New energy battery rack track positioning tool

By designing a new energy battery rack track positioning tool including a positioning device body, a clamp body and a limiting mechanism, the problem of the inability to adjust the track clamping angle in the prior art is solved, the stable limit of the new energy battery is achieved, and the stability of the battery is improved during angle adjustment.

CN222971532UActive Publication Date: 2025-06-13CHONGQING HELIANRUI TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421880563.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-06-13
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

The clamps of the existing new energy battery rack track cannot adjust the angle after the track is clamped, causing the new energy battery to slide out from both ends that are not fixed by the clamp when adjusting the angle, reducing stability.

Method used

A new energy battery rack track positioning tool is designed including a positioning device body, two clamp bodies and two limiting mechanisms. By driving the first and second oblique rods to rotate, the slide plate and limit plates are driven to move, and the limit and stability of the new energy battery is improved.

Benefits of technology

It effectively improves the stability of new energy batteries when adjusting the angle, prevents the battery from sliding out from both ends that are not fixed by the clamp, and enhances the applicability and flexibility of the clamp.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of battery rack track clamps, in particular to a new energy battery rack track positioning tool which comprises a positioning device body, two clamping plate bodies and two limiting mechanisms, and each limiting mechanism comprises a driving assembly, two first inclined rods, two second inclined rods, two sliding plates and two limiting plates. The driving assembly works to drive the two first inclined rods to rotate, the two first inclined rods drive the two second inclined rods to rotate, when the included angle between the two second inclined rods and the first inclined rods becomes smaller, the two second inclined rods drive the two sliding plates to get close to each other, and then the two limiting plates on the two sliding plates are driven to move towards the side close to the new energy battery; and when the angle of the new energy battery is adjusted, the two limiting plates are in contact with the new energy battery and are limited, so that the stability of the new energy battery during angle adjustment can be improved, and the problem that the new energy battery possibly slides out from the two ends which are not fixed by the clamping plates when the angle of the new energy battery is adjusted is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of battery rack track clamps, in particular to a positioning tooling for a new energy battery rack track. Background Art

[0002] When replacing a new energy battery, it is usually necessary to place it on a battery rack in a factory building. The battery rack usually moves on a track. When the track is cut or welded, a positioning tooling is required to clamp and position it to ensure the stability during processing. However, the traditional clamp for the new energy battery rack track only facilitates simple clamping operations on the track and cannot adjust the angle of the track after clamping as needed, thus reducing the applicability and flexibility in use.

[0003] Currently, the prior art (CN 220534009 U) discloses a positioning tooling for a new energy battery rack track, including: a support shell, a rotating plate, the rotating plate is arranged on the inner wall of the support shell, a driving clamping mechanism, the driving clamping mechanism is arranged on the rotating plate, the driving clamping mechanism includes a servo motor and a fixed groove, the servo motor is installed at the bottom of the rotating plate, the fixed groove is opened inside the rotating plate, the top end of the output shaft of the servo motor penetrates through the fixed groove and extends into it, and the left and right side grooves of the inner wall of the fixed groove are respectively movably connected with a forward rotation threaded rod and a reverse rotation threaded rod through bearings. Through the mutual cooperation of the servo motor, the fixed groove, the forward rotation threaded rod, the reverse rotation threaded rod, the threaded block, the clamping plate, the fixed shaft, the driving gear and the driven gear, it is convenient to position and clamp the track, thus facilitating the subsequent processing operation of the track.

[0004] In the above manner, the two clamping plates are vertical. When fixing the new energy battery, only the two ends of the battery can be fixed. When adjusting the angle of the new energy battery, the new energy battery may slide out from the two ends not fixed by the clamping plates, resulting in a reduction in the stability of the clamping plates for fixing the new energy battery. Summary of the Utility Model

[0005] The purpose of the utility model is to provide a positioning tooling for a new energy battery rack track, aiming to solve the problem that when adjusting the angle of the new energy battery, the new energy battery may slide out from the two ends not fixed by the clamping plates.

[0006] To achieve the above purpose, the utility model provides a positioning tooling for a new energy battery rack track, including a positioning device body, two clamping plate bodies and two limiting mechanisms. The limiting mechanism includes a driving component, two first inclined rods, two second inclined rods, two sliding plates and two limiting plates;

[0007] The two clamping plate bodies are arranged on one side of the positioning device body, the driving assembly is arranged on one side of the clamping plate body, the two first inclined rods are respectively arranged on one side of the driving assembly, the two second inclined rods are respectively rotatably connected to the two first inclined rods, and are both located on the side of the first inclined rod away from the driving assembly, the two sliding plates are respectively rotatably connected to the two second inclined rods, and are both located on the side of the second inclined rod away from the first inclined rod, and the two limiting plates are respectively fixedly connected to the two sliding plates, and are both located on the side of the sliding plate away from the second inclined rod.

