Novel photovoltaic enclosure style node structure
By designing assembled photovoltaic wall structure and rotary structure, the problems of cumbersome installation of existing photovoltaic walls and low solar energy utilization are solved, and flexible adjustment and efficient utilization of photovoltaic panels are achieved.
Patent Information
- Application Number
- CN202510381381.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-05-13
AI Technical Summary
The installation process of existing photovoltaic walls is cumbersome, and the fixed connection between the photovoltaic panel structure and the wall results in low solar energy utilization and cannot adapt to different terrain and lighting conditions.
A new photovoltaic fence-style node structure was designed, adopting an assembled fence structure and an adjustable angle photovoltaic panel structure. The rotational structure and driving structure are used to achieve rapid adjustment and fixation of photovoltaic panels to adapt to different terrain and lighting conditions.
It realizes rapid assembly and flexible adjustment of photovoltaic panel structure, improves solar energy utilization, reduces installation time, and improves the overall use effect of photovoltaic walls.
Smart Images

Figure CN119981530A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of photovoltaic fences, and in particular is a novel photovoltaic fence style node structure. Background Art
[0002] At present, solar building applications are mostly implemented in the building sector. It is particularly important to vigorously promote the application of solar photovoltaic cells in the field of building integration. Independent structural applications are relatively rare. While some walls have an isolation effect, they can also generate electricity through the photovoltaic panel structure installed on the walls.
[0003] Existing photovoltaic fences usually use columns, beams, diagonal braces and other components to fix the photovoltaic panel structure to the fence. The installation process is cumbersome, and after such installation, the photovoltaic panel structure and the fence are usually fixedly connected. The photovoltaic panel structure will be affected by the terrain of the fence and the lighting conditions, so that the solar energy utilization rate of the photovoltaic panel structure is not very high, which reduces the use effect of the photovoltaic fence and cannot meet people's needs. Summary of the invention
[0004] The present invention aims to solve the technical problems existing in the prior art; to this end, the present invention proposes a novel photovoltaic wall style node structure.
[0005] A novel photovoltaic fence style node structure includes: several groups of assembleable fence structures and several groups of photovoltaic panel structures arranged outside the fence structure and directly converting sunlight into electrical energy, and also includes: a connecting mechanism that installs several groups of photovoltaic panel structures on the fence structure and can adjust the position angle of the photovoltaic panel structure. The fence structure and the photovoltaic panel structure can be quickly assembled together to reduce on-site welding nodes; wherein the connecting mechanism includes a first rotating structure that is rotatably installed inside the fence structure and detachably connected to the photovoltaic panel structure, a second rotating structure that is arranged on one side of two groups of first rotating structures and transmission-connected to the first rotating structure, and a driving structure that controls the photovoltaic panel structure to adjust its position through the first rotating structure and the second rotating structure. A rotating groove for moving the first rotating structure and the second rotating structure is arranged inside the fence structure. The driving structure can control several groups of photovoltaic panel structures to rotate and adjust their angles on the fence structure through the first rotating structure and the second rotating structure to adapt to different terrains and lighting conditions, thereby allowing the photovoltaic panel structure to improve the utilization rate of solar energy.
[0006] As a further solution of the present invention: the first rotating structure includes a first rotating gear rotatably installed inside the wall structure and a second rotating gear arranged at the lower side of the first rotating gear and meshing with the first rotating gear; wherein, a rotating arm connected to the photovoltaic panel structure is arranged at one end of the first rotating gear; the height position of the first rotating gear connected to the driving structure inside the wall structure is in a fixed state, and the height position of the second rotating gear meshing with the first rotating gear is also in a fixed state, and the positions of the first rotating gear and the second rotating gear are changed with the movement of the second rotating structure; the output shaft of the driving structure is connected to the rotating arm and controls the first rotating gear to rotate, and the first rotating gear and the second rotating gear can enable the rotating arm to control the photovoltaic panel structure to rotate, and the first rotating gear and the second rotating gear can limit the position of the photovoltaic panel structure.
