Waterproof fabric detection device for spinning

By designing an automated waterproof fabric testing device and using mechanical means to rotate, tilt, fix and spray samples, the problem of low efficiency of manual operation is solved, the testing efficiency and accuracy are improved, and water resources are saved.

CN120741282AActive Publication Date: 2025-10-03NINGBO SHENGYI TESTING TECH SERVICE CO LTD
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Patent Information

Application Number
CN202510787293.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-13
Publication Date
2025-10-03
Estimated Expiration
2045-06-13

AI Technical Summary

Technical Problem

In the existing technology, the waterproof fabric detection process relies on manual operation, resulting in low detection efficiency.

Method used

A testing device for waterproof textile fabrics was designed. The device uses mechanical means to rotate, tilt, fix, spray and strike the sample. The waterproof performance test is automatically completed using components such as a drive motor, a tilting device, a spraying device and a striking vibration device.

Benefits of technology

It improves detection efficiency, enhances detection accuracy, and saves water resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of fabric detection, and discloses a textile waterproof fabric detection device, which comprises a base station, a rotating device is installed in the base station, the rotating device comprises a driving motor installed in the base station, the output end of the driving motor is fixedly connected with a rotating bottom plate, the rotating bottom plate is provided with a mounting table, and the mounting table is fixedly connected with the base station. A control groove is formed in the mounting table, and an inclination device is arranged in the mounting table. The inclination device comprises a containing groove formed in the surface of the mounting table, an inclination plate is arranged on the containing groove, a rotating shaft is arranged in the inclination plate and rotationally connected to the mounting table, and torsional springs are arranged at the two ends of the rotating shaft. The scheme has the beneficial effects that the detection efficiency can be improved by detecting the sample through a mechanical means, and the problem that the detection efficiency is reduced due to tedious steps in the manual operation process is solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of fabric detection, in particular to a waterproof fabric detection device for textiles. Background Art

[0002] Waterproof fabric is a new type of textile fabric, which is composed of polymer waterproof and breathable materials plus cloth composite fabrics. The fabric material of waterproof fabric is made of isocyanate-containing prepolymers formed by addition polymerization of isocyanates, polyethers, etc., with catalysts, anhydrous additives, anhydrous fillers, solvents, etc., and processed through mixing and other processes to form a single-component polyurethane waterproof coating. Polyurethane waterproof coating is a liquid-constructed, one-component, environmentally friendly waterproof coating. It is based on imported polyurethane prepolymers and does not contain additives such as tar and asphalt. It solidifies after contact with moisture in the air and forms a solid, tough, seamless, integral waterproof membrane on the surface of the base layer.

[0003] The spray method is typically used to test fabric water resistance. This method involves continuously spraying or dripping water onto a sample and observing the water stains on the surface after a certain period of time. This method compares the water stains on the sample with photographs of samples with varying degrees of wetness to assess the fabric's water resistance. The spray method simulates the dampness of clothing in a light rain. This method is applicable to all waterproof and untreated fabrics. The measured water resistance is closely related to the treatment of the fibers, yarns, and fabric structure.

[0004] The spray test method involves securing the test sample with an iron ring, ensuring it is tightly packed and has a smooth, wrinkle-free surface. Distilled water is then sprayed from a standard nozzle at a 45-degree angle onto the sample, 150 mm below the nozzle, for 25 to 30 seconds. The sprayed sample surface is then compared to a standard chart and rated to evaluate the fabric's water repellency. This process is typically performed manually in existing technologies, which reduces testing efficiency due to the high number of manual operations involved. Therefore, this method does not meet existing requirements. Therefore, we have proposed a waterproof fabric testing device. Summary of the Invention

[0005] The present invention provides a waterproof fabric detection device for textiles, which has the beneficial effect of improving detection efficiency by detecting samples through mechanical means, and solves the problem mentioned in the above background technology that manual operation will reduce detection efficiency due to cumbersome steps.

[0006] The present invention provides the following technical solution: a waterproof fabric detection device for textiles, comprising a base, a rotating device installed in the base, the rotating device comprising a drive motor installed in the base, the output end of the drive motor being fixedly connected to a rotating base plate, a mounting platform being installed on the rotating base plate, a control slot being provided in the mounting platform, and a tilting device being provided in the mounting platform.

