Motor bearing ring end face grinding machining device
By designing a motor bearing ring end surface grinding processing device including a flip mechanism, a drive mechanism, a grinding mechanism and a rotating mechanism, the problems of insufficient grinding of bearing rings and local temperature in the prior art are solved, and efficient grinding and quality improvement of bearing rings on both sides are achieved.
Patent Information
- Application Number
- CN202510645748.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-20
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2045-05-20
AI Technical Summary
When used in the use of the existing motor bearing ring end surface grinding processing device, the bearing ring is not polished enough, resulting in a decrease in grinding quality, and the local temperature increases due to a single rotation speed, which affects the flatness.
A motor bearing ring end surface grinding processing device is designed including a flip mechanism, a drive mechanism, a grinding mechanism and a rotary surface mechanism. The bearing ring is double-sided grinding through a single motor drive, and while rotating and grinding, the ferrule is driven to move from the inside to the outside, increasing the lateral movement to improve the grinding quality.
It realizes efficient grinding of double-sided bearing rings, reduces additional equipment investment, ensures processing quality, and reduces local heat and improves flatness by turning regularly and increasing heat dissipation.
Smart Images

Figure CN120155819A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of end face grinding of bearing rings, and particularly relates to a device for grinding the end face of a motor bearing ring. Background Art
[0002] The end face grinding of the motor bearing ring is one of the important technological processes in motor manufacturing, mainly used to improve the accuracy and surface quality of the end face of the bearing ring. As a power device widely used in modern industry, the motor's bearings, as key components, directly affect the operating performance and service life of the motor. The end face of the bearing ring, as one of the supporting surfaces for the bearing operation, needs to have high flatness, smoothness, and dimensional accuracy to ensure the stable operation and low friction performance of the bearing. With the continuous progress of motor technology, the requirements for the quality of the end face of the bearing ring are also getting higher and higher.
[0003] The bearing ring is a component that supports and fixes the rolling parts of the bearing and is an important rolling device during the movement of the motor. When the existing device for grinding the end face of the motor bearing ring is in use, the whole device usually rotates to drive the bearing ring to rotate, resulting in insufficient fineness of the grinding of the bearing ring and reducing the grinding quality. At the same time, the bearing ring always maintains a single rotational speed during grinding, causing local temperature increase on the end face of the bearing ring during grinding. Thus, the excessive temperature will affect the flatness of the bearing end face and its use in the motor. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the above-mentioned disadvantages of the prior art and provide a device for grinding the end face of a motor bearing ring.
[0005] The technical solution adopted to solve the above technical problem is: a device for grinding the end face of a motor bearing ring, including a main body. An internal activity cavity is provided at the top of the main body, and a grinding mechanism is installed in the internal activity cavity for driving the bearing ring to rotate for grinding. The grinding mechanism includes three connecting rods, and a fourth gear is installed at the other end of each of the three connecting rods. The corresponding fourth gear is driven to rotate by the three connecting rods. Connecting shafts are installed at the eccentric positions on the surfaces of the three fourth gears, and a turning surface mechanism is installed on the top of each of the three fourth gears for grinding the bearing ring from the inside out. The turning surface mechanism includes a plurality of connecting columns installed on the outer wall of the corresponding connecting shaft. A fixed ring is rotatably connected between every two connecting columns, and a placement table is rotatably connected to the inner walls of the plurality of fixed rings. The fixed rings between the corresponding two connecting columns are driven to perform internal and external friction reciprocating motions by the eccentric connecting shafts on the three fourth gears.
[0006] The main body is provided with a grinding tabletop at the top of the internal activity cavity. A fixed column is fixedly connected to the inner wall of the main body. The top of the fixed column is fixedly connected to a central tabletop, and there is a slot for the connecting shaft to slide between the central tabletop and the grinding tabletop.
