Intelligent auxiliary surveying and mapping equipment for migration and transformation of high-voltage line

By designing structures such as rotating beads, vertical frames, and fixing bolts, the problem of level adjustment difficulties caused by uneven ground during the relocation of high-voltage lines was solved, enabling rapid level adjustment and stable fixation of the total station, thus improving the accuracy and efficiency of measurement.

CN223992115UActive Publication Date: 2026-03-13ANHUI HUIDIAN ENGINEERING DESIGN CONSULTING CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Conventional total stations face difficulties in leveling due to uneven ground during high-voltage line relocation, affecting measurement accuracy and efficiency.

Method used

A smart auxiliary surveying device for high-voltage line relocation was designed. By connecting the ball bearing to the mounting frame and combining the structure of vertical frame, fixing bolts, fixing frame and adjusting bolts, the total station can be quickly leveled and stably fixed. It uses photoelectric scanning and electromagnetic wave phase difference to measure angle and distance.

Benefits of technology

It effectively improves the ease of use and measurement accuracy of the total station, simplifies the leveling process, and adapts to high-voltage line relocation measurements under complex terrain conditions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223992115U_ABST
    Figure CN223992115U_ABST
Patent Text Reader

Abstract

The utility model relates to the field of surveying and mapping equipment, and discloses high-voltage line migration and transformation intelligent auxiliary surveying and mapping equipment which comprises a supporting frame, a connecting groove is formed in the top of the supporting frame, a rotating ball is rotatably mounted on the inner wall of the connecting groove, a mounting frame is fixedly connected to the top of the rotating ball, and a total station body is fixedly mounted at the top of the mounting frame; a pull rod is fixedly connected to the bottom end of the rotating bead, a hook is clamped to the surface of the pull rod, a vertical frame is fixedly installed at the bottom end of the hook, and the size specification of the surface of the rotating bead is matched with the size specification of the inner wall of the connecting groove. The rotating ball is connected with the connecting groove in the mounting frame, the pull rod is mounted at the bottom end of the rotating ball, and the vertical frame is mounted at the bottom end of the pull rod through the hook, so that surrounding stones can be conveniently placed in the vertical frame, and the mounting frame at the top of the rotating ball is kept at a horizontal angle by dint of the drooping force of the vertical frame; therefore, the horizontal angle of the total station body can be conveniently adjusted.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of surveying equipment, and in particular to an intelligent auxiliary surveying equipment for the relocation of high-voltage lines. Background Technology

[0002] High-voltage line relocation refers to moving existing high-voltage transmission lines to new locations to adapt to new construction needs or address safety hazards. High-voltage line relocation is typically driven by new infrastructure construction requirements. Additionally, it may be necessary to eliminate safety hazards and ensure public safety. Total stations are frequently used for auxiliary measurements during high-voltage line relocation. A total station is a high-precision measuring instrument integrating electronic angle measurement, electronic distance measurement, data calculation, and storage functions. The role of the total station in high-voltage line relocation is mainly reflected in topographic surveying, height measurement, and angle measurement. It can provide high-precision topographic data and measurement results, accurately measuring parameters such as elevation, coordinates, and angles, providing crucial data and assurance for the design and construction of high-voltage lines. In conventional total station use, after the support frame is installed in a suitable position, the total station body is connected to the top of the support frame via a mounting bracket. The total station body uses photoelectric scanning technology to measure angles, electromagnetic wave phase difference to measure distances, and a data processing system to calculate three-dimensional coordinates.

[0003] Regarding the aforementioned technologies, the inventors believe that the accuracy of measurements can be guaranteed when the total station is in a horizontal state. If the instrument is not horizontal, the measurement results will be biased, affecting the reliability of the data. However, since high-voltage lines are often installed in wilderness areas, the ground is often uneven, which makes it take a lot of time to adjust the total station to be horizontal.

[0004] The information disclosed in this background section is only intended to enhance the understanding of the background technology of this application, and therefore may include prior art that is not known to those skilled in the art. Utility Model Content

[0005] To address the inconvenience of adjusting the horizontal angle using conventional total stations, this application provides an intelligent auxiliary surveying device for high-voltage line relocation.

