CN115664312B - A distributed photovoltaic power generation module with high flexibility and sliding arrangement having a bracket structure - Google Patents

A distributed photovoltaic power generation module with high flexibility and sliding arrangement having a bracket structure Download PDF

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Publication number
CN115664312B
CN115664312B CN202211339875.5A CN202211339875A CN115664312B CN 115664312 B CN115664312 B CN 115664312B CN 202211339875 A CN202211339875 A CN 202211339875A CN 115664312 B CN115664312 B CN 115664312B
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bracket
power generation
generation module
photovoltaic power
assembly
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CN115664312A (en
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吕锦志
曾德发
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Guangdong Voguang New Energy Technology Co ltd
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Guangdong Voguang New Energy Technology Co ltd
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    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy

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Abstract

本发明公开了一种具有托架结构的滑动布置高灵活性分布式光伏发电模块,涉及发电技术领域,该光伏发电模块旨在解决现在的光伏发电模块安装托架的整体式结构不方便调节上部结构的平面位置和光伏板的接收光照倾角,使用不灵活的技术问题,该光伏发电模块包括装配横梁、左右对称设置于装配横梁上侧的棱台型托架、设置于托架上侧的一号小纵梁、设置于一号小纵梁之间上侧的光伏板,该光伏发电模块采用可以在装配横梁上轴向横移的托架和可以沿托架上端水平纵向移动的小纵梁来调节光伏板所处的平面位置,使用灵活,装配方便,通过回转电机驱动的方式来控制丝杆前后转动,使得光伏板的工作倾角发生改变,便于适应不同地区的光照条件。

The invention discloses a distributed photovoltaic power generation module with high flexibility in sliding arrangement and a bracket structure, and relates to the field of power generation technology. The photovoltaic power generation module aims to solve the technical problem that the integral structure of the current photovoltaic power generation module mounting bracket is not convenient for adjusting the plane position of the upper structure and the receiving light illumination inclination angle of the photovoltaic panel, and is not flexible to use. The photovoltaic power generation module comprises an assembly beam, a prism-shaped bracket symmetrically arranged on the upper side of the assembly beam, a No. 1 small longitudinal beam arranged on the upper side of the bracket, and a photovoltaic panel arranged on the upper side between the No. 1 small longitudinal beams. The photovoltaic power generation module uses a bracket that can move axially on the assembly beam and a small longitudinal beam that can move horizontally and longitudinally along the upper end of the bracket to adjust the plane position of the photovoltaic panel. The module is flexible to use and easy to assemble. The screw rod is driven by a rotary motor to control the forward and backward rotation, so that the working inclination angle of the photovoltaic panel changes, which is convenient to adapt to the lighting conditions in different regions.

