High-stability electric power grounding pile for electric power engineering
Through the design of multiple fixing components, the problem of poor stability of electric grounding piles is solved, the fixation and grip between grounding piles and soil is enhanced, and safety is improved.
Patent Information
- Application Number
- CN202422406452.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-10-08
AI Technical Summary
The existing electric grounding piles have poor stability and are prone to loosening, resulting in loose connections and insufficient grip, posing safety hazards.
The design of multiple fixing components is adopted, including the first, second and third fixing components. The fixing and grip of the grounding pile and soil are enhanced by the knob driving rod and gear meshing and threaded connection, combining the shrapnel and oblique block structure.
It improves the stability of the grounding pile, reduces safety risks caused by loosening, and enhances the firmness of the grounding pile and soil connection.
Smart Images

Figure CN223285286U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electric power engineering, in particular to a high-stability electric grounding pile for electric power engineering. Background Art
[0002] Power grounding stakes, a critical piece of equipment in power projects, are buried in soil or concrete to effectively and safely conduct potential leakage currents from electrical equipment or lightning to the ground, ensuring the safety of both equipment and personnel. They come in a variety of styles, including galvanized, copper-clad steel, and ionized grounding electrodes. Installation requires standardized site selection, pit excavation, burial, connection, and ground resistance testing. Regular inspection and timely repair are crucial maintenance measures to ensure their long-term effectiveness.
[0003] Current power grounding piles are usually made of metal and hammered into the ground by external force. They have poor stability, which can easily cause the connection between the grounding pile and the ground wire to loosen. At the same time, the grounding pile is also prone to loosening in the soil. In addition, the existing power grounding piles have poor grip, which can cause safety hazards during maintenance due to the loose power grounding piles. Utility Model Content
[0004] The purpose of the present invention is to provide a high-stability power grounding pile for power engineering to solve the problems raised in the above-mentioned background technology.
[0005] In order to solve the above technical problems, the technical solution adopted by the present invention is:
[0006] High stability power grounding piles for power engineering, including:
[0007] A grounding pile body, one end of the grounding pile body is conical, and a first movable groove, a second movable groove, a fixed groove, a movable groove and a clamping groove are respectively opened on the grounding pile body, and a plurality of limit grooves are opened inside the grounding pile body. A plurality of fixing holes are evenly arranged in the vertical direction on the grounding pile body, and a plurality of clamping holes and fixing holes are evenly arranged in the circumferential direction. The first driving rod and the second driving rod are respectively rotatably connected to the grounding pile body, and a first thread groove and a second thread groove are respectively opened in partial areas on the second driving rod, and a knob is fixedly connected to one end of the first driving rod and the second driving rod respectively;
[0008] a first fixing component, wherein a portion of the first fixing component is located in the first movable groove, and another portion of the first fixing component is located in the second movable groove, and the first fixing component is used to fix the position of the grounding pile body;
[0009] A second fixing component is located in the fixing groove and is used to fix the position of the grounding pile body;
[0010] The third fixing component is located outside the grounding pile body and is used to fix the position of the grounding pile body.
[0011] When the grounding pile body needs to be fixed, the grounding pile body is partially buried in the soil so that the first fixing component is located above the ground. Then, the first driving rod and the second driving rod are respectively driven to rotate by twisting the knob. The rotation of the first driving rod will drive the first fixing component to work so that the grounding pile body is fixed to the ground. Then, the second driving rod is driven to work by twisting the knob so that the second driving rod drives the second fixing component and the third fixing component to work respectively, thereby further fixing the grounding pile body, making it less likely to loosen in the soil, thereby reducing the safety hazards caused by the loosening of the grounding pile body.
[0012] A further improvement of the technical solution of the present utility model is that: the first fixed component includes a driving gear and a plurality of driven gears, the driving gear is meshed with the plurality of driven gears, the driving gear is fixedly connected to the first driving rod, a plurality of rotating rods are rotatably provided on the grounding pile body, the rotating rods are fixedly connected to the driven gears, the driven gears are located in the first movable groove, the rotating rods are fixedly connected to a connecting plate, the connecting plate is located below the driven gear, and the connecting plate is provided with a socket for use with a pin.
