Dispersible spunlace non-woven fabric finished product detection equipment and fabric detection method
By setting up lighting fixtures and tension gauges in the detection area of the fabric detection equipment, the problem of difficulty in clearly observing the deformation of the fabric with the naked eye is solved, and a higher accuracy of fabric detection is achieved.
Patent Information
- Application Number
- CN202510182149.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-02-19
AI Technical Summary
During the fabric detection process, due to light and other problems, it is difficult for the naked eye to clearly observe the deformation of the fabric, especially the small cracks.
A finished inspection equipment for dispersible spunlace non-woven fabrics is designed, including setting up lighting fixtures and tension gauges in the detection area, and driving the base movement through the driving components to ensure that the fabric is exposed to the light below the detection area, and staff can clearly see the fabric status and tension gauge data through the observation window.
Through the illumination of lighting fixtures and the data display of tension gauge, the accuracy of fabric detection is improved, allowing staff to clearly observe the deformation of fabrics and the corresponding tension gauge data, and enhance the accuracy of detection.
Smart Images

Figure CN119985085A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of fabric detection, and in particular to a finished product detection device and a fabric detection method for flushable spunlace nonwoven fabrics. Background Art
[0002] Flushable spunlace nonwoven fabric is a special type of spunlace nonwoven fabric. Spunlace nonwoven fabric is a kind of fabric that sprays high-pressure fine water flow onto one or more layers of fiber webs to entangle the fibers with each other, so that the fiber webs can be reinforced and have a certain strength. On this basis, the flushable spunlace nonwoven fabric has the characteristic of being able to disperse quickly in water. After the production of nonwoven fabrics is completed, the nonwoven fabrics produced must be sampled and tested. One of the more important items in the testing process is the tensile test. At present, in the process of tensile testing, it is generally completed on the tensile testing device, that is, the fabric is fixed on the tensile testing device, and then the fabric is given a lateral tensile force, and the deformation of the fabric and the specific tensile force value applied are observed with the naked eye to judge whether the quality is up to standard. In this process, due to problems such as light, it is difficult for the naked eye to observe the deformation of the fabric, especially for some small cracks. Summary of the invention
[0003] In order to improve the problem that the naked eye has difficulty observing the deformation of the fabric, especially some small cracks, due to light and other issues in the current fabric detection process. The present application provides a flushable spunlace non-woven finished product detection device, which includes a body, two groups of bases are fixedly installed on the body, and the two groups of bases are base one and base two, respectively, a mounting seat one is installed on the base one, the mounting seat one is fixedly installed to the body, a clamping component one is installed on the top of the base one, and a running track is also horizontally arranged on the body, a mounting seat two is installed on the base two, the mounting seat two is slidably connected to the running track, a clamping component two is installed on the base two, a detection area is formed between the base one and the base two, a driving component for driving the mounting seat two to reciprocate in the track is arranged between the mounting seat two and the body, a tensile gauge is arranged between the base one and the base two, and a plurality of lighting fixtures are arranged at the bottom of the detection area.
[0004] By adopting the above scheme, during the process of fabric inspection, the two ends of the fabric are first fixed on the base one and the base two by the clamping assembly, and then the base two is driven by the driving assembly to move in the direction away from the base one. During the movement of the base two, the fabric will be gradually tightened, and the lighting fixture below the inspection area will shine upward to the fabric, so that the staff can clearly see the state of the fabric through the observation window. At the same time, since the dynamometer is set next to the fabric, the staff can observe the dynamometer data corresponding to the fabric state in time, making the inspection process more accurate.
[0005] Furthermore, a bearing member is arranged between the base one and the base two, and the bearing member includes a bearing part one and a bearing part two. The bearing part one is installed to the base one, and the bearing part two is installed to the base two. The bearing part one and the bearing part two are slidingly connected, and the dynamometer is placed on the bearing member.
[0006] By adopting the above solution, the bearing member can support the dynamometer, reducing the influence of the dynamometer's own gravity on the dynamometer reading.
[0007] Furthermore, a slideway 1 is provided on the base 1 along the width direction of the detection area, and the bearing part 1 is slidably connected to the slideway 1. A slideway 2 is provided on the base 2 along the width direction of the detection area, and the bearing part 2 is slidably connected to the slideway 2.
[0008] By adopting the above solution, the staff can adjust the position of the carrier by sliding the carrier, so that the detection area can adapt to fabrics of various widths. At the same time, the staff can also place two fabrics on both sides of the carrier, so that two fabric samples can be detected at one time, which is convenient for comparative analysis.
