A photovoltaic power generation installation structure for the solar energy industry
By combining a base, angle adjustment mechanism, column, crossbeam and adjustable installation device, the photovoltaic panel is precisely angled and stably installed using a servo motor or stepper motor. This solves the problems of insufficient flexibility and poor stability of existing photovoltaic power generation installation structures, and improves power generation efficiency and installation convenience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGSU YANCHENGGANG NEW ENERGY ELECTRIC POWER CO LTD
- Filing Date
- 2025-10-22
- Publication Date
- 2026-05-26
AI Technical Summary
Existing photovoltaic power generation installation structures lack flexibility in angle adjustment, are difficult to install and maintain, have poor structural stability, low component versatility, and high production costs, making it difficult to adapt to changes in the sun's position for efficient power generation and large-scale application.
The structure includes a base, an angle adjustment mechanism, columns, crossbeams, and an adjustable installation device. The angle adjustment mechanism is driven by a servo motor or stepper motor, and combined with an electric telescopic rod and a geared motor with a brake, it achieves precise angle adjustment and stable installation of the photovoltaic panels.
It enables convenient installation of photovoltaic panels, precise angle adjustment, improved power generation efficiency, reduced installation difficulty and safety risks, enhanced structural stability, adaptability to photovoltaic panels of different sizes, and reduced production costs.
Smart Images

Figure CN121239129B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of solar photovoltaic power generation technology, and in particular to a photovoltaic power generation installation structure for the solar industry. Background Technology
[0002] With the global trend of energy structure transitioning to clean energy, the solar photovoltaic power generation industry is experiencing rapid development. As a key factor affecting power generation efficiency and ease of operation and maintenance, the performance optimization of photovoltaic panel installation structures has attracted much attention. Currently, most photovoltaic power generation installation structures on the market suffer from insufficient flexibility in angle adjustment: most structures can only achieve fixed-angle installation, or require manual adjustment of the photovoltaic panel's orientation and tilt angle. This is not only cumbersome and time-consuming, but also difficult to accurately adjust according to real-time changes in the sun's position (such as day-night cycles and seasonal changes), resulting in photovoltaic panels not always receiving sunlight in the optimal position, severely restricting the improvement of power generation efficiency.
[0003] Meanwhile, existing installation structures also have significant drawbacks in the installation and maintenance of photovoltaic panels: some structures have fixed installation platform height and tilt angles, requiring operators to perform complex alignment and fixing operations at height, increasing installation difficulty and safety risks; other structures, while possessing some adjustment capabilities, often employ a single drive mechanism and lack stable guiding and limiting components, leading to low adjustment accuracy and poor structural stability. This is especially problematic in complex outdoor environments (such as strong winds and temperature fluctuations), easily causing photovoltaic panels to loosen or be damaged, affecting the overall system's lifespan. Furthermore, traditional installation structures suffer from poor component versatility, making it difficult to adapt to photovoltaic panels of different sizes. They also have high production costs and complex installation processes, hindering large-scale application. Therefore, developing a photovoltaic power generation installation structure with precise angle adjustment capabilities, convenient installation and maintenance, and stable and reliable structure has become a crucial issue urgently needing to be addressed in the current development of the solar energy industry. Summary of the Invention
[0004] The purpose of this invention is to provide a photovoltaic power generation installation structure for the solar energy industry in order to solve the above-mentioned problems. It solves the problems of insufficient angle adjustment flexibility, high installation and maintenance difficulty, poor structural stability, low component versatility and high production cost of existing photovoltaic power generation installation structures, making it difficult to adapt to changes in the sun's position for efficient power generation and large-scale promotion and application.
[0005] To address the aforementioned problems, this invention provides a technical solution: a photovoltaic power generation installation structure for the solar energy industry, comprising a base, an angle adjustment mechanism, columns, crossbeams, and an adjustable installation device; the base is provided with an angle adjustment mechanism on its upper side; there are four columns, the bottoms of which are respectively fixedly connected to the four corners of the angle adjustment mechanism, and crossbeams are fixedly connected to each other among the four columns; and an adjustable installation device is provided on the upper side of each of the four columns.
