A textile fabric production performance testing device
By designing a textile fabric production performance detection device, and using a controllable elastic telescopic mechanism and a joint control mechanism to achieve automated polishing inspection, the problems of low efficiency and low accuracy in the prior art are solved, and the accuracy and reliability of the inspection are improved.
Patent Information
- Application Number
- CN202410042977.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-01-11
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2044-01-11
AI Technical Summary
The existing wear resistance detection methods for textile fabrics rely on manual grinding and visual inspection, which are low in efficiency and low in accuracy, making it difficult to meet the requirements of modern textile industry for high-quality products.
A textile fabric production performance detection device is designed, using a controllable elastic telescopic mechanism, a joint control mechanism, a moisture delivery metering pump, a humidity detection mechanism and a wear degree display mechanism to realize automated detection and synchronous grinding.
It improves the accuracy and efficiency of polishing detection, reduces manual intervention, realizes synchronous detection of multiple fabric samples, simulates actual usage conditions, reduces the impact of static electricity, and improves the accuracy and reliability of detection.
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Figure CN117804950B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of textile fabric production, and in particular relates to a textile fabric production performance detection device. Background Art
[0002] Fabric performance testing is required during the production process of textile fabrics, including fabric appearance testing, strength and elasticity testing, abrasion resistance testing, color fastness testing, etc. Abrasion resistance testing is an important part of fabric testing. Friction tests are performed on fabrics to evaluate their durability and wear resistance in order to determine the quality of the fabric.
[0003] The current method for testing the wear resistance of textile fabrics mainly relies on manual polishing and visual inspection. The manual polishing process requires a lot of human resources and can only process one fabric sample at a time, which makes the entire testing process time-consuming and inefficient, which limits the flexibility and production efficiency of fabric manufacturers in large-scale production. Secondly, there are certain problems with the accuracy of manual visual inspection. During visual inspection, the subjective judgment and observation skills of manual observers may lead to inconsistency and inaccuracy in the results. In addition, in order to ensure the accuracy of the test results, it is often necessary to use tools such as magnifying glasses to observe subtle changes, which increases the cumbersomeness and time cost of the test. In addition, manual polishing and visual inspection cannot provide intuitive and accurate wear resistance evaluation data. This subjective judgment and observation method limits the accuracy and scientificity of fabric quality evaluation, and it is difficult to meet the requirements of the modern textile industry for high-quality products.
[0004] Therefore, we propose a textile fabric production performance testing device to solve the above problems. Summary of the invention
[0005] The purpose of the present invention is to provide a textile fabric production performance detection device in view of the above problems.
[0006] To achieve the above-mentioned purpose, the present invention adopts the following technical scheme: a textile fabric production performance detection device, including a detection box, a plurality of detection seats are fixedly arranged in the detection box, and a rotating shaft is rotatably arranged in the detection seat, a fabric roller is fixedly connected to the rotating shaft, and a fabric sample is fixedly sleeved on the fabric roller, the fabric roller is hollow in design, and a plurality of air holes are opened on the fabric roller, a cannula is fixedly connected to the upper side of the fabric roller, a support plate is fixedly connected to the detection seat, and the support plate is fixedly connected to a polishing plate matched with the fabric sample through a plurality of controllable elastic telescopic mechanisms, a joint control mechanism matched with each rotating shaft is arranged on the lower side of the detection box, two cylinders are fixedly arranged in the detection box, and the output ends of the two cylinders are fixedly connected together. A slide plate is fixedly connected to the detection box for sliding connection, and a sealing docking seat corresponding to each detection seat is fixedly arranged on the slide plate, and the lower side of the sealing docking seat is rotatably connected to a docking tube corresponding to the insertion tube, and a sealing sleeve is fixedly sleeved in the docking tube, a moisture conveying metering pump corresponding to the sealing docking seat is fixedly arranged on the slide plate, and the output end of the moisture conveying metering pump is connected to the corresponding sealing docking seat, the input end of the moisture conveying metering pump is connected to a bellows expansion tube, and the bellows expansion tube is connected to a moisture pool, a humidity detection mechanism is arranged in the detection seat, a transmission mechanism is arranged between the humidity detection mechanism and the corresponding rotating shaft, and a wear display mechanism corresponding to each humidity detection mechanism is arranged on the outer wall of the detection box.
