Corrosion-resistant graphene alloy grounding wire suitable for various environments

By designing a multi-layer protective structure and using sacrificial anode materials in the olefin alloy grounding wire, the problem of reduced corrosion resistance of the olefin alloy grounding wire under different environments is solved, achieving stable operation and heat dissipation in high temperature, high humidity or high acid and alkali environments.

CN224263833UActive Publication Date: 2026-05-19YANCHENG LEISIDA ELECTRIC APPLIANCE EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YANCHENG LEISIDA ELECTRIC APPLIANCE EQUIP CO LTD
Filing Date
2025-05-27
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing olefin alloy grounding wires exhibit reduced corrosion resistance under high temperature, high humidity, or high acid and alkali environments, affecting their stability in use.

Method used

Designed as a hollow cylindrical structure, it consists of a second ceramic layer, a support layer, an olefin alloy layer, an anode protection layer, and a first ceramic layer in sequence. The high hardness and chemical stability of the ceramic layer form a protective barrier, and the anode protection layer using zinc-based or magnesium-based sacrificial anode materials protects the olefin alloy matrix in a corrosive environment, improving stability through electrochemical reactions.

Benefits of technology

The stability and heat dissipation of the olefin alloy grounding wire are improved in various environments, and multi-layer protection is enhanced to ensure the reliability of the grounding wire in complex environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a corrosion-resistant graphene alloy grounding wire suitable for various environments. According to the corrosion-resistant graphene alloy grounding wire suitable for various environments, a second connecting assembly is installed at one end of the alloy grounding wire, one end of the second connecting assembly is fixedly connected with a second butt joint assembly, and the alloy grounding wire sequentially comprises a second ceramic layer, a supporting layer, a graphene alloy layer, an anode protection layer and a first ceramic layer from inside to outside. The supporting layer is made of high-strength stainless steel and is used for increasing the mechanical strength and toughness, the ceramic layer is a nano ceramic coating and is used for forming a protective barrier, and the anode protection layer is made of a magnesium-based sacrificial anode material and is used for an alkene alloy layer. According to the corrosion-resistant olefinic alloy grounding wire suitable for various environments, the hollow cylindrical alloy grounding wire is adopted through the design, the heat dissipation effect can be improved, and the inner surface and the outer surface of the alloy adopt multi-layer protection, so that the use stability of the alloy grounding wire in a complex annular shape is improved.
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Description

Technical Field

[0001] This utility model relates to the field of alloy grounding wire technology, and in particular to a corrosion-resistant olefin alloy grounding wire suitable for various environments. Background Technology

[0002] The grounding wire is the wire that is directly connected to the earth. It can also be called the safety return line. In case of danger, it directly transfers the high voltage to the earth, which can be considered a lifeline. Household appliances may have static electricity on their outer casing due to poor insulation or humid environment. In severe cases, this can lead to electric shock accidents.

[0003] Rare earth elements in rare alloy grounding wires can form a dense oxide film on the surface of the conductor, enhancing the metal's oxidation resistance. At the same time, rare alloy materials not only have excellent corrosion resistance but also maintain high electrical conductivity, ensuring the efficient operation of the grounding system.

[0004] While existing olefin alloy grounding wires have excellent corrosion resistance and high conductivity, their corrosion resistance decreases when used in different environments, such as high temperature, high humidity, or high acid and alkali environments, thus affecting the stability of their use.

[0005] Therefore, it is necessary to provide a corrosion-resistant olefin alloy grounding wire suitable for various environments to solve the above-mentioned technical problems. Utility Model Content

[0006] This invention provides a corrosion-resistant olefin alloy grounding wire suitable for various environments, solving the problem that olefin alloy grounding wires may affect operational stability in special environments.

[0007] To solve the above-mentioned technical problems, the present invention provides a corrosion-resistant alloy grounding wire suitable for various environments, comprising: an alloy grounding wire;

[0008] The second connecting component is installed at one end of the alloy grounding wire. A second docking component is fixedly connected to one end of the second connecting component. The alloy grounding wire consists of a second ceramic layer, a support layer, an olefin alloy layer, an anode protection layer, and a first ceramic layer from the inside out. The support layer is made of high-strength stainless steel to increase mechanical strength and toughness. The ceramic layer is a nano-ceramic coating to form a protective barrier. The anode protection layer is made of magnesium-based sacrificial anode material for the olefin alloy layer.