[0006] The intelligent auxiliary mapping equipment for high-voltage line relocation provided in this application adopts the following technical solution:

[0007] A high-voltage line relocation intelligent auxiliary surveying device includes a support frame. A connecting groove is formed at the top of the support frame. A rotating ball is rotatably mounted on the inner wall of the connecting groove. A mounting frame is fixedly connected to the top of the rotating ball. A total station body is fixedly mounted on the top of the mounting frame. A pull rod is fixedly connected to the bottom of the rotating ball. A hook is engaged with the surface of the pull rod. A vertical frame is fixedly mounted at the bottom of the hook. The dimensions of the rotating ball's surface are compatible with the dimensions of the inner wall of the connecting groove. The center of the rotating ball and the center of the mounting frame are on the same straight line. The surface of the pull rod is movably connected to the inner wall of the support frame.

[0008] Preferably, the inner wall of the vertical frame is fitted with a plurality of locking blocks, the cross-section of the locking blocks is in the shape of a "C", and the size of the surface of the locking blocks is adapted to the size of the inner wall of the vertical frame, and the locking blocks are made of steel.

[0009] Preferably, the inner wall of the support frame is threaded with a fixing bolt, one end of which is engaged with the surface of the rotating ball, and a rotating block is fixedly connected to one end of the fixing bolt. The center of the rotating block and the center of the fixing bolt are on the same straight line.

[0010] Preferably, a connecting ring is fixedly installed at the bottom end of the pull rod, the inner wall of the connecting ring is engaged with the surface of the hook, and the cross-section of the hook is in the shape of a "J".

[0011] Preferably, the top of the support frame is fixedly connected to a plurality of fixed frames, which are arranged in a circular array around the center of the support frame. A rotating frame is rotatably mounted on one end of each fixed frame, and a pushing block is movably connected to one end of each rotating frame. The bottom end of the pushing block is slidably mounted to the top of the fixed frame.

[0012] Preferably, an adjusting bolt is rotatably mounted on one end of the push block, the center of the adjusting bolt is on the same straight line as the center of the push block, and the surface of the adjusting bolt is threadedly connected to the inner wall of the fixing frame.

[0013] Preferably, an auxiliary block is fixedly installed on the top of the rotating frame. The auxiliary block is a rubber block, and the top of the auxiliary block is movably connected to the bottom of the mounting frame.

[0014] In summary, this application includes the following beneficial technical effects:

[0015] 1. By connecting the rotating ball to the connecting groove in the mounting frame, a pull rod is installed at the bottom of the rotating ball, and a vertical frame is installed at the bottom of the pull rod via a hook. This allows surrounding stones to be placed inside the vertical frame. The downward force of the vertical frame keeps the mounting frame at the top of the rotating ball at a horizontal angle. Several steel clips are installed on the inner wall of the vertical frame to keep it vertical. A fixing bolt is threaded on the inner wall of the support frame, and a rotating block is installed at one end of the fixing bolt. This rotating block and the fixing bolt enhance the stability of the rotating ball. A connecting ring is installed at the bottom of the pull rod, and the inner wall of the connecting ring engages with the surface of the hook, allowing for easy disassembly of the vertical frame via the hook and connecting ring. Compared with existing technologies, this significantly improves the ease of use of the total station.

[0016] 2. Several fixed frames can also be installed on top of the support frame. A rotating frame is rotatably connected to the top of the fixed frame. A push block is installed at one end of the rotating frame to control the rotating frame to support the bottom of the mounting frame. An adjusting bolt is threaded on the inner wall of the fixed frame. One end of the adjusting bolt is rotatably connected to one end of the push block to control the movement of the push block. A rubber auxiliary block is installed on the top of the rotating frame to prevent slippage between the rotating frame and the mounting frame; thus effectively improving the performance of the device. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of an intelligent auxiliary surveying and mapping device for high-voltage line relocation according to an embodiment of the application.

[0018] Figure 2 This is a schematic diagram of the beaded structure in an embodiment of the application;

[0019] Figure 3 This is a side view of the embodiment of the application.

[0020] Figure 4 This is a schematic diagram of the structure at point A in the embodiment of the application.

[0021] Explanation of reference numerals in the attached drawings: 1. Support frame; 2. Mounting frame; 3. Total station body; 4. Rotating ball; 5. Connecting groove; 6. Pull rod; 7. Hook; 8. Vertical frame; 9. Locking block; 10. Fixing bolt; 11. Rotating block; 12. Fixing frame; 13. Rotating frame; 14. Pushing block; 15. Adjusting bolt; 16. Auxiliary block. Detailed Implementation

[0022] The following is in conjunction with the appendix Figure 1 —4. This application will be described in further detail.