[0007] In the above-mentioned textile fabric production performance detection device, the controllable elastic telescopic mechanism is composed of a guide seat, a guide column, a permanent magnet block, an electromagnetic block and a reset spring. The guide seat is fixedly arranged on a support plate, the guide column is slidably connected to the guide seat through a permanent magnet block, the electromagnetic block is fixedly arranged in the guide seat, and the electromagnetic block is fixedly connected to the permanent magnet block through a reset spring.
[0008] In the above-mentioned textile fabric production performance detection device, the joint control mechanism is composed of a joint control chamber, a joint control shaft, a plurality of bevel gear groups and a servo motor. The joint control chamber is opened on the lower side of the detection box, and the joint control shaft is rotatably arranged in the joint control chamber. One end of the joint control shaft is transmission connected to the servo motor, and the lower end of each of the rotating shafts extends into the joint control chamber and is transmission connected to the joint control shaft through a bevel gear group.
[0009] In the above-mentioned textile fabric production performance detection device, a time relay is provided on the detection box, and the time relay is electrically connected to the servo motor.
[0010] In the above-mentioned textile fabric production performance detection device, the humidity detection mechanism is composed of a reciprocating screw, a threaded seat and a humidity-sensitive resistor block. The reciprocating screw is rotatably arranged in the detection seat, and the threaded seat is threadedly connected to the reciprocating screw. The humidity-sensitive resistor block is fixedly connected to the threaded seat. A limit rod is fixedly arranged in the detection seat, and the threaded seat is slidably connected to the limit rod.
[0011] In the above-mentioned textile fabric production performance detection device, the transmission mechanism is composed of a pulley assembly, and the lower end of the reciprocating screw extends into the joint control cavity and is connected to the corresponding rotating shaft through the pulley assembly.
[0012] In the above-mentioned textile fabric production performance detection device, the wear degree display mechanism is composed of a liquid storage tank, a transparent display tank, an electromagnetic plate and a permanent magnet piston plate. The liquid storage tank is fixedly arranged on the detection box, and the electromagnetic plate is fixedly arranged in the liquid storage tank. The electromagnetic plate is fixedly connected to the permanent magnet piston plate through a telescopic spring, and the permanent magnet piston plate is slidingly connected to the liquid storage tank. The lower side of the permanent magnet piston plate is injected with display liquid, the transparent display tank is fixedly arranged on one side of the liquid storage tank, and the liquid storage tank is connected to the transparent display tank. A scale plate is fixedly arranged in the transparent display tank, and the electromagnetic plate is electrically connected to the corresponding humidity-sensitive resistor block through a spring wire.
[0013] In the above-mentioned textile fabric production performance detection device, a nut seat is fixedly provided on the upper end of the rotating shaft, and the fabric roller is threadedly connected to the nut seat through a threaded block.
[0014] In the above-mentioned textile fabric production performance detection device, a hot air pump is fixedly arranged on one side of the detection seat, and a shunt pipe connected to the output end of the hot air pump is fixedly arranged in the detection seat.
[0015] Compared with the existing technology, the advantages of a textile fabric production performance detection device are:
[0016] 1. Improve the grinding test effect: The controllable elastic telescopic mechanism can ensure that the grinding plate is close to the fabric sample being polished, ensuring the uniformity and accuracy of the grinding. This can improve the effect of fabric grinding detection and make the results more accurate and reliable.
