New material textile strength testing system
The new material textile strength testing system, which employs automated data labeling and diverse working condition simulation, solves the problems of low testing efficiency and inaccurate results in existing equipment, and achieves efficient and accurate textile strength testing.
Patent Information
- Application Number
- CN202511207714.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-27
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2045-08-27
AI Technical Summary
Existing textile strength testing equipment lacks automated data recording and labeling, has a single testing mode, and cannot simulate dynamic pulling conditions, resulting in low testing efficiency and inaccurate test results.
A novel strength testing system for textile materials was designed. It adopts a collaborative design of external mechanism and drive mechanism. The tensile strength is automatically marked by the movement of the reference block in the side groove. The static and dynamic pulling conditions are simulated by the combination of straight and wavy guide grooves.
This eliminates the need for manual data recording, improves testing efficiency, reduces labor intensity, and accurately reflects the mechanical properties of textiles in complex application scenarios, thereby enhancing the effectiveness of test results.
Smart Images

Figure CN120702863B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fabric testing technology, and in particular to a new material textile strength testing system. Background Technology
[0002] In the modern textile industry, with continuous innovation and breakthroughs in textile technology, various emerging materials are constantly being applied to the production process of textile fabrics. For example, graphene composite fiber textiles combine the excellent properties of graphene with fibers, possessing good electrical conductivity, thermal conductivity, and high strength. Aramid 1414 textiles, as high-performance synthetic fiber textiles, have significant advantages such as high strength, high modulus, high temperature resistance, and chemical corrosion resistance, and are widely used in high-end fields such as aerospace and national defense. Algae fiber textiles, using alginic acid extracted from natural seaweed as raw material, exhibit good biocompatibility, antibacterial properties, and moisture absorption and retention. In the actual application scenarios of these emerging material textiles, tensile strength, as a key indicator for measuring their quality and performance, directly determines the applicability and reliability of the product under different working conditions. Therefore, in the production process of these emerging material textiles, tensile testing devices must be used to conduct tensile tests until the sample tears and fails. Quantitative analysis is then used to obtain tensile strength data, thereby enabling comparative evaluation of the strength performance of textiles made from different materials.
[0003] However, there are some shortcomings in the current design of strength testing equipment for new material textiles:
[0004] First, existing testing equipment generally lacks auxiliary structures for identifying test data. When testing the tear resistance of textiles, it is necessary to manually record each set of test data one by one, and then manually complete the data comparison and analysis. This traditional test data processing method is not only inefficient and difficult to meet the rapid testing needs of large-scale industrial production, but also significantly increases the workload and labor intensity of testing personnel.
[0005] Secondly, the existing testing equipment has a relatively simple testing mode. During the testing process, it can only achieve static linear tension on the textile sample, and cannot simulate the dynamic tensile conditions that the textile is subjected to in actual use. Since the testing conditions are very different from the actual use conditions, the test data cannot fully reflect the true mechanical properties of the textile in complex application scenarios, which seriously affects the validity of the test results and the engineering application value. Summary of the Invention
[0006] To address the above problems, one objective of this invention is to overcome these shortcomings, and more specifically, to provide a new material textile strength testing system that eliminates the need for manual recording of test data and facilitates comparison of test data after testing. It also provides a dynamic stretching mode for the fabric, thereby improving the data for testing the tensile strength of the fabric.
[0007] In a first aspect, the present invention provides a new material textile strength testing system, specifically comprising: an installation mechanism; the installation mechanism includes a base plate, the base plate being a rectangular plate structure, and a front groove being provided at the inner front end of the base plate, and a sliding groove being provided at the inner front side of the base plate; the installation mechanism is provided with a clamping mechanism, the sliding frame of the clamping mechanism being slidably installed in the sliding groove, and the telescopic rod in the lifting member inside the sliding frame being slidably engaged with the guide groove in the upper side plate of the base plate; the installation mechanism is provided with an external mechanism, the mounting plate of the external mechanism being located at the front side of the base plate, and the connecting plate at the outer end of the mounting plate being fixed in the front groove by bolts; a driving mechanism is slidably installed on the external mechanism, the driving frame of the driving mechanism being slidably installed in the moving groove in the mounting plate by spring engagement, and the pull rod at the outer end of the driving frame penetrating through the front side of the mounting plate, and the telescopic block inside the driving frame being correspondingly provided with the side groove at the side end of the mounting plate, and the driving frame being fixed to the sliding frame by a connecting rope.
