Fabric fabric tensile strength detection device

By using a detection assembly consisting of a laser emitter and receiver, combined with a valve-driven moving stage and clamping system, the problem of existing equipment being able to detect only in one direction is solved, enabling the detection of the tensile strength of fabrics in multiple directions, thus improving the comprehensiveness and accuracy of the detection.

CN121898901AInactive Publication Date: 2026-04-21江苏吉聚纺织有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
江苏吉聚纺织有限公司
Filing Date
2025-12-30
Publication Date
2026-04-21
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing mechanical equipment can only perform tensile strength testing in a single direction, either transverse or longitudinal, which is insufficient to meet the diverse needs of tensile strength testing for fabrics.

Method used

The detection assembly, consisting of a laser emitter and receiver, combined with a pneumatically driven moving stage and clamping system, enables the detection of oblique tensile strength of fabrics. The fabric deformation is analyzed by the change in laser intensity, and multi-directional fixation and stretching are achieved by combining a hydraulic system and a clamping system.

Benefits of technology

It enables multi-directional tensile strength testing of fabrics, improving the comprehensiveness and accuracy of the testing, and providing a more comprehensive understanding of the fabric's performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

A fabric stretching degree detection device comprises a detection device, and the detection device comprises a left supporting rod, a left signal transmitter, a left transmitter processor, a laser transmitter and a laser controller; a left signal transmitter is arranged on the upper portion of the left supporting rod, a left transmitter processor is arranged on the side portion of the left signal transmitter, the left signal transmitter is used for transmitting signals, the left transmitter processor is used for processing information processed by the left signal transmitter, and a laser transmitter is arranged on the upper portion of the left signal transmitter. The laser transmitter is used for transmitting laser to a tested fabric, a laser controller is arranged at the upper part of the laser transmitter, and the laser controller is configured to control the laser transmitter; laser emitted by a laser emitter arranged on the upper portion of the left supporting rod acts on a laser receiver arranged on the upper portion of the right supporting rod, the intensity of the received laser is analyzed through a laser analysis processor arranged on the upper portion of the laser receiver, and the deformation quantity of the fabric when the fabric is stretched can be detected.
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Description

Technical Field

[0001] This invention belongs to the field of fabric testing, specifically referring to a fabric stretchability testing device. Background Technology

[0002] Fabrics are flat materials made by weaving, braiding, knitting or other processes of slender materials such as fibers or yarns; fabrics can be divided into clothing textiles, decorative textiles and industrial textiles.

[0003] Before leaving the factory, fabrics undergo a tensile strength test. The tensile strength of the fabric in both the transverse and longitudinal directions is tested to assess its elongation and quality. However, existing machinery can only test the tensile strength in one direction, either transverse or longitudinal, which is insufficient and cannot meet the diverse needs of fabric tensile strength testing. Summary of the Invention

[0004] In order to overcome the shortcomings of the prior art, the present invention provides a fabric stretchability testing device, which at least partially solves the above-mentioned technical problems.

[0005] The technical solution adopted by the present invention is as follows: a fabric stretchability detection device, including a detection component, which is disposed on the left side of the fabric to be detected, including a left support rod, a left signal transmitter, a left transmitter processor, a laser transmitter and a laser controller.

[0006] The left support rod is equipped with a left signal transmitter, and the left transmission processor is used to control the left signal transmitter to transmit signals toward the fabric to be tested.

[0007] The left support rod is also equipped with a laser emitter, and the laser controller is used to control the laser emitter to emit a laser beam toward the fabric to be tested. The laser controller is configured to control the laser emitter.

[0008] A laser receiver is positioned on the right side of the fabric to be inspected, and is used to receive a portion of the laser beam that passes through the fabric to be inspected.

[0009] A laser analysis processor, electrically connected to the laser receiver, is used to analyze and process the beam intensity information received by the laser receiver.

[0010] Furthermore, the detection assembly also includes a right support rod and a right signal transmitter.

[0011] Furthermore, a right signal transmitter is provided on the upper part of the right support rod, and the right signal transmitter is arranged correspondingly to the left signal transmitter. A right transmitter processor is provided on the side of the right signal transmitter, and the right transmitter processor is used to control the right signal transmitter to emit signals toward the fabric to be tested.

