Fabric antistatic performance detection device

By introducing static electricity generation, disappearance and clamping components into the fabric antistatic performance detection device, the problems of static electricity affecting before detection and the fabric charging after detection are solved, and the detection accuracy and subsequent processing status of the fabric are improved.

CN223038071UActive Publication Date: 2025-06-27SHICHUN TEXTILE WEAVING & DYEING IND CO LTD
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Patent Information

Application Number
CN202421824748.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-30
Publication Date
2025-06-27
Estimated Expiration
2034-07-30

AI Technical Summary

Technical Problem

The existing anti-static performance detection device for fabrics does not eliminate static electricity before detection, which may affect the accuracy of the detection results, and the failure to eliminate static electricity after detection may cause the fabric to be charged, affecting subsequent processing, storage or use.

Method used

A fabric antistatic performance detection device is designed, including an electrostatic generation component, an electrostatic disappearance component and a clamping component. The electrostatic generation assembly generates static electricity through the electrostatic rod, the electrostatic disappearing assembly eliminates static electricity through the electrostatic elimination rod, and the clamping assembly fixes the fabric through the clamping rod and anti-slip pad to ensure the accuracy and reliability of the detection.

Benefits of technology

By eliminating static electricity before and after detection, the accuracy of the detection results is improved, the negative impact of static electricity on the fabric is reduced, and the fabric is maintained in good condition after being removed.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a fabric antistatic performance detection device, which comprises a detection box, static electricity generation components, a static electricity disappearance component and a clamping component, the upper side surface of the detection box is provided with a control board I, and the left side surface and the right side surface of the detection box are symmetrically provided with the static electricity generation components. Compared with the prior art, the static eliminating device has the advantages that by arranging the static eliminating assembly, a user can eliminate static in the detection box and on the surface of fabric after detection so as to reduce interference of follow-up static on a detection result, so that the accuracy of next detection is improved, negative effects can be reduced by eliminating static, and the detection efficiency is improved. According to the fabric detection device, the fabric can be kept in a good state after being taken out, the fabric can be clamped and fixed in the detection box by arranging the clamping assembly and matching with an anti-skid pad and the clamping assembly, the fabric is prevented from moving or shaking in the detection process, and the detection accuracy and reliability are guaranteed.
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Description

Technical Field

[0001] The utility model belongs to the field of detection equipment, and particularly relates to a device for detecting the antistatic performance of fabrics. Background Technique

[0002] The device for detecting the antistatic performance of fabrics is a device specifically used to test the antistatic ability of fabrics. Conducting static electricity detection on fabrics can determine the antistatic ability of the fabrics and judge whether they meet relevant standards and requirements, so as to ensure product quality. In actual use, the device for detecting the antistatic performance of fabrics has the problem that if static electricity elimination is not carried out before detection, the static electricity carried by the fabric itself may affect the accuracy of the detection results. The existence of static electricity may interfere with the charge detection sensor, making it unable to accurately measure the true antistatic performance of the fabric. This is because there is a lack of static electricity elimination components. The lack of static electricity elimination components not only causes the above problems, but also there is a problem that if static electricity elimination is not carried out after detection, the fabric may continue to be in a charged state, which may cause inconvenience to subsequent processing, storage or use. Fabrics with static electricity are more likely to adsorb dust and impurities, affecting their quality and appearance. Therefore, a new structure needs to be proposed to solve the above technical problems. Content of the Utility Model

[0003] Aiming at the deficiencies existing in the prior art, the purpose of the utility model is to provide a device for detecting the antistatic performance of fabrics to solve the problems put forward in the above background technique.

[0004] The utility model is realized through the following technical solutions: A device for detecting the antistatic performance of fabrics, comprising: a detection box, a static electricity generating assembly, a static electricity disappearing assembly and a clamping assembly. A control board one is installed on the upper side surface of the detection box. The static electricity generating assemblies are symmetrically installed on the left side surface and the right side surface of the detection box. The clamping assemblies are symmetrically installed on the inner walls of the detection box. One static electricity disappearing assembly is symmetrically installed on the left side surface and the right side surface of the detection box respectively. A detection assembly is installed on the upper side surface inside the detection box. The static electricity generating assembly includes: a driving motor for driving a rotating rod to rotate, and a static electricity rod for generating static electricity. The static electricity disappearing assembly includes: a static electricity eliminating rod for eliminating static electricity, a mounting member and a control board two. The clamping assembly includes: a mounting plate for mounting a clamping rod and a clamping rod.

[0005] As a preferred implementation manner, four support legs are installed on the lower side surface of the detection box. The control board one on the upper side surface of the detection box is electrically connected to the detection assembly and the static electricity generating assembly through wires. One driving motor is symmetrically installed at the center positions of the left side surface and the right side surface of the detection box respectively.

