Novel precise positioning solid-state battery clamp

By designing a new solid-state battery fixture with multi-station adjustment components and rotating motors, the precise positioning and synchronous detection of multiple solid-state batteries is achieved, solving the problems of inaccurate results and inefficient efficiency in traditional inspections, and improving the accuracy and efficiency of detection.

CN223277860UActive Publication Date: 2025-08-29WUHAN CHUANGNENG NEW ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422749518.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-12
Publication Date
2025-08-29
Estimated Expiration
2034-11-12

AI Technical Summary

Technical Problem

When detecting traditional solid-state batteries, they are susceptible to external influences, resulting in inaccurate test results and low detection efficiency, so they cannot perform synchronous detection of multiple batteries at the same time.

Method used

A new precisely positioned solid-state battery fixture is designed, using multi-station adjustment components and rotating motors to realize the precise clamping and multi-station detection of multiple solid-state batteries. Through the coordination of the clamping seat, rotating table and multi-station adjustment components, the synchronous detection of multiple batteries is achieved.

Benefits of technology

It improves the accuracy and consistency of the detection results, enhances the universality of the detection equipment, greatly improves the detection efficiency and reduces the flow time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a novel precise positioning solid-state battery clamp, which belongs to the field of solid-state batteries and comprises a solid-state battery detection seat. A battery detection platform is formed on the upper end face of the solid-state battery detection seat, a multi-station adjusting assembly is assembled on the battery detection platform, a plurality of solid-state battery detection clamps are assembled on the multi-station adjusting assembly, and a solid-state battery body is arranged in each solid-state battery detection clamp. According to the novel precise positioning solid-state battery clamp disclosed by the utility model, a solid-state battery body can be precisely positioned and clamped, so that the solid-state battery body is integrally stable and does not shake when being detected, and the accuracy and the consistency of a test result are improved; meanwhile, through a plurality of clamping plates for surrounding clamping, when the solid-state battery detection clamp is used for positioning and clamping the solid-state battery bodies, the surrounding clamping design can flexibly adapt to the solid-state battery bodies of different sizes and shapes, and the universality of the detection equipment is improved.
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Description

Technical Field

[0001] The utility model belongs to the field of solid-state batteries, and specifically relates to a novel precise positioning solid-state battery fixture. Background Art

[0002] Solid-state batteries are a type of battery technology that uses solid electrolytes rather than liquid or gel electrolytes. This design offers potential advantages in safety, energy density, and cycle life. The lack of liquid electrolytes makes solid-state batteries less susceptible to leakage or combustion, reducing the risk of fire. They can also store more energy, theoretically providing a longer driving range.

[0003] Traditional solid-state batteries need to be tested for charge and discharge after production to ensure their safety in use and to ensure quality. When testing traditional solid-state batteries, they are mostly placed directly on the testing platform for testing. However, this testing method makes the solid-state battery susceptible to external influences during testing, resulting in movement, which affects the accuracy and repeatability of the test results. Moreover, when conducting electrochemical performance or other parameter tests, the movement of the battery will also lead to incomplete or inaccurate data records, affecting subsequent analysis and evaluation. At the same time, when testing existing solid-state batteries, only one battery can be placed at a time. Only after the target battery test is completed can the next battery be placed for testing. Such low flow efficiency affects the overall testing efficiency. Therefore, a new type of precise positioning solid-state battery fixture is proposed to solve the above problems. Utility Model Content

[0004] In response to one or more of the above-mentioned defects or improvement needs of the prior art, the utility model provides a new type of precise positioning solid-state battery clamp, which has the advantages of being able to clamp multiple groups of solid-state batteries at a time, improving the flow detection efficiency, and being able to precisely position the solid-state batteries.

