Photovoltaic support component and irrigation device with water collection and fixed-point irrigation functions
Through the integrated design of photovoltaic brackets, the integrated C-type bracket beam, fixed parts and water storage silo, the problems of unstable connection between photovoltaic water collection components and brackets and low collection efficiency are solved, efficient water collection and fixed-point irrigation functions are achieved, and economic applicability and system stability are improved.
Patent Information
- Application Number
- CN202510000674.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-02
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2045-01-02
AI Technical Summary
The connection between the existing photovoltaic water collecting components and the bracket is complex and unstable, the precipitation/stormwater collection efficiency is low, the cost is high, the economical and applicability is poor, and the possibility of large-scale promotion is lacking.
It adopts an integrated design of photovoltaic bracket and water collection irrigation, including C-type bracket beams, fixed parts, water flow guidance parts and shielding parts, and integrates a water storage silo to realize water collection and fixed-point irrigation functions.
It improves precipitation collection efficiency, reduces the splashing of water flow to the surface, enhances the stability and economical applicability of the system, facilitates cleaning and maintenance, and extends the storage time of water source.
Smart Images

Figure CN119675542B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of photovoltaic components, and in particular to a photovoltaic support component and an irrigation device with water collection and fixed-point irrigation functions. Background Art
[0002] Photovoltaic power generation is a technology that uses the photovoltaic effect at the interface of semiconductors to directly convert light energy into electrical energy. The technical principle of photovoltaic power generation is primarily based on the photovoltaic effect. When a photon strikes a metal or semiconductor material, its energy can be completely absorbed by an electron within the material. If this energy is sufficient, the electron can overcome the material's internal gravity, perform work, and escape from the surface as a photoelectron. In photovoltaic cells, semiconductor materials such as silicon are typically used. P-type and N-type semiconductors are formed through a specific doping process. When these semiconductors are combined, a potential difference is formed at the contact surface, forming a solar cell. When sunlight strikes the PN junction, holes move from the P-pole region to the N-pole region, and electrons move from the N-pole region to the P-pole region, thus generating an electric current.
[0003] Photovoltaic power generation systems are mainly composed of three parts: solar panels (modules), controllers and inverters. Solar cells are connected in series and then packaged and protected to form large-area solar cell modules. These modules, combined with power controllers and other components, constitute a complete photovoltaic power generation device.
[0004] With the construction of the national Shagohuang New Energy Base, making full use of the rainwater collection / water collection effect of photovoltaic panels, promoting the ecological restoration of the base, and even developing the photovoltaic + planting industry has become one of the focus issues of common concern to all sectors of government, industry, academia, research and application. A series of water collection and water-saving utilization technologies and components have also been formed, but most of them are modular components added later, resulting in complex connections and instability between photovoltaic water collection components and brackets, low atmospheric precipitation / rainwater collection efficiency, high construction cost, and poor economic applicability, which in turn leads to the lack of possibility of large-scale promotion. Summary of the Invention
[0005] In view of the fact that most of the above-mentioned existing modular components are added later, resulting in complex connection and instability between the photovoltaic water collection components and the brackets, low atmospheric precipitation / rainwater collection efficiency, high construction cost and poor economic applicability, the present invention is proposed.
[0006] Therefore, the purpose of the present invention is to provide a photovoltaic bracket component with water collection and fixed-point irrigation functions, and its purpose is to adopt an integrated design scheme of photovoltaic bracket and water collection and irrigation, design and construct a new photovoltaic bracket component, so that the photovoltaic bracket has the functions of water collection and fixed-point irrigation, which is suitable for the water collection, water storage and fixed-point irrigation functions of newly built and renovated photovoltaic bases.
[0007] To solve the above technical problems, the present invention provides the following technical solutions: a photovoltaic support component with water collection and fixed-point irrigation functions, comprising a C-shaped support beam and a photovoltaic panel, and fixed beams arranged on both sides of the bottom of the C-shaped support beam, further comprising a fixing component arranged between the C-shaped support beam and the photovoltaic panel, a water flow guiding component arranged on the C-shaped support beam, and a shielding component arranged above the C-shaped support beam;
[0008] The fixing components include two groups of fixed horizontal plates arranged above the C-shaped bracket beam, two groups of lower limiting strips arranged at the bottom of the fixed horizontal plates, and the two groups of lower limiting strips are located in the inner cavity of the C-shaped bracket beam, two groups of upper limiting strips arranged at the top of the fixed horizontal plates, and one end of the photovoltaic panel is located at one end of the top of the fixed horizontal plates and close to one end of one group of upper limiting strips, multiple sections of bent horizontal plates arranged above the fixed horizontal plates, and one end of the bottom of the multiple sections of bent horizontal plates is in contact with the top of the photovoltaic panel, and multiple groups of openings arranged at the bottom of the inner cavity of the C-shaped bracket beam.
