Power equipment mounting and lifting device and using method thereof
By detecting the quality of the power equipment and adjusting the support area of the lifting device according to the detection results, using components such as cylinders, gear transmissions and moving columns, the stability and safety problems of traditional lifting devices during the installation of power equipment are solved, and the stable lifting and support of the equipment is achieved.
Patent Information
- Application Number
- CN202510331324.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2025-06-24
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the installation of power equipment, traditional manual handling and existing lifting devices have problems such as low efficiency, high safety risks, and easy equipment to collapse, resulting in unstable installation process and high safety risks.
A power equipment installation lifting device is designed, by detecting the quality of the power equipment, adjusting the bottom support area according to the detection results, and using components such as cylinders, gear transmissions and moving columns to achieve stable lifting and support of the equipment.
It realizes stable lifting and support for power equipment, improves the safety and stability of the equipment during installation, reduces the risk of accidents, and improves measurement accuracy and efficiency.
Smart Images

Figure CN120191871A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of power equipment, and particularly to a power equipment installation lifting device and its usage method. Background Art
[0002] A power equipment installation lifting device is a mechanical device integrating multiple functions such as lifting, handling, and fixing. It is mainly used to lift, handle, and fix power equipment during the installation process of power equipment. It can be flexibly adjusted according to requirements such as the weight, size, and installation position of the power equipment to ensure that the power equipment can safely and stably reach the designated installation position. With the continuous development of the power industry and the increasing requirements for the installation efficiency of power equipment, the power equipment installation lifting device is also constantly evolving and improving. In the future, this device will pay more attention to intelligent, automated, and modular design to improve installation efficiency, reduce labor intensity, and ensure installation quality. At the same time, with the rapid development of fields such as new energy and smart grids, the power equipment installation lifting device will also face more challenges and opportunities.
[0003] In power equipment installation operations, given that the equipment is often heavy and bulky, the traditional manual handling and installation methods are not only inefficient but also pose serious safety hazards. In addition, even with the help of existing auxiliary lifting devices, due to their large own weight and the uneven distribution of power equipment, it is extremely easy for the equipment to tilt laterally or even collapse during installation, further increasing the safety risk. In view of this, the market urgently needs a lifting device that can efficiently, conveniently, and safely complete the installation task of power equipment. This device needs to have excellent stability and load-bearing capacity to ensure the smooth progress of the entire installation process and minimize the accident risk. Summary of the Invention
[0004] The purpose of the present invention is to provide a power equipment installation lifting device. By detecting the quality of the power equipment, the larger the quality, the larger the supporting area at the bottom, so as to improve the stability of the equipment during installation and lifting, thereby effectively solving the problems raised in the above background.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A power equipment installation lifting device includes a main body mechanism. A lifting mechanism is threadedly driven inside the main body mechanism, and a supporting mechanism is slidably embedded inside the main body mechanism;
[0006] The support mechanism includes two cylinders. A set of linkage plates are fixedly installed at the telescopic ends of the two cylinders. On one side of the outer walls of the two sets of linkage plates, telescopic columns are fixedly connected. On one side of the outer walls of the two sets of telescopic columns, outer adjustment frames are fixedly connected. Movement grooves are provided inside the two outer adjustment frames. Holes are provided at the tops of the two outer adjustment frames. Movement columns are slidably embedded in the inner walls of the two sets of movement grooves. A set of tooth grooves are provided at the tops of the two sets of movement columns. On one side of the outer walls of the two sets of movement columns, a plurality of fixed columns are fixedly installed. At the bottoms of the multiple sets of fixed columns, rollers are movably inserted. Support components are fixedly installed at the bottoms of the multiple sets of fixed columns. Fixed frames are fixedly installed at the tops of the two outer adjustment frames. Drive rotation grooves are preset inside the two sets of fixed frames. Gear bodies are rotatably connected to the inner walls of the two sets of drive rotation grooves. The outer surfaces of the two gear bodies are meshed and connected inside the tooth grooves.