[0012] A laser receiver is located on the upper part of the right signal transmitter.

[0013] Furthermore, the fabric stretchability testing device proposed in this invention includes an upper fixing device, which is disposed on the upper part of the testing component and is used to fix and stretch the fabric to be tested.

[0014] Furthermore, the upper fixing device includes a sliding column, a moving platform, an air valve, a second control console, a second gripper, a second control moving block, and a second clamping plate.

[0015] Furthermore, the sliding column is provided with a moving platform inside, and an air valve is provided on the upper part of the moving platform. The moving platform is configured to slide back and forth along the sliding column. A second control console is provided at the lower part of the moving platform. A second control moving block is provided on the side of the second control console. Multiple sets of second grippers are provided at the lower part of the second control console. The second control moving block is used to control the opening and closing of the second grippers. A second clamping plate is provided inside each of the second grippers.

[0016] Furthermore, the upper fixing device also includes a gripper controller, a first console, a first control moving block, a first gripper, a first clamping plate, an anti-slip plate, and a data processor.

[0017] Furthermore, the lower part of the gripper controller is provided with a first console, the side of the first console is provided with a first control moving block, the lower part of the first console is provided with multiple sets of first grippers, the first control moving block is used to control the opening and closing of the first grippers, each first gripper is provided with a first clamping plate inside, each first clamping plate is provided with an anti-slip plate inside, the anti-slip plate is used to strengthen the fixation of the fabric.

[0018] Furthermore, the fabric stretchability testing device proposed in this invention includes a lower fixing device, which is disposed at the lower part of the testing component and is used to fix and stretch the fabric to be tested.

[0019] Furthermore, the lower fixing device includes a placement platform, a third control console, a third gripper, a third clamping plate, a locator, and a test fabric.

[0020] Furthermore, the upper part of the placement platform is provided with multiple sets of third control consoles, each of the third control consoles is provided with a third gripper on its upper part, and each of the third grippers is provided with a third clamping plate inside. The third clamping plate is used to place the test fabric, and the surface of the test fabric is provided with a locator, which is used to record the displacement of the test fabric.

[0021] Furthermore, the lower fixing device also includes a base platform, a hydraulic device, and a hydraulic rod.

[0022] Furthermore, a hydraulic device is provided on the upper part of the base platform, and a hydraulic rod is provided on the upper part of the hydraulic device. The hydraulic rod is located on the lower part of the placement platform, and the hydraulic device is used to control the lifting and lowering of the placement platform.

[0023] Furthermore, the fabric stretchability testing device proposed in this invention includes an operating device, which is disposed outside the testing component and is used to control the operation of the device.

[0024] Furthermore, the operating device includes an operating console base, a central processing unit, a data transmission line, an operating console controller, and a display.

[0025] Furthermore, a central processing unit is provided on the upper part of the control panel base, which is used to summarize and process the received data. Data transmission lines are provided on the side of the control panel base, and a control panel controller is provided on the upper part of the control panel base. A display is provided on the surface of the control panel controller.

[0026] The beneficial effects achieved by the present invention using the above structure are as follows: (1) The laser emitted by the laser emitter set on the upper part of the left support rod acts on the laser receiver on the upper part of the right support rod. The intensity of the received laser is analyzed by the laser analysis processor on the upper part of the laser receiver, and the deformation of the fabric when it is stretched can be detected. (2) The moving stage is driven by the air valve to slide back and forth on the sliding column, which in turn drives the second clamping plate at the bottom of the moving stage to move. When the second clamping plate drives the fabric placed inside it to move laterally, the tensile strength of the fabric in the oblique direction can be tested. Attached Figure Description

[0027] Figure 1 This is a perspective view of a fabric tensile strength testing device proposed in an embodiment of the present invention; Figure 2 This is a front view of a fabric tensile strength testing device according to an embodiment of the present invention; Figure 3 This is a front view of the upper fixing device proposed in an embodiment of the present invention; Figure 4This is a perspective view of the upper fixing device proposed in an embodiment of the present invention; Figure 5 This is a perspective view of the lower fixing device proposed in an embodiment of the present invention; Figure 6 The embodiments of the present invention are proposed Figure 5 Enlarged view of A in the middle; Figure 7 This is a front view of the lower fixing device proposed in an embodiment of the present invention; Figure 8 This is a perspective view of the detection component proposed in an embodiment of the present invention; Figure 9 This is a front view of the detection component proposed in an embodiment of the present invention; Figure 10 This is a perspective view of the operating device proposed in an embodiment of the present invention.