Description

Sliding arrangement high-flexibility distributed photovoltaic power generation module with bracket structure
Technical Field
The invention belongs to the field of photovoltaic power generation equipment, and particularly relates to a sliding arrangement high-flexibility distributed photovoltaic power generation module with a bracket structure.
Background
Solar energy is used as a clean, pollution-free and inexhaustible energy source, new energy utilization plays a very important role in recent years, existing urban street lamp lighting facilities, a solar photovoltaic panel generation group of a first scale, and even photovoltaic panels installed on a household roof make outstanding contribution to reducing the dependence of the existing production and life on the coal and electricity industry, and the photovoltaic panels are used at a certain angle with a horizontal plane so as to obtain the maximum solar radiation amount, so that the solar street lamp lighting equipment is fixedly installed through brackets with corresponding angles.
The prior Chinese patent publication No. CN112865692A discloses a mounting device for a photovoltaic panel fastener and a photovoltaic panel module, wherein the photovoltaic panel fastener comprises a main body part, a threaded joint part, a pair of clamping ribs and a pair of supporting ribs, the threaded joint part extends perpendicularly to the main body part and is provided with a channel for accommodating the threaded fastener, the inner wall of the channel is provided with internal threads matched with external threads of the threaded fastener, the clamping ribs extend from the end surface of the main body part and are symmetrically arranged relative to the central axis of the threaded joint part along a first direction, the supporting ribs are symmetrically arranged relative to the central axis of the threaded joint part along a second direction, the supporting ribs are respectively connected to one clamping rib and extend beyond the free ends of the clamping ribs, and the second direction is perpendicular to the first direction.
Therefore, aiming at the condition that the integral structure of the photovoltaic power generation module mounting bracket is inconvenient to adjust the plane position of the upper structure and the receiving illumination inclination angle of the photovoltaic panel and inflexible in use, the photovoltaic power generation module with the adjustable bracket is developed, and the working inclination angle of the plane position can be easily adjusted by utilizing the bracket matched with the plurality of groups of horizontal longitudinal beam components which are horizontally arranged.
Disclosure of Invention
(1) Technical problem to be solved
Aiming at the defects of the prior art, the invention aims to provide a sliding arrangement high-flexibility distributed photovoltaic power generation module with a bracket structure, which aims to solve the technical problems that the integral structure of the existing photovoltaic power generation module mounting bracket is inconvenient to adjust the plane position of an upper structure and the receiving illumination inclination angle of a photovoltaic panel and is inflexible to use.
(2) Technical proposal
In order to solve the technical problems, the invention provides a sliding arrangement high-flexibility distributed photovoltaic power generation module with a bracket structure, which comprises an assembly beam, a prismatic table bracket which is arranged on the upper side of the assembly beam in a bilateral symmetry manner, a first small longitudinal beam which is arranged on the upper side of the bracket, a photovoltaic panel which is arranged on the upper side between the first small longitudinal beams, wherein the lower end of the bracket is connected with a locking plate in a bilateral symmetry manner, the left and right ends of the bracket are provided with assembly grooves, the assembly beam is arranged on the inner side of the assembly grooves, the locking plate is arranged on the lower side of the assembly beam, lateral clamping plates are symmetrically arranged on the left and right sides of the upper end of the bracket, the first small longitudinal beam is arranged between the lateral clamping plates, the lower end of the first small longitudinal beam is fixedly connected with a second small longitudinal beam which is arranged on the inner side of a groove of the bracket, the back side of the first small longitudinal beam is provided with a bearing cross beam, the back end of the bearing cross beam is provided with an L-shaped clamping seat, the back end of the photovoltaic panel is arranged between the upper side of the bearing cross beam and the top end of the clamping seat, the periphery of the photovoltaic panel is provided with an outer frame body, the lower end of the front side of the outer frame body is symmetrically provided with end plates left and right, a mounting cross beam is fixedly connected between the end plates, the mounting cross beam is arranged between the first small longitudinal beam and the second small longitudinal beam, a base is symmetrically arranged below the mounting cross beam, the upper end of the base is provided with a first side plate and a second side plate, a screw rod is arranged above the base, the lower end of the screw rod is fixedly provided with a base, the base is arranged between the first side plate and the second side plate, the left and right ends of the base are fixedly provided with rotary shafts, the middle of the first side plate and the middle of the second side plate are respectively provided with rotary holes, the top end of the rotary shaft is arranged at the inner side of the rotary hole.