[0007] Preferably, the lifting mechanism includes two linkage columns and two sets of L-shaped fixing plates;
[0008] Threaded holes are penetrated through the interiors of the two linkage columns. A U-shaped external grinding plate is fixedly installed between one sides of the outer walls of the two linkage columns;
[0009] Embedding grooves are preset inside the two sets of L-shaped fixing plates. The inner wall of the U-shaped external grinding plate and one sides of the outer walls of the two sets of L-shaped fixing plates are fixedly installed. Embedding blocks are slidably embedded in the inner walls of the two sets of embedding grooves. A placing plate is fixedly installed between the outer surfaces of the two sets of embedding blocks.
[0010] Preferably, detection components are fixedly installed at the bottoms of the inner walls of the two sets of placing plates. The tops of the two sets of detection components are fixedly installed with the bottoms of the inner walls of the L-shaped fixing plates. A gear belt limit seat is fixedly installed on one side of the outer wall of the U-shaped external grinding plate.
[0011] Preferably, the main body mechanism includes a main body frame plate. Two sets of telescopic grooves are preset inside the main body frame plate. Two sets of bearing seats are fixedly installed inside the main body frame plate.
[0012] Preferably, threaded rods are fixedly inserted into the inner walls of the two sets of bearing seats. Straight gears A are fixedly connected to the tops of the two threaded rods.
[0013] Preferably, a set of rotating seats are fixedly installed inside the main body frame plate. A transmission wheel is rotatably connected inside a set of rotating seats. Two extension rods are fixedly connected to the outer surface of one of the two transmission wheels.
[0014] Preferably, a linkage wheel is fixedly sleeved on the outer surface wall of one of the two extension rods, a driving motor is fixedly installed on the top of the main body frame plate, a transmission belt is meshed and driven on the outer surface wall of the driving motor, and the inner surface wall of the transmission belt is meshed and driven with the outer surface wall of the linkage wheel.
[0015] Preferably, a spur gear B is fixedly installed on one side of the outer walls of the two extension rods, and both of the two spur gears B are meshed and driven with the outer surface wall of the spur gear A, and a gear belt A is meshed and driven between the outer surface walls of the two transmission wheels.
[0016] Preferably, the outer surface walls of the two threaded rods are both threadedly connected inside the threaded holes, the outer surface wall of the gear belt A is meshed and driven inside the gear belt limit seat, one side of the outer walls of the two cylinders is fixedly installed with the outer surface wall of the main body frame plate, and the outer surface walls of the two groups of moving columns are movably embedded inside the telescopic grooves.
[0017] A usage method of an electric power equipment installation lifting device includes the following steps:
[0018] Step 1: First, when the equipment is in use, place the electric power equipment on the tops of the two placement plates, and the weight of the electric power equipment itself will act on the tops of the two placement plates. And with the cooperation of the two embedded blocks sliding and embedded inside the embedding grooves, it is ensured that the placement plates will move downward inside the L-shaped fixing plates. And because the detection component is itself connected between the placement plates and the L-shaped fixing plates, the separation between the placement plates and the L-shaped fixing plates will form a pulling process on the detection component. And the detection component itself has elasticity inside, and an elasticity is used to connect this elasticity. And a pressure sensor is connected under the internal expansion and contraction of it. When the weight of the electric power equipment acts on the pressure sensor under the mutual transmission between them, a pull on the pressure sensor is formed, and the mass of the electric power equipment itself can be further detected.
[0019] Step 2: When monitoring the mass of the electric power equipment itself, use sensors and other devices to convert the original signal into a digital or analog signal that can be processed. During the acquisition process, attention needs to be paid to the selection of parameters such as the sampling rate and quantization accuracy to ensure that the acquired signal can accurately reflect the characteristics of the original signal. A method of decomposing the signal into different scales and frequencies, using wavelet basis functions to decompose and reconstruct the signal, so as to extract the short-term changes and instantaneous characteristics in the signal. After the signal analysis is completed, usually the analysis result needs to be compared with a preset standard or threshold to judge the state or nature of the target object. The comparison result will determine the issuance of subsequent instructions. According to the result of the signal comparison, the system will make corresponding instructions or decisions, thereby forming a control instruction and transmitting it to the inside of the support mechanism.
