New energy battery tray electrophoresis multidirectional adjusting type suspension structure

By designing a multi-directional adjustment suspension structure, using driving components such as driving motors and rotating motors to achieve multi-directional adjustment of the battery tray, the problem that the existing suspension structure cannot adjust the angle and position of the pallets is solved, and the efficiency and effect of electrophoretic processing are improved.

CN222990249UActive Publication Date: 2025-06-17CHONGQING BOYAN AUTO PARTS MFG CO LTD
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Patent Information

Application Number
CN202421786874.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-06-17
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

The existing suspension structure cannot adjust the suspension angle and position of the battery tray according to actual operation, resulting in the inability to maintain a specific angle or position for better electrophoresis processing.

Method used

A new energy battery tray electrophoretic multi-directional adjustment suspension structure is designed, including a chuck, a mounting plate and a adjustment component. By driving motors, rotating motors, swing motors, mobile motors and adjustment motors, multi-directional adjustment of the pallets is achieved.

Benefits of technology

It realizes flexible adjustment of the matching position and angle of the tray, ensuring that the tray is in the best state during the electrophoresis process, and improving the efficiency and effect of electrophoresis processing.

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Abstract

The utility model relates to the technical field of suspension structures, in particular to a new energy battery tray electrophoresis multi-direction adjusting type suspension structure which comprises a chuck, a mounting plate and an adjusting assembly, and the chuck is mounted on one side of the mounting plate; the adjusting assembly comprises a rotating shaft, a rotating frame, a swing frame, a lifting support, a connecting frame, a driving component, an extending component and a supporting component. The rotating shaft is fixedly connected with the mounting plate, the rotating frame is rotationally connected with the rotating shaft, the swing frame is rotationally connected with the rotating frame, the lifting support is rotationally connected with the swing frame, the connecting frame is connected with the lifting support through the stretching component, the driving component is connected with the rotating frame, the stretching component is connected with the lifting support, and the supporting component is connected with the connecting frame. The matching position and angle of the tray can be flexibly adjusted through the arranged components according to the actual requirements of operators, and therefore it is guaranteed that the tray is kept in the optimal state in the electrophoresis process.
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Description

Technical Field

[0001] The utility model relates to the technical field of suspension structures, in particular to an electrophoresis multi-directional adjustable suspension structure for a new energy battery tray. Background Art

[0002] The electrophoresis process is a process in which charged particles migrate directionally in a solution or dispersion system under the action of an externally applied electric field and are deposited on the electrode surface or other specific positions. When the electrophoresis process is used to process the battery tray, a suspension structure is generally required to support and place the tray to ensure the stability of the corresponding mating parts during the electrophoresis process.

[0003] However, in the above-mentioned method, when mounting the battery tray and subsequent mating, since most of the existing suspension structures can only drive the workpiece to vertically descend to cooperate with the electrophoresis processing equipment, and cannot adjust the suspension angle of the tray according to the actual operation situation, it is impossible to keep the tray at a specific angle or position for better electrophoresis processing. Summary of the Utility Model

[0004] The purpose of the utility model is to provide an electrophoresis multi-directional adjustable suspension structure for a new energy battery tray, which can flexibly adjust the mating position and angle of the tray according to the actual needs of the operator through the provided components, so as to ensure that the tray maintains the best state during the electrophoresis process.

[0005] To achieve the above purpose, the utility model provides an electrophoresis multi-directional adjustable suspension structure for a new energy battery tray, including a chuck and a mounting plate. The chuck is installed on one side of the mounting plate, and further includes an adjustment component;

[0006] The adjustment component includes a rotating shaft, a rotating frame, a swinging frame, a lifting bracket, a connecting frame, a driving component, an extending component and a supporting component; the rotating shaft is fixedly connected to the mounting plate and is located on one side of the mounting plate, the rotating frame is rotatably connected to the rotating shaft and is located on one side of the rotating shaft, the swinging frame is rotatably connected to the rotating frame and is located on one side of the rotating frame, the lifting bracket is rotatably connected to the swinging frame and is located on one side of the swinging frame, the connecting frame is connected to the lifting bracket through the extending component and is located on one side of the lifting bracket, the driving component is connected to the rotating frame, the extending component is connected to the lifting bracket, and the supporting component is connected to the connecting frame.

