An inner diameter grinding device and grinding method for intelligent production of bicycle hubs

By designing an inner diameter grinding device for intelligent production of bicycle hubs, the high-speed rotating brush sleeve and lateral slippage of the toggle parts is used to solve the problem that the existing technology cannot effectively polish the ratchet grooves in the drum, and the full polishing of the ratchet surface and the improvement of the meshing effect of the drum is achieved.

CN119566997BActive Publication Date: 2025-06-10KUNSHAN XINXIAOFENG PRECISION TECH CO LTD
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Patent Information

Application Number
CN202510143107.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-10
Publication Date
2025-06-10
Estimated Expiration
2045-02-10

AI Technical Summary

Technical Problem

The internal diameter grinding device in the production of existing bicycle hubs cannot effectively polish the inner ratchet grooves inside the hubs, resulting in metal burrs and small raised structures between the ratchets, affecting the meshing and wear of the drums.

Method used

An inner diameter grinding device for intelligent production of bicycle hubs is designed, including a processing platform, a rotating frame, a grinding unit and a quick disassembly and assembly unit. The grinding unit drives the brush sleeve to rotate at high speed by driving the motor and gear differential box, and combines the lateral sliding of the toggle parts to achieve full grinding of the inner ratchet groove. The quick disassembly unit realizes automatic locking and unlocking of the grinding parts through limiting parts and touching parts.

Benefits of technology

The ratchet surface inside the drum is effectively polished, eliminating metal burrs and small raised structures, and improving the meshing effect and service life of the drum.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an inner diameter grinding device and a grinding method for the intelligent production of bicycle hubs, which relates to the field of bicycle hub grinding, and includes: a processing platform and a hub rotatably mounted on the processing platform. One end of the hub is provided with an inner ratchet groove. A lifting cylinder is also fixedly arranged on the top of the processing platform. The output end of the lifting cylinder faces upward, and a fixing plate is fixedly assembled on the output end of the lifting cylinder. In the present invention, the grinding unit drives the grinding component to rotate at a high speed, and fully grinds the burrs on the surface of the ratchets in the inner ratchet groove. Moreover, through the action of the quick disassembly and assembly unit, before and after the grinding unit performs the grinding operation, the state of the grinding component can be switched between unlocking and locking. That is, before the grinding operation, it is convenient for the staff to replace the appropriate grinding component, and during the grinding operation, the grinding component can be automatically locked and an effective grinding operation for the inner ratchet groove can be carried out.
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Description

Technical Field

[0001] The present invention relates to the field of bicycle hub grinding, and specifically to an inner diameter grinding device and grinding method for intelligent production of bicycle hubs. Background Art

[0002] A bicycle hub is an important component connecting the spokes and the axle, and forms a complete wheel set by connecting to the rim through the spokes. The hub realizes the drive of the wheel set through a ratchet device. When pedaling, the pawl bites into the ratchet teeth to transmit the driving force; when stopping pedaling, the pawl releases the ratchet teeth, and the bicycle slides by inertia. During the production process of the hub, it is necessary to grind the inner wall of the hub. After grinding smoothly, it is convenient to assemble various transmission structures.

[0003] A Chinese published document (CN116587083A) records an inner diameter grinding device for bicycle hub production. In this document, by providing a grinding component one, the inner walls of the cavity sections where bearings are installed at both ends of the bicycle hub can be ground simultaneously. By rotating the hexagonal rotating block, the collar can slide on the outer surface of the threaded connecting rod under the combined use of the collar, the limiting block and the limiting groove, thereby pushing multiple drag rods to move. Since the connection methods between the drag rods and the collar and the slider are both movable connections, and the inclined rail and the connecting column are installed at a certain angle, rotating the hexagonal rotating block can make the slider move in the inclined rail, thereby pushing multiple L-shaped grinding plates outward, and it can be realized that no matter how large the inner diameter of the cavity section where the bicycle hub installs the bearing is, effective grinding treatment can be carried out in this way;

