A multi-scale adjustable photovoltaic bracket

The arc-scale arm and gearbox drive structure of the multi-scale adjustable photovoltaic bracket solves the problem of inaccurate angle adjustment of the photovoltaic bracket, realizes multi-scale precise control of photovoltaic panels in small-scale application scenarios, and improves system efficiency and stability.

CN119766098BActive Publication Date: 2025-09-12JIANGSU SHIYU PHOTOELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202411921817.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-25
Publication Date
2025-09-12
Estimated Expiration
2044-12-25

AI Technical Summary

Technical Problem

When adjusting the angle of existing tilt-adjustable photovoltaic brackets, the flip angle is limited and the flip subdivision is difficult to fine-tune, resulting in poor adjustment range and accuracy, making it difficult to adapt to small-scale application scenarios such as residential and commercial buildings.

Method used

A multi-scale adjustable photovoltaic bracket is adopted. By setting up an arc-shaped arc arm and an internal gear arc arm structure, combined with a gearbox and a motor group drive, multi-scale precise control of the photovoltaic panel can be achieved, ensuring the synchronization and stability of the flip angle.

Benefits of technology

The accuracy and stability of the photovoltaic bracket when adjusting the angle are improved, which meets the needs of small-scale application scenarios and enhances the efficiency and life of the photovoltaic system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of photovoltaic equipment, and discloses a multi-scale adjustable photovoltaic bracket, including a ground pile connection module, a main beam fixedly installed on the top of the ground pile connection module, an articulated support mechanism fixedly installed on the end of the top surface of the main beam, the main beam hinged to an oblique beam rib tube through the articulated support mechanism, and an arc ruler arm welded and fixed to the side surface of the oblique beam rib tube. This multi-scale adjustable photovoltaic bracket, by setting the flip support structure as an arc ruler arm in the shape of a circular arc, and then setting an inner toothed arc arm driven by a ruler roller on its inner circle to cooperate with it, so that when the entire photovoltaic bracket adjusts the angle, it avoids the defects of the traditional straight arm structure in terms of flip angle limitation and difficulty in fine control of flip subdivision, thereby achieving the effect of improving the adjustment scale range and accuracy, facilitating multi-scale precise control under stable working conditions, and being more suitable for application scenarios with small-scale application ranges such as residential and commercial buildings.
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Description

Technical Field

[0001] The present invention relates to the technical field of photovoltaic equipment, and in particular to a multi-scale adjustable photovoltaic bracket. Background Art

[0002] Photovoltaic brackets are metal structural brackets used to install, support and fix solar panels (photovoltaic modules) in solar power generation systems. The main function of photovoltaic brackets is to ensure that photovoltaic panels remain stable in various weather conditions, while adjusting the orientation and angle of photovoltaic panels to maximize the reception of solar radiation, thereby improving the absorption efficiency and conversion efficiency of solar energy. The design and selection of photovoltaic brackets are crucial to the overall performance and life of the photovoltaic system.

[0003] Photovoltaic brackets can be divided into fixed brackets and adjustable brackets according to different adjustment angles. Fixed brackets are suitable for scenarios with relatively stable solar energy resources and large-scale installations (where the cost of the brackets and the ease of installation need to be reduced), while adjustable brackets can be further divided into tilt-adjustable brackets and automatic tracking brackets. Although the latter can actively track the trajectory of the sun to further increase power generation, it requires sensors and control processor equipment, which greatly increases the cost. Therefore, tilt-adjustable photovoltaic brackets are more advantageous in small-scale application scenarios such as residential and commercial buildings.

[0004] The existing photovoltaic brackets with adjustable tilt angles on the market have poor adjustment range and accuracy during the adjustment process due to the limited flip angle of the support structure and the difficulty in fine-tuning the flip subdivision. It is difficult to perform multi-scale precise adjustment while maintaining stable working conditions, which is not conducive to small-scale application scenarios such as residential and commercial buildings. Summary of the Invention

[0005] In view of the shortcomings of the existing technology, the present invention provides a multi-scale adjustable photovoltaic bracket, which solves the problems raised in the above background technology.