[0007] As a further solution of the present invention: the second rotating structure includes a first rotating member coaxially connected to the first rotating gear and a second rotating member coaxially connected to the second rotating gear; wherein, one end of the first rotating member is provided with a first rotating rod rotatably connected to an adjacent end of the second rotating member, and the first rotating member and the second rotating member can rotate and extend, so that they can be raised and lowered in the rotating groove and control the photovoltaic panel structure to rotate.
[0008] As a further solution of the present invention: the first rotating member and the second rotating member both include a connecting tube and a connecting rod movably arranged in the connecting tube; wherein, one end of the connecting rod extends into the connecting tube and is provided with a block, and the block can prevent the connecting rod from being separated from the connecting tube during operation; the inner wall of the connecting tube is provided with a spring connected to the block; one end of the connecting tube and one end of the connecting rod are both provided with a mounting block for external connection, and the connecting tube, the connecting rod and the spring can enable the first rotating member and the second rotating member to be telescopic; wherein, the first rotating member and the second rotating member can also be set as electric telescopic rods, and the electric telescopic rods can be started to telescope with the rotation of the first rotating gear and the second rotating gear.
[0009] As a further solution of the present invention: a guide assembly for guiding the first rotating structure and the second rotating structure to move is arranged inside the wall structure; the first rotating structure and the second rotating structure are both rotatably connected to the guide assembly.
[0010] As a further solution of the present invention: the guide assembly includes a vertical guide groove opened inside the wall structure, a guide block movably arranged in the guide groove, and a connecting block arranged outside the guide groove and integrally formed with the guide block; wherein, the outer side surface of the connecting block is rotatably provided with a second rotating rod coaxially connected to the first rotating gear and the second rotating gear respectively, and the cooperation between the guide block and the connecting block can guide the first rotating structure and the second rotating structure to move, thereby allowing the first rotating gear and the second rotating gear to move up and down in the direction of the vertical plane.
[0011] As a further solution of the present invention: a fixing component that is detachably fixed to the photovoltaic panel structure is provided at one end of the rotating arm away from the first rotating gear; several groups of the fixing components are respectively arranged at the two end portions on the upper back side of the photovoltaic panel structure and at the middle position on the upper back side of the photovoltaic panel structure.
[0012] As a further solution of the present invention: the fixing assembly includes a fixing piece detachably mounted on the photovoltaic panel structure, a fixing seat fixedly arranged at one end of the rotating arm and a fixing clamping tube detachably fixing the fixing piece to the fixing seat, the fixing seat is provided with a fixing groove connected to the fixing piece, and the vertical section of the fixing piece is an "L"-shaped structure; the fixing assembly also includes a lifting clamping rod movably arranged in the fixing piece and aligned and clamped with the fixing clamping tube, and a limiting structure that is transmission-connected to the lifting clamping rod and limits the fixing piece; wherein, a plurality of groups of limiting stop rods that can separate the fixing clamping tube from the lifting clamping rod are arranged in a circular array on the outer side of the bottom of the lifting clamping rod; the lifting clamping rod includes a clamping ring member clamped with the fixing clamping tube and a lifting rod for fixing the clamping ring member and the limiting stop rod, the bottom end of the fixing clamping tube is provided with a limiting clamping groove clamped with the clamping ring member, the clamping ring member can be rotatably clamped in the limiting clamping groove, and the outer bottom of the fixing clamping tube can be threadedly connected with the fixing piece.
[0013] As a further solution of the present invention: the limiting structure includes a first limiting strip coaxially connected to the lifting card rod and a second limiting strip arranged on one side of the first limiting strip and plugged into the fixing member for limiting; wherein, a first rack is arranged on the inner side surface of the first limiting strip; a second rack is arranged on the inner side surface of the second limiting strip; a first limiting gear meshing with the first rack and a second limiting gear meshing with the second rack are arranged between the first limiting strip and the second limiting strip; the first limiting gear and the second limiting gear are meshed, the diameter of the first limiting gear is larger than the diameter of the second limiting gear, the second limiting strip is arranged on the outside of the first limiting gear, and a limiting groove plugged into the bottom end of the second limiting strip is opened on the fixing seat.
