Photovoltaic and photo-thermal integrated equipment
By designing a transposition device and linkage components, the photovoltaic-thermal integrated equipment can quickly switch and combine between photovoltaic and solar thermal modes, solving the problem of low efficiency of existing equipment when sunlight is insufficient, improving the operating efficiency of photovoltaic and solar thermal systems, and simplifying the operation process of the equipment.
Patent Information
- Application Number
- CN202610127678.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-29
- Publication Date
- 2026-03-06
AI Technical Summary
Existing photovoltaic-thermal integrated equipment cannot reach the predetermined temperature when there is insufficient sunlight, the photovoltaic equipment is inefficient, and the switching operation between photovoltaic and solar thermal equipment is cumbersome, making it difficult to simultaneously improve the operating efficiency of solar thermal and photovoltaic equipment and to quickly switch between combined modes.
The position of the solar thermal device and the photovoltaic device can be interchanged by using a transposition device and linkage components. Through the design of the arc-shaped light-transmitting cover and the reflective particle suspension, combined with the circulating liquid flow in the photovoltaic and solar thermal modes, the photovoltaic power generation and solar thermal energy storage can be carried out simultaneously. The mode conversion can be achieved by quickly disassembling and installing components.
It achieves simultaneous improvement in the operating efficiency of solar thermal and photovoltaic systems, enables rapid switching between photovoltaic and solar thermal combination modes, and facilitates the quick disassembly and replacement of solar panels, thereby improving the utilization efficiency of solar energy.
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Figure CN121618935A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of photovoltaic and photothermal technology, and in particular to an integrated photovoltaic and photothermal device. Background Technology
[0002] Traditional photovoltaic panels generate a large amount of waste heat during power generation, which leads to an increase in their own temperature and a decrease in power generation efficiency. The single solar thermal mode only considers the utilization of thermal energy but ignores the utilization of solar energy. Neither of the two single modes can maximize the utilization of solar energy. Therefore, photovoltaic and solar thermal integrated equipment is needed to maximize the utilization of solar energy.
[0003] Existing photovoltaic (PV) and solar thermal integrated equipment generally operates in a simultaneous PV and solar thermal mode. While this mode maximizes solar energy utilization during periods of abundant sunlight, it can prevent the solar thermal equipment from reaching the desired temperature in low-sunlight conditions. Furthermore, the PV equipment may experience reduced efficiency due to shading by the solar thermal equipment. Current technologies also include modes that allow switching between PV and solar thermal modes, but this requires extensive rotation of both devices, making operation cumbersome. Therefore, a new PV-solar thermal integrated equipment is needed that can simultaneously improve the efficiency of both solar thermal and PV operations, quickly switch between PV and solar thermal modes, and facilitate rapid disassembly and replacement of solar panels, thus addressing the shortcomings of existing PV-solar thermal integrated equipment. Summary of the Invention
[0004] The purpose of this invention is to provide a photovoltaic-thermal integrated device, which aims to solve the technical problems existing in the prior art, such as how to simultaneously improve the operating efficiency of solar thermal and photovoltaic, how to quickly switch between the combination modes of photovoltaic and solar thermal, and how to facilitate the quick disassembly and replacement of solar panels.
[0005] To address the aforementioned technical problems, the present invention adopts the following technical solution: a photovoltaic-thermal integrated device, comprising a rotation device, a support device, a solar thermal device, a photovoltaic device, and a linkage component; the rotation device is slidably installed on the side of the solar thermal device in the lateral direction; the support device is fixedly installed on the ground; the lower end of the support device is connected to an external heat storage device through a pipe; both ends of the solar thermal device are rotatably connected to the upper ends of the two support devices respectively; the photovoltaic device is fixedly installed on the upper end of the solar thermal device; both ends of the linkage component are inserted into the sides of the two solar thermal devices respectively; the solar thermal device includes a solar thermal rotating shaft, an arc-shaped light-transmitting cover, a light-transmitting component, and a heat collection component. The two ends of the solar thermal shaft are rotatably connected to the upper ends of two support devices; the arc-shaped light-transmitting cover is fixedly installed on the periphery of the solar thermal shaft; the interior of the arc-shaped light-transmitting cover is an arc-shaped hollow structure with an average thickness of 0.5cm; the interior of the arc-shaped light-transmitting cover stores a suspension containing reflective particles; the light-transmitting component is fixedly installed at the upper end of the arc-shaped light-transmitting cover; the heat collection component is inserted at the upper end of the light-transmitting component; in the photovoltaic solar thermal mode, when the suspension containing reflective particles in the arc-shaped light-transmitting cover is extracted, sunlight will pass through the arc-shaped light-transmitting cover, the light-transmitting component, and the heat collection component to irradiate the photovoltaic device, thereby realizing the simultaneous operation of solar thermal energy storage and photovoltaic power generation.
