New energy power photovoltaic integrated device
Patent Information
- Application Number
- CN202522306624.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-31
- Publication Date
- 2026-10-09
- Estimated Expiration
- 2035-10-31
AI Technical Summary
[0005]本实用新型的目的在于提供一种新能源电力光伏集成装置,以解决上述背景技术提出光伏板上温度过高,影响光伏板的正常吸收能力,导致光伏板的效率会下降的问题
1、通过设置的底座、支架结构、光伏板和降温结构,启动气泵,配合设置的吸气管和排气管能够将气流从鼓风件一和鼓风件二吹出,能够对光伏板的底部和表面进行鼓吹,实现对光伏板的降温,有助于光伏板对太阳光能的吸收,从而提高转换效率。
Smart Images

Figure CN224843670U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic integration technology, specifically a new energy power photovoltaic integration device. Background Technology
[0002] New energy power photovoltaic integrated devices (also known as photovoltaic power generation systems) typically include components such as solar panels, inverters, control systems, and battery energy storage. These systems are widely used in solar power generation, converting solar energy into electrical energy to meet the power needs of residential, commercial, and industrial locations. The design and installation of photovoltaic systems require consideration of multiple factors to ensure their efficient operation and long-term use.
[0003] A new energy power photovoltaic integrated device, such as the one disclosed in announcement number CN221652489U, includes a base plate, an integrated component fixedly connected to the top of the base plate, a fixed frame fixedly connected to one side of the top of the base plate, a bottom splicing component connected to the top of the fixed frame, a middle splicing component connected to the top of the bottom splicing component, a top splicing component connected to the top of the middle splicing component, protrusions fixedly connected to both ends of the top of the splicing frame, and slots opened at both ends of the bottom of the splicing frame. The surface of the protrusions engages with the inner cavity of the slots. A photovoltaic power generation panel is engaged on the front of the splicing frame. A storage battery is fixedly installed at the bottom of the partition, and a charge / discharge controller is fixedly installed on the top of the storage battery. This new energy power photovoltaic integrated device integrates the storage battery, charge / discharge controller, and photovoltaic power generation panel together, making it convenient to carry outdoors. By hanging the photovoltaic power generation panel facing the sunlight instead of placing it on the ground, the power generation efficiency is improved.
[0004] The aforementioned patent proposes that the battery, charge / discharge controller, and photovoltaic panel can be integrated together for easy outdoor use. However, during the use of the photovoltaic integrated device, the photovoltaic panel is used outdoors. When sunlight continuously shines on the photovoltaic panel, the temperature on the photovoltaic panel becomes too high, affecting the normal absorption capacity of the photovoltaic panel and causing the efficiency of the photovoltaic panel to decrease. Utility Model Content
[0005] The purpose of this invention is to provide a new energy power photovoltaic integrated device to solve the problem mentioned in the background art, which is that the temperature on the photovoltaic panel is too high, affecting the normal absorption capacity of the photovoltaic panel and causing the efficiency of the photovoltaic panel to decrease.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a new energy power photovoltaic integrated device, including a base and a support structure fixedly installed on the upper end of the base. A photovoltaic panel is installed on the upper end of the support structure. A cooling structure is also installed on the base. The cooling structure is located on one side of the photovoltaic panel. The cooling structure blows air onto both the upper and lower surfaces of the photovoltaic panel, using airflow to cool the photovoltaic panel and dissipate the heat generated during the photovoltaic panel's power generation process. The cooling structure includes an auxiliary base and an air pump installed on the upper end of the auxiliary base. The two ends of the air pump are connected to an intake pipe and an exhaust pipe, respectively. A valve is installed on the exhaust pipe. The end of the exhaust pipe away from the air pump is connected to a blower component one, which is located below the photovoltaic panel. A blower component two is also connected to the exhaust pipe, which is located at one end of the photovoltaic panel. An mounting component is also installed on the support structure, which is located on one side of the blower component two. The blower component two is installed on the photovoltaic panel with the help of the mounting component. When the air pump is started, the intake and exhaust pipes can blow airflow from the blower component one and the blower component two, which can blow air onto the bottom and surface of the photovoltaic panel.
