Performance detection equipment for production of anti-skid high-wear-resistance fabric

By introducing components such as electric push rods, rotating motors and clamping plates into the fabric detection equipment, double detection of wear resistance and tensile properties of the fabric is achieved, solving the problem of single functions of the existing equipment and improving the practicality of the equipment.

CN223259474UActive Publication Date: 2025-08-22江苏桐昆恒欣新材料有限公司
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Patent Information

Application Number
CN202421963517.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-14
Publication Date
2025-08-22
Estimated Expiration
2034-08-14

AI Technical Summary

Technical Problem

The existing fabric wear resistance detection equipment has a single function, which can only detect the wear resistance of the fabric, but cannot detect the stretchability, which reduces the practicality of the equipment.

Method used

A detection component including an electric push rod, a rotating motor, a friction head, a clamping plate and a dual-axis motor is designed. The electric push rod drives the connection seat movement to drive the rotating motor and the friction head contact fabric for wear resistance detection, and the clamping plate and a dual-axis motor drive screw drives the slider and a moving seat movement for tensile detection, so as to achieve double detection of wear resistance and tensile properties of the fabric.

Benefits of technology

It realizes double detection of wear resistance and tensile properties of fabrics, improves the practicality of the equipment, and meets the diverse fabric inspection needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of fabric detection, in particular to performance detection equipment for production of an anti-skid high-wear-resistance fabric, which comprises a fixed base, a protective shell, a rotating door and a detection component, the detection assembly comprises a placement table, an electric push rod, a connecting seat, a rotating motor, a rotating shaft, a friction head, a limiting sliding frame, a sliding block, a double-shaft motor, a screw rod, a moving seat, a clamping plate, a pressing component and a locking component, and the two ends of the fabric are subjected to a tensile test through movement of the two moving seats or the wear resistance of the fabric is detected through friction generated during grinding of the friction head; the equipment can not only test the wear resistance of the fabric, but also selectively detect the stretchability of the fabric, so that the practicability of the equipment is improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of fabric detection, and in particular relates to performance detection equipment for the production of anti-skid and highly wear-resistant fabrics. Background Art

[0002] With the rapid development of social economy, there are more and more types of fabrics, and the requirements for fabric quality are getting higher and higher. After the fabric is produced, some material requirements require the fabric to be tested for wear resistance, but traditional testing equipment is not convenient for testing the wear resistance of fabrics.

[0003] In the prior art, CN215727462U discloses a performance testing device for the production of non-slip and highly wear-resistant yoga mat fabrics. The device comprises a protective housing, a hydraulic cylinder fixedly mounted on the inner side of the upper end of the protective housing, a guide connecting plate mounted on the lower end face of the hydraulic cylinder, six guide posts uniformly slidably connected to the inner side of the guide connecting plate, a movable connecting plate mounted on the lower end face of the guide post, the guide connecting plate and the movable connecting plate connected via six supporting springs, a support frame fixedly mounted on the lower end face of the guide connecting plate, a transmission motor mounted on the inner side of the support frame, a friction block mounted on the outer side of the bottom end of the transmission motor, a fabric tensioning plate mounted on the outer side of the friction block, the fabric tensioning plate and the support frame connected via four connecting rods. The present invention facilitates quick clamping and fixing of the fabric by uniformly stretching and testing the wear resistance of the fabric, and is easy to operate.

[0004] However, the existing fabric wear resistance testing equipment has a single testing function and can only test the wear resistance of the fabric but cannot test the stretchability of the fabric, thereby reducing the practicality of the equipment. Utility Model Content

[0005] The purpose of this utility model is to provide a performance testing equipment for the production of anti-slip and highly wear-resistant fabrics, aiming to solve the problem that the existing fabric wear resistance testing equipment has a single detection function and can only test the wear resistance of the fabric but not the stretchability of the fabric, thereby reducing the practicality of the equipment.

[0006] In order to achieve the above technical objectives, the technical solution adopted by the present invention is as follows: comprising a fixed base, a protective shell and a rotating door, wherein the protective shell is fixedly connected to the fixed base and is located on one side of the protective shell, and the rotating door is arranged on the protective shell and is located on one side of the protective shell.

