Deep groove ball bearing batch processing device having debris collection function
By setting up a combination of back-blowing components and arc-shaped cleaning plates in the deep groove ball bearing processing equipment, automatic debris removal is achieved, solving the problems of incomplete and inefficient manual cleaning in the existing technology.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- YING JIANJUN
- Filing Date
- 2024-10-18
- Publication Date
- 2026-04-23
AI Technical Summary
The existing chip collection box of deep groove ball bearing processing equipment has a simple structure and requires manual cleaning, resulting in incomplete cleaning and low efficiency.
A collection box is installed inside the workbench, and a back-blowing component is installed inside the milling assembly to blow debris into the collection box. The cleaning component drives the arc-shaped cleaning plate to push the debris to the output end, and the gate is opened by the top rod to discharge the debris, thus achieving automatic cleaning.
It enables automatic chip removal in batch processing equipment for deep groove ball bearings, solving the problems of incomplete cleaning and low efficiency.
Smart Images

Figure CN2024125625_23042026_PF_FP_ABST
Abstract
Description
A batch processing equipment for deep groove ball bearings with debris collection function Technical Field
[0001] This invention relates to the field of bearing processing, specifically to a batch processing equipment for deep groove ball bearings with a debris collection function. Background Technology
[0002] Deep groove ball bearings, also known as single-row radial ball bearings, are among the most widely used rolling bearings. They consist of an outer ring, an inner ring, steel balls, and a cage. They come in various types, including single-row, double-row, sealed, and open structures. Deep groove ball bearings have low frictional resistance, high speed, and can withstand both radial and axial loads simultaneously. They are widely used in various mechanical equipment such as electric motors, automotive transmissions, and machine tool gearboxes.
[0003] Patent document CN112476148B discloses a grinding device for the production of motor bearings with a debris collection mechanism. It mainly consists of a housing, a quick-positioning grinding mechanism, a fixed rotating mechanism, and a circulating collection mechanism. It can quickly position the grinding location, improve grinding accuracy, reduce wear, adjust the grinding position, and adjust the grinding and fixed positions according to the size of the grinding workpiece. In use, it can cool and reduce dust, prevent debris from splashing, recycle wastewater, and classify and collect debris for cleaning, drying, and storage. However, it still has the following shortcomings.
[0004] The collection box structure in the aforementioned patent document is simple and can only collect and store debris. However, when the debris stored inside the collection box reaches a certain amount, it needs to be manually disassembled for cleaning, which is extremely inconvenient. Therefore, a batch processing equipment for deep groove ball bearings with debris collection function is proposed to solve the above problems. Technical issues
[0005] To address the aforementioned problems, a batch processing device for deep groove ball bearings with a chip collection function is provided. This device features a collection box inside the worktable that communicates with the milling assembly, and a back-blowing component inside the milling assembly. This back-blowing component blows chips generated during workpiece processing into the collection box for storage. A reciprocating cleaning component is located at the bottom of the collection box, and an arc-shaped cleaning plate is positioned at the bottom of the cleaning component. When the cleaning component, moving the arc-shaped cleaning plate, pushes the chips stored in the collection box to the output end, the chips tumble forward along the arc of one side of the arc-shaped cleaning plate, and then... A third telescopic component is movably installed at the center of the rear side of the plate, and the output end of the third telescopic component is movably installed at the bottom of the center of the rear end of the cleaning component. This allows the third telescopic component to separate the bottom of the arc-shaped cleaning plate from the bottom of the collection box as the cleaning component moves the arc-shaped cleaning plate back to the starting point, thus preventing debris from being carried back to the starting point by the arc-shaped cleaning plate. By setting push rods at both ends of the top of the arc-shaped cleaning plate, the push rods will open the door when the arc-shaped cleaning plate moves to the output end of the collection box, facilitating the discharge of debris. This realizes the automatic cleaning of collected debris by the bearing batch processing equipment, solving the problems of incomplete debris cleaning and low efficiency. Technical solutions
[0006] To address the problems of existing technologies, this invention provides a batch processing device for deep groove ball bearings with a chip collection function. The device includes a worktable, a milling assembly for milling the workpiece is located at the center of the top of the worktable near the front end, a backflushing assembly for backflushing the chips generated during processing is located at the top of the milling assembly, and a collection box communicating with the milling assembly is located inside the worktable. The collection box has a gate at its output end, and a cleaning assembly capable of horizontal reciprocating is located at the bottom of the inner side of the collection box. The bottom of the cleaning assembly has an adjustable arc-shaped cleaning plate, and top rods are located at both ends of the top of the arc-shaped cleaning plate. The top of the arc-shaped cleaning plate is connected to the cleaning plate... The front end of the component is hinged at the bottom, and a third telescopic component is movably installed at the center of one side of the arc-shaped cleaning plate. The output end of the third telescopic component is movably installed at the center of the bottom of the rear end of the cleaning component. A feeding conveyor is provided on the upper surface of the worktable near the rear end, and a conveying device for outputting the processed workpiece is provided on the other side of the upper surface of the worktable near the rear end. A multi-functional feeding mechanism that can rotate at a specific angle is provided at the center of the top of the worktable so that the back-blowing component can blow the debris produced during workpiece processing into the collection box for storage. The cleaning component drives the arc-shaped cleaning plate to push the debris stored in the collection box to the output end and prevent the debris from being carried back to the starting point by the arc-shaped cleaning plate.
