A clearance detection device for bearing production and its use method

By introducing correction components and cleaning components into the clearance detection device for bearing production, the problems of workpiece position correction and magnetic waste chip removal are solved, high-precision and stable clearance detection is achieved, and the consistency of bearing quality is improved.

CN120008535BActive Publication Date: 2025-09-23SHAOGUAN SOUTHEAST BEARING CO LTD
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Patent Information

Application Number
CN202510468659.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2025-09-23
Estimated Expiration
2045-04-15

AI Technical Summary

Technical Problem

Existing clearance detection devices used in bearing production are difficult to automatically correct the position of the workpiece, resulting in measurement errors and inconsistent workpiece quality, affecting the pass rate.

Method used

A correction component, including a servo motor, lead screw, correction plate and spring, is used to automatically correct the position of the workpiece and slowly move the arc panel to ensure the accurate position of the workpiece. A cleaning component is also designed to remove magnetic waste chips from the surface of the workpiece, and a V-shaped magnet is used to collect the waste chips. A limit component prevents the angle of the equipment from changing.

Benefits of technology

The accuracy and stability of bearing clearance detection are improved, measurement errors caused by workpiece position deviation and magnetic waste are avoided, and the accuracy and consistency of measurement results are ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a clearance detection device for bearing production and a method for using the same, which relates to the technical field of bearing clearance detection. The device comprises a detection frame and a correction component, wherein a U-shaped frame is fixedly mounted on the surface of the detection frame, a servo motor is fixedly mounted on the front side of the U-shaped frame, a screw rod is fixedly mounted on the output end of the servo motor, a moving block is slidably mounted on the top of the inner wall of the U-shaped frame, the moving block is threadedly connected to the screw rod, and a clearance detection device is fixedly mounted on the bottom of the moving block, a square groove is provided on the top of the detection frame, and a correction plate moves toward a direction close to the U-shaped rod under the reaction force of the extruded workpiece, and the movement of the correction plate toward the direction close to the U-shaped rod drives the T-shaped rod to move, and the position of the workpiece can be automatically corrected to ensure that the position of the workpiece remains accurate during the detection process, thereby avoiding measurement errors caused by workpiece position deviation, thereby improving the accuracy and stability of the detection.
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Description

Technical Field

[0001] The present invention relates to the technical field of bearing clearance detection, and in particular to a clearance detection device for bearing production and a method for using the same. Background Art

[0002] The clearance detection device used in bearing production usually consists of clearance detection equipment, positioning equipment, adjustment equipment and protection equipment.

[0003] The patent with patent announcement number CN209910539U relates to a micropore detection device and its use method. This patent and a detection device, in order to solve the current complex problems of micropore detection, provide a simple and easy three-dimensional space angle detection structure device. The technical solution provided by this patent is as follows: The detection device of this patent includes a detection body and a needle gauge used in conjunction with the detection body, the detection body is provided with a cavity, the top of the detection body is provided with a detection groove, and the outer wall ring of the detection body is provided with a reference groove. The beneficial effect of this patent is that the micropore angle gauge provided by this patent completes the detection of the size and angle of three-dimensional micropores, and can effectively test the size and angle accuracy of the three-dimensional small holes of the object to be detected. The angles of similar spatial micropores can be detected using this patent. This patent has the characteristics of simple structure, low cost and good effect.

[0004] In the above patent, the three-dimensional micropore size and angle detection is completed by providing a micropore angle gauge, which can effectively test the size and angle accuracy of the three-dimensional small holes of the inspected object. However, it is difficult to automatically correct the position of the workpiece to be inspected. If the workpiece position is not correctly corrected, the clearance detection equipment will have measurement errors or angle errors, which will affect the subsequent judgment of the workpiece quality, making it difficult to unify the product clearance standards, and thus leading to a decrease in the workpiece qualification rate. Summary of the Invention

[0005] In view of the deficiencies in the prior art, the present invention provides a clearance detection device for bearing production and a method for using the same, which solves the problems raised in the above background technology.

[0006] The U-shaped frame is fixedly mounted on the upper surface of the bearing, and the U-shaped frame has a plurality of movable members, each of which is connected to the movable member by a plurality of movable members.