[0006] Furthermore, the solar thermal device also includes a locking bolt, a heat-collecting cylinder, and a convex lens; the locking bolt is fixedly installed on the side of the light-transmitting component; the heat-collecting cylinder is fixedly installed at the lower end of the arc-shaped light-transmitting cover; the heat-collecting cylinder contains circulating liquid; the convex lens is fixedly installed at the lower end of the heat-collecting cylinder; in photovoltaic solar thermal mode, when the suspension containing reflective particles is re-injected into the arc-shaped light-transmitting cover, the arc-shaped light-transmitting cover will reflect sunlight to the heat-collecting cylinder, thereby achieving the function of heating the circulating liquid in the heat-collecting cylinder.
[0007] Furthermore, the light-transmitting component includes a light-transmitting back panel and a heat-conducting cylinder; the light-transmitting back panel is fixedly installed on the upper end of the arc-shaped light-transmitting cover; the locking bolts are fixedly installed on the side of the light-transmitting back panel; the heat-conducting cylinder is fixedly installed on the upper end of the light-transmitting back panel; the internal space of the heat-conducting cylinder is connected to the internal space of the heat-concentrating cylinder.
[0008] Furthermore, the heat collection assembly includes a heat collection transparent plate, a heat collection transparent box, a heat collection capillary tube, and a flexible plug; the heat collection transparent plate is fixedly installed on the upper end of the light-transmitting back plate; the heat collection transparent box is fixedly installed on the lower end of the heat collection transparent plate; the heat collection transparent box is inserted between two heat-conducting cylinders; the heat collection capillary tube is fixed inside the heat collection transparent box; the flexible plug is fixedly installed on the side of the heat collection transparent box; the flexible plug is also connected to the heat collection capillary tube; the flexible plug is inserted into the heat-conducting cylinder in the lateral direction.
[0009] Furthermore, the photovoltaic device includes a locking nut, a transposition component, a transducer component, a locking clamp, a locking bolt, a photovoltaic base, a transposition slider, and a transposition rail; the locking nut is rotatably connected to the upper end of the photovoltaic base; both ends of the transposition component are rotatably connected to the sides of the two transposition sliders respectively; the transducer component is fixedly installed inside the transposition component; the locking clamp is rotatably connected to the inside of the photovoltaic base; the locking bolt is tightened at the upper end of the locking clamp; the photovoltaic base is fixedly installed on the upper end of the heat collection transparent plate by the locking nut and the locking bolt; the transposition slider is slidably installed on the side of the transposition rail; the transposition rail is fixedly installed on the inner side of the photovoltaic base.
[0010] Furthermore, the transposition assembly includes a transposition bracket, a transposition base plate, a transposition bolt, a transposition locking hole, a transposition pull plate, and a transposition groove; the two sides of the transposition bracket are rotatably connected to the sides of the two transposition sliders respectively; the transposition base plate is fixedly installed inside the transposition bracket; the transposition bolt is tightened at the upper end of the transposition bracket and inside the transposition locking hole; the transposition locking hole is fixedly installed at the upper end of the transposition pull plate; the transposition pull plate is slidably installed on the side of the transposition bracket; and the transposition groove is fixedly installed on the upper surface of the transposition base plate.
[0011] Furthermore, the energy transducer assembly includes an energy transducer bracket, a solar panel, an energy transducer rack, an energy transducer chassis, a three-bladed impeller, and an energy transducer clamping plate; the solar panel is fixedly mounted on the upper surface of the energy transducer bracket; the energy transducer rack is slidably mounted inside the energy transducer bracket; the energy transducer rack is also fixedly connected to a transducer pull plate; the energy transducer chassis is fixedly mounted on the lower end of the energy transducer bracket; the three-bladed impeller is rotatably connected to the lower end of the energy transducer chassis; a gear is provided on the upper end of the three-bladed impeller; the gear on the upper end of the three-bladed impeller and the energy transducer rack form a gear and rack pair; the energy transducer clamping plate is slidably mounted on the lower end of the energy transducer chassis along the radial direction of the energy transducer chassis.
[0012] Furthermore, the indexing device includes an indexing handle, an indexing disk, a first locking block, and an indexing slide column; the indexing handle is fixedly installed on the side of the indexing disk; the indexing slide column is fixedly installed on the side of the indexing disk; the first locking block is fixedly installed on the side of the indexing disk; and the indexing slide column is slidably installed on the side of the photothermal rotating shaft in the lateral direction.
