Efficient bearing coaxiality detection equipment

By designing a high-efficiency bearing coaxiality testing device with locking buckles and ball bearing structures, the problems of complex operation and unstable accuracy of existing equipment have been solved, enabling rapid disassembly and installation and improving testing efficiency and accuracy.

CN223564945UActive Publication Date: 2025-11-18CHANGZHOU SBEJIA NEEDLE ROLLING BEARING CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422406945.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-11-18
Estimated Expiration
2034-09-30

AI Technical Summary

Technical Problem

Existing bearing coaxiality testing equipment is complex and time-consuming to install and disassemble, which affects measurement accuracy. Furthermore, quick connectors may be unstable under high load conditions, affecting measurement accuracy.

Method used

A high-efficiency bearing coaxiality testing device was designed, comprising a base, a rotating component, and a testing component. It adopts a locking buckle and ball bearing structure to achieve quick connection and disassembly of the shaft and motor, simplifying the installation and disassembly process.

Benefits of technology

It enables rapid disassembly and installation of bearings, improves testing efficiency, ensures measurement accuracy and stability, and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223564945U_ABST
    Figure CN223564945U_ABST
Patent Text Reader

Abstract

The utility model provides an efficient bearing coaxiality detection device, which comprises a base, a rotating assembly and a detection assembly, the upper end of the base is rotatably provided with the rotating assembly, the rear side of the upper end of the base is provided with the detection assembly, the left side of the upper end of the base is provided with a second mounting seat, and the right side of the upper end of the base is provided with a first mounting seat. Compared with the prior art, the device has the following beneficial effects that the mounting base I and the mounting base II are arranged, so that the mounting base I and the mounting base II can be quickly dismounted, and the rotating assembly can be quickly dismounted and mounted; according to the bearing coaxiality detection device, the bearing to be detected can be rapidly disassembled and assembled, so that the tested bearing can be rapidly taken down and the bearing to be detected can be rapidly installed, the bearing detection efficiency is greatly improved, the purpose of efficiently detecting the bearing coaxiality is achieved, and the arrangement of the locking buckle has the characteristics of rapid disassembly and assembly, and provides support for rapid disassembly and assembly of the rotating assembly.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model belongs to coaxiality detection equipment technical field, especially related to a high -efficient bearing coaxiality detection equipment. BACKGROUND

[0002] Many bearing coaxiality detection equipment designs do not fully consider the convenience in actual operation, resulting in the installation process usually needing multiple steps and needing the help of special tools, increasing the operation time and labor cost. This complex installation process often makes the operator make wrong installation, thereby affecting the measurement accuracy. Secondly, the disassembly process is also time-consuming, especially when the equipment is closely combined with the bearing, the operator needs to repeatedly exert force to disassemble the equipment, which increases the labor intensity and reduces the work efficiency.

[0003] The conventional coping method includes adopting a quick connector or a modular design, in order to shorten the time and simplify the process when installing and disassembling. However, these methods have certain disadvantages, for example, the quick connector can reduce the operation complexity, but under high load or high speed working conditions, it may cause unstable or failure connection, thereby affecting the measurement accuracy, therefore, we hope to design a bearing coaxiality detection equipment with a novel structure, so as to solve this problem. SUMMARY

[0004] In view of the deficiencies existing in the prior art, the utility model aims to provide a high -efficient bearing coaxiality detection equipment, which solves the problems raised in the background art.

[0005] The utility model realizes the following technical scheme: a high -efficient bearing coaxiality detection equipment, comprising: base, rotating assembly and detection assembly, the base upper end rotationally installed with rotating assembly, the base upper end rear side is installed with detection assembly;

[0006] The base upper end left side is installed with mounting seat no. 2, the base upper end right side is installed with mounting seat no. 1, and the base upper end right side is installed with motor;

[0007] The rotating assembly includes a rotating shaft, a connecting circular plate and a locking buckle, the rotating shaft right end is provided with the connecting circular plate, and the rotating shaft right end is connected with the motor output shaft left end shaft through the connecting circular plate and the locking buckle;

[0008] The detection assembly includes a bottom plate, a vertical rod and an adjusting block, the bottom plate upper side is welded with the vertical rod, and the vertical rod upper side is movably installed with the adjusting block through a screw knob, the locking buckle includes a shell one and a shell two, the shell one lower end is hinged with the shell two lower end, and the shell one upper end is locked with the shell two upper end through a screw knob and a nut, the locking buckle is provided, so that the rotating shaft can be quickly connected with the motor and disassembled.

[0009] As a preferred implementation, the mounting seat one includes a mounting plate one, a lower clamping seat one and an upper clamping seat one, the lower clamping seat one is clamped on the upper side of the mounting plate one, and the upper clamping seat one is movably inserted on the upper side of the lower clamping seat one.

