A multi-faceted double-glass photovoltaic module
By designing multi-faceted double-glass photovoltaic modules, the automatic shrinking and unfolding of photovoltaic panels is achieved by using a flip axis and articulated arms. This solves the problems of production capacity limitations and bracket occupation in a limited area of photovoltaic modules, improves the light-receiving area and ease of operation, and saves labor costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- RESTAR SOLAR RENEWABLE ENERGY CO LTD
- Filing Date
- 2022-10-28
- Publication Date
- 2026-07-17
AI Technical Summary
Conventional photovoltaic modules have limited production capacity within a limited area, and the bottom bracket installation occupies an installation plane area, is inconvenient to operate, and has high labor costs.
Design a multi-faceted double-glass photovoltaic module that extends and retracts the photovoltaic panel through a flipping shaft and articulated arms. Combined with a walking joint and cable-laying structure, a servo motor is used to control the folding and horizontal translation of the photovoltaic panel, achieving automatic retraction and expansion, thereby improving the light-receiving area and ease of operation.
It increases the light-receiving area and production capacity of photovoltaic modules, saves labor costs, solves the problem of the bottom bracket occupying the installation plane area, and improves the ease of operation.
Smart Images

Figure CN115664324B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of photovoltaic module technology, specifically relating to a multi-faceted double-glass photovoltaic module. Background Technology
[0002] Most photovoltaic panels are installed and used through planar support structures. However, within a limited area, the area where photovoltaic panels can be installed is limited to the space available for the planar support structure. Therefore, the production capacity of conventional photovoltaic modules is also quite limited.
[0003] To address the aforementioned technical problems, this invention employs a multi-faceted double-glass photovoltaic module that can increase the light-gathering area and improve production capacity by altering the extension and contraction area of the photovoltaic module. Simultaneously, it utilizes its own horizontal extension performance and cable-laying structure to solve the technical problem of the bottom support occupying installation space. The automatic contraction and expansion structure enhances operational convenience and saves labor costs. Summary of the Invention
[0004] To achieve the above objectives, the technical solution of the present invention is as follows:
[0005] A multi-faceted double-glass photovoltaic module includes a photovoltaic panel; the photovoltaic panel is sequentially embedded and installed along connecting plates, each group of connecting plates is folded and connected by a flip shaft, and the connecting plates are folded and distributed on the rods in front of and behind the flip shaft by articulated arms;
[0006] The connecting plate has a support groove on its side, and a fixing mechanism is installed in the support groove;
[0007] A walking joint is installed at the junction of the flipping shaft and the connecting plate, and the walking joint extends horizontally along the walking cable.
[0008] Furthermore, the walking joint includes a walking wheel that rolls along a translation cable, and a protrusion fixedly installed between two sets of walking wheels;
[0009] The traveling wheel consists of two sets of I-beam wheels with a gap in the middle section of the I-beam wheels. The translation cable extends along the gap into the gap between the two sets of traveling wheels.
[0010] A protrusion is vertically inserted between the two sets of I-beam wheels. The two sets of I-beam wheels and the protrusion are fixedly connected by a bolt. The bolt extends into and fixes the wheels along the triangular fixing holes of the wheels and the protrusion.
[0011] Furthermore, the translation cable consists of two sets of cables horizontally connected to each other, with a traveling plate fixedly connected between the two sets of cables. The traveling plate has two sets of limiting holes vertically opened on its surface, and the limiting holes selectively insert into contact with the protrusions.
[0012] The upper and lower protrusions match the size of the limiting port, and the upper and lower protrusions are staggered. The root of the protrusion has a synchronous insert, which is exposed along the mounting hole on the side of the walking wheel. The synchronous insert is inserted into the synchronous socket opened on the shaft of the flip shaft. The flip shaft is connected to the drive port of the external servo motor.
[0013] Furthermore, the fixing mechanism includes a fixing end for fixing the photovoltaic panel and a support strip for supporting the fixing end; the fixing end is fixedly connected to the photovoltaic panel through a support groove opened along the side of the connecting plate, and a support strip is horizontally clamped between the two sets of fixing ends.
[0014] Furthermore, an expansion ring is installed between the articulated arm and the flipping shaft.
[0015] Furthermore, the ends of the connecting plates of two adjacent groups are provided with connecting holes, and hinges are installed in the connecting holes through bolts, and the connecting plates of two adjacent groups are connected by hinges.
[0016] Furthermore, a reflector is installed at the bottom of the connecting plate.
[0017] The beneficial effects of this invention are as follows:
[0018] Compared with existing technologies, this invention adopts a structure that can increase the light-receiving area and improve production capacity by changing the extension and contraction area of photovoltaic modules. At the same time, it can also solve the technical problem of the bottom bracket occupying the installation plane area by utilizing its own horizontal extension performance and cable laying structure. The automatic contraction and expansion structure improves the ease of operation and saves labor costs. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the side structure of a multi-faceted double-glass photovoltaic module according to the present invention.
