Support assembly of assembled photovoltaic power generation panel

By designing a modular photovoltaic panel support assembly, and utilizing threaded connections and telescopic cylinders to achieve portable assembly and angle adjustment of the assembly, the problems of large space occupation and limited angle adjustment of existing photovoltaic panel support assemblies are solved, thereby improving transportation convenience and work efficiency.

CN223652175UActive Publication Date: 2025-12-09NORTHWEST RES INST OF ENG INVESTIGATIONS & DESIGN
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Patent Information

Application Number
CN202423156965.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-12-09
Estimated Expiration
2034-12-20

AI Technical Summary

Technical Problem

Existing photovoltaic panel support components occupy a large space, require multiple people to move, resulting in significant manpower costs. Furthermore, the angle adjustment of the photovoltaic panels is limited, which prevents them from fully utilizing their working efficiency.

Method used

A modular photovoltaic panel support assembly was designed. By setting threaded positioning holes, limiting structures, adjusting structures, and clamping structures on the support base, the assembly can be easily assembled and its angle adjusted using threaded connections and telescopic cylinders. The design includes threaded limiting holes, threaded guide grooves, stepped grooves, and storage grooves. Combined with the use of threaded telescopic cylinders, adjusting rods, and ball heads, the photovoltaic panels can be conveniently installed and their angle adjusted.

Benefits of technology

This technology enables portable transportation and free angle adjustment of photovoltaic panel support components, reducing manpower requirements and improving the working efficiency of photovoltaic panels.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a support assembly of a split mounting type photovoltaic power generation panel, which relates to the technical field of support assemblies of photovoltaic power generation panels and comprises a support base and a threaded positioning hole, the threaded positioning hole is arranged at the center of the support base, a bearing screw is mounted in the threaded positioning hole, a spherical hinge seat is mounted on the upper end face of the bearing screw, and the spherical hinge seat is mounted on the lower end face of the bearing screw. A limiting structure is arranged on the outer wall face of the support base, a positioning structure is installed in the limiting structure, and an adjusting structure is installed in the positioning structure. The utility model has the advantages that the limiting pin is inserted into the auxiliary limiting hole, the threaded telescopic cylinder is jacked in the external threaded storage sleeve for limiting, the assembly of each component is realized through threaded connection, and the four threaded limiting holes, the four threaded guide grooves, the four stepped grooves and the storage grooves are formed in the bracket base for storing the components, so that the portable transportation is realized; the problems that an existing photovoltaic power generation panel support assembly is large in occupied space, needs cooperation of multiple persons in the carrying process and is high in manpower consumption are solved.
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Description

Technical Field

[0001] This utility model relates to the technical field of support components for photovoltaic power generation panels, and in particular to a support component for a modular photovoltaic power generation panel. Background Technology

[0002] With the development of science and technology and the progress of society, clean energy has received increasing attention. As a form of photovoltaic power generation that does not pollute the environment at all, it has been widely promoted. When installing photovoltaic panels, brackets are needed to support them.

[0003] Existing photovoltaic panel support components occupy a large space, require multiple people to move, resulting in significant manpower costs. Furthermore, existing photovoltaic panel support components have limited adjustment capabilities for the photovoltaic panels, failing to fully utilize their working efficiency. Utility Model Content

[0004] The technical problem to be solved by this utility model is that the existing photovoltaic panel support components occupy a large space, require multiple people to cooperate during transportation, and consume a lot of manpower. The existing photovoltaic panel support components have limited adjustment of the photovoltaic panel angle, and cannot give full play to the working efficiency of the photovoltaic panel.

[0005] To solve the above-mentioned technical problems, the technical solution of this utility model is as follows: a support assembly for a modular photovoltaic power generation panel, including a support base and threaded positioning holes. The threaded positioning holes are located at the center of the support base, and a load-bearing screw is installed inside the threaded positioning holes. A ball joint seat is installed on the upper end face of the load-bearing screw. A limiting structure is provided on the outer wall of the support base, and a positioning structure is installed inside the limiting structure. An adjustment structure is installed inside the positioning structure, and a photovoltaic support structure is connected to the outer wall of the adjustment structure. A clamping structure is installed inside the limiting structure, and a load-bearing structure is installed on the lower wall of the support base. The limiting structure includes: four threaded limiting holes, four threaded guide grooves, four stepped grooves, and a storage groove. The four threaded limiting holes are respectively located on the upper wall of the support base, the four threaded guide grooves are respectively located on the upper wall of the support base, the four stepped grooves are respectively located on the upper wall of the support base and connected to the four threaded guide grooves, and the storage groove is located on the lower wall of the support base.

