Light photovoltaic support skid-mounted integrated device

By designing a lightweight integrated skid-mounted photovoltaic support device, which employs modular design and bolt connections, the problem of insufficient connection strength of traditional photovoltaic supports in low-temperature and windy climates in high-latitude regions has been solved, achieving rapid installation and high stability, and adapting to the needs of different terrains.

CN224218319UActive Publication Date: 2026-05-08DAQING PETROLEUM ADMINISTRATION +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DAQING PETROLEUM ADMINISTRATION
Filing Date
2024-12-16
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Traditional photovoltaic (PV) mounting systems lack sufficient connection strength in the low-temperature and high-wind climate conditions of high-latitude regions, making it difficult to meet the installation requirements of high-power, large-size PV panels. Furthermore, their complex installation process limits their wider application in various scenarios.

Method used

A lightweight photovoltaic bracket skid-mounted integrated device is designed, which adopts a stable triangular structure formed by front column, rear column, inclined beam, front inclined support and rear inclined support. Combined with base plate and column sleeve, it adopts modular design and bolt connection to achieve rapid installation and high stability.

Benefits of technology

It improves the stability and wind resistance of the device, reduces installation time and labor intensity, lowers construction costs, enhances structural stability and ease of maintenance, and adapts to different terrains and installation requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of new energy photovoltaic power generation, in particular to a light photovoltaic support skid-mounted integrated device, which comprises two base anchors and two column sleeves. The two base anchors are symmetrically arranged, column sleeves are arranged at the upper ends of the two base anchors respectively, the front stand column and the rear stand column are arranged in the two column sleeves respectively, oblique beams are arranged at the top ends of the front stand column and the rear stand column, the front oblique support and the rear oblique support are arranged on the outer walls of the front stand column and the rear stand column respectively and connected with the oblique beams, and a plurality of pieces of C-shaped steel are evenly arranged at the upper ends of the oblique beams. The C-shaped steel and the oblique beam are vertically arranged and connected through bolts, a photovoltaic panel is arranged at the upper end of the C-shaped steel, and an angle steel purlin supporting plate is arranged on one side of the C-shaped steel. According to the light photovoltaic support skid-mounted integrated device, the overall wind resistance of the device is improved by using a triangular stable structure, each part of the device adopts a modular design, so that the device is convenient to install, and the production and processing cost is reduced while the adaptability of the device is improved.
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Description

Technical Field

[0001] This utility model relates to the field of new energy photovoltaic power generation technology, and in particular to a lightweight photovoltaic bracket skid-mounted integrated device. Background Technology

[0002] With the rapid development of the domestic economy, the demand for energy from various industries is increasing day by day. However, the pollution caused by the use of traditional energy sources is becoming increasingly serious, prompting people to seek more environmentally friendly and sustainable energy solutions.

[0003] Traditional shallow-buried photovoltaic (PV) support systems suffer from low strength, making it difficult to meet the installation requirements of high-power, large-size PV panels. Most PV support system components are custom-made and vary considerably, which makes standardized installation and large-scale adoption difficult.

[0004] Traditional photovoltaic (PV) mounting systems are mainly used in southern regions. Their connection methods and strength are not suitable for the low temperature and strong wind climate conditions in high-latitude regions. These factors limit the promotion and use of PV mounting systems in a wider range of application scenarios. Summary of the Invention

[0005] (a) Technical problems to be solved

[0006] This invention provides a lightweight integrated photovoltaic bracket skid-mounted device to overcome the problem that the connection strength of traditional photovoltaic brackets is not suitable for the low temperature and strong wind climate in high latitude regions.

[0007] (II) Technical Solution

[0008] To achieve the above objectives, this utility model provides a lightweight integrated photovoltaic bracket skid-mounted device, comprising: two base plates and two column sleeves;

[0009] The two base plates include: a first base plate and a second base plate, the first base plate and the second base plate are symmetrically arranged, and the first base plate is located at the left end of the second base plate;

[0010] The two column sleeves include: a first column sleeve and a second column sleeve, wherein the first column sleeve is disposed at the upper end of the first base plate and the second column sleeve is disposed at the upper end of the second base plate;

[0011] The first column sleeve is provided with a front column, and the second column sleeve is provided with a rear column. The top of the front column and the rear column are provided with inclined beams.

[0012] The front column is provided with a front inclined support on the right outer wall. The two ends of the front inclined support are respectively connected to the front column and the inclined beam. The front inclined support, the front column and the inclined beam form a triangular support structure. The front inclined support is provided with a front inclined support connector between the front column and the inclined beam.

[0013] The left outer wall of the rear column is provided with a rear inclined support. The two ends of the rear inclined support are respectively connected to the rear column and the inclined beam. The rear inclined support, the rear column and the inclined beam form a triangular support structure. The rear inclined support is provided with a rear inclined support connector between the rear column and the inclined beam.