[0004] However, in the above-mentioned disclosed solution, it does not consider that there is an inner ratchet assembly chamber inside the hub. The inner wall of this chamber is distributed with several ratchet teeth evenly distributed in a circle. Due to the protruding structure of the ratchet teeth, the grinding method described above cannot effectively grind the ratchet teeth, that is, many detailed corner parts of the ratchet teeth cannot be ground, resulting in metal burrs or protruding small structures between adjacent ratchet teeth. This structure will cause the pawl of the hub not to effectively mesh with the ratchet teeth completely, or will accelerate the wear of the pawl of the hub during each meshing and separation process between the pawl of the hub and the ratchet teeth, making the pawl of the hub easily damaged. Summary of the Invention

[0005] The purpose of the present invention is to provide an inner diameter grinding device and grinding method for intelligent production of bicycle hubs to solve the problems raised in the above background art.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an inner diameter grinding device for intelligent production of bicycle hubs, comprising: a processing platform and a hub rotatably mounted on the processing platform, one end of the hub is provided with an inner ratchet groove, a lifting cylinder is fixedly arranged on the top of the processing platform, the output end of the lifting cylinder faces upward, and a fixing plate is fixedly mounted on the output end of the lifting cylinder, wherein the bracket for mounting the hub is a supporting frame commonly used in the prior art, and the hub can also be driven by an external motor to rotate at a uniform speed inside the bracket;

[0007] It also includes: a grinding unit, the grinding unit includes a grinding component, the grinding unit grinds the inner wall of the hub through the grinding component, the grinding unit is mounted on the top of the fixing plate, and the grinding component is located on a side of the grinding unit facing the inner ratchet groove;

[0008] The quick disassembly unit is used to automatically lock and unlock the grinding component.

[0009] Preferably, the grinding unit includes a supporting plate located directly above the fixed plate, and four positioning rods distributed in a matrix are embedded inside the supporting plate, the bottom of the positioning rod slides through the fixed plate, and a tension spring is fixedly arranged between the fixed plate and the supporting plate, a gear differential case and a drive motor are fixedly arranged on the upper end surface of the supporting plate, and the drive motor is located on the side of the gear differential case away from the hub, the output end of the drive motor is connected to the output end of the gear differential case through a coupling, the grinding component is located at the output end of the gear differential case, and a toggle component is also arranged between the supporting plate and the fixed plate, and the gear differential case is a continuously variable transmission, which can freely adjust the speed of the output end of the gear differential case.

[0010] Preferably, the toggle component includes four first slide grooves arranged in a matrix pattern inside the carrier plate, and each of the first slide grooves is respectively distributed outside the four positioning rods, the positioning rods and the first slide grooves are assembled for transverse sliding, and the interior of the carrier plate is also axially rotatably assembled with a rotating shaft, the outer surface of the output end of the drive motor and the upper end of the rotating shaft are fixedly provided with bevel gears, the two bevel gears are meshed with each other, the outer surface of the lower end of the rotating shaft is fixedly provided with a cam column, and the outer wall of the cam column is slidably fitted with the fixed plate, and when the drive motor is running, it can drive the rotating shaft and the cam column to rotate through the two meshing bevel gears.

[0011] Preferably, the grinding component includes a drive shaft fixedly arranged at the output end of the gear differential, and a cleaning sleeve is movably sleeved at one end of the drive shaft away from the gear differential. An assembly ring is fixedly arranged at one end of the cleaning sleeve close to the gear differential. A retaining piece for limiting the assembly ring is also fixedly sleeved on the outer surface of the drive shaft. A plurality of grinding brushes are fixedly inserted on the outer surface of the cleaning sleeve, and the cleaning sleeve grinds the tooth surfaces of the internal ratchet grooves through the grinding brushes.

[0012] Preferably, the quick disassembly and assembly unit includes a second chamber and a first chamber opened inside the drive shaft, and the second chamber is located at one end of the first chamber close to the gear differential. A contact rod is also slidably fitted inside the drive shaft, and both ends of the contact rod are respectively placed inside the second chamber and the first chamber. A circular convex platform is axially slidably sleeved between the inside of the second chamber and the outer surface of the drive shaft. A receiving plate is fixedly arranged at one end of the contact rod close to the gear differential, and a second spring is fixedly arranged between the receiving plate and the circular convex platform. A limiting component is arranged between the other end of the contact rod and the assembly ring. A triggering component is also arranged between the fixed plate and the circular convex platform. When the distance between the fixed plate and the bearing plate increases, the limiting component can be activated through the triggering component, and the drive shaft and the cleaning sleeve are fixed under the action of the limiting component.

