Conveying device for motor detection

Through the continuous detection mechanism and the magnetic support mobile detection frame, combined with visual and auditory detection, the problem of frequent start and stop of traditional motor detection devices is solved, and efficient and continuous motor detection and classified discharge are achieved.

CN120397607APending Publication Date: 2025-08-01DONGGUAN SENGONG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202510576780.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-06
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

Traditional motor detection devices require frequent start and stop of conveyor belts, resulting in a long detection cycle, shortened service life, and it is difficult to achieve high-precision classification and unloading.

Method used

The continuous detection mechanism and a magnetic support mobile detection frame are used, combined with visual detection and auditory detection, and the automatic classification and unloading of the motor is achieved through magnetic sliders and electromagnetic blocks.

Benefits of technology

It realizes the continuity of motor detection, shortens the detection cycle, improves service life, and can efficiently classify and separate qualified and unqualified motors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of motor detection and conveying, in particular to a conveying device for motor detection, which comprises a first conveying frame, a first conveying belt is arranged on the first conveying frame, and a continuous detection mechanism is arranged on the first conveying frame; the two motor bodies are conveyed to the detection station by controlling the first conveying belt, and meanwhile, the second conveying belt is controlled to operate through the second conveying frame, so that the second conveying belt drives one detection frame to move to the detection station through the supporting assembly to perform visual detection work on the two motor bodies, and in the detection process, the detection efficiency is greatly improved. The first conveying belt continues to convey the motor bodies, and when the first conveying belt conveys two subsequent motor bodies to the detection station, the second conveying belt moves the other detection frame to the detection station to carry out continuous detection work, so that frequent start and stop of the conveying device due to the influence of the detection work are avoided, and the detection efficiency is improved. Therefore, the service life of the conveying device is prolonged while the detection period is shortened.
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Description

Technical Field

[0001] The present invention relates to the technical field of motor detection and conveying, and specifically relates to a conveying device for motor detection. Background Art

[0002] The performance and quality of motors are directly related to the reliability, energy efficiency, and safety of end products. Therefore, during the production process, strict inspections of various parameters are required. Among them, during the inspection of the motor appearance and the vibration amplitude generated during motor operation, the traditional manual inspection method has low efficiency, poor accuracy, and is easily affected by subjective factors, and it has been difficult to meet the requirements of modern industry for high-efficiency and high-precision inspections.

[0003] Chinese Patent with Publication No. CN218808919U discloses a conveying device for motor detection, including an L-shaped bracket and a detection table. The L-shaped bracket is fixed to the side of the motor detection device by screws. A cylinder is fixed on the L-shaped bracket. A fixed frame extending along the length direction of the motor detection device is connected to the piston rod of the cylinder. Above the fixed frame, there are two linear guide rails and a second cylinder extending along the length direction of the fixed frame. A slider is slidably connected to each linear guide rail. A first connecting plate is fixed between the two sliders. A first motor is fixed below the first connecting plate. The output shaft of the first motor passes through the first connecting plate and is connected to a second connecting plate. The second connecting plate is arranged parallel to the first connecting plate, and a part of the second connecting plate extends out of the side of the first connecting plate. A detection table is fixed on the part of the second connecting plate that extends out of the first connecting plate. The piston rod of the second cylinder is fixedly connected to the side of the first connecting plate.

[0004] The above patent can improve work efficiency.

[0005] However, the above patent has the following deficiencies: The traditional device mostly uses fixed-station detection, and the conveyor belt needs to be frequently started and stopped, resulting in a long detection cycle. Moreover, due to the frequent start and stop, the service life of the conveying equipment is shortened. During the detection process of the motor, the vibration amplitude is small and difficult to distinguish. The sorting mechanism relies on mechanical baffles or manual intervention, making it difficult to achieve high-precision classification, and it is easy to cause the mixing of qualified products and defective products, which is not convenient for the feeding of qualified and unqualified motors.

[0006] Therefore, the present invention provides a conveying device for motor detection that can continuously detect motors, has obvious detection distinction, and is convenient for feeding motors. Summary of the Invention

[0007] A conveying device for motor detection is designed to solve the problems in the prior art that the conveyor belt needs to be frequently started and stopped, the detection distinction is not obvious, and it is not convenient to feed motors.