[0006] As a further embodiment of this utility model: the positioning structure includes: four external threaded storage sleeves, four auxiliary rings, and four internal threaded fixing sleeves; the four external threaded storage sleeves are respectively installed in the four threaded limiting holes, the four auxiliary rings are respectively fitted onto the four external threaded storage sleeves, and the four internal threaded fixing sleeves are respectively installed onto the four auxiliary rings.

[0007] As a further embodiment of this utility model: the adjustment structure includes: four threaded telescopic cylinders, four adjusting rods, and four ball heads; the four threaded telescopic cylinders are respectively connected to four internal threaded fixing sleeves, the four adjusting rods are respectively connected to the four threaded telescopic cylinders, and the four ball heads are respectively fitted onto the upper end faces of the four adjusting rods.

[0008] As a further embodiment of this utility model: the photovoltaic support structure includes: a hinged ball sleeve, a photovoltaic support plate, four sliding grooves, and a photovoltaic power generation panel body; the hinged ball sleeve is fitted onto the outer wall of the ball hinge seat, the photovoltaic support plate is fitted onto the outer wall of the hinged ball sleeve, the four sliding grooves are respectively opened on the lower wall of the photovoltaic support plate, and the photovoltaic power generation panel body is installed on the upper wall of the photovoltaic support plate.

[0009] As a further embodiment of this utility model: the clamping structure includes: four positioning guide rods, four guide sleeves, four limiting pins, and four return springs; the four positioning guide rods are respectively installed in four threaded guide grooves, the four guide sleeves are respectively fitted on the outer wall surface of the four positioning guide rods, the four limiting pins are respectively installed on the front wall surface of the four guide sleeves, and the four return springs are respectively fitted on the outer wall surface of the four positioning guide rods.

[0010] As a further embodiment of this utility model: the load-bearing structure includes: four load-bearing threaded rods, four load-bearing threaded sleeves, and four anti-slip pads; the four load-bearing threaded rods are respectively installed on the lower wall of the support base, the four load-bearing threaded sleeves are respectively fitted onto the outer wall of the four load-bearing threaded rods, and the four anti-slip pads are respectively installed on the lower wall of the four load-bearing threaded sleeves.

[0011] As a further embodiment of this utility model: a magnetic block is installed in the storage groove, and it is attracted to the lower wall of the load-bearing screw.

[0012] As a further embodiment of this utility model, auxiliary limiting holes are provided on the lower wall surface of the four threaded telescopic cylinders.

[0013] The present invention adopts the above technical solution and has the following advantages compared with the prior art:

[0014] By inserting a limiting pin into the auxiliary limiting hole, the threaded telescopic cylinder is limited in the external threaded storage sleeve. The assembly of each component is achieved through threaded connection. By opening four threaded limiting holes, four threaded guide grooves, four stepped grooves, and storage grooves on the bracket base to store the components, portable transportation is achieved. This solves the problem that the existing photovoltaic power generation panel bracket components occupy a large space and require multiple people to cooperate during transportation, resulting in serious manpower consumption.

[0015] By activating four threaded telescopic cylinders, four adjusting rods extend and retract along the four threaded telescopic cylinders in the direction of sunlight, causing four ball heads to slide in four grooves, thereby adjusting the position of the photovoltaic panel body. This solves the problem that existing photovoltaic panel support assemblies cannot freely adjust the angle of the photovoltaic panel and cannot fully utilize the working efficiency of the photovoltaic panel. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall unfolded structure of a bracket assembly for a modular photovoltaic power generation panel according to an embodiment of the present invention;

[0017] Figure 2 This is a schematic diagram of the overall storage structure of a bracket assembly for a modular photovoltaic power generation panel according to an embodiment of the present invention;

[0018] Figure 3 This is a schematic diagram of the limiting structure of a bracket assembly for a modular photovoltaic power generation panel in an embodiment of this utility model;

[0019] Figure 4 This is a partial enlarged view of point A in a schematic diagram of the limiting structure of a bracket assembly for a modular photovoltaic power generation panel according to an embodiment of this utility model.