[0013] The above-mentioned technical solution is adopted. In this solution, when the first fixing component needs to work, the knob is twisted, and the knob drives the first driving rod to rotate. The rotation of the first driving rod drives the driving gear to rotate. Because there is a meshing relationship between the driven gear and the driving gear, the rotation of the driving gear drives the rotation of several driven gears meshed with it. The rotation of the driven gear drives the connecting plate to rotate through the rotating rod fixedly connected to it. When it is rotated to the appropriate position, the connecting plate is fixed by using a pin through the socket, thereby fixing the grounding pile body.
[0014] A further improvement of the technical solution of the present utility model is that: the second fixing component includes several fixing plates and push rods, and the fixing plates are evenly arranged in the circumferential direction, the fixing plates are fixedly connected to the grounding pile body, and the fixing plates are evenly arranged in the height direction and slidably connected with a columnar fixing block, the fixing block is slidably connected to the fixing hole, one end of the fixing block is fixedly connected to an oblique block, and the end of the oblique block close to the fixed block is fixedly connected to a pressure spring, the other end of the pressure spring is fixedly connected to the fixing plate, the push rod is located in the fixing groove and is threadedly connected to the second driving rod through the first thread groove, the push rod is used in conjunction with the oblique block, and several limit rods are fixedly connected to the push rod, and the limit rods are slidably connected to the limit groove.
[0015] The above-mentioned technical solution is adopted. In this solution, when the second fixing component is required to start working, the knob is twisted to drive the second driving rod to rotate. Because the push rod is threadedly connected to the second driving rod through the first thread groove and the limit rod on the push rod is slidably connected to the limit groove opened on the grounding pile body, when the second driving rod rotates, it will drive the push rod to move downward along the axis of the second driving rod, thereby colliding with the inclined block, thereby pushing the inclined block forward. The movement of the inclined block will compress the pressure spring and drive the fixed block fixedly connected to it to move toward the outside of the grounding pile body, extending into the soil, increasing the contact area with the soil, thereby enhancing the grip of the grounding pile body, and thus improving the stability of the grounding pile body.
[0016] A further improvement of the technical solution of the present utility model is that: the third fixed component includes a spring piece and a moving block, the spring piece is J-shaped and is evenly arranged in the circumferential direction and is fixedly connected to the grounding pile body through a card slot, a deformation groove and a matching groove are respectively provided on the spring piece, the moving block is located in the moving groove and is threadedly connected to the second driving rod through a second thread groove, the moving block is slidably connected to the moving groove, a number of matching blocks are fixedly connected to the moving block, the matching blocks are tilted, and the matching blocks are used in conjunction with the spring piece through the matching groove.
[0017] The above-mentioned technical solution is adopted. In this solution, when the second drive rod rotates, it drives the movable block threaded with it to move downward. The downward movement of the movable block drives the mating block fixedly connected to it to move, causing the mating block to disengage from the mating slot. At this time, the spring piece will return to its original state. When the movable block is in its original position, the mating block will squeeze the spring piece through the mating slot, causing the spring piece to be in a contracted state. When the movable block moves downward, it drives the mating block downward. Because the mating block is tilted and will disengage from the spring piece, the spring piece will slowly return to its original state. At this time, the restored spring piece will hook into the soil, thereby enhancing the stability of the grounding pile body. When it needs to be retracted, the movable block is moved in the opposite direction. The movable block will return to the contracted state through the squeezing between the mating block and the mating slot. At this time, the deformation slot on the spring piece is in a deformed state.
[0018] A further improvement of the technical solution of the present utility model is that: one end of the fixed block away from the oblique block is fixedly connected to a top block, and the top block is arranged in a hemispherical shape.
[0019] By adopting the above technical solution, the hemispherical top block is provided to reduce the resistance encountered by the fixed block when the fixed block moves in the soil.