[0008] The technical solution adopted by the present invention to solve its technical problems is as follows: A conveying device for motor detection includes a first conveying frame, on which a first conveyor belt is provided. A continuous detection mechanism is provided on the first conveying frame. The connection detection mechanism includes a second conveying frame provided on the first conveying frame, on which a second conveyor belt is provided. Two support components are provided on the second conveyor belt, and a detection frame is provided on each support component;

[0009] Multiple groups of fixing mechanisms are provided on the first conveyor belt. Each group of fixing mechanisms includes two sliding shells fixedly installed on the first conveyor belt. Two electromagnetic blocks are fixedly installed on each sliding shell. Two magnetic sliders are slidably installed inside each sliding shell. An auditory detection component is provided on each magnetic slider. A placing table is jointly provided on every two groups of auditory detection components. Two groups of positioning components are provided on each placing table. A base is jointly provided on every two groups of positioning components. A motor body is fixedly installed between every two bases. Multiple electromagnets adapted to the motor body are provided on the first conveyor belt. A fixing component is provided on each sliding shell;

[0010] Two groups of blanking mechanisms are symmetrically provided at the output end of the first conveying frame. Each group of blanking mechanisms includes a movable component provided on the first conveying frame. A guiding component is provided on the movable component. A movable block is provided on the movable component. A clamping frame adapted to the motor body is fixedly installed on the movable block. A sorting and blanking component is provided at the output end of the first conveying frame.

[0011] Further, the support component includes a fixed block fixedly installed on the second conveyor belt. A load-bearing rod is fixedly installed on the fixed block. A top block fixed to the detection frame is rotatably installed on the load-bearing rod.

[0012] Further, two magnetic strips are fixedly installed on each detection frame.

[0013] Further, multiple pairs of magnetic plates adapted to the magnetic strips are fixedly installed on the first conveyor belt.

[0014] Further, each group of auditory detection components includes a first spring connected to the magnetic slider, and the ends of every two first springs are jointly connected to the placing table. A bell is fixedly installed on each first spring.

[0015] Further, each set of the positioning components includes two column blocks fixedly communicated with the placing table. Two cavity shells are symmetrically and fixedly communicated with each column block. A third spring is connected to the inner wall of each cavity shell. The end of the third spring is connected to a piston block slidably connected to the cavity shell. The placing table, the two column blocks and the inner sides of the multiple cavity shells are jointly filled with hydraulic oil. The inner side of the bottom wall of the placing table is connected with a second spring. The end of the second spring is connected to a pressing block slidably arranged vertically with respect to the placing table.

[0016] Further, each fixing component includes a fixed shell fixedly installed on the sliding shell. A fourth spring is connected to the inner wall of the fixed shell. The end of the fourth spring is connected to a clamping block. A clamping groove adapted to the clamping block is formed on each placing table.

[0017] Further, a guiding frame is fixedly installed at the bottom end of the first conveying frame.

[0018] Further, the movable component includes a bolt block fixedly installed on the first conveying frame. A rotating block is rotatably installed on the bolt block. A torsion spring is jointly connected between the first conveying frame and the rotating block. A movable sleeve is fixedly installed on the rotating block. A fifth spring is connected to the inner wall of the movable sleeve. The end of the fifth spring is connected to a telescopic rod slidably connected to the movable sleeve. The end of the telescopic rod is fixedly installed with a supporting rod rotatably connected to the movable block. The guiding component includes a guide rail frame fixedly installed on the first conveying frame. The end of the telescopic rod is fixedly installed with a side block movably connected to the guide rail frame.

[0019] Further, the sorting and blanking component includes a first external conveyor and a second external conveyor arranged at the output end of the first conveying frame. A plurality of rubber pads are fixedly installed on both the first external conveyor and the second external conveyor. Touching frames are fixedly installed on both the first external conveyor and the second external conveyor. A touching rod adapted to the touching frame is fixedly installed on each movable block.

