BIPV module with high sealing performance
By squeezing the sealing mechanism and protective components, the gravity of rainwater is used to enhance the sealing of the BIPV photovoltaic module, solving the problem of reduced sealing under heavy rain conditions and achieving high sealing of the photovoltaic module.
Patent Information
- Application Number
- PCT/CN2025/084269
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-03-16
- Filing Date
- 2025-03-24
- Publication Date
- 2025-09-25
AI Technical Summary
When existing BIPV photovoltaic modules are exposed outdoors, their sealing is easily eroded by rainwater, causing the adhesive at the seal to fall off and the sealing to be reduced.
It adopts an extrusion sealing mechanism and protective components, uses the gravity of rainwater to provide extrusion sealing force through the extrusion strip frame, and combines the uniform guide component and protective component to filter impurities, ensuring smooth entry of rainwater and enhancing sealing.
The sealing performance of photovoltaic modules is improved, the impact of rain on the sealing parts is avoided, and the photovoltaic modules are not easily infiltrated with water under heavy rain conditions, and the sealing performance is greatly improved.
Smart Images

Figure CN2025084269_25092025_PF_FP_ABST
Abstract
Description
A highly sealed BIPV photovoltaic component module Technical Field
[0001] The present invention relates to the technical field of photovoltaic components, and more specifically, to a highly sealed BIPV photovoltaic component module. Background Art
[0002] BIPV photovoltaic component module is a special building integrated solar panel that integrates photovoltaic technology into the building envelope structure. It can not only realize the photovoltaic power generation function, but also assume the function of building components and building materials.
[0003] According to the searched literature, patent publication number CN216958052U discloses a new type of BIPV color photovoltaic module. This patent breaks through the thickness limitations of the existing single-layer light-transmitting plate and single-sided coating layer by setting up a double-layer light-transmitting plate and a double-layer color glaze layer, making the color of the photovoltaic module more vivid and rich. At the same time, it has a more obvious shielding effect on the photovoltaic cell module, making the appearance of the photovoltaic module more beautiful, and at the same time enhancing the strength of the photovoltaic module, making the photovoltaic module more suitable for current architectural requirements in terms of structural application. However, this photovoltaic module still has the following defects:
[0004] When the above-mentioned photovoltaic modules are used for photovoltaic purposes, they need to be exposed to the outdoors for a long time to generate electricity through solar energy. This will cause the photovoltaic modules to be exposed to external rainwater for a long time, especially heavy rain will cause a large amount of water to form on the surface of the photovoltaic modules. The water is squeezed into the gaps in the rubber sleeves at the edges of the photovoltaic modules and has a large impact force, causing the adhesive at the sealing part of the photovoltaic modules to fall off and water to enter, and the sealing of the photovoltaic modules is greatly reduced. For this purpose, a high-sealing BIPV photovoltaic module module is provided. Summary of the Invention
[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides a highly sealed BIPV photovoltaic component module.
[0006] To achieve the above objectives, the present invention provides the following technical solutions: a highly sealed BIPV photovoltaic assembly module, comprising a solar photovoltaic panel, an extruded rubber strip frame installed above the solar photovoltaic panel, an extruded frame plate provided at the top of the extruded rubber strip frame, and an extruded sealing mechanism provided at the top of the extruded frame plate;
[0007] The extrusion sealing mechanism includes a rainwater load-bearing box arranged at the top of the extrusion frame plate, and both sides of the rainwater load-bearing box are fixedly connected to the side rainwater load-bearing boxes. One side of the extrusion frame plate is fixedly connected to a linkage support plate, and one side of the linkage support plate is fixedly connected to a threaded sleeve collar. The interior of the threaded sleeve collar is slidably connected to a first guide pillar, and the outer wall of the first guide pillar is slidably connected to a rubber cylinder at a position below the threaded sleeve collar, and the bottom end of the rubber cylinder is fixedly connected to the outer docking frame plate.
[0008] Preferably, the extruded rubber strip frame and the rainwater load-bearing box are fixedly connected to the extruded frame plate, the extruded frame plate is made of rubber material, the two side rainwater load-bearing boxes are symmetrically arranged about the rainwater load-bearing box, and the rainwater load-bearing box and the side rainwater load-bearing boxes are both made of carbon fiber material.