When the sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure is used, a user horizontally inserts two groups of brackets with the assembly cross beam through the assembly groove and places the brackets on the assembly cross beam, then vertically inserts the assembly cross beam with the screw rod through the insertion hole and assembles the assembly cross beam on the upper side of the supporting baffle ring, then installs the base on the ground in a mode of penetrating the anchoring hole through the anchoring bolt, manually screws the supporting baffle rings on the two sides respectively for adjusting the height of the assembly cross beam, then inserts the mounting cross beam at the lower end of the photovoltaic panel from the notch between the rear ends of the first small longitudinal beam and the second small longitudinal beam, enables the photovoltaic panel to be positioned on the upper side of the first small longitudinal beam, horizontally aligns the notch at the rear end of the first small longitudinal beam and the second small longitudinal beam with the upper end structure of the brackets, and inserts the notch between the first small longitudinal beam and the lateral clamping plate from front to back, the horizontal elastic traction effect of the first spring on the locking bolt is utilized to penetrate the first adjusting hole and the corresponding second adjusting hole to lock the first small longitudinal beam and the bracket, then the connecting bolt is utilized to connect the connecting hole to fix the bearing cross beam at the rear end of the first small longitudinal beam, at this time, the rear end of the photovoltaic panel is positioned on the surface of the first liner on the upper side of the bearing cross beam, the clamping seat is pulled by hand, the rear end of the photovoltaic panel is further locked through the L-shaped structure at the top end of the clamping seat, then the bracket is slid left and right or the first small longitudinal beam is slid back and forth according to the installation requirement to adjust the plane position of the photovoltaic panel, finally the bracket is locked with the assembly cross beam in a mode of penetrating the first adjusting hole and the second adjusting hole through the adjusting bolt, the photovoltaic panel is positioned at a proper working position, the base is enabled to turn back and forth by taking the rotary shaft as the axis through the driving of the rotary motor, the inclination angle of the assembly beam and the photovoltaic panel at the upper part is adjusted.
Further, the jack has been seted up at both ends about the assembly crossbeam, the lead screw set up in the jack is inboard, lead screw outside threaded connection has the support baffle ring, the support baffle ring set up in assembly crossbeam downside, manual support baffle ring of twisting makes it along lead screw longitudinal movement, and assembly crossbeam is according to the installation height of support baffle ring synchronous movement adjustment photovoltaic board.
Further, an anchor hole is formed in one opposite side of the base, an anchor bolt fixed with the ground is mounted on the inner side of the anchor hole, a rotary motor is mounted on one opposite side of the first side plate, a rotary shaft is mounted on a power executing element of the rotary motor, the rotary motor controls the screw rod to turn back and forth by a certain angle through driving the rotary shaft to rotate in the rotary hole, and the screw rod acts in the jack to enable the assembly cross beam to synchronously move.
Further, a plurality of first regulation holes have been seted up to horizontal equidistance of assembly crossbeam upper end, no. two regulation holes have been seted up in the middle of the locking plate, no. one regulation hole with threaded connection has adjusting bolt between No. two regulation holes, and the bracket slides along assembly crossbeam axial, can adjust the distance between the bracket according to the photovoltaic board of difference to utilize adjusting bolt to penetrate the mode of No. one regulation hole and No. two regulation holes to lock the position of bracket.
Further, the bracket upper end is towards assembly crossbeam tip one side fixed mounting has the back board, in the middle of the side direction cardboard with the through-hole that is in on the same straight line has all been seted up in the middle of the back board, the through-hole inboard is provided with the locking bolt, and the back board is used for bearing the locking bolt, and the locking bolt is used for releasing or locking a little longeron along the interior lateral movement of through-hole.