[0020] A further improvement of the technical solution of the present utility model is that a plurality of protrusions are provided below the connecting plate.
[0021] By adopting the above technical solution, the contact area between the connecting plate and the soil can be increased by providing a plurality of protrusions, thereby enhancing the grip between the grounding pile body and the soil, thereby improving the stability of the grounding pile body.
[0022] A further improvement of the technical solution of the utility model is that: contact grooves are provided on the plurality of fixing blocks.
[0023] By adopting the above technical solution, the contact area between the fixing block and the soil can be increased by providing a contact groove on the fixing block, thereby enhancing the grip between the grounding pile body and the soil and improving the stability of the grounding pile body.
[0024] Due to the adoption of the above technical solution, the present invention has achieved the following technical advancements compared to the prior art:
[0025] 1. The utility model provides a high-stability power grounding pile for power engineering. When the grounding pile body needs to be fixed, the grounding pile body is partially buried in the soil so that the first fixing component is located above the ground. Then, by twisting the knob, the first driving rod and the second driving rod are respectively driven to rotate. The rotation of the first driving rod drives the first fixing component to work so that the grounding pile body is fixed to the ground. Then, by twisting the knob, the second driving rod is driven to work so that the second driving rod drives the second fixing component and the third fixing component to work respectively, thereby further fixing the grounding pile body, making it less likely to loosen in the soil, thereby reducing the safety hazards caused by the loosening of the grounding pile body.
[0026] 2. The utility model provides a high-stability power grounding pile for power engineering. When the first fixing component needs to work, the knob is twisted, and the knob drives the first driving rod to rotate. The rotation of the first driving rod drives the driving gear to rotate. Because there is a meshing relationship between the driven gear and the driving gear, the rotation of the driving gear drives the rotation of several driven gears meshed with it. The rotation of the driven gear drives the connecting plate to rotate through the rotating rod fixedly connected to it. When it is rotated to a suitable position, the connecting plate is fixed by a pin through the socket, thereby fixing the grounding pile body.
[0027] 3. The utility model provides a high-stability power grounding pile for power engineering. When the second fixing component is required to start working, the knob is twisted to drive the second driving rod to rotate. Because the push rod is threadedly connected to the second driving rod through the first threaded groove and the limit rod on the push rod is slidably connected to the limit groove provided on the grounding pile body, when the second driving rod rotates, it will drive the push rod to move downward along the axis of the second driving rod, thereby conflicting with the inclined block, thereby pushing the inclined block forward. The movement of the inclined block will compress the pressure spring and drive the fixed block fixedly connected thereto to move toward the outside of the grounding pile body, extending into the soil, increasing the contact area with the soil, thereby enhancing the grip of the grounding pile body, and thus improving the stability of the grounding pile body. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The present invention will be further described below with reference to the accompanying drawings.
[0029] Figure 1 This is a schematic diagram of the structure of the utility model in a contracted state;
[0030] Figure 2 This is a schematic diagram of the structure of the utility model in an expanded state;
[0031] Figure 3 This is a schematic diagram of the cross-sectional structure of the grounding pile body of the present utility model;
[0032] Figure 4 This is a schematic diagram of the spring structure of the utility model;
[0033] Figure 5 This is a partial structural diagram of the second fixing component of the present invention;
[0034] Figure 6 This is a partial structural diagram of the first fixing component of the present utility model.