[0009] Preferably, the outer wall of the solar photovoltaic panel is glued and fixed with a sealing embedded strip, the outer wall of the sealing embedded strip is connected to a support frame plate, and the support frame plate is fixedly connected to the peripheral docking frame plate and the sealing embedded strip respectively, the bottom end of the solar photovoltaic panel is fixedly connected to the back plate, and a limit support block and a fixed support block are provided above the first guide pillar from bottom to top, and the fixed support block and the first guide pillar are fixedly connected to the limit support block, and two symmetrically arranged inclined guide plates are provided inside the rainwater bearing box, and the vertical cross-section of the inclined guide plate is set to a triangle, the bottom end of the peripheral docking frame plate is fixedly connected to the first support plate, one side of the peripheral docking frame plate is fixedly connected to the side support plate, the other side of the peripheral docking frame plate is fixedly connected to the connecting frame plate, and the top of the peripheral docking frame plate is fixedly connected to the docking frame plate.
[0010] According to the above technical solution, the rainwater inside the rainwater load-bearing box can increase the gravity of the rainwater load-bearing box itself. At the same time, the rainwater received inside the side rainwater load-bearing box can also increase its own gravity. The extrusion frame plate drives the linkage support plate to move the threaded sleeve shaft ring downward along the internal guide of the first guide pillar. The threaded sleeve shaft ring drives the rubber cylinder to compress downward at the top position of the outer docking frame plate. The extrusion frame plate drives the extrusion strip frame to extrude downward. The extrusion strip frame can provide extrusion sealing force to the bonding gap between the solar photovoltaic panel and the sealing embedded strip.
[0011] The top of the bridge is connected to the control stand by an outer cover, and the bottom of the bridge is connected to the control stand by an outer cover, and the control stand is connected to the control stand by an inner cover, and the control stand is connected to the control stand by an outer cover.
[0012] According to the above technical solution, the side rainwater load-bearing box can drive the linkage ring plate to move downward along the outer wall of the second guide pillar, the arc-shaped shielding plate can divert rainwater to the arc-shaped filter plate, and the side rainwater load-bearing box drives the sleeve support block to move downward along the outer wall of the second guide pillar. The sleeve support block drives the sliding ring and the sliding connecting ring to move downward along the outer wall of the second guide pillar, ensuring that the side rainwater load-bearing box can be tilted and squeezed downward along the second guide pillar under the action of gravity when holding a large amount of rainwater, ensuring that the side rainwater load-bearing box is evenly guided downward.
[0013] Preferably, the protective assembly includes a second support plate installed above the side rainwater load-bearing box, and both sides of the second support plate are fixedly connected with inclined support plates. The top of the inclined support plate is provided with an arc-shaped filter plate fixedly connected to the side rainwater load-bearing box, and the top of the rainwater load-bearing box is fixedly connected with a connecting support block, and the top of the connecting support block is fixedly installed with an arc-shaped filter support plate for filtering rainwater. The inclined support plate and the second support plate are both fixedly connected to the arc-shaped filter plate, and the arc-shaped filter plate and the arc-shaped filter support plate are both made of carbon fiber material.
[0014] According to the above technical solution, the second support plate supports the inclined support plate, and both the inclined support plate and the second support plate support the arc filter plate. Impurities carried by rainwater can be filtered through the arc filter plate, and the connecting support block supports the arc filter support plate. When the rainwater is large, it will gather inside the rainwater load-bearing box, and be diverted along the two inclined guide plates to the inside of the side rainwater load-bearing box. The rainwater can increase the vertical gravity of the rainwater load-bearing box and the two side rainwater load-bearing boxes.