[0013] Preferably, the limiting component includes a conical block fixedly arranged at one end of the contact rod away from the gear differential. A plurality of pins are slidably fitted on the inner wall of the first chamber and are circumferentially and equidistantly distributed. A collar is fixedly sleeved on the outer surface of one end of the pin extending into the inside of the first chamber, and a third spring is fixedly arranged between the end of the collar away from the axis of the drive shaft and the inner wall of the drive shaft. A plurality of positioning grooves are also opened inside the assembly ring, and the end parts of the plurality of pins are respectively movably embedded inside the plurality of positioning grooves. The end of the pin away from the positioning groove is slidably attached to the outer surface of the conical block. The outer diameter of the conical block gradually decreases from the direction of the gear differential to the direction of the hub. When the conical block moves towards the hub, a plurality of pins can be synchronously pushed in, so that the drive shaft and the cleaning sleeve are limited together.

[0014] Preferably, the touch component includes two connecting columns slidably inserted into the inside of the carrying plate, a limit block is fixedly provided on the upper end of the connecting column, a sliding block is slidably mounted between the two connecting columns, the sliding block is displaced above the driving shaft, and a first spring is fixedly provided between the bottom of each limit block and the sliding block, two second sliding grooves are provided inside the fixed plate, and the bottoms of the two connecting columns are both laterally slidably embedded in the inside of the second sliding grooves, an extension rod is fixedly provided at the bottom center of the sliding block, and a ball is rotatably embedded in the exposed end of the extension rod, the ball is in sliding contact with the oblique arc surface of the circular boss, and when the extension rod is pressed downward, the circular boss can be pushed by the ball, thereby changing the position of the circular boss and the touch rod.

[0015] Preferably, a thread groove is formed on the outer surface of the cleaning sleeve, and the end of the cleaning sleeve away from the gear differential case is open, and the open port enables the end of the thread groove to collect grinding debris and discharge it outward through the thread groove.

[0016] Preferably, the oblique arc surface of the circular boss faces the gear differential case.

[0017] A grinding method for an inner diameter grinding device of an intelligently produced bicycle hub, the grinding method comprising the following steps:

[0018] S1. During the debugging phase before grinding, the hub is rotated and mounted on the upper end surface of the processing platform, and the cleaning sleeve is extended into the inner ratchet groove, and then the fixed plate is moved down by the lifting cylinder. Since the cleaning sleeve is stuck in the inner ratchet groove, the tension spring can be stretched, so that the cleaning sleeve is in elastic contact with the outer surface of the ratchet teeth of the inner ratchet groove;

[0019] S2, triggering stage, when the distance between the fixed plate and the bearing plate increases, the round boss, the touch rod and the conical block are pushed by the ball bearing, so that the limiting component limits the positional relationship between the driving shaft and the cleaning sleeve;

[0020] S3, grinding stage, the driving motor and the gear differential box drive the driving shaft to rotate with the cleaning brush sleeve at high speed, and the cleaning brush sleeve fully grinds the inner wall of the inner ratchet groove through a plurality of grinding brushes distributed on its surface, and the driving shaft and the cleaning brush sleeve can slide back and forth frequently laterally against the inner wall of the inner ratchet groove by toggling the component, thereby improving the grinding effect.