[0009] A connecting ring is installed on the outer surface of the alloy grounding wire at one end. The other end of the connecting ring is mounted with a mounting component via a fixing component. On the other side of the mounting component, a first connecting component with indentation is installed. The other end of the first connecting component is fixedly connected to a first mating component.

[0010] The high-strength stainless steel support layer serves as the support framework. Utilizing the excellent mechanical strength and toughness of stainless steel, it ensures that the grounding wire is not easily broken during installation and use. Indentations are present on the outer surfaces of the connecting ring and the second connecting component.

[0011] Preferably, the inner surfaces of the first connecting component, the second connecting component, and the connecting ring are all provided with sealing rings, and one end of the first connecting component and the second connecting component is provided with a vent hole;

[0012] The vents are for air circulation and to facilitate heat dissipation of the alloy grounding wire.

[0013] Preferably, the mounting assembly includes a mounting frame, a retaining ring, and a sealing ring, wherein the sealing ring is used to increase the sealing between the retaining ring and the first connecting assembly;

[0014] The first connecting component is fitted onto the outer surface of the retaining ring, allowing the olefin alloy layer and the second docking component to be directly connected.

[0015] Preferably, a monitoring component is mounted on top of the mounting assembly. The monitoring component includes a fixed base and a monitoring element, which is used to monitor the temperature and current of the olefin alloy layer during operation.

[0016] Preferably, the fixing component includes an internal threaded ring and an external threaded ring, which are threaded together to connect the connecting ring and the mounting component;

[0017] The internal threaded ring is installed at one end of the connecting ring, and the external threaded ring is located at one end of the mounting frame. The connection between the internal threaded ring and the external threaded ring is sealed.

[0018] Preferably, the first docking assembly includes a connecting frame and a mounting hole, and the first connecting assembly includes a retaining ring and a docking ring;

[0019] The connecting bracket, along with the mounting holes and bolts, can fix the first mating assembly in the corresponding position.

[0020] Compared with related technologies, the corrosion-resistant alkenyl alloy grounding wire provided by this utility model, suitable for various environments, has the following beneficial effects:

[0021] This invention provides a corrosion-resistant olefin alloy grounding wire suitable for various environments. To improve the stability of the olefin alloy grounding wire in complex environments, it is designed as a hollow cylinder, with layers consisting of a second ceramic layer, a support layer, an olefin alloy layer, an anode protection layer, and a first ceramic layer from the inside out. The high hardness and chemical stability of the ceramic material in the ceramic layer form the first protective barrier, preventing external corrosive media from contacting the substrate. Simultaneously, the anode protection layer uses zinc-based or magnesium-based sacrificial anode materials. When the grounding wire is in a corrosive environment, the sacrificial anode block preferentially undergoes an oxidation reaction, protecting the olefin alloy substrate through an electrochemical reaction. Furthermore, a pressing method is used to connect the second connecting component with the second docking assembly to one end of the alloy grounding wire, facilitating connection between the alloy grounding wire and the corresponding position. This design, using a hollow cylindrical alloy grounding wire, improves heat dissipation, and the multi-layered protection on both the inner and outer surfaces of the alloy enhances the stability of the alloy grounding wire in complex ring-shaped environments. Attached Figure Description

[0022] Figure 1 A schematic diagram of a preferred embodiment of the corrosion-resistant olefin alloy grounding wire suitable for various environments provided by this utility model;

[0023] Figure 2 A schematic diagram of the structure of the first connecting component is provided for this utility model;

[0024] Figure 3 Provided for this utility model Figure 2 An enlarged view of point A shown;

[0025] Figure 4 A schematic diagram of the docking ring is provided for this utility model;

[0026] Figure 5 A schematic diagram of the mounting holes provided for this utility model.