[0028] Among them, 1. upper fixing device, 2. lower fixing device, 3. detection component, 4. operating device; 11. Grip controller; 12. First control console; 13. First control moving block; 14. First gripper; 15. First clamping plate; 16. Anti-slip plate; 17. Left fixed base; 18. Sliding column; 19. Moving stage; 110. Air valve; 111. Right fixed base; 112. Second control console; 113. Second gripper; 114. Second control moving block; 115. Second clamping plate; 116. Data processor; 21. Base platform; 22. Hydraulic unit; 23. Signal receiver; 24. Hydraulic rod; 25. Placement platform; 26. Third control console; 27. Third gripper; 28. Third clamping plate; 29. ​​Positioner; 210. Test fabric; 211. Vertical connecting frame; 212. Positioning strip. 31. Left support platform; 32. Left support rod; 33. Left signal transmitter; 34. Left transmitter processor; 35. Laser transmitter; 36. Laser controller; 37. Right support platform; 38. Right support rod; 39. Right signal transmitter; 310. Right transmitter processor; 311. Laser receiver; 312. Laser analysis processor. 41. Control panel base; 42. Central processing unit; 43. Data transmission cable; 44. Control panel controller; 45. Monitor.

[0029] The accompanying drawings are provided to further illustrate the embodiments of the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation thereof. Detailed Implementation

[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0031] In the description of the embodiments of the present invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the present invention.

[0032] like Figure 1 , Figure 2 , Figure 8 and Figure 9 As shown in the figure, an embodiment of the present invention proposes a fabric tensile strength detection device, including a detection component 3. The detection component 3 includes a left support platform 31, a left support rod 32, a left signal transmitter 33, a left transmitter processor 34, a laser transmitter 35, a laser controller 36, a right support platform 37, a right support rod 38, a right signal transmitter 39, a right transmitter processor 310, a laser receiver 311, and a laser analysis processor 312.

[0033] In this embodiment of the invention, a left support rod 32 is provided on the upper part of the left support platform 31, a left signal transmitter 33 is provided on the upper part of the left support rod 32, a left transmitter processor 34 is provided on the side of the left signal transmitter 33, a laser transmitter 35 is provided on the upper part of the left signal transmitter 33, and a laser controller 36 is provided on the upper part of the laser transmitter 35. The left signal transmitter 33 can detect the displacement change of the positioner 29 set on the test fabric 210. The laser transmitter 35 can emit laser light, and the laser controller 36 can control the intensity of the laser emitted by the left signal transmitter 33. The intensity of the laser emitted by the left signal transmitter 33 can be changed by using different fabric materials. A right support rod 38 is provided on the upper part of the right support platform 37, and a right signal transmitter 39 is provided on the upper part of the right support rod 38. The transmitter 39 is positioned opposite to the left signal transmitter 33. The right signal transmitter 39 can detect the displacement change of the positioner 29 set on the test fabric 210. A right transmitter processor 310 is provided on the side of the right signal transmitter 39. The right transmitter processor 310 can process the signals received by the right signal transmitter 39. The right signal transmitter 39 and the left transmitter processor 34 can detect the displacement of the positioner 29 respectively. A laser receiver 311 is provided on the upper part of the right signal transmitter 39. The laser receiver 311 is positioned opposite to the laser transmitter 35. The laser receiver 311 can receive the laser emitted by the laser transmitter 35. A laser analysis processor 312 is provided on the upper part of the laser receiver 311. The laser analysis processor 312 can process the data received by the laser receiver 311.

[0034] Fabric can block the propagation of laser to a certain extent. This characteristic can be used to detect the degree of stretching of the fabric by detecting the laser propagation rate. When the fabric is stretched, the gaps between the lines of the fabric will become larger. Based on this characteristic, when the fabric is stretched, more laser light can pass through the fabric, and thus the laser receiver 311 receives more laser light. By changing the emission amount of the laser emitter 35 according to the different fabric materials, the detection of different fabric materials can be met.