[0007] Furthermore, a flipping mechanism is installed on the outer wall of the main body. The flipping mechanism includes two first metal frames. Two positive circular plates are fixedly connected to the tops of the two first metal frames. Every two of the positive circular plates are connected by an elliptical plate. Two first gears are installed on the opposite sides of the two positive circular plates. One of the first gears is fixed to the elliptical plate, and the other first gear rotates with the elliptical plate. Two second metal frames are fixedly connected to the outer walls of the other two positive circular plates. A top grinding disc is rotatably connected between the two second metal frames. A plurality of first limiting blocks are fixedly connected to the outer wall of the top grinding disc. A first motor is installed on one side of a positive circular plate away from the main body. The output shaft of the first motor drives the elliptical plate to rotate, and then the first gears mesh with each other to drive the top grinding disc to turn.
[0008] Through the above technical solution, during use, a plurality of bearing rings are respectively placed into the processing device. Subsequently, the processing device is capped by using the flipping mechanism. At the same time, relying on a single motor, both sides of the bearing ring can be ground, reducing the investment in additional equipment while ensuring the processing quality. Specifically, when the bearing ring is placed into the device, the first motor is started at this time. Its output shaft will drive the elliptical plate to rotate. The first gear located at the position of the first motor will remain stationary. Then, under the meshing of the two first gears, the other first gear will keep rotating, so as to ensure the stability of the flipping. Subsequently, the second metal frames drive the top grinding disc to rotate until it covers the main body. It should be noted that when the elliptical plate rotates 90°, the top grinding disc rotates 180° under the bending shape of the second metal frames.
[0009] Furthermore, a driving mechanism is installed on the inner wall of the main body. The driving mechanism includes a second gear. An outer ring rotating layer driven by the second gear is rotatably connected to the top of the main body. A plurality of second limiting blocks are fixedly connected to the outer wall of the outer ring rotating layer. The plurality of second limiting blocks are alternately connected to the corresponding first limiting blocks. A second motor is installed on the inner wall of the main body. The top of the second motor is fixedly connected to a driving shaft. A toothed ring meshing with the second gear is installed at the bottom of the outer ring rotating layer. The rotation of the toothed ring drives the plurality of second limiting blocks on the outer wall of the outer ring rotating layer to rotate, and then the top grinding disc on the inner walls of the plurality of first limiting blocks rotates.
[0010] Through the above technical solution, when the bearing ring is placed in the device and the top covering is completed, the driving mechanism is used to provide driving force to ensure the grinding state of the device. Driven by a single motor, while ensuring the grinding of the bottom of the bearing ring, the top grinding disc is driven to grind the top of the bearing ring. Specifically, the second motor is started to drive the second gear at the top of the drive shaft to rotate, thereby driving the outer rotating layer connected to the toothed ring to rotate. Since a plurality of second limiting blocks are limited by the corresponding plurality of first limiting blocks, the top grinding disc will rotate to grind the top of the bearing ring. It should be noted that the outer walls of the second limiting block and the first limiting block are smooth and the opposite sides are convex, so as to ensure that the top grinding disc can rotate after being combined with the main body. In addition, the outer rotating layer is sleeved on the outer wall of the main body and is disconnected at the center.
[0011] Further, a sleeve is fixedly connected to one end of the three connecting rods away from the fourth gear. The sleeve is rotatably connected to the fixed column. A plurality of first meshing columns are fixedly connected to one side of the inner activity cavity top away from the three connecting rods. The corresponding connecting shafts are driven to perform eccentric rotation by the meshing rotation of the three fourth gears and the corresponding first meshing columns. A third gear is fixedly connected to the outer wall of the sleeve. The rotation of the second gear drives the sleeve on the inner wall of the third gear to rotate, and then the three connecting rods drive the corresponding fourth gears to rotate.
[0012] Through the above technical solution, with the movement of the driving mechanism, the grinding mechanism will be driven to operate, so that the bearing ring placed inside the processing device will perform revolution grinding, fully grinding the bottom, and while ensuring rotary grinding, the bearing ring will move from the inside to the outside, increasing the lateral movement, and ensuring the quality of the bearing after processing through multi-directional grinding. Specifically, with the rotation of the second gear, the sleeve on the inner wall of the third gear will be driven to rotate, and the three connecting rods thereon will rotate. Since the three fourth gears are meshed with a plurality of first meshing columns, when the three connecting rods rotate, the three fourth gears will rotate accordingly. At the same time, the connecting shaft is located at the corner of the fourth gear. Therefore, during the rotation of the fourth gear, the connecting shaft performs eccentric rotation, thereby realizing the overall revolution movement.
