Textile anti-ultraviolet intensity detection device
By designing a textile anti-ultraviolet strength detection device with an automated loading system, the problem of slow loading speed in the prior art is solved and efficient detection efficiency is achieved.
Patent Information
- Application Number
- CN202510181116.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2025-05-02
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing UV strength detection device for textiles is slow during large batch inspection, which affects the detection efficiency.
A device including detecting the body, anti-ultraviolet detector, chassis and top disk is designed. The separation and merging of the chassis and top disk are driven by the No. 1 electric slider to realize automatic loading detection and improve detection efficiency.
Automatic loading inspection is realized, the efficiency of textile anti-ultraviolet strength detection is improved, and manual operation time is reduced.
Smart Images

Figure CN119915711A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of textile detection, in particular to a device for detecting the anti-ultraviolet strength of textiles. Background Art
[0002] In recent years, UV-resistant textiles have been widely used because of their ability to effectively block harmful UV radiation. Traditional textiles usually achieve UV resistance by using fabrics containing chemical UV absorbers. This treatment method may cause environmental pollution and impact on human health. Therefore, it is particularly important to develop environmentally friendly and effective UV-resistant textile detection devices.
[0003] A patent application with publication number CN114624173A discloses a device for detecting the anti-ultraviolet strength of textiles, including a body, a hollow water spray pipe being rotatably connected to the inner bottom of the body, a detection round table being fixedly installed on the outer wall of the hollow water spray pipe, four evenly distributed detection slots being opened on the detection round table, and clamping mechanisms for fixing different textiles are arranged on both side walls of the four detection slots. This application can not only intermittently rotate four groups of textiles on the detection round table, but also automatically switch to ultraviolet lamps of different intensities for detection, so as to facilitate the detection of multiple groups of textiles in sequence and improve the accuracy of the experiment.
[0004] When using an anti-ultraviolet strength detection device to detect textiles, although the above-mentioned detection device can switch lights of different intensities to detect multiple groups of textiles, it mainly relies on manual loading or semi-automatic loading. Although this operation method can realize the loading of textiles, when testing large quantities of textiles, there is still a slow loading speed, which affects the efficiency of the anti-ultraviolet strength detection of textiles.
[0005] To this end, the present invention provides a textile anti-ultraviolet intensity detection device. Summary of the invention
[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.
[0007] The technical solution adopted by the present invention to solve its technical problems is: a textile anti-ultraviolet intensity detection device described in the present invention comprises a detection body; an anti-ultraviolet detector is fixedly connected to the detection body; side panels are fixedly connected to the upper surface of the detection body and on both sides below the anti-ultraviolet detector; transverse grooves are provided on the two side panels; the inner walls of the two transverse grooves are slidably connected to a No. 1 electric slider; the outer walls of the two No. 1 electric sliders are fixedly connected to a No. 1 connecting block; the outer walls of the two No. 1 connecting blocks away from the No. 1 electric sliders are fixedly connected to a No. 1 telescopic rod; a chassis is inserted between the two No. 1 telescopic rods; a top plate is arranged between the chassis and the anti-ultraviolet detector; a matching component is arranged on the side panels, and the matching component is used to drive the top plate to move and cooperate with the chassis.
[0008] Preferably, both side panels are provided with oblique grooves; the mating assembly includes a sliding rod, a No. 2 connecting block and a No. 2 telescopic rod; the two sliding rods are respectively slidably connected to the inner walls of the oblique grooves; the No. 2 connecting block is fixedly connected to one end of the sliding rod away from the side panel, and the No. 1 connecting block and the No. 2 connecting block are hinged by a No. 3 telescopic rod; the No. 2 telescopic rod is fixedly connected to the outer wall of the No. 2 connecting block away from the sliding rod, and the opposite ends of the two No. 2 telescopic rods are inserted into the inner wall of the top plate.
[0009] Preferably, the outer wall of the detection body is fixedly connected to a fixing frame; the top outer wall of the fixing frame is fixedly connected to two sliding rail frames; the bottom ends of the two sliding rail frames are slidably connected to a No. 2 electric slider; the bottom end of the No. 2 electric slider is fixedly connected to a vacuum pump, and the vacuum pump is connected to the two No. 2 electric sliders; suction cups are fixedly connected to the four corners of the bottom end of the vacuum pump.
