Tensile strength detection device for textile fabric

By designing a fabric clamping structure including an electric push rod and a uniform stress beam in a tensile strength detection device for textile fabrics, the problem of uneven stress caused by uneven fabric clamping is solved, and the accuracy of the detection results is improved.

CN222938891UActive Publication Date: 2025-06-03XINJIANG SICHUAN COTTON TEXTILE & GARMENT CO LTD
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Patent Information

Application Number
CN202421839375.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-06-03
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

The total tensile strength detection device of textile fabric is prone to unevenness when clamping the fabric, resulting in uneven stress on the fabric, which in turn affects the accuracy of the detection results.

Method used

A fabric clamping structure including a push rod, a bracket, a clamping plate, a positioning plate, a uniform force beam and an inflatable interface is designed. The fabric is clamped through the push rod and supported by a uniform force beam to ensure that the fabric is subjected to uniform force during the stretching process.

Benefits of technology

Through the support of the uniformly stressed beam, we ensure that the fabric can be subjected to a uniform stress during the inspection process, which improves the accuracy of the detection results and avoids errors caused by uneven stress.

✦ Generated by Eureka AI based on patent content.

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Abstract

The tensile strength detection device comprises a control module, a platform, an installation plate, a sliding groove, a stretching structure, a tension meter, a base and a cloth clamping structure, the platform is installed at the top end of the control module, the installation plate is fixed to the rear portion of the top end of the platform, and the sliding groove is formed in the middle of the front end of the installation plate; the stretching structure is installed in the sliding groove, the rear portion of the tension meter is installed on the stretching structure through the sliding groove, the base is installed in the middle of the top end of the platform, and the cloth clamping structures are installed at the top of the base and the bottom end of the tension meter respectively. According to the total tensile strength detection device for the textile fabric, the problems that after a tensile force is applied to the clamped fabric by the total tensile strength detection device for the textile fabric, the fabric is easily unevenly stressed due to uneven clamping, and the detection result is inaccurate are solved.
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Description

Technical Field

[0001] The utility model relates to the field of textile fabric detection, in particular to a tensile strength detection device for textile fabrics. Background Art

[0002] A total tensile strength detection device for textile fabrics is a device specifically used to measure the mechanical properties of various textiles when subjected to tensile forces. This device can simulate the tensile process under actual use conditions and measure key parameters such as the tensile strength, elongation rate, and breaking strength of the fabric through precise sensors and control systems. These data are crucial for evaluating the quality and applicability of the fabric, especially in fields such as clothing manufacturing, home decoration, and industrial uses.

[0003] After the total tensile strength detection device for textile fabrics applies a tensile force to the clamped fabric, it is prone to uneven clamping of the fabric, resulting in uneven stress on the fabric and inaccurate detection results. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a tensile strength detection device for textile fabrics to solve the above technical problems.

[0005] To achieve the above purpose, the utility model adopts the following technical solutions: A tensile strength detection device for textile fabrics, comprising a control module, a platform, a mounting plate, a chute, a stretching structure, a tensiometer, a base, and a fabric clamping structure. The control module has a platform installed at its top. The mounting plate is fixed to the rear part of the top of the platform. The chute is opened in the middle of the front end of the mounting plate. The stretching structure is installed in the chute. The rear part of the tensiometer is installed on the stretching structure through the chute. The base is installed in the middle of the top of the platform. The fabric clamping structures are respectively installed on the top of the base and the bottom end of the tensiometer.

[0006] Based on the above technical solutions, the fabric clamping structure includes an electric push rod, a bracket, a clamping plate, a positioning plate, a uniformly stressed beam, and an inflation interface. The left and right ends of the electric push rod are respectively fixed to the rear part of the bracket. The clamping plate is installed at the front output end of the electric push rod. The positioning plate is fixed to the middle of the front end of the clamping plate. The uniformly stressed beam is fixed to the front part of the bracket. The inflation interface is connected to the uniformly stressed beam through the bracket.

[0007] Based on the above technical solutions, the uniformly stressed beam includes a beam body, a positioning groove, an air groove, an airbag, and an air hole. The rear end of the beam body has the positioning groove opened, and the positioning groove corresponds to the positioning plate. The air groove is opened in the middle of the front end of the beam body. The airbag is installed at the front end of the beam body through the air groove. The air hole is opened at the left end of the beam body, and the inflation interface is communicated with the air groove through the air hole.

[0008] Compared with the prior art, the utility model has the following advantages: when the material clamping structure of the tensile strength detection device for textile fabrics clamps the fabric with an electric push rod, the uniformly stressed beam supports the clamped fabric, enabling the fabric to be uniformly stressed during the stretching process under the support, so that the detection result is not affected by uneven stress. Description of the Drawings

[0009] Figure 1 It is a schematic diagram of the external structure of the utility model.

[0010] Figure 2 It is a schematic diagram of the fabric clamping structure of the utility model.

[0011] Figure 3 It is a schematic diagram of the uniformly stressed beam of the utility model.