[0020] Step 3: After the support mechanism receives the control instruction, first start the two cylinders. The telescopic ends at both ends of the two cylinders start to move forward. Since their telescopic ends are fixedly installed with the linkage plate respectively, and the other side of the linkage plate is fixedly connected to the telescopic column, through the mutual transmission between them, it can drive the two telescopic columns and the components fixed thereto to move to one side. Subsequently, driven by the external motor, the two groups of gear bodies are driven to rotate. During the rotation of the gear bodies themselves, they can maintain meshing transmission with the internal tooth grooves. And with the cooperation of the moving column sliding and being limited within the moving groove, it can keep the moving column and the components fixed thereto moving to one side. During the moving process, multiple rollers maintain rolling friction with the ground to cooperate with the movement. When moving to a suitable position, the electric telescopic rod arranged inside the bottom support component will lift the entire device, and keep the bottom support plate in contact with the ground, thereby forming the support treatment for the device.
[0021] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0022] 1. In the present invention, when the device is in use, it can complete the weight detection of the power equipment to judge the state or nature of the power equipment. According to the comparison result, the system automatically generates corresponding instructions or decisions, forms control instructions, and transmits them to the support mechanism to start the cylinders and the motor. Through the meshing transmission between the gear and the tooth groove and the sliding limit of the moving column within the moving groove, the device can be smoothly moved to one side, and keep the support plate in close contact with the ground, realizing the stable support of the device. Thus, it can adjust the size of the bottom support area according to the mass of the power equipment. The larger the mass, the larger the adjustment of the bottom support area, ensuring the safety and stability of the device during the installation and lifting process.
[0023] 2. In the present invention, the power equipment is stably placed on the top of the placement plate, and the weight of the power equipment is used to drive the placement plate to slide inside the L-shaped fixed plate, and the pressure sensor inside the detection component is used to accurately measure the weight of the power equipment. This process does not require manual intervention, greatly improving the measurement accuracy and efficiency.
[0024] 3. In the present invention, this device not only improves the accuracy and efficiency of the weight measurement of the power equipment, but also realizes the functions of intelligent judgment and decision-making, as well as smooth movement and stable support, providing strong support for the management and maintenance of the power equipment. Description of the Drawings
[0025] Figure 1 It is the main view structure three-dimensional diagram in a power equipment installation and lifting device of the present invention;
[0026] Figure 2 It is the test structure plan view in a power equipment installation and lifting device of the present invention;
[0027] Figure 3 This is a three-dimensional view of the main mechanism in a power equipment installation lifting device of the present invention;
[0028] Figure 4 This is an enlarged view of Structure A in a power equipment installation lifting device of the present invention;
[0029] Figure 5 This is a three-dimensional view of the lifting mechanism in a power equipment installation lifting device of the present invention;
[0030] Figure 6 This is a partially three-dimensional split view of the lifting mechanism in a power equipment installation lifting device of the present invention;
[0031] Figure 7 This is a three-dimensional view of the support mechanism in a power equipment installation lifting device of the present invention;
[0032] Figure 8 This is an enlarged view of Structure B in a power equipment installation lifting device of the present invention.
[0033] In the figure: 1. Main mechanism; 11. Main frame plate; 111. Telescopic groove; 12. Bearing seat; 121. Threaded rod; 122. Straight gear A; 13. Rotating seat; 131. Transmission wheel; 132. Extension rod; 133. Linkage wheel; 134. Straight gear B; 135. Gear belt A; 14. Driving motor; 141. Transmission belt; 2. Lifting mechanism; 21. Linkage column; 211. Threaded hole; 22. U-shaped external grinding plate; 23. L-shaped fixing plate; 231. Embedding groove; 232. Embedding block; 24. Placing plate; 25. Detection component; 26. Gear belt limit seat; 3. Support mechanism; 31. Cylinder; 311. Linkage plate; 32. Telescopic column; 33. External adjustment frame; 331. Moving groove; 332. Hole; 34. Moving column; 341. Tooth groove; 35. Fixed column; 351. Roller; 352. Support component; 36. Fixed frame; 361. Driving groove; 37. Gear body. Detailed implementation method
[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the protection scope of the present invention.
