Wind-resistant photovoltaic support

By constructing a multi-component welded photovoltaic support body and a steel cable traction system, the problem of photovoltaic supports being easily blown over in windy areas has been solved, thus improving the stability and safety of photovoltaic equipment.

CN223528002UActive Publication Date: 2025-11-07TIANJIN LONGSHENGZE NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202422926911.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-11-07
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

Existing photovoltaic support structures are easily blown over in windy areas, leading to equipment damage and loosening of connecting bolts, affecting stability and safety.

Method used

The photovoltaic support structure consists of a concrete-cast support, embedded parts, connecting columns, main beams, columns, side support components, and tensioning components. The structure is fixed by welding multiple components and is equipped with X-shaped reinforcement brackets and reinforcement beams to increase connection points. Steel cables are used to pull the photovoltaic panels to avoid vibration.

Benefits of technology

It improves the overall stability and wind resistance of the photovoltaic support system, prevents photovoltaic panel vibration, enhances connection stability, and ensures the safety of the equipment in windy environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of photovoltaic supports, and discloses a wind-resistant photovoltaic support, which solves the problem that the existing photovoltaic support is poor in wind resistance, and comprises a photovoltaic support body, the photovoltaic support body is composed of a plurality of concrete pouring supports, an embedded part, a plurality of connecting insertion columns, a first main beam, a second main beam, a plurality of long stand columns, a plurality of short stand columns, a first side supporting assembly, a second side supporting assembly, a first traction assembly and a second traction assembly, the connecting insertion columns are inserted into the embedded part in a penetrating mode, and the first main beam and the second main beam are both connected to the top ends of the connecting insertion columns. The long stand column is connected to one end of the top of the first main beam and one end of the top of the second main beam, the short stand column is connected to the other end of the top of the first main beam and the other end of the top of the second main beam, the first side supporting assembly and the second side supporting assembly are connected between the long stand column and the short stand column, and the first traction assembly and the second traction assembly are connected between the concrete pouring support and the photovoltaic panel. Through the photovoltaic support, the overall installation stability can be improved, and then the wind resistance performance is improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to photovoltaic support technical field, concretely is a kind of wind-resistant photovoltaic support. BACKGROUND

[0002] With the continuous development of new energy technology, more and more areas have been popularized, and photovoltaic energy is the first batch of developed technology, and the popularization range is also the widest.

[0003] The photovoltaic support is used for supporting and fixing the photovoltaic equipment, and the existing photovoltaic support is usually single in structure, and the connection points of the photovoltaic panel and the photovoltaic support are few, and the installation stability of the photovoltaic support and the ground is not good, so the existing photovoltaic equipment is difficult to be applied in the area with strong wind, because the photovoltaic equipment is configured in the area with strong wind, the solar cell panel is easily blown over to cause equipment loss when wind rises, in addition, the photovoltaic panel and the photovoltaic support are usually connected by bolts, under the action of strong wind, the photovoltaic panel will vibrate, and then the bolt will be loose, which also affects the stability and safety of the photovoltaic equipment. SUMMARY

[0004] In view of the above situation, in order to overcome the defects of the prior art, the utility model provides a wind-resistant photovoltaic support, which effectively solves the problem of poor wind resistance of the existing photovoltaic support.

[0005] In order to achieve the above purpose, the utility model provides the following technical scheme: a wind-resistant photovoltaic support, comprising a photovoltaic support body, the top end of the photovoltaic support body is provided with a photovoltaic panel, the photovoltaic support body is composed of a plurality of concrete pouring supports, embedded parts, a plurality of connecting columns, first main beams, second main beams, a plurality of long columns, a plurality of short columns, side support assemblies one and two, pulling assemblies one and two, the embedded part is fixedly connected to the inside of the concrete pouring support, the connecting column is inserted into the embedded part and fixedly connected thereto, the first main beam and the second main beam are both welded to the top end of the connecting column, the long column is welded to one end of the top of the first main beam and the second main beam, the short column is welded to the other end of the top of the first main beam and the second main beam, the side support assembly one and the side support assembly two are both welded between the long column and the short column, and the pulling assembly one and the pulling assembly two are both connected between the concrete pouring support and the photovoltaic panel.

