An electrolytic cell coating application device

By designing an electrolytic cell coating device and employing limiting, rotating, pressurizing, and protective mechanisms, the problems of dead corners and splashing in electrolytic cell spraying were solved, achieving all-round uniform spraying and environmentally friendly spraying of the inner wall of the electrolytic cell.

CN117282582BActive Publication Date: 2026-05-15JIANGYIN MIRACLE ELECTROLYSIS EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGYIN MIRACLE ELECTROLYSIS EQUIP CO LTD
Filing Date
2023-09-21
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

The existing electrolytic cell spraying process suffers from problems such as spraying dead corners, unevenness, and paint splatter, resulting in poor spraying effect and environmental pollution.

Method used

An electrolytic cell coating device was designed, which employs limiting, rotating, pressurizing and protective mechanisms. It achieves uniform spraying by adjusting the atomizing nozzle at multiple angles and uses the protective mechanism to prevent paint splashing.

Benefits of technology

It achieves all-round uniform spraying of the inner wall of the electrolytic cell, avoids paint splashing, improves the spraying effect and reduces environmental pollution.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of electrolytic cell processing, in particular to an electrolytic cell coating device, which comprises a mounting plate, vertical plates are arranged at positions close to the two sides of the bottom outer wall of the mounting plate, a supporting plate is arranged at the bottom outer wall of the vertical plate, an elastic member one is arranged at the bottom outer wall of the supporting plate, an electric wheel is arranged at the elastic end of the elastic member one, an electric sliding rail is further arranged at the bottom outer wall of the mounting plate, a sliding block is slidably arranged in the electric sliding rail, an elastic member two is arranged at the bottom outer wall of the sliding block, an installation cover is arranged at the elastic end of the elastic member two, a driving element one is fixedly arranged at the inner wall of the installation cover, a rotating disc is arranged at the driving end of the driving element one, a ring groove is arranged in the inner wall of the installation cover, the rotating disc is rotatably arranged in the ring groove, and a mounting frame is arranged at the bottom outer wall of the rotating disc. The electrolytic cell coating device can realize automatic multi-angle spraying operation, can effectively prevent paint from splashing during the spraying process, and has better use effect.
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Description

Technical Field

[0001] This invention relates to the field of electrolytic cell processing technology, and in particular to an electrolytic cell coating device. Background Technology

[0002] An electrolytic cell consists of a cell body, an anode, and a cathode. Most electrolytic cells use a diaphragm to separate the anode and cathode chambers. Based on the type of electrolyte, they are classified into three types: aqueous solution electrolytic cells, molten salt electrolytic cells, and non-aqueous solution electrolytic cells. When direct current passes through the electrolytic cell, an oxidation reaction occurs at the anode-solution interface, and a reduction reaction occurs at the cathode-solution interface to produce the desired product. During the processing of the electrolytic cell, a protective coating is usually sprayed onto the inner wall of the cell to resist oxidation and corrosion.

[0003] Currently, the existing spraying method mainly involves manually holding a spray gun to spray the inner wall of the electrolytic cell. This method is prone to problems such as spraying dead corners and uneven spraying. In addition, some paint will splash outwards during the spraying process, causing air pollution. Therefore, there is an urgent need to design an electrolytic cell coating device to solve the above problems. Summary of the Invention

[0004] The purpose of this invention is to address the deficiencies in the prior art by providing an electrolytic cell coating device.

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

[0006] An electrolytic cell coating device includes a mounting plate. Vertical plates are provided on both sides of the bottom outer wall of the mounting plate. A support plate is provided on the bottom outer wall of the vertical plates. A telescopic member is provided on the bottom outer wall of the support plate, and an electric wheel is provided at the telescopic end of the telescopic member. An electric slide rail is also provided on the bottom outer wall of the mounting plate, and a slider is slidably mounted in the electric slide rail. A second telescopic member is provided on the bottom outer wall of the slider, and a mounting cover is provided at the telescopic end of the second telescopic member. A driving member is fixedly mounted on the inner wall of the mounting cover. The driving end of the moving component is equipped with a turntable. An annular groove is formed on the inner wall of the mounting cover, and the turntable is rotatably positioned within the annular groove. A mounting frame is provided on the bottom outer wall of the turntable, and a storage tank is rotatably mounted within the mounting frame. A guide pipe is connected to the outer side of the storage tank, and a control valve is provided on the outer side of the guide pipe. A spray box is provided at the end of the guide pipe, and atomizing nozzles distributed in a ring at equal intervals are connected to the bottom outer wall of the spray box. A feeding pipe is also connected to one outer wall of the storage tank, and a sealing cap is provided at the end of the feeding pipe. The component also includes:

[0007] A limiting mechanism is provided in the vertical plate to limit the position of the mounting plate and prevent the mounting plate from swaying left and right when it moves above the electrolytic cell.