[0017] 2. Convenient operation: The design of the controllable elastic telescopic mechanism allows the grinding plate to move to make way for the fabric roller, making it easier to take and put the fabric roller. This design makes the operation more convenient and efficient.
[0018] 3. Realize synchronous grinding of multiple fabric samples: The joint control mechanism can control the synchronous rotation of each fabric roller to realize synchronous grinding of multiple fabric samples. In this way, the efficiency of grinding and testing can be greatly improved, saving time and human resources.
[0019] 4. Simulate actual use conditions: The moisture delivery metering pump can deliver a fixed amount of moisture to simulate the use of textiles in a high humidity environment. This makes the polishing test closer to actual use conditions and improves the authenticity and reliability of the test.
[0020] 5. Improve test accuracy: By adding moisture, the contact between fibers is closer, increasing the adhesion of the interface, resulting in greater friction and higher wear. This improves the accuracy of the test and makes the results more accurate.
[0021] 6. Reduce the impact of static electricity: Many textiles are prone to static electricity in a dry environment, which will change the interaction between fibers and affect the results of wear tests. By adding moisture, the static electricity effect on the surface of the textile can be reduced, reducing the interference of static electricity on the test results, making the test results more stable and reliable.
[0022] 7. Demonstration of fabric wear value: The humidity sensor block responds to the changes in the air permeability and water permeability of the fabric based on the changes in the wear of the fabric sample. The electrical signal generated by the humidity sensor block can be used to obtain the humidity change information of the fabric sample. Combined with the wear display mechanism, the wear resistance value of each fabric sample can be displayed intuitively and accurately, avoiding the tediousness and inaccuracy of traditional manual visual inspection.
[0023] 8. Improve the humidity detection range and accuracy: By setting up a reciprocating screw and a transmission mechanism, the humidity-sensitive resistor block can move synchronously with the shaft to achieve up and down reciprocating movement. This design can expand the humidity detection range, making the fabric humidity change more accurate and controllable, and further improve the accuracy and reliability of fabric wear resistance detection.
[0024] In summary, by introducing a controllable elastic telescopic mechanism, a joint control mechanism, a moisture conveying metering pump, a humidity detection mechanism and a wear display mechanism, the polishing detection effect can be improved, the operation can be facilitated, the synchronous polishing of multiple samples can be achieved, the actual use conditions can be simulated, the influence of static electricity can be reduced, the test accuracy can be improved, and the wear resistance value of the fabric can be displayed intuitively and accurately, thereby improving the accuracy and reliability of fabric detection. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 It is a schematic diagram of the overall structure of a wear resistance detection device of a textile fabric production performance detection device provided by the present invention;
[0026] Figure 2 It is a front perspective structural schematic diagram of a wear resistance detection device of a textile fabric production performance detection device provided by the present invention;
[0027] Figure 3It is a front perspective structural schematic diagram of a detection seat of a wear resistance detection device of a textile fabric production performance detection device provided by the present invention;
[0028] Figure 4 It is a structural schematic diagram of the cooperation between a fabric roller and a nut seat of a wear resistance testing device of a textile fabric production performance testing device provided by the present invention;
[0029] Figure 5 It is a front perspective structural schematic diagram of a wear degree display mechanism of a wear resistance detection device of a textile fabric production performance detection device provided by the present invention;
[0030] Figure 6 The present invention provides a front perspective structural schematic diagram of a controllable elastic telescopic mechanism of a wear resistance detection device of a textile fabric production performance detection device.
