A raw material electrolysis device for processing a durable steel shell

CN224605111UActive Publication Date: 2026-08-07HUBEI SHARED STEEL PLATE PROCESSING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUBEI SHARED STEEL PLATE PROCESSING CO LTD
Filing Date
2025-07-04
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0003]然而,现有的原料电解池在实际加工过程中,其原料的回流过滤便利性不足,随着电解反应的持续进行,电解质溶液中会产生杂质、残留的金属碎屑以及反应生成的副产物等,这些物质若不及时清除,会影响电解反应的正常进行,降低加工质量,目前的电解池装置过滤和循环过滤结构设计复杂,易导致溶液回流不畅,增加设备维护成本,且钢壳体在进行电解作业时,升降操作与旋转操作便利性不足,工件放置于电解池内无法较好与透彻的进行电解加工作业,加工质量相对不够好,影响钢壳体的电解加工质量,制约了耐久钢壳体加工的生产效率和产品品质,为此我们提出一种耐久钢壳体加工用原料电解装置来解决上述问题

Benefits of technology

[0015] Compared with the prior art, the advantages and positive effects of this utility model are as follows:

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Abstract

The utility model discloses a raw material electrolytic device is used in durable steel shell body processing, including electrolytic cell main part, the top of electrolytic cell main part is provided with the shell placement platform, the top fixed mounting of electrolytic cell main part has the lift control frame that control shell placement platform lift moves. The utility model, filter flow guide spare guides the electrolyte in electrolytic cell main part to the inside of impurity filter frame, after impurity filtration removal, reflux to electrolytic cell main part, and the cyclic filtration ability is excellent, and lift control frame can control shell placement platform lift moves, and steel shell body workpiece can be placed in shell placement platform, and the taking of workpiece is convenient, and shell placement platform can be driven to rotate by drive rotating part, and the uniformity of workpiece electrolysis is convenient thorough, and electrolytic processing quality is high, makes the device cyclic filtration ability excellent, and the filtration removal of impurity in electrolyte is convenient, and the overall filtration area is bigger, and it is not easy to block, and the lift operation and the rotation operation are convenient, improve the electrolytic processing quality of workpiece.
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Description

Technical Field

[0001] This utility model relates to the field of electrolytic processing equipment technology, and in particular to a raw material electrolytic device for processing durable steel shells. Background Technology

[0002] In the field of durable steel shell processing, the raw material electrolysis unit is a key piece of equipment for improving the performance of steel shells. Its core component, the electrolytic cell, performs electroplating, etching, and other processing operations on the surface of the steel shell through electrochemical reactions to enhance its corrosion resistance, wear resistance, and other properties. Specifically, the steel shell to be processed is immersed in an electrolytic cell containing a specific electrolyte solution. An external power source uses the steel shell as an electrode. Under the influence of an electric field, metal ions from the electrolyte solution are deposited onto the surface of the steel shell, thus completing the processing and meeting the performance requirements of the steel shell under different operating conditions.

[0003] However, existing raw material electrolytic cells lack the convenience of raw material reflux filtration during actual processing. As the electrolysis reaction continues, impurities, residual metal debris, and reaction byproducts are generated in the electrolyte solution. If these substances are not removed in time, they will affect the normal progress of the electrolysis reaction and reduce processing quality. The current electrolytic cell device has a complex filtration and circulation filtration structure design, which can easily lead to poor solution reflux and increase equipment maintenance costs. Furthermore, the steel shell lacks the convenience of lifting and rotating operations during electrolysis. The workpiece placed in the electrolytic cell cannot be electrolyzed well and thoroughly, resulting in relatively poor processing quality. This affects the electrolysis processing quality of the steel shell and restricts the production efficiency and product quality of durable steel shell processing. Therefore, we propose a raw material electrolysis device for durable steel shell processing to solve the above problems. Utility Model Content

[0004] In response to the problems raised, this utility model provides a raw material electrolysis device for processing durable steel shells, thereby solving the aforementioned problems.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] An electrolytic device for processing durable steel shells includes an electrolytic cell body, and a shell placement platform is provided on the top of the electrolytic cell body;

[0007] A lifting control frame for controlling the lifting and moving of the housing placement platform is fixedly installed on the top of the electrolytic cell body. The lifting end of the lifting control frame is provided with a driving rotating component for driving the housing placement platform to rotate. An impurity filter frame is provided on the inner side of the electrolytic cell body, and a filter guide is provided on the side of the impurity filter frame.