[0023] This application discloses an intelligent auxiliary mapping device for high-voltage line relocation, referring to... Figure 1 - Figure 2The system includes a support frame 1. In use, after the support frame 1 is installed in a suitable position, the top of the support frame 1 is connected to the total station body 3 via a mounting frame 2. The total station body 3 uses photoelectric scanning technology to measure angles and electromagnetic wave phase difference to measure distances. Combined with the data processing system, it realizes three-dimensional coordinate calculation. The rotating ball 4 is connected to the connecting groove 5 in the mounting frame 2. A pull rod 6 is installed at the bottom of the rotating ball 4. A vertical frame 8 is installed at the bottom of the pull rod 6 via a hook 7, so that surrounding stones can be placed in the vertical frame 8. The downward force of the vertical frame 8 keeps the mounting frame 2 at the top of the rotating ball 4 at a horizontal angle, thereby facilitating the adjustment of the horizontal angle of the total station body 3 and avoiding the situation where the horizontal angle of the total station is difficult to adjust due to uneven ground.

[0024] Reference Figure 2 The inner wall of the vertical frame 8 is equipped with several steel locking blocks 9 to keep the vertical frame 8 vertical, avoiding insufficient counterweight in some areas. Separating the locking blocks 9 also helps reduce the carrying weight of the total station. The inner wall of the support frame 1 is threaded with fixing bolts 10. One end of the fixing bolt 10 is equipped with a rotating block 11, and one end of the fixing bolt 10 is engaged with the surface of the rotating ball 4. The rotating block 11 controls the rotation of the fixing bolt 10, and the engagement of one end of the fixing bolt 10 with the surface of the rotating ball 4 improves the stability of the rotating ball 4 after the total station body 3 is adjusted to a horizontal angle. A connecting ring is installed at the bottom of the pull rod 6. The inner wall of the connecting ring is engaged with the surface of the hook 7, which allows the vertical frame 8 to be easily disassembled using the hook 7 and the connecting ring, thus preventing the vertical frame 8 from obstructing the storage of the support frame 1.

[0025] Reference Figure 3 - Figure 4 Several fixed frames 12 are installed on the top of the support frame 1. A rotating frame 13 is rotatably connected to the top of the fixed frame 12. A push block 14 is installed at one end of the rotating frame 13. The bottom end of the push block 14 is slidably connected to the top of the fixed frame 12 so that the angle of the rotating frame 13 can be adjusted by moving the push block 14, thereby facilitating support for the bottom of the mounting frame 2 and effectively improving the stability of the mounting frame 2. An adjusting bolt 15 is threaded on the inner wall of the fixed frame 12. One end of the adjusting bolt 15 is rotatably connected to one end of the push block 14 so that the movement of the push block 14 can be controlled by the adjusting bolt 15 and the position of the push block 14 can be fixed. A rubber auxiliary block 16 is installed on the top of the rotating frame 13. The top of the auxiliary block 16 is movably connected to the bottom of the mounting frame 2 so that the rotating frame 13 and the mounting frame 2 can be separated by the auxiliary block 16 to avoid slippage between the rotating frame 13 and the mounting frame 2.

[0026] The implementation principle of the intelligent auxiliary surveying equipment for high-voltage line relocation in this application embodiment is as follows: A rotating bead 4 is connected to a connecting groove 5 within the mounting frame 2. A pull rod 6 is installed at the bottom of the rotating bead 4, and a vertical frame 8 is installed at the bottom of the pull rod 6 via a hook 7. This allows surrounding stones to be placed within the vertical frame 8. The downward force of the vertical frame 8 keeps the mounting frame 2 at the top of the rotating bead 4 at a horizontal angle, thus facilitating the adjustment of the horizontal angle of the total station body 3. This avoids the difficulty in adjusting the horizontal angle of the total station due to uneven ground. Several steel clips 9 are installed on the inner wall of the vertical frame 8 to maintain its vertical position, preventing unevenness in certain areas. In cases where there is insufficient weight, and to reduce the carrying weight of the total station by separating the locking block 9, a fixing bolt 10 is threaded on the inner wall of the support frame 1. A rotating block 11 is installed on one end of the fixing bolt 10, and one end of the fixing bolt 10 is engaged with the surface of the rotating ball 4, so that the rotation of the fixing bolt 10 can be controlled by the rotating block 11. Engaging one end of the fixing bolt 10 with the surface of the rotating ball 4 improves the stability of the rotating ball 4 after the total station body 3 is adjusted to a horizontal angle. A connecting ring is installed at the bottom of the pull rod 6, and the inner wall of the connecting ring is engaged with the surface of the hook 7, so that the vertical frame 8 can be easily disassembled by using the hook 7 and the connecting ring, thus preventing the vertical frame 8 from obstructing the storage of the support frame 1.

