Stainless steel composite grounding body embedding device

By designing an automated stainless steel composite grounding electrode burial device, which uses a motor-driven hammer and push plate to automatically bury the grounding electrode, the problems of low efficiency and high safety risks in the existing technology have been solved, and an efficient and safe grounding electrode burial process has been achieved.

CN223793590UActive Publication Date: 2026-01-13ZHEJIANG THERMAL POWER CONSTR CO LTD
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Patent Information

Application Number
CN202520036563.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-08
Publication Date
2026-01-13
Estimated Expiration
2035-01-08

AI Technical Summary

Technical Problem

When installing existing stainless steel composite grounding electrodes, factors such as terrain, on-site obstacles, cost, and schedule affect the installation process. Typically, drilling machines are used to drill holes in the ground at large construction sites, while manual hammering is inefficient and poses safety risks.

Method used

Design a burial device that includes a movable support and a striking component. The device uses a motor to drive the striking hammer and push plate to automatically strike the grounding electrode into the ground. Combined with a guiding component, the grounding electrode can be automatically supported and removed, avoiding manual operation.

Benefits of technology

It enables automated installation of grounding electrodes, saving time and labor, improving efficiency, reducing safety risks, and reducing the need for manual support.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of grounding bodies, in particular to a stainless steel composite grounding body embedding device, which comprises a movable support, and a movable frame and a grounding body are arranged in the support. The moving frame is provided with a striking assembly used for burying the grounding body into the ground, the striking assembly comprises a striking hammer arranged on the moving frame, and the bottom end of the striking hammer is provided with a push plate and a moving plate which are used for enabling the striking hammer to move and strike the grounding body. According to the utility model, through the arrangement of the striking assembly, when the grounding body is buried in the ground, a second motor is started, so that a moving plate can drive a push plate to move upwards, the push plate pushes a striking hammer to move upwards, and the striking hammer is subjected to the counter-acting force of a first spring in the moving process; and then the push plate is separated from the striking hammer under the cooperation of the rotating rod and the stop block, so that the striking hammer impacts the cylindrical block under the gravity of the striking hammer and the counter-acting force of the first spring, and the grounding body can enter the soil layer to be buried.
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Description

Technical Field

[0001] This utility model relates to the field of grounding electrode technology, and in particular to a stainless steel composite material grounding electrode burial device. Background Technology

[0002] A grounding electrode is a conductor that is in close contact with the earth and provides an electrical connection to the ground. It is used to safely dissipate lightning energy and discharge it into the earth. Stainless steel composite grounding electrodes are a type of electrical grounding system material widely used in fields such as power, communications, and petrochemicals. It is formed by combining stainless steel with other metals (such as copper and aluminum) to create a new type of grounding electrode with excellent conductivity and corrosion resistance.

[0003] The installation of most existing stainless steel composite grounding electrodes is affected by a combination of factors such as terrain, site obstacles, cost, and schedule. Only on large construction sites is drilling machines used to drill holes for installation. In most cases, manual hammering is used to drive the electrodes into the ground. This manual hammering process is not only physically demanding and inefficient, but also requires manual support to prevent tipping over, which poses a significant safety risk to the entire installation process.

[0004] Therefore, a stainless steel composite material grounding electrode burial device is proposed. Utility Model Content

[0005] The purpose of this utility model is to provide a stainless steel composite material grounding electrode burial device to solve the problem mentioned in the background art that the construction of most existing stainless steel composite material grounding electrodes is affected by a combination of factors such as terrain, on-site obstacles, cost, and schedule. Only on large construction sites is drilling machine used to bury them, while in most cases they are buried by manual hammering. The manual hammering process is not only physically demanding and inefficient, but also requires manual support to prevent tipping, and the entire burial process has a significant safety risk.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a stainless steel composite material grounding electrode burial device, comprising a movable support, wherein a movable frame and a grounding electrode are provided in the support; the movable frame is provided with a striking component for burying the grounding electrode into the ground, the striking component comprising a striking hammer provided on the movable frame, the bottom end of the striking hammer being provided with a push plate and a movable plate for moving the striking hammer to strike the grounding electrode, and further comprising a guide component provided on the support for moving and supporting the grounding electrode and capable of moving the grounding electrode off the support.

[0007] Preferably, the bracket is provided with a guide groove, and the movable frame is slidably connected in the guide groove. A first motor for driving the movable frame to move is fixedly installed on the bracket, and a first threaded rod is fixedly connected to the output shaft of the first motor. The first threaded rod is threadedly connected to the movable frame.

[0008] Preferably, the movable frame is provided with a limiting groove, and the striking hammer is slidably connected in the limiting groove. A guide plate is slidably connected in the limiting groove, and a first spring for strengthening the impact force of the striking hammer is fixedly connected between the guide plate and the movable frame.