[0020] The beneficial effects of the present invention:

[0021] (1) A conveying device for motor detection according to the present invention transports two motor bodies to the detection station by controlling the first conveyor belt. At the same time, the second conveyor belt is controlled to operate by the second conveying frame, so that the second conveyor belt drives a detection frame to move to the detection station through the support assembly to perform visual detection on the two motor bodies. During the detection process, the first conveyor belt continues to transport the motor bodies. When the first conveyor belt transports the subsequent two motor bodies to the detection station, the magnetic plate attracts the magnetic strip by magnetic force, so that the magnetic strip supports the stable movement of the detection frame. At this time, the second conveyor belt moves another detection frame to the detection station to perform continuous detection work, thereby avoiding frequent start-stop of the conveying device affected by the detection work, shortening the detection cycle and improving the service life of the conveying device.

[0022] (2) A conveying device for motor detection according to the present invention moves the hole position of the base to the column block by moving the motor body, and powers on the motor body by controlling the electromagnet. Under the magnetic attraction of the electromagnet on the motor body, the motor body drives the base to squeeze the pressing block downward. The pressing block can buffer the motor body through the base under the support of the elastic force of the second spring, so that the base contacts the placement table. The pressing block squeezes the oil liquid, and the oil liquid squeezes the piston block out of the inner side of the cavity shell through the cavity shell, so that the piston block can fix the motor body through the base, thus facilitating the fixing work of the motor body during transportation.

[0023] (3) A conveying device for motor detection according to the present invention powers on the motor body by controlling the electromagnet during the transportation of the motor body by the first conveyor belt, so that the motor body operates and the output end of the motor body rotates. When the motor body operates, vibrations will be generated. Through the supporting movement of the first spring, the vibrations generated by the motor body can be amplified. The vibrations can touch the bell through the first spring to make a sound, thereby facilitating the vibration detection work of the motor body.

[0024] (4) A conveying device for motor detection according to the present invention, when the detection frame detects the motor body by visual detection, when the motor body is detected to be qualified, the electromagnet at one end of the sliding shell is powered on, so that the electromagnet at one end of the slider generates magnetic force to attract the magnetic slider by magnetic force, and the magnetic slider drives the motor body to move to one end of the sliding shell. When the motor body is detected to be unqualified, the electromagnet at the other end of the sliding shell is powered on, and the magnetic slider drives the motor body to move to the other end of the slider, so as to effectively classify the qualified and unqualified motor bodies.

[0025] (5) For the conveying device for motor detection according to the present invention, when the motor body moves to be clamped with the clamping frame, the clamping frame drives the side block to move along the guide rail frame through the movable block, the support rod and the telescopic rod. Under the guidance of the guide rail frame, the side block drives the telescopic rod to extend along the inner side of the movable sleeve under the elastic support of the fifth spring, so that the telescopic rod drives the motor body to move upward through the support rod, the movable block and the clamping frame, causing the motor body to drive the base to squeeze the piston block, separating the base from the column block. The movable sleeve drives the rotating block to rotate around the bolt block under the elastic support of the torsion spring. When the movable block drives the touch rod to abut against the touch frame, the touch rod drives the clamping frame to tilt through the movable block, causing the motor body to be separated from the clamping frame under the influence of its own gravity. The qualified motor body drives the base to fall on the rubber cushion on the first external conveyor, and the unqualified motor body drives the base to fall on the rubber cushion on the second external conveyor, thus facilitating the separation and blanking work of the motor body, and there is no need to start and stop the conveying device during the blanking process. Description of the Drawings

[0026] The present invention will be further described below with reference to the drawings and embodiments.

[0027] Figure 1 It is a first - perspective three - dimensional structure schematic diagram of the conveying device for motor detection according to the present invention;

[0028] Figure 2 It is a second - perspective three - dimensional structure schematic diagram of the conveying device for motor detection according to the present invention;

[0029] Figure 3 It is an exploded structure schematic diagram of the second conveyor of the conveying device for motor detection according to the present invention;

[0030] Figure 4 It is a three - dimensional structure schematic diagram of the sliding shell of the conveying device for motor detection according to the present invention;

[0031] Figure 5 It is an exploded structure schematic diagram of the placement table of the conveying device for motor detection according to the present invention;

[0032] Figure 6 It is an exploded structure schematic diagram of the fixed shell of the conveying device for motor detection according to the present invention;

[0033] Figure 7 It is a planar structure schematic diagram of the placement table of the conveying device for motor detection according to the present invention;

[0034] Figure 8 It is a three - dimensional structure schematic diagram of the guiding frame of the conveying device for motor detection according to the present invention;

[0035] Figure 9Schematic three-dimensional structure diagram of the guide rail frame of a conveying device for motor detection according to the present invention;

[0036] Figure 10 Exploded structure diagram of the clamping frame of a conveying device for motor detection according to the present invention;

[0037] Figure 11 Schematic three-dimensional structure diagram of the trigger rod of a conveying device for motor detection according to the present invention.