[0009] Further, a shielding assembly is provided below the carrier, and the shielding assembly includes a storage box fixedly mounted to the carrier part 1 or the carrier part 2, and two storage cavities are provided in the storage box, and a shielding mechanism is installed in the storage cavity, and the two sets of the shielding mechanism correspond to the detection areas on both sides of the shielding assembly respectively, and the shielding mechanism includes a ruler spring mounted to the storage box, and a flexible plate is wound on the ruler spring; The base 2 is provided with a through hole, and the two shielding mechanisms pass through the through hole; A positioning pin is fixedly connected to the free side of the flexible board, and two positioning holes are correspondingly provided on the second base, and the two positioning holes are respectively used in cooperation with the two positioning pins in a one-to-one correspondence.
[0010] By adopting the above solution, during the quality inspection process, when two pieces of cloth need to be inspected synchronously, the two flexible boards can be placed in the storage box without moving. When a single piece of cloth needs to be inspected for quality, the cloth is first placed in the inspection area on one side of the carrier, and the two ends of the cloth are fixed on two bases respectively, and then the flexible board on the other side of the carrier is pulled out to close the inspection area. The flexible board can block the light at the bottom of the inspection area, and avoid people from being directly affected by the lamps at the bottom of the inspection area when observing the state of the cloth through the observation window as much as possible.
[0011] Furthermore, the bearing part 1 and the bearing part 2 are "U"-shaped structures with openings facing upward.
[0012] By adopting the above solution, synchronous sliding of the bearing part 1 and the bearing part 2 can be achieved.
[0013] Furthermore, the body also includes a protective shell arranged on the periphery of the two bases, the two sides of the base one and the base two are in contact with the inner wall of the protective shell, a transparent observation window is arranged on the top of the protective shell, and an operating port for changing the fabric is arranged on the side wall of the protective shell.
[0014] By adopting the above scheme, the protective shell can protect the base on the one hand, and at the same time reduce the impact of the external environment on the experiment in the working state. At the same time, the cooperation between the protective shell and the shielding component can shield the light irradiated from the bottom of the detection area, so that the light is released outward through the fabric tightly, which is convenient for observing the state of the fabric.
[0015] Furthermore, two groups of tightening members are respectively provided on the mutually opposite sides of the base one and the base two, and the two groups of tightening members are respectively provided on both sides of the supporting member. The tightening members include a roller rotatably connected to the base, and a plurality of steel needles are evenly fixed on the outer peripheral surface of the roller.
[0016] By adopting the above scheme, because the dynamometer is arranged between the two bases, when the base two starts to move away from the base one, the dynamometer starts to be subjected to force. At this time, the cloth also needs to start to be subjected to force to ensure the accuracy of the detection data. Therefore, after the cloth is installed between the two bases, the cloth should be kept in a horizontal state. In this way, the installation of the cloth will be more time-consuming. The setting of the tightening member allows the cloth to be wound around the two tightening members after the two ends of the cloth are respectively passed around the base one and the base two, and then the two tightening members are rotated to keep the cloth in the detection area in a horizontal state, and then the cloth is pressed on the base by the pressing member, which makes it easy to install the cloth on the two bases.
[0017] Furthermore, a telescopic member is fixedly connected between the base 1 and the base 2; The base 1 is provided with a slideway 1, and the mounting seat 1 is slidably connected to the slideway 1. The base 2 is provided with a slideway 2, and the mounting seat 2 is slidably connected to the slideway 2.
[0018] By adopting the above solution, the base one and the base two can be pulled out of the protective shell synchronously through the telescopic member, so as to facilitate the installation and replacement of the fabric.
[0019] Furthermore, a camera device for photographing the tension count value and the state of the fabric is provided on the top of the protective shell.
[0020] By adopting the above solution, a camera device is arranged in the protective shell, the camera device is connected to the external central control system, the camera device faces the detection area, and the camera device is used to record and save the entire experimental process, which is convenient for subsequent archiving and review. At the same time, since the dynamometer is arranged in the detection area, only one camera device is needed for the entire experimental process. At the same time, the indication of the dynamometer and the state of the fabric will be in one picture, ensuring the accuracy of the data.