[0012] In the figure: 1. Control module, 2. Platform, 3. Mounting plate, 4. Slide groove, 5. Tensile structure, 6. Tensile meter, 7. Base, 8. Fabric clamping structure, 9. Electric push rod, 10. Bracket, 11. Clamping plate, 12. Positioning plate, 13. Uniformly stressed beam, 14. Inflation interface, 15. Beam body, 16. Positioning groove, 17. Air groove, 18. Airbag, 19. Air hole. Detailed Embodiment

[0013] The following further elaborates on the utility model in detail in conjunction with the drawings and specific embodiments.

[0014] As Figures 1 to 3 shown, a tensile strength detection device for textile fabrics includes a control module 1, a platform 2, a mounting plate 3, a slide groove 4, a tensile structure 5, a tensile meter 6, a base 7, and a fabric clamping structure 8. The control module 1 is installed at the top of the platform 2. The mounting plate 3 is fixed to the rear part of the top of the platform 2. The slide groove 4 is opened in the middle of the front end of the mounting plate 3. The tensile structure 5 is installed in the slide groove 4. The rear part of the tensile meter 6 is installed in the tensile structure 5 through the slide groove 4. The base 7 is installed in the middle of the top of the platform 2. The fabric clamping structures 8 are respectively installed on the top of the base 7 and the bottom end of the tensile meter 6.

[0015] The fabric clamping structure 8 includes an electric push rod 9, a bracket 10, a clamping plate 11, a positioning plate 12, a uniformly stressed beam 13, and an inflation interface 14. The left and right ends of the electric push rod 9 are respectively fixed to the rear part of the bracket 10. The clamping plate 11 is installed at the front output end of the electric push rod 9. The positioning plate 12 is fixed to the middle of the front end of the clamping plate 11. The uniformly stressed beam 13 is fixed to the front part of the bracket 10. The inflation interface 14 is connected to the uniformly stressed beam 13 through the bracket 10.

[0016] The uniformly stressed beam 13 includes a beam body 15, a positioning groove 16, an air groove 17, an airbag 18, and an air hole 19. A positioning groove 16 is formed at the rear end of the beam body 15, and the positioning groove 16 corresponds to the positioning plate 12. The air groove 17 is formed in the middle of the front end of the beam body 15. The airbag 18 is installed at the front end of the beam body 15 through the air groove 17. The air hole 19 is formed at the left end of the beam body 15, and the inflation interface 14 communicates with the air groove 17 through the air hole 19.

[0017] The working principle of the present invention: When in use, the upper and lower ends of the fabric respectively wind around to the rear end through the front end of the upper and lower beam bodies 15. The clamping plate 11 is pushed by the electric push rod 9 to abut against the rear end of the beam body 15 to clamp the fabric, so that the positioning plate 12 stuffs the fabric into the positioning groove 16. Inflate the air groove 17 through the inflation interface 14, and the airbag 18 bulges to support the fabric at the front end of the stressed beam 13. The stretching structure 5 pulls the tensiometer 6 along the sliding groove 4, and the tensiometer 6 drives the upper fabric clamping structure 8 to pull the fabric upward, and the base 7 stabilizes the lower fabric clamping structure 8, so as to realize the tensile strength detection of the fabric under the condition of uniform stress.

[0018] The above is the preferred embodiment of the present invention. For those of ordinary skill in the art, according to the teachings of the present invention, without departing from the principle and spirit of the present invention, the changes, modifications, substitutions and variations made to the implementation manners still fall within the protection scope of the present invention.

Claims

1. A tensile strength testing device for textile fabrics, comprising a control module (1), a platform (2), a mounting plate (3), a slideway (4), a tensile structure (5), a tensile gauge (6), a base (7), and a fabric clamping structure (8), characterized in that: The control module (1) is mounted on the top of a platform (2); the mounting plate (3) is fixed to the rear of the top of the platform (2); the slide groove (4) is opened in the middle of the front end of the mounting plate (3); the tensile structure (5) is mounted on the slide groove (4); the rear of the dynamometer (6) is mounted on the tensile structure (5) through the slide groove (4); the base (7) is mounted on the middle of the top of the platform (2); and the fabric clamping structure (8) is respectively mounted on the top of the base (7) and the bottom of the dynamometer (6).

2. The tensile strength testing device for textile fabrics according to claim 1, characterized in that: The cloth clamping structure (8) comprises an electric push rod (9), a bracket (10), a clamping plate (11), a positioning plate (12), a uniform force beam (13), and an air charging interface (14); the left and right ends of the electric push rod (9) are respectively fixed to the rear of the bracket (10); the clamping plate (11) is installed at the front output end of the electric push rod (9); the positioning plate (12) is fixed to the middle of the front end of the clamping plate (11); the uniform force beam (13) is fixed to the front of the bracket (10); and the air charging interface (14) is connected to the uniform force beam (13) through the bracket (10).

3. The tensile strength testing device for textile fabrics according to claim 2, characterized in that: The uniformly stressed beam (13) comprises a beam body (15), a positioning groove (16), an air groove (17), an air bag (18), and an air hole (19); the rear end of the beam body (15) is opened at the positioning groove (16), and the positioning groove (16) corresponds to the positioning plate (12); the air groove (17) is opened at the middle of the front end of the beam body (15); the air bag (18) is installed at the front end of the beam body (15) through the air groove (17); the air hole (19) is opened at the left end of the beam body (15), and the inflation interface (14) is connected to the air groove (17) through the air hole (19).

Citation Information

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