[0038] In the figure: 1, the first conveying frame; 2, the first conveyor belt; 3, the second conveying frame; 4, the second conveyor belt; 5, the fixed block; 6, the load-bearing rod; 7, the top block; 8, the detection frame; 9, the magnetic strip; 10, the magnetic plate; 11, the sliding shell; 12, the electromagnetic block; 13, the magnetic slider; 14, the first spring; 15, the placement table; 16, the column block; 161, the oil liquid; 162, the second spring; 163, the pressing block; 164, the cavity shell; 17, the third spring; 18, the piston block; 19, the bell; 20, the fixed shell; 21, the fourth spring; 22, the clamping block; 23, the card slot; 24, the base; 25, the motor body; 26, the electromagnetizer; 27, the guiding frame; 28, the bolt block; 29, the rotating block; 30, the torsion spring; 31, the movable sleeve; 32, the fifth spring; 33, the telescopic rod; 34, the support rod; 35, the movable block; 36, the clamping frame; 37, the guide rail frame; 38, the edge block; 39, the trigger rod; 40, the first external conveyor; 41, the second external conveyor; 42, the rubber cushion plate; 43, the trigger frame. Detailed implementation manners

[0039] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.

[0040] As Figures 1-11 shown, a conveying device for motor detection according to the present invention includes a first conveying frame 1, a first conveyor belt 2 is arranged on the first conveying frame 1, a continuous detection mechanism is arranged on the first conveying frame 1, the connection detection mechanism includes a second conveying frame 3 arranged on the first conveying frame 1, a second conveyor belt 4 is arranged on the second conveying frame 3, two support components are arranged on the second conveyor belt 4, a detection frame 8 is arranged on each support component, the support component includes a fixed block 5 fixedly installed on the second conveyor belt 4, a load-bearing rod 6 is fixedly installed on the fixed block 5, a top block 7 fixedly connected to the detection frame 8 is rotatably installed on the load-bearing rod 6, two magnetic strips 9 are fixedly installed on each detection frame 8, and multiple pairs of magnetic plates 10 adapted to the magnetic strips 9 are fixedly installed on the first conveyor belt 2.

[0041] Specifically, the staff controls the external conveying device to convey the motor body 25 onto the first conveyor belt 2, and conveys two motor bodies 25 to the detection station by controlling the first conveyor belt 2. At the same time, the second conveyor belt 4 is controlled to operate through the second conveying frame 3, so that the second conveyor belt 4 drives a detection frame 8 to move to the detection station through the fixing block 5, the load-bearing rod 6 and the top block 7 to perform visual inspection work on the two motor bodies 25. During the movement of the detection frame 8, the top block 7 is driven to rotate around the load-bearing rod 6 by its own gravity. During the detection process, the first conveyor belt 2 continues to convey the motor body 25. When the first conveyor belt 2 conveys the subsequent two motor bodies 25 to the detection station, the magnetic plate 10 attracts the magnetic strip 9 by magnetic force, so that the magnetic strip 9 supports the stable movement of the detection frame 8. At this time, the second conveyor belt 4 moves another detection frame 8 to the detection station to perform continuous detection work, thereby avoiding frequent start and stop of the conveying device affected by the detection work, shortening the detection cycle and improving the service life of the conveying device at the same time.