[0009] As a preferred solution of the photovoltaic bracket component with water collection and fixed-point irrigation functions described in the present invention, the fixing component also includes a first through hole arranged at the top of the fixed horizontal plate, and the first through hole passes through the fixed horizontal plate, a second through hole arranged at the top of the multi-section bent horizontal plate, and the second through hole passes through the multi-section bent horizontal plate, a fixing bolt arranged in the inner cavity of the second through hole, and the bottom end of the fixing bolt passes through the first through hole and the through opening, and a first nut arranged on the surface of the fixing bolt, and the first nut is located below the C-shaped bracket beam.
[0010] As a preferred solution of the photovoltaic support component with water collection and fixed-point irrigation functions described in the present invention, the water flow guiding component includes side baffles arranged on both sides of the C-shaped support beam, a blocking cap arranged above the through opening, a guide bolt arranged at the bottom of the blocking cap, and the bottom end of the guide bolt extends through the through opening to the bottom of the C-shaped support beam, and a second nut arranged on the surface of the guide bolt, and the second nut is located below the C-shaped support beam.
[0011] As a preferred solution of the photovoltaic support component with water collection and fixed-point irrigation functions described in the present invention, the shielding component includes a fixed seat arranged at the top of the multi-section bent horizontal plate close to one end of the photovoltaic panel, a hinged seat arranged at one end of the fixed seat, and a shielding mesh plate arranged above the C-shaped support beam.
[0012] As a preferred solution of the photovoltaic bracket component with water collection and fixed-point irrigation functions described in the present invention, the shielding component also includes a first limiting hole arranged on both sides of the top of the shielding mesh near one end of the photovoltaic panel, and the first limiting hole passes through the shielding mesh, a second limiting hole arranged at the top of the hinged seat, and the second limiting hole passes through the hinged seat, a limiting bolt arranged in the inner cavity of the second limiting hole, and the bottom end of the limiting bolt passes through the shielding mesh through the first limiting hole, and a third nut arranged on the surface of the limiting bolt, and the third nut is located below the shielding mesh.
[0013] As a preferred embodiment of the irrigation device of the present invention, it includes an irrigation water storage component, which includes a water storage tank arranged on one side of the C-shaped bracket beam, a water inlet arranged on the top of one side of the water storage tank, a drain outlet arranged on one side of a group of side baffles, a connecting pipe arranged on the surface of the drain outlet, and the end of the connecting pipe away from the drain outlet is connected to the water inlet, a drain outlet arranged at the bottom of one side of the water storage tank, a filter assembly arranged in the inner cavity of the water storage tank, and a sealing assembly arranged in the inner cavity of the water storage tank.
[0014] As a preferred solution of the irrigation device described in the present invention, the filter assembly includes filter mesh plates arranged at the top of both sides of the inner cavity of the water storage tank, and the filter mesh plates are arranged at an angle, a first connecting port is arranged at the top of one side of the water storage tank, and a second connecting port is arranged at the top of both ends of the water storage tank.
[0015] As a preferred solution of the irrigation device described in the present invention, the sealing assembly includes inverted cone water collecting plates arranged at both ends and both sides of the inner cavity of the water storage tank, and the inverted cone water collecting plates are located below the filter screen plate, a drainage circular pipe arranged at the bottom of the inverted cone water collecting plates, a mounting horizontal plate arranged at both ends of the inner cavity of the water storage tank, and the mounting horizontal plate is located between the inverted cone water collecting plates and the filter screen plate, a connecting rod arranged at the top of the mounting horizontal plate, and the bottom end of the connecting rod passes through the mounting horizontal plate and the drainage circular pipe, a blocking chassis arranged at the bottom of the mounting horizontal plate, and the blocking chassis is located below the drainage circular pipe, a spring arranged on the surface of the connecting rod, one end of the spring and the top of the blocking chassis are connected to each other, and the other end of the spring and the bottom of the mounting horizontal plate are connected to each other, and a blocking cover arranged at the top of the connecting rod.