[0014] As a further solution of the present invention: the wall structure includes several groups of wall columns and a wall component arranged between two groups of wall columns; the driving structure is detachably mounted on the inner upper part of the wall component; a bottom beam is arranged at the bottom between two adjacent groups of wall columns, the wall component includes several groups of support seats vertically arranged on the upper end of the bottom beam and cross beams vertically mounted on the upper and lower ends of the inner walls of the two adjacent groups of support seats, several groups of vertical rods are vertically mounted between the two groups of cross beams, mounting rings are symmetrically mounted on the vertical rods, and several groups of mounting grooves detachably fixed to the mounting rings are evenly spaced on the inner side surface of the cross beam.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] (1) The present invention provides a connection mechanism, and the fence columns, bottom beams, support seats, cross beams, vertical rods and mounting rings are quickly assembled into a fence structure, thereby reducing installation time. The driving structure, the first rotating gear, the second rotating gear, the rotating arm, the first rotating member and the second rotating member can control a plurality of groups of photovoltaic panel structures to adjust their angles on the fence structure, so that the photovoltaic panel structure can adapt to different terrains and lighting conditions, thereby improving the solar energy utilization rate of the photovoltaic panel structure.
[0017] (2) The present invention assembles the first rotating member and the second rotating member into a guide component, a connecting rod, a connecting tube, a stop block and a spring, so that when the first rotating gear and the second rotating gear are transmitted through the second rotating structure, they can simultaneously control several groups of photovoltaic panel structures to adjust the angle and position within a limited space, thereby improving the use effect of the second rotating structure. In addition, through the provided connecting block and guide block, the first rotating gear and the second rotating gear can be guided and moved in the set guide groove, thereby improving the stability of the connecting mechanism during movement.
[0018] (3) The present invention can connect the photovoltaic panel structure with the rotating arm by setting up a fixing assembly, a fixing part, a fixing seat and a fixing clamping tube. The fixing clamping tube, the lifting clamping rod, the first limit bar, the first rack, the first limit gear, the second limit gear and the second rack enable the second limit bar to connect the fixing part with the fixing seat, thereby improving the stability of the connection between the fixing part and the fixing seat, facilitating the disassembly and maintenance of the photovoltaic panel structure, and improving the firmness of the connection between the photovoltaic panel structure and the fixing seat. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is the overall structure diagram of the present invention.
[0020] Figure 2 It is a partial structural diagram of the wall structure and photovoltaic panel structure in the present invention.
[0021] Figure 3 It is a partial structural diagram of the wall components and connecting mechanisms in the present invention.
[0022] Figure 4 It is a partial structural diagram of the photovoltaic panel structure and connection mechanism in the present invention.
[0023] Figure 5 For the present invention Figure 4 A magnified view of the structure in the middle.
[0024] Figure 6 It is a partial structural diagram of the connecting mechanism in the present invention.
[0025] Figure 7 For the present invention Figure 6 A magnified view of the structure at B in the middle.
[0026] Figure 8 It is a partial structural diagram of the first rotating member and the second rotating member in the present invention.
[0027] Fig. 9 It is a partial structural diagram of the fixing component in the present invention.
[0028] Fig.10 For the present invention Fig. 9 A magnified view of the structure at center C.
[0029] Fig.11 It is a partial structural diagram of the wall components and vertical rods in the present invention.
[0030] In the figure: 1, wall structure; 2, photovoltaic panel structure; 3, first rotating structure; 4, second rotating structure; 5, driving structure; 6, first rotating gear; 7, second rotating gear; 8, rotating arm; 9, mounting block; 10, first rotating member; 11, second rotating member; 12, first rotating rod; 13, connecting pipe; 14, connecting rod; 15, stopper; 16, spring; 17, guide block; 18, connecting block; 19, second rotating rod; 20, fixing member; 21. Fixed seat; 22. Fixed clamping tube; 23. Lifting clamping rod; 24. Limiting structure; 25. Limiting stop rod; 26. First limiting strip; 27. Second limiting strip; 28. First rack; 29. Second rack; 30. First limiting gear; 31. Second limiting gear; 32. Fence column; 33. Fence component; 34. Clamping ring; 35. Lifting rod; 36. Bottom beam; 37. Support seat; 38. Crossbeam; 39. Vertical rod; 40. Mounting ring. DETAILED DESCRIPTION
[0031] The technical solution of the present invention will be clearly and completely described below in conjunction with the embodiments. 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 creative work are within the scope of protection of the present invention.
