Processing device for enhancing conductivity of fabric
Through the coordinated work of designing support seats, storage components, spraying components, drive components and collection components, the problem of uneven spraying of conductive fabrics is solved, and the continuous supply and uniform spraying of conductive coatings are achieved, improving the coating quality and cleanliness of the working environment.
Patent Information
- Application Number
- CN202422253228.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-09-14
AI Technical Summary
When existing spraying devices spray the surface of conductive fabrics, there is a problem of uneven conductive coatings, resulting in unstable conductivity or loss of conductive properties in certain areas.
A processing device that enhances the conductivity of the fabric is designed, including a support seat, a material storage assembly, a spray coating assembly, a drive assembly and a collection assembly. The rotating shaft and a transmission wheel are driven by the drive motor, the belt drives the work chamber to rotate, and the nozzle and the nozzle rotate simultaneously to ensure uniform spraying, and the overflowing coating is collected through the deflector and the collection box.
Continuous supply and uniform spraying of conductive coatings are achieved, the quality and stability of the coating are improved, the uneven or missing coatings are avoided, and the cleanliness of the working environment is ensured.
Smart Images

Figure CN223209727U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of conductive fabrics, and in particular to a processing device for enhancing the conductivity of fabrics. Background Art
[0002] Conductive fabric refers to fabric made of conductive fibers or conductive materials. Its conductive performance mainly comes from the addition of conductive fibers and the type of plating. Conductive fibers often use conductive materials such as silver fibers and copper fibers, while the plating has a variety of combinations, such as silver-nickel, copper-nickel, etc. During the production process, a spray device can be used to spray conductive paint on the surface of the conductive fabric to enhance the conductivity of the conductive fabric.
[0003] There are some disadvantages in the use of existing devices. For example, when the existing spraying device is spraying on the surface of the conductive fabric, the conductive coating will be uneven because it cannot spray the conductive fabric in all directions. The uneven conductive coating will cause the conductive performance of the conductive fabric to be unstable or inconsistent, and even the conductive performance in some areas will be poor or completely lost. Utility Model Content
[0004] The purpose of the utility model is to provide a processing device for enhancing the conductivity of fabrics, so as to solve the problem that a spraying device sprays conductive paint unevenly on the surface of conductive fabrics.
[0005] The utility model provides the following technical solution: a processing device for enhancing the conductivity of fabrics, comprising four support seats, wherein the upper end surfaces of the four support seats are fixedly connected to an outer bin, a storage assembly is provided on the outer bin, a working bin is rotatably sleeved on the inner side of the outer bin, a spraying assembly is provided on the inner side of the working bin, a transverse pillar is fixedly connected between two of the support seats, a driving assembly is provided on the transverse pillar, the four support seats are fixedly connected to a connecting block relative to the outer wall, and a collecting assembly is provided on the four connecting blocks.
[0006] In the above scheme, the entire equipment is supported by four support bases to ensure that the equipment has sufficient stability and reliability during operation. The storage component can store enough paint to ensure the continuity of the spraying operation. The spraying component can achieve uniform and efficient spraying, improve the spraying efficiency and coating quality. The driving component can flexibly drive the working chamber to rotate, and the collection component can effectively collect the paint overflowed during the spraying process.
[0007] As a preferred embodiment of the above technical solution, the material storage assembly includes a material storage cavity formed by the outer bin and the working bin being sleeved together, and a feed pipe is fixedly connected to the outer wall of one side of the outer bin, and the feed pipe is communicated with the material storage cavity.
[0008] In the above scheme, the connecting design between the feed pipe and the storage chamber ensures the smooth flow of the conductive coating. The feed pipe can directly transport the conductive coating into the storage chamber, reducing the resistance to the flow of the conductive coating and also reducing the risk of contamination of the conductive coating during transportation.
[0009] As a preferred embodiment of the above technical solution, the spraying assembly includes a plurality of nozzles fixedly connected to the inner wall of the working chamber in a circular array, the plurality of nozzles are connected to the storage chamber, and the ends of the plurality of nozzles away from the inner wall of the working chamber are respectively fixedly connected to nozzles.
[0010] In the above scheme, the connection design between the nozzle and the storage chamber ensures the continuity and stability of spraying. The storage chamber provides sufficient supply of conductive paint for the nozzle, and the nozzle can continuously transport the conductive paint to the nozzle for spraying. This design ensures the continuity and stability of the spraying process and improves work efficiency.