[0007] According to the above technical solution, a No. 1 spring is provided between the T-shaped rod and the movable frame, and the No. 1 spring can drive the T-shaped rod to reset. A U-shaped rod is fixedly installed on the right side of the movable frame, and an arc panel is fixedly installed on the inner wall of the movable frame. The arc panel slowly deforms so that the correction plate can only move slowly to correct the position of the workpiece.

[0008] According to the above technical solution, a detection groove is opened on the top of the detection plate, and the workpiece can be preliminarily limited by the detection groove. The arc panel is elastic. The first screw rod passes through the inner and outer walls of the U-shaped frame, and the second screw rod passes through the inner and outer walls of the movable frame. There are two sets of T-shaped rods, correction plates and arc panels.

[0009] According to the above technical solution, a collection component for cleaning waste chips is provided on the top of the detection plate, and a limiting component is provided on the inner wall of the U-shaped frame. The collection component includes a cleaning hole, a cleaning rod, a cleaning plate, an inclined plate, a stabilizing plate and a collection trough. The cleaning plate moves in a direction away from the rectangular plate to drive the inclined plate to move, and the inclined plate moves to scrape off the magnetic waste chips remaining on the top of the workpiece. The cleaning hole is opened at the top of the detection plate, the cleaning rod is fixedly installed on the inner wall of the cleaning hole, the cleaning plate is slidably installed on the circumferential surface of the cleaning rod, the inclined plate is fixedly installed on the rear side of the cleaning plate, the stabilizing plate is fixedly installed on the circumferential surface of the cleaning rod, and the collection trough is opened at the top of the detection plate.

[0010] According to the above technical solution, a No. 2 spring is arranged between the cleaning plate and the stabilizing plate, and the No. 2 spring can drive the cleaning plate to reset. A V-shaped magnet is fixedly installed on the inner wall of the collection tank. The right side of the stabilizing plate is set as an arc surface. The stabilizing plate vibrates when hit by the cleaning plate. The vibration of the cleaning plate drives the vibration of the inclined plate, and the vibration of the inclined plate shakes off the magnetic waste chips at the bottom.

[0011] According to the above technical solution, the left side of the cleaning plate is set as an arc surface, and the inclined plate is elastic. The elasticity of the inclined plate can prevent the inclined plate from being stuck on the left side of the workpiece, and the cleaning plate is in contact with the U-shaped rod.

[0012] According to the above technical solution, the limiting assembly includes a linkage plate, a connecting tube, a linkage frame, a hollow plate, a limiting frame and a limiting gear. The limiting gear is limited by the limiting frame so that the screw rod cannot continue to rotate. The linkage plate is fixedly installed on the inner wall of the U-shaped frame, the connecting tube is fixedly passed through the upper and lower walls of the linkage plate, the linkage frame is slidably installed on the inner wall of the connecting tube, the hollow plate is fixedly installed on the inner wall of the connecting tube, the limiting frame is slidably installed on the inner wall of the connecting tube, and the limiting gear is fixedly installed on the two circumferential surfaces of the screw rod.

[0013] According to the above technical solution, a reset spring is provided between the linkage frame and the hollow plate, and the reset spring can drive the hollow plate to reset. A filler is provided inside the connecting tube, and the top of the limit frame is set as an inclined surface.

[0014] A method for using a clearance detection device for bearing production, using the above-mentioned clearance detection device for bearing production, includes the following steps:

[0015] Step 1: Place the workpiece to be inspected at the bottom of the inner wall of the inspection tank. After the workpiece is firmly placed, the motor drives the second screw to rotate, and the second screw drives the moving frame to move toward the workpiece. The moving frame moves toward the workpiece, driving the T-shaped rod to move.

[0016] Step 2: The T-shaped rod moves toward the workpiece, driving the correction plate to move. The correction plate moves to contact the workpiece to be inspected and squeezes the workpiece to be inspected. The correction plate is subjected to the reaction force of the squeezed workpiece and moves toward the U-shaped rod. The movement of the correction plate toward the U-shaped rod drives the T-shaped rod to move.

[0017] Step 3: The correction plate cooperates with the elastic force of spring No. 1 to correct the position of the workpiece. After the workpiece position is corrected, the servo motor drives the screw rod 1 to rotate, and the rotation of the screw rod 1 drives the moving block to move away from the servo motor;

[0018] Step 4: The moving block moves away from the servo motor to drive the clearance detection device to move. When the clearance detection device moves to a suitable position angle, the servo motor stops working, and the clearance detection device performs clearance detection on the workpiece at the same time.