[0007] The tilting device includes a placement groove opened on the surface of the mounting platform, an inclined plate is provided on the placement groove, a rotating shaft is provided in the inclined plate, the rotating shaft is rotatably connected in the mounting platform, and torsion springs are provided at both ends of the rotating shaft.

[0008] As an optional solution of the textile waterproof fabric detection device described in the present invention, wherein: the inclined plate is provided with a fixing device for fixing the sample, the fixing device includes a mounting ring installed on the surface of the inclined plate, a card and a ring are provided above the mounting ring, the bottom of the card and the ring is fixedly connected to a downward pressure shell, the downward pressure shell is inserted into the positioning slide groove, the positioning slide groove is opened in the inclined plate, the downward pressure shell is threaded with a screw rod, one end of the screw rod is fixedly connected to a gear, the bottom of the gear is rotatably connected to a U-shaped connecting shaft, the other end of the U-shaped connecting shaft is installed in the inclined plate, the gear is meshed with a tooth plate, and the tooth plate is installed on the driving device.

[0009] As an optional solution of the textile waterproof fabric detection device described in the present invention, the driving device includes a driving chute opened in the mounting platform, a driving plate is slidably connected in the driving chute, and one end of the driving plate is fixedly connected to the tooth plate.

[0010] As an optional solution of the textile waterproof fabric detection device described in the present invention, wherein: the end of the driving plate away from the tooth plate is fixedly connected to a connecting rod, the other end of the connecting rod is fixedly connected to a No. 1 rotating ring, a No. 1 cylindrical slider is rotatably connected to the No. 1 rotating ring, the No. 1 cylindrical slider is slidably connected to the No. 1 track groove, the No. 1 track groove is opened in the base, the connecting rod is arranged in the No. 1 through groove, and the No. 1 through groove is opened in the mounting platform.

[0011] As an optional solution of the textile waterproof fabric detection device described in the present invention, the driving plate is provided with a tilt control device for driving the tilting plate to tilt, the tilt control device includes a No. 1 mounting groove provided on the driving plate, a No. 1 rotating shaft is rotatably connected in the No. 1 mounting groove, a straight rod is fixedly connected to the side wall of the No. 1 rotating shaft, the other end of the straight rod is fixedly connected to the No. 2 rotating shaft, the No. 2 rotating shaft is rotatably connected in the tilting slider, the tilting slider is slidably connected in the synchronous slide groove, the synchronous slide groove is provided at the bottom of the tilting plate, an anti-slip groove is provided in the synchronous slide groove, an anti-slip block is slidably connected in the anti-slip groove, and the anti-slip block is fixedly connected to the side wall of the tilting slider.

[0012] As an optional solution of the textile waterproof fabric detection device described in the present invention, wherein: a striking vibration device for striking the inclined plate is provided on the straight rod, the striking vibration device includes a sleeve fixedly connected to the straight rod, a sliding rod is slidably connected in the sleeve, a striking ball is fixedly connected to the top of the sliding rod, and a force storage spring is installed at the bottom of the sliding rod, and the other end of the force storage spring is fixedly connected in the sleeve.

[0013] As an optional solution of the textile waterproof fabric detection device described in the present invention, the sliding rod is located at one end of the force storage spring and is fixedly connected to a cable, the other end of the cable is fixedly connected to one end of the sliding rod, the sliding rod is arranged in the No. 2 through-groove, and the No. 2 through-groove is opened in the base, the other end of the sliding rod is fixedly connected to the No. 2 rotating ring, and the No. 2 cylindrical slider is rotatably connected in the No. 2 rotating ring, and the No. 2 cylindrical slider is slidably connected in the No. 2 track groove, and the No. 2 track groove is opened in the base.

[0014] As an optional solution of the textile waterproof fabric detection device described in the present invention, wherein: a spray device for spraying samples is installed on the base, the spray device includes a support plate fixedly connected to the top of the base, a spray head is installed on the support plate, a water supply channel and a sliding bin are provided in the support plate, the water supply channel is communicated with the sliding bin, the water supply channel is communicated with the spray head, a sliding block is slidably connected in the sliding bin, a connecting groove is provided in the sliding block, the connecting groove is connected with a bellows, the bellows is installed in the sliding bin, the bellows is connected with a water inlet pipe, the water inlet pipe is installed on the top of the support plate, one end of the sliding block is fixedly connected to a reset spring, and the other end of the reset spring is fixedly connected in the sliding bin.

