Inverted cathode conductive structure

By designing an inverted cathode conductive structure, the problem of frequent replacement of conductive bases caused by changes in material strip specifications is solved, achieving simplified adjustment of the conductive base and cost savings.

CN223780377UActive Publication Date: 2026-01-09DONGGUAN PURUIDE METALS-PLASTICS&PROD CO LTD
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Patent Information

Application Number
CN202520321696.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2026-01-09
Estimated Expiration
2035-02-27

AI Technical Summary

Technical Problem

In existing technologies, the shape, width, and thickness of the material strip require frequent replacement of the conductive base, leading to poor contact and increased production costs.

Method used

Design an inverted cathode conductive structure, including a support frame, a lifting handle, a lifting carrier plate and multiple conductive columns. The height of the conductive columns and the width of the channel can be adjusted by rotating the lifting handle to adapt to different material strip specifications.

Benefits of technology

This technology simplifies the adjustment of the conductive base and reduces production costs during the electroplating process of strips of different shapes, widths, and thicknesses.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model provides an inverted cathode conductive structure which comprises a support frame and a lifting handle installed on the support frame, a lifting carrier plate is arranged on the lifting handle, and a first conductive column and a second conductive column are arranged on the two sides of the lifting carrier plate side by side. The third conductive column is arranged at the front end of the lifting carrier plate, a material belt channel is arranged between the third conductive column and the first conductive column and between the third conductive column and the second conductive column, an adjusting handle is arranged at the lower end of the third conductive column, a conductive mounting plate is arranged at the lower end of the lifting carrier plate, and an adjusting through hole is formed in the conductive mounting plate. An adjusting handle is inserted into the adjusting through hole to be connected with the conductive mounting plate, and the lifting handle can be rotated to drive the lifting carrier plate to be adjusted up and down; the width of the material belt channel among the first conductive column, the second conductive column and the third conductive column can be adjusted by moving back and forth along the adjusting through holes, the structure is compact, adjustment is easy, different production requirements can be met, and the production cost is saved.
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Description

TECHNICAL FIELD

[0001] The utility model discloses an inverted cathode conductive structure, and belongs to the technical field of electroplating equipment. BACKGROUND

[0002] After the connector terminal is initially formed, it needs to be electroplated, so that the initially formed terminal is plated with a layer of other metal or alloy on the surface, to ensure that the performance of the connector terminal meets the requirements.

[0003] Among them, after the connector terminal is initially formed, it is in the form of a material belt or a strip material belt state into the electroplating process, when it enters the electroplating tank, the material belt is in an inverted state on the electroplating production line by the cooperation of the unwinding machine and the winding machine for traction type conveying, in this process, the material belt is in a suspended state, while the production line is provided with a conductive seat in contact with the material belt, and the material belt is kept in an electrified state by the conductive seat on both sides, and in the production process, according to the shape, width and thickness of the material belt, different specifications of conductive seat need to be replaced on the electroplating production line, otherwise the product will be defective due to poor contact between the two, but frequent replacement of the conductive seat will also increase the production cost. CONTENT OF THE UTILITY MODEL

[0004] (I) Technical problem to be solved

[0005] In view of the above-mentioned shortcomings and deficiencies of the prior art, the utility model provides an inverted cathode conductive structure, which solves the technical problem that different specifications of conductive seat need to be replaced on the electroplating production line according to the shape, width and thickness of the material belt in the production process, otherwise the product will be defective due to poor contact between the two, but frequent replacement of the conductive seat will also increase the production cost.

[0006] (II) Technical scheme

[0007] The utility model discloses an inverted cathode conductive structure, which comprises a supporting frame and a lifting handle mounted on the supporting frame, a lifting carrier plate is arranged on the lifting handle, a first conductive column, a second conductive column and a third conductive column are arranged on the lifting carrier plate, the first conductive column and the second conductive column are arranged side by side on both sides of the lifting carrier plate, the third conductive column is arranged at the front end of the lifting carrier plate and is provided with a material belt passage between the first conductive column and the second conductive column, an adjusting handle is arranged at the lower end of the third conductive column, a conductive mounting plate is arranged at the lower end of the lifting carrier plate, an adjusting through hole is arranged on the conductive mounting plate, and the adjusting handle is inserted into the adjusting through hole and connected with the conductive mounting plate.