[0005] To achieve the above-mentioned purpose, the present utility model provides a novel precise positioning solid-state battery fixture, comprising a solid-state battery detection seat;

[0006] The solid-state battery testing seat is equipped with a vertical frame, and the solid-state battery testing device body is installed on the side of the vertical frame;

[0007] A battery testing platform is formed on the upper end surface of the solid-state battery testing seat, and a multi-position adjustment component is assembled on the battery testing platform. A plurality of solid-state battery testing fixtures are assembled on the multi-position adjustment component, and each of the solid-state battery testing fixtures is equipped with a solid-state battery body;

[0008] The multi-station adjustment assembly includes a motor base provided on the battery detection platform, a rotating motor is installed on the upper end surface of the motor base, and an output end of the rotating motor is connected to a rotating platform;

[0009] The solid-state battery testing fixtures are arranged around the center of the rotating table; each of the solid-state battery testing fixtures includes a base plate arranged on the multi-station adjustment assembly, the upper end surface of the base plate is supported by a plurality of pillars, and the upper end surfaces of the plurality of pillars jointly support a clamping seat;

[0010] A plurality of sliding grooves are formed around the center of the upper end surface of the clamping seat, and a support arm is slidably provided in each of the sliding grooves. A clamping plate is integrally provided at the end of each of the support arms.

[0011] As a further improvement of the present invention, a reciprocating motor is assembled at the bottom of the clamping seat, and the output end of the reciprocating motor passes through the clamping seat and extends to one side of the clamping seat and is connected to an adjusting gear disk.

[0012] As a further improvement of the present invention, a plurality of rotary grooves are provided through the adjusting gear disc, and the plurality of rotary grooves are circumferentially arranged along the center of the adjusting gear disc, and a rotary shaft is slidably provided in each rotary groove, and the bottom of the plurality of rotary shafts is respectively connected to the end of one of the support arms.

[0013] As a further improvement of the present invention, a rotating shaft is installed on the side of the clamping seat and is rotatably connected to a matching gear through the rotating shaft. Teeth are formed on the outside of the matching gear and engage with the adjusting gear disc.

[0014] As a further improvement of the present invention, a support plate is embedded on the upper end surface of the clamping seat, and the support plate is disc-shaped and accommodates the matching gear and the adjusting gear plate; the solid-state battery body is supported on the top of the support plate.

[0015] In general, the above technical solutions conceived by the present invention have the following beneficial effects compared with the prior art:

[0016] The new precise positioning solid-state battery fixture of the present invention, in actual use, can realize the precise positioning and clamping of the solid-state battery body through the mutual movement coordination of multiple structures within the solid-state battery detection fixture, thereby ensuring the overall stability of the solid-state battery body during detection without shaking, thereby improving the accuracy and consistency of the test results; at the same time, through the multiple clamping plates for surrounding clamping, the solid-state battery detection fixture of the present application can flexibly adapt to solid-state battery bodies of different sizes and shapes when positioning and clamping the solid-state battery body, reducing the need for replacement or adjustment of the clamping equipment, and improving the versatility of the detection equipment of the present application.

[0017] The new precise positioning solid-state battery fixture of the present invention cooperates with each other in the multi-station adjustment component of the present application during the actual testing process, so that several groups of solid-state battery testing fixtures arranged on the multi-station adjustment component can be rotated and switched at free angles below the solid-state battery testing equipment body, thereby cooperating with the solid-state battery testing equipment body to realize multi-station testing; compared with the traditional method of placing a group of solid-state battery bodies at a time for a single test, when testing equipment of different processes is provided on the solid-state battery testing seat, the switching adjustment of the solid-state battery testing fixture by the multi-station adjustment component in the present application makes it possible to independently test multiple solid-state battery bodies within the same time period, thereby greatly improving the overall testing efficiency and reducing the flow time during the testing process. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a schematic diagram of the overall installation structure of the utility model;

[0019] Figure 2 This is a schematic diagram of the installation structure of the multi-station adjustment component and the solid-state battery detection fixture of the utility model;

[0020] Figure 3 This is a schematic diagram of the disassembly and installation structure of the solid-state battery testing fixture of the utility model;

[0021] Figure 4 This is a schematic diagram of the installation structure of the reciprocating motor of the utility model below the clamping seat.

