A swing-resistant intelligent robot Type-C adapter
By using an ultra-fine coaxial main wire and a multi-layer composite structure, the problems of easy breakage, extrusion deformation, and overheating of traditional robot wiring harnesses are solved, achieving the effects of resistance to swaying, high temperature resistance, and stable signal, thus extending the service life.
Patent Information
- Application Number
- CN202422934860.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-11-29
AI Technical Summary
Traditional robot wiring harnesses are prone to breakage and deformation during operation. They also have large diameters and are prone to overheating, making them unsuitable for the working environment and affecting their service life.
It adopts an ultra-fine coaxial main wire design, combined with a composite structure of wear-resistant layer, compression-resistant layer, high-temperature resistant layer, reinforcement layer, elastic layer, cooling layer, shielding layer and insulation protection layer, to enhance the wear resistance, compression resistance, high-temperature resistance, elasticity and signal shielding performance of the wire harness.
It improves the torsion and bending performance of the wiring harness, reduces the risk of wear and crushing, extends service life, reduces signal interference, and ensures normal operation in high-temperature environments.
Smart Images

Figure CN223599199U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a switching line technical field, concretely is a swing -resistant intelligent robot Type -C switching line. BACKGROUND
[0002] Robot harness is the wiring component connecting each electrical equipment in the robot, and the durability and safety of the harness play a crucial role in the normal operation of the robot. With the development of the market, the requirements for robot safety are also getting higher and higher, and the requirements for the performance of the harness are gradually improved.
[0003] The traditional harness is easy to break during movement, and is easy to be extruded and deformed. Moreover, the traditional harness has a large design line diameter, cannot adapt to the working environment requirements, and is easy to generate heating during use, which reduces the service life. Therefore, we provide a swing -resistant intelligent robot Type -C switching line. UTILITY MODEL CONTENTS
[0004] The utility model aims at providing a swing -resistant intelligent robot Type -C switching line to solve the problems in the above background technology.
[0005] To achieve the above object, the utility model provides the following technical scheme: a swing -resistant intelligent robot Type -C switching line, including very thin coaxial main line, the left side of very thin coaxial main line is installed Type -C plug, the surface of Type -C plug is installed plastic shell, very thin coaxial main line is composed of wear -resistant layer, extrusion -resistant layer, high temperature resistant layer, reinforcing layer, elastic layer, cooling layer, shielding layer, insulating protective layer and wire core, extrusion -resistant layer sets up on the inner wall of wear -resistant layer.
[0006] Preferably, the high temperature resistant layer is arranged on the inner wall of the extrusion resistant layer, the reinforcing layer is arranged on the inner wall of the high temperature resistant layer, the elastic layer is arranged on the inner wall of the reinforcing layer, the cooling layer is arranged on the inner wall of the elastic layer, the shielding layer is arranged on the inner wall of the cooling layer, the insulating protective layer is arranged on the inner wall of the shielding layer, and the wire core is arranged in the insulating protective layer.
[0007] Preferably, the wear -resistant layer is made of ultra -high molecular weight polyethylene, and the extrusion -resistant layer is made of steel wire mesh.
[0008] Preferably, the high temperature resistant layer is made of crosslinked polyethylene, and the reinforcing layer is made of metal fiber.
[0009] Preferably, the elastic layer is made of polyolefin thermoplastic elastomer, and the cooling layer is made of cooling cotton.
[0010] Preferably, the shielding layer is made of copper wire braid, and the insulating protective layer is made of cotton paper.
[0011] Compared with the prior art, the utility model has the advantages that:
[0012] The utility model discloses a fine coaxial main line is set through setting up wear -resisting layer, improved the wear -resisting effect of main line surface, reduced the abrasion of long -time use, set up the anti -extrusion layer, improved the anti -extrusion effect of main line, avoid the phenomenon of breaking when being extruded, improved the effect of main line swing -resistant, set up the high temperature resistance layer, improved the high temperature resistance effect of main line, avoid the influence of core use under high temperature environment, set up the reinforcing layer, improved the strength and the bending -resistant effect of main line, improved the effect of main line swing -resistant simultaneously, set up the elastic layer, improved the elasticity of main line, and the cooling layer has good heat -insulating effect, can absorb part heat, slow down the temperature rise of main line, thereby prolonging the service life of main line, set up the shielding layer, reduced the interference of outside signal to main line signal transmission, set up the insulating protective layer, improved the effect of core insulating protection. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 It is the structure schematic diagram of the utility model front view;
[0014] Figure 2 It is the structure section view of the utility model fine coaxial main line side view;
[0015] Figure 3 It is the structure schematic diagram of the utility model Type-C plug and plastic shell front view;
[0016] Figure 4 It is the structure section view of the utility model fine coaxial main line, Type-C plug and plastic shell side view.