[0013] Furthermore, the support device includes a light intensity detector, a support frame, a support groove, and a support column; the light intensity detector is fixedly installed at the lower end of the support frame; the upper end of the support frame is rotatably connected to the periphery of the photothermal rotating shaft; the support frame is fixedly installed at the upper end of the support column; the support groove is fixedly installed on the side of the support frame; the support groove also engages with the first locking block; the support column is fixedly installed on the ground; the lower end of the support column is connected to an external heat storage device through a pipe; the internal space of the heat collection cylinder and the internal space of the support column are connected through a flexible hose.
[0014] Furthermore, the linkage assembly includes a linkage sleeve, a second locking block, a linkage shaft, and a linkage connector; the two ends of the linkage sleeve respectively contact the sides of the two support frames; the second locking block is fixedly installed at both ends of the linkage sleeve; the second locking block also engages with the support groove; the linkage shaft is rotatably connected inside the linkage sleeve; the two linkage connectors are fixedly installed at both ends of the linkage shaft; the linkage connector is inserted into the inside of the photothermal shaft.
[0015] The beneficial effects of this invention compared with the prior art are: (1) The rotating disk on the rotating device is rotated manually or by using a motor to make the positions of the solar thermal device and the photovoltaic device interchange. At this time, the photovoltaic device is located at the lower end of the photovoltaic device, thereby realizing the conversion from photovoltaic mode to solar thermal mode. Then, the locking bolt on the locking clamp is unscrewed, and the locking clamp is manually rotated so that the switching slider can slide on the side of the switching slide rail. Then, the switching component and the switching slider are pulled out together, and the switching component is manually flipped to flip the orientation of the energy conversion component, thereby realizing the conversion from solar thermal mode to photovoltaic solar thermal mode. (2) In photovoltaic mode, the circulating liquid is first supplied to the heat collection cylinder, and then supplied to the heat collection capillary in the heat collection component and the heat conduction cylinder in the light transmission component. When sunlight shines on the solar panel on the energy conversion component, excess heat is generated, and the excess heat is transferred to the circulating liquid in the heat collection capillary. Then, the circulating liquid carries away the excess heat to realize the cooling function. (3) Manually unscrew the transposition bolts on the transposition assembly from the transposition clip holes. Then, the transposition pull plate drives the transducer rack to slide in the transposition base plate. The transducer rack drives the three-lobe wheel to rotate. The three-lobe wheel drives the transducer clip plate to extend outward on the transducer chassis to realize the clipping function between the transducer chassis and the transposition base plate, thereby realizing the quick installation function of the transducer assembly. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall assembly structure in the working state of an embodiment of the present invention.
[0017] Figure 2 This is a schematic diagram of the transposition device of the present invention.
[0018] Figure 3 This is a schematic diagram of the support device of the present invention.
[0019] Figure 4 This is a schematic diagram of the structure of the photothermal device of the present invention.
[0020] Figure 5 This is a schematic diagram of the structure of the light-transmitting component of the present invention.
[0021] Figure 6 This is a schematic diagram of the structure of the heat collection component of the present invention.
[0022] Figure 7 This is a schematic diagram of the photovoltaic device of the present invention.
[0023] Figure 8 This is a schematic diagram of the transposition component of the present invention. Figure 1 .
[0024] Figure 9 This is a schematic diagram of the transposition component of the present invention. Figure 2 .
[0025] Figure 10 This is a schematic diagram of the transducer component of the present invention. Figure 1 .
[0026] Figure 11 This is a schematic diagram of the transducer component of the present invention. Figure 2 .
[0027] Figure 12 This is a schematic diagram of the linkage component of the present invention.
[0028] In the diagram: 1-Inversion device; 2-Support device; 3-Photothermal device; 4-Photovoltaic device; 5-Linkage component; 101-Inversion handle; 102-Inversion disk; 103-First locking block; 104-Inversion slide column; 201-Light intensity detector; 202-Support frame; 203-Support groove; 204-Support column; 301-Photothermal rotating shaft; 302-Arc-shaped light-transmitting cover; 303-Light-transmitting component; 304-Heat-collecting component; 305-Locking bolt; 306-Heat-collecting cylinder; 307-Convex lens; 308-Light-transmitting back plate; 309-Heat-conducting cylinder; 310-Heat-collecting transparent plate; 311-Heat-collecting transparent box; 312-Heat-collecting capillary tube; 313 - Flexible plug; 401- Locking nut; 402- Transposition component; 403- Transducer component; 404- Locking clamp; 405- Locking bolt; 406- Photovoltaic base; 407- Transposition slider; 408- Transposition slide rail; 409- Transposition bracket; 410- Transposition base plate; 411- Transposition bolt; 412- Transposition locking hole; 413- Transposition pull plate; 414- Transposition groove; 415- Transducer bracket; 416- Solar panel; 417- Transducer rack; 418- Transducer chassis; 419- Three-leaf impeller; 420- Transducer locking plate; 501- Linkage sleeve; 502- Second locking block; 503- Linkage shaft; 504- Linkage connector. Detailed Implementation
[0029] The technical solution of the present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0030] The accompanying drawings are for illustrative purposes only and are schematic diagrams, not actual pictures. They should not be construed as limiting the invention. To better illustrate the embodiments of the invention, some parts in the drawings may be omitted, enlarged, or reduced, and do not represent the actual product dimensions. It is understandable to those skilled in the art that some well-known structures and their descriptions may be omitted in the drawings.