[0022] In all the drawings, the same figure marks represent the same technical features, specifically: 1. Solid-state battery testing seat; 2. Vertical frame; 3. Battery testing platform; 4. Multi-station adjustment assembly; 41. Motor seat; 42. Rotating motor; 43. Rotating table; 5. Solid-state battery testing fixture; 51. Base plate; 52. Pillar; 53. Clamping seat; 54. Reciprocating motor; 55. Adjusting gear plate; 56. Rotary groove; 57. Rotary shaft; 58. Slide groove; 59. Support arm; 510. Clamping plate; 511. Matching gear; 512. Support plate; 6. Solid-state battery body; 7. Solid-state battery testing equipment body. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0024] Example

[0025] Depend on Figure 1-4 A novel precise positioning fixture for solid-state batteries is provided, comprising a solid-state battery detection seat 1;

[0026] A vertical frame 2 is mounted on the solid-state battery testing seat 1, and a solid-state battery testing device body 7 is mounted on the side of the vertical frame 2;

[0027] A battery testing platform 3 is formed on the upper end surface of the solid-state battery testing seat 1. A multi-station adjustment component 4 is assembled on the battery testing platform 3. A plurality of solid-state battery testing fixtures 5 are assembled on the multi-station adjustment component 4. Each solid-state battery testing fixture 5 is equipped with a solid-state battery body 6.

[0028] The multi-station adjustment assembly 4 includes a motor base 41 provided on the battery testing platform 3. A rotary motor 42 is mounted on the upper end surface of the motor base 41. The output end of the rotary motor 42 is connected to a rotary table 43.

[0029] A plurality of solid-state battery testing fixtures 5 are arranged around the center of the rotating table 43; each solid-state battery testing fixture 5 includes a base plate 51 provided on the multi-station adjustment assembly 4, the upper end surface of the base plate 51 supports a plurality of pillars 52, and the upper end surfaces of the plurality of pillars 52 jointly support a clamping seat 53;

[0030] A plurality of slide grooves 58 are formed around the center of the upper end surface of the clamping seat 53 . A support arm 59 is slidably mounted in each slide groove 58 . A clamping plate 510 is integrally mounted at the end of each support arm 59 .

[0031] In this embodiment, in actual use, the solid-state battery testing fixture 5 is provided with a plurality of structures that cooperate with each other in movement, so that the solid-state battery body 6 can be accurately positioned and clamped, thereby ensuring that the solid-state battery body 6 is stable as a whole during testing and does not shake, thereby improving the accuracy and consistency of the test results; at the same time, through the surrounding clamping of a plurality of clamping plates 510, the solid-state battery testing fixture 5 of the present application can flexibly adapt to solid-state battery bodies 6 of different sizes and shapes when positioning and clamping the solid-state battery body 6, thereby reducing the need for replacement or adjustment of the clamping equipment and improving the versatility of the testing equipment of the present application.

[0032] Furthermore, through the mutual cooperation of multiple structures within the multi-station adjustment component 4 of the present application, several groups of solid-state battery detection fixtures 5 set on the multi-station adjustment component 4 can be rotated and switched at free angles below the solid-state battery detection equipment body 7, thereby cooperating with the solid-state battery detection equipment body 7 to realize multi-station detection; compared with the traditional method of placing a group of solid-state battery bodies 6 at a time for a single detection, when detection equipment of different processes are provided on the solid-state battery detection seat 1, the switching adjustment of the solid-state battery detection fixture 5 by the multi-station adjustment component 4 in the present application makes it possible to independently detect multiple solid-state battery bodies 6 within the same time period, thereby greatly improving the overall test efficiency and reducing the flow time during the detection process.

[0033] It should be noted that the solid-state battery detection equipment body 7 used to detect the solid-state battery body 6 and other detection equipment for different processes are all existing mature equipment, which can be used to perform various electrical tests on the solid-state battery body 6 and will not be elaborated on here.