[0010] As a preferred implementation, the lower clamping seat one is provided with a semicircular groove one in the middle of the upper end, the upper clamping seat two is provided with a semicircular groove two in the middle of the lower end, the semicircular groove one and the semicircular groove two form a complete circular groove, and the inner walls of the semicircular groove one and the semicircular groove two are movably embedded with a plurality of semicircular structure rolling balls one.

[0011] As a preferred implementation, the mounting seat two includes a mounting box, a mounting plate two, a lower clamping seat two and an upper clamping seat two, the mounting box is connected with the mounting plate two through clamping on the lower end, the mounting box is provided with the lower clamping seat two in the middle of the bottom, and the upper clamping seat two is movably inserted on the upper side of the lower clamping seat two.

[0012] As a preferred implementation, the lower clamping seat two is provided with a semicircular groove three in the middle of the upper end, the upper clamping seat two is provided with a semicircular groove four in the middle of the lower end, the semicircular groove three and the semicircular groove four form a complete circular groove, and the inner walls of the semicircular groove three and the semicircular groove four are movably embedded with a plurality of semicircular structure rolling balls two.

[0013] As a preferred implementation, the left end and the right end of the rotating shaft are respectively radially recessed to form a positioning ring groove, the positioning ring groove on the left side of the rotating shaft is in rolling connection with the outer side end of the rolling balls two, and the outer wall of the left end of the rotating shaft is in rotating connection with the inner walls of the semicircular groove three and the semicircular groove four.

[0014] The positioning ring groove on the right side of the rotating shaft is in rolling connection with the outer side end of the rolling balls one, and the outer wall of the right end of the rotating shaft is in rotating connection with the inner walls of the semicircular groove one and the semicircular groove two.

[0015] As a preferred implementation, the detection assembly further includes an adjusting rod and a micrometer, the adjusting rod is movably installed on the left side of the adjusting block through a screw knob in the front-rear direction, and the front side of the adjusting rod is fixed with the micrometer.

[0016] After the above technical scheme is adopted, the beneficial effects of the present application are as follows: through the setting of the mounting seat one and the mounting seat two, the mounting seat one and the mounting seat two can be quickly disassembled and mounted, so that the rotating assembly can be quickly disassembled and mounted, and then the bearing which has been tested can be quickly removed and the bearing to be tested can be quickly installed, thereby greatly improving the bearing detection efficiency and achieving the purpose of efficiently detecting the coaxiality of the bearing.

[0017] The locking buckle is arranged, the rotating shaft can be quickly connected with the motor output shaft through the connecting disc, the locking buckle has the characteristics of quick disassembly and assembly due to the hinged structure and the fixed mode of the other end, and the rotating assembly can be quickly disassembled and assembled. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed in the embodiments or the prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.

[0019] Figure 1 It is a whole structure schematic view of the high-efficiency bearing coaxiality detection equipment.

[0020] Figure 2 It is a schematic view of the upper structure of the high-efficiency bearing coaxiality detection equipment.

[0021] Figure 3 It is a schematic view of the detection assembly structure of the high-efficiency bearing coaxiality detection equipment.

[0022] Figure 4 It is a schematic view of the rotating assembly structure of the high-efficiency bearing coaxiality detection equipment.

[0023] Figure 5 It is a schematic view of the locking buckle structure of the high-efficiency bearing coaxiality detection equipment.

[0024] In the figure, 100 is a base, 110 is a motor, 120 is a mounting seat one, 121 is a mounting plate one, 122 is a lower clamping seat one, 123 is an upper clamping seat one, 130 is a mounting seat two, 131 is a mounting box, 132 is an upper clamping seat two, 133 is a lower clamping seat two, and 134 is a mounting plate two.

[0025] 200 is a rotating assembly, 210 is a rotating shaft, 220 is a connecting disc, 230 is a locking buckle, 231 is a clamping shell one, and 232 is a clamping shell two.

[0026] 300 is a detection assembly, 310 is a bottom plate, 320 is a vertical rod, 330 is an adjusting block, 340 is an adjusting rod, and 350 is a micrometer. DETAILED DESCRIPTION

[0027] The technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present utility model.