[0015] Technical effects and advantages of the present invention:
[0016] The present invention adopts an extrusion sealing mechanism. When it rains, rainwater inside the rainwater bearing box can increase the gravity of the rainwater bearing box itself. At the same time, the rainwater received inside the side rainwater bearing box can also increase its own gravity. The extrusion frame plate drives the linkage support plate to make the threaded sleeve shaft ring move downward along the inner guide of the first guide pillar, and the rubber cylinder is compressed downward at the top position of the outer docking frame plate. When it rains heavily, the amount of rainwater collected inside the rainwater bearing box and the side rainwater bearing box is greater than the downward discharge amount. Therefore, the gravity of the rainwater bearing box and the side rainwater bearing box will also be greatly increased. The extrusion strip frame can provide an extrusion sealing force to the bonding gap between the solar photovoltaic panel and the sealing embedded strip. Rainwater with a large impact force is not easy to enter the bonding gap between the solar photovoltaic panel and the sealing embedded strip, so as to avoid the bonding falling off and water ingress at the sealing part of the photovoltaic module, and the sealing performance of the photovoltaic module is greatly improved.
[0017] The present invention uses a uniform guide component to enable the side rainwater bearing box to drive the linkage ring plate to move downward along the outer wall of the second guide pillar. The curved shielding plate can guide rainwater to the curved filter plate and enter the inside of the side rainwater bearing box through the curved filter plate. The sleeve support block drives the sliding ring and the sliding connection ring to move downward along the outer wall of the second guide pillar. The extruded rubber strip frame can stably fit and extrude on the connection between the solar photovoltaic panel and the sealing embedded rubber strip, and the sealing guide performance is effectively improved.
[0018] The present invention adopts a protective component to support the inclined support plate through the second support plate. The inclined support plate and the second support plate both support the arc-shaped filter plate. Impurities carried by rainwater can be filtered through the arc-shaped filter plate. The connecting support block supports the arc-shaped filter support plate. External rainwater flows along the arc-shaped filter support plate into the rainwater bearing box to be collected and filtered. External impurities are ensured to flow smoothly into the rainwater bearing box and the side rainwater bearing box to collect the counterweight. The gravity of the rainwater is used to provide a sealing extrusion force, thereby effectively improving the sealing performance.
[0019] Through the mutual influence of the above-mentioned multiple effects, external impurities are first filtered to ensure that rainwater can flow freely into the rainwater load-bearing box and the side rainwater load-bearing box to collect the counterweights, and then the side rainwater load-bearing box can be evenly forced to move downward, and finally the extrusion strip frame can provide extrusion sealing force to the bonding gap between the solar photovoltaic panel and the sealing embedded strip. In summary, the rainwater is used to provide extrusion gravity, so that the extrusion strip frame can seal the gap between the sealing embedded strip and the solar photovoltaic panel, thereby preventing water from entering and effectively improving the sealing performance. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] FIG1 is a schematic diagram of the overall structure of a high-sealing BIPV photovoltaic component module of the present invention.
[0021] FIG2 is a schematic diagram of the vertical cross-sectional structure of a high-sealing BIPV photovoltaic component module of the present invention.
[0022] FIG3 is an enlarged structural schematic diagram of point A in FIG2 of the present invention.
[0023] FIG4 is a schematic diagram of the cross-sectional structure of a high-sealing BIPV photovoltaic component module of the present invention.
[0024] FIG5 is a schematic diagram of a partial structure of a cross section of the connection between a rainwater load-bearing box and a side rainwater load-bearing box in a high-sealability BIPV photovoltaic assembly module of the present invention.
[0025] FIG6 is a bottom-view structural diagram of a highly sealed BIPV photovoltaic assembly module according to the present invention.
[0026] FIG7 is a schematic diagram of the structure of a uniform guide component in a high-sealing BIPV photovoltaic component module of the present invention.
[0027] FIG8 is a schematic diagram of a partial structure of a truncated portion of a connection between a side rainwater bearing box and an arc-shaped shielding plate in a high-sealability BIPV photovoltaic assembly module of the present invention.
[0028] FIG9 is a schematic diagram of a partial structure of the connection between the arc-shaped filter support plate and the rainwater bearing box in a high-sealability BIPV photovoltaic assembly module of the present invention.
