Photovoltaic equipment with reflective structure
By designing reflective components and stable chassis components in photovoltaic equipment, the problem of photovoltaic equipment failing to effectively utilize light is solved, the photovoltaic energy conversion efficiency and power generation benefits are improved, and the stability and safety of the equipment are enhanced.
Patent Information
- Application Number
- CN202421745080.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-07-23
AI Technical Summary
Due to the lack of reflective structures in existing photovoltaic equipment, a large amount of light is not effectively utilized, reducing the conversion efficiency of light energy to electric energy.
A photovoltaic device with a reflective structure is designed, including a chassis assembly and a reflective assembly. The base frame assembly forms a stable structure through the base block, counterweight block, bracket, connecting rod, reinforcement rod and transverse frame. The reflective assembly reflects the lost light onto the photovoltaic panel through the mounting plate, electric push rod and reflective plate.
By adding a reflective structure, photovoltaic equipment can effectively utilize more light, improve light energy conversion efficiency, increase power generation returns, and provide higher stability and safety in harsh environments.
Smart Images

Figure CN222884628U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of photovoltaic equipment, and particularly relates to a photovoltaic equipment with a reflective structure. Background Art
[0002] Photovoltaic equipment refers to a series of related equipment that uses the solar photovoltaic effect to convert sunlight energy into electrical energy. Current photovoltaic equipment has some shortcomings. First, due to the limited direct absorption of light by photovoltaic panels and the lack of reflective structures, a large amount of light is not effectively utilized, thereby reducing the conversion efficiency of light energy to electrical energy. This is because the light absorption rate of the photovoltaic panel surface cannot meet the requirements, and part of the light will directly penetrate or be reflected and lost on the surface. The conventional response method is to increase the area of the photovoltaic panel to capture more light, but this will increase the equipment cost and installation space requirements, and large-area photovoltaic panels will be more difficult to manufacture, transport and install. It may also place higher requirements on the supporting structure due to the increased weight, increasing construction costs, so it is necessary to propose a new structure to solve the above technical problems. Utility Model Content
[0003] In view of the deficiencies in the prior art, the purpose of the present invention is to provide a photovoltaic device with a reflective structure to solve the problems raised in the above-mentioned background technology.
[0004] The utility model is achieved through the following technical scheme: a photovoltaic device with a reflective structure, comprising: a base frame assembly and a reflective assembly, the base frame assembly comprising: a bottom block, a counterweight block, a bracket, a connecting rod, a reinforcement rod and a transverse frame, the counterweight block is installed on the lower surface of the bottom block, the bracket is installed on the upper surface of the bottom block, the connecting rod is installed on the upper end of the bracket, the reinforcement rod is installed between the upper surface of the counterweight block and the outer surface of the connecting rod, a plurality of transverse frames are evenly installed on the upper surfaces of the plurality of connecting rods, photovoltaic panels one and photovoltaic panels two are installed on the upper surfaces of the transverse frames, a reflective assembly is symmetrically installed on the left and right surfaces of the base frame assembly, and the reflective assembly comprises: a mounting plate, an electric push rod and a reflective board, the upper surface of the mounting plate is slidably hinged with the electric push rod, and the end of the electric push rod away from the mounting plate is hinged to the outer surface of the reflective board.
[0005] As a preferred embodiment, the base block, counterweight block, bracket, connecting rod, reinforcement rod and transverse frame are provided in plurality, a counterweight block is installed at the center position of the lower surface of multiple base blocks, and a bracket is installed at the center position of the upper surface of multiple base blocks on the rear side. The reinforcement rod further strengthens the connection between the bracket, the connecting rod and the counterweight block, making the entire structure more solid. In the face of natural disasters such as strong winds and earthquakes, this stable structure can effectively resist external force impact, reduce the risk of equipment damage, and ensure the safe and stable operation of photovoltaic equipment in harsh environments.