[0016] As a preferred solution of the irrigation device of the present invention, an annular sealing groove is provided at the bottom of the circular drainage pipe, and a sealing ring is provided at the top edge of the blocking chassis, and the sealing ring and the annular sealing groove are adapted to each other.
[0017] Beneficial effects of the present invention:
[0018] 1. The present invention, through the C-shaped arrangement of the C-shaped bracket beam and the mutual cooperation with the side baffle, can make the C-shaped bracket beam serve as the supporting member of the lower edge of the photovoltaic panel and play the role of water collection at the same time, and at the same time cooperate with the multiple groups of openings on the C-shaped bracket beam to play the role of fixing the photovoltaic panel in cooperation with the fixing bolts on the one hand, and on the other hand, the guide bolts in the openings can be rotated so that the water source on the opening gap is drained from the guide bolts on the opening, playing the role of fixed-point irrigation of the plants below, and at the same time, it can also prevent the water flow from falling directly, reducing the splashing erosion of the water flow on the surface, and at the same time, the multiple groups of openings on the C-shaped bracket beam are correspondingly provided with guide bolts and blocking caps, and the position of the fixed-point irrigation can be adjusted according to the actual local irrigation needs, thereby improving applicability.
[0019] 2. The present invention provides a shielding mesh on the C-shaped support beam, which can effectively prevent dead branches, leaves and insects from entering the C-shaped support beam and causing blockage. The rotatable connection of the shielding mesh facilitates flipping up the shielding mesh, and facilitates cleaning operations such as regular flushing of silt and impurities using a high-pressure water gun. At the same time, the shielding mesh is detachably fixed to the top of the C-shaped support beam by limiting bolts and third nuts, making actual installation or disassembly more convenient and the operation more efficient.
[0020] 3. The present invention provides a water storage bin on one side of the C-shaped bracket crossbeam. When the C-shaped bracket crossbeam collects too much rainwater and clean water from the photovoltaic panels, the water can be transferred and stored at the bottom of the water storage bin for irrigation in subsequent dry seasons. At the same time, an inclined filter screen is provided in the water storage bin to filter and store the water entering the water storage bin. The inclined setting allows impurities filtered on the filter screen to automatically roll off, and when flushed with a high-pressure water gun in the later stage, the filtered impurities are more likely to fall off, making cleaning more convenient.
[0021] 4. The present invention provides a blocking chassis on the drainage circular pipe in the water storage bin, so that when no water flows into the water storage bin, the bottom end of the drainage circular pipe can be automatically blocked and sealed by a spring, thereby ensuring the sealing of the bottom of the drainage circular pipe, thereby improving the overall sealing effect of the water storage bin, thereby reducing the evaporation of water during storage, and thus extending the storage and use time of water in the water storage bin. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be derived from these drawings without inventive effort. Among them:
[0023] Figure 1 This is a schematic diagram of the overall structure of Example 1 of the present invention.
[0024] Figure 2 This is a schematic diagram of the overall structure from another perspective of Example 1 of the present invention.
[0025] Figure 3 This is a schematic side view of the sectional three-dimensional structure of the C-shaped bracket beam of Example 1 of the present invention.
[0026] Figure 4 This is a schematic diagram of the unfolded three-dimensional structure of the C-shaped bracket beam of Example 1 of the present invention.
[0027] Figure 5 This is a schematic diagram of the three-dimensional structure of the fixing component of Example 1 of the present invention.
[0028] Figure 6 This is a schematic diagram of a partially cutaway three-dimensional structure of a C-shaped bracket beam according to Example 1 of the present invention.
[0029] Figure 7 This is a schematic diagram of the three-dimensional structure of the water storage tank of Example 2 of the present invention.
[0030] Figure 8 This is a schematic diagram of the cross-sectional three-dimensional structure of the water storage tank of Example 2 of the present invention.
[0031] Figure 9 This is a schematic diagram of the three-dimensional structure of the sealing assembly of Example 3 of the present invention.
[0032] Figure 10 This is a schematic diagram of the expanded three-dimensional structure of the sealing assembly of Example 3 of the present invention.
[0033] Figure 11 It is a structural schematic diagram of a shielding component according to embodiment 4 of the present invention.