[0007] Also includes detection components,

[0008] The detection assembly includes a placement table, an electric push rod, a connecting seat, a rotating motor, a rotating shaft, a friction head, a limiting slide, a slider, a dual-axis motor, a screw, a movable seat, a clamping plate, a pressing member and a locking member. The placement table is fixedly connected to the fixed base and is located on one side of the fixed base. The electric push rod is fixedly connected to the protective shell and is located on one side of the protective shell. The connecting seat is connected to the output end of the electric push rod and is located on one side of the electric push rod. The rotating motor is fixedly connected to the connecting seat and is located on one side of the connecting seat. The rotating shaft is connected to the output end of the rotating motor and is located on one side of the rotating motor. The friction head is fixedly connected to the rotating shaft and is located on the rotating shaft near the On one side of the placing table, the limiting slide is fixedly connected to the fixed base and is located on one side of the fixed base, the slider is slidably connected to the limiting slide and is located on one side of the limiting slide, the dual-axis motor is fixedly connected to the fixed base and is located on one side of the fixed base, the screw is connected to the output end of the dual-axis motor and is threadedly connected to the slider and is located on a side of the dual-axis motor close to the slider, the movable seat is fixedly connected to the slider and is located on one side of the slider, the clamping plate is connected to the movable seat through the locking member and is located on one side of the movable seat, the pressing member is arranged on the connecting seat, and the locking member is arranged on the movable seat and connected to the clamping plate.

[0009] In which, the clamping member includes a telescopic rod, a clamping plate and a spring, the telescopic rod is fixedly connected to the connecting seat and is located on one side of the connecting seat; the clamping plate is connected to the telescopic rod and is located on the side of the telescopic rod close to the placement table; the two ends of the spring are respectively fixedly connected to the connecting seat and the clamping plate, and the spring is located on the side of the connecting seat close to the clamping plate.

[0010] Wherein, the locking component includes a sliding frame and a locking bolt, the sliding frame is slidably connected to the movable seat and fixedly connected to the clamping plate, and is located on the side of the movable seat close to the clamping plate; the locking bolt is arranged on the movable seat and abuts against the clamping plate.

[0011] Wherein, the detection component further includes an observation window, which is fixedly connected to the rotating door and is located on one side of the rotating door.

[0012] In which, the detection component also includes a rubber component, which includes a first rubber pad and a second rubber pad. The first rubber pad is fixedly connected to the clamping plate and is located on one side of the clamping plate; the second rubber pad is fixedly connected to the pressing plate and is located on one side of the pressing plate.

[0013] The utility model discloses a performance testing device for the production of anti-slip and high-wear-resistant fabrics. When a wear resistance test is required for the fabric, the driving output of the electric push rod can drive the connecting seat to move along the driving direction of the electric push rod, and the movement of the connecting seat can drive the movement of the rotating motor. The movement of the rotating motor drives the friction head rotating on the rotating shaft to move toward the fabric on the placement table to make contact. The wear resistance of the fabric is tested by the friction when the friction head is polished. Or when a tensile test is required for the fabric, the locking member can drive the clamping plate to move in the moving seat, thereby clamping and fixing the two ends of the fabric placed on the placement table. The driving output of the dual-axis motor can drive the rotation of the screw, so that the rotation of the screw can drive the slider to move left and right in the limit slide, so that the two ends of the fabric are subjected to a tensile test by the movement of the two moving seats, or the wear resistance of the fabric is tested by the friction when the friction head is polished. The device can not only perform a wear resistance test on the fabric, but also selectively perform a tensile test on the fabric, thereby improving the practicality of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] The present invention can be further described by way of non-limiting embodiments given in the accompanying drawings.

[0015] Figure 1 It is a structural schematic diagram of a performance testing device for producing anti-skid and highly wear-resistant fabrics according to the first embodiment of the present utility model.

[0016] Figure 2 It is a structural diagram of the detection component of the first embodiment of the present utility model.

