Adjustable vertical photovoltaic power station

By designing an adjustable vertical photovoltaic power station, the bracket assembly and electric cylinder drive structure make the crystalline silicon plate flip 90 degrees, solving the problem of installation difficulties in narrow hills and achieving stable and efficient power generation.

CN223207061UActive Publication Date: 2025-08-08ZHEJIANG 001 GRP CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422432347.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-09
Publication Date
2025-08-08
Estimated Expiration
2034-10-09

AI Technical Summary

Technical Problem

The existing photovoltaic power stations are difficult to install in a small and loose rural mountain environment, and are prone to shaking and unstable.

Method used

An adjustable vertical photovoltaic power station is designed to be buried in the soil through the bracket assembly, and the contact area is increased by using guides and support components. Combined with the electric cylinder drive lifting structure and the stress-bearing rod structure, the crystalline silicon plate can be flipped 90 degrees and adapted to installation at different angles.

Benefits of technology

It realizes stable installation and efficient power generation in a narrow space, and improves the stability and power generation efficiency of photovoltaic power plants.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223207061U_ABST
    Figure CN223207061U_ABST
Patent Text Reader

Abstract

The utility model provides an adjustable vertical photovoltaic power station, and relates to the field of photovoltaic power generation. The lifting structure is located above the support assembly, the outer end of the lifting structure is welded with a control block of a T-shaped structure, a guide groove for guiding is formed in the control block, and the crystalline silicon plate is of a structure capable of being turned over by 90 degrees. After being fixed, the crystal silicon plate is used in a vertical state, is matched with the support assembly to be linearly fixed, is used in a narrow position, controls the electric cylinder to operate, controls the lifting structure to continuously ascend, controls the stress rod structure to slide and displace in the guide groove, pushes the crystal silicon plate to continuously turn over, and enables the crystal silicon plate to randomly turn over within 90 degrees. The photovoltaic power station support is suitable for being used at different angles, does not occupy a large space, and solves the problems that the places, such as common photovoltaic power stations, places where grains and vegetables are planted in mountainous regions, ridges, roads and the like on the four sides are empty, but the places are narrow and small, and inclined or horizontal photovoltaic power stations cannot be installed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of photovoltaic power generation, in particular to an adjustable vertical photovoltaic power station. Background Art

[0002] A photovoltaic power station is a power generation system that uses solar energy and special materials such as crystalline silicon panels, inverters and other electronic components. It is connected to the power grid and transmits electricity to the grid. Photovoltaic power stations are green energy projects encouraged by the state. They are mainly divided into independent power generation systems with batteries and grid-connected power generation systems without batteries. The principle of a photovoltaic power station is to use the photoelectric effect to convert solar energy into direct current electricity. When sunlight shines on the semiconductor material on the photovoltaic panel, electrons are excited, forming an electric current and outputting electrical energy through the circuit. This power generation method is clean and has no rotating components. It is not restricted by factors such as region and altitude and is widely used in various Therefore, it will also be installed in remote areas and rural areas, and is deeply loved by rural people. After the photovoltaic power station generates electricity, part of it can be used for daily electricity consumption, and the other part can be sold to the national power agency, which can save electricity bills and generate income at the same time. The common photovoltaic power stations on the market are usually installed horizontally or tilted. In rural areas, mountainous areas for growing grain and vegetables, ridges on all sides, roads, etc. are empty, but these places are relatively small, and it is impossible to install tilted or horizontal photovoltaic power stations. Moreover, when photovoltaic power stations are installed in these locations, due to the loose soil, they are prone to shaking and are not stable enough when encountering strong winds. Utility Model Content

[0003] The disclosed embodiments relate to an adjustable vertical photovoltaic power station. After the bracket assembly is buried and fixed in the soil, the adjustment assembly can be controlled to rotate, pushing the guide and support assembly downward so that the bottom of the support assembly contacts the ground. This increases the contact area while improving stability and support. At the same time, after the contact area becomes larger and the soil sinks, the stability of the bracket assembly can also be guaranteed.

[0004] According to a first aspect of the present disclosure, an adjustable vertical photovoltaic power station is provided, specifically comprising: a bracket assembly; two U-shaped guide members are mounted on the bottom end of the bracket assembly, the bottom of the guide members are welded and fixed to the support assembly, the top of the support assembly is a pyramidal structure, and the bottom end of the support assembly is provided with a rectangular groove; a lifting structure; the lifting structure is located above the bracket assembly, the bracket assemblies are inserted into the two ends of the lifting structure, the lifting structure is located outside the bracket assembly and can slide up and down freely, a T-shaped control block is welded to the outer end of the lifting structure, a guide groove is provided inside the control block for guiding, the guide groove is connected to the crystalline silicon plate through a force-bearing rod structure, and the crystalline silicon plate is a structure that can be flipped ninety degrees.