[0020] Figure 5 This is a schematic diagram of the adjustment structure of a bracket assembly for a modular photovoltaic power generation panel in an embodiment of this utility model.

[0021] In the diagram: 1. Support base; 2. Threaded positioning hole; 3. Load-bearing screw; 4. Ball joint seat; 5. Threaded limiting hole; 6. Threaded guide groove; 7. Stepped groove; 8. Storage groove; 9. External threaded storage sleeve; 10. Auxiliary ring; 11. Internal threaded fixing sleeve; 12. Threaded telescopic cylinder; 13. Adjusting rod; 14. Ball head; 15. Hinge ball sleeve; 16. Photovoltaic support plate; 17. Slide groove; 18. Photovoltaic power generation panel body; 19. Positioning guide rod; 20. Guide sleeve; 21. Limiting pin; 22. Return spring; 23. Load-bearing threaded rod; 24. Load-bearing threaded sleeve; 25. Anti-slip pad; 26. Magnetic block; 27. Auxiliary limiting hole. Detailed Implementation

[0022] The specific embodiments of this utility model will be further described below with reference to the accompanying drawings. It should be noted that these descriptions are for the purpose of aiding understanding of this utility model, but do not constitute a limitation thereof. Furthermore, the technical features involved in the various embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.

[0023] Please see Figures 1-5A bracket assembly for a modular photovoltaic panel includes a bracket base 1 and threaded positioning holes 2. The threaded positioning holes 2 are located at the center of the bracket base 1. A load-bearing screw 3 is installed inside the threaded positioning holes 2. A ball joint seat 4 is installed on the upper end face of the load-bearing screw 3. A limiting structure is provided on the outer wall of the bracket base 1. A positioning structure is installed inside the limiting structure. An adjustment structure is installed inside the positioning structure. A photovoltaic support structure is connected to the outer wall of the adjustment structure. A clamping structure is installed inside the limiting structure. A load-bearing structure is installed on the lower wall of the bracket base 1. The limiting structure includes: four threaded limiting holes 5, four threaded guide grooves 6, four stepped grooves 7, and a storage groove 8. The four threaded limiting holes 5 are respectively located on the upper wall of the bracket base 1. The four threaded guide grooves 6 are respectively located on the upper wall of the bracket base 1. The four stepped grooves 7 are respectively located on the upper wall of the bracket base 1 and connected to the four threaded guide grooves 6. The storage groove 8 is located on the lower wall of the bracket base 1.

[0024] Please see Figure 5 The positioning structure includes: four external threaded storage sleeves 9, four auxiliary rings 10, and four internal threaded fixing sleeves 11; the four external threaded storage sleeves 9 are respectively installed in the four threaded limiting holes 5, the four auxiliary rings 10 are respectively fitted on the four external threaded storage sleeves 9, and the four internal threaded fixing sleeves 11 are respectively installed on the four auxiliary rings 10.

[0025] Please see Figure 5 The adjustment structure includes: four threaded telescopic cylinders 12, four adjusting rods 13, and four ball heads 14; the four threaded telescopic cylinders 12 are respectively connected to four internal threaded fixing sleeves 11, the four adjusting rods 13 are respectively connected to the four threaded telescopic cylinders 12, and the four ball heads 14 are respectively fitted onto the upper end face of the four adjusting rods 13.

[0026] Please see Figure 2 The photovoltaic support structure includes: a hinged ball sleeve 15, a photovoltaic support plate 16, four sliding grooves 17, and a photovoltaic power generation panel body 18; the hinged ball sleeve 15 is fitted onto the outer wall of the ball hinge seat 4, the photovoltaic support plate 16 is fitted onto the outer wall of the hinged ball sleeve 15, the four sliding grooves 17 are respectively opened on the lower wall of the photovoltaic support plate 16, and the photovoltaic power generation panel body 18 is installed on the upper wall of the photovoltaic support plate 16.