[0034] Description of reference numerals:
[0035] 1. C-shaped bracket beam; 11. Photovoltaic panel; 12. Fixed beam;
[0036] 2. Fixing member; 21. Fixing horizontal plate; 22. First through hole; 23. Upper limiting strip; 24. Lower limiting strip; 25. Multi-section bent horizontal plate; 26. Second through hole; 27. Fixing bolt; 28. First nut; 29. Through hole;
[0037] 3. Water flow guide component; 31. Side baffle; 32. Guide bolt; 33. Stop cap; 34. Second nut;
[0038] 4. Shielding component; 41. Fixing seat; 42. Articulated seat; 43. Shielding screen; 44. First limiting hole; 45. Second limiting hole; 46. Limiting bolt; 47. Third nut;
[0039] 4', shielding component; 41', flat segment; 42', arc segment; 6, hinge bracket; 7, spring;
[0040] 5. Irrigation water storage components; 51. Water storage tank; 52. Water inlet; 53. Drain outlet; 54. Connecting pipe; 55. Drain outlet; 56. Filter assembly; 561. Filter screen; 562. First connecting port; 563. Second connecting port; 57. Sealing assembly; 571. Inverted cone water collecting plate; 572. Drainage circular pipe; 573. Mounting horizontal plate; 574. Blocking chassis; 575. Connecting rod; 576. Spring; 577. Blocking cover; 578. Annular sealing groove; 579. Sealing ring. DETAILED DESCRIPTION
[0041] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.
[0042] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0043] Example 1
[0044] Reference Figure 1-6 , which is the first embodiment of the present invention, provides a photovoltaic support component with water collection and fixed-point irrigation functions, and the photovoltaic support component with water collection and fixed-point irrigation functions includes a C-shaped support beam 1 and a photovoltaic panel 11, and fixed beams 12 installed on both sides of the bottom of the C-shaped support beam 1, the fixed beam 12 plays the role of installing and fixing the C-shaped support beam 1, and the C-shaped support beam 1 is placed below the lower end of the photovoltaic panel 11 to fix and support the photovoltaic panel 11, and also includes a fixing component 2 arranged between the C-shaped support beam 1, the C-shaped support beam 1 and the photovoltaic panel 11, a water flow guiding component 3 arranged on the C-shaped support beam 1, a shielding component 4 arranged above the C-shaped support beam 1, and an irrigation and water storage component 5 arranged on one side of the C-shaped support beam 1.
[0045] The fixing component 2 includes two groups of fixed horizontal plates 21 arranged above the C-shaped bracket beam 1, two groups of lower limiting strips 24 fixedly installed at the bottom of the fixed horizontal plates 21, and the two groups of lower limiting strips 24 are located in the inner cavity of the C-shaped bracket beam 1, two groups of upper limiting strips 23 fixedly installed on the top of the fixed horizontal plates 21, and one end of the photovoltaic panel 11 is located at one end of the top of the fixed horizontal plates 21 and close to one end of one group of upper limiting strips 23, multiple sections of bent horizontal plates 25 arranged above the fixed horizontal plates 21, and one end of the bottom of the multiple sections of bent horizontal plates 25 is in contact with the top of the photovoltaic panel 11, and multiple groups of openings 29 arranged at the bottom of the inner cavity of the C-shaped bracket beam 1.
[0046] The fixing component 2 also includes a first through hole 22 opened at the top of the fixed transverse plate 21, and the first through hole 22 passes through the fixed transverse plate 21, a second through hole 26 opened at the top of the multi-section bent transverse plate 25, and the second through hole 26 passes through the multi-section bent transverse plate 25, a fixing bolt 27 slidably connected to the inner cavity of the second through hole 26, and the bottom end of the fixing bolt 27 passes through the first through hole 22 and the through port 29, and a first nut 28 threadedly sleeved on the surface of the fixing bolt 27, and the first nut 28 is located below the C-shaped bracket beam 1.
