Device for detecting wear resistance and tensile strength of chinlon yarn

Through the integrated design of the nylon yarn detection device, the wear resistance and tensile resistance of the nylon yarn are realized, which solves the problem of low detection efficiency in the prior art, improves the detection efficiency and simplifies the operation process.

CN120577152AActive Publication Date: 2025-09-02YIBIN HECHENG TEXTILE TECH CO LTD +1

Patent Information

Application Number
CN202511094225.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-06
Publication Date
2025-09-02
Estimated Expiration
2045-08-06

AI Technical Summary

Technical Problem

The existing nylon yarn detection devices require the use of wear resistance detection devices and tensile detection devices respectively, resulting in low detection efficiency.

Method used

An integrated wear and tensile detection device for nylon yarn is designed, using drive components, stretching components, clamping components and reciprocating components. Through clamping fixing, stretching and wear detection, the wear resistance and tensile resistance of nylon yarn is achieved.

Benefits of technology

The wear resistance and tensile resistance of nylon yarn are achieved, the detection efficiency is improved, the operation process is simplified, and the performance indicators of nylon yarn can be easily obtained.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of fabric detection. The chinlon yarn wear resistance and tensile strength detection device comprises a rack, supporting seats are arranged at the two ends of the rack, a first mounting seat is arranged on one side of the rack, a second mounting seat is arranged on the other side of the rack, a driving assembly is arranged on the second mounting seat, a stretching assembly is arranged on the first mounting seat, and the driving assembly is arranged on the second mounting seat. A sliding rail is arranged at the bottom of the machine frame, a sliding seat is arranged on the sliding rail in a sliding mode, a clamping assembly is arranged on the sliding seat, a reciprocating assembly is arranged on the machine frame, and an adjusting assembly used for adjusting the abrasion distance is further arranged on the machine frame. The device has the advantages that the stretching assembly drives the second clamping arm to move, the clamping assembly drives the first friction base and the second friction base to make contact with the surface of the chinlon yarn, then the reciprocating assembly drives the sliding base to reciprocate, and after a period of time, the length of the chinlon yarn before and after stretching and the abrasion condition of the surface are measured.
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Description

Technical Field

[0001] The invention relates to the technical field of fabric detection, in particular to a device for detecting the wear resistance and tensile strength of nylon yarn. Background Art

[0002] Nylon, also known as polyamide fiber, is the first fiber to appear in the world. Nylon fabric has the characteristics of high strength, good wear resistance and good resilience. Before leaving the factory, nylon fabric usually needs to use wear resistance and tensile strength testing equipment to test its performance to ensure the performance of the produced fabric is qualified.

[0003] Existing nylon yarns need to use a wear resistance testing device and a tensile strength testing device to test their own performance respectively. Switching between different testing devices for testing is troublesome, which affects the testing efficiency of nylon yarns. Summary of the Invention

[0004] In order to overcome the shortcomings of the prior art, the present application provides a nylon yarn wear resistance and tensile strength testing device.

[0005] This application provides a nylon yarn wear resistance and tensile strength testing device, which adopts the following technical solutions: A device for testing the wear resistance and tensile strength of nylon yarn comprises a frame, support seats are provided at both ends of the frame, a first mounting seat is provided on one side of the frame and a second mounting seat is provided on the other side, a driving assembly for clamping and fixing the nylon yarn is provided on the second mounting seat, a stretching assembly is provided on the first mounting seat, a slide rail is provided at the bottom of the frame, a sliding seat is slidingly provided on the slide rail, a clamping assembly for clamping and wearing the nylon yarn is provided on the sliding seat, a reciprocating assembly for wearing the nylon yarn is provided on the frame, and an adjustment assembly for adjusting the wear distance is also provided on the frame.

[0006] By adopting the above technical solution, the nylon yarn is clamped and fixed by the driving component; when performing a tensile resistance test, the nylon yarn is stretched and extended by the stretching component, and then the length of the nylon yarn before and after stretching is measured to obtain the tensile resistance of the nylon yarn; when the wear resistance of the nylon yarn needs to be tested, the clamping component contacts the surface of the nylon yarn, and then the reciprocating component drives the sliding seat to reciprocate along the length direction of the slide rail, and the nylon yarn is worn during the reciprocating movement. After a period of time, the wear condition of the nylon yarn surface is detected to obtain the wear resistance of the nylon yarn.

[0007] Optionally, one end of the first mounting seat is fixedly provided with a first clamping arm, and the other end is slidably provided with a second clamping arm, the nylon yarn is respectively passed through the first clamping arm and the second clamping arm, the first clamping arm includes a first clamping seat, a first through hole is opened on the first clamping seat, the nylon yarn is passed through the first through hole, a first clamping fixing block is slidably provided inside the first clamping seat, the top of the first clamping fixing block abuts the nylon yarn, the second clamping arm includes a second clamping seat, a second through hole is opened on the second clamping seat, the nylon yarn is passed through the second through hole, a second clamping fixing block is slidably provided inside the second clamping seat, the top of the second clamping fixing block abuts the nylon yarn, the tops of the first clamping fixing block and the second clamping fixing block are both provided with anti-slip pads, and the bottoms of the first clamping fixing block and the second clamping fixing block are both provided with inclined surfaces.

[0008] By adopting the above technical solution, when in use, the nylon yarn is passed through the first through hole and extended to the position of the second clamping arm, and then the nylon yarn is passed through the second through hole. Then, the driving component drives the first clamping and fixing block and the second clamping and fixing block to move in the vertical direction toward the direction close to the nylon yarn, thereby clamping and fixing the nylon yarn.

[0009] 4. The repairing kit for automotive dents, according to claim 1, wherein a bottom of the foot stand comprises a through-hole, and the two foot pieces comprise two bosses, wherein the bosses comprise a through-hole, a screw bolt, and a nut. The two bosses comprise a through-hole, a screw bolt, and a nut. The two bosses comprise a through-hole, a screw bolt and a nut.