[0010] Preferably, an air box is fixedly connected to the upper surface of the fixing frame; a limiting plate is fixedly connected to the inner wall of the air box; a sliding plate is slidably connected to the inner wall of the air box; a placement plate is fixedly connected to the top of the sliding plate; and a pneumatic component is provided on the outer walls of the two side plates, which is used to drive the sliding plate to slide upward so that the textile is adsorbed by four suction cups.
[0011] Preferably, the pneumatic component includes a fixed block, a cylinder, an air pipe and a solenoid valve; the fixed block is fixedly connected to the outer wall of the side plate; the cylinder is fixedly connected to the inside of the fixed block, and the output end of the cylinder is located in the transverse groove; the air pipe is fixedly connected between the air box and the fixed block, and the cylinder can be connected to the inside of the air box through the fixed block and the air pipe; the solenoid valve is fixedly connected to the air box.
[0012] Preferably, a material receiving trough is provided on the detection body; the material receiving trough is located at the edge of the detection body and close to the fixing frame.
[0013] Preferably, a No. 1 magnetic block is fixedly connected to the bottom end of the top plate; a No. 2 magnetic block is fixedly connected to the top end of the bottom plate, and the No. 1 magnetic block and the No. 2 magnetic block can be magnetically attracted.
[0014] Preferably, a dye cavity is provided on the top plate; a printing and dyeing mold is fixedly connected to the bottom end of the top plate, and the printing and dyeing mold is communicated with the dye cavity.
[0015] Preferably, a support plate is fixed between the two side plates; a storage box is fixed on the support plate near the middle position; a flow control column is slidably connected to the inner wall of the bottom end of the storage box, an L-shaped groove is provided inside the flow control column, and an elastic part is fixed between the flow control column and the inner wall of the storage box.
[0016] Preferably, both sides of the placement plate are fixedly connected to limit frames; both side outer walls of the air box are slidably connected with baffles, and the baffles pass through the limit frames; a plug-in rod is inserted into the interior of the air box, and the plug-in rod passes through the baffle.
[0017] The beneficial effects of the present invention are as follows:
[0018] 1. The device for detecting the anti-ultraviolet intensity of textiles described in the present invention synchronously drives the bottom plate and the top plate to separate and merge by two No. 1 electric sliders, clamps the textile samples between the bottom plate and the top plate, and sends them to the output end of the anti-ultraviolet detector for anti-ultraviolet intensity detection, replacing the traditional manual loading or semi-automatic loading method, realizing the function of automatic loading and detection, improving the loading speed and the efficiency of anti-ultraviolet intensity detection, and utilizing a vacuum pump in conjunction with four suction cups to vacuum adsorb a single textile sample. As the No. 2 electric slider drives the adsorbed textile sample to slide onto the bottom plate, the textile sample is fed. The output end of the cylinder is squeezed by the two No. 1 electric sliders, and the gas is sent to the inside of the air box to lift the textile samples stacked on the placement plate, so that the textile sample at the top of the placement plate can be adsorbed by the four suction cups, thereby feeding and adsorbing the textile samples.
[0019] 2. The device for detecting the anti-ultraviolet intensity of textiles described in the present invention collects the detected textile samples through a receiving trough, and uses the magnetic block No. 1 to cooperate with the magnetic block No. 2 to improve the tightness of the bottom plate and the top plate in clamping the textile samples. Dyes of different colors are stored in the dye cavity. According to the time or batch, the dyes of different colors are printed on the textile samples through a printing and dyeing mold, so as to distinguish the textile samples of the same batch after the anti-ultraviolet intensity detection. The dye is stored in a storage box, and when the top plate squeezes the flow control column, the dye in the storage box is guided to the dye cavity for use, so as to automatically load the dye. Two baffles are used to block the two sides of the stacked textile samples, so as to limit the position of the multiple textile samples. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The present invention will be further described below in conjunction with the accompanying drawings.
[0021] Figure 1 is a stereogram of the present invention;
[0022] Figure 2 It is a structural schematic diagram of the chute in the present invention;
[0023] Figure 3 It is a structural schematic diagram of the bottom plate and the top plate in the present invention;
[0024] Figure 4 It is a structural schematic diagram of the air box in the present invention;
[0025] Figure 5 is a partial structural cross-sectional view of the air box in the present invention;
[0026] Figure 6 It is a structural schematic diagram of the storage box in the present invention;
[0027] Figure 7 It is a partial structural cross-sectional view of the flow control column in the present invention.