[0007] As a technical solution of the present invention, a rotatable lead screw is horizontally installed at the center of the bottom inner side of the collection box, and sliding rods for limiting are symmetrically arranged on both sides of the bottom inner side of the collection box. A first rotary drive component with its output end fixed to the outer edge of the lead screw is installed near the center of the bottom on one side of the collection box. A connecting sleeve is fixed to the top of the input end of the collection box, and the top end of the connecting sleeve is fixed to the upper end face inside the worktable, so that the debris generated by the milling assembly during the processing of the workpiece falls into the interior of the collection box through the connecting sleeve.
[0008] As a technical solution of the present invention, a threaded sleeve that can be adapted to the lead screw is provided at the center of the cleaning component, and a second sliding sleeve that can be adapted to the slide rod is provided at both ends of the cleaning component, so that the second sliding sleeve at both ends of the cleaning component can move horizontally along the slide rod through the threaded sleeve while the lead screw rotates.
[0009] As one technical solution of the present invention, a rotating frame is rotatably arranged at the center of the conveying assembly, and a workpiece groove for moving the workpiece is provided on the outside of the rotating frame. A pressure sensor is also provided inside the conveying assembly near the milling assembly, so that the workpiece groove moves the workpiece while the rotating frame rotates.
[0010] As a technical solution of the present invention, a third rotary drive component capable of driving the rotating frame to rotate is installed on the side of the top of the workbench near the collection box, so that the controller can control the third rotary drive component to drive the rotating frame to rotate after receiving the monitoring data of the pressure sensor.
[0011] As a technical solution of the present invention, a bracket is fixed on the upper surface of the workbench, and a controller is fixed on one side of the front end of the bracket. A frame is fixed on the top of the bracket, and a second rotary drive is fixed on the top of the frame. The output end of the second rotary drive is provided with a special-shaped gear so that the second rotary drive can be fixed on the top of the bracket through the frame.
[0012] As a technical solution of the present invention, the multifunctional feeding mechanism includes a spline shaft that can be rotatably installed at the center of the top of the bracket. A driven gear that can mesh with the irregular gear is fixed to the outside of the top of the spline shaft, and a circular limiting seat that can be fixed to the lower end face of the top of the bracket is provided on the top of the spline shaft, so that the controller can control the second rotary drive to drive the irregular gear to rotate while the driven gear drives the spline shaft to rotate.
[0013] As a technical solution of the present invention, an installation sleeve is fixed to the outside of the bottom end of the spline shaft, and a limiting slider that can be locked onto the outside of the circular limiting seat is provided at the top end of the installation sleeve. Several cantilever arms are provided at equal intervals on the outside of the bottom end of the installation sleeve, and a pressure rod is hinged to one end of the cantilever arm. The two sides of the pressure rod are provided with clearance grooves to facilitate the stable rotation of the installation sleeve driven by the spline shaft.