[0027] The diagram is labeled as follows: 1. Alloy grounding wire; 101. Anode protection layer; 102. First ceramic layer; 103. Second ceramic layer; 104. Support layer; 105. Alkyd alloy layer; 2. Connecting ring; 3. Mounting assembly; 301. Mounting frame; 302. Snap ring; 303. Sealing ring; 4. Indentation; 5. First docking assembly; 501. Connecting bracket; 502. Mounting hole; 6. First connecting assembly; 601. Fixing ring; 602. Docking ring; 7. Monitoring assembly; 701. Fixing base; 702. Monitoring component; 8. Fixing assembly; 801. Internal threaded ring; 802. External threaded ring; 9. Second connecting assembly; 10. Second docking assembly; 11. Sealing ring; 12. Vent hole. Detailed Implementation

[0028] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0029] Please refer to the following: Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 ,in, Figure 1 A schematic diagram of a preferred embodiment of the corrosion-resistant olefin alloy grounding wire suitable for various environments provided by this utility model; Figure 2 A schematic diagram of the structure of the first connecting component is provided for this utility model; Figure 3 Provided for this utility model Figure 2 An enlarged view of point A shown; Figure 4 A schematic diagram of the docking ring is provided for this utility model; Figure 5 This utility model provides a structural schematic diagram of the mounting hole. The corrosion-resistant alloy grounding wire suitable for various environments includes: alloy grounding wire 1;

[0030] The second connecting component 9 is installed at one end of the alloy grounding wire 1. A second docking component 10 is fixedly connected to one end of the second connecting component 9. The alloy grounding wire 1 consists of a second ceramic layer 103, a support layer 104, an olefin alloy layer 105, an anode protection layer 101, and a first ceramic layer 102 from the inside out. The support layer 104 is made of high-strength stainless steel to increase mechanical strength and toughness. The ceramic layer 102 is a nano-ceramic coating to form a protective barrier. The anode protection layer 101 is made of magnesium-based sacrificial anode material for the olefin alloy layer 105.

[0031] A connecting ring 2 is installed on the outer surface of the alloy grounding wire 1 at the other end. The other end of the connecting ring 2 is equipped with an installation component 3 via a fixing component 8. A first connecting component 6 with an indentation 4 is installed on the other side of the installation component 3. The other end of the first connecting component 6 is fixedly connected to a first docking component 5.

[0032] The high-strength stainless steel support layer 104 serves as a support frame. Utilizing the good mechanical strength and toughness of stainless steel, it ensures that the grounding wire is not easily broken during installation and use. There are indentations 4 on the outer surfaces of the connecting ring 2 and the second connecting component 9. The connecting ring 2, the second connecting component 9, and the first connecting component 6 are all fixed and installed by extrusion. The first mating component 5 is connected to the olefin alloy layer 105. The alloy grounding wire 1 is an olefin alloy grounding wire.

[0033] The inner surfaces of the first connecting component 6, the second connecting component 9, and the connecting ring 2 are all provided with sealing rings 11, and one end of the first connecting component 6 and the second connecting component 9 is provided with a vent hole 12.

[0034] Vent hole 12 is for assisting air circulation and facilitating heat dissipation of alloy grounding wire 1.

[0035] The mounting component 3 includes a mounting frame 301, a retaining ring 302, and a sealing ring 303, wherein the sealing ring 303 is used to increase the sealing between the retaining ring 302 and the first connecting component 6;

[0036] The first connecting component 6 is fitted onto the outer surface of the retaining ring 302, allowing the olefin alloy layer 105 and the second docking component 10 to be directly connected.

[0037] The top of the mounting assembly 3 is equipped with a monitoring assembly 7, which includes a fixed base 701 and a monitoring component 702. The monitoring component 702 is used to monitor the temperature and current of the olefin alloy layer 105 during operation.

[0038] Monitoring component 7 can monitor the operating status of alloy grounding wire 1 in real time.

[0039] The fixing component 8 includes an internal threaded ring 801 and an external threaded ring 802, which are threaded together to connect the connecting ring 2 and the mounting component 3.

[0040] The internal threaded ring 801 is installed at one end of the connecting ring 2, and the external threaded ring 802 is located at one end of the mounting frame 301. The connection between the internal threaded ring 801 and the external threaded ring 802 is sealed.

[0041] The first docking assembly 5 includes a connecting frame 501 and a mounting hole 502, and the first connecting assembly 6 includes a retaining ring 601 and a docking ring 602;

[0042] The connecting bracket 501, together with the mounting hole 502 and bolts, can fix the first docking component 5 in the corresponding position. The docking ring 602 is inserted into the inner surface of one end of the alloy grounding wire 1, which can increase the sealing of the connection.

