An intelligent positioning installation support for photovoltaic panel installation
By designing an intelligent positioning installation bracket, and utilizing components such as scales, limit plates, and rubber pads, the photovoltaic panel bracket achieves precise positioning and stable fixation in the field, solving the problems of low positioning accuracy and structural instability in existing technologies, and improving installation efficiency and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHONGBANG YINGJIA CONSTR CO LTD
- Filing Date
- 2025-08-28
- Publication Date
- 2026-07-21
AI Technical Summary
Existing photovoltaic panel mounting brackets are difficult to quickly calibrate in complex terrain and lack of flat reference points in the field, resulting in low positioning accuracy and easy misalignment of components, which affects installation efficiency and structural stability.
An intelligent positioning and installation bracket was designed, which includes components such as a horizontal frame, a vertical frame, a horizontal rotating component, a vertical rotating component, a tripod, a calibration plate, and a fixing drill. Through structures such as scales, limit plates, and rubber pads, it can achieve precise length adjustment and stable fixation, ensuring efficient installation of the bracket in the field.
It improves the adaptability of photovoltaic panel mounting brackets to outdoor terrain and the efficiency of mobile installation, enhances positioning accuracy and structural stability, and ensures the power generation performance and service life of photovoltaic systems.
Smart Images

Figure CN224538128U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic panel installation technology, and in particular to an intelligent positioning installation bracket for photovoltaic panel installation. Background Technology
[0002] In recent years, the global energy transition has accelerated, and photovoltaics, as an important component of clean energy, has been widely used. The installation scenarios for photovoltaic panels are becoming increasingly diversified, covering various terrains such as rooftops, ground, and mountains. As the supporting foundation for photovoltaic panels, the positioning accuracy and installation efficiency of the mounting bracket directly affect the power generation performance and service life of the photovoltaic system.
[0003] Currently, photovoltaic panel mounting brackets mostly adopt metal frame structures, which are basically fixed by bolt connections. Some brackets have horizontal and vertical adjustment functions. The adjustment method is mostly manual operation, relying on external tools such as tape measures and levels for size and level calibration. During the positioning process, it mainly relies on the experience judgment and repeated measurements of the construction personnel.
[0004] Existing supports have shortcomings in practical applications. In terms of positioning accuracy, the complex terrain in the field and the lack of flat reference points make it difficult to quickly calibrate the horizontal state. Furthermore, when the overall structure is moved, component misalignment is prone to occur, affecting subsequent positioning accuracy and increasing the workload of repeated adjustments. Utility Model Content
[0005] In view of the above-mentioned shortcomings of the existing technology, the present invention provides an intelligent positioning and mounting bracket for photovoltaic panel installation, which can effectively solve the problems mentioned in the background technology.
[0006] To achieve the above objectives, this utility model provides the following technical solution: This utility model provides an intelligent positioning and installation bracket for photovoltaic panel installation, including a movable bracket. The movable bracket has a horizontal frame sleeved on it and a vertical frame sleeved on it. Both ends of the horizontal frame are rotatably connected to a horizontal rotating component. The lower end of the horizontal rotating component is rotatably connected to a vertical rotating component. The lower end of the vertical rotating component is rotatably connected to a foot bracket. The lower end of the foot bracket is provided with two sets of symmetrically arranged calibration discs, a fixing drill, and a foot pedal. The upper surface of the horizontal frame and the upper surface of the vertical frame are provided with graduations. The movable bracket is threaded with fixing bolts. The horizontal frame and the movable bracket, as well as the vertical frame and the movable bracket, are fixed by fixing bolts. Limiting plates are provided on both sides of the horizontal rotating component, and the limiting plates are fixedly connected to the horizontal frame.
[0007] Furthermore, the crossbeam is installed through the movable support, the outer surface of the crossbeam is in contact with the inner sidewall of the movable support, the scale on the crossbeam is distributed along its length, the fixing bolts are installed through the sidewall of the movable support and abut against the crossbeam, and there are two fixing bolts, which are respectively located on both sides of the movable support.
[0008] Furthermore, the vertical frame passes through the movable support, and limit blocks are fixedly installed at both ends of the vertical frame. Positioning holes are provided at both ends of the vertical frame, and the scale on the vertical frame is located on one side of the positioning holes.
[0009] Furthermore, the calibration plate is fixedly connected to the lower end of the tripod, the fixing drill is set perpendicular to the center of the lower surface of the calibration plate and fixedly connected to the tripod, the foot pedal is fixedly installed on the upper side of the calibration plate, and the foot pedal is fixedly connected to the side wall of the tripod.
[0010] Furthermore, the horizontal rotating component and the horizontal frame are arranged along the horizontal direction, the vertical rotating component and the horizontal rotating component are arranged along the vertical direction, the leg and the vertical rotating component are arranged along the horizontal direction, and the limiting plate is fixedly installed on the side of the leg and is arranged relative to the left front and right rear of the horizontal frame.