[0009] Preferably, a second motor and a guide rod for driving the movement of the moving plate are fixedly installed on the moving frame. A second threaded rod is fixedly connected to the output shaft of the second motor and is threadedly connected to the moving plate. The guide rod is slidably connected to the moving plate.

[0010] Preferably, the push plate is slidably connected in the movable plate, and a telescopic rod and a second spring for moving and resetting the push plate are fixedly connected between the push plate and the movable plate. A friction rod and a rotating rod are rotatably connected on the movable plate.

[0011] Preferably, a stop block is fixedly installed on the movable frame, and a blocking block is fixedly connected to the striking hammer, and inclined surfaces are provided on the push plate, the stop block, and the blocking block.

[0012] Preferably, the guiding component includes a cylindrical block slidably connected in the guide groove, and the end of the grounding body is inserted into the cylindrical block. A concave cylinder is fixedly connected to the bracket, a limiting plate is slidably connected in the concave cylinder, and the grounding body passes through the limiting plate. A notch is provided on the concave cylinder.

[0013] The beneficial effects of this utility model are:

[0014] 1. This utility model, by setting up a striking component, allows the grounding electrode to be buried in the ground. When the grounding electrode is buried, the second motor is activated, which causes the moving plate to drive the push plate upward, and the push plate pushes the striking hammer upward. During the movement, the striking hammer is subjected to the reaction force of the first spring. Then, with the cooperation of the rotating rod and the stop block, the push plate is disengaged from the striking hammer, so that the striking hammer strikes the cylindrical block under its own weight and the reaction force of the first spring, allowing the grounding electrode to be buried in the soil. When the moving plate moves in the reverse direction to reset, the push plate can be moved back to the bottom of the striking hammer under the action of the stop block, and then the striking hammer can be pushed in a cycle to allow the grounding electrode to be buried in a deeper soil layer. The whole process does not require workers to manually swing the hammer to strike the grounding electrode, saving time and effort.

[0015] 2. By setting a guiding component, this utility model can limit the grounding body by setting the cylindrical block and the limiting plate when the hammer strikes the cylindrical block to make the grounding body enter the soil layer, so that there is no need for workers to manually support it, thereby improving safety. Furthermore, when moving the cylindrical block and the limiting plate, the part of the grounding body that is on the ground surface can be moved out of the support after it enters the ground. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only for this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the overall structure of a stainless steel composite material grounding electrode burial device according to an embodiment of the present invention;

[0018] Figure 2 This is a schematic diagram of the movable frame structure of a stainless steel composite material grounding electrode burial device according to an embodiment of the present invention;

[0019] Figure 3 This is a partial support structure diagram of a stainless steel composite material grounding electrode burial device according to an embodiment of the present invention;

[0020] Figure 4 This is a schematic diagram of the movable plate structure of a stainless steel composite material grounding electrode burial device according to an embodiment of the present invention;

[0021] Figure 5 This is a schematic diagram of the concave cylinder structure of a stainless steel composite material grounding electrode burial device according to an embodiment of this utility model.

[0022] The markings in the diagram are as follows: 1. Bracket; 2. Movable frame; 3. Grounding body; 4. Striking hammer; 5. Push plate; 6. Movable plate; 7. Guide groove; 8. First motor; 9. First threaded rod; 10. Limiting groove; 11. Guide plate; 12. First spring; 13. Second motor; 14. Guide rod; 15. Second threaded rod; 16. Telescopic rod; 17. Second spring; 18. Friction rod; 19. Rotating rod; 20. Stop block; 21. Block; 22. Cylindrical block; 23. Concave cylinder; 24. Limiting plate; 25. Notch. Detailed Implementation

[0023] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments.

[0024] It should be noted that, unless otherwise defined, the technical or scientific terms used in this utility model should have the ordinary meaning understood by one of ordinary skill in the art to which this utility model pertains. The terms "first," "second," and similar terms used in this utility model do not indicate any order, quantity, or importance, but are merely used to distinguish different components. Terms such as "comprising" or "including" mean that the element or object preceding the word encompasses the elements or objects listed following the word and their equivalents, without excluding other elements or objects. Terms such as "connected" or "linked" are not limited to physical or mechanical connections, but can include electrical connections, whether direct or indirect. Terms such as "upper," "lower," "left," and "right" are used only to indicate relative positional relationships; when the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0025] like Figures 1 to 5 As shown in the figure, a specific embodiment of this utility model provides a stainless steel composite material grounding electrode burial device, including a movable support 1, a movable frame 2 and a grounding electrode 3 in the support 1; the movable frame 2 is provided with a striking component for burying the grounding electrode 3 into the ground. By setting the striking component, the grounding electrode 3 can be buried without workers manually using a hammer, thus saving time and effort and improving efficiency. The striking component includes a striking hammer 4 on the movable frame 2, and a push plate 5 and a movable plate 6 at the bottom end of the striking hammer 4 for moving the striking hammer 4 to strike the grounding electrode 3. It also includes a guide component on the support 1 for moving and supporting the grounding electrode 3 and for moving the grounding electrode 3 off the support 1. By setting the guide component, the grounding electrode 3 can be buried without workers manually supporting it, thus reducing risks and improving construction safety.

