Hydrophilicity testing device for hydrophilic antistatic screen cloth
By introducing a steam generator and rotating plate structure into the hydrophilic antistatic mesh testing device, the problems of low testing efficiency and insufficient accuracy in the existing technology are solved, and efficient and accurate testing of humidity at various points on the mesh is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-06
- Publication Date
- 2026-03-10
AI Technical Summary
In existing technologies, hydrophilicity testing methods are inefficient and their accuracy is easily affected by the humidity of the external air, making it difficult to accurately assess the hydrophilicity of fabrics.
A hydrophilic antistatic mesh fabric hydrophilicity testing device was designed. By setting a steam generator and a rotating plate inside the limiting shell, combined with a sliding component and a humidity testing end, the device can accurately test the humidity of various parts of the mesh fabric.
It improves the accuracy of hydrophilicity testing, enabling efficient and precise humidity measurement at different locations while reducing interference from the external environment.
Smart Images

Figure CN223986003U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to textile detection equipment technical field, concretely is a hydrophilic type antistatic mesh cloth hydrophilicity testing arrangement. BACKGROUND
[0002] In the textile industry, the hydrophilic performance is an important index for measuring the water absorption performance of fabric, especially in the medical health, personal care and other fields, the demand of hydrophilic non-woven fabric is increasing. In order to understand the hydrophilic performance of fabric, it is usually necessary to carry out test according to certain test standard.
[0003] However, the conventional hydrophilicity test mode usually adopts AATCC 79:1995 standard, and the test principle is to drop a drop of water on the surface of fabric from a certain height, and record the time required for the mirror reflection of water drop to disappear, that is, the wetting time.
[0004] This test mode is not only inefficient, and the hydrophilicity test precision is susceptible to the influence of external air humidity. UTILITY MODEL CONTENT
[0005] (I) technical problem solved
[0006] In view of the deficiency of prior art, the utility model provides a hydrophilic type antistatic mesh cloth hydrophilicity testing arrangement, which solves the problem proposed in the above background art.
[0007] (II) technical scheme
[0008] In order to realize the above object, the utility model realizes the following technical scheme: a hydrophilic type antistatic mesh cloth hydrophilicity testing arrangement, characterized by: including first limit shell and second limit shell, the first limit shell is close to the one end of the second limit shell and is provided with cambered surface, the second limit shell is close to the one end of the first limit shell and is provided with cambered surface, the first limit shell is internally provided with first cavity, the second limit shell is internally provided with second cavity, the second cavity is provided with steam generator, the cambered surface of the first limit shell and the second limit shell is all provided with a plurality of first openings, the one end of the first limit shell is away from the second limit shell and is rotatably connected with first rotating plate, the first rotating plate is provided with second slot, the second slot is slidably connected with sliding assembly, the sliding assembly is fixedly connected with test assembly, the test assembly is slidably connected with the second slot.
[0009] Preferably, the sliding component includes a limiting plate and a sliding block. One of the limiting plates is fixedly connected to a motor. The output shaft of the motor is fixedly connected to a drive shaft. The drive shaft is threadedly connected to the sliding block. The sliding block is fixedly connected to two limiting blocks. A third slot is provided on both sides of the second slot. The limiting block is slidably connected to the third slot. The sliding block is fixedly connected to the test component.
[0010] Preferably, the testing assembly includes a sliding link and a humidity testing end. The sliding link has a first sliding cavity, and a spring is provided in the first sliding cavity. One end of the spring is fixedly connected to the first sliding cavity, and the other end of the spring is fixedly connected to the humidity testing end. The humidity testing end is slidably connected to the first sliding cavity.
[0011] Preferably, a fifth slot is formed on the outer circular surface of the first rotating plate, and a driving base is fixedly connected to the inner circular surface of the first limiting shell. A driving gear is rotatably connected to the driving base, and the driving gear meshes with the arc surface of the fifth slot.
[0012] Preferably, a plurality of fixed connecting rods are fixedly connected to the side of the first rotating plate near the second limiting shell, and a second rotating plate is fixedly connected to the end of the fixed connecting rod away from the first rotating plate. A fourth slot is opened in the second rotating plate, and the sliding connecting rod is slidably connected to the fourth slot.
[0013] Preferably, both the first limiting shell and the second limiting shell have a first slot on their outer arc surface, and an electromagnet is fixedly installed in the first slot.
[0014] (III) Beneficial Effects
[0015] This invention provides a hydrophilic antistatic mesh fabric hydrophilicity testing device. It has the following beneficial effects:
[0016] 1. This solution involves setting a steam generator in the second cavity, rotating a first rotating plate on the first limiting shell, and setting a retractable test component on the first rotating plate that can slide along the extension direction of the second slot. This allows the test component to test the humidity in the first opening at different positions on the arc surface of the first limiting shell, thereby achieving the purpose of testing the hydrophilicity of various parts of the hydrophilic antistatic mesh and improving the accuracy of hydrophilicity testing. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the main structure of this utility model;
[0018] Figure 2 This is a schematic diagram of the right-side structure of this utility model;
[0019] Figure 3 for Figure 2 A schematic diagram of the cross-sectional structure of AA.