[0006] Preferably, the angle adjustment mechanism includes a first arc guide groove, a first arc slide, an angle driving mechanism, a second arc guide groove, and a second arc slide; the first arc guide groove is located on the left side of the base, and the first arc slide is movably connected inside the first arc guide groove; the second arc guide groove is located on the right side of the base, and the second arc slide is movably connected inside the second arc guide groove; the angle driving mechanism is fixedly connected to the base, and its two sides are respectively connected to the first and second arc slides; both sides of the first and second arc slides are fixedly connected to columns.
[0007] Preferably, the angle driving mechanism includes a first arc rack, a first transmission gear, a first bearing housing, a first transmission shaft, a fixed base, a first motor, a first driven gear, a second driving gear, a second driven gear, a second transmission shaft, a second arc rack, a second transmission gear, and a second bearing housing; the first arc rack is fixedly connected to the first arc slide; the second arc rack is fixedly connected to the second arc slide; the fixed base is fixedly connected to the center of the base, and the first motor is fixedly connected to the rear exterior of the fixed base, with a driving gear fixedly connected to the output shaft of the first motor; the bottom of the first bearing housing is fixedly connected to the center of the left side of the base; the left side of the first transmission shaft is movably connected inside the first bearing housing, and the left side of the first transmission shaft... A transmission gear is fixedly connected to the outside of the first side, and the first transmission gear is connected to a circular arc rack. The right side of the first transmission shaft is movably connected to the inside of the left side of the fixed seat. The right end of the first transmission shaft is fixedly connected to a driven gear, and the driven gear is connected to the driving gear. The bottom of the second bearing seat is fixedly connected to the center of the right side of the base. The right side of the second transmission shaft is movably connected to the inside of the second bearing seat. The right side of the second transmission shaft is fixedly connected to a transmission gear, and the transmission gear is connected to a circular arc rack. The left side of the second transmission shaft is movably connected to the inside of the right side of the fixed seat. The left end of the second transmission shaft is fixedly connected to a driven gear, and the driven gear is connected to the driving gear.
[0008] Preferably, the motor is a servo motor or a stepper motor.
[0009] Preferably, the adjustable mounting device includes an electric telescopic rod, a sliding groove, a movable slider, a connecting plate, a mounting mechanism, and a hinge; there are two electric telescopic rods, which are respectively fixedly connected to the inner side of the left column; the lower right side of the connecting plate is connected to the upper right side of the corresponding column via hinges, the connecting plate is provided with a mounting mechanism, and the lower left side of the connecting plate is provided with a sliding groove; there are two movable sliders, the upper outer sides of the two movable sliders are respectively movably connected to the inner side of the corresponding sliding groove, and the lower sides of the two movable sliders are respectively hinged to the upper side of the corresponding electric telescopic rod.
[0010] Preferably, the installation mechanism includes an installation plate, a photovoltaic panel, threaded holes, fixing screws, a second sliding groove, a fixing slider, a connecting hole, a drum, a second motor, and a steel wire rope. The second sliding groove is provided on the bottom surface of the installation plate, and several threaded holes are provided on the top surface of the installation plate. The photovoltaic panel is located on the installation plate and is connected to the corresponding threaded holes via several fixing screws. The bottom of the fixing slider is fixedly connected to the connecting plate, and the outside of the fixing slider is movably connected to the inside of the second sliding groove. The connecting hole is located inside the right side of the connecting plate, and the second motor is fixedly connected to the lower left side of the connecting hole. A drum is fixedly connected to the upper output shaft of the second motor. The left side of the steel wire rope is wound around the drum, and the right side of the steel wire rope passes through the connecting hole and is fixedly connected to the lower right inner side of the installation plate.
[0011] Preferably, the second motor is a geared motor with a brake.
[0012] Preferably, the second groove is a T-shaped groove.
[0013] The beneficial effects of the present invention are: (1) The present invention has the characteristics of reasonable and simple structure, low production cost and convenient installation. During the installation of photovoltaic panels, the related structure can be driven by the drive component to adjust the installation platform to an easy-to-operate tilt angle and a lower position. There is no need for operators to perform complex alignment and fixation at high altitude, which reduces the installation difficulty and safety risk. At the same time, the photovoltaic panel installation can be completed by a simple fixing method, which improves the convenience of installation.