[0006] As a preferred embodiment, a connecting rod is installed at one end of each bracket away from the bottom block, and the end of the connecting rod away from the bracket is connected to the center position of the upper surface of the front bottom block, and a reinforcing rod is installed at the center position of the upper surface of the rear bottom block and the outer surface of the connecting rod, and a plurality of photovoltaic panels 1 and 2 are evenly installed on the rear edge and the front edge of the upper surface of the base frame assembly.
[0007] As a preferred embodiment, a mounting plate is symmetrically installed on the left surface and the right surface of the base frame assembly, the inclination of the mounting plate matches the inclination of the connecting rod, and the front edge and the rear edge of the upper surface of the mounting plate are symmetrically damped and slidably hinged with an electric push rod.
[0008] As a preferred embodiment, a reflector is symmetrically hinged on the left and right surfaces of the base frame assembly, and an aluminum film is installed on the inner surface of the reflector. Since the reflector can reflect light that might otherwise be lost onto the photovoltaic panel, the photovoltaic panel receives more light energy, thereby converting more electrical energy, thereby increasing the overall power generation of the photovoltaic equipment. Under the same lighting conditions and time, the photovoltaic equipment with an adjustable reflector can generate more electricity, thereby increasing the power generation revenue.
[0009] As a preferred embodiment, one end of the electric push rod away from the mounting plate is hinged to the outer surface of the reflector, and the electric push rod is electrically connected to the mains via an electric wire.
[0010] After adopting the above technical scheme, the beneficial effect of the utility model is as follows: by setting a base frame assembly, the base frame assembly includes: a bottom block, a counterweight block, a bracket, a connecting rod, a reinforcement rod and a transverse frame, the counterweight block is installed on the lower surface of the bottom block, the bracket is installed on the upper surface of the bottom block, the connecting rod is installed on the upper end of the bracket, the reinforcement rod is installed between the upper surface of the counterweight block and the outer surface of the connecting rod, the upper surfaces of the multiple connecting rods are evenly installed with multiple transverse frames, and the upper surface of the transverse frame is installed with photovoltaic panel one and photovoltaic panel two. When in use, the bracket serves as a basic supporting component to provide vertical supporting force for the entire photovoltaic structure. The connecting rod connects the multiple brackets together to form an overall frame, which enhances the stability and integrity of the structure. The reinforcement rod further strengthens the connection between the bracket, the connecting rod and the counterweight block, making the entire structure more solid. In the face of natural disasters such as strong winds and earthquakes, this stable structure can effectively resist external force impact, reduce the risk of equipment damage, and ensure the safe and stable operation of photovoltaic equipment in harsh environments.
[0011] By setting a reflective component, a reflective component is symmetrically installed on the left surface and the right surface of the base frame component respectively, and the reflective component includes: a mounting plate, an electric push rod and a reflective board. The upper surface of the mounting plate is slidably hinged with the electric push rod, and the end of the electric push rod away from the mounting plate is hinged to the outer surface of the reflective board. When in use, the reflective board can reflect light that might otherwise be lost onto the photovoltaic panel, so that the photovoltaic panel receives more light energy, thereby converting more electrical energy, thereby increasing the overall power generation of the photovoltaic equipment. Under the same lighting conditions and time, the photovoltaic equipment with an adjustable reflector can generate more electricity, thereby increasing the power generation income. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.
[0013] Figure 1 It is a schematic diagram of a base frame assembly of a photovoltaic device with a reflective structure according to the utility model.
[0014] Figure 2 It is a schematic diagram of a reflective component of a photovoltaic device with a reflective structure according to the utility model.