[0010] By adopting the above technical solution, when in use, the first drive motor is started, and the driving screw rod will be driven to rotate synchronously during the rotation of the first drive motor. The driving screw rod will be driven to move toward the direction close to the first clamping arm and the second clamping arm during the rotation. The active rod and the sleeve will drive the first push rod and the second push rod to move synchronously during the movement. The first push rod will be inserted into the first mounting hole during the movement, and the second push rod will be inserted into the second mounting hole during the movement, thereby clamping and fixing the nylon yarn.

[0011] Optionally, the stretching assembly includes a stretching motor and a stretching screw rod. A stretching groove is provided on the first mounting seat along its length direction. The second clamping arm is slidably arranged in the stretching groove. The stretching screw rod is rotatably arranged in the stretching groove. The stretching screw rod is threadedly connected to the second clamping arm. The stretching motor is fixedly arranged on the first mounting seat. The stretching screw rod is coaxially connected to the output shaft of the stretching motor.

[0012] By adopting the above technical solution, the stretching motor is started. During the rotation of the stretching motor, the stretching screw rod will be driven to rotate. During the rotation of the stretching screw rod, the second clamping arm will be driven to move along the length direction of the stretching slide in the direction away from the first clamping arm, thereby stretching the nylon yarn.

[0013] Optionally, the second mounting seat is also provided with a tension measuring assembly for detecting tension, the tension measuring assembly includes a push-pull force gauge and an abutment rod, the push-pull force gauge is fixedly provided at one end of the second mounting seat, the abutment rod is fixedly provided on the second clamping arm, and the second mounting seat is also slidably provided with an abutment plate, the abutment plate is provided with a spring at one end close to the push-pull force gauge, the other end of the spring is connected to the measuring head of the push-pull force gauge, and the abutment rod is connected to the end of the abutment plate away from the spring.

[0014] By adopting the above technical solution, when the second clamping arm moves, it will drive the abutment rod to move synchronously. During the movement of the abutment rod, it will push the abutment disk to move toward the direction close to the push-pull force gauge. During the movement of the abutment disk, the spring will be compressed, and the spring will tend to return to its original length. Therefore, the spring will apply pressure to the measuring head of the push-pull force gauge, so that the push-pull force gauge can obtain the magnitude of the tension applied to the nylon yarn.

[0015] Optionally, the clamping assembly includes a power block, a placement seat is provided on the sliding seat, a first friction seat and a second friction seat are slidingly provided on the placement seat, the power block is rotatably provided at the bottom of the placement seat, one end of the power block is hingedly provided with a first power rod, the other end of the first power rod is hinged to the bottom of the first friction seat, the other end of the power block is hingedly provided with a second power rod, the end of the second power rod away from the power block is hinged to the bottom of the second friction seat, a power motor is fixedly provided on the placement seat, a worm is coaxially provided on the output shaft of the power motor, a worm wheel is coaxially provided on the power block, and the worm wheel is meshed with the worm.

[0016] By adopting the above technical solution, the power motor is started. During the rotation of the power motor, the worm will be driven to rotate. During the rotation of the worm, the worm wheel will be driven to rotate. During the rotation of the worm wheel, the power block will be synchronously driven to rotate. The power block will rotate toward a position parallel to the length direction of the nylon yarn. Therefore, the first power rod and the second power rod will be driven to move toward each other, thereby driving the first friction seat and the second friction seat to move toward each other, so that the first friction seat and the second friction seat are both in contact with the surface of the nylon yarn.

[0017] Optionally, the reciprocating assembly includes a driving disk, a driving shaft is coaxially arranged on the driving disk, the driving shaft is rotatably arranged on the frame, a connecting rod is hingedly arranged on the driving disk, the other end of the connecting rod is hinged to the sliding seat, a second driving motor is fixedly arranged on the frame, a driving gear is coaxially arranged on the output shaft of the second driving motor, a driven gear is coaxially arranged on the driving shaft, and the driving gear is meshed with the driven gear.

[0018] By adopting the above technical solution, the second drive motor is started. During the rotation of the second drive motor, the driving gear will be driven to rotate synchronously. During the rotation of the driving gear, the driven gear will be driven to rotate. During the rotation of the driven gear, the drive shaft will be driven to rotate, thereby driving the driving disk to rotate synchronously. During the rotation of the driving disk, the sliding seat will be driven to move back and forth along the length direction of the slide rail through the connecting rod, thereby facilitating the driving of the first friction seat and the second friction seat to perform wear resistance testing on the nylon yarn.

[0019] Optionally, the adjusting assembly includes an adjusting rail, which is arranged along the radial direction of the driving disk, and an adjusting block is slidably provided on the adjusting rail, the connecting rod is hinged to the adjusting block, and an adjusting screw is provided for rotating inside the adjusting rail, and the adjusting screw is threadably connected to the adjusting block. A first bevel gear is coaxially provided on one end of the adjusting screw close to the driving shaft, the driving shaft is hollow, and an adjusting shaft is coaxially provided inside the driving shaft, and a second bevel gear is coaxially provided on one end of the adjusting shaft, the first bevel gear is meshed with the second bevel gear, and an adjusting motor is fixed on the frame, and the output shaft of the adjusting motor is coaxially connected to the adjusting shaft.

[0020] By adopting the above technical solution, the adjustment motor is started, and the adjustment motor will drive the adjustment shaft to rotate synchronously during rotation, and the adjustment shaft will drive the second bevel gear to rotate synchronously during rotation, and the first bevel gear will drive the adjustment screw to rotate synchronously during rotation, and the adjustment screw will drive the adjustment block to move along the length direction of the adjustment rail during rotation, thereby adjusting the friction distance between the first friction seat and the second friction seat and the nylon yarn.