[0011] Furthermore, rubber pads are provided on the contact surfaces of the horizontal and vertical frames and the movable support, and the ends of the fixing bolts abut against the rubber pads. Pulleys are fixedly installed on the lower sides of both ends of the vertical frame, and the direction of the pulleys is fixed.
[0012] The beneficial effects of this utility model are: 1. This utility model is equipped with a calibration plate, a fixed drill, and a foot pedal at the lower end of the tripod, as well as a horizontal rotating component, a vertical rotating component, and a limiting plate. The calibration plate can ensure that the fixed drill is perpendicular to the ground. With the help of the foot pedal, the fixed drill can be quickly pressed into the ground to achieve stable fixation. The horizontal rotating component is linked with the vertical rotating component and the tripod under the restriction of the limiting plate. It can move in a straight line along a fixed distance by rotating alternately, which greatly improves the terrain adaptability and mobile installation efficiency of the support in the field without reference objects.
[0013] 2. This utility model is equipped with scales on the horizontal and vertical frames, fixing bolts on the movable support, and rubber pads on the contact surfaces of the horizontal and vertical frames with the movable support. The horizontal and vertical frames can be precisely adjusted in the horizontal and vertical directions through the scales. The fixing bolts can increase the friction with the horizontal and vertical frames by squeezing the rubber pads, avoiding loosening due to vibration after adjustment, and effectively improving the accuracy of the bracket installation and positioning and the structural stability. Attached Figure Description
[0014] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them: Figure 1 This is a schematic diagram of an intelligent positioning and mounting bracket structure for photovoltaic panel installation according to the present invention.
[0015] Figure 2 This is a side sectional view of an intelligent positioning and mounting bracket structure for photovoltaic panel installation according to the present invention.
[0016] Figure 3 This utility model relates to an intelligent positioning and mounting bracket structure for photovoltaic panel installation. Figure 2 Schematic diagram at point A in the middle.
[0017] Figure 4 This is a schematic diagram of the horizontal rotating component and related structure of an intelligent positioning and mounting bracket for photovoltaic panel installation according to this utility model.
[0018] Explanation of reference numerals in the attached figures: 1. Movable support; 2. Horizontal frame; 3. Vertical frame; 4. Horizontal rotating component; 5. Vertical rotating component; 6. Footrest; 7. Calibration plate; 8. Fixed drill; 9. Foot pedal; 10. Limiting plate; 11. Fixing bolt; 12. Rubber pad; 13. Scale; 14. Limiting block; 15. Positioning hole; 16. Pulley. Detailed Implementation
[0019] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. Example 1
[0020] Reference Figure 1-3 This is the first embodiment of the present invention, which provides an intelligent positioning and mounting bracket for photovoltaic panel installation, including a movable bracket 1. The movable bracket 1 is horizontally fitted with a horizontal frame 2 and vertically fitted with a vertical frame 3. The horizontal frame 2 and the vertical frame 3 can slide flexibly relative to the movable bracket 1. Both ends of the horizontal frame 2 are rotatably connected to a horizontal rotating component 4. The lower end of the horizontal rotating component 4 is rotatably connected to a vertical rotating component 5. The lower end of the vertical rotating component 5 is rotatably connected to a foot 6. The three components work together to achieve multi-angle rotation.
[0021] The lower end of the tripod 6 is provided with two sets of symmetrically arranged calibration discs 7, fixed drills 8, and foot pedals 9. The calibration discs 7 ensure that the fixed drills 8 are perpendicular to the ground, and the fixed drills 8 enhance the connection stability between the tripod 6 and the ground. The foot pedals 9 facilitate the application of pressure to embed the fixed drills 8 into the ground. The upper surface of the horizontal frame 2 is provided with scales 13, and the upper surface of the vertical frame 3 is provided with scales 13. The scales 13 can visually display the extension length of the horizontal frame 2 and the vertical frame 3. The movable support 1 is threaded with fixing bolts 11. The horizontal frame 2 and the movable support 1, as well as the vertical frame 3 and the movable support 1, are fixed by fixing bolts 11. The fixing bolts 11 can lock the position of the horizontal frame 2 and the vertical frame 3. The horizontal rotating component 4 is provided with limiting plates 10 on both sides. The limiting plates 10 are fixedly connected to the horizontal frame 2. The limiting plates 10 can limit the rotation angle of the horizontal rotating component 4 to no more than 180 degrees.