[0029] The accompanying drawings are marked as follows: 1. solar photovoltaic panel; 2. extruded rubber strip frame; 3. extruded frame plate; 4. rainwater load-bearing box; 5. side rainwater load-bearing box; 6. linkage support plate; 7. threaded sleeve shaft ring; 8. first guide pillar; 9. rubber cylinder; 10. peripheral docking frame plate; 11. sealing embedded rubber strip; 12. support frame plate; 13. back plate; 14. limiting support block; 15. fixed support block; 16. inclined guide plate; 17. first support plate; 18. side support plate; 19. docking frame plate; 20. connecting frame plate; 21. second guide pillar; 22. linkage ring plate; 23. limiting support ring; 24. sliding ring; 25. sleeve support block; 26. sliding connecting ring; 27. arc shielding plate; 28. second support plate; 29. inclined support plate; 30. arc filter plate; 31. connecting support block; 32. arc filter support plate. DETAILED DESCRIPTION
[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0031] As shown in Figures 1-8, a high-sealability BIPV photovoltaic module module is provided with an extrusion sealing mechanism, a uniform guide component, and a protective component. The arrangement of each mechanism and component can use rainwater to provide extrusion gravity, so that the extrusion strip frame 2 can seal the gap between the embedded strip 11 and the solar photovoltaic panel 1 to prevent water from entering, and effectively improve the sealing performance. The specific structural arrangement of each mechanism and component is as follows:
[0032] In some embodiments, as shown in Figures 1-3, the extrusion sealing mechanism includes a rainwater load-bearing box 4 arranged at the top of the extruded frame plate 3, and both sides of the rainwater load-bearing box 4 are fixedly connected to the side rainwater load-bearing boxes 5, and one side of the extruded frame plate 3 is fixedly connected to a linkage support plate 6, and one side of the linkage support plate 6 is fixedly connected to a threaded sleeve shaft ring 7, and the interior of the threaded sleeve shaft ring 7 is slidably connected to a first guide pillar 8, and the outer wall of the first guide pillar 8 is slidably connected to a rubber cylinder 9 at a position below the threaded sleeve shaft ring 7, and the bottom end of the rubber cylinder 9 is fixedly connected to the outer docking frame plate 10.
[0033] In some embodiments, as shown in Figures 1-6, a sealing embedded rubber strip 11 is bonded and fixed to the outer wall of the solar photovoltaic panel 1, and the outer wall of the sealing embedded rubber strip 11 is connected to a supporting frame plate 12, and the supporting frame plate 12 is fixedly connected to the peripheral docking frame plate 10 and the sealing embedded rubber strip 11 respectively, so that the extruded rubber strip frame 2 can provide an extrusion sealing force to the bonding gap between the solar photovoltaic panel 1 and the sealing embedded rubber strip 11, and the supporting frame plate 12 can support and reinforce the outer wall of the sealing embedded rubber strip 11, thereby improving the tight support effect. The bottom end of the solar photovoltaic panel 1 is fixedly connected to the backboard 13, and a limiting support block 14 and a fixed support block 15 are sequentially provided above the first guide pillar 8 from bottom to top. The fixed support block 15 and the first guide pillar 8 are both fixedly connected to the limiting support block 14, so that the first guide pillar 8 can vertically support the limiting support block 14. The fixed support block 15 on the upper surface of the limiting support block 14 can play a rainproof operation on its top, playing a rainproof operation The interior of the rainwater bearing box 4 is provided with two symmetrically arranged inclined deflector plates 16, the vertical cross-section of the inclined deflector plates 16 is set to a triangle, the bottom end of the peripheral docking frame plate 10 is fixedly connected to the first support plate 17, one side of the peripheral docking frame plate 10 is fixedly connected to the side support plate 18, and the other side of the peripheral docking frame plate 10 is fixedly connected to the connecting frame plate 20, and the top of the peripheral docking frame plate 10 is fixedly connected to the docking frame plate 19, so that when rainwater is large, it will be collected inside the rainwater bearing box 4 and inclined along the two inclined deflector plates 16 to the inside of the side rainwater bearing box 5. The rainwater can be diverted by the inclined deflector plates 16, and the connecting frame plate 20 can be stuck on the outer wall of the side support plate 18 on the other peripheral docking frame plate 10, forming two solar photovoltaic panels 1 side by side. The docking frame plate 19 is installed on the inclined bracket, which can enable multiple solar photovoltaic panels 1 to be installed in an inclined arrangement from left to right, which is convenient for installing multiple solar photovoltaic panels 1 side by side.