[0032] Embodiment 1
[0033] See also Figure 1 - Figure 6 and Fig.11 The present application provides a novel photovoltaic wall style node structure, including: a plurality of groups of assembled wall structures 1 and a plurality of groups of photovoltaic panel structures 2 arranged outside the wall structure 1 and directly converting sunlight into electrical energy. The wall structure 1 is made of lightweight materials to reduce weight and cost. The materials have high strength and durability to ensure the long-term stability of the wall structure 1. The application also includes: a connection mechanism for installing a plurality of groups of photovoltaic panel structures 2 on the wall structure 1 and adjusting the position and angle of the photovoltaic panel structures 2. The wall structure 1 and the photovoltaic panel structure 2 can be quickly assembled together to reduce on-site welding nodes; wherein the connection mechanism includes a rotatable device installed on the wall structure 1. A first rotating structure 3 is provided inside and detachably connected to the photovoltaic panel structure 2, a second rotating structure 4 is arranged on one side of two groups of first rotating structures 3 and is transmission-connected to the first rotating structure 3, and a driving structure 5 controls the photovoltaic panel structure 2 to adjust its position through the first rotating structure 3 and the second rotating structure 4. A rotating groove for moving the first rotating structure 3 and the second rotating structure 4 is provided inside the wall structure 1. The driving structure 5 can control several groups of photovoltaic panel structures 2 to rotate and adjust their angles on the wall structure 1 through the first rotating structure 3 and the second rotating structure 4 to adapt to different terrains and lighting conditions, thereby improving the solar energy utilization rate of the photovoltaic panel structure 2.
[0034] In the present invention, the first rotating structure 3 includes a first rotating gear 6 rotatably installed inside the wall structure 1 and a second rotating gear 7 arranged at the lower side of the first rotating gear 6 and meshing with the first rotating gear 6; wherein, a rotating arm 8 connected to the photovoltaic panel structure 2 is arranged at one end of the first rotating gear 6; the height position of the first rotating gear 6 connected to the driving structure 5 inside the wall structure 1 is in a fixed state, and the height position of the second rotating gear 7 meshing with the first rotating gear 6 is also in a fixed state, and the positions of the other first rotating gears 6 and the second rotating gears 7 are changed with the movement of the second rotating structure 4; the output shaft of the driving structure 5 is connected to the rotating arm 8 and controls the first rotating gear 6 to rotate, the first rotating gear 6 and the second rotating gear 7 can enable the rotating arm 8 to control the photovoltaic panel structure 2 to rotate, and the first rotating gear 6 and the second rotating gear 7 can limit the position of the photovoltaic panel structure 2.
[0035] The second rotating structure 4 in the present invention includes a first rotating member 10 coaxially connected to the first rotating gear 6 and a second rotating member 11 coaxially connected to the second rotating gear 7; wherein, one end of the first rotating member 10 is provided with a first rotating rod 12 rotatably connected to the adjacent end of the second rotating member 11, and the first rotating member 10 and the second rotating member 11 can rotate and extend, so that they can be raised and lowered in the rotating groove and control the photovoltaic panel structure 2 to rotate.
[0036] The wall structure 1 in the present invention includes a plurality of groups of wall columns 32 and a wall component 33 arranged between two groups of wall columns 32; the driving structure 5 is detachably mounted on the inner upper part of the wall component 33; a bottom beam 36 is arranged at the bottom between two adjacent groups of wall columns 32, and the wall component 33 includes a plurality of groups of support seats 37 vertically arranged on the upper end of the bottom beam 36 and cross beams 38 vertically mounted on the upper and lower ends of the inner walls of the two adjacent groups of support seats 37, respectively; the support seats 37, cross beams 38, bottom beams 36 and wall columns 32 can all be fixed by bolts, a plurality of groups of vertical rods 39 are vertically mounted between the two groups of cross beams 38, and mounting rings 40 are symmetrically sleeved on the vertical rods 39, and a plurality of groups of mounting grooves detachably fixed to the mounting rings 40 are evenly spaced on the inner side surface of the cross beam 38.