[0007] Preferably, the support structure includes a base block and a support rod fixedly installed on the upper end of the base block. A connecting rod 1 is installed on the upper end of the support rod, and a connecting rod 2 is installed on the upper end of the connecting rod 1. The photovoltaic panel can be supported by the support rod, connecting rod 1, and connecting rod 2.
[0008] Preferably, the surface of the photovoltaic panel is uniformly coated with a reflective coating, and the photovoltaic panel is also equipped with a first clip and a second clip, which, together with screws, can fix the position of the photovoltaic panel.
[0009] Preferably, the blower includes a connecting pipe and a diverter pipe evenly distributed on the connecting pipe. An air diffuser is installed at the upper end of the diverter pipe. Through the cooperation of the connecting pipe, the diverter pipe and the air diffuser, air can be blown towards the bottom of the photovoltaic panel.
[0010] Preferably, the second blower includes a connecting pipe and a jet pipe connected to one end of the connecting pipe. Several nozzles are evenly distributed on one side of the jet pipe. The nozzles are located at one end of the photovoltaic panel and can blow gas onto the surface of the photovoltaic panel.
[0011] Preferably, the mounting component includes a fixing rod and a mounting plate mounted on the fixing rod. The mounting plate is bent, with the other end of the mounting plate located outside the jet pipe. Bolts are also threaded onto the mounting plate, and the jet pipe can be supported by the fixing rod and the mounting plate.
[0012] Preferably, the end of the suction pipe away from the air pump is connected to a moisture absorption box, a connecting pipe is connected to the side wall of the moisture absorption box, and a filter cover is threaded onto the connecting pipe. The filter cover is used to filter the gas, and a moisture absorption plate is inserted into the moisture absorption box to absorb the moisture in the gas.
[0013] Compared with the prior art, the beneficial effects of this utility model are: 1. By setting up a base, support structure, photovoltaic panel, and cooling structure, the air pump is started. With the help of the set air intake and exhaust pipes, airflow can be blown out from blower component one and blower component two. This can blow air onto the bottom and surface of the photovoltaic panel, thereby cooling the photovoltaic panel and helping the photovoltaic panel absorb solar energy, thus improving the conversion efficiency.
[0014] 2. By setting up a moisture absorption box and moisture absorption plate, the moisture absorption plate is installed in the moisture absorption box by plugging in. When gas is drawn in, it can absorb the moisture in the gas, thereby drying the gas, reducing the impact on the photovoltaic panel, and helping to improve the service life of the photovoltaic panel. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model; Figure 2 This is a three-dimensional structural diagram of the cooling structure of this utility model; Figure 3 This is a three-dimensional structural diagram of the support structure of this utility model; Figure 4 For the present utility model Figure 1 Enlarged 3D structural diagram at point A.
[0016] In the diagram: 1. Base; 2. Support structure; 21. Base block; 22. Support rod; 23. Connecting rod one; 24. Connecting rod two; 3. Photovoltaic panel; 31. Reflective coating; 32. Locking block one; 33. Locking block two; 4. Cooling structure; 41. Auxiliary seat; 42. Air pump; 43. Suction pipe; 431. Moisture absorption box; 432. Connecting pipe; 433. Filter cover; 434. Moisture absorption plate; 44. Exhaust pipe; 441. Valve; 45. Blower component one; 451. Connecting pipe; 452. Diverter pipe; 453. Expansion hood; 46. Mounting component; 461. Fixing rod; 462. Mounting plate; 463. Bolt; 47. Blower component two; 471. Connecting pipe; 472. Jet pipe; 473. Nozzle. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0018] Example 1: Please refer to Figures 1-4A new energy power photovoltaic integrated device includes a base 1, a support structure 2, a photovoltaic panel 3, and a cooling structure 4. The support structure 2 is located at the upper end of the base 1, the photovoltaic panel 3 is located at the upper end of the support structure 2, and the cooling structure 4 is placed on the base 1 and located on one side of the photovoltaic panel 3. The cooling structure 4 blows air onto the upper and lower surfaces of the photovoltaic panel 3, using airflow to cool the photovoltaic panel 3 and dissipate the heat generated during the power generation process of the photovoltaic panel 3, which helps to ensure the normal operation of the photovoltaic panel 3. The cooling structure 4 includes an auxiliary base 41 and an air pump 42 installed on the upper end of the auxiliary base 41. The two ends of the air pump 42 are connected to an air intake pipe 43 and an exhaust pipe 44, respectively. A valve 441 is installed on the exhaust pipe 44. The end of the exhaust pipe 44 away from the air pump 42 is connected to a blower component 45, which is located below the photovoltaic panel 3. A second blower component 47 is also connected to the exhaust pipe 44, which is located at one end of the photovoltaic panel 3. An installation component 46 is also installed on the support structure 2, which is located on one side of the second blower component 47. The second blower component 47 is installed on the photovoltaic panel 3 with the help of the installation component 46. When the air pump 42 is started, the air intake pipe 43 and the exhaust pipe 44 can blow air out from the first blower component 45 and the second blower component 47, which can blow air onto the bottom and surface of the photovoltaic panel 3, thereby cooling the photovoltaic panel 3 and helping the photovoltaic panel 3 absorb solar energy.
