of the limit structure 24 can contact and limit the cross beam 32 when the module 10 is pushed into place to prevent the module 10 from being pushed over, and when the module 10 is pushed in the direction away from the box wall 33, the second limit block 242 of the limit structure 24 can contact and limit the box wall 33 when the module 10 is pushed into place to prevent the module 10 from being pushed over, thereby ensuring the position adjustment efficiency of the module 10.
[0046] Alternatively, as Figure 3 As shown, two limiting structures 24 are provided, and the two limiting structures 24 are respectively located at both ends of the connecting plate 23 along the length direction.
[0047] In this optional embodiment, by providing two limiting structures 24, and the two limiting structures 24 are respectively located at both ends of the connecting plate 23 along the length direction, the two ends of the tooling along the length direction can be synchronously stopped and limited, thereby improving the limiting effect and making the alignment of the output pole copper bus 11 and the output pole base 31 more accurate.
[0048] Alternatively, as Figure 3 As shown, a notch 231 is provided at one end of the connecting plate 23 away from the first plate body 21 , and the notch 231 is located between the two limiting structures 24 .
[0049] In this optional embodiment, by providing a notch 231 on the connecting plate 23, the connecting plate 23 can be made lighter, thereby preventing the tooling from being too heavy and damaging the module 10. Furthermore, the notch 231 is located between the two limiting structures 24, thereby not affecting the normal installation of the limiting structures 24.
[0050] Alternatively, as Figure 3 As shown, an avoidance groove 25 is provided at the connection between the adjacent sides of the first plate body 21 and the second plate body 22 , and both ends of the avoidance groove 25 pass through along the extending direction of the connection.
[0051] Specifically, if Figure 3 As shown, the side surface where the first plate body 21 and the second plate body 22 are close to each other refers to the inner side surface of the L-shaped structure surrounded by the first plate body 21 and the second plate body 22. The avoidance groove 25 is provided on the inner side surface and is located at the connection between the first plate body 21 and the second plate body 22, and along the extension direction of the connection (X-axis direction), one end of the avoidance groove 25 passes through the connection part of the first plate body 21 and the second plate body 22, and the other end also passes through the connection part of the first plate body 21 and the second plate body 22.
[0052] In this optional embodiment, by providing an avoidance groove 25 with both ends passing through the inner side of the connection between the first plate body 21 and the second plate body 22, the original right angle of the connection can be eliminated to improve stress concentration, and interference between the connection and the right-angle intersection of the first side surface 12 and the second side surface 13 can be avoided to ensure the contact effect between the two plates and the two side surfaces.
[0053] Alternatively, as Figure 3 As shown, the end surface of the second plate body 22 away from the first plate body 21 is configured as an inclined surface 222, and the inclined surface 222 is gradually inclined from one end to the other end along the thickness direction of the second plate body 22 to the first plate body 21.
[0054] Specifically, if Figure 3 As shown, the inclined surface 222 gradually inclines upward from left to right (from the positive direction of the Y axis to the negative direction of the Y axis).
[0055] In this optional embodiment, by setting the end surface of the second plate body 22 away from the first plate body 21 as an inclined surface 222, and the inclined surface 222 is gradually inclined from one end along the thickness direction of the second plate body 22 to the other end close to the first plate body 21, the inclined surface 222 can play a guiding role, so that the second plate body 22 can be quickly inserted between the second side surface 13 and the box wall 33 or the beam 32 of the box body, thereby improving the installation efficiency of the tooling on the module 10. In addition, if the distance between the second side surface 13 and the box wall 33 or the beam 32 of the box body is small, due to the existence of the inclined surface 222, the second plate body 22 can also slightly push the module 10 during the insertion process, thereby improving the position adjustment efficiency of the module 10.
[0056] Alternatively, as Figure 3 As shown, two gripping portions 211 are provided on the side of the first plate body 21 away from the second plate body 22 , and the two gripping portions 211 are spaced apart along the length direction of the first plate body 21 .
[0057] Specifically, the gripping portion 211 may be a handle structure.