[0021] Furthermore, the flexible board includes a main body and a support part, one side of the main body is fixedly connected to the ruler spring, and the other side of the main body is fixedly connected to the support part, the support part is a hard rod-shaped structure, and the side where the support part is located is the free side of the flexible board.
[0022] By adopting the above solution, the connection between the flexible board and the protective shell is better sealed and the light transmittance is reduced.
[0023] The method for fabric testing using a flushable spunlace nonwoven finished product testing device comprises the following steps: S1. Fabric installation Open the operating window, pull the base out of the operating window through the telescopic part, pass the two ends of the cloth through the two sets of clamping components and put them on the tightening part, rotate the tightening part, then tighten the clamping bolt to tighten the cloth, and then push the base into the protective shell through the telescopic part and close the operating window.
[0024] S2. Fabric detection The lighting fixtures and camera devices will be turned on, and the driving assembly will be started to move the base two away from the base one. The staff will observe the state of the fabric and the dynamometer reading through the observation window. During this process, the driving assembly can be stopped at any time to record data.
[0025] S3. On-site finishing After resetting the base 2 through the driving assembly, stop the driving assembly, pull the base out of the operation window through the telescopic assembly, remove the fabric, and repeat step 1 if you need to continue the inspection. If you want to stop the experiment, push the base into the protective shell through the telescopic part, close the door panel, and observe the situation inside the protective shell through the observation window to ensure that the driving assembly, camera device and lighting fixtures are turned off, and leave the scene.
[0026] By adopting the above scheme, the tension test data of the cloth can be accurately obtained.
[0027] In summary, the present invention has at least the following beneficial effects: 1. By setting up lighting fixtures in the testing area and setting up the tensile gauge in the testing area, during the fabric testing process, the lighting fixtures below the testing area illuminate the fabric upwards, so that the staff can clearly see the state of the fabric through the observation window. At the same time, since the tensile gauge is set next to the fabric, the staff can observe the tensile gauge data corresponding to the fabric state in time, making the testing process more accurate; 2. By setting up a shielding component, the cooperation between the protective shell and the shielding component can shield the light irradiated from the bottom of the detection area, so that the light is released outward through the fabric tightly, which is convenient for observing the state of the fabric; 3. By setting up a camera device, the camera device is used to record and save the entire experimental process, which is convenient for subsequent archiving and review. At the same time, since the dynamometer is set in the detection area, only one camera device is needed to complete the entire experimental process. At the same time, the reading of the dynamometer and the state of the fabric will be in one picture, ensuring the accuracy of the data. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 This is a schematic diagram showing the overall structure of the detection device in this embodiment; Figure 2 is a schematic diagram of the internal structure of the protective shell in this embodiment; Figure 3 is a schematic diagram showing the structures of the mounting seat 1 and the mounting seat 2 in this embodiment; Figure 4 is a schematic diagram showing the structure of a carrier in an embodiment of the present application; Figure 5 yes Figure 4 A partial enlarged schematic diagram of part A; Figure 6 It is a schematic diagram showing the structure of the shielding component in this embodiment.
[0029] Description of reference numerals: 1. Machine body; 11. Table; 12. Legs; 13. Protective shell; 131. Observation window; 1311. Sealing plate; 132. Operation window; 1321. Door panel; 133. Sliding track; 134. Running track; 135. Camera device; 14. Lighting fixture; 2. Base; 21. Base 1; 211. Mounting seat 1; 2111. Limit block; 212. Slideway 1; 213. Moving track; 214. Limiting groove; 22. Base 2; 221. Mounting seat 2 ; 222, slideway 2; 223, perforation; 224, motion track 2; 23, positioning hole; 3, drive assembly; 31, screw rod; 32, motor; 4, clamping assembly; 41, threaded rod; 42, clamping nut; 43, pressure plate; 5, dynamometer; 6, bearing member; 61, bearing part 1; 62, bearing part 2; 7, shielding assembly; 71, storage box; 711, storage cavity; 72, ruler spring; 73, flexible plate; 731, positioning pin; 8, tightening member; 9, telescopic member. DETAILED DESCRIPTION
[0030] The flushable spunlace nonwoven finished product inspection equipment provided in the application embodiment is referred to Figure 1 and Figure 2 , including a body 1 placed horizontally on the ground, specifically, the body 1 includes a horizontally arranged table 11, and legs 12 are arranged at the four corners of the table 11. The body 1 also includes a protective shell 13 arranged on the upper surface of the table 11, and an observation window 131 is arranged on the top of the protective shell 13. A sealing plate 1311 made of a transparent material is fixedly installed at the observation window 131. The sealing plate 1311 can be made of glass or other materials. An operating window 132 is opened on the side wall of the protective shell 13 in the length direction, and a sliding track 133 is fixedly installed on the protective shell 13 at the corresponding operating window 132. A door panel 1321 for closing the operating window 132 is arranged in the sliding track 133.
