Anti-static detection platform for clothing fabric
The automatic flipping and position adjustment of garment fabrics are achieved through a servo motor-driven rotating rod system and multi-stage electric push rods, solving the problem of cumbersome double-sided fabric inspection in existing technologies and improving inspection efficiency and accuracy.
Patent Information
- Application Number
- CN202511316100.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-16
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2045-09-16
AI Technical Summary
Existing technologies for double-sided antistatic testing of clothing fabrics involve cumbersome and inefficient testing procedures. The fabric needs to be flipped over and its position readjusted, which affects the accuracy of the test and may damage the fabric.
The rotating rod system driven by a servo motor, combined with multi-stage electric push rods and friction mechanisms, enables automatic flipping and position adjustment of the fabric after one side is detected. The fabric is fixed and tightened through bevel gear transmission and positioning frame structure.
It enables continuous double-sided fabric inspection, avoids repeated fixing and position adjustment, improves inspection efficiency and accuracy, and protects the fabric surface structure.
Smart Images

Figure CN120820616B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fabric testing technology, specifically to an antistatic testing platform for clothing fabrics. Background Technology
[0002] In the modern textile industry, the performance requirements for fabrics are becoming increasingly diverse and refined. Among them, antistatic performance is receiving more and more attention. With the widespread use of electronic devices and people’s growing awareness of the hazards of static electricity in their daily lives and work, the antistatic effect of fabrics has become a key consideration for those who frequently come into contact with electronic devices, are in flammable and explosive environments, or have high requirements for clothing comfort.
[0003] For example, a fabric antistatic effect testing device with publication number CN120028419A, through the combination of structures such as airbags and nozzles, facilitates the simulation of airflow on the fabric surface. When the slider moves, it drives a baffle to squeeze one of the airbags, compressing the airbag and its internal spring. This causes the internal gas to be discharged through the ventilation channel from the nozzle, generating airflow on the fabric surface. By simulating an airflow environment, the antistatic performance of the fabric can be tested more realistically, thus providing a more comprehensive evaluation of the fabric's antistatic capability in actual use, rather than being limited to test results under static or no-airflow conditions. However, in actual use, when testing the antistatic properties of clothing fabrics, static electricity is generated through friction. During the testing process, due to the fabric... The front and back sides of a fabric may have different electrostatic properties due to differences in fiber arrangement, weaving method, and finishing process, requiring double-sided testing. However, after testing one side, the fabric needs to be flipped and re-fixed, making the testing process cumbersome and inefficient. Adding a flipping structure further complicates this process, requiring not only flipping but also readjusting the testing position after testing one side. Repeated rubbing of the same area can accumulate charge, affecting subsequent test results (e.g., charge is difficult to dissipate completely), thus reducing data accuracy. Furthermore, repeated rubbing of the same area can damage the fabric's fiber structure (e.g., pilling, abrasion). Flipping the fabric also makes adjusting the testing position difficult, presenting certain usability drawbacks.
[0004] Therefore, we propose an antistatic testing platform for clothing fabrics to address the problems mentioned above. Summary of the Invention
[0005] The purpose of this invention is to provide an antistatic testing platform for clothing fabrics, to solve the problems mentioned in the background art, where when testing one side of the fabric, it is necessary to flip the fabric over and re-fix it after testing one side, which is a cumbersome testing process with low efficiency. If a flipping structure is directly added, not only does the fabric need to be flipped over after testing one side, but the testing position of the fabric also needs to be readjusted. This avoids the accumulation of charge due to repeated friction in the same area, which can affect the static state after the first friction and affect the subsequent test results (such as the charge being difficult to completely dissipate), thereby reducing the accuracy of the data. Furthermore, repeated friction in the same area can damage the fiber structure of the fabric surface (such as pilling and abrasion), and it is not convenient to adjust the testing position after the fabric is flipped over.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an antistatic testing platform for clothing fabrics, comprising a testing table, wherein a fixing frame is fixedly installed on one side of the top of the testing table;
[0007] Also includes:
[0008] Fixed blocks are symmetrically installed on both sides of the top of the testing table. Two mounting rods are symmetrically installed between the two fixed blocks, and movable frames are symmetrically slidably connected to the outside of the two mounting rods. A servo motor is fixedly installed on the upper side of one side of the right movable frame. At the same time, a rotating rod is rotatably connected to the upper side of the two movable frames that are close to each other. The output end of the servo motor passes through the left movable frame and is fixedly connected to the right rotating rod.