[0035] In the figure: 1. Ground pile body; 2. First movable groove; 3. Second movable groove; 4. Fixed groove; 5. Moving groove; 6. Card slot; 7. Limiting groove; 8. Fixing hole; 9. First driving rod; 10. Second driving rod; 11. Knob; 12. Driving gear; 13. Driven gear; 14. Rotating rod; 15. Connecting plate; 16. Socket; 17. Fixed plate; 18. Push rod; 19. Fixed block; 20. Oblique block; 21. Pressure spring; 22. Limiting rod; 23. Shrapnel; 24. Moving block; 25. Deformation groove; 26. Matching groove; 27. Matching block; 28. Top block; 29. Contact groove. DETAILED DESCRIPTION
[0036] The present invention is further described in detail below with reference to the embodiments:
[0037] Example
[0038] like Figure 1 and Figure 3 As shown, the utility model provides a high-stability power grounding pile for power engineering, comprising:
[0039] A grounding pile body 1, one end of the grounding pile body 1 is tapered, and a first movable groove 2, a second movable groove 3, a fixed groove 4, a movable groove 5 and a clamping groove 6 are respectively opened on the grounding pile body 1, and a plurality of limit grooves 7 are opened inside the grounding pile body 1. A plurality of fixing holes 8 are evenly arranged in the vertical direction on the grounding pile body 1, and a plurality of clamping holes 6 and fixing holes 8 are evenly arranged in the circumferential direction. The grounding pile body 1 is rotatably connected to a first driving rod 9 and a second driving rod 10, respectively. Partial areas on the second driving rod 10 are respectively provided with a first thread groove and a second thread groove, and one end of the first driving rod 9 and the second driving rod 10 are respectively fixedly connected to a knob 11;
[0040] A first fixing component, part of which is located in the first movable groove 2, and the other part of which is located in the second movable groove 3. The first fixing component is used to fix the position of the grounding pile body 1;
[0041] A second fixing component is located in the fixing groove 4 and is used to fix the position of the grounding pile body 1;
[0042] The third fixing component is located outside the grounding pile body 1 and is used to fix the position of the grounding pile body 1 .
[0043] In this embodiment, when it is necessary to fix the grounding pile body 1, the grounding pile body 1 is partially buried in the soil so that the first fixing component is located above the ground, and then the first driving rod 9 and the second driving rod 10 are respectively driven to rotate by twisting the knob 11. The rotation of the first driving rod 9 will drive the first fixing component to work so that the grounding pile body 1 is fixed to the ground, and then the second driving rod 10 is driven to work by twisting the knob 11 so that the second driving rod 10 drives the second fixing component and the third fixing component to work respectively, thereby further fixing the grounding pile body 1, making it less likely to loosen in the soil, thereby reducing the safety hazards caused by the loosening of the grounding pile body 1.
[0044] like Figure 2 and Figure 6As shown, in this embodiment, preferably, the first fixed component includes a driving gear 12 and a plurality of driven gears 13, the driving gear 12 is engaged with the plurality of driven gears 13, the driving gear 12 is fixedly connected to the first driving rod 9, and a plurality of rotating rods 14 are rotatably connected to the grounding pile body 1, and the rotating rods 14 are fixedly connected to the driven gears 13, the driven gears 13 are located in the first movable groove 2, and the rotating rods 14 are fixedly connected to the connecting plate 15, the connecting plate 15 is located below the driven gear 13, and the connecting plate 15 is provided with a socket 16 for use with a pin.
[0045] When the first fixing component needs to work, the knob 11 is twisted, and the knob 11 drives the first driving rod 9 to rotate. The rotation of the first driving rod 9 drives the driving gear 12 to rotate. Because the driven gear 13 and the driving gear 12 are in a meshing relationship, the driving gear 12 rotates to drive the several driven gears 13 meshed with it to rotate. The driven gear 13 rotates and drives the connecting plate 15 to rotate through the rotating rod 14 fixedly connected to it. When it is rotated to a suitable position, the connecting plate 15 is fixed by using a pin through the socket 16, thereby fixing the grounding pile body 1.