[0014] As a technical solution of the present invention, a first telescopic component is installed at one end of the cantilever near the mounting sleeve, and the output end of the first telescopic component can be movably connected to the top end of the pressure rod. A limit sleeve is provided at the center of the cantilever, and a movable rod is movably installed inside the limit sleeve. Limit rods that can be adapted to the clearance groove are provided on both sides of the top end of the movable rod, so that the first telescopic component can drive the top end of the pressure rod to rotate axially along the inner side of the cantilever away from the mounting sleeve.
[0015] As a technical solution of the present invention, a second telescopic component is installed on both sides of the bottom end of the movable rod by a fixing member. The output end of the second telescopic component is provided with a first sliding sleeve that can move longitudinally along the outside of the movable rod. A plurality of first support rods are equidistantly arranged at the bottom of the first sliding sleeve, and a plurality of second support rods are equidistantly arranged at the outside of the bottom end of the movable rod. A stop block is movably installed at one end of the second support rod, and one side of the top of the stop block is movably installed at the end of the first support rod away from the first sliding sleeve, so that the stop block can be retracted and extended by the cooperation of the first support rod and the second support rod while the first sliding sleeve moves longitudinally. Beneficial effects
[0016] The advantages of this invention compared to the prior art are:
[0017] This application incorporates a collection box that communicates with the interior of a milling assembly within the worktable, and a back-blowing component inside the milling assembly. This back-blowing component blows debris generated during workpiece machining into the collection box for storage. A reciprocating cleaning component is installed at the bottom of the collection box, with an arc-shaped cleaning plate at its bottom. When the cleaning component, moving the arc-shaped cleaning plate, pushes the debris stored in the collection box to the output end, the debris tumbles forward along the arc of one side of the arc-shaped cleaning plate. A third extension is then movably installed at the center of the rear side of the arc-shaped cleaning plate. The third telescopic component is movably installed at the bottom of the center of the rear end of the cleaning component. This allows the third telescopic component to separate the bottom of the arc-shaped cleaning plate from the bottom of the collection box as the cleaning component moves the arc-shaped cleaning plate back to the starting point. This prevents debris from being carried back to the starting point by the arc-shaped cleaning plate. By setting push rods at both ends of the top of the arc-shaped cleaning plate, the push rods will open the door when the arc-shaped cleaning plate moves to the output end of the collection box, facilitating the discharge of debris. This achieves automatic cleaning of collected debris by the bearing batch processing equipment, solving the problems of incomplete debris cleaning and low efficiency. Attached Figure Description
[0018] Figure 1 is a perspective view of a deep groove ball bearing batch processing equipment with a debris collection function.
[0019] Figure 2 is a top view of a deep groove ball bearing batch processing equipment with a debris collection function.
[0020] Figure 3 is a cross-sectional view at point AA in Figure 2.
[0021] Figure 4 is a perspective view of a multi-functional feeding mechanism in a batch processing equipment for deep groove ball bearings with a debris collection function.
[0022] Figure 5 is a transmission diagram of a multi-functional feeding mechanism in a batch processing equipment for deep groove ball bearings with a debris collection function.
[0023] Figure 6 is a perspective view of a cleaning component in a batch processing equipment for deep groove ball bearings with a debris collection function.
[0024] Figure 7 is a perspective view of a conveying component in a batch processing equipment for deep groove ball bearings with a debris collection function.
[0025] Figure 8 is a schematic diagram of the internal structure of the milling assembly in a batch processing equipment for deep groove ball bearings with a debris collection function.
[0026] The following components are labeled in the diagram: 1. Workbench; 11. Support; 12. Controller; 13. Frame; 2. Milling assembly; 21. Backflushing assembly; 3. Collection box; 31. Connecting sleeve; 32. Gate; 33. First rotary drive component; 34. Lead screw; 35. Slide rod; 4. Multifunctional feeding mechanism; 41. Splined shaft; 42. Driven gear; 43. Circular limit seat; 44. Mounting sleeve; 441. Limiting slider; 45. Cantilever; 451. Downward pressure rod; 452. Relief groove; 453. First telescopic assembly; 46. Limiting sleeve ; 461. Movable rod; 462. Limiting rod; 463. Second telescopic assembly; 464. First sliding sleeve; 465. First support rod; 466. Second support rod; 467. Abutment block; 47. Second rotary drive component; 48. Irregular gear; 5. Conveying assembly; 51. Rotating frame; 52. Workpiece groove; 53. Pressure sensor; 54. Third rotary drive component; 6. Conveying device; 7. Cleaning assembly; 71. Top rod; 72. Threaded sleeve; 73. Second sliding sleeve; 74. Arc-shaped cleaning plate; 75. Third telescopic assembly. The best embodiment of the present invention
[0027] To further understand the features, technical means, and specific objectives and functions achieved by the present invention, the present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments.