[0008] Preferably, the support frame includes a support base, a support plate is provided at the upper end of the support base, a side guard plate is provided at the side end of the support plate, an upper horizontal plate and a lower horizontal plate are provided at the front end of the support plate, a connecting plate is provided between the upper horizontal plate and the lower horizontal plate, and the lifting handle is inserted into and passes through the upper horizontal plate.

[0009] Preferably, the lifting platform has a cross-shaped structure with strip holes on its left and right sides, and strip through holes and lifting screw holes at its front and rear ends, respectively. The lower end of the lifting platform also has an inwardly recessed mounting groove.

[0010] Preferably, the first conductive post includes a first conductive body, a first plastic ring, and a fixing screw. The first conductive body and the first plastic ring are sequentially arranged on the fixing screw from top to bottom. The lower end of the fixing screw is inserted into and passes through the lifting carrier plate and is fixed to the conductive mounting plate.

[0011] Preferably, the first conductive post and the second conductive post have the same structure, wherein the first conductive post is also connected to a conductive wire.

[0012] Preferably, the third conductive post includes an adjusting handle, a rubber wheel, a second plastic ring, and a second conductive body, wherein the adjusting handle is sequentially connected to the rubber wheel, the second plastic ring, and the second conductive body from bottom to top.

[0013] Preferably, the rubber wheel has an internal mounting through hole.

[0014] Preferably, the conductive mounting plate has a "T" shaped structure, with an adjustment through hole at the front end and mounting screw holes on the left and right sides.

[0015] (III) Beneficial Effects

[0016] When electroplating strips of different shapes, widths, and thicknesses, the lifting handle can be rotated to adjust the lifting platform up and down, allowing for the appropriate setting of the height of the first to third conductive posts according to the strip specifications. The width of the strip channel between the first, second, and third conductive posts can also be adjusted. This adjustment is achieved by loosening the adjusting handle at the lower end of the third conductive post and then moving it back and forth along the adjusting through-hole. Compared to existing technologies, this structure is compact, easy to adjust, adaptable to different production needs, and saves production costs. Attached Figure Description

[0017] The accompanying drawings are provided to further understand the technical solution of this utility model and constitute a part of the specification. They are used together with the embodiments of this utility model to explain the technical solution of this utility model, and do not constitute a limitation on the technical solution of this utility model.

[0018] Fig. 1 is an overall structure perspective view of the inverted cathode conductive structure;

[0019] Fig. 2 is an overall structure exploded view of the inverted cathode conductive structure;

[0020] Fig. 3 is another view of the overall structure of the inverted cathode conductive structure;

[0021] BRIEF DESCRIPTION OF DRAWINGS

[0022] 1, support frame; 10, support base; 11, lower cross plate; 12, side guard plate; 13, connecting plate; 14, support plate; 15, lifting screw; 16, upper cross plate; 2, lifting handle; 3, lifting load plate; 30, mounting groove; 31, strip-shaped hole; 32, strip-shaped through hole; 33, lifting screw hole; 4, first conductive column; 40, first conductor; 41, first plastic ring; 42, fixing screw; 5, second conductive column; 6, third conductive column; 60, adjusting handle; 61, rubber wheel; 62, second plastic ring; 63, second conductor; 64, mounting through hole; 65, adjusting screw; 7, conductive mounting plate; 70, adjusting through hole; 71, mounting screw hole; 8, conductive wire; 9, material belt. DETAILED DESCRIPTION

[0023] In order to make the purpose, technical scheme and advantages of the present application clearer, the present application will be further described in detail below with reference to the drawings and examples. It should be understood that the specific examples described herein are only used to explain the present application and are not used to limit the present application.