[0014] The upper end of the inclined beam is uniformly provided with several C-shaped steels. The C-shaped steels are C-shaped structures and are set perpendicular to the inclined beam. The lower end face of the C-shaped steels is bolted to the inclined beam. The upper end of the C-shaped steels is provided with a photovoltaic panel, and an angle steel purlin support plate is provided on one side of the C-shaped steels.

[0015] Preferably, the column sleeve is a hollow rectangular structure, the front column is bolted to the first column sleeve, and the rear column is bolted to the second column sleeve.

[0016] Preferably, a plurality of reinforcing ribs are provided between the first column sleeve and the first base plate, and a plurality of reinforcing ribs are provided between the second column sleeve and the second base plate.

[0017] Preferably, the outer wall of the front column is provided with a front column support hole, which is a through hole penetrating the front column.

[0018] Preferably, the outer wall of the rear column is provided with a support hole between the rear columns, and the support hole between the rear columns is a through hole penetrating the rear column.

[0019] Preferably, the height of the rear column is greater than the height of the front column, and the inclined beam is bolted to both the front and rear columns.

[0020] Preferably, the front inclined support is rotatably connected to the front inclined support connector, and the rear inclined support is rotatably connected to the rear inclined support connector.

[0021] Preferably, the angle steel purlin support plate is composed of two mutually perpendicular rectangular sides, one rectangular side of which is bolted to a C-shaped steel, and the other side is bolted to a diagonal beam.

[0022] (III) Beneficial Effects

[0023] This utility model provides a lightweight integrated skid-mounted photovoltaic support device. By setting up a front column, rear column, inclined beam, front inclined support, and rear inclined support, two stable triangular structures are formed, enhancing the overall stability and wind resistance of the device. The design of the base plate and column sleeve allows the columns to be installed quickly and accurately in designated locations, reducing installation time and labor intensity. The entire device adopts a modular design, with each component pre-manufactured in the factory and then transported to the site for assembly, reducing the complexity and uncertainty of on-site construction. All components are connected by bolts, facilitating later inspection and maintenance, thereby improving installation efficiency, reducing construction costs, enhancing structural stability, and simplifying maintenance. Attached Figure Description

[0024] Figure 1 This diagram illustrates the structure of a lightweight photovoltaic bracket skid-mounted integrated device according to the present invention.

[0025] Figure 2 Show Figure 1 Partial schematic diagram of A in the middle.

[0026] Wherein: 1: base plate; 2: column sleeve; 3: front column; 4: rear column; 5: front diagonal brace; 6: rear diagonal brace; 7: front diagonal brace connector; 8: rear diagonal brace connector; 9: photovoltaic panel; 10: diagonal beam; 11: front column intercolumnar support hole; 12: angle steel purlin support plate; 13: C-shaped steel; 14: rear column intercolumnar support hole. Detailed Implementation

[0027] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0028] In the description of this utility model, it is necessary to understand that the orientation or positional relationship indicated by terms such as "upper", "lower", "left", "right", "inner", "outer", "top", and "bottom" are all based on the orientation or positional relationship shown in the accompanying drawings. The purpose is only to facilitate the description of this utility model and simplify the description, and is not intended to indicate or imply that the indicated component must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation of this utility model.

[0029] like Figure 1-2 As shown, this utility model provides a lightweight photovoltaic bracket skid-mounted integrated device, including: two foot plates 1 and two column sleeves 2;

[0030] The two base plates 1 include: a first base plate and a second base plate, which are symmetrically arranged. The first base plate is located at the left end of the second base plate. This symmetrical arrangement helps to ensure the overall balance and stability of the device.

[0031] The base plate 1 is a rectangular structure with several threaded through holes evenly distributed on it. The design of these threaded through holes allows the base plate to be firmly fixed to the pre-embedded anchor bolts on the shallow concrete foundation, thereby achieving a stable installation. As the fixing structure of the entire device, the base plate 1 plays a key role in ensuring the stability and safety of the photovoltaic support under various environmental conditions.

[0032] The two column sleeves 2 include: a first column sleeve and a second column sleeve. The first column sleeve is located at the upper end of the first base plate, and the second column sleeve is located at the upper end of the second base plate. Several reinforcing ribs are provided between the first column sleeve and the first base plate, and several reinforcing ribs are provided between the second column sleeve and the second base plate. These reinforcing ribs can effectively disperse and transmit forces, and improve the rigidity and wind resistance of the overall structure.