[0028] In the figure: 1. detection body; 11. anti-ultraviolet detector; 12. side plate; 13. horizontal groove; 14. No. 1 electric slider; 15. No. 1 connecting block; 16. No. 1 telescopic rod; 17. chassis; 18. top plate; 2. inclined groove; 21. sliding rod; 22. No. 2 connecting block; 23. No. 2 telescopic rod; 3. fixed frame; 31. slide rail frame; 32. No. 2 electric slider; 33. vacuum pump; 34. suction cup; 4. air box; 41. limit plate; 42. sliding plate; 43. placement plate; 5. fixed block; 51. cylinder; 52. air pipe; 53. solenoid valve; 6. receiving trough; 7. No. 1 magnetic block; 8. dye chamber; 81. printing and dyeing mold; 9. support plate; 91. storage box; 92. flow control column; 93. limit frame; 94. baffle; 95. plug-in rod. DETAILED DESCRIPTION
[0029] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further explained below in conjunction with specific implementation methods.
[0030] like Figures 1 to 4As shown, a textile anti-ultraviolet intensity detection device according to an embodiment of the present invention comprises a detection body 1; an anti-ultraviolet detector 11 is fixedly connected to the detection body 1; side panels 12 are fixedly connected to the upper surface of the detection body 1 and both sides below the anti-ultraviolet detector 11; two side panels 12 are provided with transverse grooves 13; the inner walls of the two transverse grooves 13 are slidably connected to a No. 1 electric slider 14; the outer walls of the two No. 1 electric sliders 14 are fixedly connected to a No. 1 connecting block 15; the outer walls of the two No. 1 connecting blocks 15 away from the No. 1 electric slider 14 are fixedly connected to a No. 1 telescopic rod 16; the two No. 1 A chassis 17 is inserted between the telescopic rods 16; a top plate 18 is arranged between the chassis 17 and the anti-ultraviolet detector 11; a matching component is arranged on the side plate 12, and the matching component is used to drive the top plate 18 to move and cooperate with the chassis 17; when testing the anti-ultraviolet strength of textiles, the detection body 1 is used as the main frame of the detection device, and the anti-ultraviolet detector 11 is installed on the detection body 1 to detect the anti-ultraviolet strength of textiles. A textile sample is first placed on the chassis 17 by a manipulator, and at this time, the chassis 17 and the top plate 18 are in a separated state, and the chassis 17 and the top plate 18 are located at the detection body 1. At the edge of the measuring body 1, as the two No. 1 electric sliders 14 slide in the transverse grooves 13 of the two side plates 12 respectively, the two No. 1 electric sliders 14 synchronously drive the two No. 1 telescopic rods 16 on the two No. 1 connecting blocks 15 to move, and the chassis 17 between the two No. 1 telescopic rods 16 then carries the textile sample to the bottom of the output end of the anti-ultraviolet detector 11. In the process of the movement of the two No. 1 connecting blocks 15, the two No. 1 connecting blocks 15 synchronously drive the matching components to move, and the top plate 18 on the matching components also synchronously moves and is pressed on the chassis 17, so that the chassis 17 and the top plate 18 clamp the textile sample. At this time, the chassis 1 7 and the top plate 18 are in a combined state, and the bottom plate 17 and the top plate 18 clamp the textile to ensure the stability during the anti-ultraviolet strength detection of the textile, so as to facilitate the output end of the anti-ultraviolet detector 11 to detect the anti-ultraviolet strength of the textile sample. After the anti-ultraviolet strength detection of the textile is completed, the two No. 1 electric sliders 14 slide in the opposite direction to separate the bottom plate 17 and the top plate 18, and the textile sample that has been detected on the bottom plate 17 can be removed and replaced, which replaces the traditional manual loading or semi-automatic loading method, realizes the role of automatic loading and detection, and improves the loading speed and the efficiency of anti-ultraviolet strength detection.
[0031] like Figure 1 , Figure 2 and Figure 4As shown, the two side panels 12 are each provided with an oblique groove 2; the matching assembly includes a sliding rod 21, a No. 2 connecting block 22 and a No. 2 telescopic rod 23; the two sliding rods 21 are respectively slidably connected to the inner wall of the oblique groove 2; the No. 2 connecting block 22 is fixedly connected to the end of the sliding rod 21 away from the side panel 12, and the No. 1 connecting block 15 and the No. 2 connecting block 22 are hinged by a No. 3 telescopic rod; the No. 2 telescopic rod 23 is fixedly connected to the outer wall of the No. 2 connecting block 22 away from the sliding rod 21, and the opposite ends of the two No. 2 telescopic rods 23 are plugged into the inner wall of the top plate 18; when the top plate 18 is driven to move synchronously, the two No. 1 electric sliders 14 are first separated The second connecting block 22 hinged on the first connecting block 15 by the third telescopic rod synchronously drives the sliding rod 21 to slide on the inner wall of the inclined groove 2, so that the top plate 18 inserted between the two No. 2 telescopic rods 23 slides synchronously with the bottom plate 17, and the two ends of the transverse groove 13 and the inclined groove 2 can respectively guide the bottom plate 17 and the top plate 18 to merge and separate. When the bottom plate 17 and the top plate 18 slide away from the anti-ultraviolet detector 11, they are in a separated state, and when the bottom plate 17 and the top plate 18 slide close to the anti-ultraviolet detector 11, they are in a merged state, which plays a role in controlling the separation and combination of the bottom plate 17 and the top plate 18, thereby realizing the feeding of textile samples.