[0005] In at least some embodiments, a top shaft is welded and fixed to the top of the bracket assembly, an electric cylinder is installed on the inner top of the bracket assembly by bolts, the top of the electric cylinder is connected to the bottom of the lifting structure, and pushes the lifting structure to move freely up and down; an auxiliary assembly is fixed to each of the two ends of the bottom of the bracket assembly, the bottom of the auxiliary assembly is in contact with the ground, an inner part is welded and fixed to the bottom end of the auxiliary assembly, the outer end of the inner part is a circular structure, and is located inside the ground; a threaded hole is provided at the bottom end of the bracket assembly, an adjustment assembly is inserted into the threaded hole, the adjustment assembly consists of a threaded rod and a handwheel, the bottom end of the adjustment assembly is in contact with the top of the support assembly through a rotating shaft, and a conical gear assembly is fixed to the bottom corners of the support assembly.

[0006] In at least some embodiments, two pushing blocks are welded and fixed on the top of the lifting structure, and the two sides of the top of the pushing block are inclined structures, and two force rod structures with T-shaped shaft structures are inserted into the inside of the guide groove; the two force rod structures are respectively welded and fixed on both sides of the crystalline silicon plate, and a connecting shaft structure is fixed on the inner side of the top of the crystalline silicon plate, and the connecting shaft structure is mounted on the outside of the top shaft and can rotate freely; two force block structures are fixed on the inner side of the crystalline silicon plate, and the inner bottom of the force block structure is an inclined structure, and is in sliding contact with the top side of the pushing block, and the contact surface is an inclined structure. Two rubber buffer heads are bonded and fixed to the bottom of each crystalline silicon plate. After the crystalline silicon plate is erected, the L-shaped buffer head contacts the bracket assembly.

[0007] The utility model provides an adjustable vertical photovoltaic power station, which has the following beneficial effects:

[0008] When the bracket assembly is in use, the crystalline silicon panel can be supported by the bracket assembly. After the crystalline silicon panel is fixed, it is used in a vertical state and is fixed in a straight line with the bracket assembly, so that the crystalline silicon panel can be used in a narrow position. At the same time, it can also control the operation of the electric cylinder. The electric cylinder pushes the lifting structure and the control block to rise together. First, the pushing block and the force block structure are initially in sliding contact to make the crystalline silicon panel in an inclined state. Then the lifting structure continues to rise, and the force rod structure slides and displaces inside the guide groove, pushing the crystalline silicon panel to continuously flip, so that the crystalline silicon panel can be flipped arbitrarily within ninety degrees, so as to be suitable for use at different angles, so that the crystalline silicon panel can be used at any angle within ninety degrees without taking up a large space.

[0009] After the bracket assembly is buried and fixed in the soil, the adjustment assembly can be controlled to rotate, pushing the guide and support assembly downward so that the bottom of the support assembly contacts the ground, increasing the contact area while improving stability and support. At the same time, after the contact area becomes larger and the soil sinks, the stability of the bracket assembly can also be guaranteed. BRIEF DESCRIPTION OF THE DRAWINGS

[0010] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings of the embodiments will be briefly introduced below.

[0011] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.

[0012] In the attached figure:

[0013] Figure 1 A schematic diagram of the three-dimensional structure of the present application in an upright state is shown;

[0014] Figure 2 A schematic diagram of the three-dimensional structure of the deployment device of the present application is shown;

[0015] Figure 3 Shows a schematic diagram of the exploded three-dimensional structure of the present application;

[0016] Figure 4 Shows a schematic diagram of the exploded three-dimensional structure of the bracket assembly of the present application;

[0017] Figure 5 Shows a schematic diagram of the exploded three-dimensional structure of the lifting structure of the present application;

[0018] Figure 6 Shows a schematic diagram of the lifting structure of the present application when viewed from above;

[0019] Reference Signs List

[0020] 1. Bracket assembly; 101. Top shaft; 102. Electric cylinder; 103. Auxiliary assembly; 104. Internal component; 105. Guide; 106. Support assembly; 107. Adjustment assembly; 108. Gear shaping assembly;

[0021] 2. Lifting structure; 201. Pushing block; 202. Control block; 203. Guide groove; 204. Force rod structure; 205. Crystalline silicon plate; 206. Connecting shaft structure; 207. Force block structure; 208. Buffer head. DETAILED DESCRIPTION

[0022] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. Based on the described 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.