[0034] In some embodiments, as shown in Figures 1-8, one side of the side rainwater bearing box 5 is provided with a plurality of second guide pillars 21 fixedly connected to the peripheral docking frame plate 10, the outer wall of the second guide pillar 21 is connected to a uniform guide assembly, the uniform guide assembly includes a linkage ring plate 22 slidably connected to the outer wall of the second guide pillar 21, the linkage ring plate 22 is fixedly connected to the side rainwater bearing box 5, a protective assembly is installed above the side rainwater bearing box 5, and a limited support ring 23 is fixedly connected to the outer wall of the second guide pillar 21 and located above the linkage ring plate 22. A sliding ring 24 is slidably connected to the outer wall of the second guide pillar 21 and located below the linkage ring plate 22. A socket support block 25 and a sliding connection ring 26 are provided below the sliding ring 24 from top to bottom. An arc-shaped shielding plate 27 fixedly connected to the side rainwater bearing box 5 is provided above the second guide pillar 21. The socket support block 25 is fixedly connected to the sliding connection ring 26 and the sliding ring 24 respectively. The socket support block 25 is fixedly connected to the side rainwater bearing box 5. The socket support block 25 and the sliding connection ring 26 are both vertically slidably connected to the second guide pillar 21.
[0035] In some embodiments, as shown in Figures 8-9, the protective assembly includes a second support plate 28 installed above the side rainwater load-bearing box 5, and the two sides of the second support plate 28 are fixedly connected with inclined support plates 29. The top of the inclined support plate 29 is provided with an arc-shaped filter plate 30 fixedly connected to the side rainwater load-bearing box 5. The top of the rainwater load-bearing box 4 is fixedly connected with a connecting support block 31, and the top of the connecting support block 31 is fixedly installed with an arc-shaped filter support plate 32 for filtering rainwater. The inclined support plate 29 and the second support plate 28 are both fixedly connected to the arc-shaped filter plate 30, and the arc-shaped filter plate 30 and the arc-shaped filter support plate 32 are both made of carbon fiber material.
[0036] The working principle of the high-sealing BIPV photovoltaic module of the present invention is as follows:
[0037] First, when installing the present invention, the solar photovoltaic panel 1 is placed on the top of the building, two adjacent solar photovoltaic panels 1 are placed side by side, the docking frame 19 is installed on the inclined bracket, and the connecting frame 20 can be clamped on the outer wall of the side support plate 18 on the other peripheral docking frame 10, forming two solar photovoltaic panels 1 docked side by side, so that multiple solar photovoltaic panels 1 can be arranged and installed in an inclined manner from left to right. After the installation is completed, the back plate 13 supports the solar photovoltaic panel 1, and the solar photovoltaic panel 1 can convert solar energy into electrical energy;
[0038] Secondly, when the present invention is performing rainwater filtering protection, the second support plate 28 supports the inclined support plate 29, and the inclined support plate 29 and the second support plate 28 both support the curved filter plate 30, thereby increasing the stability of the curved filter plate 30, and impurities carried by rainwater can be filtered through the curved filter plate 30, and the filtered rainwater can enter the side rainwater bearing box 5. At the same time, the connecting support block 31 supports the curved filter support plate 32, and external rainwater enters the rainwater bearing box 4 along the curved filter support plate 32 for collection. When the rainwater is large, it will be collected in the rainwater bearing box 4 and inclinedly diverted along the two inclined guide plates 16 to the inside of the side rainwater bearing box 5, and the rainwater is discharged downward through the small gap at the bottom of the side rainwater bearing box 5, and the rainwater can increase the vertical gravity of the rainwater bearing box 4 and the two side rainwater bearing boxes 5;