[0031] Figures 1 to 12 This is a preferred embodiment of the present invention.
[0032] like Figure 1 As shown, the rotation device 1 is slidably installed on the side of the solar thermal device 3 in the lateral direction; the support device 2 is fixedly installed on the ground; the lower end of the support device 2 is connected to an external heat storage device through a pipe; the two ends of the solar thermal device 3 are respectively rotatably connected to the upper ends of the two support devices 2; the photovoltaic device 4 is fixedly installed on the upper end of the solar thermal device 3; the two ends of the linkage component 5 are respectively inserted into the sides of the two solar thermal devices 3; the solar thermal device 3 includes a solar thermal rotating shaft 301, an arc-shaped light-transmitting cover 302, a light-transmitting component 303, and a heat collection component 304; the two ends of the solar thermal rotating shaft 301 are respectively rotatably connected to the upper ends of the two support devices 2; the arc-shaped light-transmitting cover 302 is fixedly installed on the ground; the lower end of the support device 2 is connected to an external heat storage device through a pipe; the two ends of the solar thermal device 301 are respectively rotatably connected to the upper ends of the two support devices 2; the two ends of the arc-shaped light-transmitting cover 302 are fixedly installed on the ground; the lower end of the support device 2 is connected to an external heat storage device through a pipe; the lower end of the solar thermal device 301 is respectively rotatably connected to the upper ends of the two support devices 2; the lower end of the support device 302 is fixedly installed on the ground; the lower end of the support device 304 is connected to the upper ends of the two support devices 2; the lower end of the support device 304 is fixedly installed on the ground; the lower end of the support device 305 ... The light-transmitting component 302 is fixedly installed on the periphery of the solar thermal rotating shaft 301; the interior of the arc-shaped light-transmitting cover 302 is an arc-shaped hollow structure with an average thickness of 0.5 cm; the interior of the arc-shaped light-transmitting cover 302 stores a suspension containing reflective particles; the light-transmitting component 303 is fixedly installed on the upper end of the arc-shaped light-transmitting cover 302; the heat collection component 304 is inserted into the upper end of the light-transmitting component 303; in the photovoltaic solar thermal mode, when the suspension containing reflective particles in the arc-shaped light-transmitting cover 302 is extracted, sunlight will pass through the arc-shaped light-transmitting cover 302, the light-transmitting component 303 and the heat collection component 304 to irradiate the photovoltaic device 4, thereby realizing the simultaneous operation of solar thermal energy storage and photovoltaic power generation.
[0033] like Figure 2 As shown, in the indexing device 1, the indexing handle 101 is fixedly installed on the side of the indexing disk 102; the indexing slide 104 is fixedly installed on the side of the indexing disk 102; the first locking block 103 is fixedly installed on the side of the indexing disk 102; and the indexing slide 104 is slidably installed on the side of the photothermal rotating shaft 301 in the lateral direction.
[0034] like Figure 3As shown, in the support device 2, the light intensity detector 201 is fixedly installed at the lower end of the support frame 202; the upper end of the support frame 202 is rotatably connected to the periphery of the photothermal rotating shaft 301; the support frame 202 is fixedly installed at the upper end of the support column 204; the support groove 203 is fixedly installed on the side of the support frame 202; the support groove 203 also engages with the first locking block 103; the support column 204 is fixedly installed on the ground; the lower end of the support column 204 is connected to the external heat storage device through a pipe; the internal space of the heat collection cylinder 306 is connected to the internal space of the support column 204 through a flexible hose.