[0006] In order to achieve the above object, the present invention adopts the following technical solutions:

[0007] A multi-scale adjustable photovoltaic bracket includes a ground pile connection module, a main beam is fixedly installed on the top of the ground pile connection module, an articulated support mechanism is fixedly installed on the end of the top surface of the main beam, the main beam is hingedly connected to an oblique beam ridge tube through the articulated support mechanism, an arc ruler arm is welded and fixed to the side surface of the oblique beam ridge tube, an arc-shaped through groove is opened through the scale surface of the arc ruler arm, a stabilizing support shaft sliding in the arc-shaped through groove is fixedly installed on the side surface of the main beam, an inner arc side of the arc ruler arm is fixedly connected to an inner tooth arc arm, and the main beam is hingedly connected to an oblique beam ridge tube through the articulated support mechanism. A hanger is fixedly connected to the surface of the beam, and a bearing is provided at the bottom of the hanger. A connecting shaft is rotatably installed at the bottom of the hanger through the bearing. The shaft section of the connecting shaft inside the hanger is fixedly sleeved with a gear roller engaged with the internal gear arc arm. A gear box is sleeved with a bearing in the middle of the connecting shaft. A motor group is fixedly installed on the inner wall of the gear box. A driving shaft rotatably installed on the gear box is installed at the output end of the motor group. The surfaces of the driving shaft and the connecting shaft are respectively fixedly sleeved with a driving gear and a driven gear engaged with each other.

[0008] Preferably, the articulated support mechanism includes a first support plate frame, a hinge shaft and a second support plate frame, the top of the first support plate frame is rotatably connected to the second support plate frame by the hinge shaft, the bottom of the first support plate frame is welded and fixed to the end of the main beam, the top of the second support plate frame is fixedly welded to the end of the oblique beam rib tube, the top and side walls of the oblique beam rib tube are penetrated by a photovoltaic panel loading slot group, the tops of the arc arm and the second support plate frame are both provided with a welding auxiliary slot group, and the bottom of the gear box is fixedly installed with a box bracket.

[0009] Preferably, the photovoltaic panel loading slot group includes photovoltaic panel loading slots and photovoltaic panel loading through holes, the photovoltaic panel loading slots are strip-shaped slots, the photovoltaic panel loading through holes are circular through holes, and the photovoltaic panel loading through holes are distributed at both ends of the photovoltaic panel loading slots.

[0010] Preferably, the welding auxiliary groove group includes a welding point increasing groove and a welding point increasing through groove, the welding point increasing groove is opened at the corner of the arc arm or the second support plate frame, and the welding point increasing through groove is opened through the middle of the arc arm or the second support plate frame.

[0011] Preferably, a connecting limit base plate is fixedly installed on the bottom end of the inner tooth arc arm, and the two sides of the top surface of the connecting limit base plate are respectively fixedly connected to the two arc scale arms and the inner tooth arc arm, and a limiting block seat is fixedly installed on the top end of the inner tooth arc arm, and the limiting block seat is fixedly connected to the arc scale arm.

[0012] Preferably, the hanger includes a support frame, an installation side plate and a reinforced support arm, the two ends of the reinforced support arm are respectively fixedly welded to the inner wall side of the support frame and the side side of the installation side plate, and the support frame and the installation side plate are welded and fixed to the main crossbeam, and the connecting shaft is rotatably inserted into the bottom of the bottom side wall of the support frame through a bearing.

[0013] Preferably, the gearbox includes a box frame and a panel, the panel is installed at the front end and the back end of the box frame, and the connecting shaft is rotatably inserted into the side wall of the box frame through a bearing; the box body bracket includes a box branch pipe, a box body mounting plate and a box body assembly hole, the box body assembly hole is through and opened at the corner of the box body mounting plate, the box body mounting plate is fixedly installed at the end of the box branch pipe, the top of the box branch pipe is fixedly connected to the box frame through the box body mounting plate, and the box body mounting plate at the bottom of the box branch pipe is in the same horizontal plane as the bottom end of the ground pile connection module.