[0008] A rotating mechanism, which is disposed in the mounting frame, is used to drive the storage tank to rotate;

[0009] A pressurizing mechanism, which is installed on the storage tank, is used to guide the coating in the storage tank into the guide pipe;

[0010] A protective mechanism is provided on the outside of the spray box to prevent the sprayed paint from splashing.

[0011] As a further embodiment of the present invention: the limiting mechanism includes a telescopic component three, the outer wall of the vertical plate is provided with an installation hole, and the telescopic component three is fixedly installed in the installation hole. The telescopic end of the telescopic component three is provided with a clamping plate, the outer wall of the clamping plate is provided with a roller, and a distance sensor is also provided on one side of the outer wall of the support plate.

[0012] As a further embodiment of the present invention: the rotating mechanism includes a second driving component disposed on the inner wall of one side of the mounting frame, and the driving end of the second driving component is provided with a rotating shaft. The outer wall of the rotating shaft is provided with a gear, and the outer wall of the storage tank is provided with toothed grooves that are evenly spaced and distributed in an annular pattern, and the gear and the toothed grooves mesh with each other.

[0013] As a further embodiment of the present invention: the pressurization mechanism includes an air pump disposed on the outer wall of the bottom of the storage tank, the air pump is provided with an inflation pipe at the air guide end, the end of the inflation pipe is located in the storage tank, and the end of the inflation pipe is provided with an air bag.

[0014] As a further embodiment of the present invention: the protective mechanism includes an air storage box disposed on the bottom outer wall of the storage tank, a blower disposed on the bottom outer wall of the air storage box, the blower end of the blower being connected to the air storage box, and air blowing pipes evenly spaced and arranged in a ring on the bottom outer wall of the air storage box, a fixing rod disposed on the bottom outer wall of the storage tank, and a fixing plate disposed at the bottom end of the fixing rod, the air blowing pipes penetrating the fixing plate, and an outer cylinder and an inner cylinder disposed on the bottom outer wall of the fixing plate, the inner cylinder being located in the outer cylinder, and the end of the air blowing pipe being located between the inner cylinder and the outer cylinder, and the atomizing nozzle being located in the inner cylinder.

[0015] As a further embodiment of the present invention, handles are provided at both ends of the mounting plate.

[0016] As a further embodiment of the present invention: the telescopic component one, the electric wheel, the electric slide rail, the telescopic component two, the driving component one, the telescopic component three, the driving component two, the air pump and the blower are all connected to a switch via wires, and the switch is electrically connected to a controller.

[0017] Compared with the prior art, the beneficial effects of the present invention are:

[0018] This invention provides an electrolytic cell coating device. By lifting the mounting plate, a mounting cover can be placed in the electrolytic cell to be coated. A limiting mechanism clamps both sides of the electrolytic cell, limiting the position of the mounting plate. The extension and retraction of telescopic components one and two allow the atomizing nozzle to move vertically within the electrolytic cell. A slider can move along an electric slide rail, allowing the atomizing nozzle to move horizontally within the cell. Simultaneously, the rotation of an electric wheel moves a support plate outside the electrolytic cell. This support plate, via a vertical plate, moves the mounting plate above the electrolytic cell, allowing the atomizing nozzle to move back and forth within the cell. Furthermore, a driving component one rotates a turntable, enabling... The atomizing nozzle rotates horizontally with the turntable, and the rotating mechanism drives the storage tank to rotate in the mounting frame, which in turn allows the atomizing nozzle to rotate vertically. This effectively enables flexible multi-angle adjustment of the spraying direction of the atomizing nozzle, allowing spraying operations to be performed on any position on the inner wall of the electrolytic cell. During spraying, the control valve can be opened, and then the pressurization mechanism pressurizes the storage tank, allowing the paint in the storage tank to enter the spray box along the guide pipe and then be sprayed out through the atomizing nozzle. This paint discharge method allows the paint to be sprayed out regardless of the angle at which the storage tank is rotated, making it more flexible to use. Moreover, when the paint is sprayed out, the protective mechanism effectively prevents paint splashing, resulting in better performance. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the main structure of an electrolytic cell coating device provided in an embodiment of the present invention;

