Bearing cleaning device for bearing machining
The design of the shaft assembly and spray cleaning structure solves the wear problem during the cleaning of large bearings, achieving a high-efficiency and low-impact cleaning effect, and adapting to the cleaning needs of bearings of different sizes.
Patent Information
- Application Number
- CN202422981204.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-04
AI Technical Summary
Existing bearing cleaning methods suffer from wear and inconvenience, especially large bearings which are prone to colliding with each other during cleaning, resulting in low cleaning efficiency.
A bearing cleaning device was designed, which adopts a sleeve shaft and a spray cleaning structure. The sleeve shaft fixes the bearing through a telescopic plate and a spring structure, and the drive structure drives the sleeve shaft to rotate, which is combined with high-pressure water flow for cleaning.
It reduces the collision between bearings during the cleaning process, improves cleaning efficiency and effectiveness, and adapts to the cleaning needs of bearings of different sizes.
Smart Images

Figure CN223530954U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of bearing cleaning technology, and in particular to a bearing cleaning device for bearing processing. Background Technology
[0002] Some cleaning methods involve manually placing the bearing vertically in a cleaning tank containing cleaning fluid. The inner ring is then manually rotated to allow the cleaning fluid to enter the gap between the inner and outer rings and the gaps between adjacent balls to complete the cleaning. However, some bearings are large and heavy, and during cleaning, the bearings roll and collide with each other, causing wear. This makes cleaning very inconvenient. Therefore, a bearing cleaning device for bearing processing is proposed. Utility Model Content
[0003] The present invention aims to solve the technical problems existing in the prior art and provide a bearing cleaning device for bearing processing.
[0004] To achieve the above objectives, this utility model adopts the following technical solution, including a cleaning tank. The cleaning tank contains a spray cleaning structure for circulating water. Spray cleaning structures and mounting platforms are fixedly installed on the left and right side walls of the cleaning tank, respectively. A mounting shaft is provided between the corresponding drive structures and the mounting platforms. A motor for synchronously rotating the mounting shaft is pre-installed inside the drive structure. Two symmetrical mounting slots are provided on the surface of the mounting shaft. A docking slot is provided on one end of the mounting shaft corresponding to the drive structure. Locking holes communicating with the outside of the mounting shaft are provided on both sides of the inner surface of the docking slot. Two corresponding limiting slots are also provided inside the docking slot, with the two limiting slots perpendicular to the two locking holes. A telescopic plate is provided inside the mounting slot, and the outer side of the telescopic plate has an elastic layer structure.
[0005] Furthermore, positioning holes are provided on both the front and rear ends of the sleeve shaft, and the positioning holes are connected to the interior of the corresponding mounting slots. The telescopic plate has mating holes at both ends that correspond to the inner diameter of the positioning holes.
[0006] Furthermore, the telescopic plate has an internal mounting cavity, the internal wall of which is a groove structure with equal arrangement, and pop-out springs with equal spacing are inserted and fixed inside the mounting cavity.
[0007] Furthermore, a snap-fit groove is provided on the front side of the drive structure, and a limiting top block is fixedly installed at the center of the snap-fit groove. The width of the limiting top block is the same as the opening size of the limiting snap-fit groove.
[0008] Furthermore, both sides of the limiting top block are provided with holes corresponding to the size and position of the locking hole. After the docking slot is inserted into the inside of the locking groove, the limiting top block is inserted between the two limiting slots and locked by bolts.
[0009] Furthermore, the front side of the mounting platform is provided with an access groove, the inner diameter of which is adapted to the outer diameter of the mounting shaft. The mounting shaft is installed between the drive structure and the mounting platform and then rotates.
[0010] This utility model provides a bearing cleaning device for bearing processing, which has the following beneficial effects:
[0011] 1. A bearing cleaning device for bearing processing, comprising a mounting shaft for mounting bearings, wherein a spring is inserted into a mounting cavity inside a telescopic plate for positioning, and the telescopic plate is inserted into a mounting slot and pressed down. Simultaneously, bolts are inserted from both ends of the mounting shaft into positioning holes that align with the corresponding mating holes on the surface of the telescopic plate, thus confining the entire telescopic plate within the mounting slot. The telescopic plate moves outward under the elastic force of multiple mating holes. When mounting the bearing, two telescopic plates are first pressed into the mounting slot. After the bearing is mounted on the outside of the mounting shaft, the two telescopic plates are released, popping out and contacting the inside of the bearing. The anti-slip layer on the surface of the telescopic plate increases friction. The telescopic adjustment within a certain range can accommodate bearings of different sizes, reducing the occurrence of collisions between bearings during rotation and rinsing. Dragging the bearing to rotate also improves the cleaning effect.