[0021] Optionally, a supporting roller is rotatably provided on the support seat, and a first wire lifting frame and a second wire lifting frame are provided on the top of the frame, and the second wire lifting frame has the same structure and size as the first wire lifting frame, and the first wire lifting frame and the second wire lifting frame are respectively located on both sides of the placement seat, and one end of the first wire lifting frame is slidably provided on the first mounting seat, and the other end is slidably provided on the second mounting seat, and the first wire lifting frame and the second wire lifting frame are both rotatably provided with wire lifting rollers, and the nylon yarn is tangent to the top of the wire lifting rollers, and an adjustment slide rail is provided on one side of the first mounting seat, and a first sliding block is provided on the first wire lifting frame, and the first sliding block is slidably provided on the adjustment slide The gear train is connected with the gear axle of the first end facing the gear train, and the gear train is connected with the gear train of the second end facing the gear train, and the gear train is connected with the gear axle of the first end facing the gear train, and the gear train is connected with the gear axle of the second end facing the gear train.

[0022] By adopting the above technical solution, the nylon yarn is tangent to the top of the thread lifting roller, and the thread lifting rollers on the first thread lifting frame and the second thread lifting frame will support the nylon yarn so that the nylon yarn is placed horizontally, so that the first friction seat and the second friction seat can subsequently perform wear resistance testing on the nylon yarn. When the motor adjusts the friction distance of the first friction seat and the second friction seat on the nylon yarn, the distance between the first thread lifting frame and the second thread lifting frame will be adjusted synchronously, thereby avoiding the first friction seat and the second friction seat from colliding with the first thread lifting frame or the second thread lifting frame during movement.

[0023] Optionally, a V-shaped shearing knife is provided on one side of the first push rod and the second push rod.

[0024] By adopting the above technical solution, when the active rod moves toward a position close to the first clamping seat and the second clamping seat, the first push rod and the second push rod will move synchronously, thereby driving the shearing knife to move synchronously. When the shearing knife contacts the nylon yarn, the shearing knife will cut off the excess nylon yarn without the need for manual operation or the use of additional cutting devices by the staff.

[0025] The present invention has the following advantages: 1. A first clamping arm, a second clamping arm, a driving assembly, a stretching assembly, a first friction seat, a second friction seat, a clamping assembly, and a reciprocating assembly are provided. The driving assembly drives the first clamping arm and the second clamping arm to clamp and fix the nylon yarn at the same time. The stretching assembly drives the second clamping arm to move in a direction away from the first clamping arm. Then, by measuring the front and back lengths of the nylon yarn, the tensile performance of the nylon yarn is obtained. The clamping assembly drives the first friction seat and the second friction seat to contact the surface of the nylon yarn. Then, the reciprocating assembly drives the sliding seat to reciprocate along the length direction of the slide rail. After a period of time, the wear condition of the nylon yarn surface is detected to obtain the wear resistance of the nylon yarn, thereby facilitating the wear resistance and tensile strength testing of the nylon yarn. 2. By setting up a tensile force measurement component, the tensile properties of nylon yarn can be obtained more conveniently; 3. By setting an adjustment rail, an adjustment block, an adjustment screw rod and an adjustment motor, the friction distance between the first friction seat and the second friction seat and the nylon yarn can be adjusted. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 Schematic diagram of the installation structure of the first clamping arm and the second clamping arm of the present invention; Figure 3 Schematic diagram of the installation structure of the drive assembly of the present invention; Figure 4Schematic diagram of the installation structure of the first clamping seat and the second clamping seat of the present invention; Figure 5 Schematic diagram of the installation structure of the tension measurement assembly of the present invention; Figure 6 Schematic diagram of the installation structure of the reciprocating assembly of the present invention; Figure 7 Schematic diagram of the installation structure of the adjusting rail and the adjusting screw rod of the present invention; Figure 8 Schematic diagram of the installation structure of the first friction seat and the second friction seat of the present invention; Figure 9 Schematic diagram of the installation structure of the clamping assembly of the present invention; In the figure: 1, frame; 11, support base; 12, support roller; 13, first mounting base; 131, first clamping arm; 1311, first clamping base; 1312, first through hole; 1313, first clamping and fixing block; 1314, first mounting hole; 132, second clamping arm; 1321, second clamping base; 1322, second through hole; 1323, second clamping and fixing block; 1324, second mounting hole; 14, second mounting base; 15, slide rail; 151. Sliding seat; 152. Placement seat; 153. First friction seat; 154. Second friction seat; 16. Anti-slip pad; 17. First wire lifting frame; 18. Second wire lifting frame; 19. Wire lifting roller; 2. Driving assembly; 21. Active rod; 211. Mounting hole; 212. First push rod; 22. Sleeve; 221. Through slot; 222. Second push rod; 23. First driving motor; 24. Limiting rod; 25. Driving screw; 26. Shearing knife; 3. Pull Extension assembly; 31. Extension motor; 32. Extension screw; 33. Extension chute; 4. Tension measuring assembly; 41. Push-pull force gauge; 42. Abutment rod; 43. Abutment plate; 44. Spring; 5. Clamping assembly; 51. Power block; 511. First power rod; 512. Second power rod; 52. Power motor; 53. Worm; 54. Worm gear; 6. Reciprocating assembly; 61. Drive plate; 62. Drive shaft; 63. Connecting rod; 64. Second drive motor; 65 , driving gear; 66, driven gear; 7, adjustment assembly; 71, adjustment rail; 72, adjustment block; 73, adjustment screw; 74, first bevel gear; 75, adjustment shaft; 76, second bevel gear; 77, adjustment motor; 8, adjustment rail; 81, first sliding block; 82, second sliding block; 83, bidirectional screw; 84, third bevel gear; 85, connecting shaft; 86, fourth bevel gear; 87, fifth bevel gear; 88, sixth bevel gear. DETAILED DESCRIPTION

[0027] The present invention will be further described below in conjunction with the accompanying drawings, but the protection scope of the present invention is not limited to the following description.