[0023] Example 1: Please refer to Figures 1 to 6 :

[0024] The utility model proposes an adjustable vertical photovoltaic power station, comprising: a bracket assembly 1; two U-shaped guide members 105 are mounted on the bottom end of the bracket assembly 1, the bottom of the guide member 105 is welded and fixed to the support assembly 106, the top of the support assembly 106 is a pyramidal structure, and a rectangular groove is provided at the bottom end of the support assembly 106, so that the support assembly 106 can be adjusted in height, pressed against the ground, and improved in stability and support effect of the bracket assembly 1, preventing soil from affecting the fixing effect and support effect of the bracket assembly 1; a lifting structure 2; the lifting structure 2 is located above the bracket assembly 1, the bracket assembly 1 is inserted into both ends of the lifting structure 2, and the lifting structure 2 is located outside the bracket assembly 1 and can be freely moved up and down. The outer ends of the sliding and lifting structures 2 are respectively welded with a T-shaped control block 202, and a guide groove 203 for guidance is provided inside the control block 202. The guide groove 203 is connected to the crystalline silicon plate 205 through the force-bearing rod structure 204. The crystalline silicon plate 205 is a structure that can be flipped ninety degrees, and the electric cylinder 102 can be used to drive the lifting structure 2 to rise. The lifting structure 2 controls the force-bearing rod structure 204 and the crystalline silicon plate 205 to tilt through the control block 202 and the guide groove 203, so that the crystalline silicon plate 205 can be flipped and adjusted arbitrarily within ninety degrees for use, which is convenient for installation and use in a narrow location and will not take up a large space. At the same time, the two crystalline silicon plates 205 can absorb light in two directions to improve power generation efficiency.

[0025] In the embodiment of the present disclosure, Figure 3 and Figure 4 As shown, the top of the bracket assembly 1 is welded and fixed with a top shaft 101, which is inserted into the interior of the connecting shaft structure 206, so that the crystalline silicon plate 205 can be freely flipped and adjusted for use. The top of the inner top of the bracket assembly 1 is installed with an electric cylinder 102 through bolts. The top of the electric cylinder 102 is connected to the bottom of the lifting structure 2 and pushes the lifting structure 2 to move up and down freely, generating the opening and closing flipping force of the crystalline silicon plate 205; an auxiliary component 103 is fixed to each of the two ends of the bottom of the bracket assembly 1. The bottom of the auxiliary component 103 is in contact with the ground to improve the supporting effect. The bottom of the auxiliary component 103 is welded and fixed with an inner part 104. The inner part 104 is fixed to the bottom of the bracket assembly 1. The outer end of 4 is a circular structure and is inside the ground, buried in the ground and fixed, thereby improving the fixing effect and stability of the bracket assembly 1; a threaded hole is provided at the bottom end of the bracket assembly 1, and an adjustment assembly 107 is inserted into the threaded hole. The adjustment assembly 107 consists of a threaded rod and a handwheel. After the adjustment assembly 107 is rotated, the support assembly 106 is controlled to move downward, thereby improving the support effect and support strength. The bottom end of the adjustment assembly 107 contacts the top of the support assembly 106 through the rotating shaft, and a conical gear assembly 108 is fixed to the bottom corners of the support assembly 106, which is inserted into the soil and fixed.

[0026] In the embodiment of the present disclosure, Figure 5 and Figure 6As shown, two pushing blocks 201 are welded and fixed on the top of the lifting structure 2. The top and bottom sides of the pushing blocks 201 are inclined structures. After the lifting structure 2 rises, the pushing blocks 201 first contact the force-bearing block structure 207, pushing the crystalline silicon plate 205 to slightly flip, so that the crystalline silicon plate 205 can be controlled to continue flipping. Two force-bearing rod structures 204 with T-shaped shaft structures are inserted into the inside of the guide groove 203; the two force-bearing rod structures 204 are respectively welded and fixed on both sides of the crystalline silicon plate 205, driving the crystalline silicon plate 205 to flip. A connecting shaft structure 207 is fixed on the inner side of the top of the crystalline silicon plate 205. 6. The connecting shaft structure 206 is mounted on the outside of the top shaft 101 and rotates freely, driving the crystalline silicon plate 205 to flip together; two force-bearing block structures 207 are fixed on the inner side of the crystalline silicon plate 205, and the inner bottom of the force-bearing block structure 207 is an inclined structure, and is in sliding contact with the top side of the push block 201. The contact surface is an inclined structure. Two rubber buffer heads 208 are bonded and fixed to the bottom of each crystalline silicon plate 205. After the crystalline silicon plate 205 is erected, the L-shaped buffer head 208 contacts the bracket assembly 1, which can cushion the impact force after the crystalline silicon plate 205 is erected.

[0027] In the second embodiment, based on the first embodiment, the support assembly 1 and the crystalline silicon plate 205 can be set to any width for use, or any number of support assemblies 1 can be arranged to improve the overall power generation efficiency.