[0007] Among them, the driving member includes a driving shaft, a transmission belt, a driving motor, a rotating motor, a swinging motor, and a lifting component. The driving shaft is rotatably connected to the rotating frame and is located on one side of the rotating frame; both sides of the transmission belt are sleeved on the driving shaft and the rotating shaft respectively; the output shaft of the driving motor is connected to the driving shaft, and the driving motor is fixedly installed on one side of the rotating frame; the output shaft of the rotating motor is connected to the rotating frame, and the rotating motor is fixedly installed on one side of the swinging frame; the output shaft of the swinging motor is connected to the swinging frame, and the swinging motor is fixedly installed on one side of the lifting bracket; the lifting component is connected to the lifting bracket.

[0008] Among them, the extending member includes an extending frame, a moving frame, an adjusting screw, an adjusting motor, a moving screw, and a moving motor. The extending frame is slidably connected to the connecting frame and is located on one side of the connecting frame; the moving frame is slidably connected to the lifting bracket and is slidably installed on one side of the extending frame; the adjusting screw is threadedly connected to the extending frame and is rotatably installed on one side of the connecting frame; the output shaft of the adjusting motor is connected to the adjusting screw, and the adjusting motor is fixedly installed on one side of the connecting frame; the moving screw is threadedly connected to the moving frame and is rotatably installed on one side of the extending frame; the output shaft of the moving motor is connected to the moving screw, and the moving motor is fixedly installed on one side of the extending frame.

[0009] Among them, the lifting component includes a fixed toothed belt, a driving gear, and a driving motor. The fixed toothed belt is fixedly connected to the lifting bracket and is located on one side of the lifting bracket; the driving gear meshes with the fixed toothed belt and is rotatably installed on one side of the moving frame; the output shaft of the driving motor is connected to the driving gear, and the driving motor is fixedly installed on one side of the moving frame.

[0010] Among them, the supporting member includes a rotating bracket, a supporting bottom plate, a jacking cylinder, and a rotating motor. The rotating bracket is slidably installed on the connecting frame; the supporting bottom plate is rotatably installed at the bottom of the rotating bracket; the output end of the jacking cylinder is connected to the connecting frame, and the jacking cylinder is fixedly installed on one side of the rotating bracket; the output shaft of the rotating motor is connected to the rotating bracket, and the rotating motor is fixedly installed on one side of the supporting bottom plate.

[0011] A multi-directionally adjustable suspension structure for electrophoresis of a new energy battery tray of the present utility model clamps and fixes the tray to be processed through the chuck. Then, the operator can drive the rotating shaft according to the actual situation by means of the driving motor, the driving shaft and the transmission belt, so as to drive the mounting plate and the tray fixed on the chuck, thereby completing the adjustment of the vertical angle of the tray. At the same time, the operator can also drive the rotating frame and the swinging frame through the rotating motor and the swinging motor respectively, so that the placement angle of the tray can be adjusted in multiple directions flexibly. Moreover, the operator can also drive the extending frame and the moving frame through the moving motor and the adjusting motor in cooperation with the corresponding screw rods to complete the adjustment of the matching position of the tray. Finally, the lifting bracket can be driven through the driving motor in cooperation with the driving gear and the fixed toothed belt to complete the adjustment of the matching height of the tray. The above adjustment methods do not have a specific adjustment sequence and steps, and the user can adjust according to the actual situation, realizing the flexible adjustment of the matching position and angle of the tray according to the actual needs of the operator through the provided components, so as to ensure that the tray maintains the best state during the electrophoresis process. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] 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.

[0013] Figure 1 FIG. 1 is a schematic structural diagram of the overall multi-directionally adjustable suspension structure for electrophoresis of a new energy battery tray according to the first embodiment of the present utility model.