[0009] A rotating plate is fixedly installed between two rotating rods. A pressure plate is provided above the rotating plate, and a first detection groove is provided through the top right side of the rotating plate, and a second detection groove is provided through the top left side of the pressure plate.
[0010] The push assembly is located on top of the inspection table and on one side of the left movable frame;
[0011] The fixing components are symmetrically arranged on both sides of the pressure plate.
[0012] Preferably, mounting slots are symmetrically provided on both sides of the top of the rotating plate and the pressure plate, and a multi-stage electric push rod is fixedly installed on one side of the top of the fixed frame. A movable frame is fixedly installed on the movable end of the multi-stage electric push rod. A friction mechanism is fixedly installed below the movable frame. Support rods are symmetrically installed inside the mounting slots, and positioning frames are slidably connected to the outside of the two support rods. Rubber plates are fixedly installed on the sides of the two sets of positioning frames that are close to each other.
[0013] By adopting the above technical solution, the positioning frame can be moved.
[0014] Preferably, two sets of fixing rods are symmetrically installed on both sides of the two mounting slots on the top of the rotating plate, and the pressure plate is fixedly connected to the two sets of fixing rods. A fixing plate is fixedly installed on the top of each set of two fixing rods. At the same time, a telescopic spring is sleeved on the outside of the fixing rod above the pressure plate, and the two ends of the telescopic spring are fixedly connected to the fixing plate and the pressure plate respectively. The telescopic spring is in a compressed state.
[0015] By adopting the above technical solution, the fabric can be fixed.
[0016] Preferably, the left end of the left rotating rod passes through the left movable frame and is fixedly installed with a first bevel gear, and the left movable frame is fixedly installed with a positioning block on one side of the first bevel gear, and the positioning block is rotatably connected to a rotating shaft, while a second bevel gear is fixedly installed at one end of the rotating shaft, and the second bevel gear is meshed with the first bevel gear.
[0017] By adopting the above technical solution, the rotation of the rotating rod can drive the rotation of the rotating shaft.
[0018] Preferably, a rotating frame is fixedly installed at the other end of the rotating shaft, and a column block is fixedly installed above the side of the rotating frame away from the rotating shaft. A vertical frame is fixedly installed on the top of the testing platform on the side of the left movable frame, and a U-shaped frame is fixedly installed on one side of the vertical frame. The column block and the U-shaped frame are slidably connected.
[0019] By adopting the above technical solution, the rotation of the rotating frame can drive the movement of the mobile frame.
[0020] Preferably, the fixing component includes a limiting frame fixedly installed on one side of the two fixing plates, and a rotating shaft is rotatably connected to the lower part of the limiting frame. A rotating gear is fixedly installed at one end of the rotating shaft. Meanwhile, a limiting block is fixedly installed on one side of the fixing plate located on the limiting frame. An arc-shaped rod is slidably connected inside the limiting block, and the axis of the arc-shaped rod is on the same straight line as the axis of the rotating rod.
[0021] By adopting the above technical solution, the fabric can be fixed and removed simultaneously by rotating the rod.
[0022] Preferably, a support platform is fixedly installed on one side of the arc-shaped rod, and several teeth are fixedly installed on one side of the support platform. The rotating gear meshes with the teeth. Meanwhile, a mounting block is fixedly installed on one end of the arc-shaped rod, and a return spring is sleeved on the outside of the arc-shaped rod on one side of the mounting block. The two ends of the return spring are fixedly connected to the mounting block and the limiting block, respectively.
[0023] By adopting the above technical solution, it is easy to reset the movable plate after it has rotated.
[0024] Preferably, a push block is fixedly installed at the other end of the arc-shaped rod, and a crossbar is provided below the push block. The crossbar is fixedly connected to the moving frame. At the same time, a cam is fixedly installed on the outer side of the rotating shaft, and a U-shaped frame is fixedly installed on the top of the pressure plate outside the two cams.
[0025] By adopting the above technical solution, the clockwise rotation of the rotating rod allows the limiting block to slide outside the arc-shaped rod.
[0026] Preferably, telescopic frames are symmetrically installed on both sides of the two mounting slots on the top of the pressure plate, and a screw is rotatably connected between the movable sections of the two telescopic frames. One end of the screw passes through one side of the telescopic frame and is fixedly connected to the rotating shaft. At the same time, telescopic connecting frames are fixedly installed on one side of the top of the two positioning frames above, and the screw is threadedly connected to the movable section of the telescopic connecting frame.
