Aluminum foil corrosion electrolytic cell

By introducing an automatic cleaning structure into the electrolytic cell, the problem of manual flushing of the traditional electrolytic cell is solved, efficient internal cleaning of the electrolytic cell is achieved, and the convenience of use is improved.

CN223352483UActive Publication Date: 2025-09-19JIAXING UNIV
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Patent Information

Application Number
CN202422720434.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-07
Publication Date
2025-09-19
Estimated Expiration
2034-11-07

AI Technical Summary

Technical Problem

Traditional electrolytic cells need to be manually flushed after use, which has low cleaning efficiency, increases labor workload, and is not convenient to use.

Method used

An aluminum foil corrosion electrolytic cell was designed, which included an automatic cleaning structure. The driving structure drove the nozzle to rotate, thereby achieving comprehensive and rapid cleaning of the inside of the electrolytic cell and reducing manual operation.

Benefits of technology

Automatic flushing of the inside of the electrolytic cell is achieved, which improves cleaning efficiency, reduces the workload of staff, and improves ease of use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electrolytic baths, in particular to an aluminum foil corrosion electrolytic bath which comprises an electrolytic bath body, a transverse plate fixedly connected to the top end of the electrolytic bath body, a supporting plate fixedly connected to the transverse plate, a water inlet pipe fixedly connected to the supporting plate, a rotating pipe rotationally connected to the bottom end of the water inlet pipe and rotationally connected to the transverse plate. Two first connecting pipes are fixedly connected to the two sides of the rotating pipe, connecting sleeves are fixedly connected to the interiors of the first connecting pipes, a plurality of water outlets are formed in the connecting sleeves, piston rods are slidably connected to the connecting sleeves, the piston rods are sleeved with first springs, abutting blocks are fixedly connected to the connecting sleeves, and guide shafts are fixedly connected to the piston rods; the end part of the first connecting pipe is rotationally connected with a second connecting pipe, a guide groove is formed in the second connecting pipe, and a plurality of spray heads are mounted on the second connecting pipe; and the interior of the electrolytic cell can be automatically flushed, and the cleaning efficiency is improved, so that the use convenience is improved.
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Description

Technical Field

[0001] The utility model relates to an electrolytic cell, in particular to an aluminum foil corrosion electrolytic cell, belonging to the technical field of electrolytic cells. Background Art

[0002] With the rapid development of the electronics industry, aluminum electrolytic capacitors are being used more widely and their performance requirements are becoming increasingly higher. Aluminum electrolytic capacitors are made of etched foil, a specialized electronic material used in basic components of the electronic information industry. When etching aluminum foil, a retractable device is often used to etch the foil within an electrolytic cell.

[0003] However, after use, traditional electrolytic cells require workers to use handheld water pipes to flush the inside, which has low cleaning efficiency and increases the workload of workers, resulting in poor convenience of use. Utility Model Content

[0004] The purpose of the utility model is to provide an aluminum foil corrosion electrolytic cell in order to solve the above problems, which can automatically flush the interior of the electrolytic cell, improve the cleaning efficiency, and thus improve the convenience of use.

[0005] The utility model achieves the above-mentioned object through the following technical solutions: an aluminum foil corrosion electrolytic cell, comprising an electrolytic cell body, a cross plate fixedly connected to the top of the electrolytic cell body, a support plate fixedly connected to the cross plate, a driving structure provided on the support plate, a cleaning structure provided on the support plate, the cleaning structure comprising a water inlet pipe and a rotating pipe, the water inlet pipe fixedly connected to the support plate, the bottom end of the water inlet pipe rotatably connected to the rotating pipe, the rotating pipe rotatably connected to the cross plate, two first connecting pipes fixedly connected on both sides of the rotating pipe, a connecting sleeve fixedly connected to the interior of the first connecting pipe, a plurality of water outlets provided on the connecting sleeve, a piston rod slidably connected to the connecting sleeve, a first spring provided on the outer sleeve of the piston rod, a block fixedly connected to the connecting sleeve, a guide shaft fixedly connected to the piston rod, an end of the first connecting pipe rotatably connected to a second connecting pipe, a guide groove provided on the second connecting pipe, one end of the guide shaft extends into the interior of the guide groove and is slidably connected to the second connecting pipe, and a plurality of nozzles are installed on the second connecting pipe.