[0033] The first column sleeve is provided with a front column 3, and the second column sleeve is provided with a rear column 4. The front column 3 is bolted to the first column sleeve, and the rear column 4 is bolted to the second column sleeve. The bolted connection method not only provides a reliable fixing effect, but also facilitates disassembly and maintenance, increasing the flexibility and operability of the system.

[0034] The front column 3 and the rear column 4 are equipped with inclined beams 10 at their top ends. The height of the rear column 4 is greater than that of the front column 3. This height difference design helps to form an inclined support structure to accommodate photovoltaic panel installations at different angles. The inclined beams 10 are bolted to the front column 3 and the rear column 4 respectively. This connection method not only provides a reliable fixing effect, but also facilitates disassembly and adjustment, increasing the flexibility and operability of the system.

[0035] The front column 3 has a front inclined support 5 on its right outer wall. The two ends of the front inclined support 5 are connected to the front column 3 and the inclined beam 10, respectively. The front inclined support 5, the front column 3, and the inclined beam 10 form a triangular support structure. The front inclined support 5, the front column 3, and the inclined beam 10 are respectively provided with front inclined support connectors 7. The rear column 4 has a rear inclined support 6 on its left outer wall. The two ends of the rear inclined support 6 are connected to the rear column 4 and the inclined beam 10, respectively. The rear inclined support 6, the rear column 4, and the inclined beam 10 form a triangular support structure. The rear inclined support 6, the rear column 4, and the inclined beam 10 are respectively provided with rear inclined support connectors 8. The front inclined support 5 and the front inclined support connector 7 are rotatably connected, and the rear inclined support 6 and the rear inclined support connector 8 are rotatably connected. The rotatable connection design allows for a certain angle adjustment to adapt to different terrains and installation requirements, improving the adaptability and flexibility of the device.

[0036] The upper end of the inclined beam 10 is uniformly provided with several C-shaped steels 13. The C-shaped steels 13 are C-shaped structures and are set perpendicular to the inclined beam 10. The lower end face of the C-shaped steels 13 is bolted to the inclined beam 10, which facilitates disassembly and adjustment and increases the flexibility and operability of the system. The upper end of the C-shaped steels 13 is used to support the photovoltaic panel 9. An angle steel purlin support plate 12 is provided on one side of each C-shaped steel 13. The angle steel purlin support plate 12 is composed of two mutually perpendicular rectangular sides. One rectangular side of the angle steel purlin support plate 12 is bolted to the C-shaped steel 13, and the other side is bolted to the inclined beam 10, which enhances the stability of the C-shaped steel 13 support structure and provides additional support and protection for the photovoltaic panel 9, ensuring the safety and stability of the photovoltaic panel 9.

[0037] It should be noted that in actual use, this lightweight photovoltaic bracket skid-mounted integrated device is usually used in groups with multiple devices installed in parallel. The outer wall of the front column 3 is provided with a front column inter-column support hole 11, which is a through hole penetrating the front column 3. The outer wall of the rear column 4 is provided with a rear column inter-column support hole 14, which is a through hole penetrating the rear column 4. The front column inter-column support hole 11 and the rear column inter-column support hole 14 are used to install crossbeams. By inserting crossbeams into these support holes, multiple lightweight photovoltaic bracket skid-mounted integrated devices can be installed in parallel, and straight and diagonal tie rods are installed on the inclined beam 10 to form a combined photovoltaic panel array. This design allows multiple devices to be connected and supported by each other, improving the stability and load-bearing capacity of the overall structure.

[0038] The following is a detailed description of the actual working scenario of a lightweight photovoltaic bracket skid-mounted integrated device.

[0039] First, the installers will determine the installation location based on the actual site conditions and pre-embed anchor bolts in the ground. Then, the anchor plate 1 will be placed in the predetermined position and fixed to the pre-embedded anchor bolts on the shallow concrete foundation to ensure the stability and safety of the device.

[0040] Next, the front column 3 and rear column 4 will be inserted into their respective column sleeves 2 and secured laterally with bolts. Once the columns are installed, the installers will install diagonal beams 10 at the top of the front and rear columns and secure them with bolts. Several C-shaped steel bars 13 will be evenly installed on the upper end of the diagonal beams 10 and secured with bolts. These C-shaped steel bars 13 support the photovoltaic panel 9, and additional support and protection are provided by adding angle steel purlin brackets 12 to one side of the C-shaped steel bars 13, ensuring the safety and stability of the photovoltaic panel 9.

[0041] After completing the installation of a single lightweight photovoltaic bracket skid-mounted integrated device, continue to install the lightweight photovoltaic bracket skid-mounted integrated devices in parallel. Installers can add crossbeams through the support holes between the front and rear columns to install multiple devices in parallel, forming a combined photovoltaic panel array.