[0011] As a preferred embodiment of the above technical solution, the drive assembly includes a drive motor fixedly connected to the outer wall of one side of the transverse pillar, the output end of the drive motor is fixedly connected to a rotating shaft, the rotating shaft transversely passes through the transverse pillar and is rotatably connected to the transverse pillar, the end of the rotating shaft away from the drive motor is fixedly connected to a transmission wheel, a rotating groove is provided on the outer side of the end of the working chamber close to the transverse pillar, a belt is provided between the rotating groove and the transmission wheel, and the working chamber and the transmission wheel are connected by belt drive.
[0012] In the above scheme, the driving motor drives the rotating shaft, which in turn drives the transmission wheel to rotate together. When the transmission wheel rotates, the belt drives the working chamber to rotate accordingly in the outer chamber. In addition, the rotation of the working chamber also ensures the continuity of the spraying process, and there will be no uneven or missing surface coating of the conductive fabric due to interruption of spraying. This continuity not only improves the spraying efficiency, but also ensures the quality and stability of the coating.
[0013] As a preferred embodiment of the above technical solution, the collection assembly includes a guide plate fixedly connected to one side of the upper end surface of two connecting blocks in the same group, and the two connecting blocks in the same group are respectively provided with collection boxes on the relative outer sides, and the two collection boxes are respectively fixedly connected with handles on the relative sides.
[0014] In the above scheme, through the guide plate set on the connecting block, the paint overflowed during the spraying process can flow smoothly into the collection box along the guide plate. This design effectively prevents the scattering and pollution of waste materials, ensures the cleanliness of the working environment, and the handle design enables the operator to easily take out the collection box, which is convenient for dumping or processing of waste materials.
[0015] As a preferred embodiment of the above technical solution, the two collection boxes are fixedly connected to each other with sliding blocks on the inner sides, and the two connecting blocks in the same group are laterally provided with sliding grooves adapted to the size of the sliding blocks on the outer sides, and the collection boxes are slidably connected to the connecting blocks through the sliding blocks.
[0016] In the above solution, the collection box is connected to the sliding groove of the connecting block through the sliding block, making the installation and disassembly process of the collection box simple and quick. The operator only needs to align the sliding block with the sliding groove and push or pull it out to complete the installation or disassembly of the collection box without the need for additional tools or complicated operations.
[0017] Compared with the prior art, the beneficial effects of the present invention are:
[0018] In the present invention, the connection design between the nozzle and the storage chamber ensures the continuous supply of conductive coating during the spraying process, avoiding spraying interruptions caused by insufficient coating. This continuity not only improves the spraying efficiency, but also ensures the quality and stability of the coating. The driving motor drives the rotating shaft and the transmission wheel to rotate, and the belt drives the working chamber to rotate in the outer chamber. As the working chamber rotates, the nozzle and the nozzle also rotate synchronously, so that the conductive fabric can be sprayed evenly. This design avoids uneven or missing coating and improves the quality and appearance of the coating. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 Schematic diagram of the overall structure of the processing device for enhancing the conductivity of fabrics;
[0020] Figure 2 Schematic diagram of the overall exploded structure of the processing device for enhancing the conductivity of fabrics;
[0021] Figure 3 A schematic diagram of the overall cross-sectional structure of a processing device for enhancing the conductivity of fabrics.
[0022] In the figure: 10. Support seat; 11. Outer compartment; 12. Working compartment; 13. Horizontal pillar; 14. Connecting block; 20. Storage chamber; 21. Feed pipe; 30. Nozzle; 31. Nozzle; 40. Driving motor; 41. Rotating shaft; 42. Transmission wheel; 43. Rotating groove; 44. Belt; 50. Guide plate; 51. Collection box; 52. Handle; 60. Sliding block; 61. Sliding groove. DETAILED DESCRIPTION
[0023] The technical solutions in the embodiments of the present invention will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present invention. Example 1
[0024] like Figure 1-Figure 3As shown, the utility model provides a technical solution: a processing device for enhancing the conductivity of fabrics, including four support seats 10, the upper end faces of the four support seats 10 are fixedly connected to an outer bin 11, and a storage assembly is provided on the outer bin 11. A working bin 12 is rotatably sleeved on the inner side of the outer bin 11, and a spraying assembly is provided on the inner side of the working bin 12. A transverse pillar 13 is fixedly connected between the two support seats 10, and a driving assembly is provided on the transverse pillar 13. The four support seats 10 are fixedly connected to a connecting block 14 relative to the outer wall, and a collecting assembly is provided on the four connecting blocks 14. During specific use, the entire equipment is supported by the four support seats 10 to ensure that the equipment has sufficient stability and reliability during operation, the storage assembly can store enough paint to ensure the continuity of the spraying operation, the spraying assembly can achieve uniform and efficient spraying, improve the spraying efficiency and coating quality, the driving assembly can flexibly drive the working bin 12 to rotate, and the collecting assembly can effectively collect the paint overflowed during the spraying process.