[0042] In this embodiment, multiple groups of fixing mechanisms are arranged on the first conveyor belt 2. Each group of fixing mechanisms includes two sliding shells 11 fixedly installed on the first conveyor belt 2. Two electromagnetic blocks 12 are fixedly installed on each sliding shell 11. Two magnetic sliders 13 are slidably installed on the inner side of each sliding shell 11. An auditory detection component is arranged on each magnetic slider 13. A placing table 15 is jointly arranged on every two groups of auditory detection components. Two groups of positioning components are arranged on each placing table 15. A base 24 is jointly arranged on every two groups of positioning components. A motor body 25 is fixedly installed between every two bases 24. Multiple electromagnetic energizers 26 adapted to the motor body 25 are arranged on the first conveyor belt 2. A fixing component is arranged on each sliding shell 11. Each group of auditory detection components includes a first spring 14 connected to the magnetic slider 13, and the ends of every two first springs 14 are jointly connected to the placing table 15. A bell 19 is fixedly installed on each first spring 14. Each group of positioning components includes two column blocks 16 fixedly communicated with the placing table 15. Two cavity shells 164 are symmetrically and fixedly communicated with each column block 16. A third spring 17 is connected to the inner wall of each cavity shell 164. The end of the third spring 17 is connected to a piston block 18 slidably connected to the cavity shell 164. The placing table 15, the two column blocks 16 and the inner sides of multiple cavity shells 164 are jointly filled with hydraulic oil 161. A second spring 162 is connected to the inner side of the bottom wall of the placing table 15. The end of the second spring 162 is connected to a pressing block 163 slidably arranged vertically with the placing table 15. Each fixing component includes a fixing shell 20 fixedly installed on the sliding shell 11. A fourth spring 21 is connected to the inner wall of the fixing shell 20. The end of the fourth spring 21 is connected to a clamping block 22. A card slot 23 adapted to the clamping block 22 is formed on each placing table 15. A guiding frame 27 is fixedly installed at the bottom end of the first conveying frame 1.

[0043] Specifically, during the process of moving the motor body 25 to the first conveyor belt 2, by moving the motor body 25, the hole position of the base 24 is moved onto the column block 16. By controlling the energized electromagnet 26 to energize the motor body 25, under the magnetic attraction of the energized electromagnet 26 on the motor body 25, the motor body 25 drives the base 24 to squeeze the pressing block 163 downward. The pressing block 163 can buffer the motor body 25 through the base 24 under the support of the elastic force of the second spring 162, so that the base 24 contacts the placement table 15. The pressing block 163 squeezes the hydraulic oil 161, so that the hydraulic oil 161 squeezes the piston block 18 out of the inner side of the cavity shell 164 through the cavity shell 164, so that the piston block 18 can fix the motor body 25 through the base 24. Thus, during the conveying process, it is convenient to fix the motor body 25;

[0044] When the motor body 25 and the base 24 are unloaded, the motor body 25 drives the base 24 to move upward, so that the base 24 no longer presses the pressing block 163 downward. The second spring 162 uses its own elastic force to drive the pressing block 163 to move back to its original position, so that the hydraulic oil 161 no longer squeezes the piston block 18. The third spring 17 uses its own elastic force to drive the piston block 18 to move into the cavity shell 164, thus facilitating the unloading of the motor body 25 and the base 24;

[0045] During the process of the first conveyor belt 2 conveying the motor body 25, by controlling the energized electromagnet 26 to energize the motor body 25, the motor body 25 operates, and the output end of the motor body 25 rotates. When the motor body 25 operates, it will generate vibration. Through the supporting movement of the first spring 14, the vibration generated by the motor body 25 can be amplified. The vibration can trigger the bell 19 to make a sound through the first spring 14, thus facilitating the vibration detection of the motor body 25;

[0046] When the detection frame 8 detects the motor body 25 through visual detection, when it is detected that the motor body 25 is qualified, by energizing the electromagnet 12 at one end of the sliding shell 11, the electromagnet 12 at one end of the slider generates a magnetic force to magnetically attract the magnetic slider 13, so that the magnetic slider 13 drives the motor body 25 to move to one end of the sliding shell 11. When it is detected that the motor body 25 is unqualified, by energizing the electromagnet 12 at the other end of the sliding shell 11, the magnetic slider 13 drives the motor body 25 to move to the other end of the slider, so that the qualified and unqualified motor bodies 25 can be effectively classified; Under the guidance of the guiding frame 27, the placement table 15 drives the magnetic slider 13 to move along the inner side of the sliding shell 11 through the first spring 14, and the clamping block 22 is clamped with the card slot 23 under the elastic support of the fourth spring 21, so that the placement table 15 can be reset and fixed.