[0021] Compared with the prior art, the present invention has the following beneficial effects:

[0022] In the present invention, a grinding unit drives a grinding component to rotate at a high speed, fully grinding the burrs on the surface of the ratchet teeth in the internal ratchet groove. Moreover, through the action of a quick disassembly and assembly unit, before and after the grinding unit performs grinding operations, the state of the grinding component can be switched between unlocking and locking. That is, before the grinding operation, it is convenient for the staff to replace the appropriate grinding component, and during the grinding operation, the grinding component can be automatically locked and an effective grinding operation for the internal ratchet groove can be carried out. Brief Description of the Drawings

[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0024] Figure 2 It is a schematic diagram of the driving motor and gear differential box structure of the present invention;

[0025] Figure 3 It is a schematic diagram of the bevel gear structure of the present invention;

[0026] Figure 4 It is a schematic diagram of the first chute and second chute structure of the present invention;

[0027] Figure 5 It is a schematic diagram of the first spring and sliding block structure of the present invention;

[0028] Figure 6 It is a schematic diagram of the internal structure of the drive shaft of the present invention;

[0029] Figure 7 For the present invention Figure 6 Enlarged view at A in;

[0030] Figure 8 It is a schematic diagram of the cleaning sleeve of the present invention.

[0031] In the figure: 1. Processing platform; 2. Lifting cylinder; 3. Fixed plate; 4. Bearing plate; 5. Tension spring; 6. Positioning rod; 7. Driving motor; 8. Gear differential box; 9. Flower drum; 10. Internal ratchet groove; 11. First chamber; 12. Rotating shaft; 13. Bevel gear; 14. Cam column; 15. First chute; 16. Second chute; 17. Drive shaft; 18. Retaining piece; 19. Assembly ring; 20. Cleaning sleeve; 21. Threaded groove; 22. Connecting column; 23. Limiting block; 24. First spring; 25. Sliding block; 26. Second chamber; 27. Circular boss; 28. Contact rod; 29. Second spring; 30. Extension rod; 31. Ball; 32. Positioning groove; 33. Grinding brush; 34. Pin; 35. Collar; 36. Third spring; 37. Tapered block. Detailed Embodiment

[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0033] Example 1: Please refer to Figures 1-5 The inner diameter grinding device of the intelligent production of a bicycle hub shown in the figure comprises: a processing platform 1 and a hub 9 rotatably mounted on the processing platform 1, one end of the hub 9 is provided with an inner ratchet groove 10, a lifting cylinder 2 is fixedly arranged on the top of the processing platform 1, the output end of the lifting cylinder 2 faces upward, and a fixing plate 3 is fixedly mounted on the output end of the lifting cylinder 2, wherein the bracket for mounting the hub 9 is a supporting frame commonly used in the prior art, and the hub 9 can also be driven by an external motor to rotate at a uniform speed inside the bracket;

[0034] It also includes: a grinding unit, the grinding unit includes a grinding component, the grinding unit grinds the inner wall of the hub 9 through the grinding component, the grinding unit is mounted on the top of the fixing plate 3, and the grinding component is located on the side of the grinding unit facing the inner ratchet groove 10;

[0035] The quick disassembly unit is used to automatically lock and unlock the grinding parts.

[0036] The grinding unit includes a supporting plate 4 located directly above the fixed plate 3, and four positioning rods 6 distributed in a matrix are embedded inside the supporting plate 4. The bottom of the positioning rod 6 slides through the fixed plate 3. A tension spring 5 is also fixedly arranged between the fixed plate 3 and the supporting plate 4. A gear differential box 8 and a drive motor 7 are fixedly arranged on the upper end surface of the supporting plate 4, and the drive motor 7 is located on the side of the gear differential box 8 away from the hub 9. The output end of the drive motor 7 is connected to the output end of the gear differential box 8 through a coupling. The grinding component is located at the output end of the gear differential box 8. A toggle component is also arranged between the supporting plate 4 and the fixed plate 3. The gear differential box 8 is a continuously variable transmission, which can freely adjust the speed of the output end of the gear differential box 8.

[0037] The toggle component includes four first slide grooves 15 distributed in a matrix inside the carrier plate 4, and each first slide groove 15 is respectively distributed on the outside of four positioning rods 6. The positioning rods 6 and the first slide grooves 15 are assembled for transverse sliding. The interior of the carrier plate 4 is also axially rotatably assembled with a rotating shaft 12. The outer surface of the output end of the drive motor 7 and the upper end of the rotating shaft 12 are fixedly provided with a bevel gear 13. The two bevel gears 13 are meshed with each other. The outer surface of the lower end of the rotating shaft 12 is fixedly sleeved with a cam column 14, and the outer wall of the cam column 14 is slidably fitted with the fixed plate 3. When the drive motor 7 is running, it can drive the rotating shaft 12 and the cam column 14 to rotate through the two meshing bevel gears 13.