[0031] Two bases 2 are disposed in the protective shell 13 . For the convenience of subsequent description, in this case, the two bases 2 are respectively named as base one 21 and base two 22 .
[0032] Reference Figure 2 and Figure 3 Specifically, the base 1 21 is provided with a mounting seat 1 211, which is fixedly mounted to the inner wall of the protective shell 13 in the length direction. The base 2 22 is provided with a mounting seat 221, and the inner wall of the protective shell 13 in the length direction is provided with a running track 134 for use with the mounting seat 221, and the mounting seat 221 is slidably connected to the running track 134.
[0033] The body 1 is also provided with a driving component 3 for driving the second mounting seat 221 to reciprocate in the running track 134. Specifically, the driving component 3 includes a screw 31 and a motor 32. The screw is arranged in the running track 134. The screw 31 is rotatably connected to the protective shell 13. The screw 31 passes through the second mounting seat 221, and the screw 31 and the second mounting seat 221 are threadedly connected. The motor 32 is fixedly installed to the protective shell 13 to drive the screw 31 to rotate.
[0034] The upper surfaces of the two bases 2 are provided with a pressing assembly 4 for pressing the cloth. Specifically, the pressing assembly 4 includes two vertically arranged threaded rods 41, which are respectively fixed to the two sides of the base 2, and also includes a pressing plate 43 arranged between the two threaded rods 41. The threaded rod 41 passes through the pressing plate 43, and a pressing nut 42 is threadedly connected to the threaded rod 41 above the pressing plate 43. The cloth can be fixed by placing the cloth between the pressing plate 43 and the base 2 and then screwing the pressing nut 42 so that the pressing plate 43 presses the cloth.
[0035] Reference Figure 4 and Figure 5 A dynamometer 5 is provided between the two bases 2, and two ends of the dynamometer 5 are connected to the base 1 21 and the base 2 22 respectively.
[0036] A detection area is formed between the two bases 2 , and a plurality of lighting fixtures 14 are arranged at the bottom of the detection area, and the lighting fixtures 14 are arranged upward.
[0037] During the fabric inspection, the two ends of the fabric are first fixed on the base 1 21 and the base 2 22 by the clamping assembly 4, and then the base 2 22 is driven by the driving assembly 3 to move away from the base 1 21. During the movement of the base 22, the fabric will be gradually tightened, and the lighting fixture 14 below the inspection area will shine upward to the fabric, so that the staff can clearly see the state of the fabric through the observation window 131. At the same time, since the dynamometer 5 is set next to the fabric, the staff can timely observe the dynamometer 5 data corresponding to the fabric state, making the inspection process more accurate.
[0038] A bearing member 6 is provided between the base 1 21 and the base 2 22. The bearing member 6 includes a bearing part 1 61 and a bearing part 2 62. The bearing part 1 61 is mounted on the base 1 21, and the bearing part 2 62 is mounted on the base 2 22. The bearing part 1 61 is mounted on the bearing part 2 62, and the bearing part 1 61 and the bearing part 2 62 are connected by sliding. The dynamometer 5 is placed on the bearing part 1 61. The bearing member 6 can support the dynamometer 5 to reduce the influence of the gravity of the dynamometer 5 on the reading of the dynamometer 5.
[0039] Furthermore, a slideway 212 is provided on the base 1 21 along the width direction of the body 1, and the bearing part 61 is slidably connected to the slideway 212. A slideway 222 is provided on the base 22 along the width direction of the body 1, and the bearing part 2 62 is slidably connected to the slideway 222. The staff can adjust the position of the bearing part 6 by sliding the bearing part 6, so that the detection area can adapt to fabrics of various widths. At the same time, the staff can also place two fabrics on both sides of the bearing part 6, so that two fabric samples can be detected at one time, which is convenient for comparative analysis.
[0040] In order to facilitate the adjustment of the position of the bearing member 6, the bearing part 1 61 and the bearing part 2 62 are both configured as a structure with a "U"-shaped cross section, and the bearing part 2 62 is sleeved to the periphery of the bearing part 1 61. By pushing the bearing member 6, the synchronous movement of the bearing part 1 61 and the bearing part 2 62 can be achieved.