[0020] Figure 2 This is an enlarged structural schematic diagram of the limiting mechanism of an electrolytic cell coating device provided in an embodiment of the present invention;

[0021] Figure 3 This is an enlarged structural diagram of the mounting cover and storage tank of an electrolytic cell coating device provided in an embodiment of the present invention;

[0022] Figure 4 for Figure 3 Enlarged diagram of point A in the diagram;

[0023] Figure 5 This is a cross-sectional view of the mounting cover and storage tank of an electrolytic cell coating device provided in an embodiment of the present invention;

[0024] Figure 6 This is an enlarged structural diagram of the protective mechanism of an electrolytic cell coating device provided in an embodiment of the present invention;

[0025] Figure 7This is a cross-sectional view of the pressurization mechanism and the protection mechanism of an electrolytic cell coating device provided in an embodiment of the present invention;

[0026] Figure 8 This is a bottom view of the mounting cover of an electrolytic cell coating device provided in an embodiment of the present invention.

[0027] In the diagram: 101-Mounting plate, 102-Vertical plate, 103-Support plate, 104-Telescopic component one, 105-Electric wheel, 106-Electric slide rail, 107-Slider, 108-Telescopic component two, 109-Mounting cover, 110-Drive component one, 111-Turntable, 112-Mounting bracket, 113-Storage tank, 114-Guide pipe, 115-Control valve, 116-Spray box, 117-Atomizing nozzle, 118-Feeding pipe, 2-Limiting mechanism, 201- Telescopic component 3, 202-clamping plate, 203-roller, 204-distance sensor, 3-rotation mechanism, 301-drive component 2, 302-shaft, 303-gear, 304-tooth groove, 4-pressurization mechanism, 401-air pump, 402-inflation pipe, 403-airbag, 5-protective mechanism, 501-fixed rod, 502-fixed plate, 503-air storage box, 504-blower, 505-air blowing pipe, 506-outer cylinder, 507-inner cylinder, 6-handle. Detailed Implementation

[0028] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments.

[0029] like Figure 1 , Figure 2 , Figure 3 and Figure 5As shown, an electrolytic cell coating device according to an embodiment of the present invention includes a mounting plate 101. Vertical plates 102 are provided on both sides of the bottom outer wall of the mounting plate 101. A support plate 103 is provided on the bottom outer wall of the vertical plates 102. A telescopic member 104 is provided on the bottom outer wall of the support plate 103. The specific structure of the telescopic member 104 is not limited. In this embodiment, preferably, the telescopic member 104 is a hydraulic cylinder, and an electric wheel 105 is provided at the telescopic end of the telescopic member 104. An electric slide rail 106 is also provided on the bottom outer wall of the mounting plate 101, and a slider 107 is slidably disposed in the electric slide rail 106. A second telescopic member 108 is provided on the bottom outer wall of the slider 107. The specific structure of the second telescopic member 108 is not limited. In this embodiment, preferably, the second telescopic member 108 is an electric telescopic rod, and a mounting cover is provided at the telescopic end of the second telescopic member 108. 109. A driving component 110 is fixedly installed on the inner wall of the mounting cover 109. The specific structure of the driving component 110 is not limited. In this embodiment, preferably, the driving component 110 is a stepper motor, and a turntable 111 is provided at the driving end of the driving component 110. An annular groove is opened on the inner wall of the mounting cover 109, and the turntable 111 is rotatably installed in the annular groove. A mounting bracket 112 is provided on the bottom outer wall of the turntable 111, and a storage tank 113 is rotatably installed in the mounting bracket 112. A guide pipe 114 is connected to the outside of the storage tank 113, and a control valve 115 is provided on the outside of the guide pipe 114. A spray box 116 is provided at the end of the guide pipe 114, and an atomizing nozzle 117 is provided at equal intervals and arranged in a ring on the bottom outer wall of the spray box 116. A feeding pipe 118 is also connected to one side outer wall of the storage tank 113, and a sealing cap is provided at the end of the feeding pipe 118. The device also includes:

[0030] The limiting mechanism 2 is disposed in the vertical plate 102 to limit the position of the mounting plate 101 and prevent the mounting plate 101 from swaying left and right when it moves above the electrolytic cell.