[0027] By adopting the above technical solution, the rotation of the rotating shaft can drive the screw to rotate, and the movement of the pressure plate will not be affected by the telescopic frame and telescopic connecting frame.
[0028] Compared with the prior art, the beneficial effects of the present invention are as follows: the antistatic testing platform for clothing fabric makes it easy to flip the fabric after testing one side, allowing for testing of both sides of the fabric, avoiding repeated fixing of the fabric, and the fabric position can be adjusted simultaneously while flipping the fabric, so that the fabric can be directly tested after flipping, avoiding the need for further movement and adjustment steps after flipping, resulting in stronger testing continuity, avoiding antistatic testing in the same area of the same fabric, avoiding affecting the accuracy of subsequent tests, and preventing fabric damage. In addition, the flipping structure facilitates the fixing of the fabric, making it easy to lay the fabric flat while fixing it, and the fabric can be automatically tightened after fixing, which is convenient for subsequent fabric testing.
[0029] 1. When performing antistatic testing on the fabric, the servo motor first drives the rotating rod to rotate clockwise, causing the rotating plate to tilt backward. The fabric is placed between the rotating plate and the pressure plate. Then, the rotating plate rotates back to its original position, fixing the fabric in place. Next, a multi-stage electric push rod is activated to move the movable frame downward. The friction mechanism consists of a friction block and a drive motor. The downward movement of the movable frame allows the friction block to extend into the second detection slot. Activating the drive motor causes the friction block to rotate, generating charge through friction. After testing one side of the fabric, the movable frame is reset, and the charge on the fabric is measured using an antistatic detector. The charge generated after friction is also measured. When testing the other side of the fabric, the servo motor is activated to drive the rotating rod to rotate counterclockwise half a revolution. After the rotating rod rotates half a revolution, the meshing belt of the first and second bevel gears... The rotating shaft rotates, and the transmission ratio between the first bevel gear and the second bevel gear is 2:1. The rotating rod rotates half a turn, causing the rotating shaft to rotate a quarter turn. The rotating shaft rotates at the same time, driving the rotating frame to rotate. The rotating rod rotates half a turn, which can turn the fabric over. At the same time, the rotating frame rotates, causing the column block to slide in the loop frame. The loop frame is fixed on the upright frame. After the rotating frame rotates, it can push the moving frame to slide on the mounting rod through the connection between the column block and the loop frame, so that the fabric can be moved while being turned over, so that the rotating plate rotates to the top of the pressure plate, so that the first detection groove on the rotating plate is aligned with the friction mechanism, so that the friction block on the friction mechanism extends into the first detection groove, and the other side of the fabric can be detected subsequently. After one side of the fabric is detected, it is easy to turn the fabric over, and both sides of the fabric can be detected.
[0030] 2. During fabric inspection, a servo motor drives a rotating rod to rotate clockwise. Simultaneously, the push block engages with the crossbar. As the rotating rod rotates, the arc-shaped rod slides on the limit block, stretching the return spring. This causes the rotating shaft to rotate circumferentially without moving the arc-shaped rod, allowing the rotating gear to mesh. The rotation of the rotating plate then drives the rotating shaft, which in turn causes the cam to rotate. The upward rotation of the cam pushes the U-shaped frame upward, which in turn moves the pressure plate upward, compressing the telescopic spring and causing the two sets of positioning frames to move away from each other. When the rotating plate is tilted, the fabric can be placed between the two sets of positioning frames. Both the rotating plate and the pressure plate are made of insulating material with a smooth surface. After the fabric is placed, it is opened. At this time, the rotating plate is tilted, which facilitates the placement of the fabric. Then, the reset rotating rod rotates, causing the rotating plate to rotate to a horizontal state, which resets the positioning frames. The telescopic spring is in a compressed state, and the two sets of positioning frames can position and clamp the fabric. The fabric can be fixed by rotating the plate. When the rotating plate is tilted, the positioning frames can be opened, which facilitates the placement and fixation of the fabric.