[0006] Preferably, one end of the first spring abuts against the abutment block, and the other end of the first spring abuts against the piston rod.

[0007] Preferably, the cross-section of one end of the piston rod is T-shaped, and the plurality of water outlets are distributed in a circular array about the axis of the connecting sleeve.

[0008] Preferably, the two first connecting pipes are symmetrically distributed about the middle of the rotating pipe, one end of the second connecting pipe is L-shaped, and the multiple nozzles located on the same second connecting pipe are linearly and equidistantly distributed.

[0009] Preferably, the transverse plate is arranged in the middle of the electrolytic cell body, the rotating tube is arranged in the middle of the transverse plate, and the cross section of the end of the support plate is an L-shaped structure.

[0010] Preferably, the driving structure includes a motor and a first gear. The motor is mounted on the support plate. The first gear is fixedly connected to the output shaft of the motor. The second gear is fixedly connected to the rotating tube. The first gear and the second gear are meshed with each other.

[0011] Preferably, two support rods are fixedly connected to the electrolytic cell body, and a placement structure is provided on the support rods. The placement structure includes a support frame and a mesh frame. Two support frames are placed between the two support rods, and the support frame is fixedly connected to the mesh frame, and the support frame is fixedly connected to the connecting shaft.

[0012] Preferably, a fixing structure is provided on the support rod, and the fixing structure includes a fixing sleeve and an insert block. Two fixing sleeves are slidably connected to the support rod, and an insert block is slidably connected to the fixing sleeve. One end of the insert block is engaged with the support rod, and a retaining ring is fixedly connected to the support rod, and the retaining ring is in conflict with the support frame, and the fixing sleeve is in conflict with the support frame.

[0013] Preferably, a second spring is sleeved on the outer portion of the insert block, one end of the second spring is fixedly connected to the insert block, and the other end of the second spring is fixedly connected to the fixing sleeve.

[0014] Preferably, the cross-section of one end of the plug-in block is T-shaped, and the cross-section of the other end of the plug-in block is trapezoidal.

[0015] The beneficial effect of the utility model is that during use, the external water pipe and the water inlet pipe can be connected, and then high-pressure water can enter the interior of the water inlet pipe. The water will enter the interior of the connecting sleeve from the interior of the water inlet pipe, and then enter the interior of the two first connecting pipes from the interior of the connecting sleeve. Then, under the action of water pressure, the piston rod will slide inside the connecting sleeve, the first spring will contract, and the movement of the piston rod will drive the guide shaft to move inside the guide groove. While the guide shaft moves inside the guide groove, the second connecting pipe will rotate. When the second connecting pipe rotates ninety degrees, multiple nozzles will face the interior of the electrolytic cell body. At this time, the end of the piston rod moves to the multiple water outlets, so that water will flow out from the multiple water outlets, then flow into the interior of the second connecting pipe, and finally be sprayed from the multiple nozzles. At the same time, the rotating pipe can be driven to rotate by the driving structure, and the rotation of the rotating pipe will cause the multiple nozzles to move synchronously. The rotation of the multiple nozzles will realize comprehensive and rapid cleaning of the interior of the electrolytic cell body, thereby avoiding the need for staff to hold the water pipe for flushing, effectively reducing workload, and improving convenience of use. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0017] Figure 2 This is a schematic diagram of the connection structure between the electrolytic cell body and the support rod of the utility model;

[0018] Figure 3 for Figure 2 An enlarged schematic diagram of part A is shown;

[0019] Figure 4 This is a schematic diagram of the connection structure between the dedicated pipe and the first connecting pipe of the utility model;

[0020] Figure 5 for Figure 4 An enlarged schematic diagram of part B is shown;

[0021] Figure 6 This is a schematic diagram of the connection structure between the support rod and the retaining ring of the utility model.