[0047] The water flow guiding component 3 includes side baffles 31 fixedly installed on both sides of the C-shaped bracket beam 1. The C-shaped structure of the C-shaped bracket beam 1 is utilized, and the side baffles 31 are installed from both ends, so that the C-shaped bracket beam 1 forms a water storage container, and the rainwater and clean water collected on the photovoltaic panel 11 will be collected in the C-shaped bracket beam 1, playing the role of water collection, a blocking cap 33 is arranged above the through opening 29, a guide bolt 32 fixedly installed at the bottom of the blocking cap 33, and the bottom end of the guide bolt 32 extends through the through opening 29 to the bottom of the C-shaped bracket beam 1, and a second nut 34 is threadedly sleeved on the surface of the guide bolt 32, and the second nut 34 is located below the C-shaped bracket beam 1, the blocking cap 33 and the through opening 29 are adapted to each other, and the blocking cap 33 can block the through opening 29. By rotating the blocking cap 33, the through opening 29 and the blocking cap 33 can be staggered and a gap can be left, and then the water source can be drained through the through opening 29 along the guide bolt 32.
[0048] The shielding component 4 includes a fixing seat 41 fixedly installed on the top of the multi-section bent horizontal plate 25 near one end of the photovoltaic panel 11, a hinged seat 42 hinged at one end of the fixing seat 41, and a shielding mesh plate 43 arranged above the C-shaped bracket beam 1. The shielding mesh plate 43 is used to prevent dead branches, fallen leaves and insects from entering the C-shaped bracket beam 1. At the same time, it is semi-open, which is convenient for regular sludge flushing operations using a high-pressure water gun.
[0049] The shielding component 4 also includes a first limiting hole 44 opened on both sides of the top of the shielding mesh 43 near one end of the photovoltaic panel 11, and the first limiting hole 44 passes through the shielding mesh 43, a second limiting hole 45 arranged on the top of the hinge seat 42, and the second limiting hole 45 passes through the hinge seat 42, a limiting bolt 46 is sleeved in the inner cavity of the second limiting hole 45, and the bottom end of the limiting bolt 46 passes through the shielding mesh 43 through the first limiting hole 44, and a third nut 47 threadedly sleeved on the surface of the limiting bolt 46, and the third nut 47 is located below the shielding mesh 43.
[0050] During the use of this photovoltaic support component, first, when the C-shaped support beam 1 is used as a fixing part for the lower edge of the photovoltaic panel 11, it can support and fix the photovoltaic panel 11. At the same time, when rainwater and clean water fall onto the surface of the photovoltaic panel 11, they will be drained into the inner cavity of the C-shaped support beam 1 to collect water.
[0051] There are multiple groups of through-holes 29 in the inner cavity of the C-shaped bracket beam 1. After the photovoltaic panel 11 is fixed by the fixed horizontal plate 21 and the multiple bent horizontal plates 25, the fixing bolts 27 thereon pass through a group of through-holes 29 and are fixed by screwing the first nut 28. At this time, the water collected in the C-shaped bracket beam 1 will be drained from the fixing bolts 27 through the through-holes 29 and irrigate the plants directly below it. At the same time, due to the diversion effect, the splash erosion of the water on the ground is reduced.
[0052] At the same time, multiple groups of through openings 29 are opened in the C-shaped bracket beam 1, and multiple groups of through openings 29 are blocked by blocking caps 33. When more through openings 29 need to be opened to irrigate the plants below them, the second nut 34 on the corresponding through opening 29 can be rotated as needed to cancel the fixation between the blocking cap 33 and the through opening 29 on the guide bolt 32, and then the guide bolt 32 is rotated to make the blocking cap 33 and the corresponding through opening 29 misaligned, and then the second nut 34 is screwed again to fix the guide bolt 32 and the blocking cap 33, and then the water source in the C-shaped bracket beam 1 can be drained from the guide bolt 32 through the through opening 29 to perform on-site irrigation operations.
[0053] By rotating the fixed seat 41 and the hinged seat 42, the shielding mesh plate 43 can be rotatably installed above the multi-section bent horizontal plate 25. The shielding mesh plate 43 can block and protect the top of the C-type bracket beam 1 to prevent dead branches, fallen leaves and insects from entering the C-type bracket beam 1 and causing blockage. At the same time, the rotating connection of the shielding mesh plate 43 makes it convenient to flip up the shielding mesh plate 43, which is convenient for regular flushing of silt and impurities with a high-pressure water gun and other cleaning operations. At the same time, the shielding mesh plate 43 is detachably fixed on the top of the C-type bracket beam 1 by the limiting bolt 46 and the third nut 47, making actual installation or disassembly more convenient and the operation more convenient.
