Electrode plate cleaning device
By introducing a rotating screen plate and a water pump filtration system into the electrode plate cleaning device, the problem that impurities in the cleaning liquid affect the cleaning effect is solved, impurities collection and filtration are realized, and the stability and cleaning efficiency of the device are improved.
Patent Information
- Application Number
- CN202421760558.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-24
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-07-24
AI Technical Summary
When the existing electrode plate cleaning device uses ultrasonic to clean impurities, too much impurities in the cleaning liquid will affect the cleaning effect and require regular cleaning. The existing blocking measures are limited in effect.
An electrode plate cleaning device including a silo, an ultrasonic generator, a rotating screen plate, a water pump and a filter block is designed. Impurities are collected through the rotating screen plate, and the water pump extracts the cleaning liquid and filters through the filter block to avoid impurities returning, and combines a fixing mechanism to stabilize the fixing tube to ensure the stability of the device.
Effectively prevent impurities from flowing back, maintain cleaning effect, reduce manual cleaning frequency, and improve the working stability and efficiency of the device.
Smart Images

Figure CN223113702U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of cleaning devices, and particularly relates to an electrode plate cleaning device. Background Art
[0002] After long-term use, a large amount of impurities will adhere to the surface of the electrode. To ensure the working effect of the electrode, a cleaning device is needed to clean the electrode. Most of the existing cleaning devices use ultrasonic waves to clean the impurities adhering to the electrode. However, when cleaning the impurities by ultrasonic waves, a large amount of impurities will float in the cleaning liquid. When there are too many impurities in the cleaning liquid, the cleaning effect of the device on the electrode will be affected. In order to reduce the influence of impurities on the working effect of the device, the existing cleaning devices will set an inclined baffle at the bottom of the placement frame to prevent impurities from floating upward. However, the blocking effect of this method is limited and the user needs to clean the impurities in the cleaning liquid regularly, resulting in the working effect of the device being affected. Content of the Utility Model
[0003] The utility model provides an electrode plate cleaning device to solve the problems raised in the above background art.
[0004] To achieve the above object, the utility model provides the following technical scheme: An electrode plate cleaning device includes a bin body, an ultrasonic generator, and an infusion tube, and further includes a rotating sieve plate and a fixing mechanism. A plurality of the ultrasonic generators are provided on the side wall of the bin body. A placement grid is provided on the groove of the bin body. A collection tank is provided at the bottom of the side wall of the groove of the bin body. The rotating sieve plate is installed at the opening of the collection tank. The infusion tube and a water pump are provided on the side wall of the bin body. The infusion tube and the water pump are connected through a replacement tube. An annular groove is provided at the port of the replacement tube. A filter block is installed on the annular groove of the replacement tube. A bent fixing tube is installed on the top pipeline of the water pump.
[0005] The fixing mechanism includes a fixing block, a placement groove, and a spring. The placement groove is provided on the top protrusion of the bin body. The fixing block is installed on the grooves of the two side walls of the placement groove through a plurality of the springs.
[0006] Preferably, the shape of the bottom side wall of the fixing block is arc-shaped.
[0007] Preferably, the shape of the opposite end faces of the fixing block is arc-shaped.
[0008] Preferably, the shape of the side wall of the rotating sieve plate is arc-shaped, and an arc-shaped groove is provided on the side wall of the collection tank.
[0009] Preferably, electric telescopic rods are provided on the top and bottom side walls of the collection tank, grooves cooperating with the electric telescopic rods are provided on the side wall of the rotating sieve plate, and the end face of the electric telescopic rod is in an arc shape cooperating with the arc-shaped groove.
[0010] Preferably, the bottom surface of the groove of the bin body is in an inclined plane inclined towards the collection tank, and the edges of the bin body and the collection tank are in an arc shape.