[0035] When testing fabric, the operator needs to cut the fabric to a specific size, then align the middle of the fabric with the positioning strip 212, and then place the test fabric 210 in the designated position as shown in Figure 1. A positioner 29 is installed in the middle of the test fabric 210. The left signal transmitter 33 on the upper part of the left support rod 32 and the right signal transmitter 39 on the right side can detect the displacement of the positioner 29. That is, when under a specific tension, if the displacement distance of the positioner 29 is less than the reference displacement, it proves that the tensile strength of the fabric is qualified. Conversely, when under a specific pressure, if the displacement distance of the positioner 29 is greater than the reference displacement, it proves that the tensile strength of the fabric is unqualified. By testing the stress of the fabric under a specific tension, the performance of the fabric can be understood more comprehensively.

[0036] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown in the figure, an embodiment of the present invention proposes a fabric tensile testing device, including an upper fixing device 1, which is disposed on the upper part of the testing component 3, and is used to fix and stretch the fabric to be tested.

[0037] The upper fixing device 1 includes a gripper controller 11, a first control console 12, a first control moving block 13, a first gripper 14, a first clamping plate 15, an anti-slip plate 16, a left fixing base 17, a sliding column 18, a moving platform 19, an air valve 110, a right fixing base 111, a second control console 112, a second gripper 113, a second control moving block 114, a second clamping plate 115, and a data processor 116.

[0038] In this embodiment of the invention, a first control console 12 is provided at the lower part of the gripper controller 11, a first control moving block 13 is provided on the side of the first control console 12, and multiple sets of first grippers 14 are provided at the lower part of the first control console 12. The first control moving block 13 can control the opening and closing of the first grippers 14. A first clamping plate 15 is provided inside the first gripper 14. When the first gripper 14 is closed, it will drive the first clamping plate 15 to clamp. An anti-slip plate 16 is provided inside the first clamping plate 15 to prevent the fabric from falling off. A left fixing base 17 is provided on the side of the gripper controller 11. The left fixing base 17 is fixed to one side of the gripper controller 11, and a sliding column is provided on the outside of the left fixing base 17. 18. A movable stage 19 is provided inside the sliding column 18. An air valve 110 is provided on the upper part of the movable stage 19. The air valve 110 compresses gas outside and can drive the movable stage 19 to reciprocate on the sliding column 18. A second control console 112 is provided at the lower part of the movable stage 19. A second control moving block 114 is provided on one side of the second control console 112. Multiple sets of second grippers 113 are provided at the lower part of the second control console 112. The second control moving block 114 can control the opening and closing of the second grippers 113. A second clamping plate 115 is provided inside each second gripper 113. When the second gripper 113 opens and closes, it can drive the second clamping plate 115 to open and close, thereby completing the gripping of the fabric.

[0039] After the fixing device 2 fixes the lower part of the test fabric 210, as follows: Figure 5 As shown, the first clamping plate 15 and the second clamping plate 115 then fix the upper part of the test fabric 210. Traditional testing equipment can only test the tensile strength in the transverse or longitudinal direction when testing fabrics, and cannot test the tensile strength in the diagonal direction. In this embodiment of the invention, after the lower part of the test fabric 210 is fixed, the first clamping plate 15 clamps one end of the test fabric 210, and the second clamping plate 115 clamps the other end of the test fabric 210. Then, the air valve 110 drives the moving stage 19 to move. As the moving stage 19 moves, it drives the lower second clamping plate 115 to move, and finally drives the test fabric 210 placed inside the second clamping plate 115 to move. As the second clamping plate 115 moves, the test fabric 210 can be stretched in the diagonal direction, thereby satisfying the testing of the test fabric 210 under different conditions and improving the test results of the test fabric 210.

[0040] like Figure 1 , Figure 2 , Figure 5 , Figure 6 and Figure 7 As shown in the figure, an embodiment of the present invention proposes a fabric tensile testing device, including a lower fixing device 2, which is disposed at the lower part of the testing component 3, and is used to fix and stretch the fabric to be tested.

[0041] The lower fixing device 2 includes a base platform 21, a hydraulic device 22, a signal receiver 23, a hydraulic rod 24, a placement platform 25, a third control console 26, a third gripper 27, a third clamping plate 28, a positioner 29, a test fabric 210, a vertical connecting frame 211, and a positioning strip 212.