[0024] The present application will be further described in detail below with reference to the drawings and examples. Figs. 1 to 3To further describe, this utility model discloses an inverted cathode conductive structure, which includes a support frame 1 and a lifting handle 2 mounted on the support frame 1. The lifting handle 2 is provided with a lifting screw 15, which cooperates with a lifting screw hole 33 on a lifting carrier plate 3 to realize the function of rotating the lifting handle 2 to drive the lifting carrier plate 3 to adjust up and down. The lifting carrier plate 3 is provided with a first conductive post 4, a second conductive post 5, and a third conductive post 6. The first conductive post 4 and the second conductive post 5 are arranged side by side on both sides of the lifting carrier plate 3, and the third conductive post 6 is located at the front end of the lifting carrier plate 3 and interacts with the first conductive post 4 and the second conductive post 5. A material strip 9 channel is provided between the conductive posts 5 to allow the material strip 9 to pass between the first conductive post 4, the second conductive post 5, and the third conductive post 6. When passing through, the upper part of the material strip 9 contacts the aforementioned conductive posts. An adjustment handle 60 is provided at the lower end of the third conductive post 6, and a conductive mounting plate 7 is provided at the lower end of the lifting platform 3. The conductive mounting plate 7 is provided with a long strip-shaped adjustment through hole 70. The adjustment handle 60 is inserted into the adjustment through hole 70 and connected to the conductive mounting plate 7. During adjustment, the width between the material strip 9 channels can be adjusted by loosening the adjustment handle 60 at the lower end of the third conductive post 6 and then moving it back and forth along the adjustment through hole 70.

[0025] In a preferred embodiment, the support frame 1 includes a support base 10, a support plate 14 is provided at the upper end of the support base 10, a side guard plate 12 is provided at the side end of the support plate 14, an upper horizontal plate 16 and a lower horizontal plate 11 are provided at the front end of the support plate 14, a connecting plate 13 is provided between the upper horizontal plate 16 and the lower horizontal plate 11, and a lifting screw 15 provided on the lifting handle 2 is inserted into and passes through the upper horizontal plate 16.

[0026] In a preferred embodiment, the lifting platform 3 has a cross-shaped structure with strip holes 31 on its left and right sides, and strip through holes 32 and lifting screw holes 33 at its front and rear ends, respectively. The lower end of the lifting platform 3 is also provided with an inwardly recessed mounting groove 30, which is used to fit with the conductive mounting plate 7. During installation, the lifting screw 15 fits with the lifting screw hole 33, while the fixing screws 42 on the first conductive post 4 and the second conductive post 5 are inserted and pass through the strip holes 31 to fit with the mounting screw holes 71 on the conductive mounting plate 7, and the adjusting handle 60 on the third conductive post 6 is inserted and passes through the strip through hole 32.

[0027] In a preferred embodiment, the first conductive post 4 includes a first conductive body 40, a first plastic ring 41, and a fixing screw 42. The first conductive body 40 and the first plastic ring 41 are sequentially arranged on the fixing screw 42 from top to bottom. The lower end of the fixing screw 42 is inserted into and passes through the lifting carrier plate 3 and is fixed to the conductive mounting plate 7. In addition, the fixing screw 42 and the first conductive body 40 are made of metal.

[0028] In the preferred embodiment, the first conductive column 4 and the second conductive column 5 have the same structure, and the first conductive column 4 is further connected with the conductive wire 8.

[0029] In the preferred embodiment, the third conductive column 6 comprises an adjusting handle 60, a rubber wheel 61, a second plastic ring 62 and a second conductive body 63, the adjusting handle 60 is provided with an adjusting screw 65, wherein the adjusting screw 65 is made of metal, and when installed, the adjusting screw 65 on the adjusting handle 60 is inserted through the conductive mounting plate 7 and the lifting loading plate 3, and then sequentially connected with the rubber wheel 61, the second plastic ring 62 and the second conductive body 63 from bottom to top, and in addition, the second conductive body 63 is made of metal.