[0031] In the figure: 1 detection box, 2 detection seat, 3 rotating shaft, 4 fabric roller, 5 fabric sample, 6 intubation tube, 7 support plate, 8 controllable elastic telescopic mechanism, 81 guide seat, 82 guide column, 83 permanent magnet block, 84 electromagnetic block, 85 reset spring, 9 grinding plate, 10 joint control mechanism, 101 joint control cavity, 102 joint control shaft, 103 bevel gear set, 104 servo motor, 11 cylinder, 12 slide plate, 13 sealing docking seat, 14 docking pipe, 15 moisture delivery metering pump , 16 bellows, 17 humidity detection mechanism, 171 reciprocating screw, 172 threaded seat, 173 humidity-sensitive resistor block, 18 transmission mechanism, 181 pulley assembly, 19 wear display mechanism, 191 liquid storage tank, 192 transparent display tank, 193 electromagnetic plate, 194 permanent magnet piston plate, 20 time relay, 21 limit rod, 22 telescopic spring, 23 scale plate, 24 nut seat, 25 threaded block, 26 hot air pump, 27 shunt pipe. DETAILED DESCRIPTION
[0032] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0033] like Figure 1-Figure 6 As shown, a textile fabric production performance testing device comprises a testing box 1, a plurality of testing seats 2 are fixedly arranged in the testing box 1, a rotating shaft 3 is rotatably arranged in the testing seat 2, a fabric roller 4 is fixedly connected to the rotating shaft 3, and a fabric sample 5 is fixedly sleeved on the fabric roller 4, a nut seat 24 is fixedly arranged on the upper end of the rotating shaft 3, and the fabric roller 4 is threadedly connected to the nut seat 24 through a threaded block 25, and the cooperation between the nut seat 24 and the threaded block 25 facilitates the disassembly and replacement of the fabric roller 4;
[0034] The fabric roller 4 is hollow in design, and a plurality of air holes are provided on the fabric roller 4. The upper side of the fabric roller 4 is fixedly connected with an insert pipe 6. A support plate 7 is fixedly connected in the detection seat 2, and the support plate 7 is fixedly connected with a grinding plate 9 matched with the fabric sample 5 through a plurality of controllable elastic telescopic mechanisms 8. The controllable elastic telescopic mechanism 8 is composed of a guide seat 81, a guide column 82, a permanent magnet block 83, an electromagnetic block 84 and a reset spring 85. The guide seat 81 is fixedly arranged on the support plate 7, and the guide column 82 is slidably connected to the guide seat 81 through the permanent magnet block 83. The electromagnetic block 84 is fixedly arranged in the guide seat 81, and the electromagnetic block 84 is fixedly connected to the permanent magnet block 83 through the reset spring 85. The reset spring 85 is provided to make the grinding plate 9 close to the fabric sample 5 to be polished, and the electromagnetic plate 193 is provided to control the grinding plate 9 to be extended and retracted by utilizing the magnetic change of the electromagnetic plate 193 when it is powered on and off, in cooperation with the reset spring 85, so as to facilitate the later placement and removal of the fabric roller 4.
[0035] A joint control mechanism 10 matched with each rotating shaft 3 is arranged at the lower side of the detection box 1. The joint control mechanism 10 consists of a joint control chamber 101, a joint control shaft 102, a plurality of bevel gear sets 103 and a servo motor 104. The joint control chamber 101 is opened at the lower side of the detection box 1, and the joint control shaft 102 is rotatably arranged in the joint control chamber 101. One end of the joint control shaft 102 is transmission-connected with the servo motor 104. The lower end of each rotating shaft 3 extends into the joint control chamber 101 and is transmission-connected with the joint control shaft 102 through the bevel gear set 103. Through the transmission cooperation of each bevel gear set 103, the servo motor 104 can control each fabric roller 4 to rotate synchronously and maintain synchronous and same-speed grinding test. A time relay 20 is arranged on the detection box 1, and the time relay 20 is electrically connected to the servo motor 104. The setting of the time relay 20 is convenient for the user to control the working time of the servo motor 104, and then control the test time;
