Cleaning equipment for electrode sheet production

By designing a cleaning device for electrode sheet production, automated cleaning of electrode sheets and housings was achieved, solving the problem of water waste in existing technologies, improving cleaning efficiency and reducing energy consumption.

CN116833141BActive Publication Date: 2025-11-14CHENGDU JUNA NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202310871740.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-14
Publication Date
2025-11-14
Estimated Expiration
2043-07-14

AI Technical Summary

Technical Problem

In existing technologies, cleaning the electrode plates and the housing separately results in water waste and low cleaning efficiency.

Method used

A cleaning device for electrode sheet production was designed, including a transmission mechanism, a clamping mechanism, a spraying mechanism, an atomizing cleaning mechanism, a drying mechanism, and a recovery system. It can automatically clean electrode sheets and recover cleaning liquid. The box cleaning mechanism uses a high-pressure nozzle for high-pressure rinsing, which saves water resources.

Benefits of technology

It enables automated cleaning of electrode plates and housings, reducing water waste, improving cleaning efficiency, reducing labor intensity for workers, and saving energy consumption.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention belongs to the field of electrode sheet production technology, specifically disclosing a cleaning device for electrode sheet production, including a frame with an inner shell frame inside, and a transmission mechanism inside the inner shell frame; an electrode sheet processing system, which includes multiple spraying mechanisms, multiple atomizing cleaning mechanisms, multiple demisting water mechanisms, a recycling mechanism, and multiple drying mechanisms arranged sequentially from front to back within the inner shell frame; a box cleaning mechanism mounted on the frame; and a recycling system mounted within the frame, which includes a recycling tank connected to the recycling mechanism and a filtration mechanism connected to the recycling tank. The filtration mechanism is connected to the spraying mechanism and the atomizing cleaning mechanism. This invention addresses the problem of water waste caused by cleaning electrode sheets and boxes separately in the prior art.
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Description

Technical Field

[0001] This invention relates to the field of electrode sheet manufacturing technology, and in particular to a cleaning apparatus for electrode sheet manufacturing. Background Technology

[0002] An electrolytic cell consists of a cell body, an anode, and a cathode, with most separating the anode and cathode chambers by a diaphragm. Based on the 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. The electrodes in the electrolytic cell are crucial for the electrolytic production of hydrogen.

[0003] The substrate material of the electrode sheet is nickel foam, which has many excellent characteristics. During the processing of nickel foam into electrode sheets, it needs to be placed in a PP box, and various catalysts are added to the box. The catalysts are deposited on the surface of the nickel foam under high temperature in a tunnel furnace, thereby achieving the various conductivity properties of the nickel foam. After the deposition is completed, the box needs to be cleaned so that it can be reused. At the same time, the nickel foam also needs to be cleaned to remove excess catalyst from its surface. However, in the existing technology, the cleaning of nickel foam cannot be carried out by high-pressure rinsing due to the nature of nickel foam. Therefore, manual atomization cleaning is used, and the box is also manually rinsed with high pressure. This separate cleaning results in low cleaning efficiency and a large consumption of water resources, which leads to waste. In view of this, the inventor proposes a cleaning device for electrode sheet production. Summary of the Invention

[0004] In view of the shortcomings of the prior art described above, the purpose of this invention is to provide a cleaning device for electrode sheet production, which solves the problem of water waste caused by cleaning the electrode sheet and the housing separately in the prior art.

[0005] To achieve the above and other related objectives, the present invention provides a cleaning apparatus for electrode sheet production, comprising:

[0006] The frame includes an inner shell frame, which contains a transmission mechanism. The transmission mechanism is equipped with multiple clamping mechanisms for fixing electrode sheets, and each clamping mechanism is equipped with a top-loading cylinder.

[0007] An electrode processing system, comprising, in sequence from front to back, multiple spraying mechanisms, multiple atomizing cleaning mechanisms, multiple demisting water mechanisms, a recycling mechanism, and multiple drying mechanisms arranged within an inner housing.