[0035] like Figure 4 As shown, in the photovoltaic thermal device 3, the locking bolt 305 is fixedly installed on the side of the light-transmitting component 303; the heat-collecting cylinder 306 is fixedly installed at the lower end of the arc-shaped light-transmitting cover 302; the heat-collecting cylinder 306 contains circulating liquid; the convex lens 307 is fixedly installed at the lower end of the heat-collecting cylinder 306; in the photovoltaic thermal mode, when the suspension with reflective particles is re-injected into the arc-shaped light-transmitting cover 302, the arc-shaped light-transmitting cover 302 will reflect sunlight to the heat-collecting cylinder 306, thereby realizing the heating function of the circulating liquid in the heat-collecting cylinder 306.
[0036] like Figure 5 As shown, in the light-transmitting assembly 303, the light-transmitting back plate 308 is fixedly installed at the upper end of the arc-shaped light-transmitting cover 302; the locking bolt 305 is fixedly installed on the side of the light-transmitting back plate 308; the heat-conducting cylinder 309 is fixedly installed at the upper end of the light-transmitting back plate 308; the internal space of the heat-conducting cylinder 309 is connected to the internal space of the heat-concentrating cylinder 306.
[0037] like Figure 6 As shown, in the heat collection assembly 304, the heat collection transparent plate 310 is fixedly installed on the upper end of the light-transmitting back plate 308; the heat collection transparent box 311 is fixedly installed on the lower end of the heat collection transparent plate 310; the heat collection transparent box 311 is inserted between two heat-conducting cylinders 309; the heat collection capillary tube 312 is fixed inside the heat collection transparent box 311; the elastic plug 313 is fixedly installed on the side of the heat collection transparent box 311; the elastic plug 313 is also connected to the heat collection capillary tube 312; the elastic plug 313 is inserted into the heat-conducting cylinder 309 in the transverse direction.
[0038] like Figure 7As shown, in the photovoltaic device 4, the locking nut 401 is rotatably connected to the upper end of the photovoltaic base 406; the two ends of the transposition component 402 are respectively rotatably connected to the sides of the two transposition sliders 407; the energy transducer 403 is fixedly installed inside the transposition component 402; the locking clamp 404 is rotatably connected to the inside of the photovoltaic base 406; the locking bolt 405 is tightened on the upper end of the locking clamp 404; the photovoltaic base 406 is fixedly installed on the upper end of the heat collection transparent plate 310 by the locking nut 401 and the locking bolt 305; the transposition slider 407 is slidably installed on the side of the transposition slide rail 408; the transposition slide rail 408 is fixedly installed on the inner side of the photovoltaic base 406.
[0039] like Figure 8 and Figure 9 As shown, in the transposition assembly 402, the two sides of the transposition bracket 409 are rotatably connected to the sides of the two transposition sliders 407 respectively; the transposition base plate 410 is fixedly installed inside the transposition bracket 409; the transposition bolt 411 is tightened into the upper end of the transposition bracket 409 and the inside of the transposition locking hole 412; the transposition locking hole 412 is fixedly installed at the upper end of the transposition pull plate 413; the transposition pull plate 413 is slidably installed on the side of the transposition bracket 409; and the transposition groove 414 is fixedly installed on the upper surface of the transposition base plate 410.
[0040] like Figure 10 and Figure 11 As shown, in the energy transducer 403, the solar panel 416 is fixedly installed on the upper surface of the energy transducer bracket 415; the energy transducer rack 417 is slidably installed inside the energy transducer bracket 415; the energy transducer rack 417 is also fixedly connected to the transducer pull plate 413; the energy transducer chassis 418 is fixedly installed at the lower end of the energy transducer bracket 415; the three-impeller 419 is rotatably connected to the lower end of the energy transducer chassis 418; a gear is provided at the upper end of the three-impeller 419; the gear at the upper end of the three-impeller 419 and the energy transducer rack 417 form a gear and rack pair; the energy transducer clamping plate 420 is slidably installed at the lower end of the energy transducer chassis 418 along the radial direction of the energy transducer chassis 418.
[0041] like Figure 12 As shown, in the linkage assembly 5, the two ends of the linkage sleeve 501 are in contact with the sides of the two support frames 202 respectively; the second locking block 502 is fixedly installed at both ends of the linkage sleeve 501 respectively; the second locking block 502 also engages with the support groove 203; the linkage shaft 503 is rotatably connected inside the linkage sleeve 501; the two linkage connectors 504 are fixedly installed at both ends of the linkage shaft 503 respectively; the linkage connectors 504 are inserted into the inside of the photothermal shaft 301.
[0042] Working principle of the invention: Figure 1The invention provides the usage methods and corresponding scenarios. The attitude control of the photovoltaic-thermal integrated equipment during operation is determined by the support device 2, the solar thermal device 3, and the photovoltaic device 4. The attitude of the support device 2 is determined by the solar thermal device 3, and the attitude of the solar thermal device 3 is determined by the photovoltaic device 4. Therefore, the photovoltaic device 4 is the core of the photovoltaic-thermal integrated equipment during operation.