Further, a spring is arranged between the locking bolt and the back plate, a second through hole which is penetrated left and right is formed in the middle of the first small longitudinal beam at equal intervals, the locking bolt is arranged on the inner side of the second through hole, and the spring plays an elastic traction force towards one side of the lateral clamping plate for the locking bolt, so that the locking bolt automatically enters the first through hole and the second through hole.
Further, the connecting bolt is installed at the rear end of the first small longitudinal beam, a connecting hole is formed in the middle of the bearing cross beam, the connecting bolt is in threaded connection with the inner side of the connecting hole, and the bearing cross beam is fixed at the rear end of the first small longitudinal beam in a threaded connection mode after the first small longitudinal beam is installed on the bracket.
Further, the butt joint bolt is installed to the bilateral symmetry of card solid seat lower extreme front side, the bearing crossbeam inboard for the butt joint hole has been seted up to connecting hole left and right sides, the butt joint bolt set up in the butt joint hole is inboard, the bearing crossbeam rear end with install No. two springs between the card solid seat, no. two springs have the elasticity tractive force towards bracket one side to the card solid seat, make the card solid seat further lock the upper end of photovoltaic board.
Further, the bearing crossbeam upper end is provided with a liner, outer frame body upper end rear side is provided with No. two liners, the card set up in No. two liner surfaces, no. one liner and No. two liners use flexible material, play the isolation protection effect to both sides about photovoltaic board and outer frame body rear end respectively.
(3) Advantageous effects
Compared with the prior art, the sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure has the advantages that the bracket capable of axially transversely moving on the assembly beam and the small longitudinal beams capable of horizontally and longitudinally moving along the upper end of the bracket are adopted to adjust the plane position of the photovoltaic panel, multiple groups of small photovoltaic panels can be assembled and horizontally arranged in an inserting mode through the clamping grooves between the mounting beam and the small longitudinal beams on the photovoltaic panel, the use is flexible, the assembly is convenient, the front and back rotation of the screw rod is controlled in a driving mode of the rotary motor, the working inclination angle of the photovoltaic panel is changed, and the photovoltaic panel is convenient to adapt to illumination conditions of different areas.
Drawings
FIG. 1 is a schematic diagram of an assembled structure of an embodiment of a sliding arrangement high flexibility distributed photovoltaic power generation module with a bracket structure according to the present invention;
FIG. 2 is a schematic view of an assembled beam and base structure of an embodiment of a sliding arrangement high flexibility distributed photovoltaic power module with a bracket structure according to the present invention;
FIG. 3 is a schematic diagram of a carrier structure of an embodiment of a sliding arrangement high flexibility distributed photovoltaic power generation module with carrier structure according to the present invention;
FIG. 4 is a schematic view of a first small longitudinal beam and a supporting cross beam of an embodiment of a sliding-arrangement high-flexibility distributed photovoltaic power generation module with a bracket structure according to the present invention;
fig. 5 is a schematic view of a photovoltaic panel structure of an embodiment of a sliding arrangement high flexibility distributed photovoltaic power generation module with a bracket structure according to the present invention.
The mark in the drawing is 1, assembling a cross beam; 2, a bracket, 3, a locking plate, 4, an assembly groove, 5, a lateral clamping plate, 6, a first small longitudinal beam, 7, a second small longitudinal beam, 8, a bearing cross beam, 9, a clamping seat, 10, a photovoltaic plate, 11, an outer frame body, 12, an end plate, 13, a mounting cross beam, 14, a base, 15, a first side plate, 16, a second side plate, 17, a screw rod, 18, a base, 19, a rotating shaft, 20, a rotating hole, 21, a jack, 22, a supporting baffle ring, 23, an anchoring hole, 24, an anchoring bolt, 25, a rotating motor, 26, a first adjusting hole, 27, a second adjusting hole, 28, an adjusting bolt, 29, a back plate, 30, a first through hole, 31, a locking bolt, 32, a first spring, 33, a second through hole, 34, a connecting bolt, 35, a connecting hole, 36, a docking bolt, 37, a docking hole, 38, a second spring, 39, a first gasket, 40 and a second gasket.
Detailed Description