[0012] 2. A bearing cleaning device for bearing processing, comprising a detachable sleeve shaft, one end of which has a docking slot corresponding to the drive structure. After two telescopic plates are installed inside the corresponding mounting slots, the docking slot is inserted into the mounting slot. At this time, a limiting top block is inserted between the two limiting slots and engaged. Then, a bolt is used to lock the locking hole into the insertion hole on the surface of the limiting top block to complete the positioning. The front end of the sleeve shaft falls into the inner support of the receiving slot. When the drive structure is rotated by the motor, the entire sleeve shaft will be driven to rotate. The bearing sleeve rotates outside the sleeve shaft. The spray cleaning structure emits high-pressure water jets to rinse the bearing surface. During the rotation, the bearing balls can be cleaned, improving the cleaning effect. Attached Figure Description
[0013] The structures, proportions, sizes, etc. illustrated in this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed in the specification, and are not intended to limit the conditions under which this utility model can be implemented, and therefore have no substantial technical significance.
[0014] Figure 1 This is a schematic diagram of the overall structure;
[0015] Figure 2 This is a schematic diagram of the shaft mating end structure;
[0016] Figure 3 This is a schematic diagram of the tail section of the axle assembly;
[0017] Figure 4 This is a schematic diagram of the drive structure and the mounting platform structure.
[0018] Legend:
[0019] 1. Cleaning tank; 2. Spray cleaning structure; 3. Drive structure; 4. Mounting platform; 5. Assembly shaft; 6. Mounting slot; 7. Docking slot; 8. Limiting slot; 9. Positioning hole; 10. Locking hole; 11. Telescopic plate; 12. Mounting cavity; 13. Pop-out spring; 14. Docking hole; 15. Snap-fit groove; 16. Limiting top block; 17. Access groove. Detailed Implementation
[0020] A bearing cleaning device for bearing processing, such as Figures 1 to 4 As shown, the device includes a cleaning tank 1, inside which a spray cleaning structure 2 for circulating water is installed. The spray cleaning structure 2 and the mounting platform 4 are fixedly installed on the left and right side walls of the cleaning tank 1, respectively. A mounting shaft 5 is provided between the left and right corresponding drive structures 3 and the mounting platform 4. The drive structure 3 has a motor for synchronously rotating the mounting shaft 5. The surface of the mounting shaft 5 has two symmetrical mounting slots 6. The end surface of the mounting shaft 5 corresponding to the drive structure 3 has a docking slot 7. The two sides of the inside of the docking slot 7 have locking holes 10 that connect to the outside of the mounting shaft 5. The inside of the docking slot 7 also has two corresponding limiting slots 8. The two limiting slots 8 and the two locking holes 10 are perpendicular to each other. The inside of the mounting slot 6 has a telescopic plate 11. The outside of the telescopic plate 11 is an elastic layer structure.
[0021] The front and rear ends of the mounting shaft 5 are provided with positioning holes 9, which are connected to the interior of the corresponding mounting slots 6. The two ends of the telescopic plate 11 are provided with mating holes 14 that correspond to the inner diameter of the positioning holes 9.
[0022] The telescopic plate 11 has an internal mounting cavity 12. The internal wall of the mounting cavity 12 is a groove structure with equal spacing. Equally spaced pop-out springs 13 are inserted and fixed inside the mounting cavity 12. After the telescopic plate 11 is inserted into the corresponding mounting slot 6, bolts are passed through the positioning holes 9 on both sides of the outer side of the sleeve shaft 5 and inserted into the mounting slot 6 to align with the docking holes 14 on both sides of the telescopic plate 11. This keeps the entire telescopic plate 11 confined inside the mounting slot 6. Under normal conditions, the telescopic plate 11 is pushed outward by the elastic force of multiple pop-out springs 13.
[0023] The front side of the drive structure 3 has a snap-fit groove 15. A limiting top block 16 is fixedly installed in the center of the snap-fit groove 15. The width of the limiting top block 16 is the same as the opening size of the limiting snap-fit groove 8. Both sides of the limiting top block 16 have holes corresponding to the position and size of the locking hole 10. After the docking slot 7 is snapped into the inside of the snap-fit groove 15, the limiting top block 16 is inserted between the two limiting snap-fit grooves 8 and locked by bolts. Then, when the drive structure 3 rotates, the sleeve shaft 5 will move synchronously with the drive structure 3.
[0024] The front side of the mounting platform 4 is provided with an access groove 17. The inner diameter of the access groove 17 is adapted to the outer diameter of the sleeve shaft 5. After the sleeve shaft 5 is mounted between the mounting platform 4 and the drive structure 3, the front end of the sleeve shaft 5 is inserted into the inner support of the access groove 17 to keep the sleeve shaft 5 relatively stable during rotation.