[0014] Preferably, the motor group includes a servo motor, a reducer and a reducer bracket, the output end of the servo motor is connected to the input end of the reducer, the output end of the reducer is connected to the active shaft, and the reducer bracket is fixedly connected to the bottom of the reducer.

[0015] Preferably, the ground pile connection module includes a connection column, a connection end plate and a connection through hole, the connection end plate is fixedly mounted on the top and bottom ends of the connection column, and the connection through hole is opened through the corner of the connection end plate.

[0016] Preferably, the main beam includes a beam rib tube, a beam embedded end plate and a beam assembly through hole. The beam assembly through hole is longitudinally penetrated and opened at the four corners of the beam embedded end plate body. The beam embedded end plate is embedded and fixedly welded to the end portion of the bottom of the beam rib tube; connecting bolts are installed inside the connecting through hole and the beam assembly through hole, and the connecting end plate and the beam embedded end plate are assembled and fixed by connecting bolts. The stabilizing support shaft is welded and fixed to the side surface of the beam rib tube, and both side surfaces of the beam rib tube are slidingly overlapped with the arc ruler arm and the inner tooth arc arm.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] 1. This multi-scale adjustable photovoltaic bracket sets a flip support structure as an arc-shaped arc arm, and sets an inner tooth arc arm driven by a scale roller on its inner circle to cooperate with it. Therefore, when adjusting the angle of the entire photovoltaic bracket, it avoids the flip angle limitation and the difficulty in fine control of the flip subdivision brought by the traditional straight arm structure, thereby achieving the effect of improving the adjustment scale range and accuracy, which is conducive to multi-scale precise control under stable working conditions, and is more suitable for application scenarios with small-scale application ranges such as residential and commercial buildings.

[0019] 2. This multi-scale adjustable photovoltaic bracket can ensure the synchronization effect by setting up a single transmission shaft-connecting shaft to drive both sides of the entire photovoltaic bracket, and setting a gear box, motor group, driving shaft, driving gear, driven gear and other structures to drive the connecting shaft, so that when it is adjusted to the required range, the inertia of the load can be reduced, which helps to better control the acceleration and deceleration of flipping and the stability in static state. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a three-dimensional view of the structure of the present invention;

[0021] Figure 2 Another three-dimensional view of the structure of the present invention;

[0022] Figure 3 It is a three-dimensional view of the local structure of the present invention;

[0023] Figure 4 This is another partial structural perspective view of the present invention;

[0024] Figure 5 This is another partial structural perspective view of the present invention;

[0025] Figure 6 This is another partial structural perspective view of the present invention;

[0026] Figure 7 This is a three-dimensional dissected view of another partial structure of the present invention.

[0027] Figure: 1. Ground pile connection module; 2. Connecting bolts; 3. Main crossbeam; 4. Articulated support mechanism; 5. Oblique beam rib; 6. PV panel loading slot assembly; 7. Arc ruler arm; 8. Arc through slot; 9. Welding auxiliary slot assembly; 10. Internal gear arc arm; 11. Connecting limit base plate; 12. Limit stop seat; 13. Hanger; 14. Bearing; 15. Connecting shaft; 16. Gear roller; 17. Gearbox; 18. Motor assembly; 19. Driving shaft; 20. Driving gear; 21. Driven gear; 22. Box support.

[0028] 101, connecting column; 102, connecting end plate; 103, connecting through-hole; 301, crossbeam rib tube; 302, crossbeam embedded end plate; 303, crossbeam assembly through-hole; 401, first support plate frame; 402, hinge shaft; 403, second support plate frame; 601, photovoltaic panel loading slot; 602, photovoltaic panel loading through-hole; 901, welding point adding groove; 902, welding point adding slot; 1301, support frame; 1302, mounting side panel; 1303, strengthening support arm; 1701, box frame; 1702, panel; 1801, servo motor; 1802, reducer; 1803, reducer bracket; 2201, box branch pipe; 2202, box mounting plate; 2203, box assembly hole; DETAILED DESCRIPTION