[0008] Preferably, the mounting mechanism includes: positioning holes and pins; the positioning holes are equidistantly located at both ends of the rear side inside the substrate; the pins are inserted into the rear side of the substrate and pass through the positioning holes.
[0009] Preferably, the installation mechanism includes: side grooves, side plates, and guide grooves; the side grooves are symmetrically arranged on both sides of the slide groove; the side plates are inserted and fixed to the upper end of each set of side grooves; the guide grooves are arranged inside the left and right side plates, the guide groove on the right side is straight and the guide groove on the left side is wavy.
[0010] Preferably, the installation mechanism includes: a fixing frame, a pressure plate A, and a bottom rod; the upper end of the fixing frame is provided with a rectangular through groove, and the fixing frame is located on the upper rear side of the base plate; the pressure plate A is movably installed in the rectangular through groove at the upper end of the fixing frame by a screw; the bottom rod is provided on both sides of the bottom of the fixing frame, and the bottom rod is inserted into the positioning hole, and the bottom rod is penetrated by a pin.
[0011] Preferably, the clamping mechanism includes: a sliding frame, a movable slot, and a lifting component; the sliding frame has a rectangular structure; the movable slot is formed on the inner side of the upper end of the sliding frame; and the lifting component is slidably installed in the movable slot.
[0012] Preferably, the clamping mechanism includes: a pressure plate B, a horizontal groove, and a telescopic rod; the pressure plate B is movably mounted on the lifting member via a screw; the horizontal groove is formed inside the lifting member and extends through both sides of the lifting member; the telescopic rod is slidably mounted in the horizontal groove.
[0013] Preferably, the external mechanism includes: a mounting plate, a connecting plate, a side groove, and a reference block; the mounting plate has a rectangular structure; the connecting plate is located at the middle of the rear side of the mounting plate; the side grooves are equidistantly opened at the inner ends of both sides of the mounting plate; and the reference block is slidably installed in the side groove.
[0014] Preferably, the external mechanism includes: a moving groove, a sliding groove, a reset plate, and sliding blocks; the moving groove is located in the middle of the mounting plate; the sliding groove is located on both sides of the upper end of the mounting plate; the reset plate is located at the upper end of the mounting plate, and the two sides of the reset plate extend above the groove; the sliding blocks are symmetrically arranged on both sides of the bottom of the reset plate, and the sliding blocks slide in cooperation with the sliding groove.
[0015] Preferably, the drive mechanism includes: a drive frame, a pull rod, an internal slot, and a telescopic block; the drive frame has a rectangular structure; the pull rod is located at the lower front end of the drive frame; the internal slot is located at the upper interior of the drive frame; the telescopic block is slidably installed in the internal slot by means of a spring, and both ends of the telescopic block have a wedge-shaped structure, and the telescopic block can extend from the lower end of the drive frame.
[0016] Preferably, the drive mechanism includes: a connecting groove, a top block, and a nut; the connecting groove is opened on the front side of the built-in groove drive frame and is connected to the built-in groove; the top block is slidably installed in the built-in groove, and a screw rod passing through the connecting groove is fixedly installed on the front side of the top block; the nut is threaded on the screw rod on the front side of the top block, and the nut is located on the outside of the drive frame.
[0017] This invention provides a new material textile strength testing system, which has the following beneficial effects:
[0018] 1. This invention, through the collaborative design of the external mechanism and the driving mechanism, addresses the issue of varying tensile strengths of different fabrics during the testing process. As the fabric's tensile strength differs, the telescopic block, subjected to the tensile force of the fabric, pushes a reference block within the external mechanism to move within a side groove based on the fabric's strength. The distance the reference block is pushed is positively correlated with the fabric's tensile strength. Testing personnel only need to observe the final position of the reference block within the side groove to intuitively determine the tensile strength of different fabrics. This automated data identification method completely eliminates the tedious process of traditional manual data recording and comparison. Compared to traditional manual data recording and comparison, this invention eliminates the need for manual recording of each test data point, significantly improving data processing efficiency, reducing the workload of testing personnel, and meeting the rapid testing needs of large-scale industrial production.