[0015] In the figure, 100-bottom block, 110-counterweight block, 120-bracket, 130-connecting rod, 140-reinforcement rod, 150-transverse frame;
[0016] 200-photovoltaic panel 1, 210-photovoltaic panel 2;
[0017] 300-mounting plate, 310-reflector, 320-electric push rod. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0019] See also Figure 1 to Figure 2 The utility model provides a technical solution: a photovoltaic device with a reflective structure, comprising: a base frame assembly and a reflective assembly, the base frame assembly comprising: a bottom block 100, a counterweight block 110, a bracket 120, a connecting rod 130, a reinforcing rod 140 and a horizontal frame 150, the counterweight block 110 is installed on the lower surface of the bottom block 100, the bracket 120 is installed on the upper surface of the bottom block 100, the connecting rod 130 is installed on the upper end of the bracket 120, and the reinforcing rod is installed between the upper surface of the counterweight block 110 and the outer surface of the connecting rod 130 140, a plurality of transverse frames 150 are evenly installed on the upper surfaces of the plurality of connecting rods 130, a photovoltaic panel 1 200 and a photovoltaic panel 2 210 are installed on the upper surfaces of the transverse frames 150, a reflective assembly is symmetrically installed on the left and right surfaces of the bottom frame assembly, and the reflective assembly includes: a mounting plate 300, an electric push rod 320 and a reflective board 310, the upper surface of the mounting plate 300 is slidably hinged with the electric push rod 320, and one end of the electric push rod 320 away from the mounting plate 300 is hinged to the outer surface of the reflective board 310.
[0020] See also Figure 1 , Figure 2 As the first embodiment of the utility model: a plurality of bottom blocks 100, counterweight blocks 110, brackets 120, connecting rods 130, reinforcing rods 140 and transverse racks 150 are provided, a counterweight block 110 is installed at the center of the lower surface of the plurality of bottom blocks 100, and a bracket 120 is installed at the center of the upper surface of the plurality of bottom blocks 100 at the rear side;
[0021] A connecting rod 130 is installed at one end of each bracket 120 away from the bottom block 100, and one end of the connecting rod 130 away from the bracket 120 is connected to the center of the upper surface of the front bottom block 100, and a reinforcing rod 140 is installed at the upper surface of the rear bottom block 100 and the center of the outer surface of the connecting rod 130, and a plurality of photovoltaic panels 1 200 and photovoltaic panels 2 210 are evenly installed on the rear edge and the front edge of the upper surface of the bottom frame assembly;
[0022] When in use, the bracket 120 serves as a basic supporting component, providing longitudinal support for the entire photovoltaic structure. The connecting rod 130 connects multiple brackets 120 together to form an overall frame, thereby enhancing the stability and integrity of the structure. The reinforcement rod 140 further strengthens the connection between the bracket 120 and the connecting rod 130, making the entire structure more solid. When facing natural disasters such as strong winds and earthquakes, this stable structure can effectively resist external force impacts and ensure the safe and stable operation of photovoltaic equipment in harsh environments. At the same time, the setting of the counterweight 110 increases the overall weight of the entire base frame assembly and the photovoltaic panels installed thereon, so that the equipment can better resist the invasion of strong winds in outdoor environments. Even in windy weather conditions, it is not easy to tip over or shift, thereby reducing the risk of equipment damage due to wind disasters.
[0023] See also Figure 1 , Figure 2 As a second embodiment of the present utility model: a mounting plate 300 is symmetrically mounted on the left and right surfaces of the chassis assembly, the inclination of the mounting plate 300 matches the inclination of the connecting rod 130, and an electric push rod 320 is symmetrically hinged to the front and rear edges of the upper surface of the mounting plate 300 in a damping sliding manner;
[0024] A reflector 310 is symmetrically hinged on the left and right surfaces of the bottom frame assembly, and an aluminum film is installed on the inner surface of the reflector 310;
[0025] One end of the electric push rod 320 away from the mounting plate 300 is hinged to the outer surface of the reflector 310, and the electric push rod 320 is electrically connected to the mains through an electric wire;
[0026] When the user needs to use the reflector 310, the user can start the electric push rod 320 hinged by the damping sliding on the upper surface of the mounting plate 300 to extend the telescopic rod of the electric push rod 320, so as to adjust the angle of the hinged reflector 310. The user can select the extended length of the telescopic rod of the electric push rod 320 according to the actual use situation (during the day, as the position of the sun changes, the user can adjust the angle of the reflector 310 by extending and retracting the electric push rod 320 to ensure that more light is reflected to the photovoltaic device, thereby increasing the amount of light received by the photovoltaic panel. For example, when the sun angle is low in the morning and evening, the electric push rod 320 can be extended to adjust the angle of the reflector 310. 20 is extended or shortened to tilt the reflector 310, so that more lateral light is reflected to the photovoltaic panel. When the sun is at a high altitude at noon, the angle of the reflector 310 is adjusted to better reflect the light to the photovoltaic panel. This is a prior art, and users can adjust it according to the actual situation. It will not be elaborated here. Since the reflector 310 can reflect the light that might otherwise be lost to the photovoltaic panel, the photovoltaic panel receives more light energy, thereby converting more electrical energy, thereby increasing the overall power generation of the photovoltaic device. Under the same lighting conditions and time, the photovoltaic device with the adjustable reflector 310 can generate more electricity, thereby increasing the power generation income.