[0029] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0030] Example 1: Reference Figure 1-7 A multi-scale adjustable photovoltaic bracket includes a ground pile connection module 1, a main beam 3 is fixedly installed on the top of the ground pile connection module 1, and an articulated support mechanism 4 is fixedly installed on the end of the top surface of the main beam 3. The main beam 3 is hingedly connected to an oblique beam rib tube 5 through the articulated support mechanism 4. An arc ruler arm 7 is welded and fixed to the side surface of the oblique beam rib tube 5. An arc-shaped through groove 8 is opened through the scale surface of the arc ruler arm 7. A stable support shaft sliding in the arc-shaped through groove 8 is fixedly installed on the side surface of the main beam 3. An inner toothed arc arm 10 is fixedly connected to the inner arc side of the arc ruler arm 7. A hanger 13 is fixedly connected to the surface of the main beam 3. A bearing 14 is provided at the bottom of the hanger 13, and a connecting shaft 15 is rotatably installed at the bottom of the hanger 13 through the bearing 14. The shaft section of the connecting shaft 15 in the hanger 13 is fixedly sleeved with a gear roller 16 that engages with the internal gear arc arm 10. A gear box 17 is sleeved with the middle part of the connecting shaft 15 through the bearing 14. A motor group 18 is fixedly installed on the inner wall of the gear box 17. A driving shaft 19 rotatably installed on the gear box 17 is installed at the output end of the motor group 18. The surfaces of the driving shaft 19 and the connecting shaft 15 are respectively fixedly sleeved with a driving gear 20 and a driven gear 21 that mesh with each other.

[0031] In the present invention, the hinged support mechanism 4 includes a first support plate frame 401, a hinge shaft 402, and a second support plate frame 403. The top of the first support plate frame 401 is rotatably connected to the second support plate frame 403 through the hinge shaft 402. The bottom of the first support plate frame 401 is welded and fixed to the end of the main beam 3. The top of the second support plate frame 403 is fixedly welded to the end of the oblique beam rib tube 5. The top and side walls of the oblique beam rib tube 5 are penetrated by a photovoltaic panel loading slot group 6. The arc ruler arm 7 and the top of the second support plate frame 403 are both provided with a welding auxiliary slot group 9. The bottom of the gear box 17 is fixedly mounted with a box bracket 22.

[0032] More specifically, a photovoltaic panel loading slot group 6 is provided to provide assembly of photovoltaic panels, a box bracket 22 is provided to provide support and installation of the gear box 17, and a first support plate frame 401, a hinge shaft 402 and a second support plate frame 403 are provided to form a hinged structure with the hinge shaft 402 as the axis, so that the stability and strength of the overall structure are guaranteed.

[0033] In the present invention, the photovoltaic panel loading slot group 6 includes a photovoltaic panel loading slot 601 and a photovoltaic panel loading through hole 602. The photovoltaic panel loading slot 601 is a strip-shaped slot, and the photovoltaic panel loading through hole 602 is a circular through hole. The photovoltaic panel loading through hole 602 is distributed at both ends of the photovoltaic panel loading slot 601.

[0034] More specifically, photovoltaic panel loading holes 602 are provided at both ends of the photovoltaic panel loading slot 601 to form a hole and slot group that can be assembled, making it easy to select points during assembly, and the holes are opened on each frame wall on the surface, making the assembly scalable and adaptable.

[0035] In the present invention, the welding auxiliary groove group 9 includes a welding point increasing groove 901 and a welding point increasing through groove 902. The welding point increasing groove 901 is opened at the corner of the arc scale arm 7 or the second support plate frame 403, and the welding point increasing through groove 902 is opened through the middle of the arc scale arm 7 or the second support plate frame 403.

[0036] More specifically, by providing the welding point increasing groove 901 and the welding point increasing through groove 902, the welding points are increased. The increase in welding points makes the structural connection more stable and avoids the situation where the welding points are too small to bear the load.

[0037] In the present invention, a connection limit base plate 11 is fixedly installed at the bottom end of the inner tooth arc arm 10, and the two sides of the top surface of the connection limit base plate 11 are fixedly connected to the two arc scale arms 7 and the inner tooth arc arm 10 respectively. A limit stop seat 12 is fixedly installed at the top end of the inner tooth arc arm 10, and the limit stop seat 12 is fixedly connected to the arc scale arm 7;

[0038] More specifically, by setting a limit stop 12 at the top of the inner tooth arc arm 10, the structure is prevented from falling out upward when it is engaged and rotated, and by setting a connecting limit bottom plate 11 at the bottom end of the inner tooth arc arm 10, not only the bottom end is limited, but also the inner tooth arc arms 10 on both sides of the main beam 3 are connected, avoiding unstable structural support and improving structural strength and stress resistance.

