Bearing ring inner and outer diameter detection device
Patent Information
- Application Number
- CN202521992470.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-16
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-09-16
AI Technical Summary
[0004]然而,现有的轴承套圈内外径自动检测设备大都是利用感应器直接获取内外径数值,再通过判断内外径数值是否符合工艺要求的数值范围来进行判定轴承套圈是否合格,这个过程相对而言效率低下,同时存在误差累积,容易造成后续测量数值较大的偏差
[0022]1、本实用新型检测装置使用标准工件进行测头的校准定位,一次校准即可完成待测工件的检测作业,避免了测头频繁校准,大大提高了检测效率和检测精准度。
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Figure CN224744301U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a device for detecting the inner and outer diameters of bearing rings, belonging to the technical field of testing equipment. Background Technology
[0002] The accuracy of the inner and outer diameters of bearing rings directly affects the overall quality of the bearing. Different bearings require different inner and outer diameters, but all must maintain these parameters within a certain error range; otherwise, they must be scrapped. Currently, after the bearing rings are manufactured, they are generally checked manually to ensure the verticality of the inner and outer diameters meets the requirements. If the error range is too large, they are scrapped. However, manually checking each bearing ring individually is time-consuming, labor-intensive, and extremely inefficient.
[0003] Currently, there are already devices on the market that can automatically detect the outer diameter of bearing rings. For example, Chinese patent document CN210346639U discloses a fully automatic bearing ring outer diameter testing machine, including a machine body with a feeding conveyor belt on the machine body. A platform is provided at the end of the feeding conveyor belt, and a feeding pusher is provided on the feeding conveyor belt to push the bearing from the feeding conveyor belt to the platform. The feeding pusher is pushed forward by a feeding pusher cylinder. A material transfer mechanism is provided on one side of the platform. An outer diameter measuring mechanism and a defective product unloading mechanism are arranged sequentially on the platform. In this patent solution, the left and right claws of the measuring jaws are mounted on the measuring head using spring plates. When the left and right claws descend, they are blocked by the outer ring of the bearing, resulting in a left-right movement. The displacement parameters are captured by a position sensor mounted on the left claw and passing through the auxiliary plate of the right claw. This has a significant speed advantage compared to using a two-finger cylinder for detection.
[0004] However, most existing automatic bearing ring inner and outer diameter testing equipment uses sensors to directly obtain inner and outer diameter values, and then judges whether the bearing ring is qualified by judging whether the inner and outer diameter values meet the numerical range required by the process. This process is relatively inefficient and has the problem of error accumulation, which can easily cause large deviations in subsequent measurement values. Utility Model Content
[0005] To address the shortcomings of existing technologies, this utility model provides an improved bearing ring inner and outer diameter detection device. This device does not directly obtain the inner and outer diameter values of the bearing ring. Instead, it uses a standard bearing as a reference and uses a probe to compare the bearing ring to be tested with the reference. Bearing rings that differ significantly from the reference are discarded, greatly improving inspection efficiency and avoiding the accumulation of errors caused by direct measurement, resulting in higher inspection accuracy.
[0006] The technical solution of this utility model is as follows:
[0007] A bearing ring inner and outer diameter testing device includes a testing frame, a testing plate, and a probe. A motor is installed on the top of the testing frame, and the output end of the motor is connected to a lead screw and slider transmission mechanism. The probe is connected to the lead screw and slider transmission mechanism through a fixed frame. The testing plate is located below the probe and is driven to move back and forth by a telescopic mechanism. A standard workpiece can be placed under the testing plate for probe calibration.
[0008] Preferably, the detection device has at least two probes arranged side by side. The advantage of this design is that the detection device can meet different detection requirements by adding multiple probes, and can simultaneously detect the inner diameter or outer diameter, thus improving detection efficiency.
[0009] Preferably, the testing stand is convex ("U"-shaped). The advantage of this design is that the convex-shaped stand has good stability, ensuring the accuracy of the probe's detection.
[0010] Preferably, the bottom of the testing platform is provided with two parallel slide rails, and the testing platform is slidably connected to the slide rails.