[0028] Please refer to Figures 1 to 5 The utility model provides a kind of technical scheme: a kind of efficient bearing coaxality detection equipment, it include: base 100, rotating assembly 200 and detection component 300, rotating assembly 200 is rotatably installed on the upper end of base 100, detection component 300 is installed on the upper end rear side of base 100;

[0029] Mounting seat two 130 is installed on the left side of the upper end of base 100, mounting seat one 120 is installed on the right side of the upper end of base 100, motor 110 is installed on the right side of the upper end of base 100;

[0030] Rotating assembly 200 includes shaft 210, connecting round plate 220 and locking buckle 230, connecting round plate 220 is arranged on the right end of shaft 210, the left end shaft of the output shaft of motor 110 is connected with connecting round plate 220 and locking buckle 230 through connecting round plate 220 and locking buckle 230;

[0031] Detection component 300 includes bottom plate 310, vertical rod 320, adjusting block 330, vertical rod 320 is welded on the upper side of bottom plate 310, adjusting block 330 is movably installed on the upper side of vertical rod 320 by screw knob, the above-mentioned locking buckle 230 includes shell one 231 and shell two 232, shell one 231 is hinged with the lower end of shell two 232, the upper end of shell one 231 is locked with the upper end of shell two 232 by screw knob and nut, the setting of locking buckle 230 makes shaft 210 can be quickly connected and disassembled with motor 110.

[0032] As the first embodiment of the present utility model, the setting of locking buckle 230, in actual use, the left end of the output shaft of motor 110 is provided with the same structure as connecting round plate 220, and the structure of locking buckle 230 matches with that of connecting round plate 220, which can quickly connect shaft 210 with the output shaft of motor 110 through connecting round plate 220, and since the structure adopts the mode of hinged and fixed at the other end, it has the characteristics of quick disassembly and quick assembly, which provides support for quick disassembly and assembly of rotating assembly 200.

[0033] Please refer to Figures 1 to 4 Mounting seat one 120 includes mounting plate one 121, lower clamping seat one 122 and upper clamping seat one 123, lower clamping seat one 122 is clamped on the upper side of mounting plate one 121, and upper clamping seat one 123 is movably inserted on the upper side of lower clamping seat one 122.

[0034] The middle of the upper end of the lower clamping seat 122 is provided with a semicircular groove one, and the middle of the lower end of the upper clamping seat 123 is provided with a semicircular groove two, and the semicircular groove one and the semicircular groove two form a complete circular groove, and the inner walls of the semicircular groove one and the semicircular groove two are rotatably embedded with a plurality of semicircular structure ball one.

[0035] The mounting seat two 130 comprises a mounting box 131, a mounting plate two 134, a lower clamping seat two 133 and an upper clamping seat two 132, the lower end of the mounting box 131 is connected with the upper side of the mounting plate two 134, the middle of the bottom of the mounting box 131 is provided with the lower clamping seat two 133, and the upper side of the lower clamping seat two 133 is movably inserted with the upper clamping seat two 132.

[0036] The middle of the upper end of the lower clamping seat two 133 is provided with a semicircular groove three, and the middle of the lower end of the upper clamping seat two 132 is provided with a semicircular groove four, and the semicircular groove three and the semicircular groove four form a complete circular groove, and the inner walls of the semicircular groove three and the semicircular groove four are rotatably embedded with a plurality of semicircular structure ball two.

[0037] The left end and the right end of the rotating shaft 210 are respectively radially recessed to form a positioning ring groove, the positioning ring groove on the left side of the rotating shaft 210 is rotatably connected with the outer side end of the ball two, and the outer wall of the left end of the rotating shaft 210 is rotatably connected with the inner walls of the semicircular groove three and the semicircular groove four.

[0038] The positioning ring groove on the right side of the rotating shaft 210 is rotatably connected with the outer side end of the ball one, and the outer wall of the right end of the rotating shaft 210 is rotatably connected with the inner walls of the semicircular groove one and the semicircular groove two.

[0039] The detection assembly 300 further comprises an adjusting rod 340 and a micrometer 350, and the adjusting rod 340 is movably installed on the left side of the adjusting block 330 in the front-rear direction through a screw knob, and the front side of the adjusting rod 340 is fixedly provided with the micrometer 350.

[0040] As a second embodiment of the utility model, based on the above first embodiment, in actual use, since the outer wall of the left end of the rotating shaft 210 is rotatably connected with the inner walls of the semicircular groove three and the semicircular groove four, the outer wall of the right end of the rotating shaft 210 is rotatably connected with the inner walls of the semicircular groove one and the semicircular groove two, and the upper clamping seat one 123 is movably inserted on the upper side of the lower clamping seat one 122, and the upper clamping seat two 132 is movably inserted on the upper side of the lower clamping seat two 133 (see the accompanying drawings of the specification, Figure 2 and Figure 4), when the rotating shaft 210 needs to be disassembled, the upper clamping seat one 123 and the upper clamping seat two 132 are directly pulled up and taken off (the fixed upper clamping seat one 123 and the upper clamping seat two 132 can ensure the stability of the rotating shaft 210 during rotation according to their own weight, and the rotating shaft 210 will not rotate at too fast a speed), then the locking buckle 230 is loosened and disassembled, at this time the right end of the rotating shaft 210 is disconnected with the output shaft of the motor 110, and the rotating shaft 210 is directly taken off, the required bearing is sleeved, after the bearing is sleeved on the rotating shaft 210, the rotating shaft 210, the locking buckle, the upper clamping seat one 123 and the upper clamping seat two 132 are reset, then the motor 110 is started to drive the rotating shaft 210 to rotate, and the coaxiality of the rotating bearing is tested by the already adjusted dial gauge 350 on the detection assembly 300, the mounting seat one 120 and the mounting seat two 130 can be quickly disassembled and assembled, so that the rotating assembly 200 can be quickly disassembled and assembled, and then the bearing which has been tested can be quickly taken off and the bearing to be detected can be quickly assembled, the bearing detection efficiency is greatly improved, and the purpose of efficiently detecting the coaxiality of the bearing is achieved.