[0039] In the present invention, the hanger 13 includes a support frame 1301, a mounting side plate 1302, and a reinforced support arm 1303. The two ends of the reinforced support arm 1303 are respectively fixedly welded to the inner wall side of the support frame 1301 and the side of the mounting side plate 1302. The support frame 1301 and the mounting side plate 1302 are welded and fixed to the main crossbeam 3. The connecting shaft 15 is rotatably inserted into the bottom of the bottom side wall of the support frame 1301 through the bearing 14.

[0040] More specifically, by setting up the two ends of the reinforced support arm 1303 and fixing them to the inner wall side of the support frame 1301 and the side of the installation side plate 1302 respectively, the support frame 1301 and the installation side plate 1302 are more stable during installation and fixation, and can provide more stable and reliable support.

[0041] In the present invention, the gearbox 17 includes a box frame 1701 and a panel 1702, the panel 1702 is installed at the front end and the back end of the box frame 1701, and the connecting shaft 15 is rotatably plugged into the side wall of the box frame 1701 through the bearing 14; the box bracket 22 includes a box branch pipe 2201, a box mounting plate 2202 and a box assembly hole 2203, the box assembly hole 2203 is opened through the corner of the box mounting plate 2202, the box mounting plate 2202 is fixedly installed at the end of the box branch pipe 2201, the top of the box branch pipe 2201 is fixedly connected to the box frame 1701 through the box mounting plate 2202, and the box mounting plate 2202 at the bottom of the box branch pipe 2201 is in the same horizontal plane as the bottom end of the ground pile connection module 1;

[0042] More specifically, the box mounting plate 2202 at the bottom of the box branch pipe 2201 is arranged at the same horizontal plane as the bottom end of the ground pile connection module 1, and pile seats or installation points at the same height can be set during assembly, making it easy to set up the infrastructure prepared for assembly.

[0043] In the present invention, the motor group 18 includes a servo motor 1801, a reducer 1802 and a reducer bracket 1803. The output end of the servo motor 1801 is connected to the input end of the reducer 1802, the output end of the reducer 1802 is connected to the driving shaft 19, and the reducer bracket 1803 is fixedly connected to the bottom of the reducer 1802.

[0044] More specifically, by setting the output end of the servo motor 1801 to drive the active rotating shaft 19 through the reducer 1802, it not only achieves the effect of improving the torque and protecting the motor, but also increases the power density and reduces the load inertia, which can keep the entire bracket more stable when adjusted to the required scale position.

[0045] In the present invention, the ground pile connection module 1 includes a connection column 101, a connection end plate 102 and a connection through hole 103. The connection end plate 102 is fixedly mounted on the top and bottom ends of the connection column 101. The connection through hole 103 is opened through the corner of the connection end plate 102.

[0046] More specifically, a connecting end plate 102 is provided to connect the bottom concrete pile seat and provide assembly support for the top main beam 3 .

[0047] In the present invention, the main crossbeam 3 includes a crossbeam rib tube 301, a crossbeam end plate 302, and a crossbeam assembly through-hole 303. The crossbeam assembly through-hole 303 is longitudinally penetrated and opened at the four corners of the crossbeam end plate 302. The crossbeam end plate 302 is embedded and fixedly welded to the end portion of the bottom of the crossbeam rib tube 301. Connecting bolts 2 are installed inside the connecting through-hole 103 and the crossbeam assembly through-hole 303. The connecting end plate 102 and the crossbeam end plate 302 are assembled and fixed by the connecting bolts 2. The stabilizing support shaft is welded and fixed to the side surface of the crossbeam rib tube 301. Both side surfaces of the crossbeam rib tube 301 are slidably overlapped with the arc ruler arm 7 and the inner gear arc arm 10.