[0011] Preferably, the telescopic mechanism includes a cylinder, a hydraulic cylinder, or an electric push rod.
[0012] Preferably, the telescopic mechanism is a rodless cylinder. The advantage of this design is that the rodless cylinder is compact and can meet the requirements of working in confined spaces.
[0013] Preferably, the motor includes a servo motor or a stepper motor.
[0014] Preferably, the fixing frame is an L-shaped bracket, and the probe is fixedly installed at the bottom of the L-shaped bracket.
[0015] Preferably, the probe includes an inner diameter probe, an outer diameter probe, or a combination of an inner diameter probe and an outer diameter probe.
[0016] Preferably, the front side of the testing platform is provided with a vertical slide rail, and the fixing frame is connected to the vertical slide rail by a slider.
[0017] Preferably, the detection device further includes a feeding mechanism, which includes a feeding cylinder, a clamping cylinder, grippers, connecting rods, a transverse guide rail, and front and rear guide rails. The ends of each pair of grippers are connected to two parallel connecting rods, one end of which is driven by the clamping cylinder. The bottom end of the connecting rod is connected to a transverse slider, which is mounted on the transverse guide rail and driven by the feeding cylinder. The bottom end of the transverse guide rail is connected to a front and rear slider, which is mounted on the front and rear guide rails and driven by a pushing cylinder.
[0018] Preferably, the detection device further includes a sorting mechanism, which includes a lifting cylinder, a sorting plate, and a pulling cylinder; the sorting plate is provided with two round holes, the pulling cylinder is disposed on the sorting plate and located between the two round holes, the piston rod of the pulling cylinder is connected to a plate, and the lifting cylinder is located directly below the round holes and the piston rod of the lifting cylinder is connected to a tray.
[0019] Preferably, the detection device further includes a material conveying mechanism, which is a belt conveyor driven by a motor.
[0020] Preferably, the detection device further includes an industrial control computer, and the motor, telescopic mechanism, probe, feeding cylinder, clamping cylinder, pushing cylinder, lifting cylinder and pulling cylinder are all driven and controlled by the industrial control computer.
[0021] Technical features and beneficial effects of this utility model:
[0022] 1. The detection device of this utility model uses a standard workpiece for probe calibration and positioning. The detection operation of the workpiece to be tested can be completed in one calibration, avoiding frequent probe calibration and greatly improving detection efficiency and accuracy.
[0023] 2. This utility model's testing device uses a standard workpiece as a reference for testing, avoiding the accumulation of errors caused by measuring each workpiece individually, resulting in higher testing accuracy. The PLC can also be used to set the calibration timing of the probe; after testing a certain number of workpieces, the probe can be recalibrated to ensure the accuracy of continuous testing. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of the detection device of this utility model;
[0025] Figure 2 This is a schematic diagram of the working state of the detection device of this utility model. Figure I ;
[0026] Figure 3 This is a schematic diagram of the working state of the detection device of this utility model. Figure II ;
[0027] Figure 4 This is a schematic diagram of the working state of the detection device of this utility model. Figure III ;
[0028] In the figure: 1-motor, 2-motor, 3-detection bench, 4-vertical plate, 5-detection table plate, 6-slide rail, 7-standard workpiece, 8-outer diameter measuring probe, 9-telescoping mechanism, 10-standard workpiece, 11-inner diameter measuring probe, 12-fixing frame, 13-motor, 14-belt conveyor, 15-feeding cylinder, 16-transverse slide block, 17-transverse guide rail, 18-pulling cylinder, 19-sorting plate, 20-connecting rod, 21-clamping cylinder, 22-material gripping hand, 23-front-rear guide rail, 24-front-rear slide block, 25-lifting cylinder, 26-support plate, 27-bottom plate, 28-flat plate, 29-workpiece to be detected. Detailed Description of Embodiments
[0029] Hereinafter, the present utility model is further illustrated by embodiments with reference to the accompanying drawings, but is not limited thereto.