[0027] Please see Figure 4 The clamping structure includes: four positioning guide rods 19, four guide sleeves 20, four limiting pins 21, and four return springs 22; the four positioning guide rods 19 are respectively installed in four threaded guide grooves 6, the four guide sleeves 20 are respectively fitted on the outer wall surface of the four positioning guide rods 19, the four limiting pins 21 are respectively installed on the front wall surface of the four guide sleeves 20, and the four return springs 22 are respectively fitted on the outer wall surface of the four positioning guide rods 19.

[0028] Please see Figure 3 The load-bearing structure includes: four load-bearing threaded rods 23, four load-bearing threaded sleeves 24, and four anti-slip pads 25; the four load-bearing threaded rods 23 are respectively installed on the lower wall of the bracket base 1, the four load-bearing threaded sleeves 24 are respectively fitted on the outer wall of the four load-bearing threaded rods 23, and the four anti-slip pads 25 are respectively installed on the lower wall of the four load-bearing threaded sleeves 24.

[0029] Please see Figure 5 A magnetic block 26 is installed in the storage slot 8 and is attracted to the lower wall of the load-bearing screw 3. When in use, the load-bearing screw 3 is attracted and fixed in the storage slot 8 by the magnetic block 26.

[0030] Please see Figure 5 The lower wall of the four threaded telescopic cylinders 12 is provided with auxiliary limiting holes 27. When in use, the threaded telescopic cylinder 12 is pushed into the external threaded receiving sleeve 9 by inserting the limiting pin 21 into the auxiliary limiting hole 27.

[0031] In Example 1, the threaded telescopic cylinder 12 is positioned in the external threaded storage sleeve 9 by inserting the limiting pin 21 into the auxiliary limiting hole 27. The components are assembled by threaded connection. The components are stored by opening four threaded limiting holes 5, four threaded guide grooves 6, four stepped grooves 7 and storage grooves 8 on the bracket base 1, so as to achieve portable transportation.

[0032] Specifically, during assembly, the operator rotates the four auxiliary rings 10 within the four stepped grooves 7. The four auxiliary rings 10 then disengage the four external threaded storage sleeves 9 from the four threaded guide grooves 6. During this process, the four load-bearing threaded sleeves 24 reset along the four positioning guide rods 19. The four guide sleeves 20, via four limit pins 21, drive the four threaded telescopic cylinders 12 to move outward along the four threaded guide grooves 6. Then, the operator holds the four auxiliary rings 10 and aligns the four external threaded storage sleeves 9 with the four threaded limit holes 5, screwing them in until the four auxiliary rings 10 are flush with the support base. 1. After contact, forcefully remove the load-bearing screw 3 along the storage groove 8, so that the load-bearing screw 3 is separated from the magnetic block 26, and screw it into the threaded positioning hole 2. Then, take out the four threaded telescopic cylinders 12 along the four threaded guide grooves 6 and screw them into the four internal threaded fixing sleeves 11 respectively. Finally, the operator holds the photovoltaic support plate 16 and drives the hinge ball sleeve 15 to be put on the ball hinge seat 4. At the same time, the four sliding grooves 17 are connected to the four ball heads 14 respectively. Finally, rotate the four load-bearing threaded sleeves 24 around the four load-bearing threaded rods 23 until the four anti-slip pads 25 contact the ground respectively, and the assembly is completed.

[0033] In Example 2, by activating four threaded telescopic cylinders 12, four adjusting rods 13 are driven to extend and retract along the four threaded telescopic cylinders 12 in the direction of sunlight, causing four ball heads 14 to slide in four sliding grooves 17, thereby adjusting the position of the photovoltaic panel body 18.

[0034] Specifically, during use, the operator activates the four threaded telescopic cylinders 12, which in turn drive the four adjusting rods 13 to extend and retract along the four threaded telescopic cylinders 12 in the direction of sunlight. This causes the four ball heads 14 to slide in the four sliding grooves 17, and through the hinged ball sleeve 15, the photovoltaic support plate 16 rotates around the ball hinge seat 4, thereby adjusting the position of the photovoltaic power generation panel body 18.

[0035] The embodiments of this utility model have been described in detail above with reference to the accompanying drawings, but this utility model is not limited to the described embodiments. For those skilled in the art, various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of this utility model, and these variations still fall within the protection scope of this utility model.