[0038] The grinding component includes a drive shaft 17 fixedly arranged at the output end of the gear differential case 8, a cleaning sleeve 20 is mounted on the end of the drive shaft 17 away from the gear differential case 8, and an assembly ring 19 is fixedly arranged on the end of the cleaning sleeve 20 close to the gear differential case 8, and a baffle 18 is fixedly mounted on the outer surface of the drive shaft 17 for limiting the assembly ring 19, and a plurality of grinding brushes 33 are fixedly inserted on the outer surface of the cleaning sleeve 20, and the cleaning sleeve 20 grinds the ratchet surface of the inner ratchet groove 10 through the grinding brushes 33.

[0039] A grinding method for an inner diameter grinding device of an intelligently produced bicycle hub, the grinding method comprising the following steps:

[0040] S1, in the debugging stage before grinding, the hub 9 is rotated and mounted on the upper end surface of the processing platform 1, and the cleaning sleeve 20 is extended into the inner ratchet groove 10, and then the fixed plate 3 is moved downward by the lifting cylinder 2. Since the cleaning sleeve 20 is stuck in the inner ratchet groove 10, the tension spring 5 can be stretched, so that the cleaning sleeve 20 is in elastic contact with the outer surface of the ratchet teeth of the inner ratchet groove 10;

[0041] S2, triggering stage, when the distance between the fixing plate 3 and the bearing plate 4 increases, the round boss 27, the touch rod 28 and the conical block 37 are pushed by the ball 31, so that the limiting component limits the positional relationship between the driving shaft 17 and the cleaning sleeve 20;

[0042] S3, grinding stage, the driving motor 7 and the gear differential box 8 drive the driving shaft 17 to rotate with the cleaning sleeve 20 at high speed, and the cleaning sleeve 20 has a plurality of grinding brushes 33 distributed on its surface to fully grind the inner wall of the inner ratchet groove 10, and the driving shaft 17 and the cleaning sleeve 20 can slide back and forth frequently laterally against the inner wall of the inner ratchet groove 10 by moving the components, thereby improving the grinding effect.

[0043] Working principle: In this solution, the cleaning sleeve 20 is directly fixedly sleeved on the outer surface of the drive shaft 17. After placing the cleaning sleeve 20 inside the internal ratchet groove 10, the lifting cylinder 2 drives the fixed plate 3 to move downward, thereby driving the bearing plate 4 and all the structures above the bearing plate 4 to move downward together, and the cleaning sleeve 20 can be pressed against the inner wall of the internal ratchet groove 10. At this time, the fixed plate 3 continues to move downward, increasing the distance between the fixed plate 3 and the bearing plate 4 and stretching the tension spring 5, enabling the cleaning sleeve 20 to elastically adhere to the inner wall of the internal ratchet groove 10. After the state of the lifting cylinder 2 is adjusted, the motor in the prior art can be used to drive the flower drum 9 to rotate. During the rotation of the flower drum 9, due to the action of the tension spring 5, the grinding brush 33 on the surface of the cleaning sleeve 20 can fully contact each tooth surface of the internal ratchet groove 10. At this time, the drive motor 7 is started, and through the action of the gear differential box 8, the drive shaft 17 drives the cleaning sleeve 20 to rotate at a high speed to polish the inner wall of the internal ratchet groove 10;

[0044] During the operation of the drive motor 7, it can also drive the rotating shaft 12 and the cam column 14 to rotate simultaneously. Through the horizontal sliding fit of the positioning rod 6 and the first sliding groove 15, the bearing plate 4 can slide frequently back and forth above the fixed plate 3, enabling the cleaning sleeve 20 to move horizontally back and forth while rotating at a high speed, further improving the polishing effect on the inner wall of the internal ratchet groove 10.

