Photovoltaic module for comprehensive energy power production
By introducing adjustment and linkage mechanisms into photovoltaic modules, the stability problem of photovoltaic modules under extreme weather conditions has been solved, realizing automatic adjustment of the photovoltaic panel angle and multi-group synchronous adjustment, reducing the damage rate and workload.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 国网宁夏电力有限公司固原供电公司
- Filing Date
- 2025-06-06
- Publication Date
- 2026-05-12
AI Technical Summary
Existing photovoltaic modules are susceptible to extreme weather in integrated energy systems, especially in coastal areas and other regions prone to typhoons, where they are easily displaced, deformed, and damaged, resulting in poor stability.
A photovoltaic module was designed, comprising a base, an adjustment mechanism, and a linkage mechanism. Through the cooperation of a rotating shaft, a support rod, a limit rod, and a spring, the angle of the photovoltaic panel can be adjusted under extreme conditions to reduce wind resistance and environmental impact. Multiple sets of bases are connected in series by screws to reduce labor.
It effectively reduces the damage rate of photovoltaic modules under extreme weather conditions, improves the operational stability of the power supply end of the integrated energy system, and reduces the workload of adjusting the angle of photovoltaic panels.
Smart Images

Figure CN224233614U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of integrated energy power supply components technology, and in particular to a photovoltaic module for integrated energy power production. Background Technology
[0002] An integrated energy system refers to a system that utilizes advanced physical and information technologies and innovative management models within a certain area to integrate various energy sources such as coal, oil, natural gas, electricity, and heat. This system enables coordinated planning, optimized operation, collaborative management, interactive response, and mutual support among various heterogeneous energy subsystems. On the energy supply side of an integrated energy system, with the continuous improvement of low-carbon and environmental protection requirements, photovoltaic power generation systems are being used more and more widely in the power supply side of the integrated energy system.
[0003] Existing photovoltaic modules used in integrated energy systems have the following drawbacks: Compared with traditional photovoltaic system modules, photovoltaic module systems used at the power supply end of integrated energy systems generally have the characteristics of large installation area and high stability requirements. During use, especially in coastal areas and other areas prone to typhoons, extreme weather conditions can easily cause the photovoltaic modules to shift, deform and be damaged. Therefore, we propose a photovoltaic module for integrated energy power production. Utility Model Content
[0004] The main objective of this invention is to provide a photovoltaic module for integrated energy power production. By using an adjustment mechanism set on the top of the base, the angle of the photovoltaic module can be adjusted under extreme conditions to reduce the impact of the external environment, thus effectively solving the problems in the background technology.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] A photovoltaic module for integrated energy power generation includes a base and an adjustment mechanism. The adjustment mechanism is located on the top of the base and includes a rotating shaft A, a photovoltaic panel, a through slot, a rotating shaft B, a support rod, a slot A, a slot B, a spring, and a limiting rod. The rotating shaft A is located at one end of the top of the base and is movably connected to the photovoltaic panel. A through slot is horizontally formed on the surface of the base, and a rotating shaft B is installed at one end of the through slot. A support rod is movably connected to the base via the rotating shaft B, and the top of the support rod is connected to the bottom of the photovoltaic panel. A slot B is formed on the surface of the base near the rotating shaft B, and a slot A is formed in the middle section of the base. A spring is installed inside the through slot and is movably connected to the limiting rod via the spring.
[0007] Furthermore, it also includes a linkage mechanism. A linkage mechanism is provided between the bases. The linkage mechanism includes a screw hole A and a screw rod A. Each end of the limiting rod has a screw hole A. The ends of the limiting rods are detachably connected to each other through the screw holes A and the screw rod A. When photovoltaic modules are used in integrated energy systems, the installation area is generally large. In order to reduce the amount of labor involved in adjusting the photovoltaic panels, adjacent bases in the same row can be connected in series. The end of the screw rod A is screwed into the screw hole A at the end of the limiting rod, and then screwed in the opposite direction so that the other end of the screw rod A is screwed into the screw hole A of the adjacent limiting rod. Thus, the limiting rods are connected in series through the screw rod A. When the angle of the photovoltaic panel needs to be adjusted, pulling the limiting rod can drive the limiting rods on the surface of multiple bases to move synchronously for adjustment, reducing the amount of labor involved.
[0008] Furthermore, a pivot C is installed at the middle connection position inside the support rod, and the support rods are connected to each other through the pivot C; the pivot C serves as a connection, allowing the angle of the connection end of the support rod to be adjusted.
[0009] Furthermore, mounting holes are provided at both ends of the base; the mounting hole structure facilitates the use of fasteners to fix the base in place.