[0008] A box cleaning mechanism is mounted on a frame. The box cleaning mechanism includes an upper shell frame and a conveyor belt disposed within the upper shell frame. The upper shell frame is provided with multiple multi-hole nozzles connected to a spraying mechanism and an atomizing cleaning mechanism. A recycling mechanism extends through the upper shell frame to collect the liquid inside the upper shell frame.

[0009] A recycling system, housed within a housing, includes a recycling tank connected to a recycling mechanism and a filtration mechanism connected to the recycling tank, the filtration mechanism being connected to the spraying mechanism and the atomizing cleaning mechanism.

[0010] Optionally, the spraying mechanism includes:

[0011] The fixing seats are symmetrically arranged inside the inner shell frame, and each fixing seat is provided with a first connector;

[0012] A spray pipe is disposed between the first connectors. The spray pipe is arranged in a gate shape. A portion of the spray pipe extends out of the inner shell frame and is located inside the upper shell frame. The multi-hole nozzle is disposed on the portion of the spray pipe that extends out of the upper shell frame.

[0013] A spray head is mounted on a spray pipe and is aimed at the electrode sheet to spray it. The spray heads of the spray mechanism are arranged in a stepped manner to ensure thorough spraying.

[0014] Optionally, the atomizing cleaning mechanism includes:

[0015] A positioning seat is disposed inside the inner shell frame, and each positioning seat is provided with a second connector.

[0016] An atomizing tube is disposed between the second connectors. The atomizing tube is arranged in a gate shape, with a portion of the atomizing tube extending out of the inner shell frame and located inside the upper shell frame. The multi-hole nozzle is disposed on the portion of the atomizing tube that extends out of the upper shell frame.

[0017] An atomizing head is disposed on the atomizing tube, and the atomizing tube is aligned with the electrode plate for atomized cleaning. The atomizing heads of the atomizing cleaning mechanism are arranged in a stepped manner to ensure thorough atomized cleaning.

[0018] Optionally, both the spray pipe and the atomizing pipe are equipped with a pressure boosting valve, and the multi-hole nozzle is a three-hole nozzle, with adjacent nozzles of the three-hole nozzle set at 45°.

[0019] Optionally, the recycling mechanism includes a water inlet tank, a recycling pipe, and a drain pipe. The water inlet tank is connected to the inner shell frame, the recycling pipe is installed on the frame, the upper end of the recycling pipe communicates with the interior of the upper shell frame, the lower end of the recycling pipe is aligned with the water inlet tank, and the drain pipe extends out of the water inlet tank and communicates with the interior space of the water inlet tank.

[0020] Optionally, the recycling system includes a filter box and a storage tank. The filter box is connected to the drain pipe. A pump is provided between the filter box and the storage tank. The storage tank is equipped with a first filter assembly and a second filter assembly. The first filter assembly and the second filter assembly supply liquid to the spraying mechanism and the atomizing cleaning mechanism, respectively.

[0021] Optionally, the first filtration assembly includes a first ion filter tank and a first liquid supply tank, the first liquid supply tank being provided with a first liquid supply pipe, and the first liquid supply pipe being connected to the spray head.

[0022] Optionally, the second filtration assembly includes a second ion filter canister and a second liquid supply canister, the second liquid supply canister being provided with a second liquid supply pipe, and the second liquid supply pipe being connected to the atomizing head.

[0023] Optionally, the upper shell is equipped with a motor for driving the conveyor belt, a plurality of fixing blocks are evenly arranged on the conveyor belt, the box is upside down on the fixing blocks, and a plurality of clearance grooves corresponding to the fixing blocks are opened on the conveyor belt.

[0024] Optionally, the transmission mechanism includes a sprocket and a chain disposed on the inner shell frame, and the clamping mechanism further includes a mounting block disposed on the chain and a chuck connected to the mounting block. The chuck has an annular groove adapted to the electrode sheet to clamp the electrode sheet. The ejector cylinder is disposed between the chucks, and the extended end of the ejector cylinder has an ejector block.