[0022] A crossbeam 2 is installed through the movable support 1. The outer surface of the crossbeam 2 is in contact with the inner sidewall of the movable support 1. This contact structure ensures the stability of the crossbeam 2 when it slides. The scale 13 on the crossbeam 2 is distributed along its length, which facilitates precise adjustment of the extension length of the crossbeam 2. The fixing bolt 11 is installed through the sidewall of the movable support 1 and abuts against the crossbeam 2. There are two fixing bolts 11, which are located on both sides of the movable support 1. Fixing from both sides can enhance the fixing effect of the crossbeam 2.
[0023] The vertical frame 3 is sleeved through the movable support 1, and both ends of the vertical frame 3 are fixedly installed with limit blocks 14, which can prevent the vertical frame 3 from coming out of the movable support 1; both ends of the vertical frame 3 are provided with positioning holes 15, which can be directly used as a reference for drilling or marking the photovoltaic panel support; the scale 13 on the vertical frame 3 is located on one side of the positioning hole 15, which makes it easy to accurately determine the position of the positioning hole 15 by combining the scale 13. Example 2
[0024] Reference Figure 1-4 This is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is that: the calibration plate 7 is fixedly connected to the lower end of the stand 6. The calibration plate 7 is a rigid structure that ensures that the fixed drill 8 is perpendicular to the ground. The fixed drill 8 is set perpendicular to the center of the lower surface of the calibration plate 7 and is fixedly connected to the stand 6, so that it can be stably inserted into the ground to prevent the equipment from rotating. The foot pedal 9 is fixedly installed on the upper side of the calibration plate 7 and is fixedly connected to the side wall of the stand 6. By stepping on the foot pedal 9, the fixed drill 8 can be easily pressed into the ground.
[0025] The horizontal rotating component 4 and the horizontal frame 2 are arranged along the horizontal direction, allowing the horizontal rotating component 4 to rotate horizontally around the horizontal frame 2; the vertical rotating component 5 and the horizontal rotating component 4 are arranged along the vertical direction, allowing the vertical rotating component 5 to rotate vertically relative to the horizontal rotating component 4; the leg 6 and the vertical rotating component 5 are arranged along the horizontal direction, allowing the leg 6 to rotate horizontally relative to the vertical rotating component 5; the limiting plate 10 is located on the side of the horizontal frame 2 near the horizontal rotating component 4, and the limiting plate 10 is arranged opposite to the horizontal frame 2 on the left front and right rear, and corresponds to the rotation trajectory of the horizontal rotating component 4. The limiting plate 10 can limit the rotation angle of the horizontal rotating component 4 to within 180 degrees.
[0026] Rubber pads 12 are provided on the contact surfaces of the horizontal frame 2 and the vertical frame 3 with the movable support 1. The ends of the fixing bolts 11 abut against the rubber pads 12. The rubber pads 12 can increase the friction between the fixing bolts 11 and the horizontal frame 2 and the vertical frame 3, and prevent loosening after fixing. Pulleys 16 are fixedly installed on the lower sides of both ends of the vertical frame 3. The direction of the pulleys 16 is fixed. The pulleys 16 can assist the equipment to move along the extension and retraction direction of the vertical frame 3.
[0027] The remaining structure is the same as that in Example 1.
[0028] The specific operating principle of this utility model is as follows: First, two sets of calibration discs 7 are symmetrically fixed to the lower end of the tripod 6. The calibration discs 7 are directly connected to the lower end of the tripod 6. The fixed drill 8 is perpendicular to the center of the lower surface of the calibration disc 7 and fixed to the tripod 6. The foot pedal 9 is installed on the upper side of the calibration disc 7 and connected to the side wall of the tripod 6. During installation, the fixed drill 8 can be quickly pressed into the ground by stepping on the foot pedal 9. The rigid structure of the calibration disc 7 ensures that the fixed drill 8 is perpendicular to the ground. The two sets of symmetrically arranged fixed drills 8 enhance the connection stability between the tripod 6 and the ground, prevent the equipment from rotating or tilting as a whole, and provide a vertical and stable foundation support for subsequent operations.
[0029] Secondly, the horizontal and vertical position adjustment and locking are accomplished through the movable bracket 1, the horizontal frame 2, the vertical frame 3, and supporting components. The horizontal frame 2 is horizontally inserted through the movable bracket 1 and its outer surface is tightly fitted with the inner side wall of the movable bracket 1. The vertical frame 3 is vertically inserted through the movable bracket 1. The upper surface of the horizontal frame 2 has scales 13 distributed along its length. The upper surface of the vertical frame 3 also has scales 13 located on one side of the positioning hole 15. The length of the horizontal frame 2 and the vertical frame 3 extending from the movable bracket 1 can be precisely adjusted through the scales 13. After adjustment, the fixing bolts 11 on both sides of the movable bracket 1 penetrate the side wall and abut against the rubber pads 12 on the contact surfaces of the horizontal frame 2 and the movable bracket 1. The fixing bolt 11 in the middle abuts against the rubber pads 12 on the contact surfaces of the vertical frame 3 and the movable bracket 1. By squeezing the rubber pads 12, friction is increased to achieve a stable lock. At the same time, the limiting blocks 14 at both ends of the vertical frame 3 prevent it from coming off the movable bracket 1. The positioning holes 15 at both ends... It can be used directly as a reference for drilling or marking on photovoltaic panel brackets.