[0045] Embodiment 2: Please refer to Figures 5-8 , this embodiment is a further description of Embodiment 1. The quick disassembly and assembly unit includes a second chamber 26 and a first chamber 11 opened inside the drive shaft 17, and the second chamber 26 is located at one end of the first chamber 11 close to the gear differential box 8. A contact rod 28 is also slidably fitted inside the drive shaft 17, and both ends of the contact rod 28 are respectively placed inside the second chamber 26 and the first chamber 11. A circular convex platform 27 is axially slidably sleeved between the inside of the second chamber 26 and the outer surface of the drive shaft 17. A receiving plate is fixedly provided at one end of the contact rod 28 close to the gear differential box 8, and a second spring 29 is fixedly provided between the receiving plate and the circular convex platform 27. The bearing plate is slidably fitted with the second chamber 26. A limiting component is provided between the other end of the contact rod 28 and the fitting ring 19, and a triggering component is also provided between the fixed plate 3 and the circular convex platform 27. When the distance between the fixed plate 3 and the bearing plate 4 increases, the limiting component can be activated through the triggering component, and the drive shaft 17 and the cleaning sleeve 20 are fixed under the action of the limiting component.

[0046] The limiting component includes a conical block 37 fixedly arranged at one end of the contact rod 28 away from the gear differential 8. A plurality of pins 34 evenly distributed at equal intervals in the circumferential direction are slidably fitted on the inner wall of the first chamber 11. A collar 35 is fixedly sleeved on the outer surface of one end of the pin 34 extending into the first chamber 11. A third spring 36 is fixedly arranged between the end of the collar 35 away from the axis of the drive shaft 17 and the inner wall of the drive shaft 17. A plurality of positioning grooves 32 are also formed inside the assembly ring 19. The end parts of the plurality of pins 34 are respectively movably embedded inside the plurality of positioning grooves 32. The end of the pin 34 away from the positioning groove 32 is in sliding fit with the outer surface of the conical block 37. The outer diameter of the conical block 37 gradually decreases from the direction of the gear differential 8 to the hub 9. When the conical block 37 moves towards the hub 9, a plurality of pins 34 can be synchronously pushed in, so that the drive shaft 17 and the cleaning sleeve 20 are limited together.

[0047] The triggering component includes two connecting columns 22 slidably inserted inside the bearing plate 4. A limiting block 23 is fixedly arranged at the upper end of the connecting column 22. A sliding block 25 is slidably sleeved together between the two connecting columns 22. The sliding block 25 is above the drive shaft 17. A first spring 24 is fixedly arranged between the bottom of each limiting block 23 and the sliding block 25. Two second chutes 16 are formed inside the fixing plate 3. The bottoms of the two connecting columns 22 are horizontally slidably fitted inside the second chutes 16. A extension rod 30 is fixedly arranged at the center of the bottom of the sliding block 25. A ball 31 is rotatably fitted at the exposed end of the extension rod 30. The ball 31 is in sliding contact with the inclined arc surface of the circular boss 27. When the extension rod 30 is pressed downwards, the circular boss 27 can be pushed through the ball 31, so that the positions of the circular boss 27 and the contact rod 28 change.

[0048] Threaded grooves 21 are formed on the outer surface of the cleaning sleeve 20. One end of the cleaning sleeve 20 away from the gear differential 8 is open. The open port can collect the debris ground off at the end of the threaded groove 21 and discharge it out through the threaded groove 21.

[0049] The inclined arc surface of the circular boss 27 faces the gear differential 8.

[0050] In this embodiment: In this solution, the cleaning sleeve 20 is movably sleeved on the outer surface of the drive shaft 17. When the distance between the fixed plate 3 and the bearing plate 4 has not increased yet, the cleaning sleeve 20 is always in a movable state. In this state, the staff can replace the model of the cleaning sleeve 20, or replace the old and severely worn cleaning sleeve 20. When the distance between the fixed plate 3 and the bearing plate 4 increases, the connecting column 22 presses the sliding block 25 and the extension rod 30 downward through the limiting block 23 and the first spring 24, and makes the ball 31 abut against the outer wall of the circular boss 27, pushing the circular boss 27, causing the circular boss 27 to change its position. The circular boss 27 drives the tapered block 37 to move synchronously through the second spring 29, the receiving plate and the contact rod 28, and the tapered block 37 can simultaneously push several pins 34 synchronously, allowing the pins 34 to be inserted into the positioning groove 32, completing the limit between the drive shaft 17 and the retaining piece 18, so that the cleaning sleeve 20 can effectively polish the inner wall of the internal ratchet groove 10 through the polishing brush 33;