[0025] As described above, the cleaning apparatus for electrode sheet production of the present invention has the following beneficial effects:

[0026] (1) In this invention, the electrode sheet can be clamped by the transmission mechanism and clamping mechanism, and the top material cylinder facilitates the automatic unloading of the electrode sheet. At the same time, during the movement of the electrode sheet, it is cleaned by spraying, atomizing and drying through the electrode sheet processing system, which can improve the cleaning effect of the electrode sheet and effectively wash away the catalyst liquid attached to the electrode sheet. The whole process adopts an automated cleaning line without manual labor. The set recycling mechanism recycles the liquid used to prevent the waste of liquid.

[0027] (2) In this invention, a box cleaning mechanism is also provided. While cleaning the electrode sheet, the box is cleaned. The box is rinsed with high pressure using a high-pressure nozzle. No additional water source is required. Water is supplied to the multi-hole nozzle through the spraying mechanism and the atomizing cleaning mechanism to clean the box, saving water. The box can also be recycled through the recycling mechanism, saving a large amount of water resources.

[0028] (3) In this invention, the water resources in the electrode plate processing system and the box cleaning mechanism are recycled, filtered and supplied through the recycling system, which ensures the cleanliness of the circulating water and reduces energy consumption. Attached Figure Description

[0029] Figure 1 The diagram shown is a structural schematic diagram of an embodiment of the present invention;

[0030] Figure 2 The diagram shown is a schematic representation of the internal structure of an embodiment of the present invention.

[0031] Figure 3 The image shown is a top view of an electrode sheet processing system according to an embodiment of the present invention.

[0032] Figure 4 The diagram shown is a structural schematic of a spraying mechanism according to an embodiment of the present invention.

[0033] Figure 5 The diagram shown is a structural schematic of an atomizing cleaning mechanism according to an embodiment of the present invention.

[0034] Figure 6 The diagram shown is a structural schematic of the clamping mechanism in one embodiment of the present invention;

[0035] Figure 7 The diagram shown is a structural schematic of a recycling system according to an embodiment of the present invention.

[0036] Figure 8 The image shown is a cross-sectional view of an embodiment of the present invention.

[0037] Explanation of reference numerals in the attached figures

[0038] Frame 1, Observation window 2, Inner shell frame 3, Water inlet trough 301, Feeding section 302, Unloading section 303, Spraying mechanism 4, Fixed base 401, Connecting plate 402, Spray pipe 403, First connector 404, Pressure boosting valve 405, Atomizing head 406, Multi-hole nozzle 407, Atomizing cleaning mechanism 5, Positioning base 501, Positioning plate 502, Atomizing pipe 503, Second connector 504, Atomizing head 505, De-atomizing water mechanism 6, Recovery mechanism 7, Drying mechanism 8 9. Transmission mechanism; 10. Clamping mechanism; 10. Mounting block; 1001. First chuck; 1002. Second chuck; 1003. Top material cylinder; 1004. Pushing block; 1005. Filter box; 11. Drain pipe; 1101. Pump; 12. Storage tank; 13. First filter assembly; 14. First supply pipe; 15. Second filter assembly; 16. Second supply pipe; 17. Upper shell frame; 18. Motor; 19. Conveyor belt; 20. Fixing block; 21. Box body; 22. Electrode sheet; 23. Collection box; 24. Detailed Implementation

[0039] The following specific examples illustrate the implementation of the present invention. Those skilled in the art can easily understand other advantages and effects of the present invention from the content disclosed in this specification. The present invention can also be implemented or applied through other different specific embodiments, and various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of the present invention.

[0040] It should be noted that the illustrations provided in this embodiment are only schematic representations of the basic concept of the present invention. Therefore, the drawings only show components relevant to the present invention and are not drawn according to the actual number, shape, and size of components in implementation. In actual implementation, the form, quantity, and proportion of each component can be arbitrarily changed, and the component layout may be more complex. The structures, proportions, sizes, etc., depicted in the accompanying drawings are only for illustrative purposes to aid those skilled in the art and are not intended to limit the implementation conditions of the present invention. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in proportions, or adjustments to size, without affecting the effects and objectives of the present invention, should still fall within the scope of the technical content disclosed in the present invention. Furthermore, the terms such as "upper," "lower," "left," "right," "middle," and "one" used in this specification are only for clarity of description and are not intended to limit the scope of the present invention. Changes or adjustments to their relative relationships, without substantially altering the technical content, should also be considered within the scope of the present invention.