[0042] It is understood that the above-mentioned embodiments mentioned in this utility model can be combined with each other to form combined embodiments without violating the principle and logic. Due to space limitations, this utility model will not elaborate further.

[0043] Those skilled in the art will understand that, in the above-described method of the specific implementation, the order in which each step is written does not imply a strict execution order and does not constitute any limitation on the implementation process. The specific execution order of each step should be determined by its function and possible internal logic.

[0044] This utility model provides a lightweight integrated photovoltaic bracket skid-mounted device. By setting up a front column 3, a rear column 4, a diagonal beam 10, a front diagonal support 5, and a rear diagonal support 6, it forms two stable triangular structures, which enhances the stability and wind resistance of the entire device. The design of the foot plate 1 and column sleeve 2 allows the column to be installed quickly and accurately in the designated position, reducing installation time and labor intensity. The entire device adopts a modular design, and each component can be pre-manufactured in the factory and then transported to the site for assembly, reducing the complexity and uncertainty of on-site construction. All components are connected by bolts, which facilitates the later inspection and maintenance of the device, thereby achieving the goals of improving installation efficiency, reducing construction costs, enhancing structural stability, and facilitating maintenance.

[0045] The various embodiments of the present invention have been described above. These descriptions are exemplary and not exhaustive, nor are they limited to the disclosed embodiments. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the described embodiments. The terminology used herein is chosen to best explain the principles, practical applications, or technical improvements to the embodiments in the market, or to enable others skilled in the art to understand the embodiments disclosed herein.

Claims

1. A lightweight integrated photovoltaic support skid-mounted device, characterized in that, include: Two footboards (1) and two column sleeves (2); The two footboards (1) include: a first footboard and a second footboard, the first footboard and the second footboard are symmetrically arranged, and the first footboard is located at the left end of the second footboard; The two column sleeves (2) include: a first column sleeve and a second column sleeve, wherein the first column sleeve is disposed at the upper end of the first base plate and the second column sleeve is disposed at the upper end of the second base plate; The first column sleeve is provided with a front column (3), and the second column sleeve is provided with a rear column (4). The top of the front column (3) and the rear column (4) are provided with inclined beams (10). The front column (3) is provided with a front inclined support (5) on the outer right side wall. The front inclined support (5) is connected to the front column (3) and the inclined beam (10) at both ends. The front inclined support (5), the front column (3) and the inclined beam (10) form a triangular support structure. The front inclined support (5) is provided with a front inclined support connector (7) between the front column (3) and the inclined beam (10). The rear column (4) is provided with a rear inclined support (6) on the outer left side. The rear inclined support (6) is connected to the rear column (4) and the inclined beam (10) at both ends. The rear inclined support (6), the rear column (4) and the inclined beam (10) form a triangular support structure. The rear inclined support (6) is provided with a rear inclined support connector (8) between the rear column (4) and the inclined beam (10). The upper end of the inclined beam (10) is uniformly provided with several C-shaped steels (13). The C-shaped steels (13) are C-shaped structures and are set perpendicular to the inclined beam (10). The lower end face of the C-shaped steels (13) is bolted to the inclined beam (10). The upper end of the several C-shaped steels (13) is provided with photovoltaic panels (9). Angle steel purlin support plates (12) are provided on one side of the C-shaped steels (13). The outer wall of the front column (3) is provided with a front column support hole (11), which is a through hole penetrating the front column (3). The outer wall of the rear column (4) is provided with a rear column support hole (14), which is a through hole penetrating the rear column (4).

2. The lightweight photovoltaic support skid-mounted integrated device according to claim 1, characterized in that, The column sleeve (2) is a hollow rectangular structure. The front column (3) is bolted to the first column sleeve, and the rear column (4) is bolted to the second column sleeve.

3. The lightweight photovoltaic support skid-mounted integrated device according to claim 2, characterized in that, Several reinforcing ribs are provided between the first column sleeve and the first base plate, and several reinforcing ribs are provided between the second column sleeve and the second base plate.

4. The lightweight photovoltaic support skid-mounted integrated device according to claim 1, characterized in that, The height of the rear column (4) is greater than the height of the front column (3), and the inclined beam (10) is bolted to the front column (3) and the rear column (4) respectively.

5. The lightweight photovoltaic support skid-mounted integrated device according to claim 1, characterized in that, The front inclined support (5) is rotatably connected to the front inclined support connector (7), and the rear inclined support (6) is rotatably connected to the rear inclined support connector (8).

6. The lightweight photovoltaic support skid-mounted integrated device according to claim 1, characterized in that, The angle steel purlin support plate (12) is composed of two mutually perpendicular rectangular sides. One rectangular side of the angle steel purlin support plate (12) is bolted to a C-shaped steel (13), and the other side is bolted to a diagonal beam (10).