Wind-resistant roof photovoltaic support
The combined design of oblique purlins, folding plates and reinforcement components solves the problem of existing rooftop photovoltaic brackets being easily blown by strong winds in harsh environments, achieves higher wind resistance and stability, and adapts to different environmental requirements.
Patent Information
- Application Number
- CN202422461672.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-12
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-10-12
AI Technical Summary
Existing rooftop photovoltaic brackets are easily blown by strong winds in harsh environments and have insufficient wind resistance.
A combination design of oblique purlins, folding plates, support components and reinforcement components is adopted, and the fixing effect of the bracket is enhanced through fasteners and bolt connections, including a hinge connection between the first folding plate and the first support component, a fastener connection between the second folding plate and the transverse purlin, combined with the connection between the fixing rod of the reinforcement component and the ground, to improve the wind resistance of the bracket.
Without affecting its use, it significantly improves the wind resistance of the rooftop photovoltaic bracket, enhances its stability and flexibility in harsh environments, and adapts to different fixing needs.
Smart Images

Figure CN223379108U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of photovoltaic brackets, in particular to a wind-resistant roof photovoltaic bracket. Background Art
[0002] Rooftop photovoltaic mounts are a common component of solar power generation systems, typically used on the roofs of residential, commercial, and industrial buildings to support and secure photovoltaic panels, maximizing their ability to absorb and convert solar energy into electricity. While existing rooftop photovoltaic mounts are designed to withstand winds, they are susceptible to being blown away by strong winds in harsh environments, presenting certain deficiencies. To address this issue, we propose a wind-resistant rooftop photovoltaic mount. Utility Model Content
[0003] The utility model aims to solve the problems existing in the prior art or related technologies.
[0004] To this end, the technical solution adopted by the present invention is: a wind-resistant roof photovoltaic bracket, comprising an oblique purlin, a first folding plate, a second folding plate, a first support assembly, a second support assembly, a transverse purlin and a reinforcement assembly, wherein the oblique purlin is provided with a plurality of fasteners, the first folding plate is fixedly connected to the front and rear ends of the oblique purlin by a hinge, the second folding plate is fixedly connected to the front and rear ends of the oblique purlin by a hinge, the first support assembly is arranged at the bottom of the oblique purlin, the second support assembly is arranged at the bottom of the oblique purlin, the transverse purlin is fixedly connected to the oblique purlin by fasteners, and the reinforcement assembly comprises a first reinforcement tube arranged at the bottom of the oblique purlin, a second reinforcement tube welded to the top end of the first reinforcement tube and a fixing rod welded to the bottom of the first reinforcement tube.
[0005] Preferably, the fasteners are composed of bolts and nuts.
[0006] Preferably, a circular hole is provided on the first folding plate, and the first folding plate is fixedly connected to the first supporting assembly by bolts.
[0007] Preferably, a through hole is provided on the second folding plate, and the second folding plate is fixedly connected to the transverse purlin via fasteners.
[0008] Preferably, the first supporting assembly includes a fixing seat bolted to the bottom of the oblique purlin, a column bolted to the fixing seat, and a base bolted to the bottom of the column.
[0009] Preferably, the second support assembly has the same structure as the first support assembly, and the column height of the second support assembly is higher than that of the first support assembly.
[0010] Preferably, the first reinforcement tube of the reinforcement assembly is fixedly connected to the oblique purlin via a fastener, and the second reinforcement tube of the reinforcement assembly is fixedly connected to the transverse purlin via a fastener.
[0011] By adopting the above technical solution, the beneficial effects achieved by the utility model are as follows: the utility model improves the wind resistance of the roof photovoltaic bracket without affecting the use of the roof photovoltaic bracket by arranging the reinforcement component, and at the same time, by arranging the first folding plate and the second folding plate, the wind resistance can be further improved to prevent the photovoltaic bracket from being blown by strong winds. When in use, the user can contact the first reinforcement tube of the reinforcement component with the bottom of the oblique purlin, and then fix it with fasteners, and then fix the second reinforcement tube with the transverse purlin with fasteners, and finally fix the fixing rod to the ground with bolts. After fixing, The fixed component can connect the diagonal purlins and the transverse purlins and fix them to the ground, which can improve the wind resistance of the roof photovoltaic bracket so that it can be used in harsh environments and has a wide range of uses. At the same time, the first folding plate can be rotated to contact the fixing seat of the first support component, and the bolts are connected after contact, which can improve the fixing effect of the diagonal purlins and the first support component and the second support component. Then the second folding plate can be rotated to contact the transverse purlins and the fasteners are fixed after contact, which can improve the fixing effect of the diagonal purlins and the transverse purlins to resist wind, and the first folding plate and the second folding plate can be fixed according to actual needs, which is highly flexible and easy to use. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 It is a structural diagram of the utility model;
[0013] Figure 2 For this utility model Figure 1 Schematic diagram of the structure of the center diagonal purlin;
[0014] Figure 3 For this utility model Figure 1 A schematic structural diagram of the first support assembly;
[0015] Figure 4 For this utility model Figure 1 Schematic diagram of the structure of the reinforcement component.