[0026] like Figures 1 to 4As shown, specifically, the bracket 1 is provided with a guide groove 7, and the movable frame 2 is slidably connected in the guide groove 7. The guiding component includes a cylindrical block 22 slidably connected in the guide groove 7, and the end of the grounding body 3 is inserted into the cylindrical block 22. A concave cylinder 23 is fixedly connected to the bracket 1, and a limiting plate 24 is slidably connected in the concave cylinder 23. The grounding body 3 passes through the limiting plate 24. A notch 25 is opened on the concave cylinder 23. When the grounding body 3 is buried in the ground, the grounding body 3 is placed on the ground surface through the limiting plate 24, and the sliding cylindrical block 22 is positioned so that the cylindrical block 22 is located in the ground. At the top of the ground body 3, the grounding body 3 is inserted into the cylindrical block 22. At this time, the cylindrical block 22 and the limiting plate 24 limit the grounding body 3. The bracket 1 is fixedly installed with a first motor 8 for driving the movement of the moving frame 2, and a first threaded rod 9 is fixedly connected to the output shaft of the first motor 8. The first threaded rod 9 is threadedly connected to the moving frame 2. The first motor 8 is started to drive the first threaded rod 9 to rotate, thereby making the moving frame 2 move on the bracket 1. The position of the moving frame 2 on the bracket 1 is adjusted so that the striking hammer 4 can easily contact and strike the cylindrical block 22.

[0027] like Figures 1 to 4As shown, specifically, a second motor 13 and a guide rod 14 for driving the movement of the moving plate 6 are fixedly installed on the moving frame 2. A second threaded rod 15 is fixedly connected to the output shaft of the second motor 13, and the second threaded rod 15 is threadedly connected to the moving plate 6. The guide rod 14 is slidably connected to the moving plate 6. The push plate 5 is slidably connected in the moving plate 6, and a telescopic rod 16 and a second spring 17 for moving and resetting the push plate 5 are fixedly connected between the push plate 5 and the moving plate 6. A friction rod 18 and a rotating rod 19 are rotatably connected to the moving plate 6. When the second motor 13 is started, it drives the second threaded rod 15 to move the moving plate 6 upward on the guide rod 14. The movement of the moving plate 6 drives the push plate 5 and the rotating rod 19 to move upward. At this time, the push plate 5 contacts the striking hammer 4 and pushes the striking hammer 4 upward. The movable frame 2 is equipped with a limiting groove 10, and the striking hammer 4 is slidably connected in the limiting groove 10. A guide plate 11 is slidably connected in the limiting groove 10, and a first spring 12 for reinforcing the impact force of the striking hammer 4 is fixedly connected between the guide plate 11 and the movable frame 2. When the striking hammer 4 moves upward to the guide plate 11, it pushes the guide plate 11 to move upward. The movement of the guide plate 11 causes the first spring 12 to contract and generate a reaction force. A stop block 20 is fixedly installed on the movable frame 2, and a blocking block 21 is fixedly connected to the striking hammer 4. Inclined surfaces are opened on the push plate 5, the stop block 20, and the blocking block 21. When the push plate 5 drives the rotating rod 19 to move to the stop block 20, the rotating rod 19 rotates along the inclined surface under the action of the stop block 20, the rotating rod 19, and the inclined surface. This causes the push plate 5 to gradually move within the movable plate 6. At this time, the telescopic rod 16 and the second spring 17 contract under pressure, generating a reaction force. The movement of the push plate 5 causes it to gradually detach from the striking hammer 4, causing the striking hammer 4 to move rapidly downwards under its own weight and the reaction force of the first spring 12. The rapidly moving striking hammer 4 strikes the top of the bottom cylindrical block 22. The impact causes the bottom grounding body 3 to sink into the ground, subsequently driving the second motor 13 in the reverse direction, allowing the movable plate 6 to reverse and move downwards. The downward movement of the movable plate 6 causes the rotating rod 19 to gradually disengage from the stop block 20, thus resetting under the reaction force of the second spring 17. During the downward resetting process, the push plate 5 contacts the blocking block 21 and... Pressure is applied to the stop block 21. Under the action of the stop block 21 and the inclined plane, the push plate 5 moves again in the moving plate 6. The second spring 17 and the telescopic rod 16 are compressed again to generate a reaction force until the moving plate 6 drives the push plate 5 to move away from the stop block 21 to the bottom end of the stop block 21, that is, the bottom end of the striking hammer 4. The push plate 5 moves back to its original position under the reaction force of the second spring 17. At this time, the drive of the second motor 13 stops. Then the drive of the second motor 13 rotates in the forward direction, which again causes the moving plate 6 to drive the push plate 5 to push the striking hammer 4 to strike the cylindrical block 22 again according to the above process, so that the grounding body 3 enters a deeper layer of soil. During this cycle of striking, the position of the moving frame 2 can be adjusted by the first motor 8, so that the striking hammer 4 can accurately strike the cylindrical block 22.