[0025] The working principle of this utility model:
[0026] By using a mounting shaft 5 for mounting bearings, a spring 13 is inserted into the mounting cavity 12 inside the telescopic plate 11 for positioning. The telescopic plate 11 is then inserted into the mounting slot 6 and pressed down. Simultaneously, bolts are inserted from both ends of the mounting shaft 5 into the positioning holes 9 and the corresponding mating holes 14 on the surface of the telescopic plate 11, thus confining the position of the entire telescopic plate 11 inside the mounting slot 6. Under the elastic force of the multiple mating holes 14, the telescopic plate 11 will move outward. When mounting the bearing, first press the two telescopic plates 11 into the mounting slot 6. After the bearing is mounted on the outside of the mounting shaft 5, release the two telescopic plates 11, which pop out and contact the inside of the bearing. The anti-slip layer on the surface of the telescopic plate 11 increases friction. Within a certain range, the telescopic adjustment can accommodate bearings of different sizes, reducing the occurrence of collisions between bearings during rotation and rinsing. Pulling the bearing to rotate also improves the cleaning effect on the bearing.
[0027] The sleeve shaft 5 is designed for easy disassembly. One end of the sleeve shaft 5 corresponds to the drive structure 3 and has a docking slot 7. After the two telescopic plates 11 are installed inside the corresponding mounting slots 6, the docking slot 7 is inserted into the slot 15. At this time, the limiting top block 16 is inserted between the two limiting slots 8 and engaged. Then, a bolt is used to lock the locking top block 16 into the insertion hole on the surface of the limiting top block 16 to complete the positioning. The front end of the sleeve shaft 5 falls into the support of the access slot 17. When the drive structure 3 is rotated by the motor, the entire sleeve shaft 5 will be driven to rotate. The bearing is mounted on the outside of the sleeve shaft 5 and rotates. The spray cleaning structure 2 emits high-pressure water jets to rinse the bearing surface. During the rotation, the bearing balls can be cleaned, improving the cleaning effect.
[0028] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.
Claims
1. A bearing cleaning device for bearing processing, comprising a cleaning tank (1), wherein a spray cleaning structure (2) for circulating water flow is installed inside the cleaning tank (1), and a spray cleaning structure (2) and a mounting platform (4) are respectively fixedly installed on the left and right side walls inside the cleaning tank (1), characterized in that: A mounting shaft (5) is provided between the left and right corresponding drive structures (3) and the mounting platform (4). The drive structure (3) has a motor for synchronously rotating the mounting shaft (5). The surface of the mounting shaft (5) has two symmetrical mounting slots (6). The end surface of the mounting shaft (5) corresponding to the drive structure (3) has a docking slot (7). The inner two sides of the docking slot (7) have locking holes (10) that connect to the outside of the mounting shaft (5). The inside of the docking slot (7) also has two corresponding limiting slots (8). The two limiting slots (8) and the two locking holes (10) are perpendicular to each other. The inside of the mounting slot (6) has a telescopic plate (11). The outer side of the telescopic plate (11) is an elastic layer structure.
2. The bearing cleaning device for bearing processing according to claim 1, characterized in that: The front and rear ends of the mounting shaft (5) are provided with positioning holes (9), which are connected to the interior of the corresponding mounting slot (6). The two ends of the telescopic plate (11) are provided with mating holes (14) that correspond to the inner diameter of the positioning holes (9).
3. The bearing cleaning device for bearing processing according to claim 1, characterized in that: The telescopic plate (11) has an installation cavity (12) inside. The inner wall of the installation cavity (12) is a groove structure with equal spacing. Equally spacing pop-out springs (13) are inserted and fixed inside the installation cavity (12).
4. The bearing cleaning device for bearing processing according to claim 1, characterized in that: The drive structure (3) has a snap-fit groove (15) on its front side. A limiting top block (16) is fixedly installed at the center of the snap-fit groove (15). The width of the limiting top block (16) is the same as the opening size of the limiting groove (8).
5. The bearing cleaning device for bearing processing according to claim 4, characterized in that: Both sides of the limiting top block (16) are provided with holes corresponding to the position and size of the locking hole (10). After the docking slot (7) is inserted into the inside of the locking groove (15), the limiting top block (16) is inserted between the two limiting slots (8) and locked by bolts.
6. The bearing cleaning device for bearing processing according to claim 1, characterized in that: The front side of the mounting platform (4) is provided with an access groove (17). The inner diameter of the access groove (17) is adapted to the outer diameter of the mounting shaft (5). The mounting shaft (5) is installed between the drive structure (3) and the mounting platform (4) and then rotates.