[0019] The present invention provides a clearance detection device for bearing production, which has the following beneficial effects:

[0020] (1) This invention corrects the position of the workpiece by means of a correction plate in conjunction with the elastic force of a No. 1 spring. By automatically correcting the position of the workpiece, the position of the workpiece during the detection process can be ensured to be accurate, thereby avoiding measurement errors caused by deviations in the position of the workpiece, and thus improving the accuracy and stability of the detection. The arc plate is slowly deformed so that the correction plate can only move slowly to correct the position of the workpiece. The slow movement of the correction plate can effectively avoid over-positioning or position errors of the workpiece caused by the impact of excessive movement, thereby further ensuring the accuracy of the workpiece positioning.

[0021] (2) In this invention, the cleaning plate moves away from the rectangular plate to drive the inclined plate to move. The inclined plate moves to scrape off the magnetic waste chips remaining on the top of the workpiece. The magnetic waste chips remaining on the top of the workpiece will cause errors in the detection results and affect the accurate measurement of the bearing clearance. The magnetic impurities attached to the surface of the workpiece can be effectively removed by scraping off the magnetic waste chips by the inclined plate, thereby avoiding the interference of the impurities on the clearance detection equipment, thereby improving the accuracy of the clearance detection.

[0022] (3) This invention uses the vibration of the inclined plate to shake off the magnetic waste at the bottom. The shaken-off magnetic waste is adsorbed on the surface of the V-shaped magnet under the magnetic force of the V-shaped magnet itself and collected. The adsorption of the V-shaped magnet can prevent the waste from scattering, thereby avoiding secondary contamination of the detection process or equipment by the waste, further ensuring the accuracy of the measurement. At the same time, the design of the V-shaped magnet can make the magnetic waste concentrate on the surface of the magnet, which is convenient for subsequent cleaning.

[0023] (4) In this invention, the limit gear is limited by the limit frame so that the screw rod 1 cannot continue to rotate. The limit gear cannot continue to rotate, thereby ensuring the accuracy of the position and angle of the clearance detection device during the detection process. If the position and angle of the clearance detection device are inaccurate, it will cause errors in the clearance measurement. By ensuring the detection angle and position of the clearance detection device, errors caused by angle or position deviations can be avoided. In addition, the limitation of the limit frame can prevent the change of the angle of the clearance detection device caused by accidental contact of external force, thereby further improving the accuracy of the measurement results. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0025] Figure 2 This is a schematic diagram of the position structure of the detection frame and the U-shaped frame of the present invention;

[0026] Figure 3 For the present invention Figure 2 A schematic diagram of the structure of part A in the middle;

[0027] Figure 4 This is a schematic diagram of the position structure of the moving block and the clearance detection device of the present invention;

[0028] Figure 5 For the present invention Figure 4 A magnified schematic diagram of the structure of part B;

[0029] Figure 6 This is a schematic diagram of the two-position structure of the motor and the lead screw of the present invention;

[0030] Figure 7 For the present invention Figure 6 A magnified schematic diagram of the structure of part C in the middle;

[0031] Figure 8 Schematic diagram of the internal structure of the communication pipe of the present invention.

[0032] In the figure: 1. Detection frame; 2. U-shaped frame; 3. servo motor; 4. Lead screw 1; 5. Moving block; 6. Clearance detection device; 7. Square slot; 8. Rectangular plate; 9. Motor; 10. Lead screw 2; 11. Moving frame; 12. T-shaped rod; 13. Correction plate; 14. Arc plate; 15. Detection plate; 161. Cleaning hole; 162. Cleaning rod; 163. Cleaning plate; 164. Inclined plate; 165. Stabilizing plate; 166. Collecting trough; 167. V-shaped magnet; 171. Linkage plate; 172. Connecting pipe; 173. Linkage frame; 174. Hollow plate; 175. Return spring; 176. Limit frame; 177. Limit gear; 18. U-shaped rod. DETAILED DESCRIPTION

[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.