[0028] like Figure 5 As shown, specifically, the friction rod 18 reduces friction on the push plate 5 when subjected to the gravity of the hammer 4 and the reaction force of the first spring 12, facilitating the push plate 5's disengagement from the hammer 4. During the process of the hammer 4 striking the cylindrical block 22 into the ground, the cylindrical block 22 and the limiting plate 24 can limit the grounding body 3, thus eliminating the need for worker support. Figure 5 When the grounding body 3 is mostly in the ground and the cylindrical block 22 is in the concave cylinder 23, the cylindrical block 22 and the limiting plate 24 can be lifted upwards. At this time, the cylindrical block 22 and the limiting plate 24 are separated from the grounding body 3. Then, the bracket 1 is pushed so that the whole device can be moved. During the movement, the grounding body 3 moves out of the bracket 1 through the notch 25. The part of the grounding body 3 that is reserved on the ground surface can be used as the part to connect with other external components.

[0029] Those skilled in the art should understand that the discussion of any of the above embodiments is merely exemplary and is not intended to imply that the scope of the present invention (including the claims) is limited to these examples; within the framework of the present invention, the technical features of the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations of the different aspects of the present invention as described above, which are not provided in the details for the sake of brevity.

[0030] This utility model is intended to cover all such substitutions, modifications, and variations that fall within the broad scope of the appended claims. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A stainless steel composite grounding body embedding device comprising a movable support (1), characterized in that, The support (1) is provided with a moving frame (2) and a grounding body (3); The moving frame (2) is provided with a beating assembly for embedding the grounding body (3) into the ground, the beating assembly comprises a beating hammer (4) arranged on the moving frame (2), and the bottom end of the beating hammer (4) is provided with a push plate (5) and a moving plate (6) for moving the beating hammer (4) to beat the grounding body (3); Further comprising a guide assembly arranged on the support (1) for moving and supporting the grounding body (3) and capable of moving the grounding body (3) out of the support (1).

2. The stainless steel composite ground body embedding device according to claim 1, wherein The support (1) is provided with a guide groove (7), and the moving frame (2) is slidingly connected in the guide groove (7), a first motor (8) for driving the moving frame (2) to move is fixedly installed on the support (1), a first threaded rod (9) is fixedly connected to the output shaft of the first motor (8), and the first threaded rod (9) is threadedly connected with the moving frame (2).

3. The stainless steel composite ground body embedding device according to claim 1, wherein The moving frame (2) is provided with a limiting groove (10), and the beating hammer (4) is slidingly connected in the limiting groove (10), a guide plate (11) is slidingly connected in the limiting groove (10), and a first spring (12) for strengthening the impact force of the beating hammer (4) is fixedly connected between the guide plate (11) and the moving frame (2).

4. The stainless steel composite ground body embedding device according to claim 1, wherein A second motor (13) and a guide rod (14) for driving the moving plate (6) to move are fixedly installed on the moving frame (2), a second threaded rod (15) is fixedly connected to the output shaft of the second motor (13), the second threaded rod (15) is threadedly connected with the moving plate (6), and the guide rod (14) is slidingly connected with the moving plate (6).

5. The stainless steel composite ground body embedding device according to claim 1, wherein The push plate (5) is slidingly connected in the moving plate (6), and a telescopic rod (16) and a second spring (17) for resetting the movement of the push plate (5) are fixedly connected between the push plate (5) and the moving plate (6), a friction rod (18) and a rotating rod (19) are rotatably connected to the moving plate (6).

6. The stainless steel composite ground rod implantation apparatus of claim 1, wherein, A stop block (20) is fixedly installed on the moving frame (2), a blocking block (21) is fixedly connected to the beating hammer (4), and inclined surfaces are formed on the push plate (5), the stop block (20) and the blocking block (21).

7. The stainless steel composite ground rod implantation apparatus of claim 1, wherein, The guide assembly comprises a cylindrical block (22) slidingly connected in the guide groove (7), and the end of the grounding body (3) is inserted into the cylindrical block (22), a recessed cylinder (23) is fixedly connected to the support (1), a limiting plate (24) is slidingly connected in the recessed cylinder (23), the grounding body (3) penetrates through the limiting plate (24), and a notch (25) is formed in the recessed cylinder (23).