[0036] Two cylinders 11 are fixedly arranged in the detection box 1, and the output ends of the two cylinders 11 are fixedly connected to a slide plate 12 which is slidably connected to the detection box 1, and a sealed docking seat 13 corresponding to each detection seat 2 is fixedly arranged on the slide plate 12, and the lower side of the sealed docking seat 13 is rotatably connected to a docking pipe 14 corresponding to the insertion pipe 6, and a sealing sleeve is fixedly sleeved in the docking pipe 14, and a moisture conveying metering pump 15 corresponding to the sealed docking seat 13 is fixedly arranged on the slide plate 12, and the output end of the moisture conveying metering pump 15 is connected to the corresponding sealed docking seat 13, and the input end of the moisture conveying metering pump 15 is connected to a corrugated telescopic pipe 16, and the corrugated telescopic pipe 16 is connected to a moisture pool, and the detection The measuring seat 2 is provided with a humidity detection mechanism 17, which is composed of a reciprocating screw 171, a threaded seat 172 and a humidity-sensitive resistor block 173. The reciprocating screw 171 is rotatably arranged in the measuring seat 2, and the threaded seat 172 is threadedly connected to the reciprocating screw 171, and the humidity-sensitive resistor block 173 is fixedly connected to the threaded seat 172. A limit rod 21 is fixedly arranged in the measuring seat 2, and the threaded seat 172 is slidably connected to the limit rod 21. The humidity-sensitive resistor block 173 can generate a corresponding resistance change based on the amount of moisture seeped out due to the wear change of the fabric sample 5. The reciprocating screw 171 can control the humidity-sensitive resistor block 173 to move back and forth up and down by rotating to increase the detection range.
[0037] A transmission mechanism 18 is provided between the humidity detection mechanism 17 and the corresponding rotating shaft 3. The transmission mechanism 18 is composed of a pulley assembly 181. The lower end of the reciprocating screw 171 extends into the joint control chamber 101 and is connected to the corresponding rotating shaft 3 through the pulley assembly 181. The transmission coordination of the pulley assembly 181 enables the reciprocating screw 171 to rotate synchronously with the rotating shaft 3, thereby avoiding the cost of adding an additional driving device.
[0038] The outer wall of the detection box 1 is provided with a wear degree display mechanism 19 corresponding to each humidity detection mechanism 17. The wear degree display mechanism 19 is composed of a liquid storage bin 191, a transparent display bin 192, an electromagnetic plate 193 and a permanent magnetic piston plate 194. The liquid storage bin 191 is fixedly arranged on the detection box 1, and the electromagnetic plate 193 is fixedly arranged in the liquid storage bin 191. The electromagnetic plate 193 is fixedly connected to the permanent magnetic piston plate 194 through a telescopic spring 22, and the permanent magnetic piston plate 194 is slidably connected to the liquid storage bin 191. The lower side of the permanent magnetic piston plate 194 The transparent display chamber 192 is fixedly provided on one side of the liquid storage chamber 191, and the liquid storage chamber 191 is connected with the transparent display chamber 192. A scale plate 23 is fixedly provided in the transparent display chamber 192. The electromagnetic plate 193 is electrically connected to the corresponding humidity-sensitive resistor block 173 through a spring wire. The electromagnetic plate 193 can generate corresponding magnetic changes based on the resistance change of the humidity-sensitive resistor block 173. In conjunction with the permanent magnetic piston plate 194 and the telescopic spring 22, the amount of the display liquid entering the transparent display chamber 192 can be automatically controlled;
[0039] A hot air pump 26 is fixedly provided on one side of the detection seat 2, and a shunt pipe 27 connected to the output end of the hot air pump 26 is fixedly provided in the detection seat 2. The setting of the hot air pump 26 and the shunt pipe 27 can pass hot air into the detection seat 2 after the detection is completed to increase the drying speed of the detection seat 2.