[0025] As an implementation method in this embodiment, Figure 3 As shown, the storage assembly includes a storage cavity 20 formed by the outer bin 11 and the working bin 12, and a feed pipe 21 is fixedly connected to the outer wall of one side of the outer bin 11, and the feed pipe 21 is connected to the storage cavity 20. During specific use, the connection design between the feed pipe 21 and the storage cavity 20 ensures the smooth flow of the conductive coating. The feed pipe 21 can directly transport the conductive coating into the storage cavity 20, reducing the resistance to the flow of the conductive coating, and also reducing the risk of contamination of the conductive coating during transportation.
[0026] As an implementation method in this embodiment, Figure 1 and Figure 2 As shown, the spraying assembly includes a plurality of nozzles 30 fixedly connected to the inner wall of the working chamber 12 in a circular array, and the plurality of nozzles 30 are connected to the storage chamber 20. The ends of the plurality of nozzles 30 away from the inner wall of the working chamber 12 are respectively fixedly connected with nozzles 31. During specific use, the connection design between the nozzle 30 and the storage chamber 20 ensures the continuity and stability of the spraying. The storage chamber 20 provides sufficient supply of conductive paint for the nozzle 30, and the nozzle 30 can continuously transport the conductive paint to the nozzle 31 for spraying. This design ensures the continuity and stability of the spraying process and improves work efficiency.
[0027] As an implementation method in this embodiment, Figure 3As shown, the drive assembly includes a drive motor 40 fixedly connected to the outer wall of one side of the transverse pillar 13, and the output end of the drive motor 40 is fixedly connected to a rotating shaft 41, which transversely penetrates the transverse pillar 13 and is rotatably connected to the transverse pillar 13, and the end of the rotating shaft 41 away from the drive motor 40 is fixedly connected to a transmission wheel 42, and a rotating groove 43 is provided on the outer side of the end of the working chamber 12 close to the transverse pillar 13, and a belt 44 is sleeved between the rotating groove 43 and the transmission wheel 42, and the working chamber 12 and the transmission wheel 42 are connected by the belt 44. During specific use, the driving motor 40 drives the rotating shaft 41, and then drives the transmission wheel 42 to rotate together. When the transmission wheel 42 rotates, the belt 44 drives the working chamber 12 to rotate accordingly in the outer chamber 11. In addition, the rotation of the working chamber 12 also ensures the continuity of the spraying process, and there will be no uneven or missing surface coating of the conductive fabric due to interruption of spraying. This continuity not only improves the spraying efficiency, but also ensures the quality and stability of the coating.
[0028] As an implementation method in this embodiment, Figure 1 and Figure 2 As shown, the collecting assembly includes a guide plate 50 fixedly connected to one side of the upper end surface of two connecting blocks 14 of the same group, and the two connecting blocks 14 of the same group are respectively provided with collecting boxes 51 on the opposite outer sides, and the two collecting boxes 51 are respectively fixedly connected with handles 52 on the opposite sides. During specific use, through the guide plate 50 provided on the connecting block 14, the paint overflowing during the spraying process can flow smoothly into the collecting box 51 along the guide plate 50. This design effectively prevents the scattering and pollution of waste materials and ensures the cleanliness of the working environment. The design of the handle 52 enables the operator to easily take out the collecting box 51, which is convenient for dumping or processing of waste materials.
[0029] As an implementation method in this embodiment, Figure 2 As shown, the two collecting boxes 51 are fixedly connected with sliding blocks 60 on the relative inner sides, and the two connecting blocks 14 of the same group are laterally opened with sliding grooves 61 adapted to the size of the sliding blocks 60 on the relative outer sides. The collecting box 51 is slidingly connected to the connecting block 14 through the sliding block 60. During specific use, the collecting box 51 is connected to the sliding groove 61 of the connecting block 14 through the sliding block 60, so that the installation and disassembly process of the collecting box 51 becomes simple and quick. The operator only needs to align the sliding block 60 with the sliding groove 61 and push or pull it out to complete the installation or disassembly of the collecting box 51 without the need for additional tools or complicated operations.