[0017] In the drawing: 1 fine coaxial main line, 11 wear -resisting layer, 12 anti -extrusion layer, 13 high temperature resistance layer, 14 reinforcing layer, 15 elastic layer, 16 cooling layer, 17 shielding layer, 18 insulating protective layer, 19 core, 2 Type-C plug, 3 plastic shell, 4 injection molding rubber sleeve, 5 adapter, 6 acetic acid adhesive tape. DETAILED DESCRIPTION
[0018] Clearly, the described embodiments are merely a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0019] Please refer to Figures 1-4 A swing-resistant intelligent robot Type-C adapter line, comprising an extremely thin coaxial main line 1, a Type-C plug 2 is installed on the left side of the extremely thin coaxial main line 1, a plastic shell 3 is installed on the surface of the Type-C plug 2, the extremely thin coaxial main line 1 is composed of a wear-resistant layer 11, an anti-extrusion layer 12, a high-temperature-resistant layer 13, a reinforcing layer 14, an elastic layer 15, a cooling layer 16, a shielding layer 17, an insulating protective layer 18 and a wire core 19, the wear-resistant layer 11 is made of ultra-high molecular weight polyethylene, the anti-extrusion layer 12 is arranged on the inner wall of the wear-resistant layer 11, the anti-extrusion layer 12 is made of steel wire mesh, the high-temperature-resistant layer 13 is arranged on the inner wall of the anti-extrusion layer 12, the high-temperature-resistant layer 13 is made of cross-linked polyethylene, the reinforcing layer 14 is arranged on the inner wall of the high-temperature-resistant layer 13, the reinforcing layer 14 is made of metal fiber, the elastic layer 15 is arranged on the inner wall of the reinforcing layer 14, the elastic layer 15 is made of polyolefin thermoplastic elastomer, the cooling layer 16 is arranged on the inner wall of the elastic layer 15, the cooling layer 16 is made of cooling cotton, the shielding layer 17 is arranged on the inner wall of the cooling layer 16, the shielding layer 17 is made of copper wire braid, the insulating protective layer 18 is arranged on the inner wall of the shielding layer 17, the insulating protective layer 18 is made of cotton paper, the cotton paper can reduce wear and tear, protect the wire core 19, and ensure the normal work of the main line, and it can also withstand tension and torque to a certain extent, reduce damage to the main line during use, and the wire core 19 is arranged inside the insulating protective layer 18.
[0020] Further, to avoid the intermediate wire core 19 from being excessively tight and broken by external bending force, the main line can withstand 300,000 swing tests under the condition of bearing weight, the extremely thin coaxial main line 1 is a special communication wire with the characteristics of extremely small outer diameter, softness and fast transmission speed.
[0021] Further, the extremely thin coaxial main line 1 is provided with an injection molding rubber sleeve 4 at the right end, the adapter 5 is connected to the right side of the extremely thin coaxial main line 1 through a wire, and the surface of the wire on the right side of the injection molding rubber sleeve 4 is wound with acetate cloth 6.
[0022] Through setting the extremely thin coaxial main line 1, the extremely thin coaxial line can bear high mechanical stress, the torsion and bending effect is improved, through setting the wear-resistant layer 11, the wear-resistant effect of the surface of the main line is improved, the wear caused by long time use is reduced, through setting the anti-extrusion layer 12, the anti-extrusion effect of the main line is improved, the phenomenon of breaking when subjected to extrusion force is avoided, and the main line resistance to swing effect is improved, through setting the high-temperature-resistant layer 13, the high-temperature-resistant effect of the main line is improved, the use of the core 19 is avoided in the high-temperature environment, through setting the reinforcing layer 14, the strength and bending resistance effect of the main line are improved, and the main line resistance to swing effect is improved, through setting the elastic layer 15, the elasticity of the main line is improved, the cooling layer 16 has good heat insulation effect, can absorb part of the heat, slow down the temperature rise of the main line, thereby prolong the service life of the main line, through setting the shielding layer 17, the interference of external signal to the signal transmission of the main line is reduced, through setting the insulation protection layer 18, the insulation protection effect of the core 19 is improved.
[0023] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present application, the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A swing-resistant smart robot Type-C adapter, characterized in that: Including very thin coaxial main line (1), the left side of very thin coaxial main line (1) is equipped with Type-C plug (2), the surface of Type-C plug (2) is equipped with plastic shell (3), very thin coaxial main line (1) is composed of wear-resistant layer (11), extrusion-resistant layer (12), high-temperature-resistant layer (13), reinforcing layer (14), elastic layer (15), cooling layer (16), shielding layer (17), insulation protective layer (18) and wire core (19), extrusion-resistant layer (12) is arranged on the inner wall of wear-resistant layer (11).
2. The swing-resistant smart robot Type-C adapter line of claim 1, wherein: High-temperature-resistant layer (13) is arranged on the inner wall of extrusion-resistant layer (12), reinforcing layer (14) is arranged on the inner wall of high-temperature-resistant layer (13), elastic layer (15) is arranged on the inner wall of reinforcing layer (14), cooling layer (16) is arranged on the inner wall of elastic layer (15), shielding layer (17) is arranged on the inner wall of cooling layer (16), insulation protective layer (18) is arranged on the inner wall of shielding layer (17), wire core (19) is arranged inside insulation protective layer (18).
3. The swing-resistant smart robot Type-C adapter line of claim 2, wherein: Wear-resistant layer (11) is made of ultrahigh molecular weight polyethylene, extrusion-resistant layer (12) is made of steel wire mesh.
4. The swing-resistant smart robot Type-C adapter line of claim 3, wherein: High-temperature-resistant layer (13) is made of crosslinked polyethylene, reinforcing layer (14) is made of metal fiber.
5. The swing-resistant smart robot Type-C adapter line of claim 4, wherein: Elastic layer (15) is made of polyolefin thermoplastic elastomer, cooling layer (16) is made of cooling cotton.
6. The swing-resistant smart robot Type-C adapter line of claim 5, wherein: Shielding layer (17) is made of copper wire braid, insulation protective layer (18) is made of cotton paper.