[0010] Furthermore, each of the photovoltaic panels has a screw hole B at a corresponding position on its side, and a screw B is detachably connected between the screw holes B; each of the photovoltaic panels has a screw hole B on its top, and adjacent photovoltaic panels can be connected by screws B in conjunction with screw holes B, thereby facilitating the linkage of multiple photovoltaic panels when adjusting the angle of the photovoltaic panels.
[0011] Compared with the prior art, this utility model has the following advantages: A photovoltaic panel is movably connected to the top of the base via a pivot A, and the other end of the photovoltaic panel is connected to the base via a support rod. Under normal use, the photovoltaic panel is supported at a certain angle, and the limiting rod is engaged in the slot B, restricting the angle of the support rod and thus fixing the angle of the photovoltaic panel to ensure it fully receives sunlight. In extreme weather conditions such as typhoons, the limiting rod can be pulled up and reset under spring action, engaging it in the slot A. At this time, the support rod loses its limiting position and can be pressed down to adjust the angle of the photovoltaic panel, bringing its bottom closer to the top of the base, reducing wind resistance and minimizing external impacts. The impact of the environment on photovoltaic modules ensures the operational stability of the power supply end of the integrated energy system and reduces the damage rate. When photovoltaic modules are used in integrated energy systems, the installation area is generally large. In order to reduce the amount of labor involved in adjusting the photovoltaic panels, adjacent bases in the same row can be connected in series. The end of screw A is screwed into the screw hole A at the end of the limit rod, and then screwed in the opposite direction so that the other end of screw A is screwed into the screw hole A of the adjacent limit rod. Thus, the limit rods are connected in series through screw A. When the angle of the photovoltaic panel needs to be adjusted, pulling the limit rod can drive the limit rods on the surface of multiple bases to move synchronously for adjustment, reducing the amount of labor involved. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the overall structure of a photovoltaic module for integrated energy power production according to the present invention.
[0013] Figure 2 This is a schematic diagram of the series connection structure at the top of the base of a photovoltaic module used for integrated energy power production according to this utility model.
[0014] Figure 3 This is a schematic diagram of a photovoltaic panel series structure for a photovoltaic module used in integrated energy power production according to the present invention.
[0015] In the diagram: 1. Base; 2. Adjustment mechanism; 201. Rotating shaft A; 202. Photovoltaic panel; 203. Through slot; 204. Rotating shaft B; 205. Support rod; 206. Rotating shaft C; 207. Slot A; 208. Slot B; 209. Spring; 210. Limiting rod; 211. Mounting hole; 3. Linkage mechanism; 301. Screw hole A; 302. Screw A; 303. Screw hole B; 304. Screw B. Detailed Implementation
[0016] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0017] like Figure 1-3 As shown, a photovoltaic module for integrated energy power generation includes a base 1 and an adjustment mechanism 2. The adjustment mechanism 2 is located on the top of the base 1. The adjustment mechanism 2 includes a rotating shaft A201, a photovoltaic panel 202, a through slot 203, a rotating shaft B204, a support rod 205, a slot A207, a slot B208, a spring 209, and a limiting rod 210. The photovoltaic panel 202 is movably connected to the rotating shaft A201 at one end of the top of the base 1. The base 1 has a horizontally oriented through groove 203, and a rotating shaft B204 is installed at one end of the through groove 203. The base 1 is movably connected to a support rod 205 through the rotating shaft B204, and the top of the support rod 205 is connected to the bottom of the photovoltaic panel 202. The surface of the base 1 near the rotating shaft B204 has a slot B208, and the middle section of the interior of the base 1 has a slot A207. A spring 209 is installed inside the through groove 203, and a limit rod 210 is movably connected to the spring 209.
[0018] The system also includes a linkage mechanism 3, which is provided between the bases 1. The linkage mechanism 3 includes a screw hole A301 and a screw A302. Each end of the limiting rod 210 has a screw hole A301, and the ends of the limiting rods 210 are detachably connected to each other through the screw holes A301. When photovoltaic modules are used in integrated energy systems, the installation area is generally large. In order to reduce the amount of labor involved in adjusting the photovoltaic panel 202, adjacent bases 1 in the same row can be connected in series. The end of the screw A302 is screwed into the screw hole A301 at the end of the limiting rod 210, and then screwed in the opposite direction so that the other end of the screw A302 is screwed into the screw hole A301 of the adjacent limiting rod 210. Thus, the limiting rods 210 are connected in series through the screw A302. When the angle of the photovoltaic panel 202 needs to be adjusted, pulling the limiting rod 210 can drive the limiting rods 210 on the surface of multiple bases 1 to move synchronously for adjustment, reducing the amount of labor involved.