[0031] 3. When fixing the fabric, the rotating rod rotates clockwise, causing the rotating shaft to rotate. This rotation drives the screws to rotate, with opposite spiral lines on the two screws. After the rotating plate rotates, it causes the two telescopic connecting frames to move closer together. Then, the rotating plate resets, causing the two telescopic connecting frames to move away from each other. As the rotating plate rotates, the cam leaves the U-shaped frame. At this point, the rotating plate has not reset, and the fabric is fixed. Then, the rotating plate resets again, causing the two telescopic connecting frames to move away from each other, thus separating the two sets of positioning frames. This allows the fixed fabric to be stretched to both sides, automatically tightening the fabric for subsequent inspection. Attached Figure Description
[0032] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0033] Figure 2 This is a schematic diagram of the overall structure of the invention from another perspective;
[0034] Figure 3 This is a partial structural diagram of the present invention;
[0035] Figure 4 This is a schematic diagram of a partial explosion structure of the present invention;
[0036] Figure 5 This is a schematic diagram of the exploded structure of the pushing component of the present invention;
[0037] Figure 6 This is a schematic diagram of the fixed component structure of the present invention;
[0038] Figure 7 This is a partial structural diagram of the fixing component of the present invention;
[0039] Figure 8 For the present invention Figure 7 Enlarged structural diagram of region A in the middle;
[0040] Figure 9 For the present invention Figure 6 A magnified structural diagram of region B in the middle.
[0041] In the diagram: 1. Testing table; 101. Fixed frame; 102. Multi-stage electric push rod; 103. Movable frame; 104. Friction mechanism; 105. Fixed block; 106. Mounting rod; 107. Moving frame; 108. Servo motor; 109. Rotating plate; 110. Rotating rod; 111. Pressure plate; 112. First testing slot; 113. Second testing slot; 114. Mounting slot; 115. Positioning frame; 116. Support rod; 117. Fixed rod; 118. Fixed plate; 119. Telescopic spring; 2. Pushing assembly; 201. First bevel gear; 2 02. Positioning block; 203. Rotating shaft; 204. Second bevel gear; 205. Rotating frame; 206. Column block; 207. Stand; 208. U-shaped frame; 3. Fixing assembly; 301. Limiting frame; 302. Rotating shaft; 303. Rotating gear; 304. Limiting block; 305. Arc rod; 306. Return spring; 307. Mounting block; 308. Support platform; 309. Tooth; 310. Push block; 311. Crossbar; 312. Cam; 313. U-shaped frame; 314. Telescopic frame; 315. Screw; 316. Telescopic connecting frame. Detailed Implementation
[0042] 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 embodiments of the present invention, and not all embodiments. Based on the 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.
[0043] Please see Figures 1-9 The present invention provides a technical solution: an antistatic testing platform for clothing fabrics, including a testing table 1, and a fixing frame 101 is fixedly installed on one side of the top of the testing table 1;
[0044] Also includes:
[0045] Fixed blocks 105 are symmetrically installed on the top two sides of the detection table 1. Two mounting rods 106 are symmetrically installed between the two fixed blocks 105. The two mounting rods 106 are symmetrically slidably connected to the outside of the two mounting rods 106. A servo motor 108 is fixedly installed on the upper side of one side of the right moving frame 107. At the same time, a rotating rod 110 is rotatably connected to the upper side of the two moving frames 107 that are close to each other. The output end of the servo motor 108 passes through the left moving frame 107 and is fixedly connected to the right rotating rod 110.
[0046] A rotating plate 109 is fixedly installed between two rotating rods 110. A pressure plate 111 is provided above the rotating plate 109. A first detection groove 112 is provided through the top right side of the rotating plate 109, and a second detection groove 113 is provided through the top left side of the pressure plate 111.
[0047] The push assembly 2 is set on top of the detection table 1 and located on one side of the left movable frame 107;
[0048] The rotating plate 109 and the pressure plate 111 are symmetrically provided with mounting grooves 114 on both sides of the top. A multi-stage electric push rod 102 is fixedly installed on one side of the top of the fixed frame 101. A movable frame 103 is fixedly installed on the movable end of the multi-stage electric push rod 102. A friction mechanism 104 is fixedly installed below the movable frame 103. Support rods 116 are symmetrically installed inside the mounting groove 114. Positioning frames 115 are slidably connected to the outside of the two support rods 116. Rubber plates are fixedly installed on the side of the two sets of positioning frames 115 that are close to each other.
[0049] Two sets of fixing rods 117 are symmetrically installed on both sides of the two mounting slots 114 at the top of the rotating plate 109, and the pressure plate 111 is fixedly connected to the two sets of fixing rods 117. A fixing plate 118 is fixedly installed on the top of each set of two fixing rods 117. At the same time, a telescopic spring 119 is sleeved on the outside of the fixing rod 117 above the pressure plate 111. The two ends of the telescopic spring 119 are fixedly connected to the fixing plate 118 and the pressure plate 111 respectively, and the telescopic spring 119 is in a compressed state.