[0048] More specifically, by setting the two side surfaces of the cross beam edge tube 301 to be slidingly overlapped with the arc ruler arm 7 and the inner tooth arc arm 10, the arc ruler arms 7 and the inner tooth arc arms 10 on both sides respectively provide support on both sides of the cross beam edge tube 301 and are in sliding contact with it, so that the support can be provided more stably when the support scale position is adjusted.

[0049] Working principle: When the inclination angle of the photovoltaic bracket is adjusted in multiple scales, that is, the support angle of the loading structure of the photovoltaic panel - the oblique beam rib tube 5 is adjusted, the motor group 18 is controlled to start, so that the motor group 18 drives the active shaft 19 to rotate. The rotation of the active shaft 19 drives its fixed active gear 20 to rotate, and then drives the driven gear 21 engaged with it to rotate. After the driven gear 21 rotates, it drives the connecting shaft 15 and the gear roller 16 to rotate synchronously, so that the inner tooth arc arm 10 engaged with the surface of the gear roller 16 is driven to flip, that is, the arc ruler arm 7 is driven to flip, so that the arc groove 8 opened in the arc ruler arm 7 slides on the surface of the stable support shaft to maintain stability; and then the arc ruler arm 7 stably drives the oblique beam rib tube 5 to lift or fold, so that the oblique beam rib tube 5 is flipped with the hinged support mechanism 4 as the axis to adjust the inclination scale.

[0050] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0051] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A multi-scale adjustable photovoltaic support, comprising a ground pile connection module (1), characterized in that: The top of the pile connection module (1) is fixedly mounted with a main beam (3), the end of the top surface of the main beam (3) is fixedly mounted with a hinged support mechanism (4), the main beam (3) is hingedly connected to an oblique beam prism (5) through the hinged support mechanism (4), the side surface of the oblique beam prism (5) is welded with an arc ruler arm (7), the ruler surface of the arc ruler arm (7) is penetrated with an arc-shaped through groove (8), the side surface of the main beam (3) is fixedly mounted with a stable support shaft that slides in the arc-shaped through groove (8), the inner arc side of the arc ruler arm (7) is fixedly connected with an inner tooth arc arm (10), the surface of the main beam (3) is fixedly connected with a hanger (13), the bottom of the hanger (13) is provided with a bearing ( 14), a connecting shaft (15) is rotatably mounted on the bottom of the hanger (13) through a bearing (14), a shaft section of the connecting shaft (15) in the hanger (13) is fixedly sleeved with a tooth roller (16) meshed with the inner tooth arc arm (10), a middle portion of the connecting shaft (15) is sleeved with a gear box (17) through a bearing (14), a motor group (18) is fixedly mounted on the inner wall of the gear box (17), an active shaft (19) rotatably mounted on the gear box (17) is mounted on the output end of the motor group (18), and a driving gear (20) and a driven gear (21) meshing with each other are fixedly sleeved on the surfaces of the driving shaft (19) and the connecting shaft (15), respectively.

2. The multi-scale adjustable photovoltaic bracket according to claim 1, characterized in that: The hinged support mechanism (4) comprises a first support plate frame (401), a hinge shaft (402) and a second support plate frame (403); the top of the first support plate frame (401) is rotatably connected to the second support plate frame (403) via the hinge shaft (402); the bottom of the first support plate frame (401) is welded and fixed to the end of the main crossbeam (3); the top of the second support plate frame (403) is fixedly welded to the end of the oblique beam rib tube (5); the top and side walls of the oblique beam rib tube (5) are penetrated by a photovoltaic panel loading slot group (6); the arc ruler arm (7) and the top of the second support plate frame (403) are both provided with a welding auxiliary slot group (9); and the bottom of the gear box (17) is fixedly mounted with a box bracket (22).

3. The multi-scale adjustable photovoltaic bracket according to claim 2, characterized in that: The photovoltaic panel loading slot group (6) comprises a photovoltaic panel loading slot (601) and a photovoltaic panel loading through hole (602), wherein the photovoltaic panel loading slot (601) is a strip-shaped slot, and the photovoltaic panel loading through hole (602) is a circular through hole, and the photovoltaic panel loading through holes (602) are distributed at both ends of the photovoltaic panel loading slot (601).