[0040] The operating principle of the present invention is now described as follows:
[0041] When testing the wear resistance of textile fabrics, firstly, each fabric roller 4 fixed with a fabric sample 5 of the same size is docked with the corresponding nut seat 24 through the threaded block 25, and then each sealed docking seat 13 is controlled to move down through the two cylinders 11 to dock with the corresponding detection seat 2, and then a certain amount of moisture is delivered to the corresponding fabric roller 4 through the moisture delivery metering pump 15, and then the servo motor 104 is controlled to work for a specified time through the time relay 20. After the servo motor 104 is started, it will control the joint control shaft 102 to rotate, and under the transmission cooperation of each bevel gear set 103, each fabric roller 4 will The fabric sample 5 is rotated synchronously, so that the fabric sample 5 thereon is continuously rubbed and polished by the polishing plate 9. As the fabric sample 5 is continuously polished, the fabric sample 5 will be continuously worn, and then the moisture in the fabric roller 4 will be more easily penetrated from the air holes of the fabric roller 4 into the detection seat 2 through the fabric sample 5, and then the resistance value of the humidity-sensitive resistor block 173 will continue to decrease. Under the transmission cooperation of each pulley assembly 181, each reciprocating screw 171 will rotate synchronously with the corresponding rotating shaft 3, and then the humidity-sensitive resistor block 173 will continuously reciprocate up and down under the drive of the threaded seat 172 to increase the detection range;
[0042] When the resistance value of the humidity-sensitive resistor block 173 decreases, the current flowing into the corresponding electromagnetic plate 193 will decrease, and then the magnetism of the electromagnetic plate 193 will weaken, and then the suction force of the electromagnetic plate 193 on the permanent magnetic piston plate 194 will decrease. Under the action of the telescopic spring 22, the permanent magnetic piston plate 194 will gradually move downward, and the display liquid will be pressed into the transparent display chamber 192. With the help of the scale plate 23, the wear resistance of the corresponding fabric sample 5 can be intuitively reflected based on the scale value corresponding to the liquid level of the entering display liquid;
[0043] After the test is completed, the wear resistance value of the corresponding fabric sample 5 displayed by each wear degree display mechanism 19 is recorded in turn, and the test time is recorded.
[0044] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principle of the present invention should be included in the protection scope of the present invention.
Claims
1. A textile fabric production performance testing device, comprising a testing box (1), characterized in that: The detection box (1) is fixedly provided with a plurality of detection seats (2), and a rotating shaft (3) is rotatably provided in the detection seat (2), a fabric roller (4) is fixedly connected to the rotating shaft (3), and a fabric sample (5) is fixedly sleeved on the fabric roller (4), the fabric roller (4) is of hollow design, and a plurality of air holes are provided on the fabric roller (4), a plug tube (6) is fixedly connected to the upper side of the fabric roller (4), a support plate (7) is fixedly connected to the detection seat (2), and the support plate (7) is fixedly connected to a polishing plate (9) matched with the fabric sample (5) through a plurality of controllable elastic telescopic mechanisms (8), a joint control mechanism (10) matched with each rotating shaft (3) is provided on the lower side of the detection box (1), two cylinders (11) are fixedly provided in the detection box (1), and the output ends of the two cylinders (11) are fixedly connected to a slide plate (12) slidably connected to the detection box (1), and the slide plate (12) ) is fixedly provided with a sealing docking seat (13) corresponding to each detection seat (2) one by one, and the lower side of the sealing docking seat (13) is rotatably connected to a docking pipe (14) corresponding to the insertion pipe (6), and a sealing sleeve is fixedly sleeved in the docking pipe (14); a moisture conveying metering pump (15) corresponding to the sealing docking seat (13) is fixedly provided on the slide plate (12), and the output end of the moisture conveying metering pump (15) is connected to the corresponding sealing docking seat (13), the input end of the moisture conveying metering pump (15) is connected to a corrugated telescopic tube (16), and the corrugated telescopic tube (16) is connected to a moisture pool; a humidity detection mechanism (17) is provided in the detection seat (2), and a transmission mechanism (18) is provided between the humidity detection mechanism (17) and the corresponding rotating shaft (3); and a wear degree display mechanism (19) corresponding to each humidity detection mechanism (17) is provided on the outer wall of the detection box (1).