[0008] Wherein, the driving assembly includes a motor, a rotating shaft and a transmission disc. The motor is fixedly connected to the clamping plate body and is located on one side of the clamping plate body. The rotating shaft is fixedly connected to the output end of the motor and is rotatably connected to the clamping plate body. The transmission disc is fixedly connected to the rotating shaft and is fixedly connected to the two first inclined rods.

[0009] Wherein, the limiting mechanism further includes two sliding rods and a plurality of sliding cylinders. The two sliding rods are respectively fixedly connected to the clamping plate body and are both located inside the clamping plate body. The plurality of sliding cylinders are respectively slidably connected to the two sliding rods and are respectively fixedly connected to the two sliding plates.

[0010] Wherein, the limiting mechanism further includes two rotating rods and two abutting plates. The two rotating rods are respectively threadedly connected to the two limiting plates and respectively penetrate through the two limiting plates. The two abutting plates are respectively rotatably connected to the two rotating rods and are both located on one side of the rotating rods.

[0011] Wherein, the limiting mechanism further includes two guide rods and two baffle plates. The two guide rods are respectively fixedly connected to the two abutting plates and respectively penetrate through the two limiting plates and are respectively slidably connected to the two limiting plates. The two baffle plates are respectively fixedly connected to the two guide rods and are both located on the side of the two guide rods away from the abutting plates.

[0012] Wherein, the limiting mechanism further includes two knobs and two friction pads. The two knobs are respectively fixedly connected to the two rotating rods and are both located on the side of the rotating rods away from the abutting plates. The two friction pads are respectively fixedly connected to the two abutting plates and are both located on the side of the abutting plates away from the rotating rods.

[0013] A new energy battery rack track positioning tooling of the present utility model. The positioning device body provides an installation condition for the two clamping plate bodies, and the two clamping plate bodies provide an installation condition for the two limiting mechanisms. The positioning device body cooperates with the two clamping plate bodies to position the battery. After the two clamping plate bodies clamp the new energy battery, start the driving component. The driving component works to drive the two first inclined rods to rotate, and the two first inclined rods drive the two second inclined rods to rotate. When the included angle between the two second inclined rods and the first inclined rods becomes smaller, the two second inclined rods drive the two sliding plates to approach each other, and then drive the two limiting plates on the two sliding plates to move towards the side close to the new energy battery until the two limiting plates contact the new energy battery and limit it, which can improve the stability of the new energy battery when adjusting the angle, thus solving the problem that the new energy battery may slide out from the two ends that are not fixed by the clamping plates when adjusting the angle of the new energy battery. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art.

[0015] Figure 1 It is a schematic structural diagram of a new energy battery rack track positioning tooling according to the first embodiment of the present utility model.

[0016] Figure 2 It is a cross-sectional view of a new energy battery rack track positioning tooling according to the first embodiment of the present utility model.

[0017] Figure 3 It is a schematic structural diagram of a new energy battery rack track positioning tooling according to the second embodiment of the present utility model.

[0018] 101 - positioning device body, 102 - clamping plate body, 103 - limiting mechanism, 104 - driving component, 105 - first inclined rod, 106 - second inclined rod, 107 - sliding plate, 108 - limiting plate, 109 - sliding rod, 110 - sliding cylinder, 111 - rotating rod, 112 - abutting plate, 113 - guide rod, 114 - baffle, 115 - motor, 116 - rotating shaft, 117 - transmission disc, 201 - knob, 202 - friction pad. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0019] The first embodiment of the present application is as follows:

[0020] Please refer to Figure 1 - Figure 2 , Figure 1 which is a schematic structural diagram of a new energy battery rack track positioning tooling, Figure 2 and is a cross-sectional view of a new energy battery rack track positioning tooling.

[0021] The utility model provides a track positioning tooling for a new energy battery rack, which comprises a positioning device body 101, two clamping plate bodies 102 and two limiting mechanisms 103. The limiting mechanism 103 comprises a driving component 104, two first inclined rods 105, two second inclined rods 106, two sliding plates 107, two limiting plates 108, two sliding rods 109, a plurality of sliding cylinders 110, two rotating rods 111, two abutting plates 112, two guide rods 113 and two baffle plates 114. The driving component 104 comprises a motor 115, a rotating shaft 116 and a transmission disc 117. By the foregoing solution, the problem that when adjusting the angle of the new energy battery, the new energy battery may slide out from the two ends not fixed by the clamping plates is solved. It can be understood that the foregoing solution can be used in the scenario of limiting the new energy battery, and can also be used to solve the problem that the movement of the two sliding plates 107 is unstable.