[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0012] By providing a collection tank and a rotating sieve plate in the present utility model, the collection tank is used for impurities removed by cleaning, and the rotating sieve plate can seal the impurities inside the collection tank to prevent the impurities from returning to the inside of the bin body, ensuring the working effect of the device. By providing a water pump and a replacement pipe equipped with a filter block, when collecting impurities, the cleaning liquid with impurities can be sent into the collection tank through the water pump, ensuring the working effect of the collection tank. The filter block can prevent the impurities from returning to the inside of the bin body. By providing a fixing mechanism, the stability of the bent fixing pipe during the use of the device is ensured. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 is a schematic structural diagram of the present utility model;
[0014] Figure 2 is a schematic cross-sectional structural diagram of the present utility model;
[0015] Figure 3 is Figure 2 a schematic structural diagram of part A in
[0016] Figure 4 is Figure 2 a schematic structural diagram of part B in
[0017] Figure 5 is a schematic structural diagram of the fixing mechanism in the present utility model.
[0018] In the figure: 1, bin body; 11, placement grille; 12, collection tank; 2, ultrasonic generator; 3, rotating sieve plate; 31, electric telescopic rod; 32, arc-shaped groove; 4, infusion tube; 41, replacement tube; 42, water pump; 43, bent fixing tube; 44, filter block; 5, fixing mechanism; 51, fixing block; 52, placement groove; 53, spring. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0019] Please refer to Figures 1-5, the present utility model provides the following technical solutions: An electrode plate cleaning device includes a chamber body 1, an ultrasonic generator 2, and an infusion tube 4, and further includes a rotating sieve plate 3 and a fixing mechanism 5. A plurality of ultrasonic generators 2 are provided on the side wall of the chamber body 1. A placement grid 11 is provided on the groove of the chamber body 1. A collection groove 12 is provided at the bottom of the side wall of the groove of the chamber body 1. A rotating sieve plate 3 is installed at the opening of the collection groove 12. An infusion tube 4 and a water pump 42 are provided on the side wall of the chamber body 1. The infusion tube 4 and the water pump 42 are connected and communicated through a replacement tube 41. An annular groove is provided at the port of the replacement tube 41. A filter block 44 is installed on the annular groove of the replacement tube 41. A bent fixing tube 43 is installed on the top pipe of the water pump 42;
[0020] The fixing mechanism 5 includes a fixing block 51, a placement groove 52, and a spring 53. A placement groove 52 is provided on the top protrusion of the chamber body 1. Fixing blocks 51 are installed on the grooves of the two side walls of the placement groove 52 through a plurality of springs 53.
[0021] The storage body 1 is used for cleaning the electrode plates. The placement grid 11 is used to place the electrode plates to be processed. The ultrasonic generator 2 can generate ultrasonic waves. The ultrasonic waves generated by the ultrasonic generator 2 are transmitted to the inside of the storage body 1. The impurities attached to the electrode plates start to vibrate under the action of the ultrasonic waves, and the impurities are separated from the electrode plates under the action of the ultrasonic waves, ensuring the cleaning effect of the device on the electrode plates. By setting several ultrasonic generators 2, the working effect of the device is ensured. The position where the ultrasonic generator 2 is set is in the upper half of the storage body 1, ensuring the working effect. The rotating sieve plate 3 plays a role in blocking the impurities cleaned by the device, preventing the impurities from moving between the storage body 1 and the collection tank 12. The rotating sieve plate 3 is provided with a motor, and the user can control the rotation of the rotating sieve plate 3 through the motor. The water pump 42 can pump the cleaning liquid in the storage body 1 into the inside of the replacement pipe 41, and then the cleaning liquid pumped out by the water pump 42 will return to the storage body 1 through the bent fixed pipe 43. When the water pump 42 pumps the cleaning liquid in the storage body 1, the impurities in the storage body 1 will be carried and moved during the flow of the cleaning liquid, and then the impurities will adhere to the rotating sieve plate 3. At this time, control the rotation of the rotating sieve plate 3, and the impurities will enter the inside of the collection tank 12 under the action of the flowing cleaning liquid and the rotating rotating sieve plate 3. At this time, turn off the water pump 42, and the impurities in the collection tank 12 