[0019] 2. This invention employs a combination of straight and wavy guide grooves on the side plates, along with a telescopic rod and lifting mechanism for the clamping system. When the fabric is stretched, the telescopic rod extends into the straight guide groove, causing the sliding frame to move the lifting mechanism forward, simulating the traditional static straight-line pulling condition. Conversely, when the telescopic rod extends into the wavy guide groove, the sliding frame moves the telescopic rod up and down within the wavy guide groove, causing the lifting mechanism to move up and down within the movable groove, thus simulating dynamic up-and-down pulling of the fabric. This diverse simulation of testing conditions can realistically reproduce the complex mechanical states of textiles under irregular external forces in actual applications. The obtained test data comprehensively reflects the true mechanical properties of the fabric under complex application scenarios, significantly improving the effectiveness of the test results and their engineering application value. Attached Figure Description
[0020] The following accompanying drawings will provide a better understanding of the invention and more clearly demonstrate its advantages. The drawings described herein are for illustrative purposes only, representing selected embodiments and not all possible implementations, and are not intended to limit the scope of the invention.
[0021] In the attached diagram:
[0022] Figure 1 A three-dimensional structural schematic diagram according to an embodiment of the present invention is shown.
[0023] Figure 2 A rear-view stereoscopic structural diagram according to an embodiment of the present invention is shown.
[0024] Figure 3 An exploded view is shown according to an embodiment of the present invention.
[0025] Figure 4 A schematic diagram of the connection structure between the external mechanism and the drive mechanism according to an embodiment of the present invention is shown.
[0026] Figure 5 A schematic diagram of the front cross-sectional structure of the mounting mechanism according to an embodiment of the present invention is shown.
[0027] Figure 6 A schematic diagram of the connection structure between the lifting component and the side plate according to an embodiment of the present invention is shown.
[0028] Figure 7 A schematic diagram of the rear cross-sectional structure of the mounting mechanism according to an embodiment of the present invention is shown.
[0029] Figure 8 A cross-sectional structural diagram of the drive mechanism according to an embodiment of the present invention is shown.
[0030] Figure 9 A schematic flowchart according to an embodiment of the present invention is shown.
[0031] List of reference numerals
[0032] 1. Installation mechanism;
[0033] 101. Base plate; 1011. Positioning hole; 1012. Pin; 102. Side groove; 1021. Side plate; 1022. Guide groove; 103. Front groove; 104. Slide groove; 105. Fixing bracket; 1051. Pressure plate A; 1052. Bottom rod;
[0034] 2. Clamping mechanism;
[0035] 201. Sliding frame; 2011. Movable groove; 202. Lifting component; 2021. Pressure plate B; 203. Horizontal groove; 2031. Telescopic rod;
[0036] 3. External mechanisms;
[0037] 301, Mounting plate; 3011, Connecting plate; 302, Side groove; 3021, Reference block; 303, Moving groove; 304, Sliding groove; 305, Reset plate; 3051, Sliding block;
[0038] 4. Drive mechanism;
[0039] 401, Drive frame; 4011, Tie rod; 402, Internal slot; 4021, Telescopic block; 4022, Connecting slot; 403, Top block; 4031, Nut. Detailed Implementation
[0040] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the described embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0041] Example 1: Please refer to Figures 1 to 9 As shown:
[0042] This invention provides a new material textile strength testing system, comprising: a mounting mechanism 1; the mounting mechanism 1 includes a base plate 101, the base plate 101 having a rectangular plate structure, and a front groove 103 provided at the inner front end of the base plate 101, and a sliding groove 104 provided on the inner front side of the base plate 101; the mounting mechanism 1 is provided with a clamping mechanism 2, the sliding frame 201 of the clamping mechanism 2 is slidably installed in the sliding groove 104, and the telescopic rod 2031 in the inner lifting member 202 of the sliding frame 201 can slide and cooperate with the guide groove 1022 in the upper side plate 1021 of the base plate 101; the mounting mechanism 1 is provided with an external connection mechanism. 3. The mounting plate 301 of the external mechanism 3 is located on the front side of the base plate 101, and the connecting plate 3011 at the outer end of the mounting plate 301 is fixed in the front groove 103 by bolts; the driving mechanism 4 is slidably mounted on the external mechanism 3, and the driving frame 401 of the driving mechanism 4 is slidably mounted in the moving groove 303 in the mounting plate 301 by spring cooperation, and the pull rod 4011 at the outer end of the driving frame 401 passes through the front side of the mounting plate 301, and the telescopic block 4021 in the driving frame 401 is correspondingly set with the side groove 302 at the side end of the mounting plate 301, and the driving frame 401 is fixed to the sliding frame 201 by connecting rope.