[0014] Figure 2 FIG. 2 is a schematic structural diagram of the installation of the moving frame according to the first embodiment of the present utility model.

[0015] Figure 3 FIG. 3 is a schematic sectional view of the rotating frame according to the first embodiment of the present utility model.

[0016] Figure 4 FIG. 4 is a schematic structural diagram of the overall multi-directionally adjustable suspension structure for electrophoresis of a new energy battery tray according to the second embodiment of the present utility model.

[0017] In the figure: 101 - chuck, 102 - mounting plate, 103 - rotating shaft, 104 - rotating frame, 105 - swinging frame, 106 - lifting bracket, 107 - connecting frame, 108 - driving shaft, 109 - transmission belt, 110 - driving motor, 111 - rotating motor, 112 - swinging motor, 113 - extending frame, 114 - moving frame, 115 - adjusting screw, 116 - adjusting motor, 117 - moving screw, 118 - moving motor, 119 - fixed toothed belt, 120 - driving gear, 121 - driving motor, 201 - rotating bracket, 202 - supporting bottom plate, 203 - lifting cylinder, 204 - rotating motor. Detailed implementation manners

[0018] The embodiments of the present utility model will be described in detail below. The examples of the embodiments are shown in the drawings. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present utility model, but should not be construed as a limitation to the present utility model.

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

[0020] Please refer to Figures 1 to 3 , in which Figure 1 is a schematic structural diagram of the overall structure of the multi-directionally adjustable suspension structure for the electrophoresis of new energy battery trays, Figure 2 is a schematic installation structure diagram of the moving frame 114, Figure 3 is a schematic sectional structure diagram of the rotating frame 104.

[0021] The present utility model provides a multi-directionally adjustable suspension structure for the electrophoresis of new energy battery trays: including a chuck 101, a mounting plate 102 and an adjusting assembly. The adjusting assembly includes a rotating shaft 103, a rotating frame 104, a swinging frame 105, a lifting bracket 106, a connecting frame 107, a driving member, an extending member and a supporting member. The driving member includes a driving shaft 108, a transmission belt 109, a driving motor 110, a rotating motor 111, a swinging motor 112 and a lifting component. The extending member includes an extending frame 113, a moving frame 114, an adjusting screw 115, an adjusting motor 116, a moving screw 117 and a moving motor 118. The lifting component includes a fixed toothed belt 119, a driving gear 120 and a driving motor 121. Through the foregoing solution, when mounting the battery tray and subsequent cooperation, since most of the existing suspension structures can only drive the workpiece to descend vertically to cooperate with the electrophoresis processing equipment, and cannot adjust the suspension angle of the tray according to the actual operation situation, resulting in the problem that the tray cannot maintain a specific angle or position for better electrophoresis processing.

[0022] In this embodiment, the chuck 101 is installed on one side of the mounting plate 102. The chuck 101 is an existing clamping mechanism for clamping and fixing a battery tray. The chuck 101 is fixedly installed on the mounting plate 102 by bolts. By using the bolt assembly method to install the chuck 101, it is convenient for users to replace different types of chucks 101 more flexibly according to the actual size of the tray for clamping and fixing.

[0023] Among them, the rotating shaft 103 is fixedly connected to the mounting plate 102 and is located on one side of the mounting plate 102. The rotating frame 104 is rotatably connected to the rotating shaft 103 and is located on one side of the rotating shaft 103. The swinging frame 105 is rotatably connected to the rotating frame 104 and is located on one side of the rotating frame 104. The lifting bracket 106 is rotatably connected to the swinging frame 105 and is located on one side of the swinging frame 105. The connecting frame 107 is connected to the lifting bracket 106 through the extension member and is located on one side of the lifting bracket 106. The driving member is connected to the rotating frame 104, the extension member is connected to the lifting bracket 106, and the supporting member is connected to the connecting frame 107. The mounting plate 102 is rotatably installed on one side of the rotating frame 104 through the provided rotating shaft 103. The rotating frame 104 is rotatably provided at the bottom of the swinging frame 105, and the swinging frame 105 is rotatably installed on the side boss of the lifting bracket 106 through the side boss, so that when the user actually operates, the rotation of the rotating shaft 103 can drive the workpiece on the mounting plate 102 and the chuck 101 to rotate. Then, the rotation of the rotating frame 104 on the swinging frame 105 and the rotation of the swinging frame 105 on the lifting bracket 106 complete the compound angle adjustment of the workpiece, making the adjustment of the workpiece matching angle more flexible.