[0042] In this embodiment of the invention, a hydraulic actuator 22 is provided on the upper part of the base platform 21. A signal receiver 23 is provided on one side of the hydraulic actuator 22, which can receive signals transmitted from the hydraulic actuator 22. A vertical connecting frame 211 is provided on the other side of the hydraulic actuator 22. The upper part of the vertical connecting frame 211 is fixedly connected to the gripper controller 11. The vertical connecting frame 211 is used to fix the gripper controller 11. A hydraulic rod 24 is provided on the upper part of the hydraulic actuator 22. A placement platform 25 is provided on the upper part of the hydraulic rod 24. Multiple sets of third control consoles 26 are provided on the upper part of the placement platform 25. A third gripper 27 is provided on the upper part of the third control console 26. The hand 27 has a third clamping plate 28 inside. The third control console 26 can control the opening and closing of the third clamping hand 27, and thus control the opening and closing of the third clamping plate 28. The test fabric 210 is provided inside the third clamping plate 28. Positioners 29 are provided on both sides of the test fabric 210. The positioners 29 can be sensed by the left signal transmitter 33 and the right signal transmitter 39. The movement distance of the positioners 29 can be detected by the left signal transmitter 33 and the right signal transmitter 39. The deformation of the test fabric 210 can be detected more accurately through the positioners 29, so that the final test results are more comprehensive and accurate.

[0043] The hydraulic actuator 22 drives the hydraulic rod 24 to move up and down, which in turn drives the placement platform 25 to move up and down. The placement platform 25 then drives the third control console 26 to move. The movement of the third control console 26 eventually moves the test fabric 210 placed inside the third clamping plate 28. The tensile limit of the test fabric 210 can be detected by the downward stretching of the test fabric 210 by the hydraulic actuator 22. When the test fabric 210 breaks, the hydraulic actuator 22 stops operating and transmits the tension on the test fabric 210 to the signal receiver 23. A positioning strip 212 is provided inside the third control console 26. The positioning strip 212 is located at the center of the top of the placement platform 25. The positioning strip 212 is used to facilitate the placement of the positioner 29.

[0044] like Figure 1 , Figure 2 and Figure 10 As shown in the figure, an embodiment of the present invention proposes a fabric tensile strength testing device, including an operating device 4, which is disposed outside the testing component 3 and is used to control the operation of the device.

[0045] The operating device 4 includes an operating console base 41, a central processing unit 42, a data transmission line 43, an operating console controller 44, and a display 45.

[0046] In this embodiment of the invention, a central processing unit 42 is provided on the upper part of the operating table base 41. The central processing unit 42 is used to process the summarized data. A data transmission line 43 is provided on the side of the operating table base 41. The other side of the data transmission line 43 is connected to the base 21. The data transmission line 43 is used to transmit data. An operating table controller 44 is provided on the upper part of the operating table base 41. A display 45 is provided on the upper part of the operating table controller 44. The data finally received by the data transmission line 43 will be transmitted to the display 45. The display 45 will finally present the data in the form of icons and numbers. The display 45 can also adjust the parameters of the device and adjust different test parameters according to different fabric materials.

[0047] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0048] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention.

[0049] The present invention and its embodiments have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present invention; the actual structure is not limited thereto. In conclusion, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the inventive spirit of the present invention, such designs should fall within the protection scope of the present invention.

Claims

1. A fabric tensile strength testing device, characterized in that... include: The detection component (3), located on the left side of the fabric to be detected, includes a left support rod (32), a left signal transmitter (33), a left transmitter processor (34), a laser transmitter (35), and a laser controller (36). A left signal transmitter (33) is provided on the left support rod (32), and the left transmission processor (34) is used to control the left signal transmitter (33) to transmit a signal toward the fabric to be tested; The left support rod (33) is also provided with a laser emitter (35), and the laser controller (36) is used to control the laser emitter (35) to emit a laser beam toward the fabric to be tested. The laser controller (36) is configured to control the laser emitter (35). A laser receiver (311) is disposed on the right side of the fabric to be tested and is used to receive a portion of the laser beam that passes through the fabric to be tested. The laser analysis processor (312) is electrically connected to the laser receiver (311) and is used to analyze and process the beam intensity information received by the laser receiver (311).