[0047] In this embodiment, two sets of blanking mechanisms are symmetrically arranged at the output end of the first conveyor rack 1. Each blanking mechanism includes a movable component arranged on the first conveyor rack 1. A guiding component is arranged on the movable component. A movable block 35 is arranged on the movable component. A clamping rack 36 adapted to the motor body 25 is fixedly installed on the movable block 35. A sorting and blanking component is arranged at the output end of the first conveyor rack 1. The movable component includes a bolt block 28 fixedly installed on the first conveyor rack 1. A rotating block 29 is rotatably installed on the bolt block 28. A torsion spring 30 is commonly connected between the first conveyor rack 1 and the rotating block 29. A movable sleeve 31 is fixedly installed on the rotating block 29. A fifth spring 32 is connected to the inner wall of the movable sleeve 31. The end of the fifth spring 32 is connected to a telescopic rod 33 slidably connected to the movable sleeve 31. The end of the telescopic rod 33 is fixedly installed with a support rod 34 rotatably connected to the movable block 35. The guiding component includes a guide rail rack 37 fixedly installed on the first conveyor rack 1. The end of the telescopic rod 33 is fixedly installed with a side block 38 movably connected to the guide rail rack 37. The sorting and blanking component includes a first external conveyor 40 and a second external conveyor 41 arranged at the output end of the first conveyor rack 1. A plurality of rubber cushion plates 42 are fixedly installed on both the first external conveyor 40 and the second external conveyor 41. A touch frame 43 is fixedly installed on both the first external conveyor 40 and the second external conveyor 41. A touch rod 39 adapted to the touch frame 43 is fixedly installed on each movable block 35.

[0048] Specifically, when the motor body 25 moves to be clamped with the clamping rack 36, the clamping rack 36 drives the side block 38 to move along the guide rail rack 37 through the movable block 35, the support rod 34 and the telescopic rod 33. Under the guidance of the guide rail rack 37, the side block 38 drives the telescopic rod 33 to extend along the inner side of the movable sleeve 31 under the elastic support of the fifth spring 32, so that the telescopic rod 33 drives the motor body 25 to move upward through the support rod 34, the movable block 35 and the clamping rack 36, so that the motor body 25 drives the base 24 to press the piston block 18, so that the base 24 is separated from the column block 16. The movable sleeve 31 drives the rotating block 29 to rotate around the bolt block 28 under the elastic support of the torsion spring 30. When the movable block 35 drives the touch rod 39 to abut against the touch frame 43, the touch rod 39 drives the clamping rack 36 to tilt through the movable block 35, so that the motor body 25 is separated from the clamping rack 36 under the influence of its own gravity. The qualified motor body 25 drives the base 24 to fall on the rubber cushion plate 42 on the first external conveyor 40, and the unqualified motor body 25 drives the base 24 to fall on the rubber cushion plate 42 on the second external conveyor 41, thereby facilitating the separation and blanking work of the motor body 25, and there is no need to start and stop the conveying device during the blanking process;

[0049] After the blanking of the motor body 25 is completed, the torsion spring 30 can drive the movable sleeve 31 to rotate around the bolt block 28 by using its own elastic force through the rotating block 29, so that the movable sleeve 31 drives the clamping frame 36 to move backward through the telescopic rod 33, the support rod 34 and the movable block 35. During the backward movement, the fifth spring 32 can drive the telescopic rod 33 to move backward by using its own elastic force.