[0006] Preferably, X-shaped reinforcing supports one are fixedly arranged between the first main beam and the second main beam, and the X-shaped reinforcing supports one are both welded to the first main beam and the second main beam.

[0007] Preferably, X-shaped reinforcing supports two are fixedly arranged between the long columns, and the X-shaped reinforcing supports two are welded to the long columns.

[0008] Preferably, the short column is fixedly provided with a reinforcing cross beam, and the reinforcing cross beam is in a welded connection structure with the short column.

[0009] Preferably, the side support assembly one and the side support assembly two are both composed of a plurality of connecting plates and a diagonal support beam, the diagonal support beam is welded and connected between the long column and the short column, and the connecting plates are welded and connected to the side edges of the diagonal support beam, and the connecting plates are provided with mounting holes.

[0010] Preferably, the pulling assembly one and the pulling assembly two are both composed of a steel beam, a first embedded connecting head, a second embedded connecting head, a plurality of connecting rings and a plurality of pulling steel ropes, the first embedded connecting head and the second embedded connecting head are respectively welded and connected to two ends of the steel beam and fixedly connected with the concrete pouring support, the connecting rings are welded and connected to two ends of the top of the steel beam, and the pulling steel ropes are connected between the connecting rings and the photovoltaic panel.

[0011] Compared with the prior art, the photovoltaic support body of the present application has the following beneficial effects:

[0012] (1) In the working process, the photovoltaic support body composed of a plurality of concrete pouring supports, embedded parts, a plurality of connecting columns, a first main beam, a second main beam, a plurality of long columns, a plurality of short columns, a side support assembly one, a side support assembly two, a pulling assembly one and a pulling assembly two can be fixedly pulled through the embedded parts and fixedly welded through multiple components, thereby effectively improving the overall stability of the photovoltaic support body, and the X-shaped reinforcing support one, the X-shaped reinforcing support two and the reinforcing cross beam can further reinforce the photovoltaic support body, thereby improving the wind resistance of the photovoltaic support body.

[0013] (2) The side support assembly one and the side support assembly two composed of a plurality of connecting plates and a diagonal support beam can assist in supporting and connecting the photovoltaic panel, increase the number of connecting points, thereby improving the installation stability of the photovoltaic panel, the pulling assembly one and the pulling assembly two composed of a steel beam, a first embedded connecting head, a second embedded connecting head, a plurality of connecting rings and a plurality of pulling steel ropes can assist in pulling the photovoltaic panel, thereby avoiding loosening of the bolts due to vibration of the photovoltaic panel caused by wind force, further improving the stability of the connection between the photovoltaic panel and the photovoltaic support, and thereby improving the overall wind resistance. BRIEF DESCRIPTION OF DRAWINGS

[0014] The accompanying drawings are used to provide a further understanding of the present application, and constitute a part of the specification, and are used to explain the present application together with embodiments of the present application, and do not constitute a limitation on the present application.

[0015] In the drawings:

[0016] Figure 1 It is a schematic view of the anti-wind photovoltaic support and photovoltaic panel connection structure of the present application.

[0017] Figure 2 It is the photovoltaic support body structure schematic view of the utility model;

[0018] Figure 3 It is the side support assembly one structure schematic view of the utility model;

[0019] Figure 4 It is the pulling assembly one structure schematic view of the utility model;

[0020] In the drawing: 1, photovoltaic support body;2, photovoltaic board;3, concrete pouring support;4, pre-embedded part;5, connecting column;6, first main beam;7, second main beam;8, long column;9, short column;10, side support assembly one;11, side support assembly two;12, pulling assembly one;13, pulling assembly two;14, X type reinforcing support one;15, X type reinforcing support two;16, reinforcing crossbeam;17, inclined support beam;18, connecting plate;19, mounting hole;20, steel beam;21, first pre-embedded connector;22, second pre-embedded connector;23, connecting ring;24, pulling steel rope. DETAILED DESCRIPTION

[0021] The technical scheme in the embodiments of the utility model will be apparently and completely described below with the drawings in the embodiments of the utility model, and apparently, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments;Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without making creative labor belong to the range of protection of the utility model.