[0034] Specifically, refer to Figure 2-4 A reciprocating motor 54 is assembled at the bottom of the clamping seat 53 , and the output end of the reciprocating motor 54 passes through the clamping seat 53 and extends to one side of the clamping seat 53 where an adjusting gear disc 55 is connected.

[0035] In this embodiment, in actual use, the reciprocating motor 54 can be used to drive the adjusting gear disc 55 to rotate. The user connects the power supply to the reciprocating motor 54, and the output end of the reciprocating motor 54 can drive the adjusting gear disc 55 to rotate.

[0036] Specifically, refer to Figure 3-4 A plurality of rotary grooves 56 are formed on the adjusting toothed disc 55. The plurality of rotary grooves 56 are formed around the center of the adjusting toothed disc 55 and a rotary shaft 57 is slidably provided in each rotary groove 56. The bottom of the plurality of rotary shafts 57 is connected to the end of one of the support arms 59 respectively.

[0037] In this embodiment, when the adjusting toothed disc 55 is rotated, it is limited by the rotation groove 56 , so that the rotation shaft 57 sliding in the rotation groove 56 can follow the rotation.

[0038] Furthermore, when the rotary groove 56 slides, it is linearly limited by the slide groove 58, so that the support arm 59 installed at the bottom of the rotary groove 56 can move linearly along the travel range of the slide groove 58; by controlling the clockwise and counterclockwise rotation directions of the adjustment toothed disc 55, the user can make the multiple support arms 59 expand or contract in a circular shape along the center of the adjustment toothed disc 55.

[0039] Specifically, refer to Figure 3-4A rotating shaft is installed on the side of the clamping seat 53 and is rotatably connected to a matching gear 511 through the rotating shaft. The matching gear 511 has teeth formed on the outside and engages with the adjusting gear disc 55.

[0040] In this embodiment, by engaging with the mating gear 511 and the adjusting toothed disc 55, when the adjusting toothed disc 55 rotates, the mating gear 511 can follow and rotate accordingly. By the mating rotation of the mating gear 511, the adjusting toothed disc 55 can be more stable during operation, avoiding lateral deviation, which may cause the rotary groove 56 to become stuck.

[0041] Specifically, refer to Figure 3-4 A support disc 512 is embedded on the upper end surface of the clamping seat 53 . The support disc 512 is disc-shaped and accommodates the matching gear 511 and the adjusting gear disc 55 . The solid-state battery body 6 is supported on the top of the support disc 512 .

[0042] In this embodiment, the bottom opening of the support plate 512 is provided and the matching gear 511 and the adjusting tooth plate 55 can be accommodated as a whole, so that when the solid-state battery body 6 is placed in the solid-state battery detection fixture 5, the bottom of the solid-state battery body 6 can contact the support plate 512, thereby being supported by the support plate 512, and realizing the clamping positioning in the solid-state battery detection fixture 5; as shown in the embodiment Figure 3 As shown in FIG, the support plate 512 in this embodiment is shown with a portion of the bottom cut away.

[0043] The new precision positioning solid-state battery fixture of this utility model:

[0044] Step 1: When the user needs to test the solid-state battery body 6, the user places several solid-state battery bodies 6 in turn in multiple groups of solid-state battery testing fixtures 5. At this time, the solid-state battery testing fixture 5 provided can be used to clamp and position the solid-state battery body 6; during this period, the user connects a power source to the reciprocating motor 54 in the solid-state battery testing fixture 5, so that the reciprocating motor 54 can drive the adjusting gear disc 55 to rotate. When the adjusting gear disc 55 rotates, it is limited by the rotary groove 56, so that the rotary shaft 57 sliding in the rotary groove 56 can follow the movement; when the rotary groove 56 slides, it is limited by the linear position of the slide groove 58, so that the support arm 59 installed at the bottom of the rotary groove 56 can move linearly along the travel range of the slide groove 58; by controlling the rotation direction of the adjusting gear disc 55, the user can make the several support arms 59 expand or contract in a circular shape along the center of the circle of the adjusting gear disc 55;