[0013] Further, a plurality of second meshing columns are fixedly connected to the outer walls of the three placement platforms. A plurality of teeth meshing with the plurality of second meshing columns are fixedly connected to the grinding table surface. Placement openings for placing the bearing rings are provided inside the three placement platforms. The rotation of the three fixed rings drives the second meshing columns on the placement platforms to mesh and rotate with the teeth, and then the bearing rings on the placement platforms rotate.
[0014] Through the above technical solution, when the grinding mechanism starts to rotate, the rotating surface mechanism connected thereto will rotate accordingly, thereby rotating and grinding the end face of the ring. Moreover, when the bearing ring reciprocates inside and outside on the main body, it will rotate when colliding with the outside world at this time. Therefore, the position of the bearing ring is adjusted, local heat dissipation is increased, and the grinding quality is improved. Specifically, a plurality of bearing rings are placed on the corresponding placement ports. When the connecting shaft undergoes eccentric motion, as the connecting shaft moves to the side close to the fixed column, the two adjacent connecting columns will approach and squeeze the corresponding fixed ring to move away from the fixed column. On the contrary, when the connecting shaft moves to the side far from the fixed column, at this time, due to the large distance between the two adjacent connecting columns, a pulling force is formed, causing the corresponding fixed ring to move inward. When the fixed ring moves outward, the multiple second engaging columns on the placement table rotatably placed on its inner wall will engage with the corresponding ratchets. During the revolution process, the placement table rotates, thereby completing the surface-changing operation on the multiple bearing rings on the placement table. It should be noted that the fourth gear and the fixed ring are not coplanar, so it does not interfere during the rotation process.
[0015] The beneficial effects of the present invention are as follows: (1) By designing the flipping mechanism, driving mechanism, grinding mechanism and rotating surface mechanism, the present invention can grind both sides of the bearing ring during the grinding process of the bearing ring, and at the same time ensure that the bearing ring can rotate and be transversely ground. In addition, the placement ring during the grinding process is turned over regularly to reduce grinding at the same position and increase heat dissipation; (2) By designing the flipping mechanism and the driving mechanism, when the bearing ring is being processed, the grinding disc is flipped and its rotation is ensured, thereby grinding both sides of the ring, reducing subsequent processing steps, and ensuring double-sided grinding driven by a single motor, reducing additional equipment investment; (3) By designing the grinding mechanism and the rotating surface mechanism, during the grinding process of the bearing ring, while ensuring the rotary grinding process, the bearing ring is driven to move from the inside to the outside by the rotary motion, increasing the grinding effect of the ring. At the same time, during the sliding process from the inside to the outside, when the bearing ring moves to the outside, it will rotate, changing the single-area grinding and reducing the increase in local heat generated by grinding. Brief Description of the Drawings
[0016] Figure 1 is the three-dimensional structural schematic diagram of the present invention; Figure 2 is the front view of the present invention; Figure 3 is the sectional view of the present invention; Figure 4 is Figure 3 the partial enlarged view at A in Figure 5 is the internal structural schematic diagram of the present invention; Figure 6It is a schematic structural diagram of the surface turning mechanism of the present invention; Figure 7 It is a schematic structural diagram of the grinding mechanism of the present invention; Figure 8 It is a cross-sectional view of the brick surface mechanism and the grinding mechanism of the present invention.