[0046] like Figure 2 and Figure 5 As shown, preferably, the second fixing component includes a plurality of fixing plates 17 and push rods 18, and the fixing plates 17 are evenly arranged along the circumferential direction. The fixing plates 17 are fixedly connected to the grounding pile body 1, and the fixing plates 17 are evenly arranged and slidably connected with columnar fixing blocks 19 along the height direction. The fixing blocks 19 are slidably connected to the fixing holes 8. One end of the fixing block 19 is fixedly connected to an inclined block 20, and the end of the inclined block 20 close to the fixed block 19 is fixedly connected to a pressure spring 21, and the other end of the pressure spring 21 is fixedly connected to the fixing plate 17. The push rod 18 is located in the fixing groove 4 and is threadedly connected to the second driving rod 10 through the first thread groove. The push rod 18 is used in conjunction with the inclined block 20. A plurality of limit rods 22 are fixedly connected to the push rod 18, and the limit rod 22 is slidably connected to the limit groove 7.
[0047] When the second fixing component is required to start working, twisting the knob 11 drives the second driving rod 10 to rotate. Because the push rod 18 is threadedly connected to the second driving rod 10 through the first thread groove and the limit rod 22 on the push rod 18 is slidably connected to the limit groove 7 opened on the grounding pile body 1, when the second driving rod 10 rotates, it will drive the push rod 18 to move downward along the axis of the second driving rod 10, thereby conflicting with the inclined block 20, thereby pushing the inclined block 20 forward. The movement of the inclined block 20 will compress the pressure spring 21 and drive the fixed block 19 fixedly connected to it to move toward the outside of the grounding pile body 1, extending into the soil, increasing the contact area with the soil, and enhancing the grip of the grounding pile body 1, thereby improving the stability of the grounding pile body 1.
[0048] like Figure 2 and Figure 4 As shown, preferably, the third fixed component includes a spring piece 23 and a moving block 24. The spring piece 23 is J-shaped and is evenly arranged in the circumferential direction and is fixedly connected to the grounding pile body 1 through the card slot 6. A deformation groove 25 and a matching groove 26 are respectively provided on the spring piece 23. The moving block 24 is located in the moving groove 5 and is threadedly connected to the second driving rod 10 through the second thread groove. The moving block 24 is slidably connected to the moving groove 5. Several matching blocks 27 are fixedly connected to the moving block 24. The matching blocks 27 are tilted and are used in conjunction with the spring piece 23 through the matching groove 26.
[0049] As the second drive rod 10 rotates, it drives the movable block 24 threadedly connected thereto downward. This downward movement of the movable block 24 drives the mating block 27 fixedly connected thereto to move, causing the mating block 27 to disengage from the mating slot 26. At this point, the spring piece 23 returns to its original position. When the movable block 24 is in its original position, the mating block 27 squeezes the spring piece 23 through the mating slot 26, causing the spring piece 23 to retract. As the movable block 24 moves downward, it drives the mating block 27 downward. Because the mating block 27 is tilted and disengaged from the spring piece 23, the spring piece 23 slowly returns to its original position. The restored spring piece 23 then hooks into the soil, thereby enhancing the stability of the grounding pile body 1. When retraction is required, the movable block 24 is moved in the opposite direction. The movable block 24 squeezes the mating block 27 and the mating slot 26, returning the spring piece 23 to its retracted position. At this point, the deformation slot 25 on the spring piece 23 is deformed.
[0050] like Figure 5 As shown, preferably, one end of the fixed block 19 away from the inclined block 20 is fixedly connected to a top block 28 , and the top block 28 is arranged in a hemispherical shape.
[0051] The provision of the hemispherical top block 28 can reduce the resistance encountered by the fixing block 19 when the fixing block 19 moves in the soil.
[0052] like Figure 2 As shown, preferably, a plurality of protrusions are provided below the connecting plate 15 .
[0053] The provision of a plurality of protrusions can increase the contact area between the connecting plate 15 and the soil, thereby enhancing the grip between the grounding pile body 1 and the soil, thereby improving the stability of the grounding pile body 1.
[0054] like Figure 5 As shown, preferably, contact grooves 29 are formed on each of the fixing blocks 19 .
[0055] By providing the contact groove 29 on the fixing block 19 , the contact area between the fixing block 19 and the soil can be increased, thereby enhancing the grip between the grounding pile body 1 and the soil and improving the stability of the grounding pile body 1 .
