Adjustable anti-seismic support for electromechanical engineering

By introducing a servo motor-driven rack and pinion system into the seismic bracing, automatic height adjustment of the support is achieved, solving the problem of difficult manual adjustment in the prior art and improving the efficiency and safety of equipment maintenance.

CN224174663UActive Publication Date: 2026-04-28叶龙
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
叶龙
Filing Date
2025-06-19
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing seismic bracing systems are difficult to automatically adjust in height during equipment maintenance or replacement, requiring manual adjustment by staff, which increases the difficulty and intensity of maintenance work.

Method used

The system employs a support and lifting device, including components such as a mounting base, rocker arm, articulated plate, slider, guide rail, rack and pinion, and servo motor. The servo motor drives the gears to move the rack and slider, thereby achieving automatic height adjustment of the support.

Benefits of technology

It enables automatic height adjustment during equipment maintenance or replacement, reducing the difficulty and intensity of maintenance work, saving installation time and labor costs, and improving construction progress and efficiency.

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Abstract

The utility model relates to the technical field of electromechanical engineering, in particular to an adjustable anti-seismic support for electromechanical engineering, which comprises a support and a lifting device, a fixing support is mounted on the surface of the support, the lifting device is arranged on the upper surface of the support and comprises a clamping seat, the clamping seat is fixedly connected with the support, a first hole is formed in the surface of the clamping seat, and a second hole is formed in the surface of the clamping seat. The inner wall of a first hole in the surface of the clamping base is rotationally connected with a rocker, the surface of the rocker is fixedly connected with a joint plate, the upper surface of the joint plate is fixedly connected with a round rod, the upper surface of the support is provided with a guide rail, the lower surface of the guide rail is in sliding connection with a sliding block, and the lower surface of the sliding block is rotationally connected with the round rod. The height can be automatically adjusted to be convenient for operation, workers can conveniently carry out maintenance and other operations, the difficulty and strength of maintenance work are reduced, frequent manual height adjustment is not needed, the installation time and the labor cost are greatly saved, the construction progress is accelerated, and the overall installation efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of electromechanical engineering technology, and in particular to an adjustable seismic bracing for electromechanical engineering. Background Technology

[0002] Mechanical and electrical engineering is a comprehensive engineering field that integrates knowledge from multiple disciplines such as mechanical engineering, electrical engineering, electronic technology, and computer technology. It covers a series of complex processes from design, manufacturing, installation to commissioning and maintenance. In the construction field, mechanical and electrical engineering is responsible for the planning and implementation of electrical systems, water supply and drainage systems, heating, ventilation and air conditioning systems, etc., to ensure the normal operation and comfort of buildings. Seismic bracing for mechanical and electrical engineering is an important auxiliary device for mechanical and electrical facilities. It can effectively resist seismic forces, reduce the swaying, displacement and damage of mechanical and electrical equipment, and ensure the safety of equipment and the normal operation of the system.

[0003] However, most existing seismic bracing systems are difficult to automatically adjust in height during equipment maintenance or replacement. This requires staff to perform tedious manual height adjustments, and it may be difficult to adjust them to the most convenient height for operation. This causes many inconveniences for staff when carrying out maintenance and other operations, increasing the difficulty and intensity of maintenance work. Utility Model Content

[0004] The purpose of this utility model is to solve the problem that most existing seismic bracing systems are difficult to automatically adjust in height during equipment maintenance or replacement, requiring workers to perform tedious manual height adjustment operations, and it may be difficult to adjust to the most convenient height for operation, which causes many inconveniences for workers to carry out maintenance and other operations, and increases the difficulty and intensity of maintenance work. Therefore, this utility model proposes an adjustable seismic bracing system for electromechanical engineering.

[0005] To achieve the above objectives, this utility model adopts the following technical solution: an adjustable seismic brace for electromechanical engineering, comprising a support and a lifting device. A fixed bracket is installed on the surface of the support, and the lifting device is disposed on the upper surface of the support. The lifting device includes a retaining seat, which is fixedly connected to the support. A hole is formed on the surface of the retaining seat, and a rocker arm is rotatably connected to the inner wall of the hole. A joint plate is fixedly connected to the surface of the rocker arm, and a round rod is fixedly connected to the upper surface of the joint plate. A guide rail is provided on the upper surface of the support, and a slider is slidably connected to the lower surface of the guide rail. The lower surface of the slider is rotatably connected to the round rod. By setting up the lifting device, the device can automatically adjust to a height that is easy to operate during equipment maintenance or replacement, facilitating maintenance work for staff, reducing the difficulty and intensity of maintenance work, eliminating the need for frequent manual height adjustments, greatly saving installation time and labor costs, accelerating construction progress, and improving overall installation efficiency.

[0006] Preferably, there are two sliders, which are arranged symmetrically from left to right. By setting the sliders, the sliders are connected to the first rack and the second rack. When the gear drives the rack to move, the slider can follow the movement of the rack, thereby transmitting the linear motion of the rack. This is an important link in the entire power transmission chain, and finally transmits the power of the servo motor to the joint plate and the support, so as to realize the height adjustment of the support.