[0016] Reference numerals:
[0017] 100. Diagonal purlin; 101. Fasteners;
[0018] 200, first folding plate; 201, circular hole;
[0019] 300, second folding plate; 301, through hole;
[0020] 400, first support assembly; 401, fixing seat; 402, column; 403, base;
[0021] 500, second support assembly;
[0022] 600, transverse purlin;
[0023] 700, reinforcement assembly; 701, first reinforcement tube; 702, second reinforcement tube; 703, fixing rod. DETAILED DESCRIPTION
[0024] In order to make the purpose, technical solution and advantages of the present invention more clear, the present invention is further described in detail below in conjunction with specific embodiments and with reference to the accompanying drawings. It should be noted that the embodiments of the present invention and the features therein can be combined with each other unless there is any conflict.
[0025] The following describes some embodiments of the present invention in conjunction with the accompanying drawings to provide a wind-resistant roof photovoltaic bracket.
[0026] Example 1:
[0027] Reference Figure 1-4 , which is the first embodiment of the utility model, provides a wind-resistant roof photovoltaic bracket, including a diagonal purlin 100, a first folding plate 200, a second folding plate 300, a first support assembly 400, a second support assembly 500, a transverse purlin 600 and a reinforcement assembly 700.
[0028] Specifically, the diagonal purlin 100 is provided with a plurality of fasteners 101, which are composed of bolts and nuts. When in use, photovoltaic modules can be installed on the diagonal purlin 100, and because the diagonal purlin 100 is inclined upward, the photovoltaic modules can absorb solar energy.
[0029] Specifically, the first folding plate 200 is fixedly connected to the front and rear ends of the oblique purlin 100 through a hinge. A circular hole 201 is opened on the first folding plate 200, and the first folding plate 200 is fixedly connected to the first support assembly 400 through bolts. When in use, the first folding plate 200 can be rotated to contact the fixing seat 401 of the first support assembly 400. After contact, the bolts are connected, which can improve the fixing effect of the oblique purlin 100 and the first support assembly 400 and the second support assembly 500 to resist wind.
[0030] Specifically, the second folding plate 300 is fixedly connected to the front and rear ends of the diagonal purlin 100 through a hinge. A through hole 301 is provided on the second folding plate 300, and the second folding plate 300 is fixedly connected to the transverse purlin 600 through a fastener 101. When in use, the second folding plate 300 can be rotated to contact the transverse purlin 600, and after contact, it is fixed by the fastener 101, which can improve the fixing effect of the diagonal purlin 100 and the transverse purlin 600 to resist wind.
[0031] Specifically, the first support assembly 400 is arranged at the bottom of the oblique purlin 100. The first support assembly 400 includes a fixing seat 401 bolted to the bottom of the oblique purlin 100, a column 402 bolted to the fixing seat 401, and a base 403 bolted to the bottom of the column 402. When in use, the base 403 can be fixed to the ground, and the oblique purlin 100 can be supported and fixed by the first support assembly 400.
[0032] Specifically, the second support assembly 500 is arranged at the bottom of the diagonal purlin 100. The second support assembly 500 has the same structure as the first support assembly 400, and the height of the column 402 of the second support assembly 500 is higher than that of the first support assembly 400. When in use, the cooperation between the first support assembly 400 and the second support assembly 500 can support and fix the diagonal purlin 100 and the transverse purlin 600 to support the photovoltaic assembly.
[0033] Specifically, the transverse purlin 600 is fixedly connected to the diagonal purlin 100 via the fastener 101. When in use, the diagonal purlin 100 and the transverse purlin 600 cooperate to install and support the photovoltaic module for use.