[0032] like Figure 1 , Figure 2 , Figure 4 and Figure 5 As shown, the outer wall of the detection body 1 is fixedly connected with a fixing frame 3; the top outer wall of the fixing frame 3 is fixedly connected with two slide rail frames 31; the bottom ends of the two slide rail frames 31 are slidably connected with a No. 2 electric slider 32; the bottom end of the No. 2 electric slider 32 is fixedly connected with a vacuum pump 33, and the vacuum pump 33 is connected to the two No. 2 electric sliders 32; the four corners of the bottom end of the vacuum pump 33 are fixedly connected with suction cups 34; when the textile sample is loaded, the fixing frame 3 is fixed to the outer wall of the detection body 1 as a support for the two slide rail frames 31, and the textile sample is placed at the bottom of the four suction cups 34 by a manipulator, and the vacuum pump 33 controls the four suction cups 34 to vacuum adsorb the textile sample, and as the two No. 2 electric sliders 32 drive the textile sample adsorbed at the bottom of the vacuum pump 33 to move, the textile sample is moved and placed on the chassis 17 in a separated state, and then the top plate 18 is pressed on the chassis 17, and the textile sample is placed at the output end of the anti-ultraviolet detector 11 for anti-ultraviolet intensity detection, which plays a role in conveying and loading the textile sample.
[0033] An air box 4 is fixedly connected to the upper surface of the fixed frame 3; a limiting plate 41 is fixedly connected to the inner wall of the air box 4; a sliding plate 42 is slidably connected to the inner wall of the air box 4; a placement plate 43 is fixedly connected to the top of the sliding plate 42; a pneumatic component is arranged on the outer walls of the two side plates 12, and the pneumatic component is used to drive the sliding plate 42 to slide up so that the textile is adsorbed by four suction cups 34; when the textile sample is vacuum adsorbed, the stacked multiple textile samples are first placed on the placement plate 43, and after the two No. 1 electric sliders 14 drive the bottom plate 17 and the top plate 18 to separate, the two No. 1 electric sliders 14 trigger the pneumatic component at the same time, and the pneumatic component squeezes the gas into the interior of the air box 4, so that the sliding plate 42 originally placed on the limiting plate 41 slides, and the sliding plate 42 drives the multiple textile samples on the placement plate 43 to slide up synchronously until the topmost textile sample is adsorbed and transported by the four suction cups 34, thereby playing a role in feeding and adsorbing the textile samples.
[0034] The pneumatic assembly includes a fixed block 5, a cylinder 51, an air pipe 52 and a solenoid valve 53; the fixed block 5 is fixedly connected to the outer wall of the side plate 12; the cylinder 51 is fixedly connected to the inside of the fixed block 5, and the output end of the cylinder 51 is located in the transverse groove 13; the air pipe 52 is fixedly connected between the air box 4 and the fixed block 5, and the cylinder 51 can communicate with the inside of the air box 4 through the fixed block 5 and the air pipe 52; the solenoid valve 53 is fixedly connected to the air box 4; when the sliding plate 42 is pneumatically slid up, the two No. 1 electric sliders 14 drive the chassis 17 to slide close to the fixed frame 3, and the two No. 1 electric sliders 14 respectively control the two cylinders 51 The output end is squeezed to squeeze the gas in the two cylinders 51 through the fixed block 5 and the air pipe 52 to the inside of the air box 4, and then the gas pneumatically lifts the sliding plate 42 until the topmost textile sample on the current placement plate 43 fits the bottom of the four suction cups 34. The solenoid valve 53 discharges excess gas, and the four suction cups 34 vacuum absorb the textile samples and send them to the chassis 17. The two No. 1 electric sliders 14 drive the chassis 17 to slide to the bottom of the anti-ultraviolet detector 11, and the output ends of the two cylinders 51 are reset, and the placement plate 43 is reset as the sliding plate 42 slides down, thereby playing a role in feeding and adsorbing the stacked textile samples.