[0027] Several fixed frames 12 can also be installed on the top of the support frame 1. A rotating frame 13 is rotatably connected to the top of the fixed frame 12. A push block 14 is installed at one end of the rotating frame 13. The bottom end of the push block 14 is slidably connected to the top of the fixed frame 12 so that the angle of the rotating frame 13 can be adjusted by moving the push block 14, thereby facilitating support for the bottom of the mounting frame 2 and effectively improving the stability of the mounting frame 2. An adjusting bolt 15 is threaded on the inner wall of the fixed frame 12. One end of the adjusting bolt 15 is rotatably connected to one end of the push block 14 so that the movement of the push block 14 can be controlled by the adjusting bolt 15 and the position of the push block 14 can be fixed. A rubber auxiliary block 16 is installed on the top of the rotating frame 13. The top of the auxiliary block 16 is movably connected to the bottom of the mounting frame 2 so that the rotating frame 13 and the mounting frame 2 can be separated by the auxiliary block 16 to avoid slippage between the rotating frame 13 and the mounting frame 2.

[0028] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A high-voltage line relocation intelligent auxiliary surveying and mapping device comprising a support frame (1), characterized in that: The top of the support frame (1) is provided with a connecting groove (5), the inner wall of the connecting groove (5) is rotatably connected with a rotating ball (4), the top of the rotating ball (4) is fixedly connected with a mounting frame (2), the top of the mounting frame (2) is fixedly connected with a total station body (3), the bottom of the rotating ball (4) is fixedly connected with a pull rod (6), the surface of the pull rod (6) is connected with a hook (7), and the bottom of the hook (7) is fixedly connected with a vertical frame (8).

2. The intelligent auxiliary surveying and mapping device for high-voltage line relocation according to claim 1, characterized in that: The size of the surface of the rotating ball (4) is matched with the size of the inner wall of the connecting groove (5), the center of the rotating ball (4) is on the same straight line with the center of the mounting frame (2), and the surface of the pull rod (6) is movably connected with the inner wall of the support frame (1).

3. The intelligent auxiliary surveying and mapping device for high-voltage line relocation according to claim 1, characterized in that: The inner wall of the vertical frame (8) is connected with a plurality of clamping blocks (9), the cross section of the clamping block (9) is in "C" shape structure, the size of the surface of the clamping block (9) is matched with the size of the inner wall of the vertical frame (8), and the clamping block (9) is a steel block.

4. The intelligent auxiliary surveying and mapping device for high-voltage line relocation according to claim 1, characterized in that: The inner wall of the support frame (1) is screwedly connected with a fixing bolt (10), one end of the fixing bolt (10) is connected with the surface of the rotating ball (4), one end of the fixing bolt (10) is fixedly connected with a rotating block (11), and the center of the rotating block (11) is on the same straight line with the center of the fixing bolt (10).

5. The intelligent auxiliary surveying and mapping device for high-voltage line relocation according to claim 1, characterized in that: The bottom of the pull rod (6) is fixedly connected with a connecting ring, the inner wall of the connecting ring is connected with the surface of the hook (7), and the cross section of the hook (7) is in "J" shape structure.

6. The intelligent auxiliary surveying and mapping device for high-voltage line relocation according to claim 1, characterized in that: The top of the support frame (1) is fixedly connected with a plurality of fixing frames (12), the plurality of fixing frames (12) are arranged in a circular array around the center of the support frame (1), one end of the fixing frame (12) is rotatably connected with a rotating frame (13), one end of the rotating frame (13) is movably connected with a pushing block (14), and the bottom of the pushing block (14) is slidably connected with the top of the fixing frame (12).

7. The intelligent auxiliary surveying and mapping device for high-voltage line relocation according to claim 6, characterized in that: One end of the pushing block (14) is rotatably connected with an adjusting bolt (15), the center of the adjusting bolt (15) is on the same straight line with the center of the pushing block (14), and the surface of the adjusting bolt (15) is screwedly connected with the inner wall of the fixing frame (12).

8. The intelligent auxiliary surveying and mapping device for high-voltage line relocation according to claim 6, characterized in that: The top of the rotating frame (13) is fixedly connected with an auxiliary block (16), the auxiliary block (16) is a rubber block, and the top of the auxiliary block (16) is movably connected with the bottom of the mounting frame (2).