[0031] Rotating mechanism 3 is installed in mounting frame 112 and is used to drive storage tank 113 to rotate.

[0032] A pressurizing mechanism 4 is installed on the storage tank 113 and is used to guide the paint in the storage tank 113 into the guide pipe 114.

[0033] Protective mechanism 5 is located on the outside of the spray box 116 to prevent the sprayed paint from splashing.

[0034] By lifting the mounting plate 101, the mounting cover 109 can be placed in the electrolytic cell to be sprayed. Then, the limiting mechanism 2 can clamp the two sides of the electrolytic cell, thus limiting the position of the mounting plate 101. The extension and retraction of the first telescopic member 104 and the second telescopic member 108 can cause the atomizing nozzle 117 to move up and down in the electrolytic cell. The slider 107 can move in the electric slide rail 106, thereby allowing the atomizing nozzle 117 to move left and right in the electrolytic cell. At the same time, the rotation of the electric wheel 105 can drive the support plate 103 to move outside the electrolytic cell. The support plate 103 can then drive the mounting plate 101 to move above the electrolytic cell via the vertical plate 102, allowing the atomizing nozzle 117 to move back and forth in the electrolytic cell. Furthermore, the drive member 110 can drive the turntable 111 to rotate, thus atomizing the nozzle. The nozzle 117 rotates laterally with the turntable 111, and the rotating mechanism 3 drives the storage tank 113 to rotate in the mounting frame 112, thereby allowing the atomizing nozzle 117 to rotate longitudinally as well. This effectively enables the spraying direction of the atomizing nozzle 117 to be flexibly adjusted at multiple angles, allowing spraying operations to be performed on any position on the inner wall of the electrolytic cell. During spraying, the control valve 115 can be opened, and then the pressurizing mechanism 4 can pressurize the storage tank 113, allowing the paint in the storage tank 113 to enter the spray box 116 along the guide pipe 114, and then be sprayed out along the atomizing nozzle 117. This paint discharge method allows the paint to be sprayed out regardless of the angle at which the storage tank 113 is rotated, making it more flexible to use. Furthermore, when the paint is sprayed out, the protective mechanism 5 can effectively prevent paint splashing, resulting in better performance.

[0035] As one embodiment of the present invention, please refer to Figure 2 The limiting mechanism 2 includes a telescopic component 201. The specific structure of the telescopic component 201 is not limited. In this embodiment, preferably, the telescopic component 201 is an electric telescopic rod. The outer wall of the vertical plate 102 is provided with a mounting hole, and the telescopic component 201 is fixedly installed in the mounting hole. The telescopic end of the telescopic component 201 is provided with a clamping plate 202. The outer wall of the clamping plate 202 is provided with a roller 203. A distance sensor 204 is also provided on one side of the outer wall of the support plate 103. The telescopic component 201 can drive the clamping plate 202 to move, so that the roller 203 on the outside of the clamping plate 202 is in contact with the outer wall of the electrolytic cell, which can limit the position of the mounting plate 101. The distance sensor 204 can monitor the distance between the support plate 103 and the electrolytic cell, which makes it convenient to limit the mounting plate 101 to the center position above the electrolytic cell, so that the atomizing nozzle 117 can move more widely and the effect is better.

[0036] As one embodiment of the present invention, please refer to Figure 3 and Figure 5The rotating mechanism 3 includes a second driving component 301 disposed on the inner wall of one side of the mounting frame 112. The specific structure of the second driving component 301 is not limited. In this embodiment, preferably, the second driving component 301 is a stepper motor, and the driving end of the second driving component 301 is provided with a rotating shaft 302. The outer wall of the rotating shaft 302 is provided with a gear 303. The outer wall of the storage tank 113 is provided with equally spaced and annularly distributed toothed grooves 304, and the gear 303 and the toothed grooves 304 mesh with each other. The second driving component 301 can drive the gear 303 to rotate. Since the gear 303 and the toothed grooves 304 mesh with each other, the storage tank 113 can be driven to rotate in the mounting frame 112, which is very convenient to use.

