Cathode roller titanium cylinder machining tool

By designing a machining fixture for the cathode roller titanium cylinder, the inconvenience of operation during the cathode roller coating process was solved, enabling rapid coating adhesion and stable fixation, thus improving processing efficiency and adaptability.

CN223747884UActive Publication Date: 2026-01-02SHANGHAI ZHAOSHENG ELECTROMECHANICAL EQUIP CO LTD
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Patent Information

Application Number
CN202423271670.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-27
Publication Date
2026-01-02
Estimated Expiration
2034-12-27

AI Technical Summary

Technical Problem

In the existing technology, the process of applying the titanium composite coating to the cathode roller is inconvenient and affects the processing efficiency.

Method used

A cathode roller titanium cylinder processing fixture was designed, including a base, a limiting structure, and an adjusting structure. The coating is hoisted in by a crane and the cathode roller is fixed by screws, blocks, and the adjusting structure, which enables rapid coating adhesion and adjusts the screw spacing according to the roller diameter, thereby enhancing stability and practicality.

Benefits of technology

It improves the coating efficiency and fixation of the cathode roller, enhances processing efficiency and practicality, and is adaptable to cathode rollers of different diameters and heights.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a cathode roller titanium cylinder machining tool, and belongs to the technical field of cathode roller titanium cylinder machining, a base body comprises an upper plate, a lower plate, a lifting ring, two vertical rods and two sliding rods, and the opposite walls of the upper plate and the lower plate are each provided with a limiting structure; the limiting structure comprises two sets of screws, eight sets of through holes, abutting blocks fixedly installed at the opposite ends of the upper set of screws and the lower set of screws, and adjusting structures fixedly installed in the two sliding rods. According to the cathode roller titanium cylinder machining tool, through the base body and the limiting structure, a cathode roller can be fixed in the base body, a crane lifts the cathode roller into a coating through a lifting ring, the coating can be rapidly attached to the surface of the cathode roller, and therefore the machining efficiency can be effectively improved, the distance between the diameters of four screws in the same set can be adjusted according to the diameter of the cathode roller, and the machining efficiency is improved. Therefore, the practicability can be enhanced, the cathode roller can be conveniently placed in the base body, the fixity of the cathode roller in the base body can be further improved, and the overall height of the base body can be adjusted according to the height of the cathode roller.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of cathode roller titanium cylinder processing, in particular to a cathode roller titanium cylinder processing tool. BACKGROUND

[0002] With the rapid development of lithium battery technology, the requirements for lithium battery copper foil are continuously improved. As a key component in the lithium battery copper foil foil machine, the quality of the cathode roller directly affects the performance of the lithium battery copper foil. At present, titanium cylinder composite coating is widely used on the surface of the cathode roller due to its excellent electrical conductivity and corrosion resistance, so as to enhance the electrical conductivity and corrosion resistance of the cathode roller.

[0003] A cathode shielding device for controlling the width of electrolytic copper foil is disclosed in Chinese Patent (Publication No. CN220555722U), which accurately controls the brushing area of the cathode roller. Since the titanium cylinder composite coating needs to be fully coated on the surface of the cathode roller, when the cathode roller in the above-mentioned document is coated, the cathode roller needs to be continuously driven to rotate by the staff, and another staff needs to brush the coating on the surface of the cathode roller, which makes it inconvenient to operate when the titanium cylinder composite coating is fully coated on the surface of the cathode roller, and affects the processing efficiency. CONTENT OF THE UTILITY MODEL

[0004] In view of the deficiencies of the prior art, the application provides a cathode roller titanium cylinder processing tool, which has the advantage of convenient brushing and solves the problem of inconvenient brushing.

[0005] To achieve the above-mentioned purpose, the application provides the following technical scheme: a cathode roller titanium cylinder processing tool, comprising a base, the base comprising an upper plate, a lower plate, a lifting eye, two vertical rods and two slide rods, the opposite wall of the upper plate and the lower plate is provided with a limiting structure;

[0006] The limiting structure comprises two groups of screws, eight groups of through holes, a stop block fixedly installed at the opposite end of the upper and lower two groups of screws, and an adjusting structure fixedly installed in the two slide rods, and the outer surfaces of the two groups of screws are threadedly connected with nuts.