[0017] Figure 3 It is a structural schematic diagram of a performance testing device for producing anti-skid and highly wear-resistant fabrics according to the second embodiment of the present utility model.

[0018] Figure 4 It is a structural schematic diagram of the rubber component of the second embodiment of the present utility model.

[0019] In the figure: 101-fixed base, 102-protective shell, 103-rotating door, 104-placing table, 105-electric push rod, 106 connecting seat, 107-rotating motor, 108-rotating shaft, 109-friction head, 110-limiting slide, 111-slider, 112-dual-axis motor, 113-screw, 114-moving seat, 115-clamping plate, 116-observation window, 117-telescopic rod, 118-pressure plate, 119-spring, 120-sliding frame, 121-locking bolt, 201-first rubber pad, second rubber pad. DETAILED DESCRIPTION

[0020] In order to enable those skilled in the art to better understand the present invention, the technical solution of the present invention is further described below with reference to the accompanying drawings and embodiments.

[0021] Example 1:

[0022] like Figure 1-2 As shown, Figure 1 It is a structural schematic diagram of a performance testing device for producing anti-skid and highly wear-resistant fabrics according to the first embodiment of the present utility model. Figure 2 It is a structural diagram of the detection component of the first embodiment of the present utility model.

[0023] The present invention provides a performance testing device for the production of anti-skid and highly wear-resistant fabrics, comprising a fixed base 101, a protective shell 102, a rotating door 103 and a testing component, wherein the testing component comprises a placement table 104, an electric push rod 105, a connecting seat 106, a rotating motor 107, a rotating shaft 108, a friction head 109, a limiting slide 110, a slider 111, a dual-axis motor 112, a screw 113, a moving seat 114, a clamping plate 115, a pressing member, a locking member and an observation window 116, wherein the pressing member comprises a telescopic rod 117, a pressing plate 118 and a spring 119, and the locking member comprises a sliding frame 120 and a locking bolt 121. The above-mentioned solution solves the problem that the existing fabric wear resistance testing equipment has a single detection function and can only detect the wear resistance of the fabric but not the stretchability of the fabric, thereby reducing the practicality of the equipment. It can be understood that the above-mentioned solution can be used to selectively detect the stretchability of the fabric while being able to detect the wear resistance.

[0024] In this embodiment, the protective shell 102 is fixedly mounted on the fixed base 101 with bolts, and there are two rotating doors 103, which are rotatably connected to the protective shell 102. The shielding protection of the protective shell 102 and the rotating doors 103 can improve the safety during the test.