[0020] Figure 2 This is a top view of a multi-faceted double-glass photovoltaic module according to the present invention.
[0021] Figure 3 This is a simplified structural diagram of a multi-faceted double-glass photovoltaic module with bottom reflection according to the present invention.
[0022] Figure 4 This is a schematic diagram of the structure of a walking component for a multi-faceted double-glass photovoltaic module according to the present invention.
[0023] List of identifiers in attached diagrams:
[0024] 1 is the photovoltaic panel, 2 is the connecting plate, 3 is the flip shaft, 4 is the walking joint, 5 is the reflector, 6 is the connecting hole, 7 is the support bar, 8 is the joint arm, 9 is the expansion ring, 12 is the hinge, 13 is the fixed end, 14 is the support groove, 15 is the triangular fixing hole, 16 is the drive shaft, 17 is the protrusion, 19 is the walking wheel, 20 is the synchronous connector, 21 is the synchronous insert, 22 is the translation cable, 23 is the walking plate, and 24 is the limit port. Detailed Implementation
[0025] The present invention will be further illustrated below with reference to the accompanying drawings and specific embodiments. It should be understood that the following specific embodiments are for illustrative purposes only and are not intended to limit the scope of the present invention.
[0026] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, a multi-faceted double-glass photovoltaic module includes photovoltaic panels. The photovoltaic panels 1 are sequentially embedded and installed along connecting plates 2. Each set of connecting plates 2 is folded and connected by a flip shaft 3. The connecting plates 2 are distributed on the rods before and after the flip shaft 3 by articulated arms 8. The connecting plate 2 serves as a load-bearing structure, allowing the photovoltaic panels 1 to be embedded and installed in its center. Each set of connecting plates 2 is movably installed on both sides of the flip shaft 3 by articulated arms 8, and can expand or contract during the rotation of the flip shaft 3, thereby achieving the purpose of storing the photovoltaic panels 1 and expanding them to provide energy.
[0027] The connecting plate 2 has a support groove 14 on its side, and a fixing mechanism is installed in the support groove 14; the fixing mechanism can effectively support the connecting plate 2 and the photovoltaic panel 1 installed on the connecting plate 2.
[0028] A walking joint 4 is installed at the junction of the flipping shaft 3 and the connecting plate 2. The walking joint 4 extends horizontally along the walking cable 22. The walking joint 4 can be used with an external servo motor, and the control circuit can be used to control the servo motor to control the connecting plate 2 to flip and move horizontally.
[0029] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the walking joint 4 includes walking wheels 19 that roll along the translation cable 22, and a protrusion 17 fixedly installed between the two sets of walking wheels 19. The translation cable 22 serves as an overhead walking track, which can cooperate with the rolling walking wheels 19 to complete the stepping translation process. The protrusion 17 between the two sets of walking wheels 19 can serve as a stepping support. During the rotation of the walking wheels 19, the protrusion 17 can be driven to perform flipping support and stepping movements.
[0030] The walking wheel 19 consists of two sets of I-beam wheels with a gap in the middle section. The translation cable 22 extends along the gap into the gap between the two sets of walking wheels 19. The translation cable 22 can serve as a double track structure.
[0031] A protrusion 17 is vertically inserted between the two sets of I-beam wheels. The two sets of I-beam wheels and the protrusion 17 are fixedly connected by a bolt. The bolt extends into and fixes the wheels 19 along the triangular fixing holes 15 opened in the protrusion 17. The assembly structure of the wheels 19 is described here.
[0032] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the translation cable 22 consists of two sets of horizontal cables, and a walking plate 23 is fixedly connected between the two sets of cables. Two sets of limiting ports 24 are vertically opened on the walking plate 23. The limiting ports 24 selectively insert into contact with the protrusions 17. The limiting ports 24 cooperate with the flipped protrusions 17 to complete the step limiting, and at the same time provide a support point for the flipping of the protrusions 17, allowing the protrusions 17 to perform further flipping actions.
[0033] The upper and lower protrusions 17 are sized to match the limiting port 24, and the upper and lower protrusions 17 are staggered. A synchronous insert 21 is retained at the base of each protrusion 17. The synchronous insert 21 protrudes along the mounting hole on the side of the traveling wheel 19 and is inserted into the synchronous insertion port 20 on the shaft of the flipping shaft 3. The flipping shaft 3 is connected to the drive port of an external servo motor. The staggered protrusions 17 can cooperate with the upper and lower traveling wheels 19 to complete a mirror flipping action, thereby avoiding the situation where the upper and lower sets of protrusions 17 collide and cannot move.