[0043] Taking a preferred embodiment as an example, such as Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, the light intensity detector 201 at the lower end of the support frame 202 will first detect the light intensity. Then, the operator selects the corresponding mode based on the data from the light intensity detector 201. First, manually pull the first locking block 103 on the side of the indexing disk 102 out of the support groove 203 on the side of the support frame 202. Then, manually hold the indexing handle 101 to drive the indexing disk 102 to rotate, or use a motor to directly drive the indexing disk 102 on the indexing device 1 to rotate. The indexing disk 102 drives the photothermal shaft through the indexing slide column 104. When 301 rotates, the solar thermal shaft 301 drives the solar thermal device 3 and the photovoltaic device 4 to rotate as a whole, causing the positions of the solar thermal device 3 and the photovoltaic device 4 to be interchanged. At this time, the photovoltaic device 4 is located at the lower end of the solar thermal device 3, thereby realizing the conversion from photovoltaic mode to solar thermal mode. In solar thermal mode, sunlight shines through the convex lens 307 into the circulating liquid inside the heat-collecting cylinder 306, heating the circulating liquid. The heat is then carried away by the circulating liquid, realizing the solar thermal conversion function. When the suspension containing reflective particles is injected into the arc-shaped light-transmitting cover 302... In normal conditions, the arc-shaped light-transmitting cover 302 reflects sunlight onto the heat-collecting cylinder 306, further heating the circulating fluid inside. The heated fluid then enters the support column 204 of the support device 2 through a hose, and subsequently flows from the lower end of the support column 204 into the external heat storage device, thus providing auxiliary heating for the circulating fluid in the heat-collecting cylinder 306. In photovoltaic mode, the circulating fluid is first supplied to the heat-collecting cylinder 306, and then to the heat-collecting capillary 312 in the heat-collecting component 304 and the light-transmitting cover 302. In the heat-conducting cylinder 309 of the light component 303, when sunlight shines on the solar panel 416 on the energy transducer 403, excess heat is generated. This excess heat is transferred to the heat-collecting transparent plate 310 and the heat-collecting transparent box 311 of the heat-collecting component 304. Subsequently, the heat-collecting transparent box 311 heats the circulating liquid in the heat-collecting capillary 312. After heating, the circulating liquid enters the heat-conducting cylinder 309 through the elastic plug 313, and then enters the heat-collecting cylinder 306 from the heat-conducting cylinder 309, thereby achieving the cooling function.
[0044] like Figure 7 , Figure 8 , Figure 9 , Figure 10 , Figure 11 and Figure 12 As shown, in photothermal mode, the transposition bolt 411 on the transposition assembly 402 is manually unscrewed from the transposition locking hole 412. Then, the transposition pull plate 413 drives the transducer rack 417 to slide in the transposition groove 414 of the transposition base plate 410. The transducer rack 417 then drives the three-impeller 419 to rotate. The three-impeller 419 drives the transducer locking plate 420 to extend outward on the transducer chassis 418, thereby realizing the connection between the transducer chassis 418 and the transposition base plate 410. The locking function between 0 and 0 enables the rapid installation of the transducer assembly 403; first, unscrew the locking bolts 405 on the locking clamp 404, then manually rotate the locking clamp 404 so that the transducer slider 407 can slide on the side of the transducer rail 408. Then, pull out the transducer assembly 402 and the transducer slider 407 together, and then manually flip the transducer bracket 409 and the transducer base plate 410 inside the transducer assembly 402 to flip the transducer. The orientation of the energy conversion component 403 is used to switch from solar thermal mode to photovoltaic solar thermal mode. In photovoltaic solar thermal mode, the suspension containing reflective particles in the arc-shaped light-transmitting cover 302 is extracted, and sunlight shines through the arc-shaped light-transmitting cover 302, the light-transmitting back plate 308 of the light-transmitting component 303, the heat-collecting transparent plate 310, and the heat-collecting transparent box 311 onto the energy conversion component 403 of the photovoltaic device 4. Subsequently, the solar panel 416 on the energy conversion component 403 converts light energy into electrical energy, realizing simultaneous solar thermal energy storage and photovoltaic power generation. When the locking nut 401 and the locking bolt 305 are tightened, the photovoltaic base 406, the light-transmitting back plate 308, and the heat-collecting transparent plate 310 will press against each other. The second locking blocks 502 at both ends of the linkage sleeve 501 are used to engage with the support groove 203. The linkage shaft 503 and the linkage connector 504 on the linkage component 5 are used for power transmission between the two solar thermal shafts 301.