[0025] Among them, the placement table 104 is fixedly connected to the fixed base 101 and is located on one side of the fixed base 101, the electric push rod 105 is fixedly connected to the protective shell 102 and is located on one side of the protective shell 102, the connecting seat 106 is connected to the output end of the electric push rod 105 and is located on one side of the electric push rod 105, the rotating motor 107 is fixedly connected to the connecting seat 106 and is located on one side of the connecting seat 106, the rotating shaft 108 is connected to the output end of the rotating motor 107 and is located on one side of the rotating motor 107, the friction head 109 is fixedly connected to the rotating shaft 108 and is located on the side of the rotating shaft 108 close to the placement table 104, The limiting slide 110 is fixedly connected to the fixed base 101 and is located on one side of the fixed base 101. The slider 111 is slidably connected to the limiting slide 110 and is located on one side of the limiting slide 110. The dual-axis motor 112 is fixedly connected to the fixed base 101 and is located on one side of the fixed base 101. The screw 113 is connected to the output end of the dual-axis motor 112 and is threadedly connected to the slider 111 and is located on a side of the dual-axis motor 112 close to the slider 111. The moving seat 114 is fixedly connected to the slider 111 and is located on one side of the slider 111. The clamping plate 115 is connected to the moving seat 114 through the locking member and is located on the moving seat 114. On one side of the moving seat 114, the pressing member is arranged on the connecting seat 106, the locking member is arranged on the moving seat 114 and is connected to the clamping plate 115, the placing table 104 is bolted and fixedly mounted on the fixed base 101, the electric push rod 105 is bolted and fixedly mounted on the protective shell 102, the connecting seat 106 is connected to the output end of the electric push rod 105, and the driving output of the electric push rod 105 can drive the connecting seat 106 to move along the driving direction of the electric push rod 105, the rotating motor 107 is bolted and fixedly mounted in the connecting seat 106, and the movement of the connecting seat 106 can drive the movement of the rotating motor 107, the rotating shaft 1 08 is connected to the output end of the rotating motor 107, and the driving output of the rotating motor 107 can drive the rotating shaft 108 to rotate. The friction head 109 is fixedly installed on the rotating shaft 108 with bolts, and the rotation of the rotating shaft 108 can drive the rotation of the friction head 109, so that the movement of the rotating motor 107 drives the friction head 109 rotating on the rotating shaft 108 to move toward the fabric on the placement table 104 for movement and contact, and then the wear resistance of the fabric is detected by the friction when the friction head 109 is polished. There are two limiting slides 110, and the two limiting slides 110 are welded to the fixed base 101. The limiting slide 110 has a limiting slide groove.There are two sliders 111, and the two sliders 111 are slidably connected in the corresponding two limiting slides 110. The limiting slide 110 can connect, support and directionally limit the sliding of the slider 111. The dual-axis motor 112 is bolted and fixed to the fixed base 101. There are two screws 113, and the two screws 113 are threadedly connected to the two output ends of the dual-axis motor 112. The driving output of the dual-axis motor 112 can drive the rotation of the screw 113. The two screws 113 are threadedly connected to the corresponding two sliders 111. The directional limit of the sliding of the slider 111 is performed by the threads of the screw 113 and the limiting slide 110. When the screw 113 is rotated, the slider 111 can be driven to move left and right in the limiting slide 110. There are two movable seats 114, and the two movable seats 114 are welded to the corresponding two sliders 111. The movement of the slider 111 can drive the movement of the two movable seats 114. There are two clamping plates 115, and the two clamping plates 115 are connected to the movable seat 114 through the locking member. The locking member can drive the clamping plate 115 to move in the movable seat 114, thereby clamping and fixing the two ends of the fabric placed on the placement table 104, and performing a tensile test on the fabric through the movement of the movable seat 114. The pressing member is set On the connecting seat 106, the pressing member can prevent the fabric from moving on the placement table 104 during the wear test, and the locking member is provided on the moving seat 114 and connected to the clamping plate 115. The locking member can prevent the fabric from falling out of the moving seat 114 during the tensile test, thereby achieving that when the fabric needs to be subjected to a wear test, the driving output of the electric push rod 105 can drive the connecting seat 106 to move along the driving direction of the electric push rod 105, and the movement of the connecting seat 106 can drive the movement of the rotating motor 107, and the movement of the rotating motor 107 can drive the friction head 109 rotating on the rotating shaft 108 to move toward The fabric on the placement table 104 is moved and contacted, and the wear resistance of the fabric is tested by the friction when the friction head 109 is polished, or when the fabric needs to be tensile tested, the locking member can drive the clamping plate 115 to move in the moving seat 114, thereby clamping and fixing the two ends of the fabric placed on the placement table 104, and the driving output of the dual-axis motor 112 can drive the rotation of the screw 113, so that when the screw 113 rotates, it can drive the slider 111 to move left and right in the limiting slide 110, so that the two ends of the fabric can be tensile tested by the movement of the two moving seats 114 or the wear resistance of the fabric can be tested by the friction when the friction head 109 is polished.The device can not only test the wear resistance of fabrics, but also test the tensile strength of fabrics, thus improving the practicality of the equipment.