The embodiment is a sliding arrangement high-flexibility distributed photovoltaic power generation module with a bracket structure, the assembly structure of the sliding arrangement high-flexibility distributed photovoltaic power generation module is shown in fig. 1, the structure of an assembly beam 1 and a base 14 is shown in fig. 2, the structure of a bracket 2 is shown in fig. 3, the structure of a first small longitudinal beam 6 and a bearing beam 8 is shown in fig. 4, the structure of a photovoltaic panel 10 is shown in fig. 5, the photovoltaic power generation module comprises the assembly beam 1, a prismatic table type bracket 2 which is symmetrically arranged on the upper side of the assembly beam 1, a photovoltaic panel 10 which is arranged on the upper side of the bracket 2 and between the first small longitudinal beams 6, locking plates 3 are symmetrically connected at the lower end of the bracket 2, assembly grooves 4 are formed at the left end and the right end of the bracket 2, the assembly beam 1 is arranged on the inner side of the assembly grooves 4, the locking plates 3 are arranged on the lower side of the assembly beam 1, the upper end of the bracket 2 is provided with lateral clamping plates 5 in bilateral symmetry, a first small longitudinal beam 6 is arranged between the lateral clamping plates 5, the lower end of the first small longitudinal beam 6 is fixedly connected with a second small longitudinal beam 7, the second small longitudinal beam 7 is arranged at the inner side of a groove of the bracket 2, the rear side of the first small longitudinal beam 6 is provided with a bearing cross beam 8, the rear end of the bearing cross beam 8 is provided with an L-shaped clamping seat 9, the rear end of a photovoltaic panel 10 is arranged between the upper side of the bearing cross beam 8 and the top end of the clamping seat 9, the periphery of the photovoltaic panel 10 is provided with an outer frame 11, the front lower end of the outer frame 11 is provided with a head plate 12 in bilateral symmetry, a mounting cross beam 13 is fixedly connected between the first small longitudinal beam 6 and the second small longitudinal beam 7, a base 14 is arranged below the mounting cross beam 1 in bilateral symmetry, the upper end of the base 14 is provided with a first side plate 15 and a second side plate 16, a screw 17 is arranged above the base 14, the lower end of the screw rod 17 is fixedly provided with a base 18, the base 18 is arranged between the first side plate 15 and the second side plate 16, the left end and the right end of the base 18 are fixedly provided with rotary shafts 19, the middle of the first side plate 15 and the middle of the second side plate 16 are respectively provided with a rotary hole 20, and the top ends of the rotary shafts 19 are arranged on the inner sides of the rotary holes 20.
For this embodiment, the photovoltaic panel 10 is a monolithic large-sized photovoltaic module, in order to improve the working stability, the fastening seat 9 is used to strengthen the end locking of the photovoltaic panel, in addition, the small-sized photovoltaic modules with the same length and greatly reduced width can be used, and the small-sized photovoltaic modules are arranged in a manner of sequentially plugging the mounting cross beam 13 into the notches between the first small longitudinal beam 6 and the second small longitudinal beam 7, so that the small-sized photovoltaic modules are light in weight and good in stability, and the fastening seat 9 is not required to be used to strengthen the end locking.
The left end and the right end of the assembly beam 1 are provided with insertion holes 21, a screw rod 17 is arranged on the inner side of the insertion holes 21, the outer side of the screw rod 17 is in threaded connection with a supporting baffle ring 22, the supporting baffle ring 22 is arranged on the lower side of the assembly beam 1, an anchoring hole 23 is formed in the opposite side of the base 14, an anchoring bolt 24 fixed with the ground is arranged on the inner side of the anchoring hole 23, a rotary motor 25 is arranged on the opposite side of a first side plate 15, a rotary shaft 19 is arranged on a power executing element of the rotary motor 25, the supporting baffle ring 22 is screwed by hands to enable the rotary motor to longitudinally move along the screw rod 17, the assembly beam 1 synchronously moves according to the supporting baffle ring 22 to adjust the installation height of the photovoltaic panel 10, the rotary motor 25 controls the screw rod 17 to turn back and forth by driving the rotary shaft 19 to rotate in the rotary hole 20, and the assembly beam 1 synchronously moves by means of the action of the screw rod 17 in the insertion holes 21.