[0037] As one embodiment of the present invention, please refer to Figure 4 , Figure 5 and Figure 7 The pressurization mechanism 4 includes an air pump 401 disposed on the outer wall of the bottom of the storage tank 113. The air pump 401 is provided with an air inlet pipe 402. The end of the air inlet pipe 402 is located in the storage tank 113, and the end of the air inlet pipe 402 is provided with an air bag 403. When it is necessary to discharge the paint in the storage tank 113, air can be blown into the air bag 403 by the air pump 401, so that the paint in the storage tank 113 can be discharged through the guide pipe 114. This discharge method can discharge the paint no matter what angle the storage tank 113 is rotated to, and the use effect is better.

[0038] As one embodiment of the present invention, please refer to Figure 5 , Figure 6 , Figure 7 and Figure 8The protective mechanism 5 includes an air storage box 503 disposed on the bottom outer wall of the storage tank 113. A blower 504 is disposed on the bottom outer wall of the air storage box 503, and the blower end of the blower 504 is connected to the air storage box 503. A series of air blowing pipes 505 evenly spaced in a ring are disposed on the bottom outer wall of the air storage box 503. A fixing rod 501 is disposed on the bottom outer wall of the storage tank 113, and a fixing plate 502 is disposed at the bottom end of the fixing rod 501. The air blowing pipes 505 pass through the fixing plate 502. An outer cylinder 506 and an inner cylinder 507 are also disposed on the bottom outer wall of the fixing plate 502. The inner cylinder 507 is located in the outer cylinder 506, and the end of the air blowing pipes 505 is located at... Between the inner cylinder 507 and the outer cylinder 506, the atomizing nozzle 117 is located in the inner cylinder 507. During the spraying process, air can be blown into the air storage box 503 by the blower 504, so that the air can be blown into the gap between the outer cylinder 506 and the inner cylinder 507 through the air blowing pipe 505. When the air is blown out through the gap, it can form an annular air wall. When the paint sprayed by the atomizing nozzle 117 acts on the inner wall of the electrolytic cell and some paint splashes up, the splashed paint will come into contact with the annular air wall and be blown back to the inner wall of the electrolytic cell under the action of the annular air wall, and adhere to the inner wall of the electrolytic cell, ensuring that the paint will not splash outward and cause air pollution, and the effect of use is better.

[0039] As one embodiment of the present invention, please refer to Figure 1 Both ends of the mounting plate 101 are equipped with handles 6, which make it easier to lift the mounting plate 101 and use it.

[0040] In one embodiment of the present invention, telescopic component 104, electric wheel 105, electric slide rail 106, telescopic component 2 108, drive component 110, telescopic component 3 201, drive component 2 301, air pump 401 and blower 504 are all connected to switches via wires, and the switches are electrically connected to controllers. The specific structure of the controller is not limited. In this embodiment, preferably, the controller is a microprogram controller.

[0041] In use, by lifting the mounting plate 101, the mounting cover 109 can be placed in the electrolytic cell to be sprayed. Then, the limiting mechanism 2 can clamp the two sides of the electrolytic cell, which can limit the position of the mounting plate 101. The extension and retraction of the first telescopic member 104 and the second telescopic member 108 can cause the atomizing nozzle 117 to move up and down in the electrolytic cell. The slider 107 can move in the electric slide rail 106, which allows the atomizing nozzle 117 to move left and right in the electrolytic cell. At the same time, the rotation of the electric wheel 105 can drive the support plate 103 to move outside the electrolytic cell. The support plate 103 can then drive the mounting plate 101 to move above the electrolytic cell via the vertical plate 102, so that the atomizing nozzle 117 can move back and forth in the electrolytic cell. Furthermore, the first drive member 110 can drive the turntable 111 to rotate, which can make the atomizing nozzle 117 move forward and backward in the electrolytic cell. The atomizing nozzle 117 rotates laterally with the turntable 111, and the rotating mechanism 3 drives the storage tank 113 to rotate in the mounting bracket 112, thereby allowing the atomizing nozzle 117 to rotate longitudinally as well. This effectively enables the spraying direction of the atomizing nozzle 117 to be flexibly adjusted at multiple angles, allowing spraying operations to be performed on any position on the inner wall of the electrolytic cell. During spraying, the control valve 115 can be opened, and then the pressurizing mechanism 4 can pressurize the storage tank 113, allowing the paint in the storage tank 113 to enter the spray box 116 along the guide pipe 114, and then be sprayed out along the atomizing nozzle 117. This paint discharge method allows the paint to be sprayed out regardless of the angle at which the storage tank 113 is rotated, making it more flexible to use. Furthermore, when the paint is sprayed out, the protective mechanism 5 can effectively prevent paint splashing, resulting in better performance.