[0030] In the preferred embodiment, the rubber wheel 61 is internally provided with an installation through hole 64, and the adjusting screw 65 is inserted through the installation through hole 64.

[0031] In the preferred embodiment, the conductive mounting plate 7 has a "T" shape structure, and is provided with an adjusting through hole 70 at the front end and mounting screw holes 71 at the left and right sides, wherein the conductive mounting plate 7 is made of metal.

[0032] When electroplating material belts with different shapes, widths and thicknesses, the lifting handle can be rotated to drive the lifting loading plate to adjust up and down, so as to reasonably set the height of the first to third conductive columns according to the specifications of the material belt, and the width of the material belt passage between the first conductive column and the second conductive column and the third conductive column can also be adjusted, and when adjusting, the adjusting handle at the lower end of the third conductive column can be loosened, and then moved forward and backward along the adjusting through hole to adjust the width of the material belt passage between the first conductive column, the second conductive column and the third conductive column. Compared with the prior art, the structure is compact, the adjustment is simple, different production requirements can be met, and the production cost is saved.

[0033] Although the technical solutions according to the present application have been described with reference to a plurality of different embodiments, aspects and features, it is not intended to limit the scope of the present application, but modifications thereof are included within the broad scope of the foregoing disclosure, drawings and claims.

Claims

1. An inverted cathode conductive structure, comprising a support frame and a lifting handle mounted on the support frame, wherein a lifting plate is disposed on the lifting handle, and a first conductive post, a second conductive post, and a third conductive post are disposed on the lifting plate, the first and second conductive posts being arranged side by side on both sides of the lifting plate, and the third conductive post being disposed at the front end of the lifting plate and having a material belt channel between it and the first and second conductive posts, characterized in that: An adjustment handle is provided at the lower end of the third conductive column, and a conductive mounting plate is provided at the lower end of the lifting plate. An adjustment through hole is provided on the conductive mounting plate, and the adjustment handle is inserted into the adjustment through hole and connected to the conductive mounting plate.

2. The inverted cathode conductive structure according to claim 1, characterized in that: The support frame includes a support base, a support plate is provided at the upper end of the support base, a side guard plate is provided at the side end of the support plate, an upper horizontal plate and a lower horizontal plate are provided at the front end of the support plate, a connecting plate is provided between the upper horizontal plate and the lower horizontal plate, and the lifting handle is inserted into and passes through the upper horizontal plate.

3. The inverted cathode conductive structure according to claim 1, characterized in that: The lifting platform has a cross-shaped structure with strip holes on its left and right sides, and strip through holes and lifting screw holes at the front and rear ends, respectively. The lower end of the lifting platform also has an inwardly recessed mounting groove.

4. The inverted cathode conductive structure according to claim 1, characterized in that: The first conductive post includes a first conductive body, a first plastic ring, and a fixing screw. The first conductive body and the first plastic ring are sequentially arranged on the fixing screw from top to bottom. The lower end of the fixing screw is inserted into and passes through the lifting carrier plate and is fixed to the conductive mounting plate.

5. The inverted cathode conductive structure according to claim 1, characterized in that: The first conductive post and the second conductive post have the same structure, wherein the first conductive post is also connected to a conductive wire.

6. The inverted cathode conductive structure according to claim 1, characterized in that: The third conductive post includes an adjustment handle, a rubber wheel, a second plastic ring, and a second conductive body. The adjustment handle is sequentially connected to the rubber wheel, the second plastic ring, and the second conductive body from bottom to top.

7. The inverted cathode conductive structure according to claim 6, characterized in that: The rubber wheel has an installation through hole inside.

8. The inverted cathode conductive structure according to claim 1, characterized in that: The conductive mounting plate has a "T" shaped structure, with an adjustment through hole at the front end and mounting screw holes on the left and right sides.