[0054] Example 2
[0055] Reference Figure 1-8 , which is the second embodiment of the present invention. This embodiment is different from the first embodiment in that: the irrigation water storage component 5 includes a water storage tank 51 arranged on one side of the C-shaped bracket beam 1, a water inlet 52 connected to the top of one side of the water storage tank 51, a drain outlet 53 connected to one side of a group of side baffles 31, a connecting pipe 54 connected to the surface of the drain outlet 53, and the end of the connecting pipe 54 away from the drain outlet 53 is connected to the water inlet 52, a water outlet 55 connected to the bottom of one side of the water storage tank 51, and one end of the water outlet 55 is provided with a sealing plug, a filter component 56 arranged in the inner cavity of the water storage tank 51, and a sealing component 57 arranged in the inner cavity of the water storage tank 51.
[0056] The filter assembly 56 includes a filter screen 561 installed on the top of both sides of the inner cavity of the water storage tank 51, and the filter screen 561 is set at an angle to facilitate the automatic rolling and falling of impurities filtered on the filter screen 561. A first connecting port 562 is opened at the top of one side of the water storage tank 51, and a second connecting port 563 is opened at the top of both ends of the water storage tank 51. Through the setting of the first connecting port 562 and the second connecting port 563, it is convenient to use a high-pressure water gun to regularly flush impurities from the filter screen 561 for cleaning.
[0057] During the use of the photovoltaic support component, when too much rainwater and clean water collected on the photovoltaic panel 11 is collected in the C-shaped support beam 1, it can be discharged through the drain port 53 on the side baffle 31, and then transferred to the inner cavity of the water storage tank 51 through the connecting pipe 54. Subsequently, the water source entering the water storage tank 51 is filtered through the filter plate 561, and then stored at the bottom of the inner cavity of the water storage tank 51 for use in irrigation in the subsequent dry season.
[0058] The remaining structures are the same as those of Example 1.
[0059] Example 3
[0060] Reference Figure 1-10, which is the third embodiment of the present invention. This embodiment is different from the second embodiment in that: the sealing component 57 includes an inverted cone water collecting plate 571 fixedly installed at both ends and both sides of the inner cavity of the water storage tank 51, and the inverted cone water collecting plate 571 is located below the filter screen plate 561, and a drainage pipe 572 is connected to the bottom of the inverted cone water collecting plate 571. The setting of the inverted cone water collecting plate 571 facilitates the collection operation of the filtered water source, and then the water falls from the drainage pipe 572 to the bottom of the inner cavity of the water storage tank 51 for storage. The installation horizontal plates 573 are fixedly installed at both ends of the inner cavity of the water storage tank 51, and the installation horizontal plates 573 are located at the inverted cone. Between the water collecting plate 571 and the filter screen plate 561, there is a connecting rod 575 which is slidably connected to the top of the mounting horizontal plate 573, and the bottom end of the connecting rod 575 passes through the mounting horizontal plate 573 and the drainage circular pipe 572, and is fixedly mounted on the blocking chassis 574 at the bottom of the mounting horizontal plate 573, and the blocking chassis 574 is located below the drainage circular pipe 572, a spring 576 is sleeved on the surface of the connecting rod 575, one end of the spring 576 is connected to the top of the blocking chassis 574, and the other end of the spring 576 is connected to the bottom of the mounting horizontal plate 573, and a blocking cover 577 is arranged on the top of the connecting rod 575.
[0061] An annular sealing groove 578 is provided at the bottom of the drainage circular pipe 572, and a sealing ring 579 is fixedly installed at the top edge of the blocking chassis 574. The sealing ring 579 and the annular sealing groove 578 are adapted to each other, which can improve the sealing performance of the bottom of the drainage circular pipe 572 and the top of the blocking chassis 574.
[0062] During use of the photovoltaic support component, when the water source filtered from the filter plate 561 falls onto the top of the inverted cone water collecting plate 571 and gathers on the blocking chassis 574 at the bottom of the drainage circular pipe 572, as the water source increases, the blocking chassis 574 will be driven to move downward, and the connecting rod 575 will move downward. At the same time, the spring 576 will deform and stretch, and the water source will be discharged from the bottom of the drainage circular pipe 572 to the bottom of the inner cavity of the water storage tank 51. When there is no water source in the inner cavity of the drainage circular pipe 572, the rebound force of the spring 576 is used to make the sealing ring 579 on the blocking chassis 574 tightly adhere to the annular sealing groove 578 on the drainage circular pipe 572, thereby ensuring the sealing of the bottom of the drainage circular pipe 572, and then improving the sealing of the water storage tank 51, thereby reducing the evaporation of water during storage.