[0056] The following is a detailed explanation of the working principle of the high-stability power grounding pile used in power engineering.
[0057] like Figure 1 - Figure 6As shown, when the grounding pile body 1 needs to be fixed, the grounding pile body 1 is partially buried in the soil so that the first fixing component is located above the ground, and then the first driving rod 9 and the second driving rod 10 are respectively driven to rotate by twisting the knob 11. The rotation of the first driving rod 9 will drive the first fixing component to work so that the grounding pile body 1 is fixed on the ground, and then the second driving rod 10 is driven to work by twisting the knob 11 so that the second driving rod 10 drives the second fixing component and the third fixing component to work respectively, thereby further fixing the grounding pile body 1, making it less likely to loosen in the soil, thereby reducing the safety hazards caused by the loosening of the grounding pile body 1. When the first fixing component needs to work, the knob 11 is twisted, and the knob 11 drives the first driving rod 9 to rotate. The rotation of the first driving rod 9 drives the driving gear 12 to rotate. Because the driven gear 13 and the driving gear 12 are in a meshing relationship, the driving gear 12 rotates to drive the several driven gears 13 meshed with it to rotate. The driven gear 13 rotates and drives the connecting plate 15 to rotate through the rotating rod 14 fixedly connected to it. When it is rotated to a suitable position, the connecting plate 15 is fixed by using a pin through the socket 16, thereby fixing the grounding pile body 1. When the second fixing component is required to start working, twisting the knob 11 drives the second driving rod 10 to rotate. Because the push rod 18 is threadedly connected to the second driving rod 10 through the first thread groove and the limit rod 22 on the push rod 18 is slidably connected to the limit groove 7 opened on the grounding pile body 1, when the second driving rod 10 rotates, it will drive the push rod 18 to move downward along the axis of the second driving rod 10, thereby conflicting with the inclined block 20, thereby pushing the inclined block 20 forward. The movement of the inclined block 20 will compress the pressure spring 21 and drive the fixed block 19 fixedly connected to it to move toward the outside of the grounding pile body 1, extending into the soil, increasing the contact area with the soil, and enhancing the grip of the grounding pile body 1, thereby improving the stability of the grounding pile body 1. As the second drive rod 10 rotates, it drives the movable block 24 threadedly connected thereto downward. This downward movement of the movable block 24 drives the mating block 27 fixedly connected thereto to move, causing the mating block 27 to disengage from the mating slot 26. At this point, the spring piece 23 returns to its original position. When the movable block 24 is in its original position, the mating block 27 squeezes the spring piece 23 through the mating slot 26, causing the spring piece 23 to retract. As the movable block 24 moves downward, it drives the mating block 27 downward. Because the mating block 27 is tilted and disengaged from the spring piece 23, the spring piece 23 slowly returns to its original position. The restored spring piece 23 then hooks into the soil, thereby enhancing the stability of the grounding pile body 1. When retraction is required, the movable block 24 is moved in the opposite direction. The movable block 24 squeezes the mating block 27 and the mating slot 26, returning the spring piece 23 to its retracted position. At this point, the deformation slot 25 on the spring piece 23 is deformed.The hemispherical top block 28 reduces resistance to movement of the fixed block 19 in the soil. The protrusions increase the contact area between the connecting plate 15 and the soil, thereby enhancing the grip of the grounding pile body 1 and the soil, and improving the stability of the grounding pile body 1. The contact grooves 29 on the fixed block 19 increase the contact area between the fixed block 19 and the soil, thereby enhancing the grip of the grounding pile body 1 and the soil, and improving the stability of the grounding pile body 1.
[0058] The above generally describes the present invention in detail. However, it is obvious to those skilled in the art that modifications or improvements may be made to the present invention. Therefore, modifications or improvements that do not depart from the spirit of the present invention are within the scope of protection of the present invention.