[0028] The working principle of this embodiment is as follows: when the support assembly 1 and the crystalline silicon panel 205 are needed, the support assembly 1 is first controlled to drive the crystalline silicon panel 205 to move and install together, so that the inner part 104 is buried in the soil, and then the adjustment assembly 107 is controlled to rotate to push the support assembly 106 to move downward. The bottom of the support assembly 106 contacts the ground, increasing the contact area while improving the support effect and support strength, so that the support assembly 1 will not fall or shake after encountering strong winds, and then the crystalline silicon panel 205 is controlled to connect with the inverter and other electronic components through the line. During use, the electric cylinder 102 can be used to drive the lifting structure 2 to rise. The lifting structure 2 first pushes the force-bearing block structure 207 through the pushing block 201, causing the crystalline silicon plate 205 to tilt slightly. Then, the lifting structure 2 continues to rise, causing the force-bearing rod structure 204 to slide inside the guide groove 203, pushing the crystalline silicon plate 205 to flip freely within ninety degrees, so that the crystalline silicon plate 205 can be adjusted and used at will within ninety degrees, thereby improving the convenience of use. In addition, when the crystalline silicon plate 205 is used horizontally, it will not take up a large space, effectively ensuring the power generation efficiency.

[0029] In this article, there are several points to note:

[0030] 1. The drawings of the embodiments of the present disclosure only relate to the structures related to the embodiments of the present disclosure. Other structures may refer to conventional designs.

[0031] 2. In the absence of conflict, the embodiments of the present disclosure and the features therein may be combined with each other to form new embodiments.

[0032] The above are only specific embodiments of the present disclosure, but the scope of protection of the present disclosure is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this disclosure should be included in the scope of protection of the present disclosure. Therefore, the scope of protection of the present disclosure should be based on the scope of protection of the claims.

Claims

1. An adjustable vertical photovoltaic power station, characterized in that: include: A support assembly (1); the bottom end of the support assembly (1) is provided with two U-shaped guide members (105); the bottom of the guide member (105) is welded and fixed to the support assembly (106); the top end of the support assembly (106) is a pyramidal structure; the bottom end of the support assembly (106) is provided with a rectangular groove; a lifting structure (2); the lifting structure (2) is located above the support assembly (1); the support assembly (1) is inserted into both ends of the lifting structure (2); the lifting structure (2) is located outside the support assembly (1) and can slide freely up and down; a T-shaped control block (202) is welded to the outer end of the lifting structure (2); a guide groove (203) for guiding is provided inside the control block (202); the guide groove (203) is connected to the crystalline silicon plate (205) through a force-bearing rod structure (204); the crystalline silicon plate (205) is a structure that can be turned ninety degrees.

2. The adjustable vertical photovoltaic power station according to claim 1, characterized in that: A top shaft (101) is welded and fixed to the top of the bracket assembly (1), and an electric cylinder (102) is installed on the inner top of the bracket assembly (1) via bolts. The top of the electric cylinder (102) is connected to the bottom of the lifting structure (2) and pushes the lifting structure (2) to move freely up and down.

3. The adjustable vertical photovoltaic power station according to claim 2, characterized in that: An auxiliary component (103) is fixed to each of the two ends of the bottom of the bracket component (1), the bottom of the auxiliary component (103) is in contact with the ground, an inner component (104) is welded and fixed to the bottom end of the auxiliary component (103), and the outer end of the inner component (104) is a circular structure and is located inside the ground.

4. The adjustable vertical photovoltaic power station according to claim 3, characterized in that: The bottom end of the bracket assembly (1) is provided with a threaded hole, an adjustment assembly (107) is inserted into the threaded hole, the adjustment assembly (107) is composed of a threaded rod and a hand wheel, the bottom end of the adjustment assembly (107) is in contact with the top of the support assembly (106) through a rotating shaft, and a conical gear inserting assembly (108) is fixed to each corner of the bottom of the support assembly (106).

5. The adjustable vertical photovoltaic power station according to claim 4, characterized in that: Two pushing blocks (201) are welded and fixed on the upper side of the lifting structure (2). The top ends of the pushing blocks (201) are inclined structures, and two force-bearing rod structures (204) with T-shaped shaft structures are inserted into the guide groove (203).

6. The adjustable vertical photovoltaic power station according to claim 5, characterized in that: The two force-bearing rod structures (204) are respectively welded and fixed on both sides of the crystalline silicon plate (205); a connecting shaft structure (206) is fixed on the inner side of the top end of the crystalline silicon plate (205); and the connecting shaft structure (206) is sleeved on the outside of the top shaft (101) and rotates freely.

7. The adjustable vertical photovoltaic power station according to claim 6, characterized in that: Two force-bearing block structures (207) are fixed on the inner side of the crystalline silicon plate (205); the inner bottom of the force-bearing block structure (207) is an inclined structure and is in sliding contact with the top side of the push block (201); the contact surface is an inclined structure; two rubber buffer heads (208) are bonded and fixed to the bottom of each crystalline silicon plate (205); after the crystalline silicon plate (205) is erected, the L-shaped buffer head (208) contacts the bracket assembly (1).