[0035] Example 1, referring to Figures 1 - 8As shown: The present invention provides a power equipment installation and lifting device, comprising a main body mechanism 1, the internal thread of the main body mechanism 1 is provided with a lifting mechanism 2, and the internal of the main body mechanism 1 is slidably embedded with a supporting mechanism 3;
[0036] The supporting mechanism 3 includes two cylinders 31, and a group of linkage plates 311 are fixedly installed at the telescopic ends of the two cylinders 31. The outer wall side of the two groups of linkage plates 311 is fixedly connected with a telescopic column 32. The outer wall side of the two groups of telescopic columns 32 is fixedly connected with an outer adjustment frame 33. The interior of the two outer adjustment frames 33 is provided with a moving groove 331. The top of the two outer adjustment frames 33 is provided with a hole 332. The inner surface wall of the two groups of moving grooves 331 is slidably embedded with a moving column 34. The top of the two groups of moving columns 34 is provided with a group of Tooth groove 341, multiple fixed columns 35 are fixedly installed on one side of the outer wall of the two groups of movable columns 34, and rollers 351 are movably inserted at the bottom of the multiple groups of fixed columns 35. Support components 352 are fixedly installed at the bottom of the multiple groups of fixed columns 35, and fixed frames 36 are fixedly installed on the tops of the two groups of outer adjustment frames 33. Drive grooves 361 are preset inside the two groups of fixed frames 36. The inner surface walls of the two groups of drive grooves 361 are rotatably connected with gear bodies 37, and the outer surface walls of the two groups of gear bodies 37 are meshed and connected to the inside of the tooth groove 341.
[0037] In this embodiment, when the support mechanism 3 receives the control command, it first activates the two cylinders 31, and the telescopic ends of the two cylinders 31 immediately begin to extend forward. Since they are fixedly connected to the linkage plate 311, the linkage plate 311 also moves accordingly, and the other end of the linkage plate 311 is fastened to the telescopic column 32. This design ensures that the telescopic action of the cylinder 31 can effectively drive the telescopic column 32 and the components connected to it to move to one side together. Then, the external motor starts and drives the two sets of gear bodies 37 to start rotating. During the rotation of the gear bodies 37, they maintain a tight meshing transmission with the tooth grooves 341. This design not only ensures the stability of the transmission, but also enables the moving column 34 to Under the limiting action of the moving groove 331, it slides smoothly to one side, and the sliding of the moving column 34 further drives the components fixedly connected to it to move together. During the movement, in order to reduce friction resistance, multiple rollers 351 maintain rolling contact with the ground. This design makes the entire movement process smoother. When the equipment moves to the predetermined appropriate position, the bottom support component 352 begins to play a role, and the electric telescopic rod inside it starts to lift the entire equipment and ensure that the bottom support plate is in close contact with the ground, thereby achieving stable support for the equipment. The whole process not only reflects the precision and efficiency of the equipment design, but also fully demonstrates the wide application of automation technology in the installation and movement of power equipment.