[0026] Secondly, the telescopic rod 117 is fixedly connected to the connecting seat 106 and is located on one side of the connecting seat 106; the pressing plate 118 is connected to the telescopic rod 117 and is located on the side of the telescopic rod 117 close to the placing table 104; the two ends of the spring 119 are respectively fixedly connected to the connecting seat 106 and the pressing plate 118, and the spring 119 is located on the side of the connecting seat 106 close to the pressing plate 118. There are two telescopic rods 117, and the two telescopic rods 117 are welded to the connecting seat 106. The pressing plate 118 is connected to the telescopic rods 117 of the plurality of telescopic rods 117. At the retracted end, the movement of the pressure plate 118 can be connected, supported and directionally limited by the extension and retraction of the telescopic rod 117. There are multiple springs 119, and the two ends of the multiple springs 119 are welded to the connecting seat 106 and the pressure plate 118. The deformation reset ability of the spring 119 can enable the connecting seat 106 to drive the pressure plate 118 on the telescopic rod 117 to move downward, so that the pressure plate 118 can abut against the fabric on the placement table 104 for abutment, clamping and fixing, thereby preventing the friction head 109 from moving the fabric on the placement table 104 during the wear test.

[0027] At the same time, the sliding frame 120 is slidably connected to the moving seat 114 and fixedly connected to the clamping plate 115, and is located on the side of the moving seat 114 close to the clamping plate 115; the locking bolt 121 is provided on the moving seat 114 and abuts against the clamping plate 115, and there are multiple sliding frames 120, multiple sliding frames 120 are slidably connected to the corresponding two moving seats 114, and multiple sliding frames 120 are welded to the corresponding two clamping plates 115, and the clamping plate 115 can be adjusted by the sliding frame 120. The sliding on the movable seat 114 is used for connection support and directional limitation. There are multiple locking bolts 121, and multiple locking bolts 121 are set on the corresponding two movable seats 114. By twisting the locking bolts 121, the screw 113 part of the locking bolt 121 can be abutted against the clamping plate 115 in the movable seat 114, and after abutment, the clamping plate 115 can be pushed to move, and then the movement of the clamping plate 115 is coordinated with the movable seat 114 to abut, clamp and fix the area placed in the movable seat 114.

[0028] Finally, the observation window 116 is fixedly connected to the rotating door 103 and is located on one side of the rotating door 103. There are two observation windows 116, and the two observation windows 116 are bonded to the rotating door 103. Through the observation windows 116, the operator can observe the test status of the fabric inside the protective shell 102 while protecting the safety of the protective shell 102.

[0029] When using the performance testing equipment for the production of anti-skid and highly wear-resistant fabrics of this embodiment, when it is necessary to perform a wear resistance test on the fabric, the driving output of the electric push rod 105 can drive the connecting seat 106 to move along the driving direction of the electric push rod 105, and the movement of the connecting seat 106 can drive the movement of the rotating motor 107, and the movement of the rotating motor 107 drives the friction head 109 rotating on the rotating shaft 108 to move toward the fabric on the placing table 104 to make contact, and the wear resistance of the fabric can be tested by the friction when the friction head 109 is polished, or when it is necessary to perform a tensile test on the fabric, the locking member can be used to drive The clamping plate 115 is moved in the movable seat 114, thereby clamping and fixing the two ends of the fabric placed on the placement table 104, and the driving output of the dual-axis motor 112 can drive the rotation of the screw 113, so that when the screw 113 rotates, it can drive the slider 111 to move left and right in the limiting slide 110, so that the two ends of the fabric can be tensile tested by the movement of the two movable seats 114 or the wear resistance of the fabric can be detected by the friction during grinding of the friction head 109, so that the equipment can not only test the wear resistance of the fabric, but also can choose to test the tensile properties of the fabric, thereby improving the practicality of the equipment.

[0030] The second embodiment of the present application is:

[0031] Based on the first embodiment, please refer to Figure 3 and Figure 4 , Figure 3 It is a structural schematic diagram of a performance testing device for producing anti-skid and highly wear-resistant fabrics according to the second embodiment of the present utility model. Figure 4 It is a structural schematic diagram of the rubber component of the second embodiment of the present utility model.

[0032] The utility model provides a performance testing device for producing anti-skid and highly wear-resistant fabrics, which also includes a rubber component. The rubber component includes a first rubber pad 201 and a second rubber pad 202.