[0045] Step 2: When the user controls the rotation direction of the adjustment gear plate 55 and causes the plurality of support arms 59 to drive the clamping plate 510 to perform a circular contraction movement, the clamping plate 510 installed at the end of the support arm 59 can clamp and position the solid-state battery body 6, thereby ensuring that the solid-state battery body 6 is installed in the solid-state battery testing fixture 5;

[0046] Step 3: After the solid-state battery body 6 is clamped, the user connects the power supply to the rotating motor 42. Under the drive of the output end of the rotating motor 42, the 443 installed on the output end of the rotating motor 42 can drive several groups of solid-state battery detection fixtures 5 and the solid-state battery body 6 to rotate. The user controls the rotation angle of the multi-station adjustment component 4 so that the several groups of solid-state battery detection fixtures 5 set on the multi-station adjustment component 4 can be rotated and switched at free angles below the solid-state battery detection equipment body 7, thereby cooperating with the solid-state battery detection equipment body 7 to realize multi-station detection.

[0047] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A novel solid-state battery fixture for precise positioning, comprising a solid-state battery detection seat (1), characterized in that ; The solid-state battery detection seat (1) is equipped with a vertical frame (2), and the side of the vertical frame (2) is equipped with a solid-state battery detection device body (7); A battery detection platform (3) is formed on the upper end surface of the solid-state battery detection seat (1); a multi-station adjustment component (4) is mounted on the battery detection platform (3); a plurality of solid-state battery detection fixtures (5) are mounted on the multi-station adjustment component (4); and a solid-state battery body (6) is disposed in each of the solid-state battery detection fixtures (5); The multi-station adjustment assembly (4) includes a motor base (41) arranged on the battery detection platform (3), a rotating motor (42) is installed on the upper end surface of the motor base (41), and the output end of the rotating motor (42) is connected to a rotating platform (43); A plurality of solid-state battery detection fixtures (5) are arranged around the center of a rotating table (43); each of the solid-state battery detection fixtures (5) comprises a base plate (51) arranged on a multi-station adjustment assembly (4); the upper end surface of the base plate (51) is supported by a plurality of pillars (52); and the upper end surfaces of the plurality of pillars (52) are jointly supported by a clamping seat (53); The upper end surface of the clamping seat (53) is provided with a plurality of sliding grooves (58) around the center thereof, and a support arm (59) is slidably provided in each of the sliding grooves (58), and a clamping plate (510) is integrally provided at the end of each of the support arms (59).

2. The novel precise positioning solid-state battery fixture according to claim 1 is characterized in that: A reciprocating motor (54) is mounted on the bottom of the clamping seat (53). The output end of the reciprocating motor (54) passes through the clamping seat (53) and extends to one side of the clamping seat (53) to be connected with an adjusting gear disc (55).

3. The novel precise positioning solid-state battery fixture according to claim 2 is characterized in that: The adjusting toothed disc (55) is provided with a plurality of rotary grooves (56), which are arranged around the center of the adjusting toothed disc (55) and a rotary shaft (57) is slidably provided in each rotary groove (56). The bottoms of the plurality of rotary shafts (57) are respectively connected to the end of one of the supporting arms (59).

4. The novel precise positioning solid-state battery fixture according to claim 1 is characterized in that: A rotating shaft is installed on the side of the clamping seat (53) and is rotatably connected to a matching gear (511) via the rotating shaft. The matching gear (511) is formed with teeth on the outside and engages with the adjusting gear disc (55).

5. The novel precise positioning solid-state battery fixture according to claim 1 is characterized in that: A support disc (512) is embedded on the upper end surface of the clamping seat (53); the support disc (512) is disc-shaped and accommodates the matching gear (511) and the adjusting gear disc (55); the solid-state battery body (6) is supported on the top of the support disc (512).