[0041] A shielding assembly 7 is arranged directly below the carrier 6 .
[0042] Reference Figure 6 The shielding assembly 7 includes a storage box 71 arranged along the length direction of the carrier 6. The storage box 71 can be fixed to the carrier part 1 61, and the storage box 71 can also be fixed to the carrier part 2 62. Two storage cavities 711 are arranged in the length direction of the storage box 71. The shielding mechanism is installed in the storage cavity 711. The shielding mechanism includes a ruler spring 72 installed in the storage cavity. The ruler spring 72 is wound with a flexible plate 73. One side of the flexible plate 73 is connected to the ruler spring 72, and the other side of the flexible plate 73 is a free end.
[0043] Reference Figure 4 The base 22 is provided with a through hole 223 for the storage box 71 to pass through. The storage box 71 passes through the through hole 223.
[0044] Reference Figure 3 Both the base 1 21 and the base 2 22 are provided with positioning holes 23 .
[0045] Reference Figure 6 A plurality of positioning pins 731 used in conjunction with the positioning holes 23 are fixedly mounted on the free side of the corresponding flexible plate 73 .
[0046] Both sides of the base 1 21 and the base 2 22 are in contact with the side walls of the protective shell 13 .
[0047] During the quality inspection process, when two pieces of cloth need to be inspected synchronously, the two flexible plates 73 can be placed in the storage box 71 without moving. When a single piece of cloth needs to be inspected, the cloth is first placed in the inspection area on the side of the carrier 61, and the two ends of the cloth are fixed on the two bases 2 respectively, and then the flexible plate 73 on the other side of the carrier 6 is pulled out to close the inspection area. The flexible plate 73 can block the light at the bottom of the inspection area, and avoid people from being directly affected by the lamp at the bottom of the inspection area when observing the state of the cloth through the observation window 131 as much as possible.
[0048] Because the dynamometer 5 is arranged between the two bases 2, when the base 2 22 starts to move away from the base 1 21, the dynamometer 5 starts to be stressed, and at this time, the fabric also needs to be stressed to ensure the accuracy of the detection data. Therefore, after the fabric is installed between the two bases 2, the fabric should be kept in a horizontal state, so the installation of the fabric will be more time-consuming. For this reason, two sets of tightening members 8 are arranged on the sides of the two bases 2 that are away from each other. The two sets of tightening members 8 on the same base 2 are respectively located at the two sides of the base 2, and the two sets of tightening members 8 correspond to the detection areas on the two sides of the carrier 6. Specifically, the tightening member 8 includes a roller rotatably connected to the base 2, and a plurality of steel needles are evenly fixed on the outer peripheral surface of the roller.
[0049] The two ends of the cloth are respectively passed around the base 1 21 and the base 2 22 and then wrapped around the two tightening members 8. Then the two tightening members 8 are rotated to keep the cloth in the detection area in a horizontal state. Then the cloth is pressed against the base 2 by the pressing member, which makes it easy to install the cloth on the two bases 2.
[0050] Furthermore, in order to facilitate the installation of the fabric, a motion track 213 is provided on the base 21, and the motion track 213 is a blind hole opened on the base 21, and the mounting seat 211 is slidably connected to the motion track 213. A motion track 224 is provided on the base 22, and the motion track 224 is a blind hole opened on the base 22, and the mounting seat 221 is slidably connected to the motion track 224.
[0051] By pulling the base 1 21 and the base 2 22 , the base 1 21 and the base 2 22 can be pulled out of the protective shell 13 , thereby facilitating the installation of the fabric.
[0052] Reference Figure 2 Furthermore, a telescopic member 9 is fixedly connected between the base 1 21 and the base 2 22 , and the base 1 21 and the base 2 22 can be pulled out of the protective shell 13 synchronously through the telescopic member 9 .
[0053] In order to prevent the base 1 21 from being separated from the mounting seat 1 211 or the base 2 22 from being separated from the mounting seat 2 221 when the base 1 21 and the base 2 22 are pulled, a limiting groove 214 is provided on the inner wall of the track 1 along the length direction of the track 1, and a limiting block 2111 used in conjunction with the limiting groove 214 is fixedly connected to the corresponding mounting seat, and the limiting block 2111 is slidably connected to the limiting groove 214.