2. The fabric tensile strength testing device according to claim 1, characterized in that: The detection component (3) also includes a right support rod (38) and a right signal transmitter (39), wherein, The upper part of the right support rod (38) is provided with a right signal transmitter (39), which is correspondingly arranged with the left signal transmitter (33). The side of the right signal transmitter (39) is provided with a right transmitter processor (310), which is used to control the right signal transmitter (39) to emit a signal toward the fabric to be tested. The upper part of the right signal transmitter (39) is provided with a laser receiver (311).

3. The fabric tensile strength testing device according to claim 2, characterized in that: It includes an upper fixing device (1), which is located on the upper part of the detection component (3) and is used to fix and stretch the fabric to be detected.

4. The fabric tensile strength testing device according to claim 3, characterized in that: The upper fixing device (1) includes a sliding column (18), a moving platform (19), an air valve (110), a second control console (112), a second gripper (113), a second control moving block (114), and a second clamping plate (115), wherein, The sliding column (18) is provided with a moving platform (19) inside. The upper part of the moving platform (19) is provided with an air valve (110). The moving platform (19) is configured to slide back and forth along the sliding column (18). The lower part of the moving platform (19) is provided with a second control console (112). The side of the second control console (112) is provided with a second control moving block (114). The lower part of the second control console (112) is provided with multiple sets of second grippers (113). The second control moving block (114) is used to control the opening and closing of the second grippers (113). Each second gripper (113) is provided with a second clamping plate (115) inside.

5. The fabric tensile strength testing device according to claim 4, characterized in that: The upper fixing device (1) further includes a gripper controller (11), a first control console (12), a first control moving block (13), a first gripper (14), a first clamping plate (15), an anti-slip plate (16), and a data processor (116), wherein, The gripper controller (11) has a first control console (12) at its lower part, a first control moving block (13) on the side of the first control console (12), and multiple sets of first grippers (14) at the lower part of the first control console (12). The first control moving block (13) is used to control the opening and closing of the first grippers (14). Each first gripper (14) has a first clamping plate (15) inside, and each first clamping plate (15) has an anti-slip plate (16) inside. The anti-slip plate (16) is used to strengthen the fixation of the fabric.

6. The fabric tensile strength testing device according to claim 5, characterized in that: Includes a lower fixing device (2), which is disposed at the lower part of the detection component (3) and is used to fix and stretch the fabric to be detected.

7. The fabric tensile strength testing device according to claim 6, characterized in that: The lower fixing device (2) includes a placement platform (25), a third control console (26), a third gripper (27), a third clamping plate (28), a locator (29), and a test fabric (210), wherein, The upper part of the placement platform (25) is provided with multiple sets of third control consoles (26), and the upper part of each third control console (26) is provided with a third gripper (27). The interior of each third gripper (27) is provided with a third clamping plate (28). The third clamping plate (28) is used to place the test fabric (210). The surface of the test fabric (210) is provided with a locator (29). The locator (29) is used to record the displacement of the test fabric (210).

8. The fabric tensile strength testing device according to claim 7, characterized in that: The lower fixing device (2) further includes a base platform (21), a hydraulic device (22), and a hydraulic rod (24), wherein, The upper part of the base platform (21) is provided with a hydraulic device (22), and the upper part of the hydraulic device (22) is provided with a hydraulic rod (24). The hydraulic rod (24) is located at the lower part of the placement platform (25). The hydraulic device (22) is used to control the lifting and lowering of the placement platform (25).

9. The fabric tensile strength testing device according to claim 8, characterized in that: It includes an operating device (4) disposed outside the detection component (3) and the operating device (4) is used to control the operation of the equipment.

10. The fabric tensile strength testing device according to claim 9, characterized in that: The operating device (4) includes an operating console base (41), a central processing unit (42), a data transmission line (43), an operating console controller (44), and a display (45), wherein, The upper part of the console base (41) is provided with a central processing unit (42), which is used to summarize and process the received data. The side of the console base (41) is provided with a data transmission line (43). The upper part of the console base (41) is provided with a console controller (44), and the surface of the console controller (44) is provided with a display (45).