[0024] Secondly, the driving shaft 108 is rotatably connected to the rotating frame 104 and is located on one side of the rotating frame 104; both sides of the transmission belt 109 are sleeved on the driving shaft 108 and the rotating shaft 103 respectively; the output shaft of the driving motor 110 is connected to the driving shaft 108, and the driving motor 110 is fixedly installed on one side of the rotating frame 104; the output shaft of the rotating motor 111 is connected to the rotating frame 104, and the rotating motor 111 is fixedly installed on one side of the swinging frame 105; the output shaft of the swinging motor 112 is connected to the swinging frame 105, and the swinging motor 112 is fixedly installed on one side of the lifting bracket 106; the lifting component is connected to the lifting bracket 106, and the driving shaft 108 and the rotating shaft 103 are connected by the transmission belt 109. The output shaft of the driving motor 110 is fixed to the driving shaft 108, so that the user can drive the driving shaft 108 through the driving motor 110, and then drive the rotating shaft 103 and the mounting plate 102 to rotate through the transmission belt 109. By adopting the transmission mode of the transmission belt 109, the installation position of the driving motor 110 can be moved up as much as possible to avoid interference between the installation position of the motor and the working area of the electrophoresis processing mechanism during subsequent workpiece processing. At the same time, the user can also replace the rotating shaft 103 and the driving shaft 108 with gear shafts according to the actual situation, and then replace the transmission belt 109 with a toothed chain to ensure the smoothness of transmission. The output shafts of the driving motor 110, the rotating motor 111 and the swinging motor 112 are respectively fixed to the corresponding drive frames, so that the corresponding frames can be driven to rotate by the corresponding motors.

[0025] Meanwhile, the extension frame 113 is slidably connected to the connecting frame 107 and is located on one side of the connecting frame 107; the moving frame 114 is slidably connected to the lifting bracket 106 and is slidably mounted on one side of the extension frame 113; the adjusting screw 115 is threadedly connected to the extension frame 113 and is rotatably mounted on one side of the connecting frame 107; the output shaft of the adjusting motor 116 is connected to the adjusting screw 115, and the adjusting motor 116 is fixedly mounted on one side of the connecting frame 107; the moving screw 117 is threadedly connected to the moving frame 114 and is rotatably mounted on one side of the extension frame 113; the output shaft of the moving motor 118 is connected to the moving screw 117, and the moving motor 118 is fixedly mounted on one side of the extension frame 113. The extension frame 113 is slidably arranged on the connecting frame 107, and the moving frame 114 is also slidably mounted on the extension frame 113. The lifting bracket 106 is slidably mounted on the side of the moving frame 114. The adjusting screw 115 and the moving screw 117 respectively match the threaded holes of the convex platform on the side of the extension frame 113 and the convex platform inside the moving frame 114. The output shafts of the adjusting motor 116 and the moving motor 118 are respectively fixed to the adjusting screw 115 and the moving screw 117, enabling the user to drive the corresponding screws through the cooperation of the adjusting motor 116 and the moving motor 118 to drive the extension frame 113 and the moving frame 114, so as to achieve two overall telescopic movements, thereby increasing the overall adjustment range.