[0019] The support rod 205 has a pivot C206 installed at the middle section of its internal connection position, and the support rods 205 are connected to each other through the pivot C206. The base 1 has mounting holes 211 at both ends. The pivot C206 serves as a connection, allowing the angle of the connecting end of the support rod 205 to be adjusted. The mounting hole 211 structure facilitates the use of fasteners to fix the position of the base 1.
[0020] Each of the photovoltaic panels 202 has screw holes B303 at corresponding positions on its side, and screws B304 are detachably connected between the screw holes B303. Each of the photovoltaic panels 202 has screw holes B303 on its top. Adjacent photovoltaic panels 202 can be connected by screws B304 and screw holes B303, which facilitates the linkage of multiple photovoltaic panels 202 when adjusting the angle of the photovoltaic panels 202.
[0021] It should be noted that this utility model is a photovoltaic module for integrated energy power production. In use, a photovoltaic panel 202 is movably connected to one top end of the base 1 via a pivot A201. The other bottom end of the photovoltaic panel 202 is connected to the base 1 via a support rod 205. Under normal use, the photovoltaic panel 202 is supported at a certain angle, and the limiting rod 210 is engaged in the slot B208, limiting the angle of the support rod 205 and thus fixing the angle of the photovoltaic panel 202, ensuring it fully receives sunlight. In extreme weather conditions such as typhoons, the limiting rod 210 can be pulled up and reset under the action of the spring 209, engaging the limiting rod 210 in the slot A207. At this time, the support rod 205 loses its limiting position and can be pressed down to adjust the angle of the photovoltaic panel 202, bringing its bottom closer to the top of the base 1, thus lowering its position. The photovoltaic panel 202 reduces wind resistance, minimizing the impact of the external environment on the photovoltaic module, ensuring the operational stability of the power supply end of the integrated energy system, and reducing the damage rate. When photovoltaic modules are used in integrated energy systems, the installation area is generally large. To reduce the workload in adjusting the photovoltaic panel 202, adjacent bases 1 in the same row can be connected in series. The end of the screw A302 is screwed into the screw hole A301 at the end of the limit rod 210, and then screwed in the opposite direction so that the other end of the screw A302 is screwed into the screw hole A301 of the adjacent limit rod 210. Thus, the limit rods 210 are connected in series through the screw A302. When the angle of the photovoltaic panel 202 needs to be adjusted, pulling the limit rod 210 can drive the limit rods 210 on the surface of multiple bases 1 to move synchronously for adjustment, reducing the workload.
[0022] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A photovoltaic module for integrated energy power generation, comprising a base (1), characterized in that, It also includes an adjustment mechanism (2). The adjustment mechanism (2) is provided on the top of the base (1). The adjustment mechanism (2) includes a rotating shaft A (201), a photovoltaic panel (202), a through groove (203), a rotating shaft B (204), a support rod (205), a slot A (207), a slot B (208), a spring (209), and a limiting rod (210). The top end of the base (1) is provided with a rotating shaft A (201) corresponding to the position, and the photovoltaic panel (202) is movably connected through the rotating shaft A (201). The surface of the base (1) is horizontally opened. The base (1) has a through groove (203) and a rotating shaft B (204) is installed at one end of the through groove (203). The base (1) is movably connected to a support rod (205) through the rotating shaft B (204), and the top of the support rod (205) is connected to the bottom of the photovoltaic panel (202). A slot B (208) is opened on the surface of the base (1) near the rotating shaft B (204), and a slot A (207) is opened in the middle section of the base (1). A spring (209) is installed inside the through groove (203), and a limit rod (210) is movably connected through the spring (209).
2. A photovoltaic module for integrated energy power generation according to claim 1, characterized in that: It also includes a linkage mechanism (3), which is provided between the bases (1). The linkage mechanism (3) includes a screw hole A (301) and a screw rod A (302). The ends of the limiting rods (210) are provided with screw holes A (301), and the ends of the limiting rods (210) are detachably connected to the screw rod A (302) through the screw holes A (301).
3. A photovoltaic module for integrated energy power generation according to claim 1, characterized in that: A pivot C (206) is installed at the middle section of the support rod (205), and the support rods (205) are connected to each other through the pivot C (206).
4. A photovoltaic module for integrated energy power generation according to claim 1, characterized in that: The base (1) has mounting holes (211) at both ends inside.
5. A photovoltaic module for integrated energy power generation according to claim 2, characterized in that: Each of the photovoltaic panels (202) has a screw hole B (303) at a corresponding position on its side, and a screw B (304) is detachably connected between the screw holes B (303).