[0039] Then, when the present invention is performing counterweight sealing, the rainwater inside the rainwater bearing box 4 can increase the gravity of the rainwater bearing box 4 itself, and the rainwater received inside the side rainwater bearing box 5 can also increase its own gravity. The rainwater bearing box 4 and the side rainwater bearing box 5 simultaneously drive the extrusion frame plate 3 to move downward, and the extrusion frame plate 3 drives the linkage support plate 6 to make the threaded sleeve shaft ring 7 move downward along the internal guide of the first guide pillar 8, and the first guide pillar 8 plays a vertical supporting role for the limiting support block 14. The fixed support block 15 on the upper surface of the limiting support block 14 can play a rainproof operation on its top, and the threaded sleeve shaft ring 7 drives the rubber cylinder 9 to compress downward at the top position of the outer docking frame plate 10, squeezing The frame plate 3 drives the extrusion strip frame 2 to be squeezed downward. When the external rainwater is heavy, the amount of rainwater collected in the rainwater bearing box 4 and the side rainwater bearing box 5 is greater than the amount of rainwater discharged downward. Therefore, the gravity of the rainwater bearing box 4 and the side rainwater bearing box 5 will also be greatly increased. The extrusion strip frame 2 can provide an extrusion sealing force to the bonding gap between the solar photovoltaic panel 1 and the sealing embedded rubber strip 11. The supporting frame plate 12 can support and reinforce the outer wall of the sealing embedded rubber strip 11. Rainwater with greater impact force is prevented from contacting the bonding gap between the solar photovoltaic panel 1 and the sealing embedded rubber strip 11, and rainwater with greater impact force is not easy to enter the bonding gap between the solar photovoltaic panel 1 and the sealing embedded rubber strip 11;
[0040] Finally, when the present invention is performing uniform guidance, the side rainwater bearing box 5 can drive the linkage ring plate 22 to move downward along the outer wall of the second guide pillar 21 under the action of rainwater gravity. At the same time, the limit support ring 23 can support the second guide pillar 21, and the arc-shaped shielding plate 27 can divert rainwater to the arc-shaped filter plate 30, and enter the inside of the side rainwater bearing box 5 through the arc-shaped filter plate 30. At the same time, the side rainwater bearing box 5 drives the sleeve support block 25 to move downward along the outer wall of the second guide pillar 21, and the sleeve support block 25 drives the sliding ring 24 and the sliding connection ring 26 to move downward along the outer wall of the second guide pillar 21, ensuring that the side rainwater bearing box 5 can be tilted and squeezed along the second guide pillar 21 under the action of gravity when holding a large amount of rainwater, so that the extruded rubber strip frame 2 can stably fit and extrude on the connection between the solar photovoltaic panel 1 and the sealing embedded rubber strip 11.
[0041] The contents not described in detail in the specification belong to the existing technology known to those skilled in the art, and the model parameters of each electrical appliance are not specifically limited and can be determined using conventional equipment. In this technical solution, the electrical control components not mentioned are not shown in the figure because they belong to the existing technology and will not be described here.
[0042] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A high-sealability BIPV photovoltaic assembly module, comprising a solar photovoltaic panel (1), an extruded rubber strip frame (2) being installed above the solar photovoltaic panel (1), characterized in that: An extrusion frame plate (3) is provided at the top end of the extruded rubber strip frame (2), and an extrusion sealing mechanism is provided at the top end of the extruded frame plate (3); The extrusion sealing mechanism comprises a rainwater bearing box (4) arranged at the top of the extrusion frame plate (3), both sides of the rainwater bearing box (4) are fixedly connected to side rainwater bearing boxes (5), one side of the extrusion frame plate (3) is fixedly connected to a linkage support plate (6), one side of the linkage support plate (6) is fixedly connected to a threaded sleeve collar (7), the interior of the threaded sleeve collar (7) is slidably connected to a first guide pillar (8), the outer wall of the first guide pillar (8) and located below the threaded sleeve collar (7) is slidably connected to a rubber cylinder (9), and the bottom end of the rubber cylinder (9) is fixedly connected to an outer docking frame plate (10).
2. The high-sealability BIPV photovoltaic component module according to claim 1, characterized in that: The extruded rubber strip frame (2) and the rainwater bearing box (4) are both fixedly connected to the extruded frame plate (3), and the extruded frame plate (3) is made of rubber material.