[0034] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the fixing mechanism includes a fixing end 13 for fixing the photovoltaic panel 1, and a support strip 7 for supporting the fixing end 13. The fixing end 13 is fixedly connected to the photovoltaic panel 1 through a support groove 14 opened along the side of the connecting plate 2. The support strip 7 is laterally engaged between the two sets of fixing ends 13. The fixing end 13 extends into the support groove 14 and is fixedly connected to the photovoltaic panel 1, serving as an external fixing structure. The support strip 7 is then pushed laterally into the support groove 14 and laterally engaged with the fixing end 13, further fixing the photovoltaic panel 1 within the connecting plate 2.
[0035] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, an expansion ring 9 is installed between the articulated arm 8 and the flipping shaft 3. The expansion ring 9 between the articulated arm 8 and the flipping shaft 3 serves to fix the structure and prevent dust and water damage.
[0036] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the ends of the connecting plates 2 of adjacent groups are provided with connecting holes 6. Hinges 12 are installed in the connecting holes 6 through bolts, and the connecting plates 2 of adjacent groups are connected by hinges 12. The hinges 12 can serve as a follow-up structure and can cooperate with the connecting plates 2 to perform extension and retraction movements.
[0037] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, a reflector 5 is installed at the bottom of the connecting plate 2. The reflector 5 can collect light reflected from the bottom.
[0038] It should be noted that the above content merely illustrates the technical concept of the present invention and should not be construed as limiting the scope of protection of the present invention. For those skilled in the art, various improvements and modifications can be made without departing from the principle of the present invention, and all such improvements and modifications fall within the scope of protection of the claims of the present invention.
Claims
1. A multi-faceted double-glass photovoltaic module, comprising a photovoltaic panel; characterized in that: The photovoltaic panel (1) is embedded and installed sequentially along the connecting plate (2). Each group of connecting plates (2) is folded and connected by a flip shaft (3). The connecting plates (2) are all folded and distributed on the rods in front of and behind the flip shaft (3) by articulated arms (8). The connecting plate (2) has a support groove (14) on its side, and a fixing mechanism is installed in the support groove (14); A walking joint (4) is installed at the junction of the flipping shaft (3) and the connecting plate (2), and the walking joint (4) performs horizontal extension movement along the walking cable (22); The walking joint (4) includes a walking wheel (19) that rolls along the translation cable (22) and a protrusion (17) fixedly installed between the two sets of walking wheels (19). The translation cable (22) serves as an overhead walking track and can cooperate with the rolling walking wheel (19) to complete the stepping translation process. The protrusion (17) between the two sets of walking wheels (19) can serve as a stepping support. During the rotation of the walking wheel (19), it can drive the protrusion (17) to perform flipping support and stepping actions.
2. The multi-faceted double-glass photovoltaic module according to claim 1, characterized in that: The walking wheel (19) consists of two sets of I-beam wheels with a gap in the middle section. The translation cable (22) extends along the gap into the gap between the two sets of walking wheels (19).
3. A multi-faceted double-glass photovoltaic module according to claim 2, characterized in that: The two sets of I-beam wheels and the protrusion (17) are fixedly connected by a bolt, which extends into and fixes the wheel (19) and the protrusion (17) through the triangular fixing hole (15).
4. A multi-faceted double-glass photovoltaic module according to claim 1, characterized in that: The translation cable (22) consists of two sets of cables horizontally, and a walking plate (23) is fixedly connected between the two sets of cables. The walking plate (23) has two sets of limiting ports (24) vertically opened on its body. The limiting ports (24) selectively insert into contact with the protrusions (17). The upper and lower protrusions (17) are matched with the size of the limiting port (24), and the upper and lower protrusions (17) are staggered. The root of the protrusion (17) retains a synchronous insert (21). The synchronous insert (21) is exposed along the mounting hole on the side of the walking wheel (19). The synchronous insert (21) is inserted into the synchronous socket (20) opened on the shaft of the flip shaft (3). The flip shaft (3) is connected to the drive port of the external servo motor.
5. A multi-faceted double-glass photovoltaic module according to claim 1, characterized in that: The fixing mechanism includes a fixing end (13) for fixing the photovoltaic panel and a support strip (7) for supporting the fixing end (13); the fixing end (13) is fixedly connected to the photovoltaic panel (1) through a support groove (14) opened along the side of the connecting plate (2), and the support strip (7) is horizontally clamped between the two sets of fixing ends (13).
6. A multi-faceted double-glass photovoltaic module according to claim 1, characterized in that: An expansion ring (9) is filled between the articulated arm (8) and the flipping shaft (3).
7. A multi-faceted double-glass photovoltaic module according to claim 1, characterized in that: The connecting plates (2) of two adjacent groups are provided with connecting holes (6) at their ends. The connecting holes (6) are fitted with hinges (12) by means of bolts. The connecting plates (2) of two adjacent groups are connected by means of hinges (12).
8. A multi-faceted double-glass photovoltaic module according to claim 1, characterized in that: A reflector (5) is installed at the bottom of the connecting plate (2).