[0006] As a preferred embodiment, a rotating rod is installed on the output shaft of the driving motor through a coupling. The rotating rod penetrates through the surface of the detection box. On the outer surface of one end of the rotating rod away from the detection box, an electrostatic rod is symmetrically installed. One end of the electrostatic rod away from the rotating rod is provided with fluff.

[0007] As a preferred embodiment, the detection component includes: an electric push rod I and a charge sensor. An electric push rod I is installed at the center position of the upper side surface inside the detection box. The lower end of the telescopic rod of the electric push rod I is installed with a charge sensor. An installation part is symmetrically installed on the lower edge of the left surface and the right surface of the detection box respectively.

[0008] As a preferred embodiment, an installation groove is formed inside the installation part. An electric push rod II is installed at the bottom of the installation groove. One end of the electric push rod II away from the installation groove is installed with an electrostatic eliminator rod. A control board II is installed on the surface of the installation part. The control board II is electrically connected to the electrostatic eliminator rod through an electric wire. The electrostatic eliminator rod penetrates through the left and right surfaces of the detection box through the electric push rod II. When in use, after detection, the user can eliminate the static electricity inside the detection box and on the surface of the fabric to reduce the interference of subsequent static electricity on the detection result, thereby improving the accuracy of the next detection. By eliminating static electricity, these negative effects can be reduced, and the good state of the fabric after being taken out can be maintained.

[0009] As a preferred embodiment, an installation plate is symmetrically installed on the left inner wall and the right inner wall inside the detection box. A clamping rod penetrates through the surface of the installation plate. Threads are provided on the surface of the clamping rod. A hand-twisting knob is installed at the upper end of the clamping rod. A clamping plate is installed at one end of the clamping rod away from the hand-twisting knob. A rubber pad is glued to the lower side surface of the clamping plate. An anti-slip pad is installed at the bottom inside the detection box. The material of the anti-slip pad is natural rubber. When in use, the anti-slip pad and the clamping component can be used to clamp and fix the fabric inside the detection box, preventing the fabric from moving or shaking during the detection process, and ensuring the accuracy and reliability of the detection.

[0010] After adopting the above technical solution, the beneficial effect of the present utility model is: by setting an electrostatic disappearance component, the electrostatic disappearance component includes: an electrostatic eliminator rod for eliminating static electricity, an installation part, and a control board II. The electrostatic disappearance components are symmetrically installed on the left surface and the right surface of the detection box respectively. When in use, after detection, the user can eliminate the static electricity inside the detection box and on the surface of the fabric to reduce the interference of subsequent static electricity on the detection result, thereby improving the accuracy of the next detection. By eliminating static electricity, these negative effects can be reduced, and the good state of the fabric after being taken out can be maintained.

[0011] By setting the clamping assembly, a clamping assembly is symmetrically installed on the inner left and right walls of the detection box respectively. The clamping assembly includes: a mounting plate for mounting the clamping rod and the clamping rod. When in use, the fabric can be clamped and fixed inside the detection box by cooperating with the anti-slip pad and the clamping assembly, preventing the fabric from moving or shaking during the detection process and ensuring the accuracy and reliability of the detection. Description of the Drawings

[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0013] Figure 1 It is a schematic diagram of the overall structure of a fabric antistatic performance detection device of the present invention.

[0014] Figure 2 It is a schematic diagram of the static electricity generating assembly of a fabric antistatic performance detection device of the present invention.

[0015] Figure 3 It is a schematic diagram of the static electricity disappearing assembly of a fabric antistatic performance detection device of the present invention.

[0016] Figure 4 It is a schematic diagram of the clamping assembly of a fabric antistatic performance detection device of the present invention.

[0017] In the figure, 100 - detection box, 110 - support leg, 120 - control board one, 130 - anti-slip pad, 140 - electric push rod one, 141 - charge sensor;

[0018] 200 - static electricity generating assembly, 210 - drive motor, 220 - rotating rod, 230 - static electricity bar, 240 - fluff;

[0019] 300 - static electricity disappearing assembly, 310 - mounting part, 320 - control board two, 330 - electric push rod two, 340 - static electricity eliminating bar;

[0020] 400 - clamping assembly, 410 - mounting plate, 420 - clamping rod, 421 - hand-twist knob, 422 - clamping plate. Detailed Embodiments