[0015] As an optional solution of the textile waterproof fabric detection device described in the present invention, the bottom of the sliding block is fixedly connected to a wedge block, the wedge block is used to be resisted by a resistance block, and the resistance block is fixedly connected to the top of the mounting platform.

[0016] The present invention has the following beneficial effects:

[0017] 1. This textile waterproof fabric testing device drives the mounting platform to rotate by a driving motor, causing the inclined plate on the mounting platform to tilt around the rotation axis. At the same time, the mounting platform rotates within the base, so that the sample placed on the inclined plate is rotated by the driving device to drive the fixing device, tilting control device and striking vibration device to complete the sample fixing, tilting, striking and resetting processes. This design realizes the detection of the sample's waterproof performance through mechanical drive, which effectively improves the efficiency of detection compared with traditional manual operation.

[0018] 2. The textile waterproof fabric detection device, through the design of the striking vibration device, can strike the bottom of the inclined plate after the spraying is completed. The storage spring in a compressed state instantly releases the elastic force, which can drive the striking ball to strike the bottom of the inclined plate with a certain force. The storage spring is always in a compressed state under the tension of the cable. The cable is connected to the No. 2 cylindrical slider through the sliding rod and the No. 2 rotating ring, and the No. 2 cylindrical slider slides in the No. 2 track groove. Through the design of the No. 2 track groove, the cable is always in a state of pressurizing and compressing the storage spring outside the striking process. When the No. 2 cylindrical slider slides to the change position of the No. 2 track groove, the No. 2 cylindrical slider will lose the restriction of the No. 2 track groove. At this time, the storage spring will instantly release the elastic force because it is no longer restrained by the cable, so as to drive the striking ball at one end of the sliding rod to hit the bottom of the inclined plate, so as to shake off the water droplets remaining on the surface of the sample, thereby improving the accuracy of waterproof detection.

[0019] 3. The textile waterproof fabric testing device can realize spraying on the sample after the inclined plate is tilted by designing a spray device on the base, and stop the outflow of spray water in time after spraying for a period of time. When the driving motor drives the mounting platform to rotate to the support plate, the interference block located on the top of the mounting platform interferes with the wedge block, driving the sliding block connected to the wedge block to slide upward in the sliding bin, so that the connecting groove is connected with the water supply channel, and the water inlet pipe is connected with the external water supply device to supply water to the sprinkler head through the water supply channel. When the interference block does not interfere with the wedge block, one end of the connecting groove on the sliding block is blocked by the interference of one side of the sliding bin, and the sprinkler head will not spray water at this time. Through this design, it can be achieved that the sprinkler head will spray water only when the sample is under the sprinkler head, effectively controlling the timing of the sprinkler head spraying water. Compared with equipment that is always in a spraying state, this design has the advantage of saving water resources. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a structural schematic diagram of the present invention.

[0021] Figure 2 It is a schematic diagram of the structure of the present invention from above.

[0022] Figure 3 For the present invention Figure 2 Schematic diagram of the cross-section structure of section 1-1.

[0023] Figure 4 For the present invention Figure 3 Enlarged structural diagram at point A in the middle.

[0024] Figure 5 For the present invention Figure 4 Enlarged structural diagram at point B in the middle.

[0025] Figure 6 For the present invention Figure 5Enlarged structural diagram at point C in the middle.

[0026] Figure 7 It is a structural schematic diagram of the connection between the rotating shaft and the mounting platform of the present invention.

[0027] Figure 8 This is a schematic diagram of the structure of the No. 1 track groove of the present invention.

[0028] Figure 9 This is a schematic diagram of the No. 2 track groove structure of the present invention.

[0029] Figure 10 For the present invention Figure 2 Schematic diagram of the structure of Figure 2-2.

[0030] Figure 11 For the present invention Figure 10 Enlarged structural diagram at point D in the middle.