[0043] In embodiments of the present invention, such as Figure 5 and Figure 7As shown, the mounting mechanism 1 includes: positioning holes 1011 and pins 1012; the positioning holes 1011 are equidistantly formed at both ends of the rear side inside the substrate 101; the pins 1012 are inserted into the rear side of the substrate 101 and pass through the positioning holes 1011; side grooves 102, side plates 1021, and guide grooves 1022; the side grooves 102 are symmetrically arranged on both sides of the slide groove 104; the side plates 1021 are inserted and fixed to the upper end of each set of side grooves 102; the guide grooves 1022 are arranged inside the left and right side plates 1021, the guide groove 1022 on the right side is straight and the guide groove 1022 on the left side is wavy; fixing The mounting bracket 105, pressure plate A1051, and base rod 1052 are included. A rectangular through slot is provided at the upper end of the mounting bracket 105, and the mounting bracket 105 is located on the upper rear side of the base plate 101. The pressure plate A1051 is movably installed in the rectangular through slot at the upper end of the mounting bracket 105 via a screw. The base rod 1052 is located on both sides of the bottom of the mounting bracket 105, and the base rod 1052 is inserted into the positioning hole 1011, with the base rod 1052 being penetrated by a pin 1012. Positioning holes 1011 are provided; by inserting the mounting bracket 105 into the positioning holes 1011 at different positions, the distance between the mounting bracket 105 and the sliding bracket 201 can be adjusted. The spacing is adjusted to accommodate textiles of different lengths; a pin 1012 is provided, which, by passing through the bottom rod 1052, limits the bottom rod 1052 after it is inserted into the positioning hole 1011; a rectangular side groove 102 is provided, through which the side plate 1021 is inserted to the upper sides of the base plate 101; a rectangular side plate 1021 is provided, and straight and wavy guide grooves 1022 are respectively opened inside the side plate 1021, so that when the sliding frame 201 moves, the lifting member 202 can move along the guide groove 1022 on the movable groove 2011; a front groove 103 is provided, through which the connecting... The plate 3011 is inserted and fixed to the front groove 103, allowing the mounting plate 301 to be spliced and installed on the front side of the base plate 101; a sliding groove 104 is provided, allowing the sliding frame 201 to be slidably installed into the base plate 101 through the sliding groove 104; a fixing frame 105 is provided, by extending the fabric into the rectangular through groove at the upper end of the fixing frame 105, rotating the screw at the upper end of the pressure plate A1051, the pressure plate A1051 can fix the rear end of the fabric on the fixing frame 105, thereby facilitating strength testing; a bottom rod 1052 is provided, by inserting the bottom rod 1052 into the positioning hole 1011, the fixing frame 105 can be fixed on the base plate 101.