[0007] The above-mentioned technical scheme can fix the cathode roller in the base, so that the crane can hoist the cathode roller into the coating through the lifting eye, so that the coating can quickly adhere to the surface of the cathode roller, thereby effectively improving the processing efficiency, and the diameter of the four screws in the same group can be adjusted according to the diameter of the cathode roller, so as to enhance the practicability.

[0008] Further, the four groups of through holes are respectively arranged on the opposite wall of the upper plate and the lower plate, and the screws are slidingly connected in the through holes.

[0009] The above-mentioned technical scheme can fix the T-shaped rod composed of the screw and the stop block on the upper plate or the lower plate through the nut, so that the four groups of screws can limit the cathode roller.

[0010] Further, the diameter of the abutting block is greater than the diameter of the screw rod, and the diameter of the abutting block is greater than the diameter of the through hole.

[0011] The above technical solutions are adopted so that when the screw rod is inside the through hole, the screw rod can be prevented from falling out of the through hole by the abutting block.

[0012] Further, the adjusting structure comprises two moving blocks in sliding connection with the interiors of the two slide rods, the adjusting structure further comprises a lead screw in rotary connection with the bottoms of the inner cavities of the two slide rods through bearings, the outer surface of the lead screw is in threaded connection with a moving plate, the top end of the lead screw is fixed with an operating block, the left and right ends of the moving plate are hingedly connected with hinged rods, the front and rear ends of each of the moving blocks are fixed with two sliding blocks, and the interiors of the two sliding blocks on the same side are in sliding connection with a cross rod.

[0013] The above technical solutions are adopted so that the distance between the upper plate and the lower plate can be adjusted, thereby facilitating the placement of the cathode roller between the upper plate and the lower plate, i.e., the cathode roller can be placed in the base body, the fixing of the cathode roller in the base body can be further improved, and the distance between the upper plate and the lower plate can be adjusted according to the height of the cathode roller, thereby improving the practicability.

[0014] Further, a plurality of clamping holes are formed in the left and right walls of the inner cavity of the vertical rod, the moving blocks are inserted into the clamping holes, and sliding holes for allowing the moving blocks to penetrate and slide in the interiors are formed in the left and right walls of the slide rod.

[0015] The above technical solutions are adopted, the moving blocks are moved into the clamping holes of the vertical rod, the slide rod can be fixed in the interior of the vertical rod, and the moving blocks can be moved into or out of the interior of the slide rod through the sliding holes.

[0016] Further, a threaded hole for allowing the lead screw to penetrate into the interior thereof is formed in the top end of the moving plate, and the lead screw is in threaded connection with the inner side of the threaded hole.

[0017] The above technical solutions are adopted, the lead screw is in threaded connection with the threaded hole, the lead screw can be in threaded connection with the moving plate, and the lead screw can drive the moving plate to move up and down through the threaded connection between the threaded hole and the moving plate.

[0018] Further, the opposite walls of the two groups of sliding blocks are each provided with a moving hole for allowing the cross rod to penetrate and slide in the interior thereof.

[0019] The above technical solutions are adopted, the sliding blocks can move on the surface of the cross rod through the moving holes, the moving blocks can be accurately moved into or out of the interior of the slide rod, and the lead screw, the moving plate and the two moving blocks are located between the two groups of cross rods, so that the two groups of cross rods do not hinder the movement of the lead screw, the moving plate and the two moving blocks.

[0020] Further, the upper plate top end is provided with two round holes for the lead screw to pass through and rotate inside, which correspond to the top end of the slide rod.

[0021] The above technical scheme is adopted, so that when the lead screw passes through the inside of the slide rod, it can pass through the inside of the upper plate, and the top end of the lead screw can be connected with the operating block, so that the operator can rotate the operating block to drive the lead screw to rotate.