[0022] In the figure: 1. electrolytic cell body; 2. horizontal plate; 3. support plate; 4. driving structure; 401. motor; 402. first gear; 403. second gear; 5. cleaning structure; 501. water inlet pipe; 502. rotating pipe; 503. first connecting pipe; 504. connecting sleeve; 505. water outlet; 506. piston rod; 507. first spring; 508. block; 509. guide shaft; 510. guide groove; 511. second connecting pipe; 512. nozzle; 6. support rod; 7. placement structure; 701. support frame; 702. mesh frame; 703. connecting shaft; 8. fixing structure; 801. fixing sleeve; 802. plug-in block; 803. second spring; 804. retaining ring. DETAILED DESCRIPTION

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

[0024] See also Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5 As shown, an aluminum foil corrosion electrolytic cell includes an electrolytic cell body 1, the top of the electrolytic cell body 1 is fixedly connected to a horizontal plate 2, the horizontal plate 2 is fixedly connected to a support plate 3, the support plate 3 is provided with a driving structure 4, the support plate 3 is provided with a cleaning structure 5, the cleaning structure 5 includes a water inlet pipe 501 and a rotating pipe 502, the support plate 3 is fixedly connected to the water inlet pipe 501, the bottom end of the water inlet pipe 501 is rotatably connected to the rotating pipe 502, the rotating pipe 502 is rotatably connected to the horizontal plate 2, and two first connecting pipes 503 are fixedly connected to both sides of the rotating pipe 502, and the interior of the first connecting pipe 503 is fixedly connected to a connecting sleeve 5 04. The connecting sleeve 504 is provided with a plurality of water outlets 505. The connecting sleeve 504 is slidably connected to a piston rod 506. The outer sleeve of the piston rod 506 is provided with a first spring 507. The connecting sleeve 504 is fixedly connected to a block 508. The piston rod 506 is fixedly connected to a guide shaft 509. The end of the first connecting pipe 503 is rotatably connected to the second connecting pipe 511. The second connecting pipe 511 is provided with a guide groove 510. One end of the guide shaft 509 extends to the inside of the guide groove 510 and is slidably connected to the second connecting pipe 511. The second connecting pipe 511 is equipped with a plurality of nozzles 512.

[0025] As a technical optimization solution of the utility model, Figure 5 As shown, one end of the first spring 507 abuts against the block 508, and the other end of the first spring 507 abuts against the piston rod 506. The cross-section of one end of the piston rod 506 is a T-shaped structure, and the multiple water outlets 505 are distributed in a circular array about the axis of the connecting sleeve 504. Therefore, when one end of the piston rod 506 moves to the multiple water outlets 505, water can flow out from the multiple water outlets 505.

[0026] As a technical optimization solution of the utility model, Figure 1 、 Figure 2 、 Figure 3 and Figure 4 As shown, the transverse plate 2 is arranged in the middle of the electrolytic cell body 1, the rotating tube 502 is arranged in the middle of the transverse plate 2, the cross-section of the end of the support plate 3 is L-shaped, the two first connecting tubes 503 are symmetrically distributed about the middle of the rotating tube 502, one end of the second connecting tube 511 is L-shaped, and the multiple nozzles 512 located on the same second connecting tube 511 are linearly equidistantly distributed, so the spraying range can be increased by setting multiple nozzles 512.

[0027] As a technical optimization solution of the utility model, Figure 2 and Figure 3 As shown, the driving structure 4 includes a motor 401 and a first gear 402. The motor 401 is installed on the support plate 3. The first gear 402 is fixedly connected to the output shaft of the motor 401. The second gear 403 is fixedly connected to the rotating tube 502. The first gear 402 and the second gear 403 are engaged with each other, so that the rotating tube 502 can be driven to rotate, and then the multiple nozzles 512 are rotated, thereby achieving comprehensive cleaning of the inside of the electrolytic cell body 1.

[0028] As a technical optimization solution of the utility model, Figure 1 and Figure 2 As shown, two support rods 6 are fixedly connected to the electrolytic cell body 1, and a placement structure 7 is provided on the support rods 6. The placement structure 7 includes a support frame 701 and a mesh frame 702. Two support frames 701 are placed between the two support rods 6, and the support frame 701 is fixedly connected to the mesh frame 702. The support frame 701 is fixedly connected to the connecting shaft 703, so that the aluminum foil and the cathode metal can be placed.