[0044] As a second embodiment of the present invention, based on embodiment 1, such as Figure 2 and Figure 6As shown, the clamping mechanism 2 includes: a sliding frame 201, a movable slot 2011, and a lifting member 202; the sliding frame 201 has a rectangular structure; the movable slot 2011 is opened on the inner side of the upper end of the sliding frame 201; the lifting member 202 is slidably installed in the movable slot 2011; a pressure plate B2021, a horizontal slot 203, and a telescopic rod 2031; the pressure plate B2021 is movably installed on the lifting member 202 by a screw; the horizontal slot 203 is opened inside the lifting member 202 and passes through both sides of the lifting member 202; the telescopic rod 2031 is slidably installed in the horizontal slot 203.
[0045] This invention slides a sliding frame 201 into a groove 104 in a base plate 101, and slides a lifting member 202 into a movable groove 2011 within the sliding frame 201. The front end of the fabric can be fixed to the lifting member 202 by a pressure plate B2021. When the sliding frame 201 drives the lifting member 202 to stretch the fabric forward by inserting the side end of the telescopic rod 2031 into the wavy guide groove 1022, the lifting member 202 can move within the movable groove 2011 by moving the telescopic rod 2031 within the guide groove 1022, thus simulating the up and down pulling of the fabric. When the telescopic rod 2031 extends into the straight guide groove 1022, it simulates the straight pulling of the fabric.
[0046] As a third embodiment of the present invention, based on embodiment 1, such as Figure 4 and Figure 5 As shown, the external mechanism 3 includes: a mounting plate 301, a connecting plate 3011, a side groove 302, and a reference block 3021; the mounting plate 301 has a rectangular structure; the connecting plate 3011 is located at the middle of the rear side of the mounting plate 301; the side groove 302 is equidistantly opened at the inner ends of both sides of the mounting plate 301; the reference block 3021 is slidably installed in the side groove 302; a moving groove 303, a sliding groove 304, a reset plate 305, and a sliding block 3051; the moving groove 303 is opened at the middle position inside the mounting plate 301; the sliding groove 304 is located on both sides of the upper end of the mounting plate 301; the reset plate 305 is located at the upper end of the mounting plate 301, and the two sides of the reset plate 305 extend above the side groove 302; the sliding blocks 3051 are symmetrically arranged on both sides of the bottom of the reset plate 305, and the sliding blocks 3051 are slidably engaged with the sliding groove 304.
[0047] The present invention provides independent side grooves 302 on both sides of the mounting plate 301, and slides reference blocks 3021 in each set of side grooves 302. Whenever a tensile strength test is performed on a type of fabric, the telescopic block 4021 can push a set of reference blocks 3021 to move. Since the strength of each type of fabric is different, the distance that the reference blocks 3021 are pushed is also different during the test. Finally, by observing which set of fabrics has reference blocks 3021 pushed a greater distance, it can be determined which set of fabrics has a greater tensile strength. After the test is completed, the reset plate 305 is pushed along the sliding groove 304, which allows the reset plate 305 to slide forward and push all reference blocks 3021 to reset.
[0048] As a fourth embodiment of the present invention, based on embodiment 1, such as Figure 8 As shown, the drive mechanism 4 includes: a drive frame 401, a pull rod 4011, an internal slot 402, and a telescopic block 4021; the drive frame 401 has a rectangular structure; the pull rod 4011 is located at the lower front end of the drive frame 401; the internal slot 402 is formed inside the upper part of the drive frame 401; the telescopic block 4021 is slidably installed in the internal slot 402 by means of a spring, and both ends of the telescopic block 4021 have a wedge-shaped structure, and the telescopic block 4021 can extend from the lower end of the drive frame 401. The drive mechanism 4 includes a connecting groove 4022, a top block 403, and a nut 4031. The connecting groove 4022 is opened on the front side of the drive frame 401 with the built-in groove 402, and the connecting groove 4022 is connected to the built-in groove 402. The top block 403 is slidably installed in the built-in groove 402, and a screw rod that passes through the connecting groove 4022 is fixedly installed on the front side of the top block 403. The nut 4031 is threaded on the screw rod on the front side of the top block 403, and the nut 4031 is located on the outside of the drive frame 401.