[0054] A camera device 135 is provided in the protective shell 13. The camera device 135 is connected to the external central control system and faces the detection area. The camera device 135 is used to record and save the entire experimental process to facilitate subsequent archiving and review. At the same time, since the dynamometer 5 is set in the detection area, only one camera device 135 is needed to complete the entire experimental process. At the same time, the reading of the dynamometer 5 and the state of the fabric will be in one picture, ensuring the accuracy of the data.
[0055] The implementation principle of this scheme is as follows: when testing the fabric, when it is necessary to test two pieces of fabric synchronously, the two flexible plates 73 are located in the storage box 71 and remain stationary, and the two pieces of fabric are fixed on both sides of the carrier 6 respectively, and then the lighting equipment is turned on, and the driving component 3 is started to drive the base 22 to move away from the base 1 21. In this process, the staff observes the state of the fabric and the reading of the tensile meter 5 through the observation window 131, and makes corresponding data records. When it is necessary to perform quality inspection on a single piece of fabric, first place the fabric in the inspection area on the side of the carrier 1 61, and fix the two ends of the fabric on the two bases 2 respectively, and then pull out the flexible plate 73 on the other side of the carrier 6 to close the inspection area. The flexible plate 73 can block the light at the bottom of the inspection area, and avoid people from being directly affected by the lamp at the bottom of the inspection area when observing the state of the fabric through the observation window 131 as much as possible.
[0056] A cloth detection method using a cloth detection device comprises the following steps: S1. Fabric installation Open the operating window, pull the base out of the operating window through the telescopic part, pass the two ends of the cloth through the two sets of clamping components and put them on the tightening part, rotate the tightening part, then tighten the clamping bolt to tighten the cloth, and then push the base into the protective shell through the telescopic part and close the operating window.
[0057] S2. Fabric detection The lighting fixtures and camera devices will be turned on, and the driving assembly will be started to move the base two away from the base one. The staff will observe the state of the fabric and the dynamometer reading through the observation window. During this process, the driving assembly can be stopped at any time to record data.
[0058] S3. On-site finishing After resetting the base 2 through the driving assembly, stop the driving assembly, pull the base out of the operation window through the telescopic assembly, remove the fabric, and repeat step 1 if you need to continue the inspection. If you want to stop the experiment, push the base into the protective shell through the telescopic part, close the door panel, and observe the situation inside the protective shell through the observation window to ensure that the driving assembly, camera device and lighting fixtures are turned off, and leave the scene.
[0059] The embodiments of this specific implementation are all preferred embodiments of the present application, and are not intended to limit the protection scope of the present application. The same components are represented by the same figure marks. Therefore, any effective changes made based on the structure, shape, and principle of the present application should be included in the protection scope of the present application.
Claims
1. Flushing spunlace nonwoven finished product testing equipment, characterized in that: The invention comprises a machine body (1), two groups of bases (2) are fixedly mounted on the machine body (1), the two groups of bases (2) are base 1 (21) and base 2 (22), a mounting seat 1 (211) is mounted on the base 1 (21), the mounting seat 1 (211) is fixedly mounted to the machine body (1), a clamping assembly (4) is mounted on the top of the base 1 (21), a running track (134) is also horizontally arranged on the machine body (1), a mounting seat 2 (221) is mounted on the base 2 (22), the mounting seat 2 (221) is fixedly mounted to the machine body (1), a clamping assembly (4) is mounted on the top of the base 1 (21), a running track (134) is also horizontally arranged on the machine body (1), a mounting seat 2 (221) is mounted on the base 2 (22), and the mounting seat 2 (22 1) is slidably connected to the running track (134), a clamping assembly (4) is installed on the base (22), a detection area is formed between the base (21) and the base (22), a driving assembly (3) for driving the mounting seat (221) to reciprocate in the track is arranged between the mounting seat (221) and the body (1), a dynamometer (5) is arranged between the base (21) and the base (22), and a plurality of lighting fixtures (14) are arranged at the bottom of the detection area.
2. The flushable spunlace nonwoven finished product detection equipment according to claim 1 is characterized in that: A bearing member (6) is arranged between the base one (21) and the base two (22), and the bearing member (6) comprises a bearing part one (61) and a bearing part two (62). The bearing part one (61) is mounted on the base one (21), and the bearing part two (62) is mounted on the base two (22). The bearing part one (61) and the bearing part two (62) are connected in a sliding manner, and the dynamometer (5) is placed on the bearing member (6).