Meanwhile, a plurality of first adjusting holes 26 are transversely formed in the middle of the upper end of the assembly beam 1 at equal intervals, second adjusting holes 27 are formed in the middle of the locking plate 3, adjusting bolts 28 are connected between the first adjusting holes 26 and the second adjusting holes 27 in a threaded mode, a rear back plate 29 is fixedly arranged at the upper end of the bracket 2 towards one side of the end portion of the assembly beam 1, first through holes 30 which are positioned on the same straight line are formed in the middle of the lateral clamping plate 5 and the middle of the rear back plate 29, a locking bolt 31 is arranged at the inner side of the first through holes 30, a first spring 32 is arranged between the locking bolt 31 and the rear back plate 29, second through holes 33 which are penetrated left and right are formed in the middle of the first small longitudinal beam 6 at equal intervals, the locking bolt 31 is arranged at the inner side of the second through holes 33, the bracket 2 axially slides along the assembly beam 1, the positions of the brackets 2 can be locked in a mode that the first adjusting bolts 28 penetrate the first adjusting holes 26 and the second adjusting holes 27 are utilized, the rear back plate 29 is used for supporting the locking bolt 31, the locking bolt 31 is transversely moved in the first through holes 30 to be used for releasing or locking the first small longitudinal beam 6, the first spring 32 and the second longitudinal beam 32 transversely moves towards the first through holes 31, and the second through holes 33 are made to enter the elastic through holes 33, and the second through holes 33 are made to be located at one side of the elastic clamping plate 31.
In addition, the rear end of the first small longitudinal beam 6 is provided with a connecting bolt 34, a connecting hole 35 is formed in the middle of the bearing cross beam 8, the connecting bolt 34 is in threaded connection with the inner side of the connecting hole 35, the front side of the lower end of the clamping seat 9 is provided with a butt-joint bolt 36 in bilateral symmetry, the inner side of the bearing cross beam 8 is provided with a butt-joint hole 37 relative to the left side and the right side of the connecting hole 35, the butt-joint bolt 36 is arranged on the inner side of the butt-joint hole 37, a second spring 38 is arranged between the rear end of the bearing cross beam 8 and the clamping seat 9, the upper end of the bearing cross beam 8 is provided with a first gasket 39, the rear side of the upper end of the outer frame body 11 is provided with a second gasket 40, the upper end of the clamping seat 9 is arranged on the surface of the second gasket 40, the bearing cross beam 8 is fixed at the rear end of the first small longitudinal beam 6 in a threaded connection mode after the bearing cross beam 8 is arranged on the bracket 2, the second spring 38 has elastic traction force towards the side of the bracket 2, the clamping seat 9 further locks the upper end of the photovoltaic panel 10, the first gasket 39 and the second gasket 40 use flexible materials, and the second gasket 40 protect the upper and lower sides of the photovoltaic panel 10 respectively.
When the sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure is used, a user horizontally inserts two groups of brackets 2 with an assembly beam 1 through an assembly groove 4 to be arranged on the assembly beam 1, then vertically inserts the assembly beam 1 with a screw rod 17 through an insertion hole 21 to be assembled on the upper side of a supporting baffle ring 22, then installs a base 14 on the ground in a mode of penetrating an anchoring hole 23 through an anchoring bolt 24, respectively manually screws the supporting baffle rings 22 on two sides to be used for adjusting the height of the assembly beam 1, then inserts a mounting beam 13 at the lower end of a photovoltaic panel 10 into a notch between the rear ends of a first small longitudinal beam 6 and a second small longitudinal beam 7 to enable the photovoltaic panel 10 to be positioned on the upper side of the first small longitudinal beam 6, horizontally aligns the notch at the rear ends of the first small longitudinal beam 6 and the second small longitudinal beam 7 with the upper end structure of the brackets 2, the notch alignment between the first small longitudinal beam 6 and the lateral clamping plate 5 is inserted from front to back, the locking bolt 31 is penetrated into the first adjusting hole 26 and the corresponding second adjusting hole 27 to lock the first small longitudinal beam 6 and the bracket 2 under the action of horizontal elastic traction generated by the first spring 32 on the locking bolt 31, then the bearing cross beam 8 is fixed at the rear end of the first small longitudinal beam 6 through the connection of the connecting bolt 34 and the connecting hole 35, the rear end of the photovoltaic panel 10 is positioned on the surface of the first liner 39 on the upper side of the bearing cross beam 8, the clamping seat 9 is pulled by hands to further lock the rear end of the photovoltaic panel 10 through the L-shaped structure on the top end of the clamping seat, then the bracket 2 is slid left and right or the first small longitudinal beam 6 is slid back and forth according to installation requirements to adjust the plane position of the photovoltaic panel 10, and finally the bracket 2 and the assembly cross beam 1 are locked by penetrating the first adjusting hole 26 and the second adjusting hole 27 through the adjusting bolt 28, the photovoltaic panel 10 is positioned at a proper working position, and the base 18 is turned back and forth by taking the rotary shaft 19 as an axis through the driving of the rotary motor 25, so as to adjust the inclination angles of the upper assembly beam 1 and the photovoltaic panel 10.