[0049] This invention involves sliding the drive frame 401 into the moving groove 303. When testing the tensile strength of the fabric, the top block 403 is moved along the connecting groove 4022 to push out a set of telescopic blocks 4021 inside the drive frame 401. The nut 4031 is then tightened to fix the top block 403. During the test, the drive frame 401 moves with the stretching of the fabric, and the extended telescopic blocks 4021 push the reference block 3021 at its lower end to record the maximum movement distance of the reference block 3021 in the side groove 302 when the fabric breaks. By moving the top block 403 to different distances, the telescopic blocks 4021 at different positions can be pushed out, thereby triggering the reference block 3021 at the corresponding position.
[0050] The specific usage and function of this embodiment are as follows:
[0051] In this invention, such as Figures 1 to 9As shown, according to the length of the textile fabric to be tested, the bottom rod 1052 of the fixing frame 105 is inserted into the positioning holes 1011 at different positions on the rear side of the base plate 101, and fixed with the pin 1012 passing through the bottom rod 1052, thereby adjusting the distance between the fixing frame 105 and the sliding frame 201; then, the rear end of the textile fabric is placed in the rectangular through groove at the upper end of the fixing frame 105, and the screw at the upper end of the pressure plate A1051 is rotated to fix the rear end of the fabric. Next, the sliding frame 201 is installed into the sliding groove 104 of the base plate 101, and the front end of the fabric is fixed to the lifting member 202 by the pressure plate B2021. The side end of the telescopic rod 2031 is inserted into the guide groove 1022 of the side plate 1021. If a straight guide groove 1022 is selected, static straight pulling will be simulated. If a wavy guide groove 1022 is selected, dynamic up and down pulling will be simulated. After that, the top of the drive frame 401 is moved along the connecting groove 4022. Block 403 is used to push out the required telescopic block 4021 and tighten the nut 4031 to fix the top block 403. During the test, the pull rod 4011 of the drive frame 401 is pulled, and the drive frame 401 drives the sliding frame 201 to move forward through the connecting rope to stretch the fabric. During this process, the telescopic rod 2031 moves along the guide groove 1022, so that the lifting component 202 moves in the movable groove 2011 to simulate the corresponding working conditions. At the same time, the telescopic block 4021 extended during the movement of the drive frame 401 pushes the reference block 3021 to move. The moving distance of the reference block 3021 in the side groove 302 at different positions corresponds to the tensile strength of each type of fabric. After the test, the moving distance of each reference block 3021 in the side groove 302 is compared to determine the tensile strength of different fabrics. Finally, the reset plate 305 is pushed along the sliding groove 304 to slide forward and reset all the reference blocks 3021 for the next test.
[0052] The following points should be noted in this article:
[0053] 1. The accompanying drawings of the embodiments of the present invention only involve the structures involved in the embodiments of the present invention; other structures can refer to general designs.
[0054] 2. Where there is no conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other to obtain new embodiments.
[0055] The above are merely specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A new material textile strength testing system, including: Mounting mechanism (1); the mounting mechanism (1) includes a base plate (101), side grooves (102), side plates (1021), and guide grooves (1022). The base plate (101) is a rectangular plate structure, and a front groove (103) is provided at the inner front end of the base plate (101), and a sliding groove (104) is provided on the front inner side of the base plate (101). The side grooves (102) are symmetrically arranged on both sides of the sliding groove (104); the side plates (1021) are inserted and fixed at the upper end of each set of side grooves (102); the guide grooves (1022) are arranged inside the left and right side plates (1021), the guide groove (1022) on the right side is straight, and the guide groove (1022) on the left side is straight. 