[0045] This invention is not limited to the specific embodiments described above. Any modifications made by those skilled in the art based on the above concept without creative effort are within the protection scope of this invention.
Claims
1. A photovoltaic and photo-thermal integrated device, comprising a indexing device (1), a supporting device (2), a photo-thermal device (3), a photovoltaic device (4), a linkage assembly (5), characterized in that: The rotating device (1) is slidably installed on the side of the light-heat device (3) in the transverse direction; the supporting device (2) is fixedly installed on the ground; the lower end of the supporting device (2) is connected with the external heat storage device through a pipeline; the two ends of the light-heat device (3) are rotatably connected to the upper ends of the two supporting devices (2) respectively; the photovoltaic device (4) is fixedly installed on the upper end of the light-heat device (3); the two ends of the linkage assembly (5) are inserted into the sides of the two light-heat devices (3) respectively; the light-heat device (3) comprises a light-heat rotating shaft (301), an arc-shaped light-transmitting cover (302), a light-transmitting assembly (303) and a heat collecting assembly (304); the two ends of the light-heat rotating shaft (301) are rotatably connected to the upper ends of the two supporting devices (2) respectively; the arc-shaped light-transmitting cover (302) is fixedly installed on the periphery of the light-heat rotating shaft (301); the inside of the arc-shaped light-transmitting cover (302) is an arc-shaped hollow structure, and the average thickness of the hollow structure is 0.5 cm; the inside of the arc-shaped light-transmitting cover (302) stores a suspension containing reflective particles; the light-transmitting assembly (303) is fixedly installed on the upper end of the arc-shaped light-transmitting cover (302); the heat collecting assembly (304) is inserted into the upper end of the light-transmitting assembly (303); in the photovoltaic light-heat mode, when the suspension containing reflective particles in the arc-shaped light-transmitting cover (302) is extracted, sunlight will pass through the arc-shaped light-transmitting cover (302), the light-transmitting assembly (303) and the heat collecting assembly (304) to irradiate the photovoltaic device (4), so that the light-heat energy storage and the photovoltaic power generation are simultaneously performed.
2. The photovoltaic-photothermal integrated device of claim 1, wherein: The light-heat device (3) further comprises a clamping bolt (305), a heat collecting cylinder (306) and a convex lens (307); the clamping bolt (305) is fixedly installed on the side of the light-transmitting assembly (303); the heat collecting cylinder (306) is fixedly installed on the lower end of the arc-shaped light-transmitting cover (302); the inside of the heat collecting cylinder (306) stores circulating liquid; the convex lens (307) is fixedly installed on the lower end of the heat collecting cylinder (306); in the photovoltaic light-heat mode, when the suspension containing reflective particles is re-injected into the arc-shaped light-transmitting cover (302), the arc-shaped light-transmitting cover (302) will reflect sunlight to the heat collecting cylinder (306), thereby realizing the heating function of the circulating liquid in the heat collecting cylinder (306).
3. The photovoltaic-photothermal integrated device of claim 2, wherein: The light-transmitting assembly (303) comprises a light-transmitting back plate (308) and a heat conducting cylinder (309); the light-transmitting back plate (308) is fixedly installed on the upper end of the arc-shaped light-transmitting cover (302); the clamping bolt (305) is fixedly installed on the side of the light-transmitting back plate (308); the heat conducting cylinder (309) is fixedly installed on the upper end of the light-transmitting back plate (308); the internal space of the heat conducting cylinder (309) is in communication with the internal space of the heat collecting cylinder (306).
4. The photovoltaic-photothermal integrated device of claim 3, wherein: The heat collecting assembly (304) comprises a heat collecting transparent plate (310), a heat collecting transparent box (311), a heat collecting capillary (312), and an elastic plug (313); the heat collecting transparent plate (310) is fixedly installed at the upper end of the light-transmitting back plate (308); the heat collecting transparent box (311) is fixedly installed at the lower end of the heat collecting transparent plate (310); the heat collecting transparent box (311) is inserted between the two heat conducting cylinders (309); the heat collecting capillary (312) is fixed in the heat collecting transparent box (311); the elastic plug (313) is fixedly installed at the side of the heat collecting transparent box (311); the elastic plug (313) is also communicated with the heat collecting capillary (312); and the elastic plug (313) is inserted into the heat conducting cylinder (309) in the transverse direction.