are sealed inside the collection tank 12 by the rotating sieve plate 3, preventing the impurities in the collection tank 12 from entering the inside of the storage body 1, ensuring the working effect of the device. When the impurities enter the collection tank 12, some impurities will enter the replacement pipe 41 under the action of the water pump 42. The filter block 44 on the replacement pipe 41 can filter the impurities, preventing the impurities from returning to the storage body 1 through the bent fixed pipe 43. The installation method of the filter block 44 is convenient for the user to replace the filter block 44. The structure of the bent fixed pipe 43 ensures that the user can bend the bent fixed pipe 43 into any shape. When the user cleans the storage body 1 and the placement grid 11 and places and takes the electrode plates, the bent fixed pipe 43 can be bent into a state away from the groove of the storage body 1, preventing the user's work from being affected;
[0022] The placement groove 52 is used to place the bent fixed pipe 43. The fixing block 51 plays a role in fixing the bent fixed pipe 43, ensuring the stability of the bent fixed pipe 43. The top surface shape of the fixing block 51 is an inclined plane. During the process of the user installing the bent fixed pipe 43 onto the placement groove 52, the bent fixed pipe 43 will push the fixing block 51, ensuring that the fixing block 51 does not obstruct the user from placing the bent fixed pipe 43 onto the placement groove 52. The spring 53 provided on the fixing block 51 ensures that the pushed fixing block 51 can quickly return to its original position, ensuring that the fixing block 51 can quickly return to its original position after being pushed. The spring 53 also applies pressure to the fixing block 51, ensuring the stability of the fixing block 51 during the use of the device.
[0023] Specifically, the shape of the bottom side wall of the fixing block 51 is arc-shaped.
[0024] The bottom shape of the fixing block 51 ensures that the fixing block 51 and the placement groove 52 can fit the side wall of the bent fixing pipe 43, ensuring the fixing effect of the fixing block 51 on the bent fixing pipe 43. Buffer pads are provided on the side walls of the fixing block 51 and the bent fixing pipe 43, reducing the damage suffered by the bent fixing pipe 43 during the fixing process. The buffer pads provided on the fixing block 51 and the bent fixing pipe 43 increase the friction force received by the bent fixing pipe 43, ensuring the stability of the bent fixing pipe 43 after being fixed.
[0025] Specifically, the shape of the opposite end faces of the fixing block 51 is arc-shaped.
[0026] The shape of the opposite end faces of the fixing block 51 reduces the wear received during the process of the bent fixing pipe 43 pushing against the fixing block 51, extending the service life of the fixing block 51 and the bent fixing pipe 43.
[0027] Specifically, the shape of the side wall of the rotating sieve plate 3 is arc-shaped, and an arc-shaped groove 32 is provided on the side wall of the collection tank 12.
[0028] The shape of the side wall of the rotating sieve plate 3 and the arc-shaped groove 32 cooperate to ensure that the rotating sieve plate 3 will not be hindered during the rotation process. The shape of the arc-shaped groove 32 ensures that the side wall of the rotating sieve plate 3 can fit the side wall of the arc-shaped groove 32, preventing impurities stored inside the collection tank 12 from entering the inside of the bin 1 during the use of the device, which may affect the working effect of the device.
[0029] Specifically, electric telescopic rods 31 are provided on the top and bottom side walls of the collection tank 12, and grooves for cooperating with the electric telescopic rods 31 are provided on the side wall of the rotating sieve plate 3. The end face shape of the electric telescopic rod 31 is arc-shaped for cooperating with the arc-shaped groove 32.
[0030] Through the cooperation of the electric telescopic rod 31 and the side wall groove of the rotating sieve plate 3, the rotating sieve plate 3 can be fixed, ensuring the stability of the rotating sieve plate 3 during the use of the device, and thus ensuring the working effect of the rotating sieve plate 3. When the user releases the fixing of the rotating sieve plate 3 by the electric telescopic rod 31, the end face shape of the electric telescopic rod 31 ensures that the end face of the electric telescopic rod 31 and the arc-shaped groove 32 can form a complete groove, ensuring the working effect of the arc-shaped groove 32 while avoiding impurities from accumulating inside the groove where the arc-shaped groove 32 is penetrated by the electric telescopic rod 31.
[0031] Specifically, the bottom surface shape of the groove of the bin 1 is an inclined surface inclined towards the collection tank 12, and the shapes of the edges of the bin 1 and the collection tank 12 are arc-shaped.