[0030] Working principle: The conductive paint is transported to the storage chamber 20 through the feed pipe 21, and the driving motor 40 drives the rotating shaft 41 and the transmission wheel 42 to rotate, and the belt 44 moves accordingly, thereby driving the working chamber 12 to rotate in the outer chamber 11. As the working chamber 12 rotates, the nozzle 31 and the nozzle 30 also rotate synchronously. This design ensures that the conductive fabric can be sprayed evenly, avoiding uneven or missing coatings, thereby improving the quality and appearance of the coating. During the spraying process, there will be paint overflow or dripping. These coatings The paint will flow along the guide plate 50 provided on the connecting block 14, and the guide plate 50 will guide the paint into the collecting box 51, effectively preventing the scattering and pollution of the waste. When the waste in the collecting box 51 accumulates to a certain extent, the operator can easily pull the collecting box 51 out from the connecting block 14 through the handle 52, and move the collecting box 51 to the designated waste disposal area for dumping or further processing of the waste. After the waste disposal is completed, the operator can reinstall the empty collecting box 51 back on the connecting block 14 for next use.
[0031] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same.
Claims
1. A processing device for enhancing the conductivity of fabric, comprising four support seats (10), characterized in that: The upper end surfaces of the four support seats (10) are fixedly connected to an outer bin (11), a material storage assembly is provided on the outer bin (11), a working bin (12) is rotatably sleeved on the inner side of the outer bin (11), a spraying assembly is provided on the inner side of the working bin (12), a transverse pillar (13) is fixedly connected between two of the support seats (10), a driving assembly is provided on the transverse pillar (13), and the four support seats (10) are fixedly connected to a connecting block (14) relative to the outer wall, and a collecting assembly is provided on the four connecting blocks (14).
2. The device for enhancing the conductivity of fabric according to claim 1, characterized in that: The material storage assembly comprises a material storage cavity (20) formed by sleeve connection between an outer bin (11) and a working bin (12); a feed pipe (21) is fixedly connected to an outer wall of one side of the outer bin (11); and the feed pipe (21) is in communication with the material storage cavity (20).
3. The device for enhancing the conductivity of fabric according to claim 2, characterized in that: The spray assembly comprises a plurality of nozzles (30) fixedly connected to the inner wall of the working chamber (12) in an annular array, the plurality of nozzles (30) being in communication with the material storage chamber (20), and a nozzle (31) being fixedly connected to one end of the plurality of nozzles (30) away from the inner wall of the working chamber (12).
4. The device for enhancing the conductivity of fabric according to claim 1, characterized in that: The driving assembly comprises a driving motor (40) fixedly connected to an outer wall of one side of the transverse pillar (13); an output end of the driving motor (40) is fixedly connected to a rotating shaft (41); the rotating shaft (41) transversely penetrates the transverse pillar (13) and is rotationally connected to the transverse pillar (13); an end of the rotating shaft (41) away from the driving motor (40) is fixedly connected to a transmission wheel (42); a rotating groove (43) is formed on the outer side of an end of the working chamber (12) close to the transverse pillar (13); a belt (44) is sleeved between the rotating groove (43) and the transmission wheel (42); and the working chamber (12) and the transmission wheel (42) are connected in transmission via the belt (44).
5. The device for enhancing the conductivity of fabric according to claim 1, characterized in that: The collecting assembly comprises a guide plate (50) fixedly connected to one side of the upper end surface of two connecting blocks (14) in the same group. Collection boxes (51) are respectively provided on the opposite outer sides of the two connecting blocks (14) in the same group. Handles (52) are respectively fixedly connected to the opposite sides of the two collecting boxes (51).
6. The device for enhancing the conductivity of fabric according to claim 5, characterized in that: The two collecting boxes (51) are fixedly connected to the inner sides thereof with a sliding block (60), and the two connecting blocks (14) in the same group are laterally provided with a sliding groove (61) adapted to the size of the sliding block (60) on the outer sides thereof. The collecting boxes (51) are slidably connected to the connecting blocks (14) via the sliding block (60).