[0042] It should be noted that although this specification describes the embodiments, not every embodiment contains only one independent technical solution. This way of describing the specification is only for 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 embodiments that can be understood by those skilled in the art.

Claims

1. An electrolytic cell coating apparatus, comprising a mounting plate, characterized in that, The mounting plate has vertical plates near both sides on its bottom outer wall. A support plate is provided on the bottom outer wall of each vertical plate. A telescopic component one is provided on the bottom outer wall of the support plate, and an electric wheel is provided at the telescopic end of the telescopic component one. An electric slide rail is also provided on the bottom outer wall of the mounting plate, and a slider is slidably mounted within the electric slide rail. A telescopic component two is provided on the bottom outer wall of the slider, and a mounting cover is provided at the telescopic end of the telescopic component two. A driving component one is fixedly mounted on the inner wall of the mounting cover, and a driving end of the driving component one is... The device includes a turntable, with an annular groove on the inner wall of the mounting cover, the turntable rotatably positioned within the groove, a mounting frame on the bottom outer wall of the turntable, and a storage tank rotatably mounted within the mounting frame. A guide pipe is connected to the outer side of the storage tank, and a control valve is located on the outer side of the guide pipe. A spray box is located at the end of the guide pipe, and atomizing nozzles arranged in a ring at equal intervals are connected to the bottom outer wall of the spray box. A feeding pipe is also connected to one outer wall of the storage tank, and a sealing cap is located at the end of the feeding pipe. The device further includes: A limiting mechanism is provided in the vertical plate to limit the position of the mounting plate and prevent the mounting plate from swaying left and right when it moves above the electrolytic cell. A rotating mechanism, which is disposed in the mounting frame, is used to drive the storage tank to rotate; A pressurizing mechanism, which is installed on the storage tank, is used to guide the coating in the storage tank into the guide pipe; A protective mechanism is provided on the outside of the spray box to prevent the sprayed paint from splashing.

2. The electrolytic cell coating apparatus according to claim 1, characterized in that, The limiting mechanism includes a telescopic component three. The outer wall of the vertical plate has an installation hole, and the telescopic component three is fixedly installed in the installation hole. The telescopic end of the telescopic component three is provided with a clamping plate, and the outer wall of the clamping plate is provided with a roller. A distance sensor is also provided on one side of the outer wall of the support plate.

3. The electrolytic cell coating apparatus according to claim 2, characterized in that, The rotating mechanism includes a second driving component disposed on the inner wall of one side of the mounting frame, and the driving end of the second driving component is provided with a rotating shaft. The outer wall of the rotating shaft is provided with a gear. The outer wall of the storage tank is provided with toothed grooves that are evenly spaced and distributed in a ring, and the gear and the toothed grooves mesh with each other.

4. The electrolytic cell coating apparatus according to claim 3, characterized in that, The pressurization mechanism includes an air pump installed on the outer wall of the bottom of the storage tank. The air pump has an inflation pipe at its air guide end, the end of the inflation pipe is located in the storage tank, and the end of the inflation pipe has an air bag.

5. The electrolytic cell coating apparatus according to claim 4, characterized in that, The protective mechanism includes an air storage box disposed on the bottom outer wall of the storage tank. A blower is disposed on the bottom outer wall of the air storage box, and the blower end is connected to the air storage box. A series of air blowing pipes are disposed on the bottom outer wall of the air storage box in a ring at equal intervals. A fixing rod is disposed on the bottom outer wall of the storage tank, and a fixing plate is disposed at the bottom end of the fixing rod. The air blowing pipes pass through the fixing plate. An outer cylinder and an inner cylinder are disposed on the bottom outer wall of the fixing plate. The inner cylinder is located in the outer cylinder, and the end of the air blowing pipe is located between the inner cylinder and the outer cylinder. The atomizing nozzle is located in the inner cylinder.

6. The electrolytic cell coating apparatus according to claim 1, characterized in that, The mounting plate is equipped with handles at both ends.

7. The electrolytic cell coating apparatus according to claim 5, characterized in that, The telescopic component 1, electric wheel, electric slide rail, telescopic component 2, drive component 1, telescopic component 3, drive component 2, air pump, and blower are all connected to switches via wires, and the switches are electrically connected to controllers.