[0017] Reference numerals: 11, main body; 12, grinding table; 13, fixed column; 14, central table; 15, internal activity cavity; 2, flipping mechanism; 21, first metal frame; 22, positive round plate; 23, first motor; 24, first gear; 25, second metal frame; 26, top grinding disc; 27, first limit block; 3, driving mechanism; 31, second motor; 32, driving shaft; 33, second gear; 34, outer ring rotating layer; 35, second limit block; 36, tooth ring; 4, grinding mechanism; 41, sleeve; 42, third gear; 43, connecting rod; 44, fourth gear; 45, first meshing column; 46, connecting shaft; 5, surface turning mechanism; 51, connecting column; 52, fixed ring; 53, placement table; 54, placement opening; 55, second meshing column; 56, ratchet teeth. Detailed implementation manners
[0018] In order to make the objectives, technical solutions and advantages of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0019] As Figures 1-8As shown in the figure, a device for grinding the end face of a motor bearing ring in this embodiment includes a main body 11. There is an internal activity cavity 15 at the top of the main body 11. The main body 11 is provided with a grinding table surface 12 at the top of the internal activity cavity 15. A fixed column 13 is fixedly connected to the inner wall of the main body 11. The top of the fixed column 13 is fixedly connected to a central table surface 14. And there is a slot for the sliding of the connecting shaft 46 between the central table surface 14 and the grinding table surface 12. A flipping mechanism 2 is installed on the outer wall of the main body 11. The flipping mechanism 2 includes two first metal frames 21. Two positive circular plates 22 are fixedly connected to the tops of the two first metal frames 21 respectively. Every two positive circular plates 22 are connected by an elliptical plate. Two first gears 24 are installed on the opposite sides of the two positive circular plates 22 respectively. One of the first gears 24 is fixed to the elliptical plate, and the other first gear 24 rotates relative to the elliptical plate. Two second metal frames 25 are fixedly connected to the outer walls of the other two positive circular plates 22 respectively. A top grinding disc 26 is rotatably connected between the two second metal frames 25. A plurality of first limiting blocks 27 are fixedly connected to the outer wall of the top grinding disc 26. A first motor 23 is installed on one side of a positive circular plate 22 away from the main body 11. The rotation of the elliptical plate is driven by the output shaft of the first motor 23. Then, the first gears 24 mesh with each other to drive the top grinding disc 26 to turn. During use, a plurality of bearing rings are respectively placed into the processing device. Then, the processing device is capped by using the flipping mechanism 2. At the same time, the two sides of the bearing ring can be ground by relying on a single motor, reducing the investment in additional equipment while ensuring the processing quality. Specifically, when the bearing ring is placed into the device, the first motor 23 is started at this time. Its output shaft will drive the elliptical plate to rotate. The first gear 24 located at the position of the first motor 23 will remain stationary. Then, under the meshing of the two first gears 24, the other first gear 24 will keep rotating, so as to ensure the stability of the flipping. Subsequently, the two second metal frames 25 drive the top grinding disc 26 to rotate until it covers the main body 11. It should be noted that when the elliptical plate rotates 90°, the top grinding disc 26 rotates 180° under the bending state of the second metal frame 25.
[0020] As Figures 3-5As shown in the figure, a driving mechanism 3 is installed on the inner wall of the main body 11. The driving mechanism 3 includes a second gear 33. The outer ring rotating layer 34 driven by the second gear 33 is rotatably connected to the top of the main body 11. A plurality of second limiting blocks 35 are fixedly connected to the outer wall of the outer ring rotating layer 34. The plurality of second limiting blocks 35 are alternately connected to the corresponding first limiting blocks 27. A second motor 31 is installed on the inner wall of the main body 11. The top of the second motor 31 is fixedly connected to a driving shaft 32. A toothed ring 36 meshing with the second gear 33 is installed at the bottom of the outer ring rotating layer 34. The rotation of the toothed ring 36 drives the rotation of the plurality of second limiting blocks 35 on the outer wall of the outer ring rotating layer 34. Further, the top grinding discs 26 on the inner walls of the plurality of first limiting blocks 27 rotate. When the bearing race is placed on the device and the top is covered, at this time, the driving mechanism 3 is used to provide driving force to ensure the grinding state of the device. Under the drive of a single motor, while ensuring the grinding of the bearing race at the bottom, the top grinding disc 26 is driven to grind the top of the bearing race. Specifically, the second motor 31 is started to drive the second gear 33 at the top of the driving shaft 32 to rotate, and then drive the outer ring rotating layer 34 connected to the toothed ring 36 to rotate. Since the plurality of second limiting blocks 35 and the corresponding plurality of first limiting blocks 27 are limited, the top grinding disc 26 will rotate to grind the top of the bearing race. It should be noted that the outer walls of the second limiting blocks 35 and the first limiting blocks 27 are smooth and the opposite sides protrude, so as to ensure that the top grinding disc 26 can rotate after being combined with the main body 11. In addition, the outer ring rotating layer 34 is sleeved on the outer wall of the main body 11 and is disconnected at the center.