[0030] Finally, the linear movement and calibration of the equipment rely on the linkage and limit control of the rotating components. The horizontal rotating parts 4 at both ends of the horizontal frame 2 rotate around the horizontal axis, and the vertical rotating parts 5 at its lower end rotate around the vertical axis. The legs 6 at the lower end of the vertical rotating parts 5 rotate around the horizontal axis. The limit plates 10 on both sides of the horizontal rotating parts 4 are fixed to the sides of the legs 6 and are arranged in a left-front and right-rear orientation relative to the horizontal frame 2. Corresponding to the rotation trajectory of the horizontal rotating parts 4, the rotation angle can be limited to 180 degrees. Through the linkage of the horizontal rotating parts 4, the vertical rotating parts 5, and the legs 6, the two sides of the horizontal frame 2 can alternately complete 180-degree rotations, driving the entire equipment to move linearly along a fixed distance. The pulleys 16 fixed at the lower sides of both ends of the vertical frame 3 assist in smoother movement. After each rotation and movement, the position needs to be recalibrated using the scales 13 on the horizontal frame 2 and the vertical frame 3 to ensure the accuracy of subsequent installation and positioning.
[0031] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.
Claims
1. An intelligent positioning mounting bracket for photovoltaic panel installation, characterized in that: The device includes a movable support (1), which is horizontally fitted with a horizontal frame (2) and vertically fitted with a vertical frame (3). Both ends of the horizontal frame (2) are rotatably connected to a horizontal rotating component (4). The lower end of the horizontal rotating component (4) is rotatably connected to a vertical rotating component (5). The lower end of the vertical rotating component (5) is rotatably connected to a footrest (6). The lower end of the footrest (6) is provided with two symmetrically arranged correction discs (7), a fixed drill (8), and a foot pedal (9). The upper surface of the horizontal frame (2) is provided with a scale (13). The upper surface of the vertical frame (3) is provided with a scale (13). The movable support (1) is threaded with a fixing bolt (11). The horizontal frame (2) and the movable support (1), and the vertical frame (3) and the movable support (1) are fixed by fixing bolts (11). Both sides of the horizontal rotating component (4) are provided with a limiting plate (10). The limiting plate (10) is fixedly connected to the horizontal frame (2).
2. The intelligent positioning mounting bracket for photovoltaic panel installation according to claim 1, characterized in that, The crossbeam (2) is set through the movable support (1). The outer surface of the crossbeam (2) is in contact with the inner sidewall of the movable support (1). The scale (13) on the crossbeam (2) is distributed along its length. The fixing bolt (11) passes through the sidewall of the movable support (1) and abuts against the crossbeam (2). There are two fixing bolts (11) and they are located on both sides of the movable support (1).
3. The intelligent positioning mounting bracket for photovoltaic panel installation according to claim 1, characterized in that, The vertical frame (3) is installed through the movable support (1), and both ends of the vertical frame (3) are fixedly installed with limit blocks (14). Both ends of the vertical frame (3) are provided with positioning holes (15), and the scale (13) on the vertical frame (3) is located on one side of the positioning hole (15).
4. The intelligent positioning and mounting bracket for photovoltaic panel installation according to claim 1, characterized in that, The calibration plate (7) is fixedly connected to the lower end of the stand (6). The fixing drill (8) is set perpendicular to the center of the lower surface of the calibration plate (7) and fixedly connected to the stand (6). The foot pedal (9) is fixedly installed on the upper side of the calibration plate (7) and fixedly connected to the side wall of the stand (6).
5. The intelligent positioning mounting bracket for photovoltaic panel installation according to claim 1, characterized in that, The horizontal rotating component (4) and the horizontal frame (2) are arranged along the horizontal direction, the vertical rotating component (5) and the horizontal rotating component (4) are arranged along the vertical direction, the leg (6) and the vertical rotating component (5) are arranged along the horizontal direction, the limiting plate (10) is fixedly installed on the side of the leg (6) and is arranged relative to the left front and right rear of the horizontal frame (2).
6. The intelligent positioning mounting bracket for photovoltaic panel installation according to claim 1, characterized in that, The horizontal frame (2) and vertical frame (3) are fitted with rubber pads (12) on the contact surfaces with the movable support (1). The ends of the fixing bolts (11) abut against the rubber pads (12). Pulleys (16) are fixedly installed on the lower sides of both ends of the vertical frame (3). The direction of the pulleys (16) is fixed.