[0037] In summary, several groups of fence columns 32 are installed on the ground, the bottom beam 36 is fixed between the two groups of fence columns 32, the support seat 37 and the cross beam 38 are respectively fixed to the fence columns 32 and the bottom beam 36, the mounting ring 40 is fixed to the mounting groove, and several groups of vertical rods 39 are respectively installed between the two groups of cross beams 38, so as to assemble the fence structure 1, and the photovoltaic panel structure 2 is installed on the fence structure 1. When the angle position of the photovoltaic panel structure 2 needs to be adjusted, the driving structure 5 is started to drive the first rotating gear 6 to rotate, and the first rotating gear 6 drives the second rotating gear 6 to rotate. The rotating gear 7 rotates, and the second rotating gear 7 drives the next adjacent first rotating member 10 to move through the second rotating member 11, so that the first rotating member 10 drives the first rotating gear 6 to rotate and move at the same time, and the first rotating gear 6 drives the meshing second rotating gear 7 to rotate and move at the same time. Similarly, the first rotating gear 6 and the second rotating gear 7 on the lower side are controlled to rotate and move at the same time. The first rotating member 10 drives the rotating arm 8 to rotate while rotating, and the rotating arm 8 drives the photovoltaic panel structure 2 to adjust the angle and position.
[0038] Embodiment 2
[0039] Reference Figure 3 - Figure 8, which is the second embodiment of the present invention, wherein the first rotating member 10 and the second rotating member 11 in the present invention both include a connecting tube 13 and a connecting rod 14 movably arranged in the connecting tube 13; wherein one end of the connecting rod 14 extends into the connecting tube 13 and is provided with a stopper 15, the stopper 15 can prevent the connecting rod 14 from being separated from the connecting tube 13 during operation; the inner wall of the connecting tube 13 is provided with a spring 16 connected to the stopper 15; one end of the connecting tube 13 and one end of the connecting rod 14 are both provided with a mounting block 9 for external connection, the connecting tube 13, the connecting rod 14 and the spring 16 can enable the first rotating member 10 and the second rotating member 11 to be telescopic; wherein the first rotating member 10 and the second rotating member 11 can also be set as electric telescopic rods, which can be started to telescope with the rotation of the first rotating gear 6 and the second rotating gear 7.
[0040] In the present invention, a guide assembly for guiding the first rotating structure 3 and the second rotating structure 4 to move is arranged inside the wall structure 1; the first rotating structure 3 and the second rotating structure 4 are both rotatably connected to the guide assembly.
[0041] The guide assembly in the present invention includes a vertical guide groove opened inside the wall structure 1, a guide block 17 movably arranged in the guide groove, and a connecting block 18 arranged outside the guide groove and integrally formed with the guide block 17; wherein, the outer side surface of the connecting block 18 is rotatably provided with a second rotating rod 19 coaxially connected to the first rotating gear 6 and the second rotating gear 7 respectively, and the cooperation between the guide block 17 and the connecting block 18 can guide the first rotating structure 3 and the second rotating structure 4 to move, thereby allowing the first rotating gear 6 and the second rotating gear 7 to move up and down in the direction of the vertical plane.
[0042] In summary, when the first rotating gear 6 and the second rotating gear 7 rotate and move at the same time, the first rotating member 10 and the second rotating member 11 move and rotate, so that the connecting rod 14 moves in the connecting tube 13, and the connecting rod 14 controls the spring 16 to extend and retract through the block 15. When the first rotating member 10 and the second rotating member 11 control the first rotating gear 6 to move, the first rotating gear 6 drives the connecting block 18 to move through the second rotating rod 19, and the connecting block 18 drives the guide block 17 to move in the guide groove, so that several groups of first rotating structures 3 and second rotating structures 4 can simultaneously control several groups of photovoltaic panel structures 2 to adjust the angle and position, so that the photovoltaic panel structure 2 can adapt to different terrains and lighting conditions, thereby improving the utilization rate of solar energy of the photovoltaic panel structure 2.