[0026] In addition, the fixed toothed belt 119 is fixedly connected to the lifting bracket 106 and is located on one side of the lifting bracket 106; the driving gear 120 meshes with the fixed toothed belt 119 and is rotatably mounted on one side of the moving frame 114; the output shaft of the driving motor 121 is connected to the driving gear 120, and the driving motor 121 is fixedly mounted on one side of the moving frame 114. The fixed toothed belt 119 is fixedly arranged on the side of the lifting bracket 106. The fixed toothed belt 119 cooperates with the driving gear 120, and the driving gear 120 is fixed to the output shaft of the driving motor 121. When the driving motor 121 drives the driving gear 120 to rotate, the fixed toothed belt 119 can be driven by the driving gear 120 to move together with the lifting bracket 106, thereby completing the corresponding driving of the lifting bracket 106.

[0027] When a multi-directionally adjustable suspension structure for electrophoretic coating of a new energy battery tray in this embodiment is in use, the tray to be processed is clamped and fixed by the chuck 101. Then, the operator can drive the rotating shaft 103 according to the actual situation through the driving motor 110, the driving shaft 108 and the transmission belt 109, so as to drive the mounting plate 102 and the tray fixed on the chuck 101 to complete the adjustment of the vertical angle of the tray. At the same time, the operator can also drive the rotating frame 104 and the swinging frame 105 through the rotating motor 111 and the swinging motor 112 respectively, so as to flexibly adjust the placement angle of the tray in multiple directions. Moreover, the operator can also drive the extending frame 113 and the moving frame 114 through the moving motor 118 and the adjusting motor 116 in cooperation with the corresponding screw rods to complete the adjustment of the matching position of the tray. Finally, the operator can drive the lifting bracket 106 through the driving motor 121, the driving gear 120 and the fixed toothed belt 119 to complete the adjustment of the matching height of the tray. The above adjustment methods do not have a specific adjustment sequence and steps, and the user can adjust according to the actual situation, realizing the flexible adjustment of the matching position and angle of the tray according to the actual needs of the operator through the provided components, so as to ensure that the tray maintains the best state during the electrophoretic coating process.

[0028] Second Embodiment:

[0029] Please refer to Figure 4 , Figure 4 which is a schematic diagram of the overall structure of the multi-directionally adjustable suspension structure for electrophoretic coating of a new energy battery tray in the second embodiment. The supporting components provided by the present invention include a rotating bracket 201, a supporting bottom plate 202, a jacking cylinder 203 and a rotating motor 204.

[0030] Among them, the rotating bracket 201 is slidably installed on the connecting frame 107; the supporting bottom plate 202 is rotatably installed at the bottom of the rotating bracket 201; the output end of the lifting cylinder 203 is connected to the connecting frame 107, and the lifting cylinder 203 is fixedly installed on one side of the rotating bracket 201; the output shaft of the rotating motor 204 is connected to the rotating bracket 201, and the rotating motor 204 is fixedly installed on one side of the supporting bottom plate 202. The connecting frame 107 is slidably arranged on the rotating bracket 201 through a connecting support platform provided at the bottom. The rotating bracket 201 is rotatably installed on the supporting bottom plate 202. The supporting bottom plate 202 can be fixedly arranged on the corresponding operation platform or the ground according to the actual operation situation. The output end of the lifting cylinder 203 is fixed to the connecting frame 107, and the output shaft of the rotating motor 204 is fixed to the rotating bracket 201, so that the user can drive the connecting frame 107 through the lifting cylinder 203 to adjust the height of the connecting frame 107. At the same time, the rotating bracket 201 is driven by the rotating motor 204 to adjust the overall angle of the rotating bracket 201 and the mechanism installed above the rotating bracket 201.

[0031] When using the multi-directionally adjustable suspension structure for electrophoresis of a new energy battery tray in this embodiment, the device can be supported by the provided supporting bottom plate 202, and then the matching height of the connecting frame 107 can be adjusted by the lifting cylinder 203. At the same time, the rotation angle of the rotating bracket 201 can be adjusted by the rotating motor 204, so as to facilitate the user to expand the entire adjustment range through the corresponding components, enabling the user to more flexibly and conveniently adjust the matching angle and position of the tray during actual operation, greatly enhancing the practicability of the entire device.