[0022] For this specific embodiment, the two splint bodies 102 are arranged on one side of the positioning device body 101, the driving assembly 104 is arranged on one side of the splint body 102, the two first inclined rods 105 are respectively arranged on one side of the driving assembly 104, the two second inclined rods 106 are respectively rotatably connected to the two first inclined rods 105, and are both located on the side of the first inclined rod 105 away from the driving assembly 104. The two sliding plates 107 are respectively rotatably connected to the two second inclined rods 106, and are both located on the side of the second inclined rod 106 away from the first inclined rod 105. The two limiting plates 108 are respectively fixedly connected to the two sliding plates 107, and are both located on the side of the sliding plate 107 away from the second inclined rod 106. The positioning device body 101 is a "support shell, a rotating plate, the rotating plate is arranged on the inner wall of the support shell, a driving clamping mechanism, the driving clamping mechanism is arranged on the rotating plate, the driving clamping mechanism includes a servo motor and a fixed groove, the servo motor is installed at the bottom of the rotating plate, the fixed groove is opened inside the rotating plate, the top end of the output shaft of the servo motor penetrates through the fixed groove and extends into its interior, and the left and right sides of the inner wall of the fixed groove are respectively movably connected with a forward rotation threaded rod and a reverse rotation threaded rod through bearings" as described in the prior art. The positioning device body 101 provides an installation condition for the two splint bodies 102, and the two splint bodies 102 provide an installation condition for the two limiting mechanisms 103. The positioning device body 101 cooperates with the two splint bodies 102 to position the new energy battery. When the driving assembly 104 works, it can drive the two first inclined rods 105 to rotate. The rotation of the two first inclined rods 105 can drive the two second inclined rods 106 to rotate. When the included angle between the two second inclined rods 106 and the first inclined rod 105 becomes smaller, the two second inclined rods 106 drive the two sliding plates 107 to approach each other. When the included angle between the two second inclined rods 106 and the first inclined rod 105 becomes larger, the two second inclined rods 106 drive the two sliding plates 107 to move away from each other. The two sliding plates 107 provide an installation condition for the two limiting plates 108, and the new energy battery 115 can be limited by the two limiting plates 108.

[0023] Among them, the motor 115 is fixedly connected to the splint body 102 and is located on one side of the splint body 102. The rotating shaft 116 is fixedly connected to the output end of the motor 115 and is rotatably connected to the splint body 102. The transmission disc 117 is fixedly connected to the rotating shaft 116 and is fixedly connected to the two first inclined rods 105. When the motor 115 operates, it can drive the rotating shaft 116 to rotate. When the rotating shaft 116 rotates, it can drive the transmission disc 117 to rotate forward or backward. When the transmission disc 117 rotates, it can drive the two first inclined rods 105 to rotate.

[0024] Secondly, the two sliding rods 109 are respectively fixedly connected to the splint body 102 and are both located inside the splint body 102. A plurality of sliding cylinders 110 are respectively slidably connected to the two sliding rods 109 and are respectively fixedly connected to the two sliding plates 107. The two sliding rods 109 provide installation conditions for the plurality of sliding cylinders 110. Through the plurality of sliding cylinders 110, the two sliding plates 107 can be guided and limited.

[0025] At the same time, the two rotating rods 111 are respectively threadedly connected to the two limiting plates 108 and respectively penetrate through the two limiting plates 108. The two abutting plates 112 are respectively rotatably connected to the two rotating rods 111 and are both located on one side of the rotating rods 111. Rotating the two rotating rods 111 can drive the two abutting plates 112 to move. Through the two abutting plates 112, the new energy battery can be longitudinally abutted, improving the stability when limiting the new energy battery.

[0026] In addition, the two guide rods 113 are respectively fixedly connected to the two abutting plates 112 and respectively penetrate through the two limiting plates 108 and are respectively slidably connected to the two limiting plates 108. The two baffle plates 114 are respectively fixedly connected to the two guide rods 113 and are both located on the side of the two guide rods 113 away from the abutting plates 112. When the limiting plates 108 move, they drive the two guide rods 113 to slide on the limiting plates 108. Through the guide rods 113, the two limiting plates 108 can be guided, improving the stability when the two limiting plates 108 move. Through the two baffle plates 114, the two guide rods 113 can be limited to prevent the two guide rods 113 from moving out of the preset range.