[0028] like Figures 1 to 9As shown, a nylon yarn wear resistance and tensile strength testing device includes a frame 1, both ends of the frame 1 are fixedly installed with a support seat 11 in the vertical direction, two support rollers 12 are rotatably installed on the support seat 11, the two support rollers 12 are located on the same vertical line, and the nylon yarn is located between the two support rollers 12, a first mounting seat 13 is installed on one side of the frame 1 in the horizontal direction, and a second mounting seat 14 is installed on the other side of the frame 1 in the horizontal direction, the first mounting seat 13 is parallel to the second mounting seat 14 and is located at the same installation height, a first clamping arm 131 is fixedly installed on one end of the first mounting seat 13, and a second clamping arm 132 is slidably installed on the other end along its own length direction, The nylon yarn is respectively passed through the first clamping arm 131 and the second clamping arm 132. The second mounting seat 14 is provided with a driving component 2 for driving the first clamping arm 131 and the second clamping arm 132 to clamp and fix the nylon yarn at the same time. The first mounting seat 13 is provided with a stretching component 3 for driving the second clamping arm 132 to clamp and fix the nylon yarn and move along the length direction of the first mounting seat 13. A slide rail 15 is installed at the bottom of the frame 1. The length direction of the slide rail 15 is consistent with the length direction of the first mounting seat 13. A sliding seat 151 is installed on the slide rail 15 along its own length direction. A placement seat 152 is fixedly installed on the top of the sliding seat 151. A first friction seat 153 and a second friction seat 154 are slidably mounted on the seat 152, and the first friction seat 153 and the second friction seat 154 are respectively located on both sides of the nylon yarn. A clamping assembly 5 for driving the first friction seat 153 and the second friction seat 154 to clamp the nylon yarn is also mounted on the sliding seat 151. A reciprocating assembly 6 for driving the sliding seat 151 to reciprocate along the length direction of the slide rail 15 to wear the nylon yarn is mounted on the frame 1. An adjusting assembly 7 for adjusting the wear distance of the sliding seat 151 is also mounted on the reciprocating assembly 6. When in use, the staff passes the nylon yarn between the two supporting rollers 12 on the support seat 11 at one end of the frame 1, and then Then, it passes through the first clamping arm 131 and the second clamping arm 132 in sequence, and then passes through between the two support rollers 12 on the support base 11 at the other end of the frame 1, so that the nylon yarn is placed horizontally. Then, the driving component 2 drives the first clamping arm 131 and the second clamping arm 132 to clamp and fix the nylon yarn at the same time, so as to facilitate subsequent tensile testing and wear resistance testing. When performing a tensile test, the stretching component 3 drives the second clamping arm 132 to move away from the first clamping arm 131, and then the tensile strength of the nylon yarn is determined by measuring the length of the nylon yarn before and after stretching, that is, the degree of deformation of the nylon yarn, thereby obtaining the tensile performance of the nylon yarn.When the wear resistance of the nylon yarn needs to be tested, after the first clamping arm 131 and the second clamping arm 132 secure the nylon yarn, the clamping assembly 5 drives the first friction seat 153 and the second friction seat 154 toward each other, so that both the first friction seat 153 and the second friction seat 154 contact the surface of the nylon yarn. The reciprocating assembly 6 then drives the sliding seat 151 to reciprocate along the length of the slide rail 15, thereby driving the placement seat 152, the first friction seat 153, and the second friction seat 154 to reciprocate along the length of the slide rail 15 simultaneously. During the reciprocating movement, the first friction seat 153 and the second friction seat 154 will wear the nylon yarn. After a period of wear, the wear resistance of the nylon yarn is determined by the roughness of the nylon yarn surface, thus completing the wear resistance test of the nylon yarn.

[0029] like Figures 2 to 4 As shown, the first clamping arm 131 includes a first clamping seat 1311, a first through hole 1312 is provided on the first clamping seat 1311, the nylon yarn is passed through the first through hole 1312, the diameter of the first through hole 1312 is larger than the diameter of the nylon yarn, the first clamping seat 1311 is slidably installed with a first clamping fixing block 1313 along the vertical direction, the top of the first clamping fixing block 1313 abuts against the nylon yarn, the first clamping arm 131 and the second clamping arm 132 have the same structure and size, the second clamping arm 132 includes a second clamping seat 1321, a second through hole 1322 is provided on the second clamping seat 1321, the diameter of the second through hole 1322 is larger than the diameter of the nylon yarn, the nylon yarn is passed through the second through hole 1322, the second clamping seat 1321 is slidably installed with a second clamping fixing block 1323, the top of the second clamping fixing block 1323 abuts against the nylon yarn The line is abutted, and the tops of the first clamping and fixing block 1313 and the second clamping and fixing block 1323 are both installed with anti-slip pads 16, and the bottoms of the first clamping and fixing block 1313 and the second clamping and fixing block 1323 are both set with inclined surfaces; when in use, the nylon yarn is passed through the first through hole 1312 and extended to the position of the second clamping arm 132, and then the nylon yarn is passed through the second through hole 1322, and then the driving component 2 is used to drive the first clamping and fixing block 1313 and the second clamping and fixing block 1323 to move along the vertical direction toward the position close to the nylon yarn, so that the first clamping and fixing block 1313 and the second clamping and fixing block 1323 abut the nylon yarn, and then one end of the nylon yarn is clamped and fixed between the first clamping and fixing block 1313 and the first clamping seat 1311, and the other end is clamped and fixed between the second clamping and fixing block 1323 and the second clamping seat 1321.