[0007] Preferably, the surfaces of the two sliders are respectively fixedly connected to a first rack and a second rack, and the surface of the guide rail is fixedly connected to an assembly plate. By setting the guide rail, a precise movement path is provided for the slider, ensuring that the slider can move strictly along the direction of the first rack and the second rack, accurately approaching or moving away from the servo motor. This makes the entire support height adjustment process predictable and accurate, reduces random deviation of the slider, and ensures that the support can descend or rise smoothly according to the design requirements.

[0008] Preferably, a servo motor is fixedly connected to the surface of the assembly plate, and a gear is fixedly connected to the drive end of the servo motor. By setting the servo motor, the gear is driven to rotate, providing the necessary power for the movement of subsequent components such as the first rack, the second rack, the slider, and the joint plate, so that the support can be adjusted in height according to the set requirements.

[0009] Preferably, the gear meshes with the first rack and the second rack, and the gear is located between the first rack and the second rack. By setting the gear, the servo motor drives the gear to rotate, and the gear then meshes with the rack to convert the rotational motion of the motor into the linear motion of the rack, thereby realizing the effective transmission of power from the motor to other components, enabling the entire height adjustment mechanism to operate.

[0010] Preferably, the joint plate is inclined and located on the lower surface of the guide rail. By setting the joint plate, when the slider presses the joint plate, the joint plate can transmit the force applied by the slider, so that the force can act on the support, thereby driving the support to move. The joint plate here acts as a force transmission medium, ensuring that the force generated by the slider can effectively act on the support that needs to be adjusted in height.

[0011] Preferably, there are two joint plates, which are arranged symmetrically from left to right.

[0012] Compared with the prior art, the advantages and positive effects of this utility model are as follows:

[0013] In this invention, when the height of the support needs to be adjusted, the servo motor is started, and the servo motor drives the gear to rotate. While the gear rotates, it drives the first rack and the second rack to move. The slider follows the first rack and the second rack to slide and moves closer to the servo motor. The slider then presses the joint plate, and the joint plate rotates, causing the support to move downward slowly. After maintenance and installation are completed, the servo motor drives the gear to rotate in the opposite direction. Then the first rack and the second rack are reset. While the slider moves, it presses the joint plate, and the joint plate rotates and pulls the support up again.

[0014] By incorporating this utility model, the device can automatically adjust to a height that is easy to operate during equipment maintenance or replacement, facilitating inspection and other operations for staff. This reduces the difficulty and intensity of maintenance work, eliminates the need for frequent manual height adjustments, significantly saves installation time and labor costs, accelerates construction progress, and improves overall installation efficiency. Attached Figure Description

[0015] Figure 1 This utility model provides a three-dimensional structural diagram of an adjustable seismic brace for electromechanical engineering.

[0016] Figure 2 This utility model provides a schematic diagram of the lifting device structure for an adjustable seismic brace used in electromechanical engineering;

[0017] Figure 3 This utility model proposes an adjustable seismic bracing for electromechanical engineering. Figure 2 A magnified structural diagram at point A;

[0018] Figure 4 This utility model provides a partial structural schematic diagram of an adjustable seismic brace for electromechanical engineering.

[0019] Figure 5 This utility model proposes an adjustable seismic bracing for electromechanical engineering. Figure 4 A magnified structural diagram at point B.

[0020] Legend: 1. Support; 2. Fixed bracket; 3. Lifting device; 31. Card seat; 32. Rocker arm; 33. Joint plate; 34. Slider; 35. Guide rail; 36. First rack; 37. Assembly plate; 38. Servo motor; 39. Gear; 310. Second rack; 311. Round rod. Detailed Implementation

[0021] Please see Figures 1-5 This utility model provides a technical solution: an adjustable seismic brace for electromechanical engineering, including a support 1 and a lifting device 3. A fixed bracket 2 is installed on the surface of the support 1, and the lifting device 3 is set on the upper surface of the support 1.

[0022] In this implementation scheme: the lifting device 3 includes a mounting base 31, which is fixedly connected to the support 1. A hole is opened on the surface of the mounting base 31. A rocker arm 32 is rotatably connected to the inner wall of the hole on the surface of the mounting base 31. A joint plate 33 is fixedly connected to the surface of the rocker arm 32. A round rod 311 is fixedly connected to the upper surface of the joint plate 33. A guide rail 35 is provided on the upper surface of the support 1. A slider 34 is slidably connected to the lower surface of the guide rail 35. The lower surface of the slider 34 is rotatably connected to the round rod 311. By setting up the lifting device 3, the device can be automatically adjusted to a height that is easy to operate when the equipment is maintained or replaced, which facilitates the maintenance work of the staff, reduces the difficulty and intensity of maintenance work, eliminates the need for frequent manual height adjustment, greatly saves installation time and labor costs, speeds up the construction progress, and improves the overall installation efficiency.

[0023] Specifically, there are two sliders 34, which are arranged symmetrically from left to right. By setting up the sliders 34, the sliders 34 are connected to the first rack 36 and the second rack 310. When the gear 39 drives the rack to move, the sliders 34 can follow the movement of the rack, thereby transmitting the linear motion of the rack. It is an important link in the entire power transmission chain, and finally transmits the power of the servo motor 38 to the joint plate 33 and the support 1 to realize the height adjustment of the support 1.