[0041] like Figures 1 to 8 As shown, the present invention proposes a cleaning apparatus for electrode sheet production.

[0042] In one exemplary embodiment, the cleaning apparatus for electrode sheet production includes:

[0043] The frame 1 has an inner shell frame 3 inside the frame 1. The inner shell frame 3 has a transmission mechanism 9 inside the inner shell frame 3. The transmission mechanism 9 has multiple clamping mechanisms 10 for fixing the electrode sheet 23. The clamping mechanism 10 has a top material cylinder 1004.

[0044] The electrode sheet 23 processing system includes multiple spraying mechanisms 4, multiple atomizing cleaning mechanisms 5, multiple demisting water mechanisms 6, a recycling mechanism 7, and multiple drying mechanisms 8 arranged sequentially from front to back within the inner shell frame 3.

[0045] The box body 22 cleaning mechanism is mounted on the frame 1. The box body 22 cleaning mechanism includes an upper shell frame 18 and a conveyor belt 20 disposed inside the upper shell frame 18. The upper shell frame 18 is provided with multiple multi-hole nozzles 407 connected to the spraying mechanism 4 and the atomizing cleaning mechanism 5. The recovery mechanism 7 enters the upper shell frame 18 to collect the liquid inside the upper shell frame 18.

[0046] The recycling system is installed inside the frame 1. The recycling system includes a recycling tank connected to the recycling mechanism 7 and a filtration mechanism connected to the recycling tank. The filtration mechanism is connected to the spraying mechanism 4 and the atomizing cleaning mechanism 5.

[0047] In this embodiment, the electrode sheet 23 can be installed in the clamping mechanism 10 through the transmission mechanism 9 provided inside the inner shell 3 and the clamping mechanism 10 provided on the transmission mechanism 9. The transmission mechanism 9 and the clamping mechanism 10 jointly drive the electrode sheet 23 to move. During the movement of the electrode sheet 23, it is processed sequentially by the spray mechanism 4, the atomizing cleaning mechanism 5, the demisting water mechanism 6 and the drying mechanism 8 provided on the inner shell 3. The spray mechanism 4 is a rough cleaning procedure, the purpose of which is to remove the catalyst solution attached to the surface of the electrode sheet 23. During this process, the impact force of the spray mechanism 4 on the electrode sheet 23 needs to be adjusted to prevent the spray pressure from being too high and washing away the catalyst attached to the surface of the electrode sheet 23. The atomizing cleaning mechanism 5 can thoroughly clean the electrode sheet 23. The electrode plate 23 undergoes more precise cleaning of its surface and interior, improving its overall cleanliness. The atomized water mechanism 6 and drying mechanism 8 then remove the atomized water adhering to the electrode plate 23 and dry the entire electrode plate 23. All water used in the cleaning process is recycled through the recycling mechanism 7 to avoid water waste. Meanwhile, a box body 22 cleaning mechanism is provided, which does not require an additional water source. By adding water pipes to the cleaning mechanism and atomized water mechanism and installing a multi-hole nozzle 407, the box body 22 is subjected to high-pressure rinsing, thus completing the automatic cleaning of the box body 22 and electrode plate 23 without the need for a large amount of manpower, reducing the workload of workers.

[0048] In this embodiment, a recycling system is also provided to recycle the liquid after cleaning the electrode sheet 23 and the box 22 by recycling, filtering, and supplying the liquid, thereby avoiding the large consumption of water resources and reducing the waste of water resources.

[0049] In this embodiment, a controller is also provided, which controls the movement of the conveyor belt 20 and the transmission device, and also controls the movement of the top material cylinder 1004 to facilitate the unloading of the electrode sheet 23.

[0050] In this embodiment, the front end and rear end of the inner frame 3 are respectively provided with a feeding section 302 and a discharging section 303 for feeding and discharging, respectively. The rear end of the frame 1 is provided with a collection box 24 located below the discharging section 303.