[0034] See also Figure 1-Figure 7, one embodiment of the present invention is: a clearance detection device based on bearing production, including a detection frame 1, and also including a correction component, the detection frame 1 is fixedly installed with a U-shaped frame 2 on the surface, the front side of the U-shaped frame 2 is fixedly installed with a servo motor 3, the output end of the servo motor 3 is fixedly installed with a screw rod 4, the top of the inner wall of the U-shaped frame 2 is slidably installed with a moving block 5, the moving block 5 is threadedly connected to the screw rod 4, and the bottom of the moving block 5 is fixedly installed with a clearance detection device 6, the top of the detection frame 1 is provided with a square groove 7, the top of the detection frame 1 is fixedly installed with a rectangular plate 8, the rectangular plate 8 An electric motor 9 is fixedly installed on the right side, a screw rod 2 10 is fixedly installed on the output end of the motor 9, a moving frame 11 is slidably installed on the bottom of the inner wall of the square slot 7, the moving frame 11 is threadedly connected to the screw rod 2 10, a T-shaped rod 12 slides through the front side of the moving frame 11, a correction plate 13 is fixedly installed on the rear side of the T-shaped rod 12, and a detection plate 15 is fixedly installed on the inner wall of the U-shaped frame 2. By automatically correcting the position of the workpiece, the position of the workpiece during the detection process can be ensured to remain accurate, avoiding measurement errors caused by workpiece position deviation, thereby improving the accuracy and stability of the detection.

[0035] A No. 1 spring is provided between the T-shaped rod 12 and the movable frame 11, and the No. 1 spring can drive the T-shaped rod 12 to reset. A U-shaped rod 18 is fixedly installed on the right side of the movable frame 11, and an arc panel 14 is fixedly installed on the inner wall of the movable frame 11. The arc panel 14 slowly deforms so that the correction plate 13 can only move slowly to correct the position of the workpiece. The slow movement of the correction plate 13 can effectively avoid over-positioning or position error of the workpiece caused by the impact of too fast movement, thereby further ensuring the accuracy of the workpiece positioning.

[0036] A detection groove is provided on the top of the detection plate 15, through which the workpiece can be preliminarily limited. The arc panel 14 is elastic, screw rod 1 4 passes through the inner and outer walls of the U-shaped frame 2, and screw rod 2 10 passes through the inner and outer walls of the moving frame 11. There are two sets of T-shaped rods 12, correction plates 13 and arc panels 14.

[0037] A method for using a clearance detection device for bearing production, using the above-mentioned clearance detection device for bearing production, includes the following steps:

[0038] Step 1: Place the workpiece to be inspected at the bottom of the inner wall of the inspection tank. After the workpiece is firmly placed, the motor 9 drives the second screw 10 to rotate, and the second screw 10 drives the moving frame 11 to move toward the workpiece. The moving frame 11 moves toward the workpiece and drives the T-shaped rod 12 to move.

[0039] Step 2: The T-shaped rod 12 moves toward the workpiece, driving the correction plate 13 to move. The correction plate 13 moves to contact the workpiece to be inspected and squeezes the workpiece to be inspected. The correction plate 13 is subjected to the reaction force of the squeezed workpiece and moves toward the U-shaped rod 18. The movement of the correction plate 13 toward the U-shaped rod 18 drives the T-shaped rod 12 to move.

[0040] Step 3: The correction plate 13 cooperates with the elastic force of the No. 1 spring to correct the position of the workpiece. After the workpiece position is corrected, the servo motor 3 drives the screw 1 4 to rotate, and the rotation of the screw 1 4 drives the moving block 5 to move away from the servo motor 3;

[0041] Step 4: The moving block 5 moves away from the servo motor 3 to drive the clearance detection device 6 to move. When the clearance detection device 6 moves to a suitable position angle, the servo motor 3 stops operating, and the clearance detection device 6 performs clearance detection on the workpiece.