[0027] After clamping the new energy battery with the two splint bodies 102, start the motor 115. The motor 115 drives the rotation of the rotating shaft 116 when it works. The rotating shaft 116 drives the rotation of the transmission disc 117. The transmission disc 117 drives the rotation of the two first inclined rods 105. The two first inclined rods 105 drive the rotation of the two second inclined rods 106. When the included angle between the two second inclined rods 106 and the first inclined rods 105 becomes smaller, the two second inclined rods 106 drive the two sliding plates 107 to approach each other, and then drive the two limiting plates 108 on the two sliding plates 107 to move toward the side close to the new energy battery until the two limiting plates 108 contact the new energy battery 115 and limit it, which can improve the stability of the new energy battery when adjusting the angle, thus solving the problem that the new energy battery may slide out from the two ends not fixed by the splints when adjusting the angle of the new energy battery.

[0028] The second embodiment of this application is:

[0029] Please refer to Figure 3 , Figure 3 which is a structural schematic diagram of a track positioning tooling for a new energy battery rack.

[0030] On the basis of the first embodiment, for a track positioning tooling of a new energy battery rack of the present utility model, the limiting mechanism 103 further includes two knobs 201 and two friction pads 202.

[0031] For this specific embodiment, the two knobs 201 are respectively fixedly connected to the two rotating rods 111, and are both located on the side of the rotating rod 111 away from the abutting plate 112. The two friction pads 202 are respectively fixedly connected to the two abutting plates 112, and are both located on the side of the abutting plate 112 away from the rotating rod 111. By holding and rotating the two knobs 201, the two rotating rods 111 can be driven to rotate. The friction between the two abutting plates 112 can be increased through the two friction pads 202, thereby improving the stability when abutting against the new energy battery.

[0032] By holding and rotating the two knobs 201, the two rotating rods 111 can be driven to rotate. The friction between the two abutting plates 112 can be increased through the two friction pads 202, thereby improving the stability when abutting against the new energy battery.

[0033] What is disclosed above is only one or more preferred embodiments of this application, and the scope of rights of this application cannot be limited thereby. Those of ordinary skill in the art can understand all or part of the processes of implementing the above embodiments, and the equivalent changes made according to the claims of this application still fall within the scope covered by this application.

Claims

1. A new energy battery rack rail positioning tool, comprising a positioning device body and two clamping plate bodies, wherein the two clamping plate bodies are arranged on one side of the positioning device body, characterized in that: It also includes two limiting mechanisms, which include a driving assembly, two first inclined rods, two second inclined rods, two slide plates and two limiting plates; The driving assembly is arranged on one side of the clamping plate body, the two first oblique rods are respectively arranged on one side of the driving assembly, the two second oblique rods are respectively rotatably connected to the two first oblique rods, and are both located on the side of the first oblique rod away from the driving assembly, the two slides are respectively rotatably connected to the two second oblique rods, and are both located on the side of the second oblique rod away from the first oblique rod, and the two limit plates are respectively fixedly connected to the two slides, and are both located on the side of the slide away from the second oblique rod.

2. A new energy battery rack track positioning tool as claimed in claim 1, characterized in that: The driving assembly includes a motor, a rotating shaft and a transmission plate. The motor is fixedly connected to the splint body and is located on one side of the splint body. The rotating shaft is fixedly connected to the output end of the motor and is rotatably connected to the splint body. The transmission plate is fixedly connected to the rotating shaft and is fixedly connected to the two first diagonal rods.

3. A new energy battery rack track positioning tool as described in claim 2, characterized in that: The limiting mechanism also includes two sliding rods and multiple sliding cylinders. The two sliding rods are respectively fixedly connected to the clamping plate body and are both located in the clamping plate body. The multiple sliding cylinders are respectively slidably connected to the two sliding rods and are respectively fixedly connected to the two sliding plates.

4. A new energy battery rack track positioning tool as described in claim 3, characterized in that: The limiting mechanism also includes two rotating rods and two abutment plates. The two rotating rods are respectively threadedly connected to the two limiting plates and respectively penetrate the two limiting plates. The two abutment plates are respectively rotatably connected to the two rotating rods and are both located on one side of the rotating rod.

5. A new energy battery rack track positioning tool as claimed in claim 4, characterized in that: The limiting mechanism also includes two guide rods and two baffles. The two guide rods are respectively fixedly connected to the two supporting plates, respectively penetrate the two limiting plates, and are respectively slidably connected to the two limiting plates. The two baffles are respectively fixedly connected to the two guide rods, and are both located on the side of the two guide rods away from the supporting plates.

6. A new energy battery rack track positioning tool as claimed in claim 5, characterized in that: The limiting mechanism also includes two knobs and two friction pads. The two knobs are respectively fixedly connected to the two rotating rods and are both located on the side of the rotating rod away from the supporting plate. The two friction pads are respectively fixedly connected to the two supporting plates and are both located on the side of the supporting plate away from the rotating rod.

Citation Information

Patent Citations

  • New energy battery rack track positioning tool

    CN220534009U