[0030] Embodiment 1:
[0031] As shown in Figure 1 , the present embodiment provides a device for detecting inner and outer diameters of bearing rings, comprising a detection bench 3, a detection table plate 5 and measuring probes; the top of the detection bench 3 is provided with motors 1 and 2, an output end of the motor is connected with a screw slider transmission mechanism, the measuring probes are connected with the screw slider transmission mechanism through a fixing frame 12, the detection table plate 5 is located below the measuring probes, the detection table plate is driven by a telescoping mechanism 9 to move back and forth, and standard workpieces 7 and 10 can be placed below the detection table plate 5 for calibration of the measuring probes.
[0032] Specifically, the detection bench 3 is in a "convex" shape and is formed by connecting a plurality of vertical plates 4. The "convex" shaped bench has good stability and can ensure the detection accuracy of the measuring probes. In the present embodiment, two measuring probes are installed on the detection bench, one is an inner diameter measuring probe 11 and the other is an outer diameter measuring probe 8, which can detect both the inner diameter and the outer diameter of the workpiece 29 to be detected. Both measuring probes can be inner diameter measuring probes or outer diameter measuring probes, so as to improve detection efficiency. Workers can determine which type of measuring probes to install according to detection requirements. In addition, the measuring probes 8 and 11 are commercially available mature products, which can be directly purchased and installed on the fixing frame 12.
[0033] The bottom of the detection bench 3 is provided with two parallel slide rails 6, and the detection table plate 5 is slidably connected to the slide rails 6. The detection table plate 5 is pulled back and forth by the telescoping mechanism 9. When the detection table plate 5 is pushed inward, the measuring probes can be calibrated and positioned through the standard workpieces; when the detection table plate 5 is pulled out, the workpiece 29 to be detected can be placed on the detection table plate 5 and detected by the measuring probes. In the present embodiment, a rodless cylinder is selected as the telescoping mechanism 9, which has a small volume and can meet the operation requirements in a small space.
[0034] Motors 1 and 2 are servo motors, or stepper motors can be used instead. The two motors are installed on the top of the test bench 3. Motors 1 and 2 are connected to the drive screw-slider transmission mechanism. The fixed frame 12 is connected to the screw-slider transmission mechanism. The screw is driven to rotate by motors 1 and 2, which in turn drives the screw-slider and the fixed frame 12 to move up and down.
[0035] The mounting bracket 12 is an L-shaped bracket. The probe is fixedly mounted at the bottom of the L-shaped bracket, and the back of the L-shaped bracket is fixedly connected to the lead screw slider by bolts. The L-shaped bracket facilitates probe replacement. One probe is mounted on one L-shaped bracket, and two probes are mounted on two L-shaped brackets respectively. For different testing process requirements, the probe can be directly replaced on the L-shaped bracket. Two L-shaped brackets can simultaneously install two inner diameter probes or two outer diameter probes, or one L-shaped bracket can install an inner diameter probe and the other L-shaped bracket can install an outer diameter probe. In this embodiment, one L-shaped bracket is used to install the inner diameter probe 11, and the other L-shaped bracket is used to install the outer diameter probe 8.
[0036] The testing device also includes a feeding mechanism, which automatically picks up the workpieces 29 to be tested one by one onto the testing station of the testing platform 5, and simultaneously picks up the tested workpieces from the testing station. In this embodiment, the feeding mechanism includes a feeding cylinder 15, a clamping cylinder 21, a gripper 22, a connecting rod 20, a transverse guide rail 17, and front and rear guide rails 23. The ends of each pair of grippers 22 are respectively connected to two parallel connecting rods 20. One end of the two parallel connecting rods 20 is connected to and driven by the clamping cylinder 21. When the clamping cylinder 21 operates, it causes the connecting rod 20 connected to the piston rod to move, so that the gripper 22 clamps the workpiece 29 to be tested. The bottom end of the connecting rod 20 is connected to a horizontal slider 16, which is mounted on the horizontal guide rail 17 and driven by the feeding cylinder 15; the bottom end of the horizontal guide rail 17 is connected to a front and rear slider 24, which is mounted on the front and rear guide rails 23 and driven by a pushing cylinder (not shown in the figure).