[0020] In the diagram: 11. First limiting shell; 12. Second limiting shell; 13. First cavity; 14. Second cavity; 15. First slot; 16. Electromagnet; 17. Steam generator; 18. First opening; 20. First rotating plate; 21. Limiting plate; 22. Motor; 23. Drive shaft; 24. Sliding block; 25. Second slot; 26. Third slot; 27. Limiting block; 28. Sliding connecting rod; 30. First sliding cavity; 31. Spring; 32. Humidity testing end; 33. Second rotating plate; 34. Fourth slot; 35. Fixed connecting rod; 36. Fifth slot; 37. Drive base; 38. Drive gear. Detailed Implementation
[0021] This utility model provides a hydrophilic antistatic mesh fabric hydrophilicity testing device, such as... Figures 1-3 As shown, it includes a first limiting shell 11, a second limiting shell 12, a first cavity 13, a second cavity 14, a first slot 15, an electromagnet 16, a steam generator 17, a first opening 18, a first rotating plate 20, a limiting plate 21, a motor 22, a drive shaft 23, a sliding block 24, a second slot 25, a third slot 26, a limiting block 27, a sliding connecting rod 28, a first sliding cavity 30, a spring 31, a humidity testing end 32, a second rotating plate 33, a fourth slot 34, a fixed connecting rod 35, a fifth slot 36, a drive base 37, and a drive gear 38.
[0022] like Figures 1-2 As shown, the first limiting shell 11 has an arc surface at one end near the second limiting shell 12, and the second limiting shell 12 has an arc surface at one end near the first limiting shell 11. A first cavity 13 is formed inside the first limiting shell 11, and a second cavity 14 is formed inside the second limiting shell 12. A steam generator 17 is provided inside the second cavity 14. Several first openings 18 are formed on the arc surfaces of the first limiting shell 11 and the second limiting shell 12. A first rotating plate 20 is rotatably connected to the end of the first limiting shell 11 away from the second limiting shell 12. A second slot 25 is formed on the first rotating plate 20. A sliding component is slidably connected in the second slot 25. A test component is fixedly connected to the sliding component. The test component is slidably connected to the second slot 25.
[0023] It is worth noting that the outer arc surfaces of the first limiting shell 11 and the second limiting shell 12 are both provided with a first slot 15, and an electromagnet 16 is fixedly installed in the first slot 15. The electromagnet 16 is existing technology, and the first openings 18 are arranged in a star shape.
[0024] The sliding assembly includes a limiting plate 21 and a sliding block 24. A motor 22 is fixedly connected to the limiting plate 21. The motor 22 is existing technology. The output shaft of the motor 22 is fixedly connected to a drive shaft 23. The drive shaft 23 is threadedly connected to the sliding block 24. Two limiting blocks 27 are fixedly connected to the sliding block 24. A third slot 26 is provided on both sides of the second slot 25. The limiting blocks 27 are slidably connected to the third slots 26. The sliding block 24 is fixedly connected to the test assembly.
[0025] The testing assembly includes a sliding link 28 and a humidity testing end 32. A first sliding cavity 30 is provided in the sliding link 28. A spring 31 is provided in the first sliding cavity 30. One end of the spring 31 is fixedly connected to the first sliding cavity 30, and the other end of the spring 31 is fixedly connected to the humidity testing end 32. The humidity testing end 32 is slidably connected to the first sliding cavity 30.
[0026] A fifth slot 36 is provided on the outer circular surface of the first rotating plate 20. A drive base 37 is fixedly connected to the inner circular surface of the first limiting shell 11. A drive gear 38 is rotatably connected to the drive base 37. The drive gear 38 is existing technology. The drive gear 38 meshes with the arc surface of the fifth slot 36. Several fixed connecting rods 35 are fixedly connected to the side of the first rotating plate 20 near the second limiting shell 12. A second rotating plate 33 is fixedly connected to the end of the fixed connecting rod 35 away from the first rotating plate 20. A fourth slot 34 is provided in the second rotating plate 33. The sliding connecting rod 28 is slidably connected to the fourth slot 34.
[0027] When this solution performs a hydrophilicity test on the hydrophilic antistatic mesh, firstly, the hydrophilic antistatic mesh is laid between the arc surfaces of the first limiting shell 11 and the second limiting shell 12, and then the electromagnet 16 is activated. The electromagnet 16 generates magnetic force, and the electromagnet 16 uses magnetic force to make the first limiting shell 11 and the second limiting shell 12 fit tightly together.
[0028] Then, the motor 22 is started. The output shaft of the motor 22 drives the drive shaft 23 to rotate. The drive shaft 23 drives the sliding block 24 to slide along the extension direction of the second slot 25 through a threaded connection with the sliding block 24. The sliding block 24 drives the humidity test end 32 to slide along the extension direction of the second slot 25 through the sliding connecting rod 28. The humidity test end 32 tests the humidity at the first opening 18 in the same row.