[0042] When this embodiment is working: the workpiece to be inspected is placed on the bottom of the inner wall of the inspection groove. After the workpiece is firmly placed, the motor 9 is operated to drive the screw rod 2 10 to rotate. The screw rod 2 10 drives the moving frame 11 to move in the direction close to the workpiece. The moving frame 11 moves in the direction close to the workpiece and drives the T-shaped rod 12 to move. The T-shaped rod 12 moves in the direction close to the workpiece and drives the correction plate 13 to move. The correction plate 13 moves and contacts the workpiece to be inspected and squeezes the workpiece to be inspected. The correction plate 13 is subjected to the reaction force of the squeezed workpiece and moves in the direction close to the U-shaped rod 18. The correction plate 13 moves in the direction close to the U-shaped rod 18 and drives the T-shaped rod 12 to move. The T-shaped rod 12 moves to pull the No. 1 spring. The No. 1 spring is pulled by the T-shaped rod 12 to deform and accumulate The force is exerted, and the correction plate 13 cooperates with the elastic force of the No. 1 spring to correct the position of the workpiece. At the same time, the correction plate 13 moves to contact the arc panel 14 and squeezes the arc panel 14. The arc panel 14 is squeezed by the correction plate 13 and can only deform slowly. The arc panel 14 slowly deforms so that the correction plate 13 can only move slowly to correct the position of the workpiece. After the workpiece position correction is completed, the servo motor 3 operates to drive the screw rod 4 to rotate. The rotation of the screw rod 4 drives the moving block 5 to move away from the servo motor 3. The moving block 5 moves in the direction away from the servo motor 3 and drives the clearance detection device 6 to move. When the clearance detection device 6 moves to the appropriate position angle, the servo motor 3 stops operating. At the same time, the clearance detection device 6 performs clearance detection on the workpiece.

[0043] See also Figures 1-8On the basis of the above embodiment, in another embodiment of the present invention, a collection component for cleaning waste chips is provided on the top of the detection plate 15, and a limiting component is provided on the inner wall of the U-shaped frame 2. The collection component includes a cleaning hole 161, a cleaning rod 162, a cleaning plate 163, an inclined plate 164, a stabilizing plate 165 and a collecting groove 166. The cleaning hole 161 is opened at the top of the detection plate 15, the cleaning rod 162 is fixedly installed on the inner wall of the cleaning hole 161, the cleaning plate 163 is slidably installed on the circumferential surface of the cleaning rod 162, the inclined plate 164 is fixedly installed on the rear side of the cleaning plate 163, the stabilizing plate 165 is fixedly installed on the circumferential surface of the cleaning rod 162, and the collecting groove 166 is opened at the top of the detection plate 15. The magnetic waste chips are scraped off by moving the inclined plate 164, which can effectively remove magnetic impurities attached to the surface of the workpiece, thereby avoiding the interference of impurities with the clearance detection device 6, thereby improving the accuracy of clearance detection.

[0044] A No. 2 spring is provided between the cleaning plate 163 and the stabilizing plate 165, and the No. 2 spring can drive the cleaning plate 163 to reset. A V-shaped magnet 167 is fixedly installed on the inner wall of the collecting groove 166. The right side of the stabilizing plate 165 is set to an arc surface. The stabilizing plate 165 vibrates when hit by the cleaning plate 163. The vibration of the cleaning plate 163 drives the vibration of the inclined plate 164. The vibration of the inclined plate 164 shakes off the magnetic waste chips at the bottom. The adsorption of the V-shaped magnet 167 can prevent the waste chips from scattering, thereby avoiding the secondary contamination of the waste chips to the detection process or equipment, and further ensuring the accuracy of the measurement.

[0045] The left side of the cleaning plate 163 is set as an arc surface, and the inclined plate 164 is elastic. The elasticity of the inclined plate 164 can prevent the inclined plate 164 from being stuck on the left side of the workpiece, and the cleaning plate 163 contacts the U-shaped rod 18.

[0046] The limiting assembly includes a linkage plate 171, a connecting tube 172, a linkage frame 173, a hollow plate 174, a limiting frame 176 and a limiting gear 177. The linkage plate 171 is fixedly mounted on the inner wall of the U-shaped frame 2, the connecting tube 172 is fixedly passed through the upper and lower walls of the linkage plate 171, the linkage frame 173 is slidably mounted on the inner wall of the connecting tube 172, the hollow plate 174 is fixedly mounted on the inner wall of the connecting tube 172, the limiting frame 176 is slidably mounted on the inner wall of the connecting tube 172, and the limiting gear 177 is fixedly mounted on the circumferential surface of the screw rod 210. By ensuring the detection angle and position of the clearance detection device 6, errors caused by angle or position deviations can be avoided.

[0047] A reset spring 175 is provided between the linkage frame 173 and the hollow plate 174, and the reset spring 175 can drive the hollow plate 174 to reset. A filler is provided inside the connecting tube 172, and the top of the limit frame 176 is set as an inclined surface. The limit of the limit frame 176 can prevent the external force from accidentally touching and causing the angle of the clearance detection device 6 to change, thereby further improving the accuracy of the measurement results.