[0032] The above-disclosed are only one or more preferred embodiments of the present application, and the scope of rights of the present application cannot be limited thereby. Those of ordinary skill in the art can understand the entire or partial processes of implementing the above embodiments, and the equivalent changes made according to the claims of the present application still fall within the scope covered by the present application.

Claims

1. A multi-directional adjustable suspension structure for electrophoresis of a new energy battery tray, comprising a clamping plate and a mounting plate, wherein the clamping plate is mounted on one side of the mounting plate, characterized in that: Also included are adjustment components; The adjusting assembly includes a rotating shaft, a rotating frame, a swing frame, a lifting bracket, a connecting frame, a driving member, an extending member and a supporting member; the rotating shaft is fixedly connected to the mounting plate and is located on one side of the mounting plate, the rotating frame is rotatably connected to the rotating shaft and is located on one side of the rotating shaft, the swing frame is rotatably connected to the rotating frame and is located on one side of the rotating frame, the lifting bracket is rotatably connected to the swing frame and is located on one side of the swing frame, the connecting frame is connected to the lifting bracket through the extending member and is located on one side of the lifting bracket, the driving member is connected to the rotating frame, the extending member is connected to the lifting bracket, and the supporting member is connected to the connecting frame.

2. The electrophoresis multi-directional adjustable suspension structure of the new energy battery tray according to claim 1 is characterized in that: The driving component includes a driving shaft, a transmission belt, a driving motor, a rotating motor, a swing motor and a lifting component. The driving shaft is rotatably connected to the rotating frame and is located on one side of the rotating frame; the two sides of the transmission belt are respectively sleeved on the driving shaft and the rotating shaft; the output shaft of the driving motor is connected to the driving shaft, and the driving motor is fixedly installed on one side of the rotating frame; the output shaft of the rotating motor is connected to the rotating frame, and the rotating motor is fixedly installed on one side of the swing frame; the output shaft of the swing motor is connected to the swing frame, and the swing motor is fixedly installed on one side of the lifting bracket; the lifting component is connected to the lifting bracket.

3. The electrophoresis multi-directional adjustable suspension structure of the new energy battery tray according to claim 2 is characterized in that: The extending member includes an extending frame, a moving frame, an adjusting screw, an adjusting motor, a moving screw and a moving motor. The extending frame is slidably connected to the connecting frame and is located on one side of the connecting frame; the moving frame is slidably connected to the lifting frame and is slidably installed on one side of the extending frame; the adjusting screw is threadedly connected to the extending frame and is rotatably installed on one side of the connecting frame; the output shaft of the adjusting motor is connected to the adjusting screw, and the adjusting motor is fixedly installed on one side of the connecting frame; the moving screw is threadedly connected to the moving frame and is rotatably installed on one side of the extending frame; the output shaft of the moving motor is connected to the moving screw, and the moving motor is fixedly installed on one side of the extending frame.

4. The electrophoresis multi-directional adjustable suspension structure of the new energy battery tray according to claim 3 is characterized in that: The lifting component includes a fixed toothed belt, a driving gear and a driving motor. The fixed toothed belt is fixedly connected to the lifting bracket and is located on one side of the lifting bracket; the driving gear is meshed with the fixed toothed belt and is rotatably installed on one side of the mobile frame; the output shaft of the driving motor is connected to the driving gear, and the driving motor is fixedly installed on one side of the mobile frame.

5. The electrophoresis multi-directional adjustable suspension structure of the new energy battery tray according to claim 1 is characterized in that: The supporting structure includes a rotating bracket, a supporting base plate, a lifting cylinder and a rotating motor. The rotating bracket is slidably installed on the connecting frame; the supporting base plate is rotatably installed at the bottom of the rotating bracket; the output end of the lifting cylinder is connected to the connecting frame, and the lifting cylinder is fixedly installed on one side of the rotating bracket; the output shaft of the rotating motor is connected to the rotating bracket, and the rotating motor is fixedly installed on one side of the supporting base plate.