[0030] like Figures 3 to 5As shown, the driving assembly 2 includes an active rod 21, a sleeve 22, a first driving motor 23 and two limit rods 24. The two limit rods 24 are fixedly mounted on the second mounting seat 14. The length direction of the limit rod 24 is perpendicular to the length direction of the first mounting seat 13. Both ends of the active rod 21 are provided with mounting through holes 211. The two mounting through holes 211 correspond to the two limit rods 24 one by one, and the limit rods 24 are slidably mounted in the mounting through holes 211. The first driving motor 23 is fixedly mounted on the second mounting seat 14. A driving screw 25 is coaxially mounted on the output shaft of the first driving motor 23. The driving screw 25 is coaxial with the active rod 21 is threadedly connected, the sleeve 22 is slidably installed on one end of the active rod 21, a through groove 221 is opened on the sleeve 22 along its own length direction, the limit rod 24 is slidably connected with the through groove 221, the end of the active rod 21 away from the sleeve is installed with a first push rod 212, the sleeve 22 is fixedly installed with a second push rod 222, the first clamping seat 1311 is provided with a first mounting hole 1314, the first push rod 212 is slidably installed in the first mounting hole 1314, the first push rod 212 is slidably connected to the bottom of the first clamping fixed block 1313, the second clamping seat 1321 is provided with a second mounting hole 1324, the second push rod 222 The second push rod 222 is slidably installed in the second mounting hole 1324, and the second push rod 222 is slidably connected to the bottom of the second clamping fixed block 1323; when in use, the first driving motor 23 is started, and the driving screw 25 will be driven to rotate synchronously during the rotation of the first driving motor 23. During the rotation of the driving screw 25, the active rod 21 will be driven to move toward the direction close to the first clamping arm 131 and the second clamping arm 132. The limiting rod 24 will limit the moving direction of the active rod 21, so that the active rod 21 is more stable during the movement. The active rod 21 will drive the sleeve 22 to move synchronously during the movement. The active rod 21 and the sleeve 2 During the process of moving toward the first clamping arm 131 and the second clamping arm 132, the first push rod 212 and the second push rod 222 will be driven to move synchronously. During the process of moving, the first push rod 212 will be inserted into the first mounting hole 1314, thereby causing the first clamping and fixing block 1313 to move in the vertical direction toward a position close to the nylon yarn, thereby facilitating the clamping and fixing of the nylon yarn. During the process of moving, the second push rod 222 will be inserted into the second mounting hole 1324, thereby causing the second clamping and fixing block 1323 to move in the vertical direction toward a position close to the nylon yarn, thereby facilitating the clamping and fixing of the nylon yarn.

[0031] like Figures 3 to 5As shown, the stretching assembly 3 includes a stretching motor 31 and a stretching screw rod 32. A stretching slot 33 is opened on the first mounting seat 13 along its own length direction. The second clamping arm 132 is slidably installed in the stretching slot 33. The stretching screw rod 32 is rotatably installed in the stretching slot 33. The stretching screw rod 32 is threadedly connected to the second clamping arm 132. The stretching motor 31 is fixedly installed on the first mounting seat 13. The stretching screw rod 32 is coaxially connected to the output shaft of the stretching motor 31. When the nylon yarn needs to be stretched, the stretching motor 31 is started. During the rotation of the stretching motor 31, the stretching The stretching screw rod 32 is driven to rotate. During the rotation of the stretching screw rod 32, the second clamping arm 132 will be driven to move along the length direction of the stretching slide 33 in the direction away from the first clamping arm 131, thereby stretching the nylon yarn. By adjusting the distance between the second clamping arm 132 and the first clamping arm 131, the tension applied to the nylon yarn is adjusted. By measuring the length of the nylon yarn before and after being stretched, the tensile performance of the nylon yarn can be obtained. In this embodiment, in order to improve the stretching control effect of the nylon yarn, the stretching motor 31 uses a servo motor.

[0032] like Figures 3 to 5 As shown, a tension measuring assembly 4 for detecting tension is also installed on the second mounting seat 14, and the tension measuring assembly 4 includes a push-pull force gauge 41 and an abutment rod 42. Since the push-pull force gauge 41 is a prior art, the specific composition of the push-pull force gauge 41 will not be described in detail in this embodiment. The push-pull force gauge 41 is fixedly mounted on one end of the second mounting seat 14, and the abutment rod 42 is fixedly mounted on the second clamping arm 132. An abutment disk 43 is also slidably mounted on the second mounting seat 14, and a spring 44 is mounted on the end of the abutment disk 43 close to the push-pull force gauge 41, and the other end of the spring 44 is connected to the measuring head of the push-pull force gauge 41, and the abutment rod 42 is connected to the end of the abutment disk 43 away from the spring 44; when in use, when the stretching motor 31 drives the second clamping arm 132 toward the end away from the first clamping arm 13 1 moves, the nylon yarn is stretched, and the tension applied to the nylon yarn is adjusted by adjusting the distance between the second clamping arm 132 and the first clamping arm 131; when the second clamping arm 132 moves, the abutment rod 42 will be driven to move synchronously, and the abutment rod 42 will push the abutment disk 43 toward the direction close to the push-pull force gauge 41 during the movement, and the abutment disk 43 will compress the spring 44 during the movement, and the spring 44 will have a tendency to return to its original length, so the spring 44 will apply pressure to the measuring head of the push-pull force gauge 41, so that the push-pull force gauge 41 can obtain the tension applied to the nylon yarn. Compared with measuring the elongation of the nylon yarn before and after stretching to obtain the tensile performance, the tensile strength of the nylon yarn can be more intuitively obtained through the push-pull force gauge 41.

[0033] like Figures 5 to 9As shown, the clamping assembly 5 includes a power block 51, which is rotatably mounted on the bottom of the placement seat 152, and one end of the power block 51 is hingedly mounted with a first power rod 511, and the other end of the first power rod 511 is hinged to the bottom of the first friction seat 153, and the other end of the power block 51 is hingedly mounted with a second power rod 512, and the end of the second power rod 512 away from the power block 51 is hinged to the bottom of the second friction seat 154, and a power motor 52 is fixedly mounted on the placement seat 152, and a worm 53 is coaxially mounted on the output shaft of the power motor 52, and a worm gear 54 is coaxially mounted on the power block 51, and the worm gear 54 is meshed with the worm 53; when the wear resistance of the nylon yarn is not tested, the length direction of the power block 51 is perpendicular to the length direction of the nylon yarn. When the wear resistance of the nylon yarn needs to be tested, the power motor 52 is started, and the rotation of the power motor 52 will drive the worm 53 to rotate, and the rotation of the worm 53 will drive the worm gear 54 to rotate During the rotation of the worm gear 54, the power block 51 will be driven to rotate synchronously. During the rotation of the power block 51, the power block 51 will rotate toward a position parallel to the length direction of the nylon yarn. Therefore, the first power rod 511 and the second power rod 512 will be driven to move toward each other, thereby driving the first friction seat 153 and the second friction seat 154 to move toward each other, so that the first friction seat 153 and the second friction seat 154 are in contact with the surface of the nylon yarn, and then the reciprocating component 6 drives the sliding seat 151, the placement seat 152, the first friction seat 153 and the second friction seat 154 to reciprocate along the length direction of the slide rail 15. The length direction of the slide rail 15 is consistent with the length direction of the nylon yarn, and the slide rail 15 is located directly below the nylon yarn. Therefore, the first friction seat 153 and the second friction seat 154 will continuously rub the nylon yarn, thereby completing the wear resistance test of the nylon yarn.