[0063] The remaining structures are the same as those of Example 2.
[0064] Example 4
[0065] Reference Figure 11, which is the fourth embodiment of the present invention, a photovoltaic support component with water collection and fixed-point irrigation functions provided in this embodiment is basically the same as that in embodiment 1, except that: the shielding component 4' has a flat section 41' and a curved section 42', the flat section 41' and the curved section 42' are arranged in sequence in the direction away from the C-shaped support beam 1, and the flat section 41' is inclined downward in the direction away from the C-shaped support beam 1, and the inclination angle is preferably 20-40 degrees, the head end of the curved section 42' is smoothly connected to the flat section 41', and The tail gradually extends upward along an inclined arc to form an arc-shaped slope. At the same time, the center of gravity of the shielding component 4' is located at its plane section 41', and the center of gravity is connected to the C-shaped bracket beam 1 via a hinge bracket 6, and the end of the shielding component 4' close to the C-shaped bracket beam 1 is connected to the C-shaped bracket beam 1 via a spring 7, and the spring 7 is maintained in a stretched state. In addition, the surface of the shielding component 4' is smooth and has multiple filter holes (not shown in the figure), and the distribution density of the filter holes gradually increases in the direction away from the C-shaped bracket beam 1.
[0066] The shielding component 4' is used to filter the wet sand that flows with rainwater to the top of the C-shaped bracket beam 1, especially when there is a lot of sand on the photovoltaic panel area and the rainfall is heavy. The rapidly accumulated wet sand can be concentrated mainly on the arc section 42' of the shielding component 4', and when the weight of the wet sand accumulated on the arc section 42' exceeds the tension provided by the spring, the shielding component 4' is tilted outward to achieve automatic removal of the wet sand, and then automatically reset under the tension of the spring to continue filtering the sand and dust carried by the rainwater without any human intervention, thereby effectively improving the rainwater collection efficiency and its cleanliness.
[0067] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. A photovoltaic support component with water collection and fixed-point irrigation functions, comprising a C-shaped support beam (1), a photovoltaic panel (11), and fixed beams (12) arranged on both sides of the bottom of the C-shaped support beam (1), characterized in that: The photovoltaic support component further comprises a fixing component (2) arranged between the C-shaped support beam (1) and the photovoltaic panel (11), a water flow guiding component (3) arranged on the C-shaped support beam (1), and a shielding component (4) arranged above the C-shaped support beam (1); The fixing component (2) comprises two groups of fixed transverse plates (21) arranged above the C-shaped support beam (1), two groups of lower limiting strips (24) arranged at the bottom of the fixed transverse plates (21), two groups of upper limiting strips (23) arranged at the top of the fixed transverse plates (21), multiple sections of bent transverse plates (25) arranged above the fixed transverse plates (21), and multiple groups of openings (29) arranged at the bottom of the inner cavity of the C-shaped support beam (1); the two groups of lower limiting strips (24) are located in the inner cavity of the C-shaped support beam (1); one end of the photovoltaic panel (11) is located at one end of the top of the fixed transverse plate (21) and close to one end of one group of upper limiting strips (23); one end of the bottom of the multiple sections of bent transverse plates (25) is in contact with the top of the photovoltaic panel (11); The water flow guiding component (3) comprises side baffles (31) arranged on both sides of the C-shaped bracket beam (1), a blocking cap (33) arranged above the through opening (29), a guide bolt (32) arranged at the bottom of the blocking cap (33), and a second nut (34) arranged on the surface of the guide bolt (32); the bottom end of the guide bolt (32) extends to the bottom of the C-shaped bracket beam (1) through the through opening (29); and the second nut (34) is located below the C-shaped bracket beam (1).