[0022] Compared with the prior art, the technical scheme of the present application has the following beneficial effects:

[0023] The cathode roller titanium cylinder machining tool can fix the cathode roller in the base body, so that the crane can hoist the cathode roller into the paint through the lifting ring, so that the paint can quickly adhere to the surface of the cathode roller, thereby effectively improving the processing efficiency, and the spacing of the four screws in the same group can be adjusted according to the diameter of the cathode roller, so that the utility can be enhanced, and the spacing between the upper plate and the lower plate can also be adjusted, so that the cathode roller can be placed between the upper plate and the lower plate, that is, the cathode roller can be placed in the base body, which can further improve the fixation of the cathode roller in the base body, and the height of the base body can also be adjusted according to the height of the cathode roller. BRIEF DESCRIPTION OF DRAWINGS

[0024] Fig. 1 The structure of the present application is shown in the figure;

[0025] Fig. 2 The structure of the present application is shown in the figure;

[0026] Fig. 3 The internal structure of the vertical rod and the slide rod of the present application is shown in the figure.

[0027] In the figure: 1, base body; 11, upper plate; 12, lower plate; 13, lifting ring; 14, vertical rod; 15, slide rod; 21, through hole; 22, stop block; 23, screw; 24, nut; 25, lead screw; 26, operating block; 27, moving plate; 28, hinged rod; 29, moving block; 210, sliding block; 211, cross rod. DETAILED DESCRIPTION

[0028] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.

[0029] Please refer to Figs. 1-2The cathode roller titanium cylinder processing tool in the embodiment comprises a base body 1, the base body 1 comprises an upper plate 11, a lower plate 12, a lifting ring 13, two vertical rods 14 and two slide rods 15, and the opposite wall of the upper plate 11 and the lower plate 12 is provided with a limiting structure.

[0030] The bottom of the two vertical rods 14 is fixed to the left and right ends of the top end of the lower plate 12 respectively, the top end of the two slide rods 15 is fixed to the left and right ends of the bottom of the upper plate 11 respectively, the lifting ring 13 is fixed to the top end of the upper plate 11, and the upper plate 11, the lower plate 12, the lifting ring 13, the two vertical rods 14 and the two slide rods 15 are all made of high-strength metal materials, and the upper plate 11 and the lower plate 12 are both circular in shape, so that the base body 1 composed of the upper plate 11, the lower plate 12, the lifting ring 13, the two vertical rods 14 and the two slide rods 15 is cylindrical.

[0031] Please refer to Figs. 1-3 The limiting structure in the embodiment comprises two groups of screw rods 23, eight groups of through holes 21, a stop block 22 fixedly installed at the opposite end of the upper and lower two groups of screw rods 23 and an adjusting structure fixedly installed in the two slide rods 15, and the outer surface of the two groups of screw rods 23 is threadedly connected with a nut 24.

[0032] The four groups of through holes 21 are respectively arranged on the opposite wall of the upper plate 11 and the lower plate 12, the screw rod 23 is slidingly connected in the through hole 21, and the four groups of through holes 21 are uniformly distributed around the surface of the upper plate 11 or the lower plate 12, so that the screw rod 23 can penetrate out of the inside of the upper plate 11 or the lower plate 12 through the through hole 21, and the T-shaped rod composed of the screw rod 23 and the stop block 22 can be fixed on the upper plate 11 or the lower plate 12 through the nut 24, that is, the upper and lower four groups of screw rods 23 can limit the cathode roller, so that the cathode roller can be stably fixed in the base body 1 composed of the upper plate 11, the lower plate 12, the lifting ring 13, the two vertical rods 14 and the two slide rods 15.

[0033] In addition, the diameter of the stop block 22 is greater than the diameter of the screw rod 23, the diameter of the stop block 22 is greater than the diameter of the through hole 21, and the diameter of the screw rod 23 is less than the diameter of the through hole 21, so that when the screw rod 23 is located in the inside of the through hole 21, the screw rod 23 can avoid falling out of the through hole 21 through the stop block 22.