[0021] As Figures 7-8As shown, a grinding mechanism 4 is installed in the internal activity cavity 15 for driving the bearing ring to rotate for grinding. The grinding mechanism 4 includes three connecting rods 43, and the other ends of the three connecting rods 43 are all installed with fourth gears 44. The corresponding fourth gears 44 are driven to rotate by the three connecting rods 43. Connecting shafts 46 are installed at the eccentric positions on the surfaces of the three fourth gears 44. One end of the three connecting rods 43 away from the fourth gears 44 is fixedly connected with a sleeve 41. The sleeve 41 is rotatably connected with the fixed column 13. A plurality of first meshing columns 45 are fixedly connected to one side of the top of the internal activity cavity 15 away from the three connecting rods 43. The corresponding connecting shafts 46 are driven to perform eccentric rotation by the meshing rotation of the three fourth gears 44 and the corresponding first meshing columns 45. A third gear 42 is fixedly connected to the outer wall of the sleeve 41. The rotation of the second gear 33 drives the sleeve 41 on the inner wall of the third gear 42 to rotate. Furthermore, the three connecting rods 43 drive the corresponding fourth gears 44 to rotate. With the movement of the driving mechanism 3, the grinding mechanism 4 will be driven to operate, and then the bearing ring placed inside the processing device will perform revolution grinding, fully grinding the bottom, and while ensuring rotary grinding, the bearing ring will perform a movement from the inside to the outside, increasing the lateral movement. The quality of the bearing after processing is ensured through multi-directional grinding. Specifically, with the rotation of the second gear 33, the sleeve 41 on the inner wall of the third gear 42 will be driven to rotate, and the three connecting rods 43 thereon will rotate. Since the three fourth gears 44 are meshed with a plurality of first meshing columns 45, when the three connecting rods 43 rotate, the three fourth gears 44 will rotate accordingly. At the same time, the connecting shaft 46 is located at the corner of the fourth gear 44. Therefore, during the rotation of the fourth gear 44, the connecting shaft 46 performs eccentric rotation, thereby realizing the overall revolution movement.
[0022] As Figure 6 and Figure 8As shown in the figure, a turning mechanism 5 is installed on the top of each of the three fourth gears 44 for grinding the bearing race from the inside out. The turning mechanism 5 includes a plurality of connecting columns 51 installed on the outer wall of the corresponding connecting shaft 46. A fixed ring 52 is rotatably connected between every two connecting columns 51. The inner walls of the plurality of fixed rings 52 are rotatably connected to a placement table 53. The eccentric connecting shaft 46 on the three fourth gears 44 rotates to squeeze the fixed ring 52 between the corresponding two connecting columns 51 to perform an internal and external friction reciprocating motion. A plurality of second meshing columns 55 are fixedly connected to the outer walls of the three placement tables 53. The grinding table surface 12 is fixedly connected with a plurality of teeth 56 meshing with the plurality of second meshing columns 55. Placement openings 54 for placing the bearing race are formed inside the three placement tables 53. The rotation of the three fixed rings 52 drives the second meshing columns 55 on the placement table 53 to mesh and rotate with the teeth 56, so that the bearing race on the placement table 53 rotates. When the grinding mechanism 4 starts to rotate, the connected turning mechanism 5 will rotate accordingly, and then the end face of the race is rotationally polished. And when the bearing race moves reciprocally inside and outside on the main body 11, it will collide with the outside world and rotate at this time, so the position of the bearing race is adjusted, local heat dissipation is increased, and the grinding quality is improved. Specifically, a plurality of bearing races are placed on the corresponding placement openings 54. When the connecting shaft 46 performs an eccentric motion, as the connecting shaft 46 moves to the side close to the fixed column 13, the two adjacent connecting columns 51 will approach and squeeze the corresponding fixed ring 52 to move away from the fixed column 13. On the contrary, when the connecting shaft 46 moves to the side away from the fixed column 13, at this time, due to the relatively large distance between the two adjacent connecting columns 51, a pulling force is formed, so that the corresponding fixed ring 52 moves inward. When the fixed ring 52 moves outward, a plurality of second meshing columns 55 on the placement table 53 rotatably placed on its inner wall will mesh with the corresponding teeth 56. During the revolution process, the placement table 53 rotates, so as to complete the surface-changing operation of the plurality of bearing races on the placement table 53. It should be noted that the fourth gear 44 and the fixed ring 52 are not coplanar, so it does not interfere during the rotation process.