[0035] like Figure 1 and Figure 2As shown, a material receiving trough 6 is provided on the detection body 1; the material receiving trough 6 is located at the edge of the detection body 1 and close to the fixed frame 3; when the unloading of the textile sample is completed, the two No. 1 electric sliders 14 are used to synchronously drive the bottom plate 17 and the top plate 18 that originally clamped the textile sample to slide and separate, and after the bottom plate 17 is placed above the material receiving trough 6, the four suction cups 34 vacuum adsorb the textile sample on the bottom plate 17, and the two No. 1 electric sliders 14 drive the bottom plate 17 to move and offset the adsorbed textile sample. At this time, the four suction cups 34 stop adsorbing the inspected textile sample, so that the textile sample falls into the inside of the material receiving trough 6, and the bottom plate 17 returns to the upper position of the material receiving trough 6 to wait for the next textile sample to be placed, and the four suction cups 34 reset and slide to adsorb the next textile sample to be inspected, thereby collecting the inspected textile sample.
[0036] like Figures 1 to 4 As shown, the bottom end of the top plate 18 is fixedly connected with a No. 1 magnetic block 7; the top end of the bottom plate 17 is fixedly connected with a No. 2 magnetic block, and the No. 1 magnetic block 7 and the No. 2 magnetic block can be magnetically attracted; when the textile sample is clamped between the bottom plate 17 and the top plate 18 for detection, the No. 1 magnetic block 7 and the No. 2 magnetic block are respectively fixed on the opposite surfaces of the top plate 18 and the bottom plate 17, and after the bottom plate 17 and the top plate 18 are combined, the No. 1 magnetic block 7 and the No. 2 magnetic block can be magnetically attracted, thereby improving the stability of the detection of the anti-ultraviolet strength of the textile after the bottom plate 17 and the top plate 18 are combined.
[0037] like Figures 1 to 4 , Figure 6 , Figure 7 As shown, a dye cavity 8 is provided on the top plate 18; a printing and dyeing mold 81 is fixedly connected to the bottom end of the top plate 18, and the printing and dyeing mold 81 is connected to the dye cavity 8; when multiple batches of different textiles are tested, dyes of different colors are poured into the dye cavity 8 according to different times or batches, and the printing and dyeing mold 81 absorbs the dye in the dye cavity 8. After the textile sample is placed on the bottom plate 17, the bottom plate 17 and the top plate 18 are combined to clamp the textile sample, and the printing and dyeing mold 81 prints and dyes marks on the textile sample, so as to distinguish the textile samples of the same batch after the anti-ultraviolet strength test.
[0038] A support plate 9 is fixedly connected between the two side plates 12; a storage box 91 is fixedly connected to the support plate 9 near the middle position; a flow control column 92 is slidably connected to the inner wall of the bottom end of the storage box 91, an L-shaped groove is opened inside the flow control column 92, and an elastic member is fixedly connected between the flow control column 92 and the inner wall of the storage box 91; when dye is added to the dye cavity 8, the No. 1 electric slider 14 is used to drive the bottom plate 17 and the top plate 18 to slide and separate, the top plate 18 slides to the bottom end of the support plate 9, and the top plate 18 squeezes the arc-shaped bottom surface of the flow control column 92, so that the flow control column 92 slides up on the inner wall of the storage box 91, the elastic member contracts and is stressed, and the dye installed in the storage box 91 flows down from the L-shaped groove originally blocked by the flow control column 92, and the dye flows into the interior of the dye cavity 8 for temporary storage, which plays a role in adding dye to the dye cavity 8.
[0039] like Figure 1 , Figure 2 , Figure 4 and Figure 5 As shown, both sides of the placement plate 43 are fixedly connected with limit frames 93; both side outer walls of the air box 4 are slidably connected with baffles 94, and the baffles 94 pass through the limit frames 93; the interior of the air box 4 is plugged with a connecting rod 95, and the connecting rod 95 passes through the baffle 94; when multiple textile samples are stacked, two baffles 94 are used to pass through the two limit frames 93 respectively, and slide up on the two side outer walls of the air box 4, and then two connecting rods 95 are used to fix the two baffles 94 respectively, and the two baffles 94 are limited on both sides of the multiple textile samples after stacking, so as to play a role in limiting the multiple textile samples.