[0024] Specifically, the surfaces of the two sliders 34 are respectively fixedly connected to the first rack 36 and the second rack 310, and the surface of the guide rail 35 is fixedly connected to the mounting plate 37. By setting the guide rail 35, a precise movement path is provided for the sliders 34, ensuring that the sliders 34 can move strictly along the direction of the first rack 36 and the second rack 310, accurately approaching or moving away from the servo motor 38. This makes the entire height adjustment process of the support 1 predictable and accurate, reduces random deviation of the sliders 34, and ensures that the support 1 can descend or rise smoothly according to the design requirements.

[0025] Specifically, a servo motor 38 is fixedly connected to the surface of the assembly plate 37, and a gear 39 is fixedly connected to the drive end of the servo motor 38. By setting the servo motor 38, the gear 39 is driven to rotate, providing the necessary power for the movement of subsequent components such as the first rack 36, the second rack 310, the slider 34, and the joint plate 33, so that the support 1 can be adjusted in height according to the set requirements.

[0026] Specifically, gear 39 meshes with first rack 36 and second rack 310, and gear 39 is located between first rack 36 and second rack 310.

[0027] In this embodiment: by setting gear 39, servo motor 38 drives gear 39 to rotate, and gear 39 then meshes with rack to convert the rotational motion of motor into the linear motion of rack, thereby realizing the effective transmission of power from motor to other components, enabling the entire height adjustment mechanism to operate.

[0028] Specifically, the joint plate 33 is inclined and located on the lower surface of the guide rail 35.

[0029] In this embodiment: by setting the joint plate 33, when the slider 34 presses the joint plate 33, the joint plate 33 can transmit the force applied by the slider 34, so that the force can act on the support 1, thereby driving the support 1 to move. The joint plate 33 acts as a force transmission medium here, ensuring that the force generated by the slider 34 can effectively act on the support 1 whose height needs to be adjusted.

[0030] Specifically, there are two articulation plates 33, which are arranged symmetrically on the left and right sides.

[0031] Working principle: When the height of support 1 needs to be adjusted, the servo motor 38 is started, which drives the gear 39 to rotate. Simultaneously, the gear 39 rotates, causing the first rack 36 and the second rack 310 to move. The slider 34 then slides along with the first rack 36 and the second rack 310 and moves towards the servo motor 38. The slider 34 then presses against the joint plate 33, causing the joint plate 33 to rotate and slowly move the support 1 downwards. After maintenance and installation are completed, the servo motor 38 drives the gear 39 to rotate in the opposite direction, causing the first rack 36 and the second rack 310 to reset. As the slider 34 moves, it presses against the joint plate 33, causing the joint plate 33 to rotate and pull the support 1 back up. By designing this utility model, the system can automatically adjust to a height suitable for operation during equipment maintenance or replacement, facilitating inspection and other work for staff. This reduces the difficulty and intensity of maintenance work, eliminates the need for frequent manual height adjustments, significantly saves installation time and labor costs, accelerates construction progress, and improves overall installation efficiency.

Claims

1. An adjustable seismic bracing system for electromechanical engineering, comprising a support (1) and a lifting device (3), characterized in that: The support (1) is mounted with a fixed bracket (2), and the lifting device (3) is set on the upper surface of the support (1). The lifting device (3) includes a card seat (31), which is fixedly connected to the support (1). The card seat (31) has a hole on its surface. A rocker arm (32) is rotatably connected to the inner wall of the hole on the surface of the card seat (31). A joint plate (33) is fixedly connected to the surface of the rocker arm (32). A round rod (311) is fixedly connected to the upper surface of the joint plate (33). A guide rail (35) is provided on the upper surface of the support (1). A slider (34) is slidably connected to the lower surface of the guide rail (35). The lower surface of the slider (34) is rotatably connected to the round rod (311).

2. The adjustable seismic bracing for electromechanical engineering according to claim 1, characterized in that: There are two sliders (34), and the two sliders (34) are arranged symmetrically from left to right.

3. The adjustable seismic bracing for electromechanical engineering according to claim 2, characterized in that: The surfaces of the two sliders (34) are respectively fixedly connected to a first rack (36) and a second rack (310), and the surface of the guide rail (35) is fixedly connected to an assembly plate (37).

4. The adjustable seismic bracing for electromechanical engineering according to claim 3, characterized in that: A servo motor (38) is fixedly connected to the surface of the assembly plate (37), and a gear (39) is fixedly connected to the drive end of the servo motor (38).

5. The adjustable seismic bracing for electromechanical engineering according to claim 4, characterized in that: The gear (39) meshes with the first rack (36) and the second rack (310), and the gear (39) is located between the first rack (36) and the second rack (310).

6. The adjustable seismic bracing for electromechanical engineering according to claim 1, characterized in that: The joint plate (33) is inclined and located on the lower surface of the guide rail (35).

7. The adjustable seismic bracing for electromechanical engineering according to claim 6, characterized in that: There are two articulated plates (33), which are arranged symmetrically on the left and right.