Claims

1. A support assembly for a modular photovoltaic panel, comprising a support base (1) and threaded positioning holes (2), characterized in that, The threaded positioning hole (2) is opened in the center of the support base (1). A load-bearing screw (3) is installed in the threaded positioning hole (2). A ball joint seat (4) is installed on the upper end face of the load-bearing screw (3). A limit structure is opened on the outer wall of the support base (1). A positioning structure is installed in the limit structure. An adjustment structure is installed in the positioning structure. A photovoltaic support structure is connected to the outer wall of the adjustment structure. A clamping structure is installed in the limit structure. A load-bearing structure is installed on the lower wall of the support base (1). The limiting structure includes: four threaded limiting holes (5), four threaded guide grooves (6), four stepped grooves (7), and a receiving groove (8); The four threaded limiting holes (5) are respectively opened on the upper wall of the bracket base (1), the four threaded guide grooves (6) are respectively opened on the upper wall of the bracket base (1), the four stepped grooves (7) are respectively opened on the upper wall of the bracket base (1) and connected to the four threaded guide grooves (6), and the storage groove (8) is opened on the lower wall of the bracket base (1).

2. The support assembly for a modular photovoltaic panel according to claim 1, characterized in that, The positioning structure includes: four external threaded receiving sleeves (9), four auxiliary rings (10), and four internal threaded fixing sleeves (11); The four external threaded storage sleeves (9) are respectively installed in the four threaded limiting holes (5), the four auxiliary rings (10) are respectively fitted on the four external threaded storage sleeves (9), and the four internal threaded fixing sleeves (11) are respectively installed on the four auxiliary rings (10).

3. The support assembly for a modular photovoltaic panel according to claim 2, characterized in that, The adjustment structure includes: four threaded telescopic cylinders (12), four adjusting rods (13), and four ball heads (14); The four threaded telescopic cylinders (12) are respectively connected to the four internal threaded fixing sleeves (11), the four adjusting rods (13) are respectively connected to the four threaded telescopic cylinders (12), and the four ball heads (14) are respectively fitted onto the upper end face of the four adjusting rods (13).

4. The support assembly for a modular photovoltaic panel according to claim 1, characterized in that, The photovoltaic support structure includes: a hinged ball sleeve (15), a photovoltaic support plate (16), four sliding grooves (17), and a photovoltaic power generation panel body (18); The hinge ball sleeve (15) is fitted onto the outer wall of the ball hinge seat (4), the photovoltaic support plate (16) is fitted onto the outer wall of the hinge ball sleeve (15), the four sliding grooves (17) are respectively opened on the lower wall of the photovoltaic support plate (16), and the photovoltaic power generation panel body (18) is installed on the upper wall of the photovoltaic support plate (16).

5. A support assembly for a modular photovoltaic panel according to claim 1, characterized in that, The clamping structure includes: four positioning guide rods (19), four guide sleeves (20), four limiting pins (21), and four return springs (22); The four positioning guide rods (19) are respectively installed in the four threaded guide grooves (6), the four guide sleeves (20) are respectively fitted on the outer wall of the four positioning guide rods (19), the four limiting pins (21) are respectively installed on the front wall of the four guide sleeves (20), and the four reset springs (22) are respectively fitted on the outer wall of the four positioning guide rods (19).

6. The support assembly for a modular photovoltaic panel according to claim 1, characterized in that, The load-bearing structure includes: four load-bearing threaded rods (23), four load-bearing threaded sleeves (24), and four anti-slip pads (25); The four load-bearing threaded rods (23) are respectively installed on the lower wall of the bracket base (1), the four load-bearing threaded sleeves (24) are respectively fitted on the outer wall of the four load-bearing threaded rods (23), and the four anti-slip pads (25) are respectively installed on the lower wall of the four load-bearing threaded sleeves (24).

7. A support assembly for a modular photovoltaic panel according to claim 1, characterized in that, The storage slot (8) is equipped with a magnetic block (26), which is attracted to the lower wall of the load-bearing screw (3).

8. A support assembly for a modular photovoltaic panel according to claim 3, characterized in that, The lower wall of the four threaded telescopic cylinders (12) is provided with auxiliary limiting holes (27).