[0034] Please refer to Fig. 3 The adjusting structure in the embodiment comprises two moving blocks 29 slidingly connected in the two slide rods 15, and further comprises a lead screw 25 rotatingly connected with the bottom of the inner cavity of the two slide rods 15 through a bearing, the outer surface of the lead screw 25 is threadedly connected with a moving plate 27, the top end of the lead screw 25 is fixed with an operating block 26, the left and right ends of the moving plate 27 are hingedly connected with a hinge rod 28, the front and rear ends of the moving block 29 are both fixed with two sliding blocks 210, and the inside of the two sliding blocks 210 on the same side is slidingly connected with a cross rod 211.

[0035] Secondly, the left and right walls of the inner cavity of the vertical rod 14 are provided with a plurality of clamping holes, and the moving blocks 29 are inserted into the clamping holes. When the two moving blocks 29 in the same group move into the clamping holes of the vertical rod 14, the sliding rod 15 can be fixed in the inner cavity of the vertical rod 14. The left and right walls of the sliding rod 15 are provided with sliding holes for the moving blocks 29 to pass through and slide in. The moving blocks 29 can move into or out of the inner cavity of the sliding rod 15 through the sliding holes, so that the moving blocks 29 can move into the clamping holes of the vertical rod 14.

[0036] In addition, the two vertical rods 14 and the two sliding rods 15 are hollow and cylindrical with missing top ends, so that the sliding rod 15 can slide in the inner cavity of the vertical rod 14.

[0037] Furthermore, the top end of the moving plate 27 is provided with a threaded hole for the lead screw 25 to pass through the inner cavity. The lead screw 25 is screw-connected to the inner side of the threaded hole, so that the lead screw 25 can be screw-connected to the moving plate 27, and the lead screw 25 can drive the moving plate 27 to move up and down through the threaded hole.

[0038] At the same time, the left and right ends of the top end of the upper plate 11 are provided with two round holes for the lead screw 25 to pass through and rotate in the inner cavity. The round holes correspond to the top end of the sliding rod 15, so that when the lead screw 25 passes through the inner cavity of the sliding rod 15, it can pass through the inner cavity of the upper plate 11 through the round hole. The top end of the lead screw 25 can be connected to the operating block 26, so that the operator can drive the lead screw 25 to rotate by rotating the operating block 26.

[0039] In addition, the opposite walls of the left and right groups of sliding blocks 210 are provided with moving holes for the horizontal rods 211 to pass through and slide in the inner cavity. The left and right ends of the front and rear groups of horizontal rods 211 are fixed to the left and right walls of the inner cavity of the sliding rod 15. The sliding blocks 210 can move on the surface of the horizontal rod 211 through the moving hole, so that the moving blocks 29 can accurately move into or out of the inner cavity of the sliding rod 15. The lead screw 25, the moving plate 27, and the two moving blocks 29 are located between the front and rear groups of horizontal rods 211, so as to prevent the front and rear groups of horizontal rods 211 from hindering the movement.

[0040] The working principle of the above embodiment is as follows:

[0041] In use, the cathode roller to be processed is placed in the base body 1 composed of the upper plate 11, the lower plate 12, the lifting ring 13, the two vertical rods 14 and the two sliding rods 15, the two sets of screw rods 23 are inserted into the through holes 21 of the upper plate 11 and the lower plate 12, the nuts 24 are sleeved on the screw rods 23, the nuts 24 are matched with the abutting blocks 22 to fix the screw rods 23 in the through holes 21 of the upper plate 11 or the lower plate 12, the two sets of abutting blocks 22 abut against the outer sides of the upper and lower ends of the cathode roller, the cathode roller is fixed in the base body 1, the crane lifts the cathode roller into the paint through the lifting ring 13, the paint can be quickly attached to the surface of the cathode roller, the processing efficiency can be effectively improved, and the spacing between the diameters of the four screw rods 23 in the same set can be adjusted according to the diameter of the cathode roller, so that the practicability can be enhanced;