[0031] In the figure: 1. base; 2. rotating device; 201. driving motor; 202. rotating base plate; 203. mounting table; 204. control slot; 3. tilting device; 301. placement slot; 302. tilting plate; 303. rotating shaft; 304. torsion spring; 4. fixing device; 401. mounting ring; 402. clamp and ring; 403. positioning slide; 404. pressing shell; 405. screw rod; 406. gear; 407. tooth plate; 408. U-shaped connecting shaft; 5. driving device; 501. driving slide; 502. driving plate; 503. connecting rod; 504. rotating ring No. 1; 505. cylindrical slider No. 1; 506. track slot No. 1; 507. through slot No. 1; 6. tilting control device; 601. mounting slot No. 1; 602. Rotating shaft No. 1; 603. Straight rod; 604. Rotating shaft No. 2; 605. Inclined slider; 606. Synchronous slide groove; 607. Anti-slip groove; 608. Anti-slip block; 7. Striking vibration device; 701. Sleeve; 702. Sliding rod; 703. Striking ball; 704. Accumulation spring; 705. Cable; 706. Sliding rod; 707. Rotating ring No. 2; 708. Cylindrical slider No. 2; 709. Track groove No. 2; 710. Through groove No. 2; 8. Spraying device; 801. Support plate; 802. Spraying head; 803. Water supply channel; 804. Sliding bin; 805. Sliding block; 806. Connecting groove; 807. Bellows; 808. Return spring; 809. Wedge block; 810. Resistance block; 811. Water inlet pipe. DETAILED DESCRIPTION

[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0033] Example 1: This example aims to solve the problem that the cumbersome steps in the manual operation process will reduce the detection efficiency. Figure 1-11 A textile waterproof fabric detection device includes a base 1, a rotating device 2 is installed in the base 1, the rotating device 2 includes a driving motor 201 installed in the base 1, the output end of the driving motor 201 is fixedly connected to a rotating base plate 202, a mounting platform 203 is installed on the rotating base plate 202, a control slot 204 is opened in the mounting platform 203, and a tilting device 3 is provided in the mounting platform 203.

[0034] The tilting device 3 includes a placement groove 301 opened on the surface of the mounting platform 203, a tilting plate 302 is provided on the placement groove 301, a rotating shaft 303 is provided in the tilting plate 302, the rotating shaft 303 is rotatably connected in the mounting platform 203, and torsion springs 304 are provided at both ends of the rotating shaft 303.

[0035] First, the sample is fixed on the inclined plate 302, and the mounting table 203 is driven to rotate by the driving motor 201, so that the inclined plate 302 on the mounting table 203 is tilted around the rotation axis 303. At the same time, the mounting table 203 rotates within the base 1, so that the sample placed on the inclined plate 302 is driven by the driving device 5 to drive the fixing device 4, the tilting control device 6 and the striking vibration device 7 during the rotation process to complete the fixing, tilting, striking and resetting processes of the sample. This design realizes the detection of the waterproof performance of the sample through mechanical drive, which effectively improves the efficiency of the detection.

[0036] The inclined plate 302 is provided with a fixing device 4 for fixing the sample, and the fixing device 4 includes a mounting ring 401 installed on the surface of the inclined plate 302, and a card and ring 402 are provided above the mounting ring 401, and the bottom of the card and ring 402 is fixedly connected to a downward pressure shell 404, and the downward pressure shell 404 is inserted into the positioning slide 403, and the positioning slide 403 is opened in the inclined plate 302. The downward pressure shell 404 is threadedly connected to a screw rod 405, and one end of the screw rod 405 is fixedly connected to a gear 406, and the bottom of the gear 406 is rotatably connected to a U-shaped connecting shaft 408, and the other end of the U-shaped connecting shaft 408 is installed in the inclined plate 302, and the gear 406 is meshed with a tooth plate 407, and the tooth plate 407 is installed on the driving device 5.

[0037] The driving device 5 includes a driving slot 501 provided in the mounting platform 203 . A driving plate 502 is slidably connected in the driving slot 501 . One end of the driving plate 502 is fixedly connected to a toothed plate 407 .

[0038] One end of the driving plate 502 away from the tooth plate 407 is fixedly connected to the connecting rod 503, and the other end of the connecting rod 503 is fixedly connected to the No. 1 rotating ring 504, and the No. 1 rotating ring 504 is rotatably connected to the No. 1 cylindrical slider 505, and the No. 1 cylindrical slider 505 is slidably connected to the No. 1 track groove 506, and the No. 1 track groove 506 is opened in the base 1, and the connecting rod 503 is arranged in the No. 1 through groove 507, and the No. 1 through groove 507 is opened in the mounting table 203.