[0033] The first rubber pad 201 is fixedly connected to the clamping plate 115 and is located on one side of the clamping plate 115; the second rubber pad 202 is fixedly connected to the pressing plate 118 and is located on one side of the pressing plate 118. There are two first rubber pads 201, and the two first rubber pads 201 are bonded to the corresponding two clamping plates 115. The first rubber pad 201 can increase the friction force of the clamping plate 115 when clamping the fabric on the moving seat 114, thereby preventing the fabric from falling out of the moving seat 114 during the tensile test. The second rubber pad 202 is bonded to the pressing plate 118. The second rubber pad 202 can increase the friction force of the pressing plate 118 when clamping the fabric on the placing table 104, thereby preventing the fabric from moving on the placing table 104 during the wear resistance test.

[0034] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the present invention. Anyone skilled in the art may modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by persons skilled in the art without departing from the spirit and technical principles disclosed herein shall be covered by the claims of the present invention.

Claims

1. A performance testing device for the production of non-slip and highly wear-resistant fabrics, comprising a fixed base, a protective shell, and a rotating door, wherein the protective shell is fixedly connected to the fixed base and is located on one side of the protective shell, and the rotating door is arranged on the protective shell and is located on one side of the protective shell, characterized in that: Also includes detection components, The detection assembly includes a placement table, an electric push rod, a connecting seat, a rotating motor, a rotating shaft, a friction head, a limiting slide, a slider, a dual-axis motor, a screw, a movable seat, a clamping plate, a pressing member and a locking member. The placement table is fixedly connected to the fixed base and is located on one side of the fixed base. The electric push rod is fixedly connected to the protective shell and is located on one side of the protective shell. The connecting seat is connected to the output end of the electric push rod and is located on one side of the electric push rod. The rotating motor is fixedly connected to the connecting seat and is located on one side of the connecting seat. The rotating shaft is connected to the output end of the rotating motor and is located on one side of the rotating motor. The friction head is fixedly connected to the rotating shaft and is located on the rotating shaft near the On one side of the placing table, the limiting slide is fixedly connected to the fixed base and is located on one side of the fixed base, the slider is slidably connected to the limiting slide and is located on one side of the limiting slide, the dual-axis motor is fixedly connected to the fixed base and is located on one side of the fixed base, the screw is connected to the output end of the dual-axis motor and is threadedly connected to the slider and is located on a side of the dual-axis motor close to the slider, the movable seat is fixedly connected to the slider and is located on one side of the slider, the clamping plate is connected to the movable seat through the locking member and is located on one side of the movable seat, the pressing member is arranged on the connecting seat, and the locking member is arranged on the movable seat and connected to the clamping plate.

2. The performance testing equipment for the production of anti-skid and high-wear-resistant fabrics according to claim 1, characterized in that: The clamping member includes a telescopic rod, a clamping plate and a spring. The telescopic rod is fixedly connected to the connecting seat and is located on one side of the connecting seat; the clamping plate is connected to the telescopic rod and is located on a side of the telescopic rod close to the placement table; the two ends of the spring are respectively fixedly connected to the connecting seat and the clamping plate, and the spring is located on a side of the connecting seat close to the clamping plate.

3. The performance testing equipment for the production of anti-skid and high-wear-resistant fabrics according to claim 1, characterized in that: The locking member includes a sliding frame and a locking bolt. The sliding frame is slidably connected to the movable seat and fixedly connected to the clamping plate, and is located on a side of the movable seat close to the clamping plate; the locking bolt is arranged on the movable seat and abuts against the clamping plate.

4. The performance testing equipment for the production of anti-skid and high-wear-resistant fabrics according to claim 1, characterized in that: The detection component further includes an observation window, which is fixedly connected to the rotating door and is located on one side of the rotating door.

5. The performance testing equipment for the production of anti-skid and high-wear-resistant fabrics according to claim 2, characterized in that: The detection assembly also includes a rubber component, which includes a first rubber pad and a second rubber pad. The first rubber pad is fixedly connected to the clamping plate and is located on one side of the clamping plate; the second rubber pad is fixedly connected to the pressing plate and is located on one side of the pressing plate.