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0022] Please refer to Figures 1 to 4 , the present invention provides a technical solution: a fabric antistatic performance detection device, including: a detection box 100, an electrostatic generation component 200, an electrostatic disappearance component 300, and a clamping component 400. A control board one 120 is installed on the upper side surface of the detection box 100. The electrostatic generation components 200 are symmetrically installed on the left and right side surfaces of the detection box 100. The clamping components 400 are symmetrically installed on the inner walls of the detection box 100. One electrostatic disappearance component 300 is symmetrically installed on each of the left and right side surfaces of the detection box 100. A detection component is installed on the upper side surface inside the detection box 100. The electrostatic generation component 200 includes: a driving motor 210 for driving the rotation of a rotating rod 220, and an electrostatic rod 230 for generating static electricity. The electrostatic disappearance component 300 includes: an electrostatic elimination rod 340 for eliminating static electricity, a mounting member 310, and a control board two 320. The clamping component 400 includes: a mounting plate 410 for installing a clamping rod 420, and a clamping rod 420.

[0023] Please refer to Figures 1 to 3 , as the first embodiment of the present invention: Four support legs 110 are installed on the lower side surface of the detection box 100. The control board one 120 on the upper side surface of the detection box 100 is electrically connected to the detection component and the electrostatic generation component 200 through wires. One driving motor 210 is symmetrically installed at the center positions of the left and right side surfaces of the detection box 100 respectively;

[0024] The output shaft of the driving motor 210 is installed with a rotating rod 220 through a coupling. The rotating rod 220 penetrates the surface of the detection box 100. One electrostatic rod 230 is symmetrically installed on the outer side surface of the end of the rotating rod 220 away from the detection box 100. A fluff 240 is provided at the end of the electrostatic rod 230 away from the rotating rod 220;

[0025] The detection component includes: an electric push rod one 140 and a charge sensor 141. The electric push rod one 140 is installed at the center position of the upper side surface inside the detection box 100. The lower end of the telescopic rod of the electric push rod one 140 is installed with a charge sensor 141. One mounting member 310 is symmetrically installed at the lower edges of the left and right side surfaces of the detection box 100 respectively;

[0026] An installation groove is formed inside the installation member 310. An electric push rod II 330 is installed at the bottom of the installation groove. One end of the electric push rod II 330 away from the installation groove is installed with an electrostatic eliminator 340. A control board II 320 is installed on the surface of the installation member 310. The control board II 320 is electrically connected to the electrostatic eliminator 340 through an electric wire. The electrostatic eliminator 340 penetrates through the left and right surfaces of the detection box 100 through the electric push rod II 330;

[0027] When in use, the user first prepares the material to be detected, and then fixes it on the upper surface of the anti-slip pad 130 inside the detection box 100 through the clamping assembly 400. Then, at this time, the user can start the electric push rod two 330 through the control board two 320 to make the static eliminator 340 enter the inside of the detection box 100 (the model of the static eliminator 340 is 924IPS). Then, start the static eliminator 340 again through the control board two 320. By eliminating the static electricity inside the detection box 100 and on the surface of the fabric, an initial detection point can be achieved during detection, which can reduce the interference of static electricity on the detection result and improve the accuracy of detection. Then, after the static electricity elimination is completed, the user performs the opposite operation of the above steps to retract the static eliminator 340. Then, at this time, the user can start the drive motor 210 to make the drive motor 210 rotate, and then make the rotating rod 220 drive the static electricity rod 230 to rotate, so that static electricity is generated by the friction between the fluff 240 at one end of the static electricity rod 230 and the fabric. After the static electricity is generated, stop the drive motor 210 to make the two static electricity rods 230 parallel to the bottom inside the detection box 100 to prevent the fluff 240 from contacting the fabric and causing inaccurate detection results. At this time, the user can start the electric push rod two 330 through the control board one 120 to make the telescopic rod of the electric push rod two 330 move, and then make the charge sensor 141 at the lower end of the telescopic rod contact the fabric to detect the antistatic property of the fabric (the model of the charge sensor 141 is CA-YD-128. The charge sensor 141 contains a sensitive element that can sense charges. When a charged object or electric field approaches or passes by the sensor, the sensitive element will be affected. The sensitive element will convert the sensed charge into a measurable signal, and this signal is proportional to the amount of charge. The measured charge signal can be used by computer software to generate a detection result). Then, the charge sensor 141 transmits the detection result to the control board one 120. The user can connect the control board one 120 to a computer device and then view the detection result. After the detection is completed, the user can perform the opposite operation of the above steps to take out the fabric. When taking out, the user can perform the static electricity elimination operation again through the static electricity disappearance assembly 300 to eliminate the static electricity inside the detection box 100 and on the surface of the fabric, so as to reduce the interference of subsequent static electricity on the detection result and improve the accuracy of the next detection. By eliminating the static electricity after detection, these negative impacts can be reduced, and the good state of the fabric after being taken out can be maintained.