Claims
1. High stability power grounding piles for power engineering, It is characterized by including: A grounding pile body (1), one end of the grounding pile body (1) is tapered, a first movable groove (2), a second movable groove (3), a fixed groove (4), a movable groove (5) and a clamping groove (6) are respectively provided on the grounding pile body (1), a plurality of limit grooves (7) are provided inside the grounding pile body (1), a plurality of fixing holes (8) are evenly arranged in a vertical direction on the grounding pile body (1), a plurality of the clamping grooves (6) and the fixing holes (8) are evenly arranged in a circumferential direction, a first driving rod (9) and a second driving rod (10) are respectively rotatably connected to the grounding pile body (1), a first thread groove and a second thread groove are respectively provided on a part of the second driving rod (10), and a knob (11) is respectively fixedly connected to one end of the first driving rod (9) and the second driving rod (10); a first fixing component, wherein a portion of the first fixing component is located in the first movable groove (2), and another portion of the first fixing component is located in the second movable groove (3), and the first fixing component is used to fix the position of the grounding pile body (1); a second fixing component, the second fixing component being located in the fixing groove (4), and the second fixing component being used to fix the position of the grounding pile body (1); A third fixing component is located outside the grounding pile body (1), and is used to fix the position of the grounding pile body (1).
2. The high-stability electric grounding pile for electric power engineering according to claim 1, characterized in that: The first fixing component comprises a driving gear (12) and a plurality of driven gears (13), the driving gear (12) meshing with the plurality of driven gears (13), the driving gear (12) being fixedly connected to the first driving rod (9), the grounding pile body (1) being rotatably connected with a plurality of rotating rods (14), the rotating rods (14) being fixedly connected with the driven gears (13), the driven gears (13) being located in the first movable groove (2), the rotating rods (14) being fixedly connected with a connecting plate (15), the connecting plate (15) being located below the driven gears (13), the connecting plate (15) being provided with a socket (16) for use with a latch.
3. The high-stability electric grounding pile for electric power engineering according to claim 2, characterized in that: The second fixing component includes a plurality of fixing plates (17) and a push rod (18), wherein the fixing plates (17) are evenly arranged along the circumferential direction, the fixing plates (17) are fixedly connected to the grounding pile body (1), the fixing plates (17) are evenly arranged along the height direction and are slidably connected to columnar fixing blocks (19), the fixing blocks (19) are slidably connected to the fixing holes (8), one end of the fixing block (19) is fixedly connected to an inclined block (20), the end of the inclined block (20) close to the fixed block (19) is fixedly connected to a pressure spring (21), the other end of the pressure spring (21) is fixedly connected to the fixing plate (17), the push rod (18) is located in the fixing groove (4) and is threadedly connected to the second driving rod (10) through the first thread groove, the push rod (18) is used in conjunction with the inclined block (20), and a plurality of limiting rods (22) are fixedly connected to the push rod (18), and the limiting rod (22) is slidably connected to the limiting groove (7).
4. The high-stability electric grounding pile for electric power engineering according to claim 3, characterized in that: The third fixing component comprises a spring piece (23) and a moving block (24); the spring piece (23) is J-shaped and evenly arranged along the circumferential direction and fixedly connected to the grounding pile body (1) through a clamping groove (6); a deformation groove (25) and a matching groove (26) are respectively provided on the spring piece (23); the moving block (24) is located in the moving groove (5) and is threadedly connected to the second driving rod (10) through a second thread groove; the moving block (24) is slidably connected to the moving groove (5); a plurality of matching blocks (27) are fixedly connected to the moving block (24); the matching blocks (27) are tilted and matched with the spring piece (23) through the matching groove (26).
5. The high-stability electric grounding pile for electric power engineering according to claim 4, characterized in that: One end of the fixed block (19) away from the inclined block (20) is fixedly connected to a top block (28), and the top block (28) is arranged in a hemispherical shape.
6. The high-stability electric grounding pile for electric power engineering according to claim 5, characterized in that: A plurality of protrusions are provided below the connecting plate (15).
7. The high-stability electric grounding pile for electric power engineering according to claim 6, characterized in that: A contact groove (29) is provided on each of the fixing blocks (19).