[0034] like Figures 4 to 8As shown, the reciprocating assembly 6 includes a driving disc 61, a driving shaft 62 is coaxially mounted on the driving disc 61, and the driving shaft 62 is rotatably mounted on the frame 1. A connecting rod 63 is hingedly mounted on the driving disc 61, and the other end of the connecting rod 63 is hingedly connected to the sliding seat 151. A second driving motor 64 is fixedly mounted on the frame 1, and a driving gear 65 is coaxially mounted on the output shaft of the second driving motor 64. A driven gear 66 is coaxially mounted on the driving shaft 62, and the driving gear 65 is meshed with the driven gear 66. When in use, the second driving motor 64 is rotated. Rotation, the second drive motor 64 will drive the driving gear 65 to rotate synchronously during the rotation of the second drive motor 64, and the driving gear 65 will drive the driven gear 66 to rotate during the rotation of the driven gear 66. The driving shaft 62 will be driven to rotate during the rotation of the driven gear 66, thereby driving the driving disk 61 to rotate synchronously. During the rotation of the driving disk 61, the sliding seat 151 will be driven to reciprocate along the length direction of the slide rail 15 through the connecting rod 63, thereby facilitating the first friction seat 153 and the second friction seat 154 to perform wear resistance detection on the nylon yarn.

[0035] like Figures 5 to 8 As shown, the adjustment assembly 7 includes an adjustment rail 71, which is arranged along the radial direction of the drive disk 61, and an adjustment block 72 is slidably installed on the adjustment rail 71. The connecting rod 63 and the adjustment block 72 are hinged to the adjustment rail 71, and an adjustment screw rod 73 is installed for rotation inside the adjustment rail 71. The adjustment screw rod 73 is threadedly connected to the adjustment block 72, and a first bevel gear 74 is coaxially installed on the end of the adjustment screw rod 73 close to the drive shaft 62. The drive shaft 62 is hollow, and an adjustment shaft 75 is coaxially installed for rotation inside the drive shaft 62. A second bevel gear 76 is coaxially installed on one end of the adjustment shaft 75, and the first bevel gear 74 is meshed with the second bevel gear 76. An adjustment motor 77 is fixedly installed on the frame 1, and the output shaft of the adjustment motor 77 is coaxially connected to the adjustment shaft 75; when in use, when it is necessary to adjust the first friction seat 153 and the second friction seat 154 to the nylon When the length of the yarn friction is reached, the adjustment motor 77 is started. During the rotation of the adjustment motor 77, the adjusting shaft 75 will be driven to rotate synchronously. During the rotation of the adjusting shaft 75, the second bevel gear 76 will be driven to rotate synchronously. During the rotation of the second bevel gear 76, the first bevel gear 74 will be driven to rotate. During the rotation of the first bevel gear 74, the adjusting screw rod 73 will be driven to rotate synchronously. During the rotation of the adjusting screw rod 73, the adjusting block 72 will be driven to move along the length direction of the adjusting rail 71. When the adjusting block 72 moves toward the center position away from the driving disk 61, the first friction seat 153 and the second friction seat 154 will increase the friction distance with the nylon yarn. When the adjusting block 72 moves toward the center position close to the driving disk 61, the first friction seat 153 and the second friction seat 154 will reduce the friction distance with the nylon yarn.

[0036] like Figures 5 to 8As shown, a first wire lifting frame 17 and a second wire lifting frame 18 are installed on the top of the frame 1. The second wire lifting frame 18 has the same structure and size as the first wire lifting frame 17. The first wire lifting frame 17 and the second wire lifting frame 18 are respectively located on both sides of the placement seat 152, and one end of the first wire lifting frame 17 is slidably installed on the first mounting seat 13, and the other end is slidably installed on the second mounting seat 14. The first wire lifting frame 17 and the second wire lifting frame 18 are both rotatably installed with a wire lifting roller 19, and the nylon yarn is tangent to the top of the wire lifting roller 19. An adjustment slide rail 8 is installed on one side of the first mounting seat 13. A first sliding block 81 is installed, the first sliding block 81 is slidably installed in the adjustment slide rail 8, a second sliding block 82 is installed on the second wire lifting frame 18, the second sliding block 82 is slidably installed in the adjustment slide rail 8, a bidirectional screw rod 83 is rotatably installed in the adjustment slide rail 8, the first sliding block 81 is threadedly connected to one end of the bidirectional screw rod 83, the second sliding block 82 is threadedly connected to the other end of the bidirectional screw rod 83, a third bevel gear 84 is coaxially installed on the bidirectional screw rod 83, a connecting shaft 85 is rotatably installed on the frame 1, one end of the connecting shaft 85 is coaxially installed with a fourth bevel gear 86, and the other end is coaxially installed with a fifth bevel gear The fourth bevel gear 86 is meshed with the third bevel gear 84, and the other end of the adjusting shaft 75 is provided with a sixth bevel gear 88, and the fifth bevel gear 87 is meshed with the sixth bevel gear 88; when in use, the nylon yarn is tangent to the top of the wire lifting roller 19, and the wire lifting roller 19 on the first wire lifting frame 17 and the second wire lifting frame 18 will support the nylon yarn so that the nylon yarn remains in a horizontal position, so that the first friction seat 153 and the second friction seat 154 can subsequently perform wear resistance testing on the nylon yarn; when the adjusting motor drives the adjusting shaft 75 to rotate, the sixth bevel gear 88 on the adjusting shaft 75 is installed. The bevel gear 88 will rotate synchronously, and the sixth bevel gear 88 will drive the fifth bevel gear 87 to rotate during the rotation process. The fifth bevel gear 87 will drive the connecting shaft 85 and the fourth bevel gear 86 to rotate synchronously during the rotation process of the fourth bevel gear 86. The third bevel gear 84 will drive the bidirectional screw rod 83 to rotate synchronously during the rotation process. The threads at both ends of the bidirectional screw rod 83 are reversed. Therefore, during the rotation process of the bidirectional screw rod 83, the first wire lifting frame 17 and the second wire lifting frame 18 will be driven to move towards each other or towards each other.When the adjustment motor 77 drives the adjustment block 72 toward a position away from the center of the drive disk 61, the bidirectional screw rod 83 drives the first and second thread lifting frames 17 and 18 to move away from each other, thereby preventing the first and second friction seats 153 and 154 from colliding with the first and second thread lifting frames 17 and 18 during their reciprocating movement. When the adjustment motor 77 drives the adjustment block 72 toward a position closer to the center of the drive disk 61, the bidirectional screw rod 83 drives the first and second thread lifting frames 17 and 18 to move toward each other, thereby facilitating support of the nylon yarn.