[0028] Referring to Figures 1-8, a batch processing equipment for deep groove ball bearings with a chip collection function includes a worktable 1. A milling assembly 2 for milling the workpiece is located at the center of the top of the worktable 1 near the front end. A backflushing assembly 21 for backflushing the chips generated during processing is located at the top of the milling assembly 2. A collection box 3 communicating with the inside of the milling assembly 2 is located inside the worktable 1. A gate 32 is located at the output end of the collection box 3. A cleaning assembly 7 capable of horizontal reciprocating movement is located at the bottom of the inner side of the collection box 3. An adjustable arc-shaped cleaning mechanism is located at the bottom of the cleaning assembly 7. The workbench 74 has a top rod 71 at both ends of its top. The top of the arc-shaped cleaning plate 74 is hinged to the bottom of the front end of the cleaning assembly 7. A third telescopic assembly 75 is movably installed at the center of one side of the arc-shaped cleaning plate 74. The output end of the third telescopic assembly 75 is movably installed at the center of the bottom of the rear end of the cleaning assembly 7. A conveying assembly 5 for feeding is provided on the side of the upper surface of the workbench 1 near the rear end. A conveying device 6 for outputting the processed workpiece is provided on the other side of the upper surface of the workbench 1 near the rear end. A multi-functional feeding mechanism 4 that can rotate at a specific angle is provided at the center of the top of the workbench 1.
[0029] In use, a collection box 3 that communicates with the inside of the milling assembly 2 is installed inside the worktable 1, and a back-blowing assembly 21 is installed inside the milling assembly 2. The back-blowing assembly 21 blows the debris produced during workpiece processing into the collection box 3 for storage. A reciprocating cleaning assembly 7 is installed at the bottom of the collection box 3, and an arc-shaped cleaning plate 74 is installed at the bottom of the cleaning assembly 7. When the cleaning assembly 7 drives the arc-shaped cleaning plate 74 to push the debris stored in the collection box 3 to the output end, the debris rolls forward along the arc of one side of the arc-shaped cleaning plate 74, and then... A third telescopic component 75 is movably installed at the center of the rear side of the cleaning plate 74, and the output end of the third telescopic component 75 is movably installed at the bottom of the center of the rear end of the cleaning component 7. This allows the third telescopic component 75 to separate the bottom of the arc-shaped cleaning plate 74 from the bottom of the collection box 3 during the process of the cleaning component 7 moving the arc-shaped cleaning plate 74 back to the starting point. This prevents debris from being carried back to the starting point by the arc-shaped cleaning plate 74. By setting push rods 71 at both ends of the top of the arc-shaped cleaning plate 74, the push rods 71 will open the gate 32 when the arc-shaped cleaning plate 74 moves to the output end of the collection box 3, facilitating the discharge of debris.
[0030] Referring to Figures 3 and 6, a rotatable lead screw 34 is horizontally installed at the center of the bottom inner side of the collection box 3, and sliding rods 35 for limiting are symmetrically arranged on both sides of the bottom inner side of the collection box 3. A first rotary drive 33 with its output end fixed to the outer edge of the lead screw 34 is installed near the center of the bottom on one side of the collection box 3. A connecting sleeve 31 is fixed to the top of the input end of the collection box 3, and the top end of the connecting sleeve 31 is fixed to the upper surface inside the workbench 1.
[0031] In use, the lead screw 34 is rotated and installed at the center inside the collection box 3, and one end of the lead screw 34 is installed at the output end of the first rotary drive 33, so that the first rotary drive 33 drives the lead screw 34 to rotate. The input end of the collection box 3 is connected to the inside of the milling assembly 2 through the connecting sleeve 31, so that the debris generated by the milling assembly 2 during the processing of the workpiece falls into the inside of the collection box 3 through the connecting sleeve 31.