5. The photovoltaic-photothermal integrated device according to claim 4, wherein: The photovoltaic device (4) comprises a clamping nut (401), a transposition assembly (402), a transduction assembly (403), a locking clamp plate (404), a locking bolt (405), a photovoltaic base (406), a transposition sliding block (407), and a transposition sliding rail (408); the clamping nut (401) is rotationally connected to the upper end of the photovoltaic base (406); the two ends of the transposition assembly (402) are respectively rotationally connected to the sides of the two transposition sliding blocks (407); the transduction assembly (403) is fixedly installed in the transposition assembly (402); the locking clamp plate (404) is rotationally connected to the inside of the photovoltaic base (406); the locking bolt (405) is screwed to the upper end of the locking clamp plate (404); the photovoltaic base (406) is fixedly installed at the upper end of the heat collecting transparent plate (310) through the clamping nut (401) and the clamping bolt (305); the transposition sliding block (407) is slidingly installed at the side of the transposition sliding rail (408); and the transposition sliding rail (408) is fixedly installed at the inner side of the photovoltaic base (406).
6. A photovoltaic and solar thermal integrated device according to claim 5, characterized in that: The transposition assembly (402) comprises a transposition support (409), a transposition bottom plate (410), a transposition bolt (411), a transposition clamping hole (412), a transposition pull plate (413), and a transposition groove (414); the two sides of the transposition support (409) are respectively rotationally connected to the sides of the two transposition sliding blocks (407); the transposition bottom plate (410) is fixedly installed in the transposition support (409); the transposition bolt (411) is screwed to the upper end of the transposition support (409) and the inside of the transposition clamping hole (412); the transposition clamping hole (412) is fixedly installed at the upper end of the transposition pull plate (413); the transposition pull plate (413) is slidingly installed at the side of the transposition support (409); and the transposition groove (414) is fixedly installed at the upper surface of the transposition bottom plate (410).
7. The photovoltaic-photothermal integrated device according to claim 6, wherein: The transduction assembly (403) comprises a transduction support (415), a solar panel (416), a transduction rack (417), a transduction chassis (418), a three-bladed wheel (419), and a transduction card plate (420); the solar panel (416) is fixedly installed on the upper surface of the transduction support (415); the transduction rack (417) is slidingly installed in the interior of the transduction support (415); the transduction rack (417) is further fixedly connected with the transposition pull plate (413); the transduction chassis (418) is fixedly installed at the lower end of the transduction support (415); the three-bladed wheel (419) is rotatably connected at the lower end of the transduction chassis (418); the upper end of the three-bladed wheel (419) is provided with a gear; the gear at the upper end of the three-bladed wheel (419) and the transduction rack (417) form a gear and rack pair; and the transduction card plate (420) is slidingly installed at the lower end of the transduction chassis (418) along the radial direction of the transduction chassis (418).
8. The photovoltaic-photothermal integrated device of claim 7, wherein: The transposition device (1) comprises a transposition handle (101), a transposition disc (102), a first clamping block (103), and a transposition slide column (104); the transposition handle (101) is fixedly installed on the side surface of the transposition disc (102); the transposition slide column (104) is fixedly installed on the side surface of the transposition disc (102); and the first clamping block (103) is fixedly installed on the side surface of the transposition disc (102); the transposition slide column (104) is slidingly installed on the side surface of the light-heat rotating shaft (301) along the transverse direction.
9. The photovoltaic-photothermal integrated device of claim 8, wherein: The support device (2) comprises a light intensity detector (201), a support frame (202), a support groove (203), and a support column (204); the light intensity detector (201) is fixedly installed on the lower end of the support frame (202); the upper end of the support frame (202) is rotatably connected with the outer periphery of the light-heat rotating shaft (301); the support frame (202) is fixedly installed on the upper end of the support column (204); the support groove (203) is fixedly installed on the side surface of the support frame (202); the support groove (203) is further engaged with the first clamping block (103); the support column (204) is fixedly installed on the ground; the lower end of the support column (204) is connected with an external heat storage device through a pipeline; and the internal space of the heat collecting cylinder (306) is connected with the internal space of the support column (204) through a hose.
10. The photovoltaic-photothermal integrated device of claim 9, wherein: The linkage assembly (5) comprises a linkage sleeve (501), a second clamping block (502), a linkage rotating shaft (503), and a linkage connector (504); the two ends of the linkage sleeve (501) are respectively in contact with the side surfaces of the two support frames (202); the second clamping blocks (502) are respectively fixedly installed on the two ends of the linkage sleeve (501); the second clamping blocks (502) are further engaged with the support grooves (203); the linkage rotating shaft (503) is rotatably connected in the interior of the linkage sleeve (501); the two linkage connectors (504) are respectively fixedly installed on the two ends of the linkage rotating shaft (503); and the linkage connectors (504) are inserted into the interior of the light-heat rotating shaft (301).