[0058] In this optional embodiment, a gripping portion 211 is provided on the first plate 21 for the assembler to grip, thereby facilitating the application of force to the tooling. Furthermore, the two gripping portions 211 are spaced apart along the length direction of the first plate 21. This ensures that the force applied to the tooling along the length direction of the first plate 21 is uniform, which is beneficial to improving the pushing effect on the module 10.
[0059] Although the present invention is disclosed as above, the protection scope of the present invention is not limited thereto. Those skilled in the art may make various changes and modifications without departing from the spirit and scope of the present invention, and these changes and modifications will fall within the protection scope of the present invention.
Claims
1. A module position adjustment tool, characterized in that: Used for adjusting the position of a module (10) in a battery box (30), the end face of the module (10) is provided with an output pole copper bar (11), the side face of the module (10) includes a first side face (12) and a second side face (13), the first side face (12) is arranged upward and vertically connected to the end face of the module (10), and the second side face (13) is vertically connected to the end face of the module (10) and the first side face (12), respectively; the module position adjustment tool (20) includes a first plate body (21) and a second plate body (22) connected vertically, the side face of the first plate body (21) close to the second plate body (22) is used to contact the first side face (12), and the side face of the second plate body (22) close to the first plate body (21) is used to contact the second side face (13).
2. The module position adjustment tool according to claim 1, characterized in that: A flexible circuit board (14) is provided on the lower portion of the second side surface (13); and a side surface of the second plate body (22) close to the first plate body (21) is used to contact the upper portion of the second side surface (13).
3. The module position adjustment tool according to claim 2, characterized in that: The flexible circuit board (14) comprises a main body section (141) and a lead section (142), wherein the lead section (142) is connected to the upper edge of the main body section (141); an escape notch (221) for evading the lead section (142) is provided at one end of the second plate body (22) away from the first plate body (21).
4. The module position adjustment tool according to claim 1, characterized in that: The module position adjustment tool (20) further includes a connecting plate (23) and a limiting structure (24), wherein the connecting plate (23) is connected to one end of the first plate body (21) close to the second plate body (22), and the limiting structure (24) is provided on the connecting plate (23), and when the output pole copper busbar (11) and the output pole base (31) in the battery box (30) are aligned, the limiting structure (24) and the battery box (30) are limitedly matched.
5. The module position adjustment tool according to claim 4, characterized in that: The limiting structure (24) comprises a first limiting block (241) and a second limiting block (242), wherein the first limiting block (241) and the second limiting block (242) are both arranged on the side of the connecting plate (23) close to the second plate body (22), and the first limiting block (241) is located between the second limiting block (242) and the second plate body (22); when the output pole copper busbar (11) and the output pole base (31) are aligned, the side of the first limiting block (241) close to the second plate body (22) is in limiting cooperation with the side of the beam (32) of the battery box (30) away from the module (10), or the side of the second limiting block (242) close to the second plate body (22) is in limiting cooperation with the side of the box wall (33) of the battery box (30) away from the module (10).
6. The module position adjustment tool according to claim 4, characterized in that: Two limiting structures (24) are provided, and the two limiting structures (24) are respectively located at two ends of the connecting plate (23) along the length direction.
7. The module position adjustment tool according to claim 6, characterized in that: A notch (231) is provided at one end of the connecting plate (23) away from the first plate body (21), and the notch (231) is located between the two limiting structures (24).
8. The module position adjustment tool according to claim 1, characterized in that: An avoidance groove (25) is provided at the connection between the adjacent sides of the first plate body (21) and the second plate body (22), and both ends of the avoidance groove (25) are connected along the extension direction of the connection.
9. The module position adjustment tool according to claim 1, characterized in that: An end surface of the second plate body (22) away from one end of the first plate body (21) is configured as an inclined surface (222), and the inclined surface (222) is inclined gradually toward the first plate body (21) from one end toward the other end along the thickness direction of the second plate body (22).
10. The module position adjustment tool according to any one of claims 1 to 9, characterized in that: Two gripping portions (211) are provided on a side of the first plate body (21) away from the second plate body (22), and the two gripping portions (211) are spaced apart along the length direction of the first plate body (21).