[0040] Working process: When testing the anti-ultraviolet strength of textiles, the testing body 1 is used as the main structure of the testing device, and the anti-ultraviolet detector 11 is installed on the testing body 1 to test the anti-ultraviolet strength of textiles. First, a piece of textile sample is placed on the bottom plate 17 by a manipulator. At this time, the bottom plate 17 and the top plate 18 are in a separated state, and the bottom plate 17 and the top plate 18 are located at the edge of the testing body 1. As the two No. 1 electric sliders 14 slide in the horizontal grooves 13 of the two side plates 12 respectively, the two No. 1 electric sliders 14 synchronously drive the two No. 1 connecting blocks 15 on the two No. 1 connecting blocks 15. The No. 1 telescopic rod 16 moves, and the chassis 17 between the two No. 1 telescopic rods 16 moves with the textile sample to the bottom of the output end of the anti-ultraviolet detector 11. In the process of the movement of the two No. 1 connecting blocks 15, the two No. 1 connecting blocks 15 synchronously drive the matching components to move, and the top plate 18 on the matching components also moves synchronously and is pressed on the chassis 17, so that the chassis 17 and the top plate 18 clamp the textile sample. At this time, the chassis 17 and the top plate 18 are in a merged state. The chassis 17 and the top plate 18 clamp the textile to ensure the stability of the textile during the anti-ultraviolet intensity detection process, which is convenient for anti-ultraviolet The output end of the external line detector 11 performs anti-ultraviolet strength detection on the textile sample. After the anti-ultraviolet strength detection of the textile is completed, the two No. 1 electric sliders 14 slide in the opposite direction to separate the bottom plate 17 and the top plate 18, and the textile sample that has been detected on the bottom plate 17 can be removed and replaced with a new sample, thereby replacing the traditional manual loading or semi-automatic loading method, realizing the function of automatic loading and detection, and improving the loading speed and the efficiency of anti-ultraviolet strength detection; when the top plate 18 is driven to move synchronously, the two No. 1 electric sliders 14 first drive the No. 1 connecting block 15 to move respectively, and the No. 1 connecting block The No. 2 connecting block 22 hinged by the No. 3 telescopic rod on 15 synchronously drives the sliding rod 21 to slide on the inner wall of the inclined groove 2, so that the top plate 18 inserted between the two No. 2 telescopic rods 23 slides synchronously with the bottom plate 17, and the two ends of the transverse groove 13 and the inclined groove 2 can respectively guide the bottom plate 17 and the top plate 18 to merge and separate. When the bottom plate 17 and the top plate 18 slide away from the anti-ultraviolet detector 11, they are in a separated state, and when the bottom plate 17 and the top plate 18 slide close to the anti-ultraviolet detector 11, they are in a merged state, which plays a role in controlling the separation and combination of the bottom plate 17 and the top plate 18, so as to realize the feeding of the textile sample;
[0041] When the textile sample is loaded, the fixing frame 3 is fixed on the outer wall of the detection body 1 as the support of the two slide rail frames 31, and the textile sample is placed on the bottom of the four suction cups 34 by the manipulator, and the vacuum pump 33 controls the four suction cups 34 to vacuum adsorb the textile sample, and as the two No. 2 electric sliders 32 drive the textile sample adsorbed at the bottom of the vacuum pump 33 to move, the textile sample is moved and placed on the chassis 17 in a separated state, and then the top plate 18 is pressed on the chassis 17, and the textile sample is placed on the output end of the anti-ultraviolet detector 11 for anti-ultraviolet intensity detection, which plays a role in conveying and loading the textile sample; when the textile sample is vacuum adsorbed, the stacked multiple textile samples are first placed on the placement plate 43, and after the two No. 1 electric sliders 14 drive the chassis 17 and the top plate 18 to separate, the two No. 1 electric sliders 14 simultaneously trigger the pneumatic components, and the pneumatic components squeeze the gas into the interior of the air box 4, so that the sliding plate 42 originally placed on the limit plate 41 slides, and the sliding plate 42 Drive multiple textile samples on the placement plate 43 to slide up synchronously until the top textile sample is adsorbed and transported by the four suction cups 34, which plays a role in feeding and adsorbing the textile samples; when the sliding plate 42 is pneumatically slid up, the two No. 1 electric sliders 14 drive the chassis 17 to slide close to the fixed frame 3, and the two No. 1 electric sliders 14 squeeze the output ends of the two cylinders 51 respectively, and squeeze the gas in the two cylinders 51 through the fixed block 5 and the air pipe 52 to the inside of the air box 4, and then the gas pneumatically lifts the sliding plate 42 until the top textile sample on the current placement plate 43 is attached to the bottom of the four suction cups 34, and the solenoid valve 53 discharges the excess gas, and the four suction cups 34 vacuum adsorb the textile samples and send them to the chassis 17, and the two No. 1 electric sliders 14 drive the chassis 17 to slide to the bottom of the anti-ultraviolet detector 11, and the output ends of the two cylinders 51 are reset, and the placement plate 43 is reset as the sliding plate 42 slides down, which plays a role in feeding and adsorbing the stacked textile samples;