[0023] The working principle of this embodiment is as follows. When in use, multiple bearing rings are placed on the corresponding placement ports 54. At this time, the first motor 23 is started, and its output shaft will drive the elliptical plate to rotate. Among them, the first gear 24 located at the position of the first motor 23 will remain stationary. Then, under the meshing of the two first gears 24, the other first gear 24 will keep rotating. Subsequently, the second metal frame 25 will drive the top grinding disc 26 at the top to rotate until it covers the main body 11. The second motor 31 is started to drive the second gear 33 at the top of the drive shaft 32 to rotate, thereby driving the outer ring rotating layer 34 connected to the toothed ring 36 to rotate. Since the multiple second limit blocks 35 are limited by the corresponding multiple first limit blocks 27, the top grinding disc 26 will rotate to grind the top of the bearing ring. At the same time, as the second gear 33 rotates, it will drive the sleeve 41 on the inner wall of the third gear 42 to rotate, and the three connecting rods 43 thereon will rotate. When the three connecting rods 43 rotate, the three fourth gears 44 will rotate accordingly. At this time, the rotary grinding of the bearing ring is realized. In addition, the connecting shaft 46 thereon performs eccentric rotation. When the connecting shaft 46 performs eccentric movement, as the connecting shaft 46 moves to the side close to the fixed column 13, the two adjacent connecting columns 51 will approach and squeeze the corresponding fixed ring 52 to move away from the fixed column 13. At this time, the lateral grinding of the bearing ring is realized. When the fixed ring 52 moves outward, the multiple second meshing columns 55 on the placement table 53 rotatably placed on its inner wall will mesh with the corresponding toothed teeth 56. During the revolution process, the placement table 53 will rotate, thereby completing the operation of changing the surface of the multiple bearing rings on the placement table 53. Thus, the grinding process of the bearing ring ends.
[0024] The above is only a preferred embodiment of the present invention and is not intended to limit the protection scope of the present invention.
Claims
1. A motor bearing ring end surface grinding device, comprising a main body (11), characterized in that: An internal movable cavity (15) is provided at the top of the main body (11), and a grinding mechanism (4) is installed in the internal movable cavity (15) for driving the bearing ring to rotate and grind; The grinding mechanism (4) comprises three connecting rods (43), and the other ends of the three connecting rods (43) are each equipped with a fourth gear (44), and the corresponding fourth gear (44) is driven to rotate by the three connecting rods (43), and the eccentric parts of the surfaces of the three fourth gears (44) are each equipped with a connecting shaft (46), and the tops of the three fourth gears (44) are each equipped with a rotating surface mechanism (5), which is used for grinding the bearing ring from the inside to the outside; The rotating mechanism (5) comprises a plurality of connecting columns (51) mounted on the outer walls of corresponding connecting shafts (46), a fixing ring (52) being rotatably connected between every two connecting columns (51), and a placement platform (53) being rotatably connected to the inner walls of the plurality of fixing rings (52), and the fixing rings (52) between the corresponding two connecting columns (51) are rotated and squeezed by the eccentric connecting shafts (46) on the three fourth gears (44) to perform internal and external friction reciprocating motion.
2. The motor bearing ring end surface grinding device according to claim 1, characterized in that: The main body (11) is provided with a grinding table (12) located at the top of the internal active cavity (15); a fixing column (13) is fixedly connected to the inner wall of the main body (11); a center table (14) is fixedly connected to the top of the fixing column (13); and a groove for sliding a connecting shaft (46) is provided between the center table (14) and the grinding table (12).