[0051] In one exemplary embodiment, the spray mechanism 4 includes:

[0052] A fixing seat 401 is symmetrically arranged inside the inner shell frame 3, and each fixing seat 401 is provided with a first connector 404.

[0053] Spray pipe 403 is disposed between the first connectors 404. The spray pipe 403 is arranged in a gate shape. Part of the spray pipe 403 extends out of the inner shell frame 3 and is located inside the upper shell frame 18. The multi-hole nozzle 407 is disposed on the part of the spray pipe 403 that extends out of the upper shell frame 18.

[0054] The spray head is mounted on the spray pipe 403 and is aligned with the electrode plate 23 for spraying. The spray heads of the spray mechanism 4 are arranged in a stepped manner to ensure thorough spraying.

[0055] In this embodiment, the electrode sheet 23 can be sprayed by the spray pipe 403 and the spray head. The spray head is arranged in a stepped manner, which can make the electrode sheet 23 be sprayed all over, thus enhancing the spraying effect. The upper part of the spray pipe 403 extends into the interior of the upper shell 18, and the multi-hole nozzle 407 is installed in the part of the spray pipe 403 that extends into the upper shell 18, thereby realizing high-pressure rinsing of the box 22.

[0056] For example, the fixing seat 401 is fixedly connected to the inner shell frame 3, and the fixing seat 401 is detachably connected to the connecting plate 402 by screws, and the first connector 404 is installed on the connecting plate 402.

[0057] In this embodiment, there are two first connectors 404. By supplying water to the spray pipe 403 through the two first connectors 404, the cleaning level of the box 22 can be improved.

[0058] In one exemplary embodiment, the atomizing cleaning mechanism 5 includes:

[0059] Positioning seat 501 is set inside the inner shell frame 3, and the fixing seat 401 is provided with a second connector 504.

[0060] Atomizing tube 503 is disposed between the second connectors 504. The atomizing tube 503 is arranged in a door shape. Part of the atomizing tube 503 extends out of the inner shell frame 3 and is located inside the upper shell frame 18. The multi-hole nozzle 407 is disposed on the part of the atomizing tube 503 that extends out of the upper shell frame 18.

[0061] Atomizing head 406 is mounted on atomizing tube 503. Atomizing tube 503 is aligned with electrode plate 23 for atomization cleaning. The atomizing head 406 of the atomization cleaning mechanism 5 is arranged in a stepped manner to ensure thorough atomization cleaning.

[0062] In this embodiment, the atomizing tube 503 and atomizing head 406 are used to perform atomized cleaning of the electrode plate 23. The atomizing head 406 is also arranged in a stepped manner, which enables the electrode plate 23 to be thoroughly atomized and cleaned, thereby enhancing the atomized cleaning effect. The upper part of the atomizing tube 503 is inserted into the upper shell 18, and the multi-hole nozzle 407 is installed in the part of the atomizing tube 503 that is inserted into the upper shell 18, thereby achieving high-pressure rinsing of the box 22.

[0063] For example, the positioning seat 501 is fixedly connected inside the inner shell frame 3, and the positioning plate 502 is detachably connected to the positioning seat 501 by screws, and the first connector 404 is installed on the positioning plate 502.

[0064] In this embodiment, there are two second connectors 504. By supplying water to the atomizing tube 503 through the two second connectors 504, the cleanliness of the box 22 can be improved.

[0065] In an exemplary embodiment, both the spray pipe 403 and the atomizing pipe 503 are equipped with a pressure boosting valve 405, and the multi-hole nozzle 407 is a three-hole nozzle, with adjacent nozzles of the three-hole nozzle arranged at 45°.

[0066] In this embodiment, a pressure boosting valve 405 is provided on the spray pipe 403 and the atomizing pipe 503 to pressurize the multi-hole nozzle 407 and improve the cleaning effect on the box 22.

[0067] For example, each spray pipe 403 and atomizing pipe 503 is provided with four perforated nozzles 407, arranged along the length of the housing 22.

[0068] It is worth noting that the nozzle is a three-hole nozzle, with the nozzles on both sides set at a 45° angle to the middle nozzle. The middle nozzle sprays water vertically upwards, while the nozzles on both sides can effectively clean the corners of the box 22, thereby ensuring the cleanliness of the box 22.