[0022] By Figure 1 And Figure 2 The utility model discloses an anti -wind type photovoltaic support, including photovoltaic support body 1, the top of photovoltaic support body 1 is provided with photovoltaic board 2, and photovoltaic support body 1 is formed by a plurality of concrete pouring support 3, pre-embedded part 4, a plurality of connecting column 5, first main beam 6, second main beam 7, a plurality of long column 8, a plurality of short column 9, side support assembly one 10, side support assembly two 11, pulling assembly one 12 and pulling assembly two 13, and the pre-embedded part 4 is fixedly connected in the inside of concrete pouring support 3, the connecting column 5 is inserted in pre-embedded part 4 and is fixedly connected with it, and the first main beam 6 and second main beam 7 are all welded to the top of connecting column 5, and the long column 8 is welded to one end at the top of first main beam 6 and second main beam 7, and the short column 9 is welded to the other end at the top of first main beam 6 and second main beam 7, and the side support assembly one 10 and side support assembly two 11 are all welded to between long column 8 and short column 9, and the pulling assembly one 12 and pulling assembly two 13 are all connected between concrete pouring support 3 and photovoltaic board 2;

[0023] During installation, a pit is dug in the ground and a concrete pouring support 3 is set up. The embedded part 4, the first tension component 12 and the second tension component 13 are embedded into the interior of the concrete pouring support 3. The connecting column 5 is fixedly connected to the embedded part 4. The first main beam 6 and the second main beam 7 are connected to the connecting column 5. The concrete pouring support 3 and the embedded part 4 can achieve the supporting and tensioning functions, thereby improving the overall stability of the photovoltaic bracket installation and thus improving the wind resistance performance.

[0024] Depend on Figure 2 and Figure 3 As shown, an X-shaped reinforcing bracket 14 is fixedly installed between the first main beam 6 and the second main beam 7. The X-shaped reinforcing bracket 14 is welded to the first main beam 6 and the second main beam 7. An X-shaped reinforcing bracket 25 is fixedly installed between the long columns 8. The X-shaped reinforcing bracket 215 is welded to the long columns 8. A reinforcing beam 16 is fixedly installed on the short column 9. The reinforcing beam 16 is welded to the short column 9. The side support component 10 and the side support component 21 are both composed of an inclined support beam 17 and several connecting plates 18. The inclined support beam 17 is welded to the long column 8 and the short column 9. The connecting plates 18 are welded to the side of the inclined support beam 17. The connecting plates 18 are provided with mounting holes 19.

[0025] The first main beam 6 and the second main beam 7 are reinforced by X-shaped reinforcement bracket 14, the long column 8 is reinforced by X-shaped reinforcement bracket 15, the short column 9 is reinforced by reinforcement beam 16, the photovoltaic panel 2 is supported by diagonal support beam 17, and the photovoltaic panel 2 is connected by connecting plate 18, increasing the connection points with the photovoltaic panel 2, thereby improving the stability of the photovoltaic panel 2 installation and improving the wind resistance of the photovoltaic panel 2.

[0026] Depend on Figure 1 , Figure 2 and Figure 4 As shown, both tension assembly 12 and tension assembly 23 are composed of steel beam 20, first embedded connector 21, second embedded connector 22, several connecting rings 23 and several tension steel ropes 24. The first embedded connector 21 and the second embedded connector 22 are respectively welded to the two ends of the steel beam 20 and fixedly connected to the concrete casting support 3. The connecting rings 23 are welded to the two ends of the top of the steel beam 20. The tension steel ropes 24 are connected between the connecting rings 23 and the photovoltaic panel 2.

[0027] The first embedded connector 21 and the second embedded connector 22 are fixedly connected to the concrete pouring support 3 to improve the overall stability of the steel beam 20. The tension steel rope 24 is connected between the connecting ring 23 and the photovoltaic panel 2 to achieve auxiliary tension on the photovoltaic panel 2, so as to avoid the photovoltaic panel 2 from being vibrated by the wind and thus avoid the bolts from loosening, thereby further improving the wind resistance of the photovoltaic panel 2.

