Electric shock prevention wire protection device
By designing a conductor protection device to prevent electric shock, a rotating clamp and a sliding clamp are used to tightly hold the conductor insulation layer, thus solving the risk of electric shock to exposed conductors during grounding and daily use, and achieving stability and safety of insulation effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YUEQING KEYI ELECTRIC GROUP
- Filing Date
- 2025-05-22
- Publication Date
- 2026-05-29
AI Technical Summary
During conductor maintenance, exposed conductors pose a risk of electric shock during grounding and daily use, and existing technologies are insufficient to effectively prevent electric shock accidents.
Design an electric shock protection device for conductors, comprising two semi-circular bodies, a rotating clamp and a sliding clamp. The combination of the rotating clamp and the sliding clamp tightly clamps the insulation layer of the conductor to ensure insulation effect, and the snap-fit and positioning structure prevents slippage and rotation.
It effectively prevents the conductor from sliding and rotating during grounding and daily use, ensuring insulation and avoiding electric shock accidents.
Smart Images

Figure CN224305316U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a wire protection device to prevent electric shock. Background Technology
[0002] During line maintenance, grounding is necessary to ensure construction safety. Typically, the insulation layer is stripped from a section of the conductor. This exposed section is used to connect the grounding wire during maintenance. After maintenance, the insulation layer needs to be reinstalled on the exposed conductor to prevent electric shock accidents caused by the exposed conductor.
[0003] In order to ensure that the bare wire can be grounded again during the next maintenance, and at the same time ensure the protection against electric shock in daily use, it is urgent to develop a wire protection device against electric shock. Summary of the Invention
[0004] To address the aforementioned shortcomings, this utility model provides a wire protection device against electric shock.
[0005] To achieve the above objectives, this utility model employs an anti-electric shock conductor protection device, comprising two bodies, two rotating clamps, and two sliding clamps. Each body, rotating clamp, and sliding clamp is semi-circular. The two bodies are joined together to form a hollow cylinder. Each body has a rotating connection end and a sliding connection end at its two ends. The rotating clamps and sliding clamps are respectively connected to the rotating connection end and sliding connection end of the body. The two rotating clamps are hinged to the rotating connection ends of the two bodies, and the two sliding clamps are respectively fitted onto the sliding connection ends of the two bodies. The two rotating clamps and the two sliding clamps are hinged together along their sides. Each rotating clamp and sliding clamp has a buckle on the other side of its hinged side, which connects the two rotating clamps and the sliding clamps together. The inner diameter of the hollow cylinder formed by the two rotating clamps and the sliding clamps is smaller than the inner diameter of the hollow cylinder formed by the two bodies.
[0006] Specifically, the rotating clamp and the sliding clamp are inserted into the body and engaged inside the body at the connection end.
[0007] Specifically, the sliding connection end of the main body forms two outwardly extending connecting rods, and the two sliding clamps form connecting holes corresponding to the connecting rods. The sliding clamps are connected to the sliding connection end of the main body through the connecting holes and the connecting rods.
[0008] Specifically, the rotating clamp is hinged to the outside of the rotating connection end of the body.
[0009] Specifically, the main body includes an upper body and a lower body. The upper body has locking pins on both sides, and the lower body has locking slots on both sides. The upper body is connected to the lower body through the engagement of the locking pins and the locking slots.
[0010] Specifically, the upper body is provided with a positioning groove facing the lower body, and the lower body is provided with a positioning strip facing the upper body. The positioning strip and the positioning groove cooperate to prevent relative movement between the upper body and the lower body.
[0011] Specifically, each of the two bodies is provided with a positioning ring.
[0012] Specifically, the inner walls of the rotating clamp and the sliding clamp are provided with multiple protruding anti-slip bumps. These anti-slip bumps can press tightly against the insulation layer of the wire, preventing the rotating clamp and the sliding clamp from moving.
[0013] The beneficial effect of this utility model is that the main body covers the exposed wire during use, and the rotating clamps and sliding clamps at both ends are connected to the insulation layer at both ends of the exposed wire. Since the inner diameter of the rotating clamps and sliding clamps is smaller than the inner diameter of the main body, and one end of the rotating clamps and sliding clamps is clamped to the inside of the main body, it can be ensured that the rotating clamps and sliding clamps tightly hold the insulation layer of the wire. The rotating clamps and sliding clamps are connected to the main body in two ways, which can ensure that the device will not slide or rotate on the wire, thus ensuring the insulation effect. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of a specific embodiment of the present utility model.
[0015] Figure 2 This is a schematic diagram from another angle of a specific embodiment of the present utility model.
[0016] Figure 3 This is an axial sectional view of a specific embodiment of the present invention.