[0051] In the above way, it is convenient for the staff to directly replace the cleaning sleeve 20, and it can also prevent the drive motor 7 from being accidentally started, causing the cleaning sleeve 20 with the polishing brush 33 to rotate at a high speed. The cleaning sleeve 20 in the high-speed rotation state is somewhat dangerous.

[0052] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variation thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.

[0053] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An inner diameter grinding device for intelligent production of bicycle hubs, characterized in that: include: A processing platform (1) and a hub (9) rotatably mounted on the processing platform (1), wherein one end of the hub (9) is provided with an inner ratchet groove (10), and a lifting cylinder (2) is fixedly arranged on the top of the processing platform (1), wherein the output end of the lifting cylinder (2) faces upward, and a fixing plate (3) is fixedly mounted on the output end of the lifting cylinder (2); Also includes: A grinding unit, the grinding unit comprising a grinding component, the grinding unit grinding the inner wall of the hub (9) through the grinding component, the grinding unit being mounted on the top of the fixing plate (3), and the grinding component being located on a side of the grinding unit facing the inner ratchet groove (10); A quick disassembly unit, used for automatically locking and unlocking the grinding component; The grinding unit comprises a bearing plate (4) located directly above the fixed plate (3), and four positioning rods (6) arranged in a matrix are installed inside the bearing plate (4), the bottom of the positioning rod (6) slides through the fixed plate (3), a tension spring (5) is fixedly arranged between the fixed plate (3) and the bearing plate (4), a gear differential box (8) and a drive motor (7) are fixedly arranged on the upper end surface of the bearing plate (4), and the drive motor (7) is located on a side of the gear differential box (8) away from the hub (9), the output end of the drive motor (7) is connected to the output end of the gear differential box (8) via a coupling, the grinding component is located at the output end of the gear differential box (8), and a toggle component is also arranged between the bearing plate (4) and the fixed plate (3); The shifting component comprises four first slide grooves (15) arranged in a matrix inside the bearing plate (4), and each of the first slide grooves (15) is respectively arranged outside the four positioning rods (6), the positioning rods (6) and the first slide grooves (15) are assembled in a transverse sliding manner, the bearing plate (4) is also equipped with a rotating shaft (12) for axial rotation, the output end outer surface of the driving motor (7) and the upper end of the rotating shaft (12) are fixedly provided with a bevel gear (13), the two bevel gears (13) are meshed with each other, the lower end outer surface of the rotating shaft (12) is fixedly sleeved with a cam column (14), and the outer wall of the cam column (14) is slidably fitted with the fixed plate (3); The grinding component comprises a drive shaft (17) fixedly arranged at the output end of the gear differential case (8); a cleaning sleeve (20) is movably mounted on one end of the drive shaft (17) away from the gear differential case (8); and an assembly ring (19) is fixedly mounted on one end of the cleaning sleeve (20) close to the gear differential case (8); a baffle (18) is fixedly mounted on the outer surface of the drive shaft (17) for limiting the assembly ring (19); and a plurality of grinding brushes (33) are fixedly inserted on the outer surface of the cleaning sleeve (20).

2. The inner diameter grinding device for intelligent production of bicycle hubs according to claim 1, characterized in that: The quick disassembly unit comprises a second chamber (26) and a first chamber (11) which are provided inside the drive shaft (17), and the second chamber (26) is located at one end of the first chamber (11) close to the gear differential case (8). A touch rod (28) is also slidably mounted inside the drive shaft (17), and two ends of the touch rod (28) are respectively arranged inside the second chamber (26) and the first chamber (11). A circular boss (27) is axially slidably mounted between the inside of the second chamber (26) and the outer surface of the drive shaft (17). A receiving plate is fixedly arranged at one end of the touch rod (28) close to the gear differential case (8), and a second spring (29) is fixedly arranged between the receiving plate and the circular boss (27). A limiting component is arranged between the other end of the touch rod (28) and the assembly ring (19), and a touch component is also arranged between the fixing plate (3) and the circular boss (27).