[0032] Referring to Figure 6, a threaded sleeve 72 that can be adapted to the lead screw 34 is provided at the center of the cleaning component 7, and second sliding sleeves 73 that can be adapted to the sliding rod 35 are provided at both ends of the cleaning component 7.
[0033] In use, a threaded sleeve 72 is provided at the center of the cleaning component 7 and is movably installed outside the lead screw 34. Second sliding sleeves 73 are provided at both ends of the cleaning component 7 and are movably installed outside the slide rod 35. This allows the lead screw 34 to rotate while the second sliding sleeves 73 at both ends of the cleaning component 7 move horizontally along the slide rod 35 through the threaded sleeve 72.
[0034] Referring to Figure 7, a rotating frame 51 is rotatably arranged at the center of the conveying assembly 5, and a workpiece groove 52 for moving the workpiece is provided on the outside of the rotating frame 51. A pressure sensor 53 is provided inside the conveying assembly 5 on the side near the milling assembly 2.
[0035] In use, the rotating frame 51 is rotated and installed at the center of the conveying assembly 5, and a workpiece groove 52 is set on the outside of the rotating frame 51, so that the workpiece groove 52 drives the workpiece to move while the rotating frame 51 rotates. A pressure sensor 53 is set at the bottom inside the conveying assembly 5. When the pressure sensor 53 detects that the workpiece is taken out, it transmits the monitoring data to the controller 12.
[0036] As shown in Figure 7, a third rotary drive 54 capable of rotating the rotating frame 51 is installed on the top side of the workbench 1 near the collection box 3.
[0037] In use, by fixing the third rotary drive 54 to the top of the workbench 1 and electrically connecting the conveying assembly 5 to the controller 12, the controller 12 controls the third rotary drive 54 to drive the rotating frame 51 to rotate after receiving the monitoring data from the pressure sensor 53.
[0038] Referring to Figures 1, 3, 4 and 5, a bracket 11 is fixed to the upper surface of the workbench 1, and a controller 12 is fixed to one side of the front end of the bracket 11. A frame 13 is fixed to the top of the bracket 11, and a second rotary drive 47 is fixed to the top of the frame 13. A special-shaped gear 48 is provided at the output end of the second rotary drive 47.
[0039] In use, the second rotary drive 47 is fixed to the top of the support 11 by fixing the frame 13 to the top of the support 11.
[0040] Referring to Figures 3 and 4, the multi-functional feeding mechanism 4 includes a spline shaft 41 that can be rotatably mounted at the center of the top of the bracket 11. A driven gear 42 that can mesh with a non-circular gear 48 is fixed to the outside of the top of the spline shaft 41, and a circular limiting seat 43 that can be fixed to the lower end face of the top of the bracket 11 is provided on the top of the spline shaft 41.
[0041] In use, the spline shaft 41 is rotated and installed at the center of the top of the bracket 11, and a driven gear 42 is set on the outside of the top of the spline shaft 41. The driven gear 42 can mesh with the non-circular gear 48, so that the controller 12 controls the second rotary drive 47 to drive the non-circular gear 48 to rotate, while the driven gear 42 drives the spline shaft 41 to rotate.
[0042] Referring to Figures 3 and 4, a mounting sleeve 44 is fixed to the outside of the bottom end of the spline shaft 41, and a limiting slider 441 that can be locked onto the outside of the circular limiting seat 43 is provided at the top end of the mounting sleeve 44. Several cantilever arms 45 are equidistantly arranged on the outside of the bottom end of the mounting sleeve 44, and a lowering rod 451 is hinged to one end of the cantilever arm 45. A clearance groove 452 is provided through both sides of the lowering rod 451.
[0043] In use, by setting a limiting slider 441 at the top of the mounting sleeve 44, and the limiting slider 441 being compatible with the circular limiting seat 43, the spline shaft 41 drives the mounting sleeve 44 to rotate stably.