[0039] When the driving motor 201 drives the mounting table 203 to rotate around the center of the base 1, the driving device 5 first drives the fixing device 4 to fix the sample on the inclined plate 302 in a tight state, and the first cylindrical slider 505 slides in the first track groove 506 (refer to Figure 8 ), the No. 1 cylindrical slider 505 is connected to the driving plate 502 through the connecting rod 503, so that the No. 1 cylindrical slider 505 has a lateral displacement while performing a circular motion, and the No. 1 cylindrical slider 505 performs a circular motion synchronously with the mounting platform 203. Therefore, under the premise of synchronous rotation of the No. 1 cylindrical slider 505 and the mounting platform 203, the No. 1 cylindrical slider 505 will carry the driving plate 502 connected thereto to perform horizontal motion, thereby driving the driving plate 502 to slide in the driving slide groove 501. Through this sliding, the toothed plate 407 on one side of the driving plate 502 can be driven to engage the gear 406, and drive the gear 406 to rotate on the U-shaped connecting shaft 408. Since a screw rod 405 is fixedly connected to one side of the gear 406, and the screw rod 405 is threadedly connected to the downward pressing shell 404, the downward pressing shell 404 can be driven to move downward by the rotation of the screw rod 405. The clamp and ring 402 which are fixedly connected to the pressing shell 404 are driven to move downward synchronously and are sleeved on the outer wall of the mounting ring 401. The pressing shell 404 is designed as a square shell, which can prevent the screw rod 405 from rotating when driving the pressing shell 404 to descend. The sample placed on the mounting ring 401 by the robot arm can be fixed on the mounting ring 401 in a tight state through this drive. This drive method can effectively complete the sample fixing process to ensure that the sample will not fall off during the subsequent tilting process, and that the water droplets remaining on the sample can fall off smoothly during the striking process. The sample fixed in a tight state can ensure the smoothness of the sample surface, so that the water remaining on the sample surface after the spraying device 8 is left in the form of water droplets. This design is conducive to improving the accuracy of waterproof detection.

[0040] The driving plate 502 is provided with a tilting control device 6 for driving the tilting plate 302 to tilt. The tilting control device 6 includes a No. 1 mounting groove 601 opened on the driving plate 502, and a No. 1 rotating shaft 602 is rotatably connected in the No. 1 mounting groove 601. The side wall of the No. 1 rotating shaft 602 is fixedly connected with a straight rod 603, and the other end of the straight rod 603 is fixedly connected with a No. 2 rotating shaft 604. The No. 2 rotating shaft 604 is rotatably connected in the tilting slider 605, and the tilting slider 605 is slidably connected in the synchronous slide 606. The synchronous slide 606 is opened at the bottom of the tilting plate 302, and an anti-slip groove 607 is opened in the synchronous slide 606. An anti-slip block 608 is slidably connected in the anti-slip groove 607, and the anti-slip block 608 is fixedly connected to the side wall of the tilting slider 605.

[0041] During the sliding of the driving plate 502 in the driving slide 501, the transmission of the tilting control device 6 can drive the tilting plate 302 to tilt. In order to ensure that the tilting process of the tilting plate 302 is realized after the sample is fixed, a synchronous slide 606 is designed. During the sliding of the driving plate 502, the tilting slider 605 is first made to slide in the synchronous slide 606. At this time, the tilting slider 605 will slide in the synchronous slide 606 with the movement of the driving plate 502 under the connection of the straight rod 603. After the tilting slider 605 slides from one end of the synchronous slide 606 to the other end, the tooth plate 407 completes the driving of the gear 406 and disengages from the gear 406. Through this design, the tilting can be ensured. The tilting process of the inclined plate 302 is completed after the sample is fixed, which can prevent the inclined plate 302 from tilting when the sample is not completely fixed, resulting in the sample being unable to be fixed on the mounting ring 401 in a tight state. At the same time, a torsion spring 304 is used to connect the rotating shaft 303 and the mounting table 203. The elastic force of the torsion spring 304 can ensure that when the card and ring 402 and the inclined slider 605 slide synchronously, the inclined slider 605 will not drive the inclined plate 302 to tilt, further improving the stability of the inclined plate 302. The design of the anti-slip groove 607 and the anti-slip block 608 can effectively prevent the inclined slider 605 from escaping from the synchronous slide groove 606, thereby ensuring the sliding stability of the inclined slider 605.