[0032] The bottom shape of the bin body 1 ensures that the impurities precipitated in the bin body 1 will move towards the collecting tank 12, facilitating the device to pump the impurities into the interior of the collecting tank 12, and facilitating the user to clean the impurities in the bin body 1. The edge shapes of the bin body 1 and the collecting tank 12 can prevent impurities from accumulating at the corners of the bin body 1 and the collecting tank 12, facilitating the user to clean the impurities in the bin body 1 and the collecting tank 12.
[0033] The working principle and usage process of the present utility model: Place the electrode plate to be processed on the placement grid 11, start the ultrasonic generator 2, and the impurities attached to the electrode plate will detach from the electrode plate under the action of ultrasonic waves. When there are too many impurities in the cleaning liquid, move the bending fixed pipe 43, the bending fixed pipe 43 disengages from the placement groove 52, align the opening of the bending fixed pipe 43 with the opening of the bin body 1, start the water pump 42, the water pump 42 pumps the cleaning liquid in the bin body 1 into the replacement pipe 41, and then the cleaning liquid returns to the bin body 1 through the bending fixed pipe 43. As the cleaning liquid flows, impurities adhere to the rotating sieve plate 3. Control the electric telescopic rod 31 to contract, the fixation of the rotating sieve plate 3 by the electric telescopic rod 31 is released, control the rotating sieve plate 3 to rotate. As the rotating sieve plate 3 rotates, the impurities attached to the rotating sieve plate 3 and the impurities in the cleaning liquid enter the collecting tank 12. Then, restore the rotating sieve plate 3 and the electric telescopic rod 31 to their original positions. The impurities are sealed inside the collecting tank 12. The impurities in the cleaning liquid will be filtered out by the filter block 44 when flowing through the filter block 44, ensuring that the impurities will not return to the interior of the bin body 1.
[0034] Finally, it should be noted that the above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. An electrode plate cleaning device, comprising a bin body (1), an ultrasonic generator (2) and an infusion tube (4), characterized in that: It further includes a rotating sieve plate (3) and a fixing mechanism (5). A plurality of the ultrasonic generators (2) are provided on the side wall of the bin body (1). A placing grille (11) is provided on the groove of the bin body (1). A collecting groove (12) is provided at the bottom of the side wall of the groove of the bin body (1). The rotating sieve plate (3) is installed at the opening of the collecting groove (12). An infusion pipe (4) and a water pump (42) are provided on the side wall of the bin body (1). The infusion pipe (4) and the water pump (42) are connected and communicated through a replacement pipe (41). An annular groove is provided at the port of the replacement pipe (41). A filter block (44) is installed on the annular groove of the replacement pipe (41). A bent fixing pipe (43) is installed on the top pipe of the water pump (42); The fixing mechanism (5) includes a fixing block (51), a placing groove (52) and a spring (53). The placing groove (52) is provided on the top protrusion of the bin body (1). The fixing block (51) is installed on the grooves of the side walls on both sides of the placing groove (52) through a plurality of the springs (53).
2. The electrode plate cleaning device according to claim 1, wherein: The shape of the bottom side wall of the fixing block (51) is arc-shaped.
3. The electrode plate cleaning device according to claim 1, characterized in that: The shape of the opposite end faces of the fixing block (51) is arc-shaped.
4. An electrode plate cleaning device according to claim 1, characterized in that: The shape of the side wall of the rotating sieve plate (3) is arc-shaped. An arc-shaped groove (32) is provided on the side wall of the collecting groove (12).
5. An electrode plate cleaning device according to claim 4, characterized in that: Electric telescopic rods (31) are provided on the top and bottom side walls of the collecting groove (12). A groove matching with the electric telescopic rods (31) is provided on the side wall of the rotating sieve plate (3). The end face shape of the electric telescopic rods (31) is arc-shaped matching with the arc-shaped groove (32).
6. The electrode plate cleaning device according to claim 1, characterized in that: The bottom surface shape of the groove of the bin body (1) is an inclined surface inclined towards the collecting groove (12). The shapes of the edges of the bin body (1) and the collecting groove (12) are arc-shaped.