[0038] Embodiment 2, according to Figure 1 , Figure 2 ,Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown in Figure 6 , the lifting mechanism 2 includes two linkage columns 21 and two groups of L-shaped fixing plates 23;
[0039] Threaded holes 211 are penetrated and opened inside both of the two linkage columns 21, and a U-shaped external grinding plate 22 is fixedly installed between one sides of the outer walls of the two linkage columns 21;
[0040] Embedding grooves 231 are preset inside both of the two groups of L-shaped fixing plates 23, and the inner surface wall of the U-shaped external grinding plate 22 is fixedly installed with one sides of the outer walls of the two groups of L-shaped fixing plates 23. Embedding blocks 232 are slidably embedded in the inner surface walls of the two groups of embedding grooves 231. Placing plates 24 are fixedly installed between the outer surface walls of the two groups of embedding blocks 232. Detection components 25 are fixedly installed at the bottoms of the inner walls of the two groups of placing plates 24, and the tops of the two groups of detection components 25 are fixedly installed with the bottoms of the inner walls of the L-shaped fixing plates 23. A gear belt limit seat 26 is fixedly installed on one side of the outer wall of the U-shaped external grinding plate 22;
[0041] The main body mechanism 1 includes a main body frame plate 11. Two telescopic grooves 111 are preset inside the main body frame plate 11. Two bearing seats 12 are fixedly installed inside the main body frame plate 11. Threaded rods 121 are fixedly inserted into the inner surface walls of the two bearing seats 12. Straight gears A122 are fixedly connected to the tops of the two threaded rods 121. A rotating seat 13 is fixedly installed inside the main body frame plate 11. A transmission wheel 131 is rotatably connected inside the rotating seat 13. Two extension rods 132 are fixedly connected to the outer surface of one of the two transmission wheels 131. A linkage wheel 133 is fixedly sleeved on the outer surface of one of the two extension rods 132. A driving motor 14 is fixedly installed on the top of the main body frame plate 11. A transmission belt 141 is meshed and driven on the outer surface of the driving motor 14, and the inner surface wall of the transmission belt 141 is meshed and driven with the outer surface of the linkage wheel 133. Straight gears B134 are fixedly installed on one sides of the outer walls of the two extension rods 132, and the two straight gears B134 are respectively meshed and driven with the outer surface of the straight gear A122. A gear belt A135 is meshed and driven between the outer surfaces of the two transmission wheels 131;
[0042] The outer surfaces of the two threaded rods 121 are both threadedly connected inside the threaded holes 211. The outer surface of the gear belt A135 is meshed and driven inside the gear belt limit seat 26. One sides of the outer walls of the two cylinders 31 are fixedly installed with the outer surface wall of the main body frame plate 11. The outer surfaces of the two groups of moving columns 34 are movably embedded inside the telescopic grooves 111.
[0043] In this embodiment, when monitoring the quality of power equipment, we rely on precision equipment such as sensors to capture and convert the original signal into a processable digital or analog form. During this conversion process, the selection of the sampling rate and quantization accuracy is crucial, as they directly affect the accuracy of signal acquisition, ensuring that the collected signal can truly reflect the original state of the power equipment. To deeply analyze these signals, we adopt an advanced method, namely using wavelet basis functions to decompose and reconstruct the signal at multiple scales and frequencies. This process can effectively extract the short-term changes and instantaneous characteristics in the signal, providing key information for subsequent decision-making. After signal analysis, we will carefully compare the analysis results with preset standards or thresholds to accurately judge the current state or nature of the power equipment. This comparison result is decisive for the issuance of subsequent instructions. Based on the result of signal comparison, the system will automatically generate corresponding instructions or decisions. These instructions, after being carefully encoded, are transmitted to the interior of the support mechanism 3. After receiving these control instructions, the support mechanism 3 will perform corresponding actions according to the instruction content, such as adjusting the position, activating the support function, etc., to ensure the safety and stability of the power equipment. The entire monitoring and decision-making process not only reflects the precision and efficiency of high technology but also demonstrates the important application of automation technology in power equipment management, providing a strong guarantee for the safe development of the power industry.