[0042] The two operation blocks 26 are rotated to drive the two lead screws 25 to rotate, the lead screws 25 are threadedly connected with the threaded holes of the moving plate 27, so that the moving plate 27 can be driven to move upwards, the moving plate 27 pulls out the two moving blocks 29 from the clamping holes of the vertical rods 14 through the two hinge rods 28 and moves into the sliding rods 15, the sliding rods 15 can slide in the vertical rods 14, the cathode roller can be placed in the base body 1, the spacing between the upper plate 11 and the lower plate 12 can be adjusted according to the height of the cathode roller, and the practicability can be further improved;

[0043] When the cathode roller is placed in the base body 1, the top end of the cathode roller abuts against the bottom wall of the upper plate 11, the lead screw 25 is driven to move downwards by rotating the operation block 26, the moving plate 27 pushes the two moving blocks 29 out of the sliding rods 15 through the two hinge rods 28 and moves into the clamping holes of the vertical rods 14, and the sliding rods 15 are fixed in the vertical rods 14.

Claims

1. A cathode roller titanium cylinder processing tooling, comprising a base body (1), characterized in that: The base (1) comprises an upper plate (11), a lower plate (12), a lifting ring (13), two vertical rods (14) and two slide rods (15), the opposite wall of the upper plate (11) and the lower plate (12) is provided with a limiting structure; The limiting structure comprises two groups of screw rods (23), eight groups of through holes (21), a stop block (22) fixedly installed at the opposite end of the upper and lower groups of screw rods (23), and an adjusting structure fixedly installed in the two slide rods (15), and the outer surfaces of the two groups of screw rods (23) are threadedly connected with nuts (24).

2. The cathode roller titanium cylinder processing tooling of claim 1, wherein: The upper and lower four groups of through holes (21) are respectively arranged on the opposite wall of the upper plate (11) and the lower plate (12), and the screw rod (23) is slidingly connected in the through hole (21).

3. The cathode roller titanium cylinder processing tooling of claim 1, wherein: The diameter of the stop block (22) is greater than the diameter of the screw rod (23), and the diameter of the stop block (22) is greater than the diameter of the through hole (21).

4. The cathode roller titanium cylinder processing tooling of claim 1, wherein: The adjusting structure comprises two moving blocks (29) slidingly connected in the two slide rods (15), and further comprises a lead screw (25) rotatably connected with the bottom of the inner cavity of the two slide rods (15) through a bearing, the outer surface of the lead screw (25) is threadedly connected with a moving plate (27), the top end of the lead screw (25) is fixedly connected with an operating block (26), the left and right ends of the moving plate (27) are hingedly connected with a hinge rod (28), and the front and rear ends of the moving block (29) are fixedly connected with two sliding blocks (210), and the inner sides of the two sliding blocks (210) on the same side are slidingly connected with a cross rod (211).

5. The cathode roller titanium cylinder processing tooling of claim 4, wherein: The left and right walls of the inner cavity of the vertical rod (14) are provided with a plurality of clamping holes, the moving block (29) is inserted into the clamping hole, and the left and right walls of the slide rod (15) are provided with sliding holes for the moving block (29) to penetrate and slide in the inner cavity.

6. The cathode roller titanium cylinder processing tooling of claim 4, wherein: The top end of the moving plate (27) is provided with a threaded hole for the lead screw (25) to penetrate into the inner cavity, and the lead screw (25) is threadedly connected to the inner side of the threaded hole.

7. The cathode roller titanium cylinder processing tooling of claim 4, wherein: The opposite wall of the two groups of sliding blocks (210) is provided with a moving hole for the cross rod (211) to penetrate and slide in the inner cavity.

8. The cathode roller Ti-mantle processing tool of claim 4, wherein: The left and right ends of the top end of the upper plate (11) are provided with two circular holes for the lead screw (25) to penetrate and rotate in the inner cavity, and the circular holes correspond to the top end of the slide rod (15).

Citation Information

Patent Citations

  • Cathode shielding device with controllable width of electrolytic copper foil

    CN220555722U