[0042] When the tilting slider 605 reaches the other end of the synchronous slide 606, the driving plate 502 continues to slide to the right in the driving slide 501. At this time, the No. 1 rotating shaft 602 and the No. 2 rotating shaft 604 will rotate. At the same time, through the connection of the straight rod 603, the tilting plate 302 will be driven to start rotating a certain angle with the rotating shaft 303 as the axis. This driving method can drive the tilting plate 302 to tilt, so that the subsequent spraying device 8 can spray water on the sample with a fixed tilt angle, thereby realizing tilt spray detection of the sample.

[0043] Example 2: This example is intended to solve the problem of needing to hit the inclined plate multiple times after the spraying is completed. This example is an explanation based on Example 1. For details, please refer to Figure 1-11 ,

[0044] A striking vibration device 7 for striking the inclined plate 302 is provided on the straight rod 603. The striking vibration device 7 includes a sleeve 701 fixedly connected to the straight rod 603, a slide rod 702 is slidably connected in the sleeve 701, a striking ball 703 is fixedly connected to the top of the slide rod 702, and a force storage spring 704 is installed at the bottom of the slide rod 702. The other end of the force storage spring 704 is fixedly connected in the sleeve 701.

[0045] The sliding rod 702 is located at one end of the force storage spring 704 and is fixedly connected to a cable 705. The other end of the cable 705 is fixedly connected to one end of the sliding rod 706. The sliding rod 706 is arranged in the No. 2 through-groove 710. The No. 2 through-groove 710 is opened in the base 1. The other end of the sliding rod 706 is fixedly connected to the No. 2 rotating ring 707. The No. 2 cylindrical slider 708 is rotatably connected in the No. 2 rotating ring 707. The No. 2 cylindrical slider 708 is slidably connected in the No. 2 track groove 709. The No. 2 track groove 709 is opened in the base 1.

[0046] In order to ensure the accuracy of the waterproofness of the sample, after the spraying is completed, it is necessary to knock on the bottom of the inclined inclined plate 302 to make the surface of the sample vibrate to a certain extent, and use this vibration to shake off the water droplets remaining on the surface of the sample. Through the design of the striking vibration device 7, the bottom of the inclined plate 302 can be struck after the spraying is completed. Through the elastic telescopic design between the sleeve 701 and the slide rod 702, the striking ball 703 at one end of the slide rod 702 can be driven to hit the bottom of the inclined plate 302 when needed. By instantly releasing the elastic force of the storage spring 704 in a compressed state, the striking ball 703 can be driven to hit the bottom of the inclined plate 302 with a certain force. The storage spring 704 is in a compressed state. The cable 705 is always in a compressed state under the tension, and the storage spring 704 still has a certain compression space at this time. This design can prevent the straight rod 603 from being stuck relative to the inclined plate 302 because there is no room for movement at both ends of the slide bar 702 when the straight rod 603 rotates. The cable 705 is connected to the No. 2 cylindrical slider 708 through the sliding rod 706 and the No. 2 rotating ring 707, and the No. 2 cylindrical slider 708 slides in the No. 2 track groove 709. Through the design of the No. 2 track groove 709, the cable 705 is always in a state of applying pressure and compression to the storage spring 704 outside the striking process. When the No. 2 cylindrical slider 708 slides to the change position of the No. 2 track groove 709 (reference Figure 9), the No. 2 cylindrical slider 708 will lose the restriction of the No. 2 track groove 709. At this time, the force storage spring 704 will release the elastic force instantly because it is no longer restrained by the cable 705, driving the slide bar 702 to slide quickly outward in the sleeve 701, and driving the striking ball 703 at one end of the slide bar 702 to hit the bottom of the inclined plate 302, so as to shake off the water droplets remaining on the surface of the sample, thereby improving the accuracy of waterproof detection.