[0037] The testing device also includes a sorting mechanism, which is mainly designed for the classification and collection of defective workpieces after testing. In this embodiment, the sorting mechanism includes a lifting cylinder 25, a sorting plate 19, and a pulling cylinder 18. The sorting plate 19 has two circular holes. The pulling cylinder 18 is installed on the sorting plate 19 and located between the two circular holes. The piston rod of the pulling cylinder 18 is connected to a flat plate 28. The lifting cylinder 25 is located directly below the circular holes, and its piston rod is connected to a tray. One circular hole is used to collect workpieces with unqualified outer diameters, and the other circular hole is used to collect workpieces with unqualified inner diameters. The lifting cylinder 25 lifts the inspected defective workpieces upwards and through the upper circular hole. Then, the pulling cylinder 18 pulls the flat plate 28, which pushes the defective workpieces into the waste bin.
[0038] The testing device also includes an industrial control computer (not shown in the figure). The entire testing device is controlled by the industrial control computer and requires no human intervention. After the testing program is set, the testing device will run automatically. The motor, telescopic mechanism, probe, feeding cylinder, clamping cylinder, pushing cylinder, lifting cylinder, and pulling cylinder are all driven and controlled by the industrial control computer.
[0039] Example 2:
[0040] A bearing ring inner and outer diameter detection device, with the structure as described in Example 1, except that the telescopic mechanism 9 is a hydraulic cylinder.
[0041] Example 3:
[0042] A bearing ring inner and outer diameter detection device, with the structure described in Example 1, differs in that the telescopic mechanism 9 is an electric push rod.
[0043] Example 4:
[0044] A bearing ring inner and outer diameter testing device, with the structure described in Embodiment 1, differs in that: a vertical slide rail is arranged parallel to the front side of the testing platform 3, and the vertical ends of the fixed frame 12 are connected to the vertical slide rail via sliders. This design enhances the stability of the fixed frame during its up-and-down movement driven by the screw-slider transmission mechanism, ensuring the accuracy of the probe testing.
[0045] Example 5:
[0046] A bearing ring inner and outer diameter testing device, with the structure described in Embodiment 1, differs in that: the testing device further includes a material conveying mechanism, which is a belt conveyor 14 driven by a motor 13. The belt conveyor 14 is located on one side of the testing platform 3, as shown below. Figure 2 As shown, the material handling arm 22 of the feeding mechanism can continuously grip the workpieces 29 to be tested from the belt conveyor, thus improving work efficiency.
[0047] Example 6:
[0048] A method for operating a bearing ring inner and outer diameter detection device, utilizing the detection device described in Example 5, includes the following specific steps:
[0049] 1) Place standard workpieces 7 and 10 below the inspection platform 5. At this time, the inspection platform 5 is not pulled out. The probes 8 and 11 descend to contact the standard workpieces 7 and 10, and the probes 8 and 11 are calibrated and positioned. Then the probes are raised above the inspection platform.
[0050] 2) The testing platform 5 is pulled out by the telescopic mechanism 9. At this time, the testing platform 5 is located between the probes 8 and 11 and the standard workpieces 7 and 10, which is the testing station of the workpiece to be tested.
[0051] 3) The workpiece 29 to be tested is continuously transported from the belt conveyor 14. The feeder 22 of the feeding mechanism picks up the workpiece 29 to be tested from the belt conveyor 14 and places it on the testing platform 5 in sequence.
[0052] 4) Probes 8 and 11 descend to inspect the inner and outer diameters of each workpiece 29 to be tested. After the inspection is completed, probes 8 and 11 rise.
[0053] 5) The feeding mechanism picks up the subsequent workpieces to be tested from the conveying mechanism and places them one after another on the testing platform 5. The feeding mechanism moves one station at a time. At the same time, the feeding mechanism picks up the workpieces that have been tested on the testing platform 5 and places them on the tray of the lifting cylinder 25.
[0054] 6) For workpieces that fail the inspection, the lifting cylinder 25 lifts up and pushes the workpieces above the round hole. Then, the pulling cylinder 18 moves the plate 28, which pulls the workpieces onto the sorting plate 19, and finally pushes them into the waste basket.