3. The inner diameter grinding device for intelligent production of bicycle hubs according to claim 2, characterized in that: The limiting component comprises a conical block (37) fixedly arranged at one end of the contact rod (28) away from the gear differential case (8); a plurality of latches (34) equidistantly distributed on a circumference are slidably mounted on the inner wall of the first chamber (11); a collar (35) is fixedly mounted on the outer surface of one end of the latches (34) extending into the first chamber (11); and a third spring (36) is fixedly arranged between the end of the collar (35) away from the axis of the drive shaft (17) and the inner wall of the drive shaft (17); a plurality of positioning grooves (32) are also formed inside the assembly ring (19); and the ends of the plurality of latches (34) are movably embedded in the plurality of positioning grooves (32), and the ends of the latches (34) away from the positioning grooves (32) are slidably fitted with the outer surface of the conical block (37); and the outer diameter of the conical block (37) decreases step by step in a direction from the gear differential case (8) to the hub (9).

4. The inner diameter grinding device for intelligent production of bicycle hubs according to claim 2, characterized in that: The touch component comprises two connecting columns (22) slidably inserted into the inside of the bearing plate (4), a limit block (23) is fixedly arranged at the upper end of the connecting column (22), a sliding block (25) is slidably sleeved between the two connecting columns (22), the sliding block (25) is displaced above the driving shaft (17), and a first spring (24) is fixedly arranged between the bottom of each limit block (23) and the sliding block (25), two second sliding grooves (16) are opened inside the fixed plate (3), and the bottoms of the two connecting columns (22) are both transversely slidably mounted inside the second sliding grooves (16), an extension rod (30) is fixedly arranged at the bottom center of the sliding block (25), and a ball (31) is rotatably mounted on the exposed end of the extension rod (30), and the ball (31) is in sliding contact with the oblique arc surface of the circular boss (27).

5. The inner diameter grinding device for intelligent production of bicycle hubs according to claim 1, characterized in that: The outer surface of the cleaning sleeve (20) is provided with a thread groove (21), and the end of the cleaning sleeve (20) away from the gear differential case (8) is open.

6. The inner diameter grinding device for intelligent production of bicycle hubs according to claim 4, characterized in that: The oblique arc surface of the circular boss (27) faces the gear differential box (8).

7. A grinding method for the inner diameter grinding device of the intelligent production of a bicycle hub according to any one of claims 1 to 6, characterized in that: The grinding method comprises the following steps: S1, in the debugging stage before grinding, the hub (9) is rotated and mounted on the upper end surface of the processing platform (1), and the cleaning sleeve (20) is extended into the inner ratchet groove (10), and then the fixed plate (3) is moved downward by the lifting cylinder (2). Since the cleaning sleeve (20) is stuck in the inner ratchet groove (10), the tension spring (5) can be stretched, so that the cleaning sleeve (20) is in elastic contact with the outer surface of the ratchet teeth of the inner ratchet groove (10); S2, triggering stage, when the distance between the fixed plate (3) and the bearing plate (4) increases, the round boss (27), the touch rod (28) and the conical block (37) are pushed by the ball (31), so that the limiting component limits the positional relationship between the drive shaft (17) and the cleaning sleeve (20); S3, grinding stage, the driving motor (7) and the gear differential box (8) drive the driving shaft (17) to rotate with the cleaning brush sleeve (20) at a high speed, and the cleaning brush sleeve (20) has a plurality of grinding brushes (33) distributed on the surface of the cleaning brush sleeve (20) to fully grind the inner wall of the inner ratchet groove (10), and the driving shaft (17) and the cleaning brush sleeve (20) can slide back and forth frequently horizontally against the inner wall of the inner ratchet groove (10) by moving the components, thereby improving the grinding effect.

Citation Information

Patent Citations

  • Inner diameter grinding device for bicycle hub production

    CN116587083A

  • Copper bearing bush surface grinding and polishing device

    CN117564828A