[0028] Please refer to Figure 1 、 Figure 4, as the second embodiment of the present utility model: mounting plates 410 are symmetrically installed on the left inner wall and the right inner wall inside the detection box 100. A clamping rod 420 penetrates through the surface of the mounting plate 410. Threads are provided on the surface of the clamping rod 420. A hand-twisting knob 421 is installed at the upper end of the clamping rod 420. A clamping plate 422 is installed at one end of the clamping rod 420 away from the hand-twisting knob 421. A rubber pad is adhesively bonded to the lower surface of the clamping plate 422. An anti-slip pad 130 is installed at the bottom inside the detection box 100. The material of the anti-slip pad 130 is natural rubber;

[0029] When in use, when the fabric is on the upper surface of the anti-slip pad 130 (the width of the fabric to be detected shall not be less than the distance between the two clamping assemblies 400), then at this time, the user can rotate the hand-twisting knob 421 to drive the clamping rod 420 to move downward, so that the clamping plate 422 at the lower end of the clamping rod 420 approaches the surface of the fabric, thereby fixing the fabric through the clamping plate 422. With the cooperation of the anti-slip pad 130 and the clamping assembly 400, the fabric can be clamped and fixed inside the detection box 100 to prevent the fabric from moving or shaking during the detection process, ensuring the accuracy and reliability of the detection.

[0030] The above are only the preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A fabric antistatic performance testing device, comprising: A detection box (100), a static electricity generating component (200), a static electricity eliminating component (300) and a clamping component (400), characterized in that a control panel (120) is installed on the upper surface of the detection box (100), the static electricity generating component (200) is symmetrically installed on the left and right surfaces of the detection box (100), and the clamping component (400) is symmetrically installed on the inner wall of the detection box (100); A static electricity elimination component (300) is symmetrically mounted on the left and right surfaces of the detection box (100), a detection component is mounted on the upper surface inside the detection box (100), and the static electricity generation component (200) comprises: a driving motor (210) for driving the rotating rod (220) to rotate, and a static electricity rod (230) for generating static electricity; The static electricity elimination component (300) comprises: a static electricity elimination rod (340) for eliminating static electricity, a mounting member (310) and a second control board (320), and the clamping component (400) comprises: a mounting plate (410) for mounting a clamping rod (420) and a clamping rod (420).

2. A fabric antistatic performance testing device as claimed in claim 1, characterized in that: Four supporting legs (110) are installed on the lower surface of the detection box (100); a control panel (120) on the upper surface of the detection box (100) is electrically connected to a detection component and an electrostatic generating component (200) via electric wires; and a driving motor (210) is symmetrically installed at the center of the left and right surfaces of the detection box (100).

3. A fabric antistatic performance testing device as claimed in claim 2, characterized in that: The output shaft of the driving motor (210) is mounted with a rotating rod (220) via a coupling, the rotating rod (220) penetrates the surface of the detection box (100), an electrostatic rod (230) is symmetrically mounted on the outer surface of one end of the rotating rod (220) away from the detection box (100), and the end of the electrostatic rod (230) away from the rotating rod (220) is provided with fluff (240).

4. A fabric antistatic performance testing device as claimed in claim 3, characterized in that: The detection assembly comprises: an electric push rod (140) and a charge sensor (141); the electric push rod (140) is installed at the center of the upper surface inside the detection box (100); the charge sensor (141) is installed at the lower end of the telescopic rod of the electric push rod (140); and a mounting piece (310) is symmetrically installed at the lower edge of the left surface and the right surface of the detection box (100).

5. A fabric antistatic performance testing device as claimed in claim 4, characterized in that: The mounting member (310) has a mounting groove inside, and a second electric push rod (330) is installed at the bottom of the mounting groove. A static elimination rod (340) is installed at one end of the second electric push rod (330) away from the mounting groove. A second control board (320) is installed on the surface of the mounting member (310). The second control board (320) is electrically connected to the static elimination rod (340) through an electric wire, and the static elimination rod (340) passes through the left and right surfaces of the detection box (100) through the second electric push rod (330).

6. A fabric antistatic performance testing device as claimed in claim 5, characterized in that: A mounting plate (410) is symmetrically mounted on the left inner wall and the right inner wall of the detection box (100); a clamping rod (420) passes through the surface of the mounting plate (410); a thread is arranged on the surface of the clamping rod (420); a hand-tightening knob (421) is mounted on the upper end of the clamping rod (420); a clamping plate (422) is mounted on the end of the clamping rod (420) away from the hand-tightening knob (421); a rubber pad is glued to the lower surface of the clamping plate (422); and an anti-skid pad (130) is mounted on the bottom of the detection box (100); the material of the anti-skid pad (130) is natural rubber.