[0008] Preferably, a drain pipe is provided inside the main body of the electrolytic cell, a level gauge is provided on the inner side of the main body of the electrolytic cell, and the impurity filter frame and filter guide are both located on the inner side of the main body of the electrolytic cell.

[0009] Preferably, the housing placement platform includes a support frame and a fall protection net. The top of the support frame is rotatably connected to the lifting end of the lifting control frame. The fall protection net is fixedly installed on the bottom of the inner side of the support frame. The inner bottom wall of the support frame is provided with an anti-slip pad. The support frame is driven to rotate by a drive rotating component.

[0010] Preferably, both sides of the anti-fall protection net are threaded with compression rods, and a compression plate is provided on the opposite side of the two compression rods, and a control handle is provided on the opposite side of the two compression rods.

[0011] Preferably, wear-resistant tubes are provided on both sides of the anti-fall protection net, and the extrusion rod is threaded to the inside of the wear-resistant tube.

[0012] Preferably, the lifting control frame includes a frame body and mounting bases. Two mounting bases are correspondingly installed on both sides of the bottom of the frame body, and two mounting bases are correspondingly bolted to both sides of the top of the electrolytic cell body. A lifting hydraulic cylinder is fixedly installed on the frame body. The bottom of the lifting hydraulic cylinder extends through to the inside of the frame body and is fixedly installed on a lifting mounting plate. The control housing placement platform is rotatably connected to the bottom of the lifting mounting plate. The driving rotating component is fixedly installed on the top of the lifting mounting plate. The top of the lifting mounting plate extends through to the top of the lifting mounting plate and is connected to the output end of the driving rotating component.

[0013] Preferably, the impurity filter frame includes an inner metal mesh frame, an outer metal mesh frame, and a support base. The inner metal mesh frame and the outer metal mesh frame are respectively installed on the top of the support base. The inner metal mesh frame, the outer metal mesh frame, and the support base are combined into a whole. A filter cavity is provided in the gap between the inner metal mesh frame and the outer metal mesh frame. The two ends of the filter guide are connected to the filter cavity and the interior of the electrolytic cell body.

[0014] Preferably, the filter guide includes a filter tube, a guide pump, and an auxiliary suction bucket. The filter tube is installed on the side of the impurity filter frame, the output end of the guide pump is fixedly installed on the filter tube, the two ends of the filter tube are respectively connected to the inner side of the electrolytic cell body and the impurity filter frame, and the auxiliary suction bucket is connected to the bottom of the filter tube and is located inside the electrolytic cell body.

[0015] Compared with the prior art, the advantages and positive effects of this utility model are as follows:

[0016] 1. This durable steel shell processing raw material electrolysis device has an impurity filter frame installed inside the electrolytic cell body. The filter guides the electrolyte in the electrolytic cell body to the impurity filter frame. The impurity filter frame filters and removes impurities from the electrolyte, and then the electrolyte is filtered and returned to the electrolytic cell body. After the impurities are filtered into the impurity filter frame, the electrolyte circulation filtration operation is completed, which facilitates the improvement of the electrolytic processing quality of the workpiece. The device has excellent circulation filtration capability, which facilitates the removal of impurities in the electrolyte and improves the processing quality of the workpiece and the service life of the electrolyte.