[0029] As a technical optimization solution of the utility model, Figure 1 、 Figure 2 and Figure 6As shown, the support rod 6 is provided with a fixing structure 8, and the fixing structure 8 includes a fixing sleeve 801 and an insert block 802. Two fixing sleeves 801 are slidably connected to the support rod 6, and the fixing sleeve 801 is slidably connected with an insert block 802. One end of the insert block 802 is engaged with the support rod 6, and a retaining ring 804 is fixedly connected to the support rod 6. The retaining ring 804 is in conflict with the support frame 701, and the fixing sleeve 801 is in conflict with the support frame 701. The outer sleeve of the insert block 802 is provided with a second spring 803, one end of the second spring 803 is fixedly connected to the insert block 802, and the other end of the second spring 803 is fixedly connected to the fixing sleeve 801, so that the net frame 702 can be fixedly positioned to prevent it from moving, thereby effectively improving its stability in use.

[0030] As a technical optimization solution of the utility model, Figure 6 As shown, the cross section of one end of the insert block 802 is T-shaped, and the cross section of the other end of the insert block 802 is trapezoidal, so it can play a guiding role when the insert block 802 is engaged with the support rod 6.

[0031] When the utility model is in use, the external water pipe and the water inlet pipe 501 can be connected during use. The aluminum foil to be corroded can be placed inside one of the mesh frames 702, and the cathode metal can be placed in the other mesh frame 702. Then, the mesh frame 702 is moved by holding the connecting shaft 703. When the two ends of the support frame 701 are placed on the two support rods 6, the connecting shaft 703 is loosened. Then, the support frame 701 is pushed to make one side contact with the retaining ring 804, and then the fixing sleeve 801 is pushed. When the fixing sleeve 801 and the other side of the support frame 701 are in contact with each other, the fixing sleeve 801 is pressed against the retaining ring 804. When there is a friction between the two ends of the electrolytic cell body 1 and the inner wall 502, the plug 802 will be engaged with the support rod 6 under the action of the second spring 803. At this time, the support frame 701 can be positioned and fixed by the fixing sleeve 801 and the retaining ring 804, thereby preventing the aluminum foil from moving during the electrolytic corrosion process, thereby effectively improving the stability of use. When it is necessary to clean the interior of the electrolytic cell body 1, high-pressure water is allowed to enter the interior of the water inlet pipe 501. The water will enter the interior of the connecting sleeve 504 from the interior of the water inlet pipe 501, and then enter the interior of the two first connecting pipes 503 from the interior of the connecting sleeve 504, and then Under the action of water pressure, the piston rod 506 will slide inside the connecting sleeve 504, the first spring 507 will contract, and the movement of the piston rod 506 will drive the guide shaft 509 to move inside the guide groove 510. While the guide shaft 509 moves inside the guide groove 510, the second connecting pipe 511 will rotate. When the second connecting pipe 511 rotates ninety degrees, the multiple nozzles 512 will face the inside of the electrolytic cell body 1. At this time, the end of the piston rod 506 moves to the multiple water outlets 505, so that water will flow out from the multiple water outlets 505 and then flow into the second connecting pipe 51 1, and finally sprayed out from multiple nozzles 512. At the same time, the motor 401 can be started, and the output shaft of the motor 401 rotates to drive the first gear 402 to rotate, the first gear 402 drives the second gear 403 to rotate, and the second gear 403 drives the rotating tube 502 to rotate. The rotation of the rotating tube 502 will cause the multiple nozzles 512 to move synchronously. The rotation of the multiple nozzles 512 will realize comprehensive and rapid cleaning of the interior of the electrolytic cell body 1, thereby avoiding the need for staff to hold a water pipe for flushing, effectively reducing the workload, and improving the convenience of use.