[0044] The working principle of the entire mechanism is as follows: When using the device, first place the power equipment stably on the tops of the two sets of placement plates 24. The weight of the power equipment then acts on the placement plates 24, and through the sliding fit between the embedding blocks 232 and the embedding slots 231, it drives the placement plates 24 to slide downward inside the L-shaped fixing plates 23. At the same time, since the detection assembly 25 is connected between the placement plates 24 and the L-shaped fixing plates 23, as the distance between the two increases, the detection assembly 25 is stretched. The detection assembly 25 has elasticity inside, is connected by elastic elements, and the telescopic end is connected to a pressure sensor. The weight of the power equipment acts on the pressure sensor through a series of transmissions, so as to accurately measure the weight of the power equipment. Subsequently, sensors and other devices are used to convert the measured original signal into a digital or analog signal that can be processed. During the signal acquisition process, parameters such as the sampling rate and quantization accuracy need to be carefully selected to ensure that the acquired signal can truly reflect the characteristics of the original signal. Then, wavelet basis functions are used to decompose and reconstruct the signal to extract the short-term changes and instantaneous characteristics in the signal, completing signal analysis. After the signal analysis is completed, the analysis results are compared with preset standards or thresholds to judge the state or nature of the power equipment. According to the comparison results, the system generates corresponding instructions or decisions to form control instructions and transmits them to the support mechanism 3. After receiving the control instructions, the support mechanism 3 first starts two cylinders 31. The telescopic ends of the cylinders 31 drive the linkage plates 311 and the telescopic columns 32 fixedly connected thereto to move to one side. At the same time, an external motor drives the two sets of gear bodies 37 to rotate. The gear bodies 37 maintain meshing transmission inside the tooth grooves 341. With the cooperation of the moving columns 34 sliding and being limited inside the moving grooves 331, the moving columns 34 and the components fixedly connected thereto move smoothly to one side. During the moving process, multiple rollers 351 maintain rolling friction with the ground to reduce the moving resistance. When the device moves to a suitable position, the electric telescopic rods inside the bottom support assembly 352 are started to lift the entire device and keep the support plate at the bottom in close contact with the ground, realizing stable support for the device.
[0045] The present invention also provides a usage method of a power equipment installation and lifting device, including the following steps:
[0046] Step 1: First, when the device is in use, place the power device on top of the two placement plates 24. The weight of the power device itself acts on the tops of the two placement plates 24. With the cooperation of the two embedding blocks 232 slidingly embedded inside the embedding grooves 231, the placement plates 24 are kept moving downward inside the L-shaped fixing plate 23. Since the detection component 25 is itself connected between the placement plate 24 and the L-shaped fixing plate 23, the separation between the placement plate 24 and the L-shaped fixing plate 23 will form a pulling effect on the detection component 25. The detection component 25 itself has elasticity inside, and an elastic body connects this elasticity. Inside its telescopic part, a pressure sensor is connected. When the weight of the power device acts on the pressure sensor through mutual transmission between them, forming a pull on the pressure sensor, the mass of the power device itself can be further detected;
[0047] Step 2: When monitoring the mass of the power device itself, use sensors and other devices to convert the original signal into a processable digital or analog signal. During the acquisition process, attention needs to be paid to the selection of parameters such as the sampling rate and quantization accuracy to ensure that the acquired signal can accurately reflect the characteristics of the original signal. Decompose the signal into different scales and frequencies. Use wavelet basis functions to decompose and reconstruct the signal, so as to extract the short-time changes and instantaneous characteristics in the signal. After the signal analysis is completed, usually the analysis results need to be compared with preset standards or thresholds to judge the state or nature of the target object. The comparison results will determine the subsequent issuance of instructions. According to the signal comparison results, the system will make corresponding instructions or decisions, thus forming a control instruction and transmitting it to the inside of the support mechanism 3;
[0048] Step 3: After the support mechanism 3 receives the control instruction itself, first start the two cylinders 31. The telescopic ends at both ends of the two cylinders 31 start to move forward. Since their telescopic ends are respectively fixedly installed with the linkage plates 311, and the other side of the linkage plate 311 is fixedly connected to the telescopic columns 32, through mutual transmission between them, the two telescopic columns 32 and the components fixed to them can be driven to move to one side. Subsequently, driven by the external motor, the two gear bodies 37 are driven to rotate. During the rotation of the gear bodies 37 themselves, they can maintain meshing transmission inside the tooth grooves 341. With the cooperation of the moving column 34 slidingly limited inside the moving groove 331, the moving column 34 and the components fixed to it can be kept moving to one side. During the movement, multiple rollers 351 keep rolling friction with the ground to cooperate with the movement. When moving to a suitable position, the electric telescopic rod arranged inside the bottom support component 352 will lift the entire device, and keep the bottom support disk in contact with the ground, thus forming a support for the device.