[0034] Specifically, the reinforcement assembly 700 includes a first reinforcement tube 701 arranged at the bottom of the oblique purlin 100, a second reinforcement tube 702 welded to the top of the first reinforcement tube 701, and a fixing rod 703 welded to the bottom of the first reinforcement tube 701. The first reinforcement tube 701 of the reinforcement assembly 700 is fixedly connected to the oblique purlin 100 through a fastener 101, and the second reinforcement tube 702 of the reinforcement assembly 700 is fixedly connected to the transverse purlin 600 through a fastener 101. When in use, the user can The first reinforcement tube 701 of the fixing component 700 contacts the bottom of the oblique purlin 100 and is then fixed by the fastener 101. Subsequently, the second reinforcement tube 702 is fixedly connected to the transverse purlin 600 by the fastener 101, and finally the fixing rod 703 is fixed to the ground by bolts. After fixation, the oblique purlin 100 and the transverse purlin 600 can be connected through the reinforcement component 700 and fixed to the ground, which can improve the wind resistance of the roof photovoltaic bracket so that it can be used in harsh environments and has a wide range of uses.
[0035] The working principle and use process of the utility model: When in use, the user can contact the first reinforcement tube 701 of the reinforcement component 700 with the bottom of the oblique purlin 100, and then fix it with the fastener 101, and then fix the second reinforcement tube 702 with the transverse purlin 600 with the fastener 101, and finally fix the fixing rod 703 to the ground with bolts. After fixing, the oblique purlin 100 and the transverse purlin 600 can be connected through the reinforcement component 700 and fixed to the ground, which can improve the wind resistance of the roof photovoltaic bracket so that it can be used in harsh environments. The range is large, and the first folding plate 200 can be rotated to contact the fixing seat 401 of the first supporting assembly 400. After contact, the bolts are connected, which can improve the fixing effect of the oblique purlin 100 and the first supporting assembly 400 and the second supporting assembly 500. Then the second folding plate 300 can be rotated to contact the transverse purlin 600. After contact, it is fixed by the fastener 101, which can improve the fixing effect of the oblique purlin 100 and the transverse purlin 600 to resist wind, and the first folding plate 200 and the second folding plate 300 can be fixed according to actual needs, with high flexibility and easy use.
[0036] Although the embodiments of the present invention have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and purpose of the present invention, and that the scope of the present invention is defined by the claims and their equivalents.
Claims
1. A wind-resistant roof photovoltaic bracket, characterized in that: include: An oblique purlin (100), wherein the oblique purlin (100) is provided with a plurality of fasteners (101); a first folding plate (200), the first folding plate (200) being fixedly connected to the front and rear ends of the oblique purlin (100) via a hinge; a second folding plate (300), the second folding plate (300) being fixedly connected to the front and rear ends of the oblique purlin (100) via a hinge; a first supporting assembly (400), the first supporting assembly (400) being arranged at the bottom of the oblique purlin (100); a second supporting assembly (500), the second supporting assembly (500) being arranged at the bottom of the oblique purlin (100); A transverse purlin (600), wherein the transverse purlin (600) is fixedly connected to the diagonal purlin (100) via a fastener (101); A reinforcement assembly (700) comprising a first reinforcement tube (701) arranged at the bottom of the oblique purlin (100), a second reinforcement tube (702) welded to the top of the first reinforcement tube (701), and a fixing rod (703) welded to the bottom of the first reinforcement tube (701).
2. The wind-resistant roof photovoltaic bracket according to claim 1, characterized in that: The fastener (101) is composed of a bolt and a nut.
3. The wind-resistant roof photovoltaic bracket according to claim 1, characterized in that: A circular hole (201) is provided on the first folding plate (200), and the first folding plate (200) is fixedly connected to the first supporting assembly (400) via bolts.
4. The wind-resistant roof photovoltaic bracket according to claim 1, characterized in that: A through hole (301) is provided on the second folding plate (300), and the second folding plate (300) is fixedly connected to the transverse purlin (600) via a fastener (101).
5. The wind-resistant roof photovoltaic bracket according to claim 1, characterized in that: The first support assembly (400) comprises a fixing seat (401) bolted to the bottom of the oblique purlin (100), a column (402) bolted to the fixing seat (401), and a base (403) bolted to the bottom of the column (402).
6. The wind-resistant roof photovoltaic bracket according to claim 1, characterized in that: The second support assembly (500) has the same structure as the first support assembly (400), and the height of the column (402) of the second support assembly (500) is higher than that of the first support assembly (400).
7. The wind-resistant roof photovoltaic bracket according to claim 1, characterized in that: The first reinforcement tube (701) of the reinforcement assembly (700) is fixedly connected to the oblique purlin (100) via a fastener (101), and the second reinforcement tube (702) of the reinforcement assembly (700) is fixedly connected to the transverse purlin (600) via a fastener (101).