[0055] If the workpiece passes inspection, the lifting cylinder 25 does not operate. When the next workpiece after inspection is picked up by the feeding mechanism and placed on the lifting cylinder, it is directly pushed down into the finished product basket by the grabber 22.
[0056] 7) Repeat steps 3)-6) to complete the inspection of each workpiece.
[0057] The entire process described above is driven and controlled by an industrial computer, requiring no human intervention. Furthermore, depending on the testing process requirements, only the inner diameter or only the outer diameter can be tested. The testing program is pre-set in the industrial computer, enabling automated operation upon startup.
[0058] Example 7:
[0059] A working method for a bearing ring inner and outer diameter detection device, the operation process is as described in Example 6, the difference being that the working method also includes a probe recalibration step: after detecting 50 or 100 workpieces to be tested (the specific number can be set by the worker based on experience), the detection platform 5 is pushed inward by the telescopic mechanism 9, and the probes 8 and 11 descend again to contact the standard workpieces 7 and 10 to achieve probe calibration and positioning. After calibration and positioning are completed, the probes rise, and the detection platform 5 is pulled out again by the telescopic mechanism 9.
[0060] The above description is only a specific embodiment of this utility model. The protection scope of this utility model is not limited thereto. Any changes or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model.
Claims
1. A device for detecting the inner and outer diameters of bearing rings, characterized in that, It includes a testing frame, a testing plate, and a probe; a motor is installed on the top of the testing frame, and the output end of the motor is connected to a lead screw and slider transmission mechanism. The probe is connected to the lead screw and slider transmission mechanism through a fixed frame. The testing plate is located below the probe and is driven to move back and forth by a telescopic mechanism. A standard workpiece can be placed under the testing plate for probe calibration.
2. The bearing ring inner and outer diameter detection device as described in claim 1, characterized in that, The detection device has at least two probes arranged side by side.
3. The bearing ring inner and outer diameter inspection apparatus of claim 1 wherein, The bottom of the testing platform is provided with two parallel slide rails, and the testing platform is slidably connected to the slide rails.
4. The bearing ring inner and outer diameter detection device as described in claim 1, characterized in that, The telescopic mechanism includes a pneumatic cylinder, a hydraulic cylinder, or an electric push rod.
5. The bearing ring inner and outer diameter detection device as described in claim 4, characterized in that, The telescopic mechanism uses a rodless cylinder.
6. The bearing ring inner and outer diameter detection device as described in claim 1, characterized in that, The probe includes an inner diameter probe, an outer diameter probe, or a combination of an inner diameter probe and an outer diameter probe.
7. The bearing ring inner and outer diameter detection device as described in claim 1, characterized in that, The detection device also includes a feeding mechanism, which includes a feeding cylinder, a clamping cylinder, grippers, connecting rods, a transverse guide rail, and front and rear guide rails. The ends of each pair of grippers are connected to two parallel connecting rods. One end of the two parallel connecting rods is driven by the clamping cylinder. The bottom end of the connecting rod is connected to a transverse slider, which is set on the transverse guide rail and driven by the feeding cylinder. The bottom end of the transverse guide rail is connected to a front and rear slider, which is set on the front and rear guide rails and driven by a pushing cylinder.
8. The bearing ring inner and outer diameter detection device as described in claim 7, characterized in that, The detection device also includes a sorting mechanism, which includes a lifting cylinder, a sorting plate, and a pulling cylinder. The sorting plate has two round holes, and the pulling cylinder is set on the sorting plate and located between the two round holes. The piston rod of the pulling cylinder is connected to a plate, and the lifting cylinder is located directly below the round holes and its piston rod is connected to a tray.
9. The bearing ring inner and outer diameter detection device as described in claim 8, characterized in that, The detection device also includes an industrial control computer, and the motor, telescopic mechanism, probe, feeding cylinder, clamping cylinder, pushing cylinder, lifting cylinder and pulling cylinder are all driven and controlled by the industrial control computer.
Citation Information
Patent Citations
Full-automatic bearing ring outer diameter detection machine
CN210346639U