[0069] The recycling mechanism 7 includes a water inlet tank 301, a recycling pipe and a drain pipe 1101. The water inlet tank 301 is connected to the inner shell frame 3. The recycling pipe is installed on the frame 1. The upper end of the recycling pipe is connected to the interior of the upper shell frame 18. The lower end of the recycling pipe is aligned with the water inlet tank 301. The drain pipe 1101 extends out of the water inlet tank 301 and is connected to the interior space of the water inlet tank 301.

[0070] In this embodiment, the water inlet tank 301 can collect the water consumed by the inner shell 3 and the upper shell 18. Through the recycling pipe, the water in the upper shell 18 flows to the recycling pipe and finally flows into the water inlet tank 301, which facilitates the subsequent recycling system to filter and circulate the collected water resources.

[0071] For example, in this embodiment, the water inlet tank 301 is symmetrically arranged at the bottom of the inner shell frame 3, and multiple recovery pipes are provided and fixed on the frame 1, thereby effectively increasing the water recovery efficiency. The top is connected to the bottom surface of the upper shell frame 18, and the bottom is directly opposite the upper surface of the water inlet tank 301, ensuring that the water recovered by the recovery pipes directly enters the water inlet tank 301.

[0072] It is worth noting that in this embodiment, a suitable recycling pipe and water inlet trough 301 can be selected according to the drainage efficiency to prevent the water inlet trough 301 from being too small, which would result in low drainage efficiency.

[0073] In an exemplary embodiment, the recycling system includes a filter box 11 and a storage tank 13. The filter box 11 is connected to a drain pipe 1101. A pump 12 is provided between the filter box 11 and the storage tank 13. The storage tank 13 is provided with a first filter assembly 14 and a second filter assembly 16. The first filter assembly 14 and the second filter assembly 16 supply liquid to the spraying mechanism 4 and the atomizing cleaning mechanism 5, respectively.

[0074] In this embodiment, the water in the inlet tank 301 can be collected by the filter box 11 and the drain pipe 1101. The water is then pumped into the storage tank 13 by the pump 12. Finally, the liquid is filtered by the first filter assembly 14 and the second filter assembly 16 to remove the catalyst in the liquid, which is convenient for subsequent recycling.

[0075] For example, the filter box 11 is divided into two parts: the right part is the space for liquid to enter and the left part is the space after filtration. The bottom surface of the left part is provided with a liquid extraction pipe connected to the liquid pump 12, and a filter screen is provided between the left and right parts of the filter box 11. The screen is mainly used to filter large particulate impurities and complete coarse filtration. After coarse filtration, the liquid enters the liquid extraction pipe and is pumped into the storage tank 13 by the liquid pump 12.

[0076] It is worth noting that in this embodiment, there are also two drain pipes 1101, which are connected to two water inlet tanks 301 respectively, thereby improving the water inlet efficiency.

[0077] In an exemplary embodiment, the first filtration assembly 14 includes a first ion filter tank and a first liquid supply tank. The first liquid supply tank is provided with a first liquid supply pipe 15, which is connected to a spray head.

[0078] In this embodiment, the liquid in the storage tank 13 is filtered by the first filter component 14, and the filtered water is then delivered to the spray head and the multi-hole spray head 407 through the first liquid supply pipe 15 for recycling, thus preventing the waste of water resources.

[0079] For example, in this embodiment, the first ion filter is equipped with a reverse osmosis membrane, and the first ion filter uses a pump to transfer the liquid in the storage tank 13 to the first ion filter for filtration.

[0080] It is worth noting that in this embodiment, since the catalyst contains various ions that dissolve in water, an ion filter is set up to filter the ions in the water to ensure the subsequent recycling of the water. At the same time, reverse osmosis is used to filter the water containing ions. It uses pressure difference as the driving force to filter impurities in the water through the pores on the membrane. The smaller the pore size, the more impurities are filtered. It can usually filter ions, bacteria, viruses, metal ions, other molecules and other substances in the water. This is existing technology and will not be described in detail here.