2. A textile fabric production performance detection device according to claim 1, characterized in that: The controllable elastic telescopic mechanism (8) is composed of a guide seat (81), a guide column (82), a permanent magnet block (83), an electromagnetic block (84) and a reset spring (85); the guide seat (81) is fixedly arranged on a support plate (7); the guide column (82) is slidably connected to the guide seat (81) via the permanent magnet block (83); the electromagnetic block (84) is fixedly arranged in the guide seat (81); and the electromagnetic block (84) is fixedly connected to the permanent magnet block (83) via the reset spring (85).
3. A textile fabric production performance detection device according to claim 1, characterized in that: The joint control mechanism (10) is composed of a joint control chamber (101), a joint control shaft (102), a plurality of bevel gear sets (103) and a servo motor (104); the joint control chamber (101) is opened at the lower side of the detection box (1), and the joint control shaft (102) is rotatably arranged in the joint control chamber (101); one end of the joint control shaft (102) is transmission-connected to the servo motor (104); and the lower end of each of the rotating shafts (3) extends into the joint control chamber (101) and is transmission-connected to the joint control shaft (102) via the bevel gear set (103).
4. A textile fabric production performance detection device according to claim 3, characterized in that: The detection box (1) is provided with a time relay (20), and the time relay (20) is electrically connected to the servo motor (104).
5. A textile fabric production performance detection device according to claim 3, characterized in that: The humidity detection mechanism (17) is composed of a reciprocating screw (171), a threaded seat (172) and a humidity-sensitive resistor block (173); the reciprocating screw (171) is rotatably arranged in the detection seat (2), and the threaded seat (172) is threadedly connected to the reciprocating screw (171); the humidity-sensitive resistor block (173) is fixedly connected to the threaded seat (172); a limit rod (21) is fixedly arranged in the detection seat (2), and the threaded seat (172) is slidably connected to the limit rod (21).
6. A textile fabric production performance detection device according to claim 5, characterized in that: The transmission mechanism (18) is composed of a pulley assembly (181), and the lower end of the reciprocating screw (171) extends into the joint control chamber (101) and is connected to the corresponding rotating shaft (3) through the pulley assembly (181).
7. A textile fabric production performance detection device according to claim 5, characterized in that: The wear degree display mechanism (19) is composed of a liquid storage bin (191), a transparent display bin (192), an electromagnetic plate (193) and a permanent magnetic piston plate (194); the liquid storage bin (191) is fixedly arranged on the detection box (1), and the electromagnetic plate (193) is fixedly arranged in the liquid storage bin (191); the electromagnetic plate (193) is fixedly connected to the permanent magnetic piston plate (194) via a telescopic spring (22), and the permanent magnetic piston plate (194) is slidably connected to the liquid storage bin (191); display liquid is injected into the lower side of the permanent magnetic piston plate (194); the transparent display bin (192) is fixedly arranged on one side of the liquid storage bin (191), and the liquid storage bin (191) is communicated with the transparent display bin (192); a scale plate (23) is fixedly arranged in the transparent display bin (192); and the electromagnetic plate (193) is electrically connected to a corresponding humidity-sensitive resistor block (173) via a spring wire.
8. A textile fabric production performance detection device according to claim 1, characterized in that: A nut seat (24) is fixedly provided on the upper end of the rotating shaft (3), and the fabric roller (4) is threadedly connected to the nut seat (24) via a threaded block (25).
9. A textile fabric production performance detection device according to claim 1, characterized in that: A hot air pump (26) is fixedly arranged on one side of the detection seat (2), and a shunt pipe (27) connected to the output end of the hot air pump (26) is fixedly arranged in the detection seat (2).
Citation Information
Patent Citations
Device for testing wear resistance of automobile interior material
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Wear resistance detection device for antibacterial textiles
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