[0019] The support structure 2 includes a base block 21 and a support rod 22 fixedly installed on the upper end of the base block 21. A connecting rod 23 is installed on the upper end of the support rod 22, and a connecting rod 24 is installed on the upper end of the connecting rod 23. The photovoltaic panel 3 can be supported by the support rod 22, the connecting rod 23 and the connecting rod 24.
[0020] The surface of the photovoltaic panel 3 is uniformly coated with a reflective coating 31. The photovoltaic panel 3 is also equipped with a first clip 32 and a second clip 33. With the cooperation of the first clip 32, the second clip 33 and screws, the position of the photovoltaic panel 3 can be fixed so that the photovoltaic panel 3 is placed on the support structure 2.
[0021] The blower component 45 includes a connecting pipe 451 and a diversion pipe 452 evenly distributed on the connecting pipe 451. An air diffuser 453 is installed at the upper end of the diversion pipe 452. The air diffuser 453 is sleeved on the outside of the connecting rod 24 and is located below the photovoltaic panel 3. Through the cooperation of the connecting pipe 451, the diversion pipe 452 and the air diffuser 453, air can be blown towards the bottom of the photovoltaic panel 3.
[0022] The blower component 47 includes a connecting pipe 471 and a jet pipe 472 connected to one end of the connecting pipe 471. Several nozzles 473 are evenly distributed on one side of the jet pipe 472. The nozzles 473 are located at one end of the photovoltaic panel 3 and can blow gas onto the surface of the photovoltaic panel 3 to cool the surface of the photovoltaic panel 3.
[0023] Mounting component 46 includes a fixing rod 461 and a mounting plate 462 mounted on the fixing rod 461. The mounting plate 462 is bent, and the other end of the mounting plate 462 is located outside the jet pipe 472. Bolts 463 are also threaded onto the mounting plate 462. The jet pipe 472 can be supported by the fixing rod 461 and the mounting plate 462.
[0024] In this embodiment: the reflective coating 31 on the surface of the photovoltaic panel 3 can reduce heat absorption, which helps to lower the temperature of the photovoltaic panel 3. The air pump 42 is activated, and the air intake pipe 43 and exhaust pipe 44 are set to allow airflow to enter the connecting pipe 451 and the connecting pipe 471 respectively. The gas can be blown towards the bottom of the photovoltaic panel 3 through the diversion pipe 452 and the air diffuser 453, and blown towards the surface of the photovoltaic panel 3 through the jet pipe 472 and the nozzle 473. This can achieve the blowing of air onto the bottom and surface of the photovoltaic panel 3, thereby cooling the photovoltaic panel 3 and improving the absorption of solar energy by the photovoltaic panel 3. The overall performance is better. In addition, the nozzle 473 can also blow away impurities on the surface of the photovoltaic panel 3, reducing the accumulation of impurities.