[0044] Referring to Figure 3, a first telescopic component 453 is installed at one end of the cantilever 45 near the mounting sleeve 44, and the output end of the first telescopic component 453 can be movably connected to the top end of the pressure rod 451. A limit sleeve 46 is provided at the center of the cantilever 45, and a movable rod 461 is movably installed inside the limit sleeve 46. Limit rods 462 that can be adapted to the clearance groove 452 are provided on both sides of the top end of the movable rod 461.
[0045] In use, the bottom end of the pressure rod 451 is movably mounted on the end of the cantilever 45 away from the mounting sleeve 44, and a first telescopic component 453 is provided at the end of the cantilever 45 near the mounting sleeve 44. The output end of the first telescopic component 453 is movably connected to the top end of the pressure rod 451, so that the first telescopic component 453 drives the top end of the pressure rod 451 to rotate axially along the inner side of the end of the cantilever 45 away from the mounting sleeve 44.
[0046] Referring to Figure 4, a second telescopic assembly 463 is installed on both sides of the bottom end of the movable rod 461 by means of a fixing member. The output end of the second telescopic assembly 463 is provided with a first sliding sleeve 464 that can move longitudinally along the outside of the movable rod 461. A plurality of first support rods 465 are equidistantly arranged at the bottom of the first sliding sleeve 464, and a plurality of second support rods 466 are equidistantly arranged at the outside of the bottom end of the movable rod 461. A stop block 467 is movably installed at one end of the second support rod 466, and one side of the top of the stop block 467 is movably installed at the end of the first support rod 465 away from the first sliding sleeve 464.
[0047] In use, the second telescopic component 463 is fixed to both sides of the bottom end of the spline shaft 41, and the first sliding sleeve 464 is movably set at the output end of the second telescopic component 463, so that the second telescopic component 463 drives the first sliding sleeve 464 to move longitudinally along the spline shaft 41. A first support rod 465 is set at the bottom end of the first sliding sleeve 464, and a second support rod 466 is set outside the bottom end of the movable rod 461. An abutment block 467 is movably installed at one end of the first support rod 465 and the second support rod 466, so that while the first sliding sleeve 464 moves longitudinally, the abutment block 467 is retracted and extended through the cooperation of the first support rod 465 and the second support rod 466.
[0048] The above embodiments only illustrate one or more implementations of the present invention, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the present invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these all fall within the protection scope of the present invention. Therefore, the protection scope of the present invention should be determined by the appended claims.
Claims
1. A batch processing equipment for deep groove ball bearings with a debris collection function, comprising a worktable (1), characterized in that, A milling assembly (2) for milling workpieces is provided at the center of the top of the worktable (1) near the front end. A backflushing assembly (21) for backflushing the chips generated during processing is provided at the top of the milling assembly (2). A collection box (3) that can communicate with the inside of the milling assembly (2) is provided inside the worktable (1). A gate (32) is provided at the output end of the collection box (3). A cleaning assembly (7) that can move horizontally back and forth is provided at the bottom of the inner side of the collection box (3). An arc-shaped cleaning plate (74) that can adjust the angle is provided at the bottom of the cleaning assembly (7). The top two ends of the arc-shaped cleaning plate (74) are provided with... A top rod (71) is provided, and the top of the arc-shaped cleaning plate (74) is hinged to the bottom of the front end of the cleaning assembly (7). A third telescopic assembly (75) is movably provided at the center of one side of the arc-shaped cleaning plate (74). The output end of the third telescopic assembly (75) is movably installed at the center of the bottom of the rear end of the cleaning assembly (7). A conveying assembly (5) for feeding is provided on the side of the upper surface of the worktable (1) near the rear end. A conveying device (6) for outputting the processed workpiece is provided on the other side of the upper surface of the worktable (1) near the rear end. A multi-functional feeding mechanism (4) that can rotate at a specific angle is provided at the center of the top of the worktable (1).
2. The batch processing equipment for deep groove ball bearings with debris collection function according to claim 1, characterized in that, A rotatable lead screw (34) is horizontally installed at the center of the bottom inner side of the collection box (3), and sliding rods (35) for limiting are symmetrically arranged on both sides of the bottom inner side of the collection box (3). A first rotary drive (33) with its output end fixed to the outer edge of the lead screw (34) is installed at the center of the bottom side of the collection box (3). A connecting sleeve (31) is fixed at the top of the input end of the collection box (3), and the top end of the connecting sleeve (31) is fixed to the upper surface inside the workbench (1).