[0049] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A lifting device for installing electric equipment, characterized in that: It comprises a main body mechanism (1), wherein the internal thread of the main body mechanism (1) is provided with a lifting mechanism (2), and the internal part of the main body mechanism (1) is provided with a supporting mechanism (3) which is slidably embedded therein; The support mechanism (3) comprises two cylinders (31), the telescopic ends of the two cylinders (31) are fixedly mounted with a group of linkage plates (311), one side of the outer wall of the two groups of linkage plates (311) is fixedly connected with a telescopic column (32), one side of the outer wall of the two groups of telescopic columns (32) is fixedly connected with an outer adjustment frame (33), the inside of the two outer adjustment frames (33) is provided with a moving groove (331), the top of the two outer adjustment frames (33) is provided with a hole (332), the inner surface walls of the two groups of moving grooves (331) are slidably embedded with a moving column (34), and the top of the two groups of moving columns (34) is provided with a A group of tooth grooves (341), a plurality of fixed columns (35) are fixedly installed on one side of the outer wall of the two groups of movable columns (34), a roller (351) is movably inserted at the bottom of the multiple groups of fixed columns (35), a support assembly (352) is fixedly installed at the bottom of the multiple groups of fixed columns (35), a fixed frame (36) is fixedly installed on the top of the two groups of external adjustment frames (33), a driving groove (361) is preset inside the two groups of fixed frames (36), the inner surface walls of the two groups of driving grooves (361) are rotatably connected with a gear body (37), and the outer surface walls of the two groups of gear bodies (37) are meshedly connected to the inside of the tooth grooves (341).
2. The electric power equipment installation and lifting device according to claim 1, characterized in that: The lifting mechanism (2) comprises two linkage columns (21) and two groups of L-shaped fixing plates (23); The insides of the two linkage columns (21) are both penetrated by threaded holes (211), and a U-shaped external grinding plate (22) is fixedly installed between one side of the outer walls of the two linkage columns (21); The insides of the two groups of L-shaped fixing plates (23) are preset with embedded grooves (231), and the inner surface wall of the U-shaped outer grinding plate (22) is fixedly installed on one side of the outer wall of the two groups of L-shaped fixing plates (23), and the inner surface walls of the two groups of embedded grooves (231) are slidably embedded with embedded blocks (232), and a placement plate (24) is fixedly installed between the outer surface walls of the two groups of embedded blocks (232).
3. The electric power equipment installation and lifting device according to claim 2, characterized in that: The bottom of the inner wall of the two groups of placement plates (24) are fixedly mounted with detection components (25), and the tops of the two groups of detection components (25) are fixedly mounted with the bottom of the inner wall of the L-shaped fixed plate (23), and one side of the outer wall of the U-shaped external grinding plate (22) is fixedly mounted with a gear belt limit seat (26).
4. The electric power equipment installation and lifting device according to claim 3 is characterized in that: The main body mechanism (1) comprises a main frame plate (11), two groups of telescopic grooves (111) are preset inside the main frame plate (11), and two groups of bearing seats (12) are fixedly installed inside the main frame plate (11).
5. The electric power equipment installation and lifting device according to claim 4, characterized in that: The inner surface walls of the two groups of bearing seats (12) are fixedly inserted with threaded rods (121), and the tops of the two threaded rods (121) are fixedly connected with spur gears A (122).
6. The electric power equipment installation and lifting device according to claim 5, characterized in that: A group of rotating seats (13) are fixedly installed inside the main frame plate (11), and a driving wheel (131) is rotatably connected inside each of the rotating seats (13). Two extension rods (132) are fixedly connected to one of the outer walls of two driving wheels (131).