[0050] The left end of the left rotating rod 110 passes through the left moving frame 107 and is fixedly installed with the first bevel gear 201. The left moving frame 107 is fixedly installed with a positioning block 202 on one side of the first bevel gear 201. The positioning block 202 is rotatably connected to the inside of the rotating shaft 203. At the same time, a second bevel gear 204 is fixedly installed at one end of the rotating shaft 203, and the second bevel gear 204 meshes with the first bevel gear 201.
[0051] A rotating frame 205 is fixedly installed at the other end of the rotating shaft 203, and a column block 206 is fixedly installed on the side of the rotating frame 205 away from the rotating shaft 203. A stand 207 is fixedly installed on the top of the testing table 1 on the side of the left movable frame 107, and a spiral frame 208 is fixedly installed on one side of the stand 207. The column block 206 and the spiral frame 208 are slidably connected.
[0052] Example 1: As Figures 1-5As shown, when performing antistatic testing on the fabric, the servo motor 108 first drives the rotating rod 110 to rotate clockwise, causing the rotating plate 109 to tilt backward and place the fabric between the rotating plate 109 and the pressure plate 111. Then, the rotating plate 109 is rotated back to its original position, thus fixing the fabric. Next, the multi-stage electric push rod 102 is activated to move the movable frame 103 downward. The friction mechanism 104 consists of a friction block and a drive motor. The downward movement of the movable frame 103 allows the friction block to extend into the second detection slot 113. Activating the drive motor causes the friction block to rotate, generating charge through friction. After testing one side of the fabric, the movable frame 103 is reset, and the charge on the fabric is measured using an electrostatic detector. The charge generated after friction is also measured. When testing the other side of the fabric, the servo motor 108 is activated to drive the rotating rod 110 to rotate counterclockwise by half a revolution. After the rotating rod 110 rotates half a revolution, the meshing of the first bevel gear 201 and the second bevel gear 204 drives the rotating shaft 203 to rotate. The transmission ratio between the first bevel gear 201 and the second bevel gear 204 is 2:1. The rotation of the rotating rod 110 half a turn causes the rotating shaft 203 to rotate a quarter turn. While the rotating shaft 203 rotates, it drives the rotating frame 205 to rotate. The rotation of the rotating rod 110 half a turn can turn the fabric over. While the fabric is turned over, the rotating frame 205 rotates, causing the column block 206 to slide in the loop frame 208. The loop frame 208 is fixed on the upright frame 207. After the rotating frame 205 rotates, it can push the moving frame 107 to slide on the mounting rod 106 through the connection between the column block 206 and the loop frame 208. This allows the fabric to be turned over and moved, causing the rotating plate 109 to rotate above the pressure plate 111. This aligns the first detection groove 112 above the rotating plate 109 with the friction mechanism 104, allowing the friction block on the friction mechanism 104 to extend into the first detection groove 112. Subsequently, the other side of the fabric can be detected. After one side of the fabric is detected, it is easy to turn the fabric over. Both sides of the fabric can be detected.
[0053] Fixing components 3 are symmetrically arranged on both sides of the pressure plate 111;
[0054] The fixing component 3 includes a limiting frame 301 fixedly installed on one side of the two fixing plates 118, and a rotating shaft 302 is rotatably connected to the lower part of the limiting frame 301. A rotating gear 303 is fixedly installed at one end of the rotating shaft 302. Meanwhile, a limiting block 304 is fixedly installed on one side of the fixing plate 118 located on the limiting frame 301. An arc-shaped rod 305 is slidably connected inside the limiting block 304, and the axis of the arc-shaped rod 305 is on the same straight line as the axis of the rotating rod 110.
[0055] A support platform 308 is fixedly installed on one side of the arc-shaped rod 305, and a number of teeth 309 are fixedly installed on one side of the support platform 308. The rotating gear 303 meshes with the teeth 309. Meanwhile, a mounting block 307 is fixedly installed on one end of the arc-shaped rod 305, and a return spring 306 is sleeved on the outside of the arc-shaped rod 305 on one side of the mounting block 307. The two ends of the return spring 306 are fixedly connected to the mounting block 307 and the limiting block 304, respectively.