4. The multi-scale adjustable photovoltaic support according to claim 2, characterized in that: The welding auxiliary groove group (9) comprises a welding point increasing groove (901) and a welding point increasing through groove (902), wherein the welding point increasing groove (901) is provided at a corner of the arc ruler arm (7) or the second support plate frame (403), and the welding point increasing through groove (902) is provided through the middle of the arc ruler arm (7) or the second support plate frame (403).

5. The multi-scale adjustable photovoltaic support according to claim 1, characterized in that: A connecting limit base plate (11) is fixedly mounted on the bottom end of the inner tooth arc arm (10), and both sides of the top surface of the connecting limit base plate (11) are fixedly connected to the two arc ruler arms (7) and the inner tooth arc arm (10), respectively. A limit stop seat (12) is fixedly mounted on the top end of the inner tooth arc arm (10), and the limit stop seat (12) is fixedly connected to the arc ruler arm (7).

6. The multi-scale adjustable photovoltaic support according to claim 1, characterized in that: The hanger (13) includes a support frame (1301), an installation side plate (1302) and a reinforced support arm (1303), the two ends of the reinforced support arm (1303) are respectively fixedly welded to the inner wall side of the support frame (1301) and the side of the installation side plate (1302), and the support frame (1301) and the installation side plate (1302) are welded and fixed to the main beam (3), and the connecting shaft (15) is rotatably inserted into the bottom of the bottom side wall of the support frame (1301) through a bearing (14).

7. The multi-scale adjustable photovoltaic support according to claim 2, characterized in that: The gear box (17) comprises a box frame (1701) and a panel (1702), wherein the panel (1702) is mounted on the front end and the back end of the box frame (1701), and the connecting shaft (15) is rotatably plugged into the side wall of the box frame (1701) through a bearing (14); the box support (22) comprises a box branch pipe (2201), a box mounting plate (2202) and a box assembly hole (2203), wherein the box assembly hole (2203) is penetrated and opened at a corner of the box mounting plate (2202), and the box mounting plate (2202) is fixedly mounted on the end of the box branch pipe (2201), and the top of the box branch pipe (2201) is fixedly connected to the box frame (1701) through the box mounting plate (2202), and the box mounting plate (2202) at the bottom of the box branch pipe (2201) and the bottom end of the ground pile connection module (1) are in the same horizontal plane.

8. The multi-scale adjustable photovoltaic support according to claim 1, characterized in that: The motor group (18) comprises a servo motor (1801), a reducer (1802) and a reducer bracket (1803), wherein the output end of the servo motor (1801) is connected to the input end of the reducer (1802), the output end of the reducer (1802) is connected to the driving shaft (19), and the reducer bracket (1803) is fixedly connected to the bottom of the reducer (1802).

9. The multi-scale adjustable photovoltaic support according to claim 1, characterized in that: The ground pile connection module (1) comprises a connection column (101), a connection end plate (102) and a connection through hole (103); the connection end plate (102) is fixedly mounted on the top and bottom ends of the connection column (101); and the connection through hole (103) is opened through the corner of the connection end plate (102).

10. The multi-scale adjustable photovoltaic support according to claim 9, characterized in that: The main crossbeam (3) comprises a crossbeam rib tube (301), a crossbeam end plate (302) and a crossbeam assembly through hole (303). The crossbeam assembly through hole (303) is longitudinally penetrated and opened at the four corners of the crossbeam end plate (302). The crossbeam end plate (302) is embedded and fixedly welded to the end of the bottom of the crossbeam rib tube (301). Connecting bolts (2) are installed inside the connecting through hole (103) and the crossbeam assembly through hole (303). The connecting end plate (102) and the crossbeam end plate (302) are assembled and fixed by the connecting bolts (2). The stabilizing support shaft is welded and fixed to the side surface of the crossbeam rib tube (301). Both side surfaces of the crossbeam rib tube (301) are slidably overlapped with the arc ruler arm (7) and the inner tooth arc arm (10).

Citation Information

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