3. The batch processing equipment for deep groove ball bearings with debris collection function according to claim 1, characterized in that, The cleaning assembly (7) is provided with a threaded sleeve (72) at the center that can be adapted to the lead screw (34), and the cleaning assembly (7) is provided with a second sliding sleeve (73) at both ends that can be adapted to the sliding rod (35).
4. The batch processing equipment for deep groove ball bearings with debris collection function according to claim 1, characterized in that, A rotating frame (51) is rotatably arranged at the center of the conveying assembly (5), and a workpiece groove (52) for moving the workpiece is provided on the outside of the rotating frame (51), and a pressure sensor (53) is provided inside the conveying assembly (5) on the side close to the milling assembly (2).
5. The batch processing equipment for deep groove ball bearings with debris collection function according to claim 1, characterized in that, The workbench (1) has a third rotary drive (54) installed on the top side of the inside near the collection box (3), which can drive the rotating frame (51) to rotate.
6. The batch processing equipment for deep groove ball bearings with debris collection function according to claim 1, characterized in that, The upper surface of the workbench (1) is fixed with a bracket (11), and a controller (12) is fixed on one side of the front end of the bracket (11). A frame (13) is fixed on the top of the bracket (11), and a second rotary drive (47) is fixed on the top of the frame (13). A special gear (48) is provided at the output end of the second rotary drive (47).
7. A batch processing equipment for deep groove ball bearings with debris collection function according to claim 1, characterized in that, The multifunctional feeding mechanism (4) includes a spline shaft (41) that can be rotatably mounted at the center of the top of the bracket (11). The spline shaft (41) has a driven gear (42) that can mesh with the shaped gear (48) fixed on the outside of the top of the spline shaft (41), and a circular limiting seat (43) that can be fixed to the lower end face of the top of the bracket (11) is provided on the top of the spline shaft (41).
8. A batch processing equipment for deep groove ball bearings with debris collection function according to claim 7, characterized in that, The spline shaft (41) has an external mounting sleeve (44) fixed at the bottom end, and the top end of the mounting sleeve (44) is provided with a limiting slider (441) that can be locked onto the outside of the circular limiting seat (43). A number of cantilever arms (45) are provided at equal intervals at the bottom end of the mounting sleeve (44), and a lowering rod (451) is hinged to one end of the cantilever arm (45). A clearance groove (452) is provided through both sides of the lowering rod (451).
9. A batch processing equipment for deep groove ball bearings with a debris collection function according to claim 8, characterized in that, The cantilever (45) is equipped with a first telescopic component (453) at one end near the mounting sleeve (44), and the output end of the first telescopic component (453) can be movably connected to the top end of the pressure rod (451). A limit sleeve (46) is provided at the center of the cantilever (45), and a movable rod (461) is movably installed inside the limit sleeve (46). Limit rods (462) that can be adapted to the relief groove (452) are provided on both sides of the top end of the movable rod (461).
10. A batch processing equipment for deep groove ball bearings with a debris collection function according to claim 9, characterized in that, The bottom ends of the movable rod (461) are fixed with a second telescopic component (463) on both sides. The output end of the second telescopic component (463) is provided with a first sliding sleeve (464) that can move longitudinally along the outside of the movable rod (461). The bottom of the first sliding sleeve (464) is provided with a plurality of first support rods (465) at equal intervals. The bottom end of the movable rod (461) is provided with a plurality of second support rods (466) at equal intervals. One end of the second support rod (466) is movably installed with an abutment block (467). One side of the top of the abutment block (467) is movably installed at the end of the first support rod (465) away from the first sliding sleeve (464).
Citation Information
Patent Citations
Forward fully-automatic multi-head lathe
CN105195761A
Easily-regenerated toner cartridge and production method thereof
CN116967953A
Bearing processing equipment with garbage collection function
CN205927118U
Numerical control machine tool convenient for cleaning workpiece scraps
CN212444305U
Four-axis slot milling machine for bamboo fiber composite board production
CN217833973U