[0056] A push block 310 is fixedly installed at the other end of the arc-shaped rod 305, and a crossbar 311 is provided below the push block 310. The crossbar 311 is fixedly connected to the moving frame 107. Meanwhile, a cam 312 is fixedly installed on the outer side of the rotating shaft 302, and a U-shaped frame 313 is fixedly installed on the top of the pressure plate 111 outside the two cams 312.
[0057] Example 2: Figures 1-4 and Figures 6-9 As shown, during fabric inspection, the servo motor 108 drives the rotating rod 110 to rotate clockwise. Simultaneously, the push block 310 engages with the crossbar 311. As the rotating rod 110 rotates, the arc-shaped rod 305 slides on the limiting block 304, stretching the return spring 306. This causes the rotating shaft 302 to rotate circumferentially. The arc-shaped rod 305 remains stationary, allowing the rotating gear 303 to mesh with the teeth 309. The rotation of the rotating plate 109 then drives the rotating shaft 302 to rotate. The rotation of the rotating shaft 302 causes the cam 312 to rotate. The upward rotation of the cam 312 pushes the U-shaped frame 313 upward, which in turn moves the pressure plate 111 upward, compressing the telescopic spring 119. The two sets of positioning frames 115 are far apart, and the rotating plate 109 is tilted at this time. The fabric can be placed between the two sets of positioning frames 115. The rotating plate 109 and the pressure plate 111 are both made of insulating material with a relatively smooth surface. After the fabric is placed, the plate is opened. At this time, the rotating plate 109 is tilted, which facilitates the placement of the fabric. Then, the reset rotating rod 110 rotates, causing the rotating plate 109 to rotate to a horizontal state, so that the positioning frame 115 is reset. The telescopic spring 119 is compressed. The two sets of positioning frames 115 can position and clamp the fabric. The fabric can be fixed by rotating the plate 109. The positioning frame 115 can be opened when the rotating plate 109 is tilted, which facilitates the placement and fixation of the fabric.
[0058] The top of the pressure plate 111 is symmetrically equipped with telescopic frames 314 on both sides of the two mounting slots 114, and the movable sections of the two telescopic frames 314 are rotatably connected by screws 315. One end of the screws 315 passes through one side of the telescopic frame 314 and is fixedly connected to the rotating shaft 302. At the same time, telescopic connecting frames 316 are fixedly installed on one side of the top of the two positioning frames 115 above, and the screws 315 are threadedly connected to the movable section of the telescopic connecting frame 316.
[0059] Example 3: Figures 6-9 As shown, when fixing the fabric, the rotating rod 110 rotates clockwise, causing the rotating shaft 302 to rotate. At this time, the rotation of the rotating shaft 302 can drive the screw 315 to rotate. The spiral lines on the two screws 315 are opposite. After the rotating plate 109 rotates, it can drive the two telescopic connecting frames 316 to move closer together. Then, the rotating plate 109 resets, which can cause the two telescopic connecting frames 316 to move away from each other. As the rotating plate 109 rotates, the cam 312 leaves the U-shaped frame 313. At this time, the rotating plate 109 has not reset, and the fabric is fixed. Then, the rotating plate 109 continues to reset, causing the two telescopic connecting frames 316 to move away from each other, so that the two sets of positioning frames 115 are far apart. This allows the fixed fabric to be stretched to both sides, which can automatically tighten the fabric and facilitate subsequent inspection work.
[0060] Working principle: When using the antistatic testing platform for this garment fabric, firstly, according to... Figures 1-9As shown, when performing antistatic testing on the fabric, the servo motor 108 first drives the rotating rod 110 to rotate clockwise, causing the rotating plate 109 to tilt backward and place the fabric between the rotating plate 109 and the pressure plate 111. Then, the rotating plate 109 is rotated back to its original position, thus fixing the fabric. Next, the multi-stage electric push rod 102 is activated to move the movable frame 103 downward. The friction mechanism 104 consists of a friction block and a drive motor. The downward movement of the movable frame 103 allows the friction block to extend into the second detection groove 113. Activating the drive motor causes the friction block to rotate, generating charge through friction. After testing one side of the fabric, the movable frame 103 is reset, and the charge on the fabric is measured using an electrostatic detector. The charge generated after friction is also measured. When testing the other side of the fabric, the servo motor 108 is activated to drive the rotating rod 110 to rotate counterclockwise by half a revolution. After the rotating rod 110 rotates half a revolution, the first bevel gear 201 and the second bevel gear 202... The meshing of 04 drives the rotating shaft 203 to rotate. The transmission ratio between the first bevel gear 201 and the second bevel gear 204 is 2:1. The rotating rod 110 rotates half a turn, causing the rotating shaft 203 to rotate a quarter turn. At the same time, the rotating shaft 203 rotates, driving the rotating frame 205 to rotate. The rotating rod 110 rotates half a turn, which can turn the fabric over. At the same time, the rotating frame 205 rotates, causing the column block 206 to slide in the loop frame 208. The loop frame 208 is fixed on the upright frame 207. After the rotating frame 205 rotates, the connection between the column block 206 and the loop frame 208 can push the moving frame 107 to slide on the mounting rod 106, so that the fabric can be moved while being turned over, causing the rotating plate 109 to rotate above the pressure plate 111, so that the first detection groove 112 above the rotating plate 109 is aligned with the friction mechanism 104, so that the friction block on the friction mechanism 104 extends into the first detection groove 112, and the other side of the fabric can be detected subsequently.