[0017] 2. This durable steel shell processing raw material electrolysis device, by bolting a corresponding lifting control frame to the top of the electrolysis cell body, can control the lifting and moving of the shell placement platform within the electrolysis cell body. The steel shell workpiece can be placed in the shell placement platform, facilitating its lifting and lowering within the electrolysis cell body. The workpiece is conveniently placed and removed during electrolysis. The shell placement platform can be driven to rotate by a drive rotating component, allowing the workpiece to rotate during the electrolysis process, ensuring uniform and thorough electrolysis. The lifting and rotating operations are convenient, resulting in high electrolysis processing quality. This device facilitates lifting and rotating operations, improving the electrolysis processing quality of the workpiece. Attached Figure Description

[0018] Figure 1 This utility model provides a frontal perspective three-dimensional schematic diagram of a raw material electrolysis device for processing durable steel shells;

[0019] Figure 2 This utility model provides a top-view perspective view of a raw material electrolysis device for processing durable steel shells;

[0020] Figure 3 This utility model provides a front view sectional perspective view of a raw material electrolysis device for processing durable steel shells;

[0021] Figure 4 This utility model provides a top view of a three-dimensional cross-sectional diagram of a raw material electrolysis device for processing durable steel shells;

[0022] Figure 5 This is a top-view perspective view of the main body of the electrolytic cell and the impurity filtration frame of this utility model after the impurities have been removed.

[0023] In the diagram: 1. Electrolytic cell body; 11. Drain pipe; 12. Level gauge; 2. Shell placement platform; 21. Support frame; 22. Anti-fall protection net; 23. Anti-slip pad; 24. Extrusion rod; 25. Extrusion plate; 26. Control handle; 27. Wear-resistant tube body; 3. Lifting control frame; 31. Frame body; 32. Mounting base; 33. Lifting hydraulic cylinder; 34. Lifting mounting plate; 4. Drive rotating component; 5. Impurity filter frame; 51. Metal inner mesh frame; 52. Metal outer mesh frame; 53. Support base; 54. Filter inner cavity; 6. Filter guide component; 61. Filter tube; 62. Guide pump; 63. Auxiliary suction hopper. Detailed Implementation

[0024] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described below with reference to the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0025] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed in the following specification.

[0026] Please see Figures 1-5 An electrolytic device for processing raw materials for durable steel shells includes an electrolytic cell body 1, and a shell placement platform 2 is provided on the top of the electrolytic cell body 1.

[0027] A lifting control frame 3 is fixedly installed on the top of the electrolytic cell body 1 to control the lifting and moving of the housing placement platform 2. The lifting end of the lifting control frame 3 is provided with a driving rotating component 4 to drive the housing placement platform 2 to rotate. An impurity filter frame 5 is provided on the inner side of the electrolytic cell body 1, and a filter guide component 6 is provided on the side of the impurity filter frame 5.

[0028] The beneficial effects of this solution are as follows: By providing an impurity filter frame 5 inside the main body 1 of the electrolytic cell, and using a filter guide 6 to guide the electrolyte in the main body 1 to the impurity filter frame 5, the impurities in the electrolyte are filtered out and then returned to the main body 1, completing the electrolyte circulation filtration operation. The circulation filtration capacity is excellent, improving the service life of the electrolyte. The lifting control frame 3 can control the lifting and moving of the shell placement platform 2, and the steel shell workpiece can be placed in the shell placement platform 2, facilitating the placement and removal of the workpiece. The shell placement platform 2 can be driven to rotate by the drive rotating component 4, facilitating the uniform and thorough electrolysis of the workpiece and resulting in high electrolytic processing quality. The device has excellent circulation filtration capacity, facilitates the filtration and removal of impurities in the electrolyte, has a large overall filtration area, is not prone to clogging, and the lifting and rotating operations are convenient, improving the electrolytic processing quality of the workpiece.