[0043] Embodiment 3
[0044] Reference Figure 1 - Figure 4 and Fig. 9 - Fig.11, which is the third embodiment of the present invention, wherein the end of the rotating arm 8 away from the first rotating gear 6 is provided with a fixing component that is detachably fixed to the photovoltaic panel structure 2; and several groups of fixing components are respectively arranged at the two end portions on the upper back side of the photovoltaic panel structure 2 and at the middle position on the upper back side of the photovoltaic panel structure 2.
[0045] The fixing assembly of the present invention comprises a fixing member 20 detachably mounted on the photovoltaic panel structure 2, a fixing seat 21 fixedly arranged at one end of the rotating arm 8, and a fixing clamping tube 22 for detachably fixing the fixing member 20 to the fixing seat 21, a fixing groove connected to the fixing member 20 is provided on the fixing seat 21, the vertical section of the fixing member 20 is an "L"-shaped structure, and a fixing hole corresponding to the fixing clamping tube 22 is provided on the fixing member 20; the fixing assembly also comprises a lifting clamping rod 23 movably arranged in the fixing member 20 and aligned with and clamped to the fixing clamping tube 22, and a limiting clamping rod 23 which is transmission-connected to the lifting clamping rod 23 and limits the fixing member 20. The lifting and lowering rod 23 has a plurality of limit stop rods 25 which can separate the fixed clamping tube 22 from the lifting and lowering rod 23, and the fixing member 20 has a plurality of limit stop grooves corresponding to the limit stop rods 25. The lifting and lowering rod 23 includes a clamping ring 34 which is clamped with the fixed clamping tube 22 and a lifting rod 35 which is used to fix the clamping ring 34 and the limit stop rod 25. The bottom end of the fixed clamping tube 22 has a limit groove which is clamped with the clamping ring 34. The clamping ring 34 can be rotatably clamped in the limit groove. The outer bottom of the fixed clamping tube 22 can be threadedly connected with the fixing member 20.
[0046] The limiting structure 24 of the present invention includes a first limiting bar 26 coaxially connected to the lifting card rod 23 and a second limiting bar 27 arranged on one side of the first limiting bar 26 and inserted and limited with the fixing member 20; wherein, a first rack 28 is arranged on the inner side of the first limiting bar 26; a second rack 29 is arranged on the inner side of the second limiting bar 27; a first limiting gear 30 meshing with the first rack 28 and a second limiting gear 31 meshing with the second rack 29 are arranged between the first limiting bar 26 and the second limiting bar 27; the first limiting gear 30 meshing with the first rack 28 and the second limiting gear 31 meshing with the second rack 29 are arranged between the first limiting bar 26 and the second limiting bar 27; 0 is meshed with the second limit gear 31; the first rack 28, the second rack 29, the first limit gear 30 and the second limit gear 31 cooperate to enable the first limit bar 26 and the second limit bar 27 to be fixedly set on the fixing member 20, and the second limit bar 27 will not move downward under the action of gravity. The diameter of the first limit gear 30 is larger than the diameter of the second limit gear 31, and the second limit bar 27 is arranged on the outside of the first limit gear 30. A limit groove is provided on the fixing seat 21 to be plugged into the bottom end of the second limit bar 27.