2. The photovoltaic support component with water collection and fixed-point irrigation functions according to claim 1, characterized in that: The fixing component (2) further includes a first through hole (22) provided at the top of the fixing transverse plate (21), a second through hole (26) provided at the top of the multi-section bent transverse plate (25), a fixing bolt (27) provided in the inner cavity of the second through hole (26), and a first nut (28) provided on the surface of the fixing bolt (27); the first through hole (22) passes through the fixing transverse plate (21); the second through hole (26) passes through the multi-section bent transverse plate (25); the bottom end of the fixing bolt (27) passes through the first through hole (22) and the through opening (29); and the first nut (28) is located below the C-shaped bracket beam (1).
3. The photovoltaic support component with water collection and fixed-point irrigation functions according to claim 2, characterized in that: The shielding component (4) comprises a fixing seat (41) arranged at the top of the multi-section bent horizontal plate (25) close to one end of the photovoltaic panel (11), a hinge seat (42) arranged at one end of the fixing seat (41), and a shielding mesh plate (43) arranged above the C-shaped bracket beam (1).
4. The photovoltaic support component with water collection and fixed-point irrigation functions according to claim 3, characterized in that: The shielding component (4) further includes a first limiting hole (44) provided on both sides of the top of the shielding screen (43) near one end of the photovoltaic panel (11), a second limiting hole (45) provided on the top of the hinge seat (42), a limiting bolt (46) provided in the inner cavity of the second limiting hole (45), and a third nut (47) provided on the surface of the limiting bolt (46); the first limiting hole (44) passes through the shielding screen (43); the second limiting hole (45) passes through the hinge seat (42); the bottom end of the limiting bolt (46) passes through the shielding screen (43) through the first limiting hole (44); and the third nut (47) is located below the shielding screen (43).
5. An irrigation device for a photovoltaic support component with water collection and fixed-point irrigation functions, which is applied to the photovoltaic support component with water collection and fixed-point irrigation functions according to any one of claims 1 to 4, characterized in that: The irrigation device comprises an irrigation water storage component (5); the irrigation water storage component (5) comprises a water storage tank (51) arranged on one side of the C-shaped support beam (1), a water inlet (52) arranged on the top of one side of the water storage tank (51), a drain outlet (53) arranged on one side of a group of side baffles (31), a connecting pipe (54) arranged on the surface of the drain outlet (53), a water outlet (55) arranged on the bottom of one side of the water storage tank (51), a filter assembly (56) arranged in the inner cavity of the water storage tank (51), and a sealing assembly (57) arranged in the inner cavity of the water storage tank (51); an end of the connecting pipe (54) away from the drain outlet (53) and the water inlet (52) are connected to each other.
6. The irrigation device according to claim 5, characterized in that: The filter assembly (56) comprises filter screen plates (561) arranged at the tops of both sides of the inner cavity of the water storage bin (51), a first communication port (562) arranged at the top of one side of the water storage bin (51), and second communication ports (563) arranged at the tops of both ends of the water storage bin (51); the filter screen plates (561) are arranged in an inclined manner.
7. The irrigation device according to claim 6, characterized in that: The sealing assembly (57) comprises an inverted cone water collecting plate (571) provided at both ends and both sides of the inner cavity of the water storage bin (51), a drainage circular pipe (572) provided at the bottom of the inverted cone water collecting plate (571), a mounting transverse plate (573) provided at both ends of the inner cavity of the water storage bin (51), a connecting rod (575) provided at the top of the mounting transverse plate (573), a blocking chassis (574) provided at the bottom of the mounting transverse plate (573), a spring (576) provided on the surface of the connecting rod (575), and a spring (577) provided on the connecting rod (575). 75) a blocking cover (577) at the top; the inverted cone water collecting plate (571) is located below the filter screen plate (561); the mounting horizontal plate (573) is located between the inverted cone water collecting plate (571) and the filter screen plate (561); the bottom end of the connecting rod (575) passes through the mounting horizontal plate (573) and the drainage circular pipe (572); the blocking chassis (574) is located below the drainage circular pipe (572); one end of the spring (576) is interconnected with the top of the blocking chassis (574), and the other end is interconnected with the bottom of the mounting horizontal plate (573).
8. The irrigation device according to claim 7, characterized in that: An annular sealing groove (578) is provided at the bottom of the circular drainage pipe (572), and a sealing ring (579) is provided at the top edge of the blocking chassis (574). The sealing ring (579) and the annular sealing groove (578) are adapted to each other.
Citation Information
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Photovoltaic desert control integrated device
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Photovoltaic water collection irrigation system, photovoltaic power station and photovoltaic power station ecological restoration method
CN115885814A