3. The high-sealability BIPV photovoltaic component module according to claim 1, characterized in that: The two side rainwater load-bearing boxes (5) are symmetrically arranged with respect to the rainwater load-bearing box (4), and both the rainwater load-bearing box (4) and the side rainwater load-bearing box (5) are made of carbon fiber material.
4. The high-sealability BIPV photovoltaic component module according to claim 1, characterized in that: A sealing embedded rubber strip (11) is bonded and fixed to the outer wall of the solar photovoltaic cell panel (1), the outer wall of the sealing embedded rubber strip (11) is connected to a supporting frame plate (12), and the supporting frame plate (12) is fixedly connected to the peripheral docking frame plate (10) and the sealing embedded rubber strip (11), respectively.
5. The high-sealability BIPV photovoltaic component module according to claim 1, characterized in that: The bottom end of the solar photovoltaic panel (1) is fixedly connected to a back plate (13), and a limiting support block (14) and a fixed support block (15) are sequentially provided above the first guide pillar (8) from bottom to top, and the fixed support block (15) and the first guide pillar (8) are both fixedly connected to the limiting support block (14).
6. The high-sealability BIPV photovoltaic assembly module according to claim 1, characterized in that: The rainwater bearing box (4) is provided with two symmetrically arranged inclined guide plates (16) inside, and the vertical cross-section of the inclined guide plates (16) is set to be triangular. The bottom end of the peripheral docking frame plate (10) is fixedly connected to the first support plate (17), one side of the peripheral docking frame plate (10) is fixedly connected to the side support plate (18), the other side of the peripheral docking frame plate (10) is fixedly connected to the connecting frame plate (20), and the top end of the peripheral docking frame plate (10) is fixedly connected to the docking frame plate (19).
7. The high-sealability BIPV photovoltaic component module according to claim 1, characterized in that: A plurality of second guide pillars (21) fixedly connected to the peripheral docking frame plate (10) are provided on one side of the side rainwater bearing box (5); the outer wall of the second guide pillar (21) is connected to a uniform guide assembly, the uniform guide assembly comprising a linkage ring plate (22) slidably connected to the outer wall of the second guide pillar (21); the linkage ring plate (22) is fixedly connected to the side rainwater bearing box (5); a protective assembly is installed above the side rainwater bearing box (5); a limited support ring (23) is fixedly connected to the outer wall of the second guide pillar (21) and located above the linkage ring plate (22); a sliding ring (24) is slidably connected to the outer wall of the second guide pillar (21) and located below the linkage ring plate (22); a sleeve support block (25) and a sliding connection ring (26) are sequentially provided below the sliding ring (24) from top to bottom; and an arc-shaped shielding plate (27) fixedly connected to the side rainwater bearing box (5) is provided above the second guide pillar (21).
8. The high-sealability BIPV photovoltaic assembly module according to claim 7, characterized in that: The sleeve support block (25) is fixedly connected to the sliding connection ring (26) and the sliding ring (24), respectively. The sleeve support block (25) is fixedly connected to the side rainwater bearing box (5). The sleeve support block (25) and the sliding connection ring (26) are both vertically slidably connected to the second guide pillar (21).
9. The high-sealability BIPV photovoltaic assembly module according to claim 7, characterized in that: The protection assembly comprises a second support plate (28) mounted above the side rainwater bearing box (5), both sides of the second support plate (28) are fixedly connected with inclined support plates (29), the top of the inclined support plate (29) is provided with an arc-shaped filter plate (30) fixedly connected to the side rainwater bearing box (5), the top of the rainwater bearing box (4) is fixedly connected with a connecting support block (31), and the top of the connecting support block (31) is fixedly mounted with an arc-shaped filter support plate (32) for filtering rainwater.
10. The high-sealability BIPV photovoltaic component module according to claim 9, characterized in that: The inclined support plate (29) and the second support plate (28) are both fixedly connected to the arc-shaped filter plate (30), and the arc-shaped filter plate (30) and the arc-shaped filter support plate (32) are both made of carbon fiber material.
Citation Information
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