Claims (9)

1. The utility model provides a high flexibility distributed photovoltaic power generation module of sliding arrangement with bracket structure, this photovoltaic power generation module include assembly crossbeam (1), bilateral symmetry set up in prismatic table formula bracket (2) of assembly crossbeam (1) upside, set up in No. one little longeron (6) of bracket (2) upside, set up in photovoltaic board (10) of upside between No. one little longeron (6), characterized in that, bracket (2) lower extreme bilateral symmetry is connected with locking plate (3), assembly groove (4) have been seted up at bracket (2) left and right sides both ends, assembly crossbeam (1) set up in assembly groove (4) inboard, locking plate (3) set up in assembly crossbeam (1) downside, bracket (2) upper end bilateral symmetry install side direction cardboard (5), no. one little longeron (6) set up in between side direction cardboard (5), no. one little longeron (6) lower extreme fixedly connected with No. two little longeron (7), no. two little longeron (7) set up in bracket (2) left and right sides both sides set up in support crossbeam (8) are provided with support seat (8) are provided with in support seat (8) top end (8), the photovoltaic panel (10) week is provided with frame body (11), frame body (11) front side lower extreme bilateral symmetry installs end board (12), fixedly connected with carries crossbeam (13) between end board (12), carry crossbeam (13) set up in little longeron (6) No. one with between little longeron (7) No. two, assembly crossbeam (1) below bilateral symmetry is provided with base (14), curb plate (15) No. one and No. two curb plates (16) are installed to base (14) upper end, base (14) top is provided with lead screw (17), lead screw (17) lower extreme fixed mounting has base (18), base (18) set up in No. one curb plate (15) with between No. two curb plates (16), both ends fixed mounting has swivel axis (19) about base (18), in the middle of No. one curb plate (15) with in No. two curb plates (16) all set up swivel hole (20), swivel axis (19) set up in swivel hole (20).
2. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 1, wherein insertion holes (21) are formed in the left end and the right end of the assembly beam (1), the screw rod (17) is arranged on the inner side of the insertion holes (21), a supporting baffle ring (22) is connected to the outer side of the screw rod (17) in a threaded manner, and the supporting baffle ring (22) is arranged on the lower side of the assembly beam (1).
3. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 1, wherein an anchor hole (23) is formed in one side opposite to the base (14), an anchor bolt (24) fixed with the ground is mounted on the inner side of the anchor hole (23), a rotary motor (25) is mounted on one side opposite to the first side plate (15), and the rotary shaft (19) is mounted on a power executing element of the rotary motor (25).
4. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 1, wherein a plurality of first adjusting holes (26) are transversely formed in the upper end of the assembly beam (1) at equal intervals, a second adjusting hole (27) is formed in the middle of the locking plate (3), and an adjusting bolt (28) is connected between the first adjusting holes (26) and the second adjusting holes (27) in a threaded mode.
5. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 1, wherein a rear back plate (29) is fixedly arranged at the upper end of the bracket (2) towards one side of the end part of the assembly beam (1), a first through hole (30) which is positioned on the same straight line is formed in the middle of the lateral clamping plate (5) and the middle of the rear back plate (29), and a locking bolt (31) is arranged at the inner side of the first through hole (30).
6. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 5, wherein a first spring (32) is installed between the locking bolt (31) and the back plate (29), a second through hole (33) penetrating left and right is formed in the middle of the first small longitudinal beam (6) at equal intervals, and the locking bolt (31) is arranged on the inner side of the second through hole (33).
7. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 1, wherein a connecting bolt (34) is installed at the rear end of the first small longitudinal beam (6), a connecting hole (35) is formed in the middle of the bearing cross beam (8), and the connecting bolt (34) is in threaded connection with the inner side of the connecting hole (35).
8. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 7, wherein docking bolts (36) are symmetrically arranged on the front side of the lower end of the clamping seat (9), docking holes (37) are formed in the inner side of the bearing cross beam (8) relative to the left side and the right side of the connecting hole (35), the docking bolts (36) are arranged in the inner side of the docking holes (37), and a second spring (38) is arranged between the rear end of the bearing cross beam (8) and the clamping seat (9).
9. The sliding arrangement high-flexibility distributed photovoltaic power generation module with the bracket structure according to claim 1, wherein a first gasket (39) is arranged at the upper end of the bearing cross beam (8), a second gasket (40) is arranged at the rear side of the upper end of the outer frame body (11), and the upper end of the clamping seat (9) is arranged on the surface of the second gasket (40).
CN202211339875.5A 2022-10-29 2022-10-29 A distributed photovoltaic power generation module with high flexibility and sliding arrangement having a bracket structure Active CN115664312B (en)

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CN115208285A (en) * 2022-07-18 2022-10-18 浙江吉瓦能源科技有限公司 Conversion control type flexible photovoltaic system capable of improving light conversion rate

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CN202183391U (en) * 2011-09-02 2012-04-04 保定天威集团有限公司 Hanger type solar battery pack installing structure
CN215990663U (en) * 2021-10-08 2022-03-08 苏州市昌美新能源科技有限公司 Photovoltaic support of quick installation
CN113898127A (en) * 2021-10-13 2022-01-07 乙力国际股份有限公司 Photovoltaic roof built by thin-film photovoltaic tiles and lap joint building method thereof
CN216552755U (en) * 2021-12-27 2022-05-17 河南和德新能源有限公司 A waterproof mounting structure for laying photovoltaic board

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CN210120519U (en) * 2019-08-28 2020-02-28 广东客都环境科技股份有限公司 But angle regulation's photovoltaic board mounting bracket
CN115208285A (en) * 2022-07-18 2022-10-18 浙江吉瓦能源科技有限公司 Conversion control type flexible photovoltaic system capable of improving light conversion rate

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