[0048] When this embodiment is working, the moving frame 11 moves in the direction close to the workpiece, driving the U-shaped rod 18 to move. The U-shaped rod 18 moves in the direction close to the workpiece and contacts the cleaning plate 163 and squeezes the cleaning plate 163. The cleaning plate 163 is squeezed by the U-shaped rod 18 and moves in the direction away from the rectangular plate 8. The cleaning plate 163 moves in the direction away from the rectangular plate 8 and squeezes the No. 2 spring. The No. 2 spring is squeezed by the cleaning plate 163 to produce deformation and store force. At the same time, the cleaning plate 163 moves in the direction away from the rectangular plate 8 and drives the inclined plate 164 to move. The inclined plate 164 moves to scrape off the magnetic waste remaining on the top of the workpiece. At the same time, the cleaning plate 163 moves in the direction away from the rectangular plate 8 and contacts the arc surface of the stabilizing plate 165 and stabilizes The plate 165 collides, and the stabilizing plate 165 is vibrated by the impact of the cleaning plate 163. The vibration of the cleaning plate 163 drives the inclined plate 164 to vibrate. The vibration of the inclined plate 164 shakes off the magnetic waste at the bottom. The shaken magnetic waste is adsorbed on the surface of the V-shaped magnet 167 under the magnetic force of the V-shaped magnet 167 itself and collected. When the U-shaped rod 18 moves toward the direction close to the rectangular plate 8 to reset, the U-shaped rod 18 moves toward the direction close to the rectangular plate 8 to break away from the contact with the cleaning plate 163. The cleaning plate 163 breaks away from the contact with the U-shaped rod 18, so that the cleaning plate 163 moves toward the direction close to the rectangular plate 8 to reset under the elastic force of the No. 2 spring. The cleaning plate 163 moves toward the direction close to the rectangular plate 8 to drive the inclined plate 164 to move and reset.

[0049] The cleaning plate 163 moves in the direction away from the rectangular plate 8 so that its own arc surface contacts the linkage frame 173 and squeezes the linkage frame 173. The linkage frame 173 is squeezed by the cleaning plate 163 and moves in the direction away from the rectangular plate 8. The linkage frame 173 moves in the direction away from the rectangular plate 8 to squeeze the return spring 175. The return spring 175 is squeezed by the linkage frame 173 to produce deformation and accumulate force. At the same time, the linkage frame 173 moves in the direction away from the rectangular plate 8 to squeeze the filler inside the communication tube 172. The filler inside the communication tube 172 is squeezed by the linkage frame 1 The extrusion of 73 moves toward the direction close to the limit gear 177, and the filler inside the connecting tube 172 moves toward the direction close to the limit gear 177 to squeeze the limit frame 176. The limit frame 176 is squeezed upward by the filler inside the connecting tube 172. The limit frame 176 moves upward and contacts the limit gear 177 to limit the limit gear 177. The limit gear 177 is limited by the limit frame 176, so that the screw rod 4 cannot continue to rotate. The screw rod 4 cannot continue to rotate, thereby ensuring the accuracy of the position and angle of the clearance detection device 6 during the detection process.