[0047] In summary, the fixing member 20 is inserted into the fixing seat 21, the fixing clamping tube 22 passes through the fixing seat 21 and is inserted into the fixing hole, the lifting rod 35 is inserted into the fixing clamping tube 22, and the clamping ring 34 is clamped with the fixing clamping tube 22, the fixing clamping tube 22 controls the lifting clamping rod 23 to move downward, so that the lifting clamping rod 23 drives the first limiting bar 26 to move downward, the first limiting bar 26 drives the first limiting gear 30 to rotate through the first rack 28, the first limiting gear 30 drives the second limiting gear 31 to rotate, the second limiting gear 31 drives the second limiting bar 27 to move downward through the second rack 29, and the second limiting bar 27 is inserted into the limiting groove, so that the fixing member 20 is fixed to the fixing seat 21, and the connection between the photovoltaic panel structure 2 and the fixing seat 21 is improved;
[0048] When it is necessary to disassemble the fixing part 20 from the fixing seat 21, the fixing clamping tube 22 is controlled to move upward, so that the fixing clamping tube 22 drives the lifting clamping rod 23 to move upward, and the lifting clamping rod 23 separates the second limiting bar 27 from the fixing seat 21 through the first limiting bar 26, the first limiting gear 30 and the second limiting gear 31. When the limiting stop rod 25 moves to the inner top surface of the limiting stop groove, the fixing clamping tube 22 is moved upward, so that the clamping ring 34 is separated from the fixing clamping tube 22, thereby separating the fixing clamping tube 22 from the fixing seat 21, and removing the fixing part 20 from the fixing seat 21.
[0049] Embodiment 4
[0050] Reference Figure 1 - Fig.11 , this embodiment is obtained by combining embodiment 1, embodiment 2 and embodiment 3.
[0051] The fence columns 32, the bottom beams 36, the support seats 37, the cross beams 38, the vertical rods 39 and the mounting rings 40 are quickly assembled into the fence structure 1, which reduces the installation time. The driving structure 5, the first rotating gear 6, the second rotating gear 7, the rotating arm 8, the first rotating member 10 and the second rotating member 11 can control the plurality of photovoltaic panel structures 2 to adjust the angles on the fence structure 1, so that the photovoltaic panel structures 2 can adapt to different terrains and lighting conditions, thereby improving the solar energy utilization rate of the photovoltaic panel structures 2;
[0052] The connecting rod 14, the connecting pipe 13, the stopper 15 and the spring 16 are assembled into the first rotating member 10 and the second rotating member 11, so that when the first rotating gear 6 and the second rotating gear 7 are transmitted through the second rotating structure 4, they can simultaneously control several groups of photovoltaic panel structures 2 to adjust the angle and position in a limited space, thereby improving the use effect of the second rotating structure 4. In addition, through the provided connecting block 18 and the guide block 17, the first rotating gear 6 and the second rotating gear 7 can be guided and moved in the set guide groove, thereby improving the stability of the connecting mechanism during movement;
[0053] The fixing member 20, the fixing seat 21 and the fixing clamping tube 22 can connect the photovoltaic panel structure 2 with the rotating arm 8. The fixing clamping tube 22, the lifting clamping rod 23, the first limit bar 26, the first rack 28, the first limit gear 30, the second limit gear 31 and the second rack 29 enable the second limit bar 27 to connect the fixing member 20 with the fixing seat 21, thereby improving the stability of the connection between the fixing member 20 and the fixing seat 21, and facilitating the disassembly and maintenance of the photovoltaic panel structure 2, thereby improving the firmness of the connection between the photovoltaic panel structure 2 and the fixing seat 21.
[0054] The above embodiments are only used to illustrate the technical method of the present invention rather than to limit it. 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 method of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical method of the present invention.
Claims
1. A novel photovoltaic wall-style node structure, comprising a plurality of assembled wall structures (1) and a plurality of photovoltaic panel structures (2) arranged outside the wall structures (1) and directly converting sunlight into electrical energy, characterized in that: Also includes: A connecting mechanism for mounting a plurality of photovoltaic panel structures (2) on the wall structure (1) and for adjusting the position and angle of the photovoltaic panel structures (2); The connection mechanism comprises a first rotating structure (3) rotatably mounted inside the wall structure (1) and detachably connected to the photovoltaic panel structure (2), a second rotating structure (4) arranged on one side of the two groups of first rotating structures (3) and transmission-connected to the first rotating structures (3), and a driving structure (5) for controlling the photovoltaic panel structure (2) to adjust its position through the first rotating structure (3) and the second rotating structure (4).
2. A novel photovoltaic wall style node structure according to claim 1, characterized in that: The first rotating structure (3) comprises a first rotating gear (6) rotatably mounted inside the wall structure (1) and a second rotating gear (7) arranged at the lower side of the first rotating gear (6) and meshing with the first rotating gear (6); Wherein, one end of the first rotating gear (6) is provided with a rotating arm (8) connected to the photovoltaic panel structure (2); The output shaft of the driving structure (5) is connected to the rotating arm (8) and controls the first rotating gear (6) to rotate.