[0061] During fabric inspection, the servo motor 108 drives the rotating rod 110 to rotate clockwise. Simultaneously, the push block 310 engages with the crossbar 311. As the rotating rod 110 rotates, the arc-shaped rod 305 slides on the limit block 304, stretching the return spring 306. This allows the rotating shaft 302 to rotate circumferentially. The arc-shaped rod 305 remains stationary, causing the rotating gear 303 to mesh with the teeth 309. This, in turn, drives the rotating shaft 302 to rotate via the rotation of the rotating plate 109. After the movement, cam 312 rotates. The upward rotation of cam 312 pushes the U-shaped frame 313 upward, which in turn moves the pressure plate 111 upward, compressing the telescopic spring 119. This causes the two sets of positioning frames 115 to move away from each other, and at this time, the rotating plate 109 is in an inclined state, allowing the fabric to be placed between the two sets of positioning frames 115. Both the rotating plate 109 and the pressure plate 111 are made of insulating material with a relatively smooth surface. After the fabric is placed, it is opened. At this time, the rotating plate 109 is in an inclined state, facilitating the placement of the fabric. Then, the reset rotating rod 110 rotates. This causes the rotating plate 109 to rotate to a horizontal position, resetting the positioning frame 115. The telescopic spring 119 is compressed, and the two sets of positioning frames 115 can position and clamp the fabric. The fabric can be fixed by rotating the rotating plate 109. When the rotating plate 109 is tilted, the positioning frames 115 can open. When fixing the fabric, the rotating rod 110 rotates clockwise, causing the rotating shaft 302 to rotate. The rotation of the rotating shaft 302 drives the screws 315 to rotate, and the two screws 315 spiral... Conversely, after the rotating plate 109 rotates, it can drive the two telescopic connecting frames 316 to move closer together. Then, the rotating plate 109 resets, which can cause the two telescopic connecting frames 316 to move away from each other. As the rotating plate 109 rotates, the cam 312 leaves the U-shaped frame 313. At this time, the rotating plate 109 has not reset, and the fabric is fixed. Then, the rotating plate 109 continues to reset, and the two telescopic connecting frames 316 move away from each other, so that the two sets of positioning frames 115 move away from each other. This allows the fabric to be stretched to both sides after it is fixed, and the fabric can be automatically tightened.
[0062] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0063] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An antistatic testing platform for clothing fabrics, comprising a testing table (1), wherein a fixing frame (101) is fixedly installed on one side of the top of the testing table (1). Its features are, Also includes: Fixed blocks (105) are symmetrically installed on the top two sides of the detection table (1). Two mounting rods (106) are symmetrically installed between the two fixed blocks (105). The two mounting rods (106) are symmetrically slidably connected to the outside of the two mounting rods (106). A servo motor (108) is fixedly installed on the upper side of one side of the right moving frame (107). At the same time, a rotating rod (110) is rotatably connected on the upper side of the two moving frames (107) that are close to each other. The output end of the servo motor (108) passes through the left moving frame (107) and is fixedly connected to the right rotating rod (110). A rotating plate (109) is fixedly installed between two rotating rods (110). A pressure plate (111) is provided above the rotating plate (109). A first detection groove (112) is provided through the top right side of the rotating plate (109), and a second detection groove (113) is provided through the top left side of the pressure plate (111). The push assembly (2) is set on top of the inspection table (1) and located on one side of the left movable frame (107); The fixing components (3) are symmetrically arranged on both sides of the pressure plate (111); The left end of the rotating rod (110) on the left passes through the left movable frame (107) and is fixedly installed with a first bevel gear (201). The left movable frame (107) is fixedly installed with a positioning block (202) on one side of the first bevel gear (201). The positioning block (202) is rotatably connected to a rotating shaft (203). At the same time, a second bevel gear (204) is fixedly installed at one end of the rotating shaft (203). The second bevel gear (204) meshes with the first bevel gear (201). A rotating frame (205) is fixedly installed at the other end of the rotating shaft (203), and a column block (206) is fixedly installed above the side of the rotating frame (205) away from the rotating shaft (203). A stand (207) is fixedly installed on the top of the testing table (1) on one side of the left movable frame (107), and a spiral frame (208) is fixedly installed on one side of the stand (207). The column block (206) is slidably connected to the spiral frame (208).