[0042] When the textile sample is clamped between the bottom plate 17 and the top plate 18 for testing, the first magnetic block 7 and the second magnetic block are fixed on the opposite surfaces of the top plate 18 and the bottom plate 17 respectively. After the bottom plate 17 and the top plate 18 are combined, the first magnetic block 7 and the second magnetic block can be magnetically attracted, thereby improving the stability of the anti-ultraviolet strength test of the textile after the bottom plate 17 and the top plate 18 are combined;
[0043] When testing multiple batches of different textiles, different colored dyes are poured into the dye cavity 8 according to different times or batches, and the dyeing mold 81 absorbs the dye in the dye cavity 8. After the textile sample is placed on the bottom plate 17, the bottom plate 17 and the top plate 18 are combined to clamp the textile sample, and the dyeing mold 81 prints and dyes marks on the textile sample, so as to distinguish the textile samples of the same batch after the anti-ultraviolet strength test; when the dye is put into the dye cavity 8, the bottom plate 17 and the top plate 18 are driven to slide and separate by the No. 1 electric slider 14, and the top plate 18 slides to the bottom end of the support plate 9, and the top plate 18 squeezes the arc bottom surface of the flow control column 92, so that the flow control column 92 slides up on the inner wall of the storage box 91, and the elastic member contracts and is stressed, and the dye installed in the storage box 91 flows down from the L-shaped groove originally blocked by the flow control column 92, and the dye flows into the interior of the dye cavity 8 for temporary storage, which plays the role of putting the dye into the dye cavity 8;
[0044] After stacking multiple textile samples, two baffles 94 are used to penetrate the two limiting frames 93 respectively, and slide up on the outer walls of the two sides of the air box 4, and then two plug-in rods 95 are used to fix the two baffles 94 respectively. The two baffles 94 are limited on both sides of the stacked textile samples to block the multiple textile samples, so as to limit the positions of the multiple textile samples;
[0045] When the unloading of textile samples is completed, the two No. 1 electric sliders 14 are used to synchronously drive the bottom plate 17 and the top plate 18 that originally clamped the textile samples to slide and separate. After the bottom plate 17 is placed above the receiving trough 6, the four suction cups 34 vacuum adsorb the textile samples on the bottom plate 17, and the two No. 1 electric sliders 14 drive the bottom plate 17 to move and offset the adsorbed textile samples. At this time, the four suction cups 34 stop adsorbing the inspected textile samples, so that the textile samples fall into the inside of the receiving trough 6, and the bottom plate 17 returns to the position above the receiving trough 6 to wait for the next textile sample to be placed. The four suction cups 34 reset and slide to adsorb the next textile sample to be inspected, thereby collecting the inspected textile samples.
[0046] The above shows and describes the basic principles, main features and advantages of the present invention. It should be understood by those skilled in the art that the present invention is not limited to the above embodiments. The above embodiments and descriptions are only for explaining the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention to be protected. The scope of protection of the present invention is defined by the attached claims and their equivalents.
Claims
1. A textile anti-ultraviolet strength detection device, characterized in that: The invention comprises a detection body (1); an anti-ultraviolet detector (11) is fixedly connected to the detection body (1); side plates (12) are fixedly connected to the upper surface of the detection body (1) and on both sides below the anti-ultraviolet detector (11); transverse grooves (13) are provided on the two side plates (12); the inner walls of the two transverse grooves (13) are slidably connected to a No. 1 electric slider (14); the outer walls of the two No. 1 electric sliders (14) are fixedly connected to a No. 1 connecting block (15); the outer walls of the two No. 1 connecting blocks (15) away from the No. 1 electric slider (14) are fixedly connected to a No. 1 telescopic rod (16); a chassis (17) is inserted between the two No. 1 telescopic rods (16); a top plate (18) is arranged between the chassis (17) and the anti-ultraviolet detector (11); and a matching component is arranged on the side plates (12), and the matching component is used to drive the top plate (18) to move and match with the chassis (17).