[0027] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A photovoltaic device with a reflective structure, comprising: A base frame assembly and a reflective assembly, characterized in that the base frame assembly comprises: a base block (100), a counterweight block (110), a bracket (120), a connecting rod (130), a reinforcing rod (140) and a transverse frame (50), and the counterweight block (110) is installed on the lower surface of the base block (100); A bracket (120) is installed on the upper surface of the bottom block (100), a connecting rod (130) is installed on the upper end of the bracket (120), a reinforcing rod (140) is installed between the upper surface of the counterweight block (110) and the outer surface of the connecting rod (130), and a plurality of transverse frames (50) are evenly installed on the upper surfaces of a plurality of connecting rods (130); Photovoltaic panel 1 (200) and photovoltaic panel 2 (210) are mounted on the upper surface of the transverse frame (50); a reflective component is symmetrically mounted on the left and right surfaces of the bottom frame component, respectively; the reflective component comprises: a mounting plate (300), an electric push rod (320) and a reflective plate (310); the upper surface of the mounting plate (300) is slidably hinged with the electric push rod (320); one end of the electric push rod (320) away from the mounting plate (300) is hinged to the outer surface of the reflective plate (310).
2. A photovoltaic device with a reflective structure as claimed in claim 1, characterized in that: The bottom block (100), the counterweight block (110), the bracket (120), the connecting rod (130), the reinforcing rod (140) and the transverse frame (50) are provided in plurality, a counterweight block (110) is installed at the center position of the lower surface of the plurality of bottom blocks (100), and a bracket (120) is installed at the center position of the upper surface of the plurality of bottom blocks (100) at the rear side.
3. A photovoltaic device with a reflective structure as claimed in claim 2, characterized in that: A connecting rod (130) is installed at one end of each bracket (120) away from the bottom block (100); the end of the connecting rod (130) away from the bracket (120) is connected to the center position of the upper surface of the front bottom block (100); a reinforcing rod (140) is installed at the center position of the upper surface of the rear bottom block (100) and the outer surface of the connecting rod (130); and a plurality of photovoltaic panels 1 (200) and photovoltaic panels 2 (210) are evenly installed on the rear edge and the front edge of the upper surface of the bottom frame assembly.
4. A photovoltaic device with a reflective structure as claimed in claim 3, characterized in that: A mounting plate (300) is symmetrically mounted on the left and right surfaces of the chassis assembly, the inclination of the mounting plate (300) matches the inclination of the connecting rod (130), and an electric push rod (320) is symmetrically hinged in a damping sliding manner on the front and rear edges of the upper surface of the mounting plate (300).
5. A photovoltaic device with a reflective structure as claimed in claim 4, characterized in that: A reflective plate (310) is symmetrically hinged to the left and right surfaces of the bottom frame assembly, respectively, and an aluminum-plated film is installed on the inner surface of the reflective plate (310).
6. A photovoltaic device with a reflective structure as claimed in claim 5, characterized in that: One end of the electric push rod (320) away from the mounting plate (300) is hinged to the outer surface of the reflective plate (310), and the electric push rod (320) is electrically connected to the mains via an electric wire.