[0029] Finally, the drive gear 38 is activated, and the drive gear 38 rotates and drives the first rotating plate 20 to rotate. The first rotating plate 20 drives the sliding block 24 to rotate through the limiting plate 21 and the drive shaft 23. The first rotating plate 20 drives the second rotating plate 33 to rotate through the fixed connecting rod 35, so that the sliding block 24 drives the sliding connecting rod 28 to rotate around the axis of the sliding connecting rod 28. This allows the sliding connecting rod 28 to test the humidity at other first openings 18, and thus the sliding connecting rod 28 to test the hydrophilicity of various parts of the hydrophilic antistatic mesh, improving the accuracy of the test.
[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A hydrophilic antistatic web hydrophilicity testing apparatus characterized by: The utility model provides a steam generator, including first limit shell (11) and second limit shell (12), first limit shell (11) is provided with arc surface near one end of second limit shell (12), second limit shell (12) is provided with arc surface near one end of first limit shell (11), first limit shell (11) is opened with first cavity (13) in, second limit shell (12) is opened with second cavity (14) in, second cavity (14) is provided with steam generator (17) in, the arc surface of first limit shell (11) and second limit shell (12) are all opened with a plurality of first opening (18), first limit shell (11) is rotatably connected with first rotary plate (20) in one end away from second limit shell (12), first rotary plate (20) is opened with second slot (25), second slot (25) is slidably connected with sliding assembly, sliding assembly is fixedly connected with test assembly, test assembly is slidably connected with second slot (25).
2. The hydrophilic antistatic web according to claim 1, wherein: The utility model provides a steam generator, including first limit shell (11) and second limit shell (12), first limit shell (11) is provided with arc surface near one end of second limit shell (12), second limit shell (12) is provided with arc surface near one end of first limit shell (11), first limit shell (11) is opened with first cavity (13) in, second limit shell (12) is opened with second cavity (14) in, second cavity (14) is provided with steam generator (17) in, the arc surface of first limit shell (11) and second limit shell (12) are all opened with a plurality of first opening (18), first limit shell (11) is rotatably connected with first rotary plate (20) in one end away from second limit shell (12), first rotary plate (20) is opened with second slot (25), second slot (25) is slidably connected with sliding assembly, sliding assembly is fixedly connected with test assembly, test assembly is slidably connected with second slot (25).
3. The hydrophilic antistatic web according to claim 2, wherein: The utility model provides a steam generator, including first limit shell (11) and second limit shell (12), first limit shell (11) is provided with arc surface near one end of second limit shell (12), second limit shell (12) is provided with arc surface near one end of first limit shell (11), first limit shell (11) is opened with first cavity (13) in, second limit shell (12) is opened with second cavity (14) in, second cavity (14) is provided with steam generator (17) in, the arc surface of first limit shell (11) and second limit shell (12) are all opened with a plurality of first opening (18), first limit shell (11) is rotatably connected with first rotary plate (20) in one end away from second limit shell (12), first rotary plate (20) is opened with second slot (25), second slot (25) is slidably connected with sliding assembly, sliding assembly is fixedly connected with test assembly, test assembly is slidably connected with second slot (25).
4. The hydrophilic antistatic web of claim 3, wherein: The utility model provides a steam generator, including first limit shell (11) and second limit shell (12), first limit shell (11) is provided with arc surface near one end of second limit shell (12), second limit shell (12) is provided with arc surface near one end of first limit shell (11), first limit shell (11) is opened with first cavity (13) in, second limit shell (12) is opened with second cavity (14) in, second cavity (14) is provided with steam generator (17) in, the arc surface of first limit shell (11) and second limit shell (12) are all opened with a plurality of first opening (18), first limit shell (11) is rotatably connected with first rotary plate (20) in one end away from second limit shell (12), first rotary plate (20) is opened with second slot (25), second slot (25) is slidably connected with sliding assembly, sliding assembly is fixedly connected with test assembly, test assembly is slidably connected with second slot (25).
5. The hydrophilicity testing device for hydrophilic antistatic mesh fabric according to claim 4, characterized in that: The utility model provides a steam generator, including first limit shell (11) and second limit shell (12), first limit shell (11) is provided with arc surface near one end of second limit shell (12), second limit shell (12) is provided with arc surface near one end of first limit shell (11), first limit shell (11) is opened with first cavity (13) in, second limit shell (12) is opened with second cavity (14) in, second cavity (14) is provided with steam generator (17) in, the arc surface of first limit shell (11) and second limit shell (12) are all opened with a plurality of first opening (18), first limit shell (11) is rotatably connected with first rotary plate (20) in one end away from second limit shell (12), first rotary plate (20) is opened with second slot (25), second slot (25) is slidably connected with sliding assembly, sliding assembly is fixedly connected with test assembly, test assembly is slidably connected with second slot (25).
6. The hydrophilic antistatic web according to claim 1, wherein: The arc outer side of the first limiting shell (11) and the second limiting shell (12) is provided with a first slot (15), and the electromagnet (16) is fixedly arranged in the first slot (15).