[0050] Working principle: The staff controls the external conveying device to convey the motor body 25 onto the first conveyor belt 2. By moving the motor body 25, the hole position of the base 24 is moved onto the column block 16. The electromagnetic energizer 26 is controlled to energize the motor body 25. Under the magnetic attraction of the electromagnetic energizer 26 on the motor body 25, the motor body 25 drives the base 24 to squeeze the pressing block 163 downward. The pressing block 163 can buffer the motor body 25 through the base 24 under the support of the elastic force of the second spring 162, so that the base 24 contacts the placing table 15. The pressing block 163 squeezes the hydraulic oil 161, causing the hydraulic oil 161 to squeeze the piston block 18 out of the inner side of the cavity shell 164 through the cavity shell 164, enabling the piston block 18 to fix the motor body 25 through the base 24. The first conveyor belt 2 is controlled to convey two motor bodies 25 to the detection station. At the same time, the second conveyor belt 4 is controlled to operate through the second conveying frame 3, so that the second conveyor belt 4 drives a detection frame 8 to move to the detection station through the fixing block 5, the load-bearing rod 6, and the top block 7 to perform visual detection on the two motor bodies 25. During the movement of the detection frame 8, the top block 7 is driven to rotate around the load-bearing rod 6 by its own gravity. During the detection process, the first conveyor belt 2 continues to convey the motor body 25. When the first conveyor belt 2 conveys the subsequent two motor bodies 25 to the detection station, at this time, the second conveyor belt 4 moves another detection frame 8 to the detection station to perform continuous detection work. During the conveying process of the first conveyor belt 2 for the motor body 25, the electromagnetic energizer 26 is controlled to energize the motor body 25 to make the motor body 25 operate, causing the output end of the motor body 25 to rotate. When the motor body 25 operates, it will generate vibration. Through the supporting activity of the first spring 14, the vibration generated by the motor body 25 can be amplified. The vibration can trigger the bell 19 to make a sound through the first spring 14. When the detection frame 8 detects the motor body 25 through visual detection, when the motor body 25 is detected to be qualified, the electromagnetic block 12 at one end of the sliding shell 11 is energized, causing the electromagnetic block 12 at one end of the slider to generate magnetic force to magnetically attract the magnetic slider 13, so that the magnetic slider 13 drives the motor body 25 to move to one end of the sliding shell 11. When the motor body 25 is detected to be unqualified, the electromagnetic block 12 at the other end of the sliding shell 11 is energized, causing the magnetic slider 13 to drive the motor body 25 to move to the other end of the slider, classifying the qualified and unqualified motor bodies 25. When the motor body 25 moves to be clamped with the clamping frame 36, the clamping frame 36 drives the side block 38 to move along the guide rail frame 37 through the movable block 35, the support rod 34, and the telescopic rod 33. Under the guidance of the guide rail frame 37, the side block 38 drives the telescopic rod 33 to extend along the inner side of the movable sleeve 31 under the elastic support of the fifth spring 32, enabling the telescopic rod 33 to drive the motor body 25 to move upward through the support rod 34, the movable block 35, and the clamping frame 36, so that the motor body 25 drives the base 24 to squeeze the piston block 18.Separate the base 24 from the column block 16. The movable sleeve 31 drives the rotating block 29 to rotate around the bolt block 28 under the elastic support of the torsion spring 30. When the movable block 35 drives the touch rod 39 to abut against the touch frame 43, the touch rod 39 drives the clamping frame 36 to tilt through the movable block 35, causing the motor body 25 to separate from the clamping frame 36 under the influence of its own gravity. The qualified motor body 25 drives the base 24 to fall on the rubber cushion plate 42 on the first external conveyor 40, and the unqualified motor body 25 drives the base 24 to fall on the rubber cushion plate 42 on the second external conveyor 41, performing the separation and blanking work on the motor body 25.,

[0051] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of protection required by the present invention. The scope of protection required by the present invention is defined by the appended claims and their equivalents.

Claims

1. A conveying device for motor detection, comprising a first conveying frame (1), and a first conveyor belt (2) is arranged on the first conveying frame (1), characterized in that: A continuous detection mechanism is provided on the first conveyor frame (1). The connection detection mechanism includes a second conveyor frame (3) provided on the first conveyor frame (1). A second conveyor belt (4) is provided on the second conveyor frame (3). Two support assemblies are provided on the second conveyor belt (4). A detection frame (8) is provided on each support assembly. Multiple sets of fixing mechanisms are provided on the first conveyor belt (2). Each set of fixing mechanisms includes two sliding shells (11) fixedly installed on the first conveyor belt (2). Two electromagnetic blocks (12) are fixedly installed on each sliding shell (11). Two magnetic sliders (13) are slidably installed inside each sliding shell (11). An auditory detection component is provided on each magnetic slider (13). A placement table (15) is jointly provided on every two sets of auditory detection components. Two sets of positioning components are provided on each placement table (15). A base (24) is jointly provided on every two sets of positioning components. A motor body (25) is fixedly installed between every two bases (24). Multiple electromagnets (26) adapted to the motor body (25) are provided on the first conveyor belt (2). A fixing component is provided on each sliding shell (11). Two sets of blanking mechanisms are symmetrically provided at the output end of the first conveyor frame (1). Each set of blanking mechanisms includes a movable component provided on the first conveyor frame (1). A guiding component is provided on the movable component. A movable block (35) is provided on the movable component. A clamping frame (36) adapted to the motor body (25) is fixedly installed on the movable block (35). A sorting and blanking component is provided at the output end of the first conveyor frame (1).