022) is wavy; the mounting mechanism (1) is provided with a clamping mechanism (2), the sliding frame (201) of the clamping mechanism (2) is slidably installed in the sliding groove (104), and the telescopic rod (2031) in the inner lifting member (202) of the sliding frame (201) can slide and cooperate with the guide groove (1022) in the upper side plate (1021) of the substrate (101); the mounting mechanism (1) is provided with an external mechanism (3), the external mechanism (3) includes a mounting plate (301), a connecting plate (3011), a side groove (302), a reference block (3021), a moving groove (303), a sliding groove (304), a reset plate (305) and a sliding block (3051), the mounting plate (301) The mounting plate (301) is rectangular in shape and is located on the front side of the base plate (101). The connecting plate (3011) is located at the middle of the rear side of the mounting plate (301) and is fixed in the front groove (103) by bolts. The side grooves (302) are equidistantly opened on the inner ends of both sides of the mounting plate (301). The reference block (3021) is slidably installed in the side grooves (302). The moving groove (303) is opened in the middle of the interior of the mounting plate (301). The sliding grooves (304) are located on both sides of the upper end of the mounting plate (301). The reset plate (305) is located on the upper end of the mounting plate (301), and the two sides of the reset plate (305) extend into the side grooves (302). Above; the sliding block (3051) is symmetrically arranged on both sides of the bottom of the reset plate (305), and the sliding block (3051) slides with the sliding groove (304); the external mechanism (3) is slidably installed with a drive mechanism (4), the drive mechanism (4) includes a drive frame (401), a pull rod (4011), an internal groove (402), a telescopic block (4021), a connecting groove (4022), a top block (403) and a nut (4031), the drive frame (401) is a rectangular structure, the drive frame (401) is slidably installed in the moving groove (303) in the mounting plate (301) by means of a spring, and the drive frame (401) is fixed to the sliding frame (201) by means of a connecting rope;The pull rod (4011) is located at the lower front end of the drive frame (401), and the pull rod (4011) passes through the front side of the mounting plate (301); the built-in groove (402) is opened at the upper inside of the drive frame (401); the telescopic block (4021) is slidably installed in the built-in groove (402) by means of a spring, and the two ends of the telescopic block (4021) are wedge-shaped structures, and the telescopic block (4021) can extend from the lower end of the drive frame (401), and the telescopic block (4021) is in contact with the side end of the mounting plate (301). A side slot (302) is correspondingly provided; the connecting slot (4022) is opened on the front side of the drive frame (401) of the built-in slot (402), and the connecting slot (4022) is connected to the built-in slot (402); the top block (403) is slidably installed in the built-in slot (402), and a screw that penetrates the connecting slot (4022) is fixedly installed on the front side of the top block (403); the nut (4031) is threadedly installed on the screw on the front side of the top block (403), and the nut (4031) is located on the outside of the drive frame (401).
2. The new material textile strength testing system according to claim 1, characterized in that: The mounting mechanism (1) includes: a positioning hole (1011) and a pin (1012); the positioning hole (1011) is equidistantly opened at both ends of the rear side inside the substrate (101); the pin (1012) is inserted into the rear side of the substrate (101) and the pin (1012) passes through the positioning hole (1011).
3. The new material textile strength testing system according to claim 2, characterized in that: The installation mechanism (1) includes: a fixing frame (105), a pressure plate A (1051), and a bottom rod (1052); the upper end of the fixing frame (105) is provided with a rectangular through groove, and the fixing frame (105) is located on the upper rear side of the base plate (101); the pressure plate A (1051) is movably installed in the rectangular through groove at the upper end of the fixing frame (105) by a screw; the bottom rod (1052) is located on both sides of the bottom of the fixing frame (105), and the bottom rod (1052) is inserted into the positioning hole (1011), and the bottom rod (1052) is penetrated by a pin (1012).
4. The new material textile strength testing system according to claim 1, characterized in that: The clamping mechanism (2) includes: a sliding frame (201), a movable slot (2011), and a lifting component (202); the sliding frame (201) is a rectangular structure; the movable slot (2011) is opened on the inner side of the upper end of the sliding frame (201); the lifting component (202) is slidably installed in the movable slot (2011).
5. The new material textile strength testing system according to claim 4, characterized in that: The clamping mechanism (2) includes: a pressure plate B (2021), a horizontal groove (203), and a telescopic rod (2031); the pressure plate B (2021) is movably installed on the lifting member (202) by a screw; the horizontal groove (203) is opened inside the lifting member (202) and the horizontal groove (203) passes through both sides of the lifting member (202); the telescopic rod (2031) is slidably installed in the horizontal groove (203).
Citation Information
Patent Citations
Textile fabric strength detection device
CN115979797A
Device for detecting strength of new material non-woven fabric
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