[0037] like Figures 4 and 5 As shown, a V-shaped shearing knife 26 is installed on one side of the first push rod 212 and the second push rod 222; when in use, when the driving assembly 2 drives the active rod 21 to move toward a position close to the first clamping seat 1311 and the second clamping seat 1321, the first push rod 212 and the second push rod 222 will move synchronously, thereby driving the shearing knife 26 to move synchronously. When the shearing knife 26 contacts the nylon yarn, the shearing knife 26 will cut the nylon yarn without the need for manual operation by the staff or the use of additional cutting devices.

[0038] The implementation principle of this embodiment is as follows: the driving component 2 drives the first clamping arm 131 and the second clamping arm 132 to clamp and fix the nylon yarn at the same time; when performing a tensile resistance test, the stretching component 3 drives the second clamping arm 132 to move in a direction away from the first clamping arm 131, and then the front and back lengths of the nylon yarn are measured to obtain the tensile resistance of the nylon yarn; when it is necessary to perform a wear resistance test on the nylon yarn, the clamping component 5 drives the first friction seat 153 and the second friction seat 154 to move in a direction approaching each other, so that the first friction seat 153 and the second friction seat 154 are in contact with the surface of the nylon yarn, and then the reciprocating component 6 drives the sliding seat 151 to reciprocate along the length direction of the slide rail 15. The first friction seat 153 and the second friction seat 154 wear the nylon yarn during the reciprocating movement. After a period of time, the wear of the nylon yarn is detected to obtain the wear resistance of the nylon yarn.

[0039] The above description is merely a preferred embodiment of the present invention and does not constitute any form of limitation to the present invention. Any person skilled in the art can, without departing from the scope of the technical solution of the present invention, make many possible changes and modifications to the technical solution of the present invention using the above technical content, or modify it into an equivalent embodiment with equivalent changes. Therefore, any changes, modifications, equivalent changes, and modifications made to the above embodiments based on the technology of the present invention without departing from the content of the present invention are within the scope of protection of the present technical solution.

Claims

1. A device for testing the wear resistance and tensile strength of nylon yarn, characterized by: The invention comprises a frame (1), wherein both ends of the frame (1) are provided with support seats (11), a first mounting seat (13) is provided on one side of the frame (1), and a second mounting seat (14) is provided on the other side, a driving assembly (2) for clamping and fixing nylon yarn is provided on the second mounting seat (14), a stretching assembly (3) is provided on the first mounting seat (13), a slide rail (15) is provided at the bottom of the frame (1), a sliding seat (151) is slidably provided on the slide rail (15), a clamping assembly (5) for clamping and wearing the nylon yarn is provided on the sliding seat (151), a reciprocating assembly (6) for wearing the nylon yarn is provided on the frame (1), and an adjusting assembly (7) for adjusting the wear distance is also provided on the frame (1).

2. The device for detecting wear resistance and tensile strength of nylon yarn according to claim 1, characterized in that: A first clamping arm (131) is fixedly provided at one end of the first mounting seat (13), and a second clamping arm (132) is slidably provided at the other end. Nylon yarn is respectively passed through the first clamping arm (131) and the second clamping arm (132). The first clamping arm (131) includes a first clamping seat (1311). A first through hole (1312) is provided on the first clamping seat (1311). Nylon yarn is passed through the first through hole (1312). A first clamping fixed block (1313) is slidably provided inside the first clamping seat (1311). The top of the first clamping fixed block (1313) abuts against the nylon yarn. The second clamping arm (132) includes a second clamping seat (1321), a second through hole (1322) is provided on the second clamping seat (1321), and the nylon yarn is passed through the second through hole (1322). A second clamping fixed block (1323) is slidably provided inside the second clamping seat (1321), and the top of the second clamping fixed block (1323) abuts against the nylon yarn. The tops of the first clamping fixed block (1313) and the second clamping fixed block (1323) are both provided with anti-slip pads (16), and the bottoms of the first clamping fixed block (1313) and the second clamping fixed block (1323) are both provided with inclined surfaces.

3. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 2, characterized in that: The driving assembly (2) includes an active rod (21), a sleeve (22), a first driving motor (23) and two limiting rods (24), the two limiting rods (24) are fixedly arranged on the second mounting seat (14), both ends of the active rod (21) are provided with mounting through holes (211), the two mounting through holes (211) correspond to the two limiting rods (24) one by one, and the limiting rods (24) are slidably arranged in the mounting through holes (211), the first driving motor (23) is fixedly arranged on the second mounting seat (14), a driving screw (25) is coaxially arranged on the output shaft of the first driving motor (23), the driving screw (25) is threadedly connected to the active rod (21), the sleeve (22) is slidably arranged at one end of the active rod (21), and the sleeve (22) is slidably arranged along its own axis. A through slot (221) is provided in the longitudinal direction of the sleeve (22), the limiting rod (24) is slidably connected to the through slot (221), a first push rod (212) is provided on the end of the active rod (21) away from the sleeve (22), a second push rod (222) is fixedly provided on the sleeve (22), a first mounting hole (1314) is provided on the first clamping seat (1311), the first push rod (212) is slidably provided in the first mounting hole (1314), the first push rod (212) is slidably connected to the bottom of the first clamping fixed block (1313), a second mounting hole (1324) is provided on the second clamping seat (1321), the second push rod (222) is slidably provided in the second mounting hole (1324), and the second push rod (222) is slidably connected to the bottom of the second clamping fixed block (1323).

4. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 2, characterized in that: The stretching assembly (3) includes a stretching motor (31) and a stretching screw (32); a stretching groove (33) is provided on the first mounting seat (13) along its length direction; the second clamping arm (132) is slidably arranged in the stretching groove (33); the stretching screw (32) is rotatably arranged in the stretching groove (33); the stretching screw (32) is threadedly connected to the second clamping arm (132); the stretching motor (31) is fixedly arranged on the first mounting seat (13); and the stretching screw (32) is coaxially connected to the output shaft of the stretching motor (31).

5. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 4, characterized in that: The second mounting seat (14) is also provided with a tension measuring assembly (4) for detecting tension, and the tension measuring assembly (4) includes a push-pull force gauge (41) and an abutting rod (42), wherein the push-pull force gauge (41) is fixedly provided at one end of the second mounting seat (14), and the abutting rod (42) is fixedly provided on the second clamping arm (132). The second mounting seat (14) is also provided with an abutting plate (43) in a sliding manner, and a spring (44) is provided at one end of the abutting plate (43) close to the push-pull force gauge (41), and the other end of the spring (44) is connected to the measuring head of the push-pull force gauge (41), and the abutting rod (42) is connected to one end of the abutting plate (43) away from the spring (44).

6. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 1, characterized in that: The clamping assembly (5) includes a power block (51), a placement seat (152) is provided on the sliding seat (151), a first friction seat (153) and a second friction seat (154) are slidingly provided on the placement seat (152), the power block (51) is rotatably provided at the bottom of the placement seat (152), one end of the power block (51) is hingedly provided with a first power rod (511), and the other end of the first power rod (511) is hinged to the bottom of the first friction seat (153). The power block (51) is hingedly provided with a second power rod (512) at the other end thereof, and one end of the second power rod (512) away from the power block (51) is hingedly connected to the bottom of the second friction seat (154). A power motor (52) is fixedly provided on the placement seat (152), a worm (53) is coaxially provided on the output shaft of the power motor (52), and a worm wheel (54) is coaxially provided on the power block (51), and the worm wheel (54) is meshed with the worm wheel (53).

7. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 1, characterized in that: The reciprocating assembly (6) includes a driving disk (61), a driving shaft (62) coaxially arranged on the driving disk (61), and the driving shaft (62) is rotatably arranged on the frame (1). A connecting rod (63) is hingedly arranged on the driving disk (61), and the other end of the connecting rod (63) is hingedly connected to the sliding seat (151). A second driving motor (64) is fixedly arranged on the frame (1), and a driving gear (65) is coaxially arranged on the output shaft of the second driving motor (64). A driven gear (66) is coaxially arranged on the driving shaft (62), and the driving gear (65) is meshed with the driven gear (66).

8. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 7, characterized in that: The adjustment assembly (7) includes an adjustment rail (71), the adjustment rail (71) is arranged along the radial direction of the drive disk (61), an adjustment block (72) is slidably arranged on the adjustment rail (71), the connecting rod (63) is hinged to the adjustment block (72), an adjustment screw (73) is rotatably arranged inside the adjustment rail (71), the adjustment screw (73) is threadedly connected to the adjustment block (72), a first bevel gear (74) is coaxially arranged on one end of the adjustment screw (73) close to the drive shaft (62), the drive shaft (62) is hollow, an adjustment shaft (75) is coaxially arranged inside the drive shaft (62), a second bevel gear (76) is coaxially arranged on one end of the adjustment shaft (75), the first bevel gear (74) is meshed with the second bevel gear (76), an adjustment motor (77) is fixedly arranged on the frame (1), and the output shaft of the adjustment motor (77) is coaxially connected to the adjustment shaft (75).

9. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 8, characterized in that: A support roller (12) is rotatably provided on the support seat (11), a first wire lifting frame (17) and a second wire lifting frame (18) are provided on the top of the frame (1), the second wire lifting frame (18) is consistent in structure and size with the first wire lifting frame (17), the first wire lifting frame (17) and the second wire lifting frame (18) are respectively located on both sides of the placement seat (152), and one end of the first wire lifting frame (17) is slidably provided on the first mounting seat (13), and the other end is slidably provided on the second mounting seat (14), the first wire lifting frame (17) and the second wire lifting frame (18) are both rotatably provided with a wire lifting roller (19), the nylon yarn is tangent to the top of the wire lifting roller (19), an adjustment slide rail (8) is provided on one side of the first mounting seat (13), a first sliding block (81) is provided on the first wire lifting frame (17), and the first sliding block (81) is slidably provided on the adjustment slide rail (8) A second sliding block (82) is provided on the second wire lifting frame (18), and the second sliding block (82) is slidably provided in the adjustment slide rail (8). A bidirectional screw rod (83) is rotatably provided in the adjustment slide rail (8). The first sliding block (81) is threadedly connected to one end of the bidirectional screw rod (83), and the second sliding block (82) is threadedly connected to the other end of the bidirectional screw rod (83). A third bevel gear (84) is coaxially provided on the bidirectional screw rod (83). A connecting shaft (85) is rotatably provided on the frame (1). A fourth bevel gear (86) is coaxially provided at one end of the connecting shaft (85), and a fifth bevel gear (87) is coaxially provided at the other end. The fourth bevel gear (86) is meshed with the third bevel gear (84). A sixth bevel gear (88) is provided at the other end of the adjusting shaft (75), and the fifth bevel gear (87) is meshed with the sixth bevel gear (88).

10. The device for testing the wear resistance and tensile strength of nylon yarn according to claim 3, characterized in that: A V-shaped shearing knife (26) is provided on one side of each of the first push rod (212) and the second push rod (222).

Citation Information

Patent Citations

  • Wire and cable wear resistance detection device

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