[0029] Furthermore, a drain pipe 11 is provided inside the main body of the electrolytic cell 1, a level gauge 12 is provided on the inner side of the main body of the electrolytic cell 1, and the impurity filter frame 5 and the filter guide 6 are both located on the inner side of the main body of the electrolytic cell 1.

[0030] Specifically, the electrolytic cell body 1 is equipped with a drain pipe 11 inside, which facilitates the discharge and introduction of electrolyte, making operation stable and convenient. The liquid level gauge 12 allows for real-time observation and monitoring of the rise and fall of electrolyte in the cell, making it convenient to use and operate.

[0031] Furthermore, the housing placement platform 2 includes a support frame 21 and a fall protection net 22. The top of the support frame 21 is rotatably connected to the lifting end of the lifting control frame 3. The fall protection net 22 is fixedly installed on the bottom of the inner side of the support frame 21. The inner bottom wall of the support frame 21 is provided with an anti-slip pad 23. The support frame 21 is driven to rotate by the drive rotating component 4.

[0032] Specifically, the housing placement platform 2 includes a support frame 21 and a fall protection net 22. The support frame 21 is installed at the bottom of the lifting mounting plate 34 for easy lifting and operation. The drive rotating component 4 is installed at the top of the lifting mounting plate 34. Running the drive rotating component 4 can drive the support frame 21 to rotate, resulting in good rotation control. The lifting mounting plate 34 provides support, and the fall protection net 22 prevents falling and facilitates the placement of workpieces. The inner bottom wall of the support frame 21 is provided with an anti-slip pad 23, which makes the workpiece stable and prevents it from slipping.

[0033] Furthermore, both sides of the fall protection net 22 are threaded with compression rods 24, and compression plates 25 are provided on the opposite side of the two compression rods 24, and control handles 26 are provided on the opposite side of the two compression rods 24.

[0034] Specifically, rotating the extrusion rod 24 can push the two extrusion plates 25 closer to each other, and the two extrusion plates 25 can stably and conveniently clamp the workpiece. The clamping is convenient and stable. Rotating the extrusion rod 24 can stably thread onto both sides of the anti-fall protection net 22, making it easy to operate. The user can hold the control handle 26 with their hand to easily adjust the rotation of the extrusion rod 24.

[0035] Furthermore, wear-resistant tubes 27 are provided on both sides of the anti-fall protection net 22, and the extrusion rod 24 is threaded to the inside of the wear-resistant tube 27.

[0036] Specifically, the anti-fall protection net 22 has wear-resistant tubes 27 on both sides, which can conveniently support the rotating extrusion rod 24 with threads. It is easy to install and adapt, provides stable support, and has long durability and service life.

[0037] Furthermore, the lifting control frame 3 includes a frame body 31 and mounting bases 32. Two mounting bases 32 are installed on the two sides of the bottom of the frame body 31, and two mounting bases 32 are bolted to the two sides of the top of the electrolytic cell body 1. A lifting hydraulic cylinder 33 is fixedly installed on the frame body 31. The bottom of the lifting hydraulic cylinder 33 extends through to the inside of the frame body 31 and a lifting mounting plate 34 is fixedly installed. The control housing placement platform 2 is rotatably connected to the bottom of the lifting mounting plate 34. The drive rotating component 4 is fixedly installed on the top of the lifting mounting plate 34. The top of the lifting mounting plate 34 extends through to the top of the lifting mounting plate 34 and is connected to the output end of the drive rotating component 4.

[0038] Specifically, the lifting control frame 3 includes a frame body 31 and a mounting base 32. The frame body 31 can be installed and fixed on the top of the electrolytic cell body 1 by the mounting base 32. The bolted fixation is stable and easy to disassemble and use. The frame body 31 can support and carry the lifting hydraulic cylinder 33. Running the lifting hydraulic cylinder 33 can drive the lifting mounting plate 34 to lift stably. Since there are no less than two lifting hydraulic cylinders 33, they can stably drive the lifting mounting plate 34 to lift horizontally. The lifting operation is stable, which in turn drives the housing placement platform 2 installed at the bottom of the lifting mounting plate 34. When the workpiece is placed on the housing placement platform 2, it can be lifted and driven by the lifting control frame 3, which is convenient for operation and use.