3. The motor bearing ring end surface grinding device according to claim 2, characterized in that: The outer wall of the main body (11) is provided with a turning mechanism (2), the turning mechanism (2) comprising two first metal frames (21), the tops of the two first metal frames (21) are fixedly connected to two round plates (22), each two round plates (22) are connected by an elliptical plate, two first gears (24) are installed on opposite sides of the two round plates (22), one of the first gears (24) is fixed to the elliptical plate, the other first gear (24) rotates with the elliptical plate, the outer walls of the other two round plates (22) are fixedly connected to second metal frames (25), and a top grinding disc (26) is rotatably connected between the two second metal frames (25).
4. The motor bearing ring end surface grinding device according to claim 3 is characterized in that: The outer wall of the top grinding disc (26) is fixedly connected to a plurality of first limit blocks (27), wherein a first motor (23) is installed on a side of a circular plate (22) away from the main body (11), and the elliptical plate is driven to rotate by the output shaft of the first motor (23), and then the first gears (24) are meshed with each other to drive the top grinding disc (26) to turn.
5. The motor bearing ring end surface grinding device according to claim 3, characterized in that: A driving mechanism (3) is installed on the inner wall of the main body (11), the driving mechanism (3) comprises a second gear (33), the top of the main body (11) is rotatably connected to an outer ring rotating layer (34) driven by the second gear (33), the outer wall of the outer ring rotating layer (34) is fixedly connected to a plurality of second limit blocks (35), and the plurality of second limit blocks (35) are alternately connected to corresponding first limit blocks (27).
6. The motor bearing ring end surface grinding device according to claim 5, characterized in that: A second motor (31) is installed on the inner wall of the main body (11), a driving shaft (32) is fixedly connected to the top of the second motor (31), and a gear ring (36) meshing with the second gear (33) is installed at the bottom of the outer ring rotating layer (34), and the rotation of the gear ring (36) drives the plurality of second limit blocks (35) on the outer wall of the outer ring rotating layer (34) to rotate, thereby causing the top grinding discs (26) on the inner walls of the plurality of first limit blocks (27) to rotate.
7. The motor bearing ring end surface grinding device according to claim 5, characterized in that: The three connecting rods (43) are fixedly connected to one end away from the fourth gear (44) with a sleeve (41), and the sleeve (41) is rotatably connected to the fixed column (13). The top of the internal movable cavity (15) is fixedly connected to one side away from the three connecting rods (43) with a plurality of first meshing columns (45), and the corresponding connecting shafts (46) are driven to rotate eccentrically through the meshing rotation of the three fourth gears (44) and the corresponding first meshing columns (45).
8. The motor bearing ring end surface grinding device according to claim 7, characterized in that: The outer wall of the sleeve (41) is fixedly connected to a third gear (42), and the second gear (33) rotates to drive the sleeve (41) on the inner wall of the third gear (42) to rotate, and then the three connecting rods (43) drive the corresponding fourth gears (44) to rotate.
9. The motor bearing ring end surface grinding device according to claim 2, characterized in that: The outer walls of the three placement platforms (53) are all fixedly connected with a plurality of second engagement columns (55), and the grinding table surface (12) is fixedly connected with a plurality of meshing teeth (56) that mesh with the plurality of second engagement columns (55).
10. The motor bearing ring end surface grinding device according to claim 9, characterized in that: The three placement platforms (53) are each provided with a placement opening (54) for placing a bearing ring. The three fixing rings (52) are rotated to drive the second meshing column (55) on the placement platform (53) to mesh with the meshing teeth (56), thereby causing the bearing ring on the placement platform (53) to rotate.
Citation Information
Patent Citations
Parallel moving mechanism of grinding disc of spring grinder
CN102229076A
Self-revolution device of grinding and rolling cutter
CN114603420A
Uniform-section thin-wall bearing end face grinding device and method
CN119839710A
Automatic grinding equipment for outer ring channel of deep groove ball bearing and using method of automatic grinding equipment
CN119973810A
Diamond flat head grinding-polishing machine
CN201669601U