7. The electric power equipment installation and lifting device according to claim 6, characterized in that: A linkage wheel (133) is fixedly mounted on the outer wall of one of the two extension rods (132); a rotation-driving motor (14) is fixedly mounted on the top of the main frame plate (11); a transmission belt (141) is meshed with the outer wall of the rotation-driving motor (14), and an inner wall of the transmission belt (141) is meshed with the outer wall of the linkage wheel (133) for transmission.
8. The electric power equipment installation and lifting device according to claim 7, characterized in that: A spur gear B (134) is fixedly mounted on one side of the outer wall of the two extension rods (132), and the two spur gears B (134) are respectively meshed with the outer wall of the spur gear A (122) for transmission, and a gear belt A (135) is meshed with the outer walls of the two transmission wheels (131) for transmission.
9. The electric power equipment installation and lifting device according to claim 8, characterized in that: The outer walls of the two threaded rods (121) are both threadedly connected to the inside of the threaded hole (211); the outer wall of the gear belt A (135) is meshed and driven inside the gear belt limit seat (26); one side of the outer wall of the two cylinders (31) is fixedly installed with the outer wall of the main frame plate (11); and the outer walls of the two groups of movable columns (34) are movably embedded in the inside of the telescopic groove (111).
10. A method for using a lifting device for installing electric equipment, using the lifting device for installing electric equipment according to claim 9, comprising the following steps: S1: First, when the device is in use, the power device is placed on the top of the two groups of placement plates (24), and the weight of the power device itself will act on the top of the two groups of placement plates (24), and under the cooperation of the two groups of embedded blocks (232) slidingly embedded in the embedded grooves (231), the placement plates (24) are kept moving downward inside the L-shaped fixed plates (23), and because the detection component (25) itself is connected between the placement plates (24) and the L-shaped fixed plates (23), the distance between the placement plates (24) and the L-shaped fixed plates (23) will form a pulling process for the detection component (25), and the detection component (25) itself has elasticity inside, and this elasticity is connected by an elasticity, and a pressure sensor will be connected under the internal expansion and contraction. When the weight of the power device acts on the pressure sensor under the mutual transmission between each other, the pressure sensor is pulled, which can further detect the quality of the power device itself; S2: When monitoring the quality of the power equipment itself, the original signal is converted into a processable digital or analog signal using sensors and other equipment. During the acquisition process, attention should be paid to the selection of parameters such as sampling rate and quantization accuracy to ensure that the acquired signal can accurately reflect the characteristics of the original signal. The signal is decomposed into methods of different scales and frequencies, and the signal is decomposed and reconstructed using wavelet basis functions to extract short-term changes and instantaneous features in the signal. After the signal analysis is completed, it is usually necessary to compare the analysis result with a preset standard or threshold to determine the state or nature of the target object. The comparison result will determine the issuance of subsequent instructions. According to the result of the signal comparison, the system will make corresponding instructions or decisions, thereby forming a control instruction and transmitting it to the inside of the support mechanism (3); S3: After the support mechanism (3) receives the control command, it first starts the two cylinders (31), and the two telescopic ends of the two cylinders (31) start to move forward. Since the telescopic ends are respectively fixedly mounted on the linkage plate (311), and the other side of the linkage plate (311) is fixedly connected to the telescopic column (32), the two telescopic columns (32) and the components fixed thereto can be driven to move to one side under the mutual transmission between them. Subsequently, the two sets of gear bodies (37) are driven to rotate under the drive of the external motor, and the gear bodies (37) automatically rotate. During the rotation of the body, the meshing transmission can be maintained with the tooth groove (341), and the movable column (34) can be slidably limited in the movable groove (331) to keep the movable column (34) and the components fixed thereto moving to one side. During the movement, the plurality of rollers (351) maintain rolling friction with the ground to cooperate with the movement. After moving to a suitable position, the electric telescopic rod arranged inside the bottom support component (352) will lift up the entire device and keep the bottom support plate in contact with the ground, thereby forming a support treatment for the device.