[0039] Furthermore, the impurity filter frame 5 includes an inner metal mesh frame 51, an outer metal mesh frame 52, and a support base 53. The inner metal mesh frame 51 and the outer metal mesh frame 52 are respectively installed on the top of the support base 53. The inner metal mesh frame 51, the outer metal mesh frame 52, and the support base 53 are combined into a whole. A filter cavity 54 is provided in the gap between the inner metal mesh frame 51 and the outer metal mesh frame 52. The two ends of the filter guide 6 are connected to the filter cavity 54 and the interior of the electrolytic cell body 1.

[0040] Specifically, the inner metal mesh frame 51 and the outer metal mesh frame 52 are installed on the inner and outer edges of the top of the support base 53, respectively. A filter cavity 54 is provided between the inner metal mesh frame 51 and the outer metal mesh frame 52. After the electrolyte containing impurities in the pool is guided into the filter cavity 54 by the filter guide 6, the impurities can be filtered and retained through the mesh of the inner metal mesh frame 51 and the outer metal mesh frame 52. The relatively clean electrolyte is discharged and returned to the main body of the electrolytic cell 1, completing the circulation and return operation. The return is convenient and stable, the structure is simple and easy to use. The overall filtration equipment is large and not easy to clog. The circulation and guidance are stable. The main body of the electrolytic cell 1 can be removed by simply lifting it, making cleaning and disassembly convenient.

[0041] Furthermore, the filter guide component 6 includes a filter tube 61, a guide pump 62, and an auxiliary suction hopper 63. The filter tube 61 is installed on the side of the impurity filter frame 5. The output end of the guide pump 62 is fixedly installed on the filter tube 61. The two ends of the filter tube 61 are respectively connected to the inner side of the electrolytic cell body 1 and the impurity filter frame 5. The auxiliary suction hopper 63 is connected to the bottom of the filter tube 61 and is located inside the electrolytic cell body 1.

[0042] Specifically, the filter guide component 6 includes a filter tube 61, a guide pump 62, and an auxiliary suction hopper 63. The filter tube 61, in conjunction with the guide pump 62, can pressurize and guide the electrolyte inside the electrolytic cell body 1 to the impurity filter frame 5, where impurities are filtered. The circulation filtration is convenient, and the auxiliary suction hopper 63 can increase the adsorption range of the filter tube 61, resulting in good air extraction and guiding effect and convenient operation.

[0043] How to use and how to work this device:

[0044] By setting up an electrolytic cell body 1, which contains electrolyte, steel shell workpieces can be processed, which can improve durability and service life. The electrolytic cell body 1 is equipped with an impurity filter frame 5. The inner wall of the impurity filter frame 5 is hollow. The electrolyte in the electrolytic cell body 1 is guided to the impurity filter frame 5 by the filter guide 6. After the impurity in the electrolyte is filtered and removed by the impurity filter frame 5, it is filtered and returned to the electrolytic cell body 1. After the impurities are filtered into the impurity filter frame 5, the electrolyte circulation filtration operation is completed, which can improve the electrolytic processing quality of the workpiece.

[0045] The impurity filter frame 5 includes an inner metal mesh frame 51, an outer metal mesh frame 52, and a support base 53. The inner metal mesh frame 51 and the outer metal mesh frame 52 are installed on the inner and outer edges of the top of the support base 53, respectively. A filter cavity 54 is provided between the inner metal mesh frame 51 and the outer metal mesh frame 52. After the electrolyte containing impurities in the pool is guided into the filter cavity 54 by the filter guide 6, the impurities can be filtered and retained through the mesh of the inner metal mesh frame 51 and the outer metal mesh frame 52. The relatively clean electrolyte is discharged and returned to the main body of the electrolytic cell 1 to complete the circulation and return operation. The return is convenient and stable, the structure is simple and easy to use. The overall filtration equipment is large and not easy to clog. The circulation and guidance are stable. The main body of the electrolytic cell 1 can be removed by simply lifting it. Cleaning and disassembly are convenient.