[0017] Figure 4 This is a radial sectional view of a specific embodiment of the present invention. Detailed Implementation
[0018] like Figures 1-4As shown, a specific embodiment of this utility model is a wire protection device against electric shock, comprising two bodies (1, 2), two rotating clamps 3, and two sliding clamps 4. The bodies (1, 2), rotating clamps 3, and sliding clamps 4 are all semi-circular. The two bodies (1, 2) are joined to form a hollow cylinder. Positioning rings 11 are respectively provided on the two bodies (1, 2). Rotary connecting ends and sliding connecting ends are formed at both ends of the bodies (1, 2). The rotating clamps 3 and sliding clamps 4 are respectively connected to the rotating connecting ends and sliding connecting ends of the bodies (1, 2). The two rotating clamps 3 are respectively hinged to the rotating connecting ends of the two bodies (1, 2), with the hinge position of the rotating clamps 3 located outside the rotating connecting ends of the bodies (1, 2). The two sliding clamps 4 are respectively sleeved on the sliding connecting ends of the two bodies (1, 2). The sliding connecting ends of the bodies (1, 2) form... Two outwardly extending connecting rods 12, and two sliding clamps 4 forming connecting holes 41 corresponding to the connecting rods. The sliding clamps 4 are connected to the sliding connecting ends of the main body (1, 2) through the connecting holes 41 and the connecting rods 12. The rotating clamps 3 and the sliding clamps 4 are inserted into the main body (1, 2) at the connecting end and are clamped inside the main body (1, 2). The two rotating clamps 3 and the two sliding clamps 4 are hinged to each other along the side. The rotating clamps 3 and the sliding clamps 4 are provided with buckles 5 on the other side of the hinged side. The buckles 5 splice the two rotating clamps 3 and the sliding clamps 4 together. The inner diameter of the hollow cylinder formed by the two rotating clamps 3 and the sliding clamps 4 is smaller than the inner diameter of the hollow cylinder formed by the two main bodies (1, 2). Multiple protruding anti-slip protrusions 31 are provided on the inner walls of the rotating clamps 3 and the sliding clamps 4.
[0019] The main body (1, 2) includes an upper body 1 and a lower body 2. The upper body 1 is provided with locking pins 13 on both sides, and the lower body 2 is provided with circular locking grooves 21 on both sides. The upper body 1 is connected to the lower body 2 through the engagement of the locking pins 13 and the circular locking grooves 21. The upper body 1 is provided with a positioning groove 14 facing the lower body 2, and the lower body 2 is provided with a positioning strip 22 protruding towards the upper body 1. The engagement of the positioning strip 22 and the positioning groove 14 prevents the upper body 1 and the lower body 2 from moving relative to each other.
[0020] The preferred embodiments of the present invention described above are examples of the present invention. Other obvious variations or combinations are also within the scope of protection of the claims.
Claims
1. A wire protection device against electric shock, comprising two bodies, two rotating clamps, and two sliding clamps, wherein each body, rotating clamp, and sliding clamp is semi-circular, and the two bodies are joined together to form a hollow cylinder. A rotating connection end and a sliding connection end are respectively formed at both ends of each body, and the rotating clamps and sliding clamps are respectively connected to the rotating connection end and the sliding connection end of the body, characterized in that: The two rotating clamps are respectively hinged to the rotating connection ends of the two bodies, and the two sliding clamps are respectively sleeved on the sliding connection ends of the two bodies. The two rotating clamps are hinged to each other along the side, and the two sliding clamps are hinged to each other along the side. The rotating clamps and sliding clamps are provided with buckles on the other side of the hinged side. The buckles splice the two rotating clamps and sliding clamps together. The inner diameter of the hollow cylinder formed by the two rotating clamps and sliding clamps is smaller than the inner diameter of the hollow cylinder formed by the two bodies.
2. The electric shock protection device for conductors according to claim 1, characterized in that: The rotating clamp and sliding clamp are inserted into the body at the connection end and locked inside the body.
3. The electric shock protection device for conductors according to claim 2, characterized in that: The sliding connection end of the main body forms two outwardly extending connecting rods, and the two sliding clamps form connecting holes corresponding to the connecting rods. The sliding clamps are connected to the sliding connection end of the main body through the connecting holes and the connecting rods.
4. The electric shock protection device for conductors according to claim 2, characterized in that: The rotating clamp is hinged to the outside of the rotating connection end of the main body.
5. The electric shock protection device for conductors according to claim 1, 2, 3, or 4, characterized in that: The main body includes an upper body and a lower body. The upper body has locking pins on both sides, and the lower body has locking slots on both sides. The upper body is connected to the lower body by the engagement of the locking pins and the locking slots.
6. The electric shock protection device for conductors according to claim 5, characterized in that: The upper body is provided with a positioning groove facing the lower body, and the lower body is provided with a positioning strip facing the upper body. The positioning strip and the positioning groove cooperate to prevent relative movement between the upper body and the lower body.
7. The electric shock protection device for conductors according to claim 1, 2, 3, or 4, characterized in that: Each of the two bodies is provided with a positioning ring.
8. The electric shock protection device for conductors according to claim 1, 2, 3, or 4, characterized in that: The inner walls of the rotating clamp and the sliding clamp are provided with multiple protruding anti-slip bumps.