2. The antistatic testing platform for clothing fabrics according to claim 1, characterized in that: The rotating plate (109) and the pressure plate (111) are symmetrically provided with mounting grooves (114) on both sides of the top. A multi-stage electric push rod (102) is fixedly installed on one side of the top of the fixed frame (101). A movable frame (103) is fixedly installed on the movable end of the multi-stage electric push rod (102). A friction mechanism (104) is fixedly installed below the movable frame (103). Support rods (116) are symmetrically installed inside the mounting groove (114). Positioning frames (115) are slidably connected to the outside of the two support rods (116). Rubber plates are fixedly installed on the side of the two sets of positioning frames (115) that are close to each other.
3. The antistatic testing platform for clothing fabrics according to claim 2, characterized in that: The top of the rotating plate (109) is symmetrically equipped with two sets of fixing rods (117) on both sides of the two mounting slots (114), and the pressure plate (111) is fixedly connected to the two sets of fixing rods (117). The top of each set of two fixing rods (117) is fixedly equipped with a fixing plate (118). At the same time, a telescopic spring (119) is sleeved on the outside of the fixing rod (117) above the pressure plate (111). The two ends of the telescopic spring (119) are fixedly connected to the fixing plate (118) and the pressure plate (111) respectively, and the telescopic spring (119) is in a compressed state.
4. The antistatic testing platform for clothing fabrics according to claim 3, characterized in that: The fixing component (3) includes a limiting frame (301) fixedly installed on one side of two fixing plates (118), and a rotating shaft (302) is rotatably connected to the lower part of the limiting frame (301). A rotating gear (303) is fixedly installed at one end of the rotating shaft (302). Meanwhile, a limiting block (304) is fixedly installed on one side of the fixing plate (118) located on the limiting frame (301). An arc-shaped rod (305) is slidably connected inside the limiting block (304), and the axis of the arc-shaped rod (305) is on the same straight line as the axis of the rotating rod (110).
5. The antistatic testing platform for clothing fabrics according to claim 4, characterized in that: A support platform (308) is fixedly installed on one side of the arc-shaped rod (305), and a number of teeth (309) are fixedly installed on one side of the support platform (308). The rotating gear (303) meshes with the teeth (309). Meanwhile, a mounting block (307) is fixedly installed on one end of the arc-shaped rod (305), and a return spring (306) is sleeved on the outside of the arc-shaped rod (305) on one side of the mounting block (307). The two ends of the return spring (306) are fixedly connected to the mounting block (307) and the limiting block (304) respectively.
6. The antistatic testing platform for clothing fabrics according to claim 5, characterized in that: A push block (310) is fixedly installed at the other end of the arc-shaped rod (305), and a crossbar (311) is provided below the push block (310). The crossbar (311) is fixedly connected to the moving frame (107). Meanwhile, a cam (312) is fixedly installed on the outer side of the rotating shaft (302), and a U-shaped frame (313) is fixedly installed on the top of the pressure plate (111) outside the two cams (312).
7. The antistatic testing platform for clothing fabrics according to claim 4, characterized in that: The top of the pressure plate (111) is symmetrically equipped with telescopic frames (314) on both sides of the two mounting slots (114), and a screw (315) is rotatably connected between the movable sections of the two telescopic frames (314). One end of the screw (315) passes through one side of the telescopic frame (314) and is fixedly connected to the rotating shaft (302). At the same time, a telescopic connecting frame (316) is fixedly installed on one side of the top of the two positioning frames (115) above, and the screw (315) is threadedly connected to the movable section of the telescopic connecting frame (316).
Citation Information
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