[0028] In work, by setting up the photovoltaic support body composed of several concrete pouring supports, embedded parts, several connecting columns, first main beams, second main beams, several long columns, several short columns, side support assembly one, side support assembly two, pulling assembly one and pulling assembly two, the pulling can be fixed through the embedded parts, and the overall stability of the photovoltaic support body can be effectively improved through multi-component welding fixation, the photovoltaic support body can be further reinforced through the setting of X-shaped reinforcing support one, X-shaped reinforcing support two and reinforcing cross beam, so that the photovoltaic support body has high wind resistance; by setting up the side support assembly one and the side support assembly two composed of the inclined support beam and the several connecting plates, the photovoltaic panel can be assisted and connected, the connection points can be increased, so that the installation stability of the photovoltaic panel can be improved, by setting up the pulling assembly one and the pulling assembly two composed of the steel beam, the first embedded connecting head, the second embedded connecting head, the several connecting rings and the several pulling steel ropes, the photovoltaic panel can be assisted and pulled, the loosening of the bolts caused by the vibration of the photovoltaic panel under the action of wind force can be avoided, the stability of the connection between the photovoltaic panel and the photovoltaic support can be further improved, and the overall wind resistance can be improved.

Claims

1. A wind resistant photovoltaic racking comprising a photovoltaic racking body (1), characterized in that: The top end of the photovoltaic support body (1) is provided with a photovoltaic panel (2), and the photovoltaic support body (1) is composed of a plurality of concrete pouring supports (3), embedded parts (4), a plurality of connecting columns (5), first main beams (6), second main beams (7), a plurality of long columns (8), a plurality of short columns (9), side support assemblies (10), side support assemblies (11), pulling assemblies (12) and pulling assemblies (13), the embedded parts (4) are fixedly connected to the inside of the concrete pouring supports (3), the connecting columns (5) are inserted into the embedded parts (4) and are fixedly connected thereto, the first main beams (6) and the second main beams (7) are both welded to the top end of the connecting columns (5), the long columns (8) are welded to one end of the top of the first main beams (6) and the second main beams (7), the short columns (9) are welded to the other end of the top of the first main beams (6) and the second main beams (7), the side support assemblies (10) and the side support assemblies (11) are both welded between the long columns (8) and the short columns (9), and the pulling assemblies (12) and the pulling assemblies (13) are both connected between the concrete pouring supports (3) and the photovoltaic panel (2).

2. A wind resistant photovoltaic mounting assembly according to claim 1, wherein: The first main beams (6) and the second main beams (7) are fixedly provided with X-shaped reinforcing supports (14) therebetween, and the X-shaped reinforcing supports (14) are both in welded connection with the first main beams (6) and the second main beams (7).

3. The wind resistant photovoltaic mount of claim 1, wherein: The long columns (8) are fixedly provided with X-shaped reinforcing supports (15) therebetween, and the X-shaped reinforcing supports (15) are in welded connection with the long columns (8).

4. The wind resistant photovoltaic mount of claim 1, wherein: The short columns (9) are fixedly provided with reinforcing cross beams (16), and the reinforcing cross beams (16) are in welded connection with the short columns (9).

5. The wind resistant photovoltaic mount of claim 1, wherein: The side support assemblies (10) and the side support assemblies (11) are both composed of inclined support beams (17) and a plurality of connecting plates (18), the inclined support beams (17) are welded between the long columns (8) and the short columns (9), the connecting plates (18) are welded to the side edges of the inclined support beams (17), and mounting holes (19) are formed in the connecting plates (18).

6. The wind resistant photovoltaic mount of claim 1, wherein: The pulling assemblies (12) and the pulling assemblies (13) are both composed of steel beams (20), first embedded connecting heads (21), second embedded connecting heads (22), a plurality of connecting rings (23) and a plurality of pulling steel ropes (24), the first embedded connecting heads (21) and the second embedded connecting heads (22) are respectively welded to the two ends of the steel beams (20) and are fixedly connected with the concrete pouring supports (3), the connecting rings (23) are welded to the two ends of the top of the steel beams (20), and the pulling steel ropes (24) are connected between the connecting rings (23) and the photovoltaic panel (2).