[0081] In an exemplary embodiment, the second filtration assembly 16 includes a second ion filter tank and a second liquid supply tank. The second liquid supply tank is provided with a second liquid supply pipe 17, which is connected to the atomizing head 406.

[0082] In this embodiment, the liquid in the storage tank 13 is filtered by the second filter assembly 16, and the filtered water is then delivered to the atomizing head 406 and the multi-hole nozzle 407 through the second liquid supply pipe 17 for recycling, thus preventing the waste of water resources.

[0083] For example, in this embodiment, the second ion filter is equipped with a reverse osmosis membrane, and the liquid in the storage tank 13 is transferred to the second ion filter by a pump for filtration.

[0084] It is worth noting that in this embodiment, the reverse osmosis method is used to filter the liquid with the same distance and effect as the first filter component 14.

[0085] In one exemplary embodiment, the upper housing 18 is provided with a motor 19 for driving the conveyor belt 20, a plurality of fixing blocks 21 are evenly arranged on the conveyor belt 20, the box body 22 is upside down on the fixing blocks 21, and a plurality of clearance grooves corresponding to the fixing blocks 21 are opened on the conveyor belt 20.

[0086] In this embodiment, the fixed block 21 can fix and position the box 22, and the box 22 is upside down on the fixed block 21, so that the internal space of the box 22 faces downward, and the high-pressure water sprayed from the multi-hole nozzle 407 can rinse the internal space of the box 22.

[0087] For example, in this embodiment, the opening of the clearance groove allows the high-pressure water sprayed by the multi-hole nozzle 407 to pass through the conveyor belt 20 without being affected by the lower half of the conveyor belt 20 and enter the box 22 for rinsing. The opening of the clearance groove can be greater than the length of the fixing block 21, ensuring that the distance between the upper and lower halves of the conveyor belt 20 during movement is small enough to ensure the cleaning intensity of the box 22.

[0088] In an exemplary embodiment, the transmission mechanism 9 includes a sprocket and a chain disposed on the inner housing 3, and the clamping mechanism 10 further includes a mounting block 1001 disposed on the chain and a chuck rotatably connected to the mounting block 1001. The chuck is divided into a first chuck 1002 and a second chuck 1003. Each clamping mechanism is provided with two first chucks 1002 and two second chucks 1003. The first chucks 1002 are symmetrically arranged, and the second chucks 1003 are symmetrically arranged. The chucks are provided with annular grooves adapted to the electrode sheet 23 to clamp the electrode sheet 23. The top material cylinder 1004 is disposed between the chucks, and the extended end of the top material cylinder 1004 is provided with a top material block.

[0089] In this embodiment, the mounting block 1001 can be mounted on the chain, and the chuck and the annular groove on the chuck can hold the electrode plate 23 in place. The ejector cylinder 1004 can easily eject the electrode plate 23.

[0090] For example, there are four chucks that hold the sides and bottom of the electrode plate 23, providing stable support for the electrode plate 23. At the same time, there are two top-loading cylinders 1004 to facilitate the stability of the electrode plate 23 during unloading. Meanwhile, a sensor can be installed at the end of the unloading section 303. The sensor is electrically connected to the controller and the top-loading cylinder 1004. When the top-loading cylinder 1004 reaches the unloading section 303, the controller controls it to start, pushing the electrode plate 23 out and letting it fall into the collection box 24.

[0091] In summary, the present invention, through the electrode plate 23 processing system and the box body 22 cleaning mechanism, can simultaneously clean the electrode plate 23 and the box body 22, thus meeting the cleaning requirements of both the box body 22 and the electrode plate 23. This reduces the increased labor burden caused by manual cleaning. At the same time, the recycling mechanism 7 and recycling system recycle, filter, and circulate the cleaned water, reducing water waste and saving a large amount of water resources.

[0092] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the invention. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in the present invention should still be covered by the claims of the present invention.