[0041] The above only describes the preferred embodiments of the present application, and is not used to limit the present application, and any modification, equivalent replacement, improvement, etc. within the spirit and principle of the present application should be included in the protection scope of the present application.

Claims

1. A high efficiency bearing coaxiality inspection apparatus, comprising: Base (100), rotating assembly (200) and detection assembly (300), characterized in that the upper end of the base (100) is rotatably installed with the rotating assembly (200), and the rear side of the upper end of the base (100) is installed with the detection assembly (300); The left side of the upper end of the base (100) is installed with a mounting seat two (130), the right side of the upper end of the base (100) is installed with a mounting seat one (120), and the right side of the upper end of the base (100) is installed with a motor (110); The rotating assembly (200) comprises a rotating shaft (210), a connecting circular plate (220) and a locking buckle (230), the right end of the rotating shaft (210) is provided with the connecting circular plate (220), and the right end of the rotating shaft (210) is connected with the left end shaft of the motor (110) output shaft through the connecting circular plate (220) and the locking buckle (230); The detection assembly (300) comprises a bottom plate (310), a vertical rod (320) and an adjusting block (330), the upper side of the bottom plate (310) is welded with the vertical rod (320), and the upper side of the vertical rod (320) is movably installed with the adjusting block (330) through a screw knob.

2. A high efficiency bearing concentricity detection apparatus as described in claim 1, wherein: The mounting seat one (120) comprises a mounting plate one (121), a lower clamping seat one (122) and an upper clamping seat one (123), the upper side of the mounting plate one (121) is clamped with the lower clamping seat one (122), and the upper side of the lower clamping seat one (122) is movably inserted with the upper clamping seat one (123).

3. A high efficiency bearing concentricity detection apparatus as described in claim 2 wherein: The upper end of the lower clamping seat one (122) is provided with a semicircular groove one in the middle, the lower end of the upper clamping seat one (123) is provided with a semicircular groove two in the middle, the semicircular groove one and the semicircular groove two form a complete circular groove, and a plurality of semicircular structure ball one are rotatably embedded in the inner walls of the semicircular groove one and the semicircular groove two.

4. A high efficiency bearing concentricity detection apparatus as described in claim 3 wherein: The mounting seat two (130) comprises a mounting box (131), a mounting plate two (134), a lower clamping seat two (133) and an upper clamping seat two (132), the lower end of the mounting box (131) is connected with the upper side of the mounting plate two (134), the bottom of the mounting box (131) is provided with the lower clamping seat two (133) in the middle, and the upper side of the lower clamping seat two (133) is movably inserted with the upper clamping seat two (132).

5. A high efficiency bearing concentricity detection apparatus as claimed in claim 4, wherein: The upper end of the lower clamping seat two (133) is provided with a semicircular groove three in the middle, the lower end of the upper clamping seat two (132) is provided with a semicircular groove four in the middle, the semicircular groove three and the semicircular groove four form a complete circular groove, and a plurality of semicircular structure ball two are rotatably embedded in the inner walls of the semicircular groove three and the semicircular groove four.

6. A high efficiency bearing concentricity detection apparatus as claimed in claim 5, wherein: The left end and the right end of the rotating shaft (210) are respectively radially recessed to form a positioning ring groove, the positioning ring groove on the left side of the rotating shaft (210) is in rolling connection with the outer side end of the ball two, and the outer wall of the left end of the rotating shaft (210) is in rotating connection with the inner walls of the semicircular groove three and the semicircular groove four; The positioning ring groove on the right side of the rotating shaft (210) is in rolling connection with the outer side end of the ball one, and the outer wall of the right end of the rotating shaft (210) is in rotating connection with the inner walls of the semicircular groove one and the semicircular groove two.

7. A high efficiency bearing concentricity inspection apparatus as described in claim 1 wherein: The detection assembly (300) further comprises an adjusting rod (340) and a micrometer (350), the adjusting rod (340) is movably installed on the left side of the adjusting block (330) through a screw knob in the front-back direction, and the front side of the adjusting rod (340) is fixed with the micrometer (350).