[0032] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the present invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be encompassed within the present invention. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0033] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. An aluminum foil corrosion electrolytic cell, comprising an electrolytic cell body (1), characterized in that: The top of the electrolytic cell body (1) is fixedly connected to a transverse plate (2), the transverse plate (2) is fixedly connected to a support plate (3), the support plate (3) is provided with a driving structure (4), the support plate (3) is provided with a cleaning structure (5), the cleaning structure (5) comprises a water inlet pipe (501) and a rotating pipe (502), the support plate (3) is fixedly connected to the water inlet pipe (501), the bottom end of the water inlet pipe (501) is rotatably connected to the rotating pipe (502), the rotating pipe (502) is rotatably connected to the transverse plate (2), two first connecting pipes (503) are fixedly connected to both sides of the rotating pipe (502), the interior of the first connecting pipe (503) is fixedly connected to a connecting sleeve (504), the connecting sleeve ( 504) is provided with multiple water outlets (505), the connecting sleeve (504) is slidably connected to a piston rod (506), the outer sleeve of the piston rod (506) is provided with a first spring (507), the connecting sleeve (504) is fixedly connected to a stop block (508), the piston rod (506) is fixedly connected to a guide shaft (509), the end of the first connecting pipe (503) is rotatably connected to a second connecting pipe (511), the second connecting pipe (511) is provided with a guide groove (510), one end of the guide shaft (509) extends to the inside of the guide groove (510) and is slidably connected to the second connecting pipe (511), and the second connecting pipe (511) is equipped with multiple nozzles (512).

2. The aluminum foil corrosion electrolytic cell according to claim 1, characterized in that: One end of the first spring (507) abuts against the abutment block (508), and the other end of the first spring (507) abuts against the piston rod (506).

3. The aluminum foil corrosion electrolytic cell according to claim 1, characterized in that: The cross section of one end of the piston rod (506) is in a T-shaped structure, and the plurality of water outlets (505) are distributed in a circular array about the axis of the connecting sleeve (504).

4. The aluminum foil corrosion electrolytic cell according to claim 1, characterized in that: The two first connecting tubes (503) are symmetrically distributed about the middle of the rotating tube (502), one end of the second connecting tube (511) is L-shaped, and the multiple nozzles (512) located on the same second connecting tube (511) are linearly and equidistantly distributed.

5. The aluminum foil corrosion electrolytic cell according to claim 1, characterized in that: The transverse plate (2) is arranged in the middle of the electrolytic cell body (1), the rotating tube (502) is arranged in the middle of the transverse plate (2), and the cross section of the end of the support plate (3) is an L-shaped structure.

6. The aluminum foil corrosion electrolytic cell according to claim 1, characterized in that: The driving structure (4) comprises a motor (401) and a first gear (402); the motor (401) is mounted on the support plate (3); the first gear (402) is fixedly connected to the output shaft of the motor (401); the second gear (403) is fixedly connected to the rotating tube (502); the first gear (402) and the second gear (403) are meshed with each other.

7. The aluminum foil corrosion electrolytic cell according to claim 1, characterized in that: Two support rods (6) are fixedly connected to the electrolytic cell body (1), and a placement structure (7) is provided on the support rods (6). The placement structure (7) includes a support frame (701) and a mesh frame (702). Two support frames (701) are placed between the two support rods (6), and the mesh frame (702) is fixedly connected to the support frame (701). A connecting shaft (703) is fixedly connected to the support frame (701).

8. The aluminum foil corrosion electrolytic cell according to claim 7, characterized in that: The support rod (6) is provided with a fixing structure (8), the fixing structure (8) comprising a fixing sleeve (801) and an insert (802), two fixing sleeves (801) are slidably connected to the support rod (6), an insert (802) is slidably connected to the fixing sleeve (801), one end of the insert (802) is engaged with the support rod (6), a retaining ring (804) is fixedly connected to the support rod (6), the retaining ring (804) is in conflict with the support frame (701), and the fixing sleeve (801) is in conflict with the support frame (701).

9. The aluminum foil corrosion electrolytic cell according to claim 8, characterized in that: The outer sleeve of the insert block (802) is provided with a second spring (803), one end of the second spring (803) is fixedly connected to the insert block (802), and the other end of the second spring (803) is fixedly connected to the fixing sleeve (801).

10. The aluminum foil corrosion electrolytic cell according to claim 8, characterized in that: The cross section of one end of the insert (802) is in a T-shaped structure, and the cross section of the other end of the insert (802) is in a trapezoidal structure.