[0046] The filter guide 6 is installed on the impurity filter frame 5. The filter guide 6 includes a filter tube 61, a guide pump 62, and an auxiliary suction bucket 63. The filter tube 61, together with the guide pump 62, can pressurize and guide the electrolyte inside the electrolytic cell body 1 to the impurity filter frame 5, where the impurity filter frame 5 performs impurity filtration. The circulation filtration is convenient, and the auxiliary suction bucket 63 can improve the adsorption range of the filter tube 61, resulting in good air extraction and flow guidance, and convenient operation and adaptation.

[0047] The top of the electrolytic cell body 1 is bolted to the lifting control frame 3, which can control the shell placement platform 2 to move up and down within the electrolytic cell body 1. The steel shell workpiece can be placed in the shell placement platform 2, which facilitates lifting and lowering within the electrolytic cell body 1. The workpiece is easy to pick up and put away during electrolysis. The shell placement platform 2 can be driven to rotate by the drive rotating component 4, so that the workpiece can be rotated during the electrolysis process, which facilitates uniform and thorough electrolysis of the workpiece. The lifting and rotating operation is convenient and the electrolysis processing quality is high.

[0048] The lifting control frame 3 includes a frame body 31 and a mounting base 32. The frame body 31 can be installed and fixed on the top of the electrolytic cell body 1 by the mounting base 32. The bolted fixation is stable and easy to disassemble and use. The frame body 31 can support and carry the lifting hydraulic cylinder 33. Running the lifting hydraulic cylinder 33 can drive the lifting mounting plate 34 to lift stably. Since there are no less than two lifting hydraulic cylinders 33, the lifting mounting plate 34 can be stably driven to lift horizontally. The lifting operation is stable, which in turn drives the housing placement platform 2 installed at the bottom of the lifting mounting plate 34. When the workpiece is placed on the housing placement platform 2, it can be lifted and driven by the lifting control frame 3, which is convenient for operation and use.

[0049] The housing placement platform 2 includes a support frame 21 and a fall protection net 22. The support frame 21 is installed at the bottom of the lifting mounting plate 34 for easy lifting and operation. The drive rotating component 4 is installed at the top of the lifting mounting plate 34. Running the drive rotating component 4 will drive the support frame 21 to rotate, providing good rotation control. The lifting mounting plate 34 provides support, and the fall protection net 22 prevents falls and facilitates workpiece placement. The inner bottom wall of the support frame 21 is provided with an anti-slip pad 23, ensuring stable workpiece placement and preventing side slippage. If the workpiece falls, rotating the extrusion rod 24 can push the two extrusion plates 25 closer together. The two extrusion plates 25 can stably and conveniently clamp the workpiece. The clamping is convenient and stable. Rotating the extrusion rod 24 can be stably threaded on both sides of the anti-fall protection net 22. It is easy to operate and the user can hold the control handle 26 to easily adjust the rotation of the extrusion rod 24. It is easy to adapt. Wear-resistant tubes 27 are provided on both sides of the anti-fall protection net 22, which can conveniently thread the extrusion rod 24. It is easy to install and adapt, provides stable support, and has long durability and service life.

[0050] The device has excellent circulation filtration capabilities, which facilitates the filtration and removal of impurities in the electrolyte. It has a large overall filtration area, is not prone to clogging, and is convenient for lifting and rotating operations, thereby improving the electrolytic processing quality of the workpiece.

[0051] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.