[0043] The working principle of the corrosion-resistant alkenyl alloy grounding wire suitable for various environments provided by this utility model is as follows:

[0044] The olefin alloy grounding wire is designed as a hollow cylinder, and from the inside out, it consists of a second ceramic layer 103, a support layer 104, an olefin alloy layer 105, an anode protection layer 101, and a first ceramic layer 102. By utilizing the high hardness and chemical stability of the ceramic material in the ceramic layer, a first protective barrier is formed to prevent external corrosive media from contacting the substrate. At the same time, the anode protection layer 101 uses zinc-based or magnesium-based sacrificial anode material. When the grounding wire is in a corrosive environment, the sacrificial anode block preferentially undergoes an oxidation reaction, protecting the olefin alloy substrate through an electrochemical reaction. Furthermore, the second connecting component 9 with the second docking component 10 and one end of the alloy grounding wire 1 are connected by a pressing method, which facilitates the connection of the alloy grounding wire 1 to the corresponding position.

[0045] Compared with related technologies, the corrosion-resistant alkenyl alloy grounding wire provided by this utility model, suitable for various environments, has the following beneficial effects:

[0046] To improve the stability of the olefin alloy grounding wire in complex environments, the olefin alloy grounding wire is designed as a hollow cylinder. From the inside out, it consists of a second ceramic layer 103, a support layer 104, an olefin alloy layer 105, an anode protection layer 101, and a first ceramic layer 102. By utilizing the high hardness and chemical stability of the ceramic material in the ceramic layer, a first protective barrier is formed to prevent external corrosive media from contacting the substrate. At the same time, the anode protection layer 101 uses zinc-based or magnesium-based sacrificial anode material. When the grounding wire is in a corrosive environment, the sacrificial anode block preferentially undergoes an oxidation reaction, protecting the olefin alloy substrate through an electrochemical reaction. Furthermore, the second connecting component 9 with the second docking component 10 and one end of the alloy grounding wire 1 are connected by a pressing method, facilitating the connection of the alloy grounding wire 1 to the corresponding position. This design, using a hollow cylindrical alloy grounding wire 1, can improve heat dissipation. Moreover, the alloy's inner and outer surfaces are both protected by multiple layers, improving the stability of the alloy grounding wire 1 in complex ring conditions.

[0047] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A corrosion-resistant olefin alloy grounding wire suitable for various environments, characterized in that, include: Alloy grounding wire; The second connecting component is installed at one end of the alloy grounding wire. A second docking component is fixedly connected to one end of the second connecting component. The alloy grounding wire consists of a second ceramic layer, a support layer, an olefin alloy layer, an anode protection layer, and a first ceramic layer from the inside out. The support layer is made of high-strength stainless steel to increase mechanical strength and toughness. The ceramic layer is a nano-ceramic coating to form a protective barrier. The anode protection layer is made of magnesium-based sacrificial anode material for the olefin alloy layer. A connecting ring is installed on the outer surface of the alloy grounding wire at one end. The other end of the connecting ring is mounted with a mounting component via a fixing component. On the other side of the mounting component, a first connecting component with indentation is installed. The other end of the first connecting component is fixedly connected to a first mating component.

2. The corrosion-resistant olefin alloy grounding wire suitable for various environments according to claim 1, characterized in that, The inner surfaces of the first connecting component, the second connecting component, and the connecting ring are all provided with sealing rings, and one end of the first connecting component and the second connecting component is provided with a vent hole.

3. The corrosion-resistant olefin alloy grounding wire suitable for various environments according to claim 1, characterized in that, The mounting assembly includes a mounting frame, a retaining ring, and a sealing ring, the sealing ring being used to increase the seal between the retaining ring and the first connecting assembly.

4. The corrosion-resistant olefin alloy grounding wire suitable for various environments according to claim 1, characterized in that, A monitoring component is mounted on top of the mounting assembly. The monitoring component includes a fixed base and a monitoring element, which is used to monitor the temperature and current of the olefin alloy layer during operation.

5. The corrosion-resistant olefin alloy grounding wire suitable for various environments according to claim 1, characterized in that, The fixing component includes an internally threaded ring and an externally threaded ring, which are threaded together to connect the connecting ring and the mounting component.

6. The corrosion-resistant olefin alloy grounding wire suitable for various environments according to claim 1, characterized in that, The first docking assembly includes a connecting bracket and a mounting hole, and the first connecting assembly includes a retaining ring and a docking ring.