3. The flushable spunlace nonwoven finished product detection device according to claim 2, characterized in that: A slideway 1 (212) is provided on the base 1 (21) along the width direction of the detection area, and the bearing part 1 (61) is slidably connected to the slideway 1 (212); a slideway 2 (222) is provided on the base 2 (22) along the width direction of the detection area, and the bearing part 2 (62) is slidably connected to the slideway 2 (222).
4. The flushable spunlace nonwoven finished product detection device according to claim 3 is characterized in that: A shielding assembly (7) is arranged below the bearing member (6), and the shielding assembly (7) comprises a storage box (71) fixedly mounted to the bearing part 1 (61) or the bearing part 2 (62), and two storage chambers (711) are arranged in the storage box (71), and a shielding mechanism is installed in the storage chamber (711), and the two sets of shielding mechanisms respectively correspond to the detection areas on both sides of the shielding assembly (7), and the shielding mechanism comprises a ruler spring (72) mounted to the storage box (71), and a flexible plate (73) is wound around the ruler spring (72); The second base (22) is provided with a through hole (223), and the two shielding mechanisms pass through the through hole (223); A positioning pin (731) is fixedly connected to the free side of the flexible plate (73), and two positioning holes (23) are correspondingly provided on the second base (22), and the two positioning holes (23) are respectively used in cooperation with the two positioning pins (731) in a one-to-one correspondence.
5. The flushable spunlace nonwoven finished product detection device according to claim 3, characterized in that: The first bearing part (61) and the second bearing part (62) are "U"-shaped structures with openings facing upward.
6. The flushable spunlace nonwoven finished product detection device according to claim 4, characterized in that: The machine body (1) further comprises a protective shell (13) arranged on the periphery of the two bases (2), the two sides of the base one (21) and the base two (22) being in contact with the inner wall of the protective shell (13), a transparent observation window (131) being arranged on the top of the protective shell (13), and an operating port (132) for changing fabric being arranged on the side wall of the protective shell (13).
7. The flushable spunlace nonwoven finished product detection device according to claim 1, characterized in that: Two sets of tightening members (8) are respectively arranged on the mutually opposite sides of the base one (21) and the base two (22), and the two sets of tightening members (8) are respectively arranged on the two sides of the supporting member (6), and the tightening members (8) include a roller rotatably connected to the base (2), and a plurality of steel needles are evenly fixed on the outer peripheral surface of the roller.
8. The flushable spunlace nonwoven finished product detection device according to claim 6, characterized in that: A telescopic member (9) is fixedly connected between the base 1 (21) and the base 2 (22); The base one (21) is provided with a slideway one (211), and the mounting seat one (211) is slidably connected to the slideway one (211); the base two (22) is provided with a slideway two (221), and the mounting seat two (221) is slidably connected to the slideway two (221).
9. The flushable spunlace nonwoven finished product detection device according to claim 8, characterized in that: A camera device (135) for photographing the value of the tensile meter (5) and the state of the fabric is arranged at the top of the protective shell (13).
10. A method for fabric inspection using the flushable spunlace nonwoven finished product inspection device according to claim 9, comprising the following steps: S1. Fabric installation Open the operating window (132), pull the base (2) out of the operating window (132) through the telescopic member (9), pass the two ends of the cloth through the two sets of clamping components (4) and put them on the tightening member (8), rotate the tightening member (8), then tighten the clamping bolt (42) to tighten the cloth, and then push the base (2) into the protective shell (13) through the telescopic member (9) and close the operating window (132); S2. Fabric detection The lighting fixture (14) and the camera device (135) are turned on, and the driving assembly (3) is started to move the base 2 (22) in a direction away from the base 1 (21). The staff observes the state of the fabric and the reading of the tensile meter (5) through the observation window (131). During this process, the driving assembly (3) is stopped at any time to record data; S3. On-site finishing After resetting the base 2 (22) through the driving assembly (3), the driving assembly (3) is stopped, and the base (2) is pulled out of the operating window (132) through the telescopic member (9). After the fabric is removed, if it is necessary to continue the testing work, step 1 is repeated. If the test is to be stopped, the base (2) is pushed into the protective shell (13) through the telescopic member (9), the door panel (1321) is closed, and the situation inside the protective shell (13) is observed through the observation window (131) to ensure that the driving assembly (3), the camera device (135) and the lighting fixture (14) are turned off, and then the scene is left.
Citation Information
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