[0025] Example 2: This example is an improvement on Example 1. For details, please refer to [link / reference]. Figure 2 The end of the suction pipe 43 away from the air pump 42 is connected to a moisture absorption box 431. A connecting pipe 432 is connected to the side wall of the moisture absorption box 431. A filter cover 433 is also threaded onto the connecting pipe 432. The filter cover 433 is used to filter the gas. A moisture absorption plate 434 is inserted into the moisture absorption box 431. The moisture absorption plate 434 is used to absorb moisture in the gas. After a period of use, the moisture absorption plate 434 can be removed and replaced to ensure the absorption of moisture from the gas.
[0026] In this embodiment: when the air pump 42 is started, the gas enters the moisture absorption box 431 through the connecting pipe 432. At this time, the moisture is absorbed by the moisture absorption plate 434 inserted in the moisture absorption box 431, so that the gas entering the suction pipe 43 is relatively dry. When the photovoltaic panel 3 is blown with the blower 1 45 and blower 2 47, the photovoltaic panel 3 can be kept dry, reducing corrosion and improving service life.
[0027] All electrical components mentioned in this article are connected to an external main controller and 220V AC mains power, and the main controller can be a conventional known device such as a computer that can control it.
[0028] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0029] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A new energy power photovoltaic integrated device, comprising a base (1) and a support structure (2) fixedly installed on the upper end of the base (1), wherein a photovoltaic panel (3) is installed on the upper end of the support structure (2), characterized in that: A cooling structure (4) is also installed on the base (1), and the cooling structure (4) is located on one side of the photovoltaic panel (3); The cooling structure (4) includes an auxiliary seat (41) and an air pump (42) installed on the upper end of the auxiliary seat (41). The two ends of the air pump (42) are connected to an air intake pipe (43) and an exhaust pipe (44) respectively. A valve (441) is installed on the exhaust pipe (44). The end of the exhaust pipe (44) away from the air pump (42) is connected to a blower (45). The blower (45) is located below the photovoltaic panel (3). The exhaust pipe (44) is also connected to a blower (47). The blower (47) is located at one end of the photovoltaic panel (3). An installation component (46) is also installed on the support structure (2). The installation component (46) is located on one side of the blower (47). The blower (47) is installed on the photovoltaic panel (3) with the help of the installation component (46).
2. The new energy power photovoltaic integrated device according to claim 1, characterized in that: The support structure (2) includes a base block (21) and a support rod (22) fixedly installed on the upper end of the base block (21). A connecting rod (23) is installed on the upper end of the support rod (22), and a connecting rod (24) is installed on the upper end of the connecting rod (23).
3. The new energy power photovoltaic integrated device according to claim 1, characterized in that: The surface of the photovoltaic panel (3) is uniformly coated with a reflective coating (31), and the photovoltaic panel (3) is also equipped with a first card block (32) and a second card block (33).
4. A new energy power photovoltaic integrated device according to claim 1, characterized in that: The blower component (45) includes a connecting pipe (451) and a diversion pipe (452) evenly distributed on the connecting pipe (451). An air diffuser hood (453) is installed at the upper end of the diversion pipe (452).
5. A new energy power photovoltaic integrated device according to claim 3, characterized in that: The blower component 2 (47) includes a connecting pipe (471) and a jet pipe (472) connected to one end of the connecting pipe (471). Several nozzles (473) are evenly distributed on one side of the jet pipe (472), and the nozzles (473) are located at one end of the photovoltaic panel (3).
6. A new energy power photovoltaic integrated device according to claim 5, characterized in that: The mounting component (46) includes a fixing rod (461) and a mounting plate (462) mounted on the fixing rod (461). The mounting plate (462) is bent and the other end of the mounting plate (462) is located outside the jet pipe (472). Bolts (463) are also threaded onto the mounting plate (462).
7. A new energy power photovoltaic integrated device according to claim 1, characterized in that: The end of the suction pipe (43) away from the air pump (42) is connected to a moisture absorption box (431). A connecting pipe (432) is connected to the side wall of the moisture absorption box (431). A filter cover (433) is also threaded onto the connecting pipe (432). The filter cover (433) is used to filter the gas. A moisture absorption plate (434) is inserted into the moisture absorption box (431).