[0047] Example 3: This example is intended to facilitate the solution of the problem of spraying the fixed sample. This example is an explanation based on Example 2. For details, please refer to Figure 1-11 ,

[0048] A spray device 8 for spraying samples is installed on the base 1, and the spray device 8 includes a support plate 801 fixedly connected to the top of the base 1, and a spray head 802 is installed on the support plate 801. A water supply channel 803 and a sliding compartment 804 are provided in the support plate 801, and the water supply channel 803 is connected to the sliding compartment 804, and the water supply channel 803 is connected to the spray head 802. A sliding block 805 is slidably connected in the sliding compartment 804, and a connecting groove 806 is provided in the sliding block 805. The connecting groove 806 is connected to a bellows 807, and the bellows 807 is installed in the sliding compartment 804. The bellows 807 is connected to a water inlet pipe 811, and the water inlet pipe 811 is installed on the top of the support plate 801. One end of the sliding block 805 is fixedly connected to a reset spring 808, and the other end of the reset spring 808 is fixedly connected to the sliding compartment 804.

[0049] A wedge block 809 is fixedly connected to the bottom of the sliding block 805 . The wedge block 809 is used to be abutted by an abutment block 810 . The abutment block 810 is fixedly connected to the top of the mounting platform 203 .

[0050] By designing a spray device 8 on the base 1, it is possible to start spraying the sample after the inclined plate 302 is tilted, and to stop the outflow of spray water in time after spraying for a period of time. When the driving motor 201 drives the mounting table 203 to rotate to the support plate 801, the interference block 810 located on the top of the mounting table 203 interferes with the wedge block 809, driving the sliding block 805 connected to the wedge block 809 to slide upward in the sliding chamber 804. Through the sliding of the sliding block 805, the connecting groove 806 is connected to the water supply channel 803, and the water inlet pipe 811 is connected to the external water supply device, and water is supplied to the spray head 802 through the water supply channel 803. When the interference block 810 does not interfere with the wedge block 809, the sliding block 805 is The return spring 808 is squeezed, and one end of the connecting groove 806 on the sliding block 805 is blocked by the side of the sliding chamber 804. At this time, the spray head 802 will not spray water. Through this design, the spray head 802 will only spray water when the sample is under the spray head 802, effectively controlling the timing of the water spraying of the spray head 802. Compared with equipment that is always in a spraying state, this design has the advantage of saving water resources. The water inlet pipe 811 is connected to the connecting groove 806 through the bellows 807. The use of this retractable pipe can prevent damage to the pipe during the sliding of the sliding block 805 compared to a hard pipe. At the same time, the hard pipe may affect the sliding of the sliding block 805.

[0051] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0052] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the technical principles of the present invention. These improvements and modifications should also be regarded as within the scope of protection of the present invention.

Claims

1. A waterproof fabric detection device for textiles, comprising a base (1), characterized in that: A rotating device (2) is installed in the base (1), and the rotating device (2) includes a driving motor (201) installed in the base (1), an output end of the driving motor (201) is fixedly connected to a rotating base plate (202), a mounting platform (203) is installed on the rotating base plate (202), a control slot (204) is provided in the mounting platform (203), and a tilting device (3) is provided in the mounting platform (203); The tilting device (3) comprises a placement groove (301) provided on the surface of the mounting platform (203); a tilting plate (302) is provided on the placement groove (301); a rotating shaft (303) is provided in the tilting plate (302); the rotating shaft (303) is rotatably connected in the mounting platform (203); and torsion springs (304) are provided at both ends of the rotating shaft (303).

2. The waterproof textile fabric detection device according to claim 1, characterized in that: The inclined plate (302) is provided with a fixing device (4) for fixing the sample, and the fixing device (4) includes a mounting ring (401) mounted on the surface of the inclined plate (302), a clip and a ring (402) are provided above the mounting ring (401), and a downward pressing shell (404) is fixedly connected to the bottom of the clip and the ring (402), and the downward pressing shell (404) is inserted into the positioning slide groove (403), and the positioning slide groove (403) is opened on the inclined plate (302). Inside the inclined plate (302), the downward pressure housing (404) is internally threadedly connected to a screw rod (405), one end of the screw rod (405) is fixedly connected to a gear (406), the bottom of the gear (406) is rotatably connected to a U-shaped connecting shaft (408), the other end of the U-shaped connecting shaft (408) is installed in the inclined plate (302), the gear (406) is meshedly connected to a toothed plate (407), and the toothed plate (407) is installed on the driving device (5).