2. The conveying device for motor detection according to claim 1, characterized in that: The support assembly includes a fixing block (5) fixedly installed on the second conveyor belt (4). A load-bearing rod (6) is fixedly installed on the fixing block (5). A top block (7) fixed to the detection frame (8) is rotatably installed on the load-bearing rod (6).

3. The conveying device for motor detection according to claim 2, characterized in that: Two magnetic strips (9) are fixedly installed on each detection frame (8).

4. The conveying device for motor detection according to claim 3, characterized in that: Multiple pairs of magnetic plates (10) adapted to the magnetic strips (9) are fixedly installed on the first conveyor belt (2).

5. A conveying device for motor detection according to claim 1, characterized in that: Each set of auditory detection components includes a first spring (14) connected to the magnetic slider (13). The ends of every two first springs (14) are jointly connected to the placement table (15). A bell (19) is fixedly installed on each first spring (14).

6. A conveying device for motor detection according to claim 1, characterized in that: Each of the positioning components includes two column blocks (16) fixedly communicated with the placing table (15). Two cavity shells (164) are symmetrically and fixedly communicated with each column block (16). A third spring (17) is connected to the inner wall of each cavity shell (164). The end of the third spring (17) is connected to a piston block (18) slidably connected to the cavity shell (164). The placing table (15), the two column blocks (16) and the inner sides of the multiple cavity shells (164) are jointly filled with hydraulic fluid (161). A second spring (162) is connected to the inner side of the bottom wall of the placing table (15). The end of the second spring (162) is connected to a pressing block (163) slidably connected to the placing table (15) vertically.

7. A conveying device for motor detection according to claim 6, characterized in that: Each of the fixing components includes a fixing shell (20) fixedly installed on the sliding shell (11). A fourth spring (21) is connected to the inner wall of the fixing shell (20). The end of the fourth spring (21) is connected to a clamping block (22). A clamping groove (23) adapted to the clamping block (22) is formed in each placing table (15).

8. A conveying device for motor detection according to claim 1, characterized in that: A guiding frame (27) is fixedly installed at the bottom end of the first conveying frame (1).

9. The conveying device for motor detection according to claim 1, characterized in that: The movable component includes a bolt block (28) fixedly installed on the first conveying frame (1). A rotating block (29) is rotatably installed on the bolt block (28). A torsion spring (30) is jointly connected between the first conveying frame (1) and the rotating block (29). A movable sleeve (31) is fixedly installed on the rotating block (29). A fifth spring (32) is connected to the inner wall of the movable sleeve (31). The end of the fifth spring (32) is connected to a telescopic rod (33) slidably connected to the movable sleeve (31). The end of the telescopic rod (33) is fixedly installed with a support rod (34) rotatably connected to the movable block (35). The guiding component includes a guide rail frame (37) fixedly installed on the first conveying frame (1). The end of the telescopic rod (33) is fixedly installed with a side block (38) movably connected to the guide rail frame (37).

10. A conveying device for motor detection according to claim 9, characterized in that: The sorting and blanking component includes a first external conveyor (40) and a second external conveyor (41) arranged at the output end of the first conveying frame (1). A plurality of rubber cushion plates (42) are fixedly installed on each of the first external conveyor (40) and the second external conveyor (41). A touch frame (43) is fixedly installed on each of the first external conveyor (40) and the second external conveyor (41). A touch rod (39) adapted to the touch frame (43) is fixedly installed on each movable block (35).

Citation Information

Patent Citations

  • A conveying device for motor testing

    CN218808919U