Claims

1. A cleaning apparatus for electrode sheet production, characterized in that, include: The frame includes an inner shell frame, which contains a transmission mechanism. The transmission mechanism is equipped with multiple clamping mechanisms for fixing electrode sheets, and each clamping mechanism is equipped with a top-loading cylinder. An electrode processing system, comprising, from front to back, multiple spraying mechanisms, multiple atomizing cleaning mechanisms, multiple demisting water mechanisms, a recycling mechanism, and multiple drying mechanisms arranged sequentially within an inner housing. A box cleaning mechanism is mounted on a frame. The box cleaning mechanism includes an upper shell frame and a conveyor belt disposed within the upper shell frame. The upper shell frame is provided with multiple multi-hole nozzles, which are respectively connected to the spraying mechanism and the atomizing cleaning mechanism. The recycling mechanism extends through the upper shell frame to collect the liquid inside the upper shell frame. A recycling system is installed inside a frame. The recycling system includes a recycling tank connected to a recycling mechanism and a filtration mechanism connected to the recycling tank. The spraying mechanism and the atomizing cleaning mechanism are both connected to the filtration mechanism. The spraying mechanism includes a fixed base symmetrically arranged within the inner shell frame, each fixed base having a first connector; a spray pipe disposed between the first connectors, the spray pipe being gate-shaped, with a portion of the spray pipe extending out of the inner shell frame and located within the upper shell frame, and a multi-hole nozzle disposed on the portion of the spray pipe extending out of the upper shell frame; and a spray head disposed on the spray pipe, the spray head being aligned with the electrode sheet for spraying, the spray heads of the spraying mechanism being stepped for thorough spraying; The atomizing cleaning mechanism includes a positioning seat disposed within an inner shell frame, each positioning seat having a second connector; an atomizing tube disposed between the second connectors, the atomizing tube being gate-shaped, with a portion of the atomizing tube extending out of the inner shell frame and located within an upper shell frame, and a multi-hole nozzle disposed on the portion of the atomizing tube extending out of the upper shell frame; and an atomizing head disposed on the atomizing tube, the atomizing tube being aligned with the electrode sheet for atomizing cleaning, the atomizing head of the atomizing cleaning mechanism being stepped to ensure thorough atomizing cleaning, both the spray pipe and the atomizing tube being equipped with a pressure boosting valve, and the multi-hole nozzle being a three-hole nozzle, with adjacent nozzles of the three-hole nozzle positioned at a 45° angle. The recycling mechanism includes a water inlet tank, a recycling pipe, and a drain pipe. The water inlet tank is connected to the inner shell frame. The recycling pipe is installed on the frame. The upper end of the recycling pipe communicates with the interior of the upper shell frame. The lower end of the recycling pipe is aligned with the water inlet tank. The drain pipe extends out of the water inlet tank and communicates with the interior space of the water inlet tank. The recycling system includes a filter box and a storage tank. The filter box is connected to the drain pipe. A pump is provided between the filter box and the storage tank. The storage tank is equipped with a first filter assembly and a second filter assembly. The first filter assembly is used to supply liquid to the spraying mechanism, and the second filter assembly is used to supply liquid to the atomizing cleaning mechanism. The upper shell is equipped with a motor for driving the conveyor belt. Multiple fixing blocks are evenly arranged on the conveyor belt. The box is inverted on the fixing blocks. Multiple clearance grooves corresponding to the fixing blocks are opened on the conveyor belt. The transmission mechanism includes a sprocket and a chain mounted on the inner shell frame. The clamping mechanism also includes a mounting block mounted on the chain and a chuck connected to the mounting block. The chuck has an annular groove adapted to the electrode sheet to hold the electrode sheet. The top-feeding cylinder is located between the chucks, and the extended end of the top-feeding cylinder has a top-feeding block.

2. The cleaning apparatus for electrode sheet production according to claim 1, characterized in that: The first filtration assembly includes a first ion filter tank and a first liquid supply tank. The first liquid supply tank is provided with a first liquid supply pipe, which is connected to the spray head.

3. The cleaning apparatus for electrode sheet production according to claim 1, characterized in that: The second filtration assembly includes a second ion filter tank and a second liquid supply tank. The second liquid supply tank is provided with a second liquid supply pipe, which is connected to the atomizing head.

Citation Information

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