3. The waterproof textile fabric detection device according to claim 2, characterized in that: The driving device (5) comprises a driving chute (501) provided in the mounting platform (203), a driving plate (502) being slidably connected in the driving chute (501), and one end of the driving plate (502) being fixedly connected to the tooth plate (407).

4. The waterproof textile fabric detection device according to claim 3, characterized in that: One end of the driving plate (502) away from the tooth plate (407) is fixedly connected to a connecting rod (503), and the other end of the connecting rod (503) is fixedly connected to a No. 1 rotating ring (504), and a No. 1 cylindrical slider (505) is rotatably connected in the No. 1 rotating ring (504), and the No. 1 cylindrical slider (505) is slidably connected in a No. 1 track groove (506), and the No. 1 track groove (506) is provided in the base (1), and the connecting rod (503) is provided in a No. 1 through groove (507), and the No. 1 through groove (507) is provided in the mounting platform (203).

5. The waterproof textile fabric detection device according to claim 4, characterized in that: The driving plate (502) is provided with a tilt control device (6) for driving the tilting plate (302) to tilt, and the tilt control device (6) comprises a No. 1 mounting groove (601) provided on the driving plate (502), a No. 1 rotating shaft (602) being rotatably connected in the No. 1 mounting groove (601), a straight rod (603) being fixedly connected to the side wall of the No. 1 rotating shaft (602), and a No. 2 rotating shaft (604) being fixedly connected to the other end of the straight rod (603). The second rotating shaft (604) is rotatably connected to the inclined slider (605), and the inclined slider (605) is slidably connected to the synchronous slide groove (606). The synchronous slide groove (606) is provided at the bottom of the inclined plate (302). An anti-slip groove (607) is provided in the synchronous slide groove (606), and an anti-slip block (608) is slidably connected to the anti-slip groove (607). The anti-slip block (608) is fixedly connected to the side wall of the inclined slider (605).

6. The waterproof textile fabric detection device according to claim 5, characterized in that: The straight rod (603) is provided with a striking vibration device (7) for striking the inclined plate (302), and the striking vibration device (7) comprises a sleeve (701) fixedly connected to the straight rod (603), a sliding rod (702) is slidably connected in the sleeve (701), a striking ball (703) is fixedly connected to the top of the sliding rod (702), and a force storage spring (704) is installed at the bottom of the sliding rod (702), and the other end of the force storage spring (704) is fixedly connected in the sleeve (701).

7. The waterproof textile fabric detection device according to claim 6, characterized in that: The sliding rod (702) is located at one end of the force storage spring (704) and is fixedly connected to a cable (705). The other end of the cable (705) is fixedly connected to one end of the sliding rod (706). The sliding rod (706) is arranged in a No. 2 through-groove (710). The No. 2 through-groove (710) is opened in the base (1). The other end of the sliding rod (706) is fixedly connected to a No. 2 rotating ring (707). A No. 2 cylindrical slider (708) is rotatably connected in the No. 2 rotating ring (707). The No. 2 cylindrical slider (708) is slidably connected in a No. 2 track groove (709). The No. 2 track groove (709) is opened in the base (1).

8. The waterproof textile fabric detection device according to claim 1, characterized in that: The base (1) is provided with a spray device (8) for spraying the sample, the spray device (8) comprising a support plate (801) fixedly connected to the top of the base (1), a spray head (802) being installed on the support plate (801), a water supply channel (803) and a sliding chamber (804) being provided in the support plate (801), the water supply channel (803) being communicated with the sliding chamber (804), the water supply channel (803) being communicated with the spray head (802), and a sliding chamber (804) being slidably connected in the sliding chamber (804). A movable block (805) is provided in the sliding block (805), a communicating groove (806) is provided in the communicating groove (806), the communicating groove (806) is connected to a bellows (807), the bellows (807) is installed in the sliding bin (804), the bellows (807) is connected to a water inlet pipe (811), the water inlet pipe (811) is installed on the top of the support plate (801), one end of the sliding block (805) is fixedly connected to a return spring (808), and the other end of the return spring (808) is fixedly connected in the sliding bin (804).

9. The waterproof textile fabric detection device according to claim 8, characterized in that: The bottom of the sliding block (805) is fixedly connected to a wedge block (809), and the wedge block (809) is used to be abutted by a resisting block (810), and the resisting block (810) is fixedly connected to the top of the mounting platform (203).

Citation Information

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