3. A novel photovoltaic wall style node structure according to claim 2, characterized in that: The second rotating structure (4) comprises a first rotating member (10) coaxially connected to the first rotating gear (6) and a second rotating member (11) coaxially connected to the second rotating gear (7); Wherein, one end of the first rotating member (10) is provided with a first rotating rod (12) which is rotatably connected to an adjacent end of the second rotating member (11).
4. A novel photovoltaic wall style node structure according to claim 3, characterized in that: The first rotating member (10) and the second rotating member (11) both comprise a connecting tube (13) and a connecting rod (14) movably disposed in the connecting tube (13); Wherein, one end of the connecting rod (14) extends into the connecting pipe (13) and is provided with a stopper (15); The inner wall of the connecting pipe (13) is provided with a spring (16) connected to the stopper (15); One end of the connecting pipe (13) and one end of the connecting rod (14) are both provided with a mounting block (9) for external connection.
5. A novel photovoltaic wall style node structure according to claim 2, characterized in that: A guide assembly for guiding the first rotating structure (3) and the second rotating structure (4) to move is arranged inside the enclosure structure (1); The first rotating structure (3) and the second rotating structure (4) are both rotatably connected to the guide assembly.
6. A novel photovoltaic wall style node structure according to claim 5, characterized in that: The guide assembly comprises a vertical guide groove provided inside the wall structure (1), a guide block (17) movably arranged in the guide groove, and a connecting block (18) arranged outside the guide groove and integrally formed with the guide block (17); Wherein, a second rotating rod (19) which is coaxially connected to the first rotating gear (6) and the second rotating gear (7) is rotatably provided on the outer side surface of the connecting block (18).
7. A novel photovoltaic wall style node structure according to claim 2, characterized in that: An end of the rotating arm (8) away from the first rotating gear (6) is provided with a fixing component which is detachably fixed to the photovoltaic panel structure (2); Several groups of the fixing components are respectively arranged at the two end portions of the upper back side of the photovoltaic panel structure (2) and at the middle position of the upper back side of the photovoltaic panel structure (2).
8. A novel photovoltaic wall style node structure according to claim 7, characterized in that: The fixing assembly comprises a fixing member (20) detachably mounted on the photovoltaic panel structure (2), a fixing seat (21) fixedly arranged at one end of the rotating arm (8), and a fixing clamp (22) detachably fixing the fixing member (20) and the fixing seat (21); The fixing assembly further comprises a lifting and lowering clamp rod (23) movably arranged in the fixing member (20) and aligned with and clamped to the fixing clamp tube (22), and a limiting structure (24) drivingly connected to the lifting and lowering clamp rod (23) and limiting the position of the fixing member (20); Wherein, a plurality of groups of limit stop rods (25) capable of separating the fixed clamping tube (22) from the lifting clamping rod (23) are arranged in a circular array on the outer side of the bottom of the lifting clamping rod (23).
9. A novel photovoltaic wall style node structure according to claim 8, characterized in that: The limiting structure (24) comprises a first limiting strip (26) coaxially connected to the lifting clamp rod (23) and a second limiting strip (27) arranged on one side of the first limiting strip (26) and plugged with the fixing member (20) for limiting the position; Wherein, a first rack (28) is provided on the inner side surface of the first limiting strip (26); A second rack (29) is provided on the inner side surface of the second limiting strip (27); A first limiting gear (30) meshing with the first rack (28) and a second limiting gear (31) meshing with the second rack (29) are arranged between the first limiting bar (26) and the second limiting bar (27); The first limiting gear (30) is meshed with the second limiting gear (31).
10. A novel photovoltaic wall style node structure according to claim 1, characterized in that: The wall structure (1) comprises a plurality of groups of wall columns (32) and a wall component (33) arranged between two groups of wall columns (32); The driving structure (5) is detachably mounted on the inner upper portion of the surrounding wall component (33).