Claims

1. A raw material electrolysis device for processing durable steel shells, comprising an electrolysis cell body (1), characterized in that: The top of the electrolytic cell body (1) is provided with a shell placement platform (2); The top of the electrolytic cell body (1) is fixedly installed with a lifting control frame (3) for controlling the lifting and moving of the housing placement platform (2). The lifting end of the lifting control frame (3) is provided with a driving rotating component (4) for driving the housing placement platform (2) to rotate. The inner side of the electrolytic cell body (1) is provided with an impurity filter frame (5), and the side of the impurity filter frame (5) is provided with a filter guide component (6).

2. The raw material electrolysis device for processing durable steel shells according to claim 1, characterized in that: The electrolytic cell body (1) is provided with a drain pipe (11) inside, and a level gauge (12) is provided on the inner side of the electrolytic cell body (1). The impurity filter frame (5) and the filter guide (6) are both located on the inner side of the electrolytic cell body (1).

3. The raw material electrolysis device for processing durable steel shells according to claim 1, characterized in that: The housing placement platform (2) includes a support frame (21) and a fall protection net (22). The top of the support frame (21) is rotatably connected to the lifting end of the lifting control frame (3). The fall protection net (22) is fixedly installed on the bottom of the inner side of the support frame (21). The inner bottom wall of the support frame (21) is provided with an anti-slip pad (23). The support frame (21) is driven to rotate by a drive rotating component (4).

4. The raw material electrolysis device for processing durable steel shells according to claim 3, characterized in that: Both sides of the anti-fall protection net (22) are threaded with compression rods (24), and compression plates (25) are provided on the opposite side of the two compression rods (24), and control handles (26) are provided on the opposite side of the two compression rods (24).

5. The raw material electrolysis device for processing durable steel shells according to claim 4, characterized in that: The anti-fall protection net (22) has wear-resistant tubes (27) on both sides, and the extrusion rod (24) is threaded to the inside of the wear-resistant tube (27).

6. The raw material electrolysis device for processing durable steel shells according to claim 1, characterized in that: The lifting control frame (3) includes a frame body (31) and mounting bases (32). Two mounting bases (32) are installed on the two sides of the bottom of the frame body (31). Two mounting bases (32) are bolted to the two sides of the top of the electrolytic cell body (1). A lifting hydraulic cylinder (33) is fixedly installed on the frame body (31). The bottom of the lifting hydraulic cylinder (33) extends through to the inside of the frame body (31) and a lifting mounting plate (34) is fixedly installed. The control housing placement platform (2) is rotatably connected to the bottom of the lifting mounting plate (34). The driving rotating component (4) is fixedly installed on the top of the lifting mounting plate (34). The top of the lifting mounting plate (34) extends through to the top of the lifting mounting plate (34) and is connected to the output end of the driving rotating component (4).

7. The raw material electrolysis device for processing durable steel shells according to claim 1, characterized in that: The impurity filter frame (5) includes an inner metal mesh frame (51), an outer metal mesh frame (52), and a support base (53). The inner metal mesh frame (51) and the outer metal mesh frame (52) are respectively installed on the top of the support base (53). The inner metal mesh frame (51), the outer metal mesh frame (52), and the support base (53) are combined into a whole. A filter cavity (54) is provided in the gap between the inner metal mesh frame (51) and the outer metal mesh frame (52). The two ends of the filter guide (6) are connected to the filter cavity (54) and the interior of the electrolytic cell body (1).

8. The raw material electrolysis device for processing durable steel shells according to claim 1, characterized in that: The filter guide (6) includes a filter tube (61), a guide pump (62), and an auxiliary suction bucket (63). The filter tube (61) is installed on the side of the impurity filter frame (5). The output end of the guide pump (62) is fixedly installed on the filter tube (61). The two ends of the filter tube (61) are respectively connected to the inner side of the electrolytic cell body (1) and the impurity filter frame (5). The auxiliary suction bucket (63) is connected to the bottom of the filter tube (61) and is located inside the electrolytic cell body (1).