2. A textile anti-ultraviolet intensity detection device according to claim 1, characterized in that: The two side panels (12) are each provided with an oblique groove (2); the matching assembly comprises a sliding rod (21), a No. 2 connecting block (22) and a No. 2 telescopic rod (23); the two sliding rods (21) are respectively slidably connected to the inner wall of the oblique groove (2); the No. 2 connecting block (22) is fixedly connected to one end of the sliding rod (21) away from the side panel (12), and the No. 1 connecting block (15) and the No. 2 connecting block (22) are hingedly connected through a No. 3 telescopic rod; the No. 2 telescopic rod (23) is fixedly connected to the outer wall of the No. 2 connecting block (22) away from the sliding rod (21), and the opposite ends of the two No. 2 telescopic rods (23) are plugged into the inner wall of the top plate (18).
3. A textile anti-ultraviolet strength detection device according to claim 1, characterized in that: The outer wall of the detection body (1) is fixedly connected to a fixing frame (3); the top outer wall of the fixing frame (3) is fixedly connected to two slide rail frames (31); the bottom ends of the two slide rail frames (31) are slidably connected to a second electric slider (32); the bottom end of the second electric slider (32) is fixedly connected to a vacuum pump (33), and the vacuum pump (33) is connected to the two second electric sliders (32); the four corners of the bottom end of the vacuum pump (33) are fixedly connected to suction cups (34).
4. A textile anti-ultraviolet strength detection device according to claim 3, characterized in that: The upper surface of the fixing frame (3) is fixedly connected to an air box (4); the inner wall of the air box (4) is fixedly connected to a limiting plate (41); the inner wall of the air box (4) is slidably connected to a sliding plate (42); the top of the sliding plate (42) is fixedly connected to a placement plate (43); and the outer walls of the two side plates (12) are provided with pneumatic components, which are used to drive the sliding plate (42) to slide upward so that the textiles are adsorbed by the four suction cups (34).
5. A textile anti-ultraviolet strength detection device according to claim 4, characterized in that: The pneumatic assembly comprises a fixed block (5), a cylinder (51), an air pipe (52) and an electromagnetic valve (53); the fixed block (5) is fixedly connected to the outer wall of the side plate (12); the cylinder (51) is fixedly connected to the interior of the fixed block (5), and the output end of the cylinder (51) is located in the transverse groove (13); the air pipe (52) is fixedly connected between the air box (4) and the fixed block (5), and the cylinder (51) can be connected to the interior of the air box (4) through the fixed block (5) and the air pipe (52); and the electromagnetic valve (53) is fixedly connected to the air box (4).
6. A textile anti-ultraviolet strength detection device according to claim 3, characterized in that: The detection body (1) is provided with a material receiving groove (6); the material receiving groove (6) is located at the edge of the detection body (1) and close to the fixing frame (3).
7. A textile anti-ultraviolet strength detection device according to claim 1, characterized in that: A first magnetic block (7) is fixedly connected to the bottom end of the top plate (18); a second magnetic block is fixedly connected to the top end of the bottom plate (17), and the first magnetic block (7) and the second magnetic block can be magnetically attracted.
8. A textile anti-ultraviolet intensity detection device according to claim 1, characterized in that: A dye cavity (8) is provided on the top plate (18); a printing and dyeing mold (81) is fixedly connected to the bottom end of the top plate (18), and the printing and dyeing mold (81) is communicated with the dye cavity (8).
9. A textile anti-ultraviolet strength detection device according to claim 8, characterized in that: A support plate (9) is fixedly connected between the two side plates (12); a storage box (91) is fixedly connected on the support plate (9) near the middle; a flow control column (92) is slidably connected to the inner wall of the bottom end of the storage box (91); an L-shaped groove is provided inside the flow control column (92), and an elastic member is fixedly connected between the flow control column (92) and the inner wall of the storage box (91).
10. A textile anti-ultraviolet intensity detection device according to claim 4, characterized in that: Both sides of the placement plate (43) are fixedly connected to limiting frames (93); both side outer walls of the air box (4) are slidably connected to baffles (94), and the baffles (94) penetrate the limiting frames (93); a plug-in rod (95) is inserted into the interior of the air box (4), and the plug-in rod (95) penetrates the baffles (94).
Citation Information
Patent Citations
Detection device for anti-ultraviolet intensity of textile
CN114624173A
Cited By
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