[0050] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A clearance detection device for bearing production, comprising a detection frame (1), characterized in that: The apparatus further includes a correction component, wherein a U-shaped frame (2) is fixedly mounted on the surface of the detection frame (1), a servo motor (3) is fixedly mounted on the front side of the U-shaped frame (2), a screw rod (4) is fixedly mounted on the output end of the servo motor (3), a moving block (5) is slidably mounted on the top of the inner wall of the U-shaped frame (2), the moving block (5) is threadedly connected to the screw rod (4), a clearance detection device (6) is fixedly mounted on the bottom of the moving block (5), a square groove (7) is opened on the top of the detection frame (1), a rectangular plate (8) is fixedly mounted on the top of the detection frame (1), and the right side of the rectangular plate (8) is fixedly mounted. A motor (9) is fixedly installed, a screw rod 2 (10) is fixedly installed on the output end of the motor (9), a moving frame (11) is slidably installed on the bottom of the inner wall of the square slot (7), the moving frame (11) is threadedly connected to the screw rod 2 (10), a T-shaped rod (12) is slidably passed through the front side of the moving frame (11), a correction plate (13) is fixedly installed on the rear side of the T-shaped rod (12), a detection plate (15) is fixedly installed on the inner wall of the U-shaped frame (2), a collection component for cleaning waste is provided on the top of the detection plate (15), and a limit component is provided on the inner wall of the U-shaped frame (2); The collecting assembly comprises a cleaning hole (161), a cleaning rod (162), a cleaning plate (163), an inclined plate (164), a stabilizing plate (165) and a collecting trough (166), wherein the cleaning hole (161) is opened at the top of the detection plate (15), the cleaning rod (162) is fixedly mounted on the inner wall of the cleaning hole (161), the cleaning plate (163) is slidably mounted on the circumferential surface of the cleaning rod (162), the inclined plate (164) is fixedly mounted on the rear side of the cleaning plate (163), the stabilizing plate (165) is fixedly mounted on the circumferential surface of the cleaning rod (162), and the collecting trough (166) is opened at the top of the detection plate (15); A second spring is provided between the cleaning plate (163) and the stabilizing plate (165); a V-shaped magnet (167) is fixedly mounted on the inner wall of the collecting tank (166); and the right side of the stabilizing plate (165) is provided as an arc surface; The limiting assembly includes a linkage plate (171), a connecting tube (172), a linkage frame (173), a hollow plate (174), a limiting frame (176) and a limiting gear (177), wherein the linkage plate (171) is fixedly mounted on the inner wall of the U-shaped frame (2), the connecting tube (172) is fixedly passed through the upper and lower walls of the linkage plate (171), the linkage frame (173) is slidably mounted on the inner wall of the connecting tube (172), the hollow plate (174) is fixedly mounted on the inner wall of the connecting tube (172), the limiting frame (176) is slidably mounted on the inner wall of the connecting tube (172), and the limiting gear (177) is fixedly mounted on the circumferential surface of the second screw rod (10); A return spring (175) is provided between the linkage frame (173) and the hollow plate (174), a filler is provided inside the connecting tube (172), and the top of the limiting frame (176) is provided as an inclined surface; A U-shaped rod (18) is fixedly mounted on the right side of the movable frame (11), and the cleaning plate (163) is in contact with the U-shaped rod (18).

2. The clearance detection device for bearing production according to claim 1, characterized in that: A No. 1 spring is provided between the T-shaped rod (12) and the movable frame (11), and an arc panel (14) is fixedly mounted on the inner wall of the movable frame (11).

3. The clearance detection device for bearing production according to claim 2, characterized in that: A detection groove is provided on the top of the detection plate (15), the arc panel (14) is elastic, the screw rod 1 (4) passes through the inner and outer walls of the U-shaped frame (2), and the screw rod 2 (10) passes through the inner and outer walls of the moving frame (11).

4. The clearance detection device for bearing production according to claim 3, characterized in that: The left side of the cleaning plate (163) is configured as a curved surface, and the inclined panel (164) is elastic.

5. A method for using a clearance detection device for bearing production, using the clearance detection device for bearing production according to claim 4, characterized in that: The following steps are involved: Step 1: Place the workpiece to be inspected at the bottom of the inner wall of the inspection tank. After the workpiece is firmly placed, the motor (9) operates to drive the second screw (10) to rotate, and the second screw (10) drives the moving frame (11) to move in the direction close to the workpiece. The moving frame (11) moves in the direction close to the workpiece and drives the T-shaped rod (12) to move; Step 2: The T-shaped rod (12) moves in a direction close to the workpiece, driving the correction plate (13) to move. The correction plate (13) moves to contact the workpiece to be inspected and squeezes the workpiece to be inspected. The correction plate (13) is subjected to the reaction force of the squeezed workpiece and moves in a direction close to the U-shaped rod (18). The correction plate (13) moves in a direction close to the U-shaped rod (18), driving the T-shaped rod (12) to move. Step 3: The correction plate (13) cooperates with the elastic force of the No. 1 spring to correct the position of the workpiece. After the workpiece position correction is completed, the servo motor (3) drives the screw rod 1 (4) to rotate, and the rotation of the screw rod 1 (4) drives the moving block (5) to move in a direction away from the servo motor (3); Step 4: The moving block (5) moves away from the servo motor (3) to drive the clearance detection device (6) to move. When the clearance detection device (6) moves to a suitable position angle, the servo motor (3) stops operating, and the clearance detection device (6) performs clearance detection on the workpiece.

Citation Information

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