[0014] (2) The present invention has precise angle adjustment capability. It can adjust the direction and pitch angle of the photovoltaic panel flexibly according to the change of the sun position through the coordinated action of a specific drive mechanism and transmission structure, so that the photovoltaic panel can always receive sunlight in the best posture. It effectively solves the problem that traditional structures are difficult to adapt to changes in the sun position and significantly improves the photovoltaic power generation efficiency.
[0015] (3) The present invention has strong structural stability. Stable guide and limit components are set in the adjustment mechanism, and the drive components are selected with high precision control performance or with braking function. This can prevent the photovoltaic panels from loosening or being damaged in complex outdoor environments, and ensure the service life of the overall system. At the same time, the components are reasonably matched and can be adapted to different installation requirements, which is conducive to large-scale promotion and application.
[0016] (4) The present invention is flexible and convenient to operate. Operators can easily adjust the direction and angle of the photovoltaic panel by controlling the corresponding drive components according to the actual situation of different seasons and times. No complicated manual operation is required, which reduces manpower input and operation time, and further improves the overall convenience and practicality of use. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of the present invention.
[0018] Figure 2 for Figure 1 Side view.
[0019] Figure 3 This is a top view of the angle adjustment mechanism.
[0020] Figure 4 This is a schematic diagram of the angle drive mechanism.
[0021] Figure 5 This is a schematic diagram of the adjustable mounting device.
[0022] Figure 6 This is a schematic diagram of the installation mechanism.
[0023] 1-Base; 2-Angle adjustment mechanism; 3-Column; 4-Crossbeam; 5-Adjustable mounting device; 21-Circular arc guide groove one; 22-Circular arc slide one; 23-Angle drive mechanism; 24-Circular arc guide groove two; 25-Circular arc slide two; 231-Circular arc rack one; 232-Transmission gear one; 233-Bearing seat one; 234-Transmission shaft one; 235-Fixed seat; 236-Motor one; 237-Driven gear one; 238-Driving gear; 239-Driven gear two; 231 0-Drive shaft two; 2311-Circular arc rack two; 2312-Drive gear two; 2313-Bearing seat two; 51-Electric telescopic rod; 52-Slide groove one; 53-Modible slider; 54-Connecting plate; 55-Mounting mechanism; 56-Hinge; 551-Mounting plate; 552-Photovoltaic panel; 553-Threaded hole; 554-Fixing screw; 555-Slide groove two; 556-Fixing slider; 557-Connecting hole; 558-Drum; 559-Motor two; 5510-Wire rope. Detailed Implementation
[0024] like Figure 1 and Figure 2 As shown, this specific embodiment adopts the following technical solution: a photovoltaic power generation installation structure for the solar energy industry, including a base 1, an angle adjustment mechanism 2, columns 3, crossbeams 4, and an adjustable installation device 5; the base 1 is provided with an angle adjustment mechanism 2 on its upper side; there are four columns 3, the bottoms of the four columns 3 are respectively fixedly connected to the four corner positions on the angle adjustment mechanism 2, and the four columns 3 are all fixedly connected to each other with crossbeams 4, and the four columns 3 are provided with adjustable installation devices 5 on their upper sides.
[0025] like Figure 3As shown, the angle adjustment mechanism 2 includes an arc guide groove 21, an arc slide 22, an angle driving mechanism 23, an arc guide groove 24, and an arc slide 25. The arc guide groove 21 is located on the left side of the base 1, and the arc slide 22 is movably connected inside the arc guide groove 21. The arc guide groove 24 is located on the right side of the base 1, and the arc slide 25 is movably connected inside the arc guide groove 24. The angle driving mechanism 23 is fixedly connected to the base 1, and its two sides are respectively connected to the arc slide 22 and the arc slide 25. Columns 3 are fixedly connected to both sides of the arc slide 22 and the arc slide 25.
[0026] like Figure 4 As shown, the angle driving mechanism 23 includes an arc rack 231, a transmission gear 232, a bearing housing 233, a transmission shaft 234, a fixed base 235, a motor 236, a driven gear 237, a driving gear 238, a driven gear 239, a transmission shaft 2310, an arc rack 2311, a transmission gear 2312, and a bearing housing 2313. The arc rack 231 is fixedly connected to the arc slide 22. The arc rack 2311 is fixedly connected to the arc slide 25. The fixed base 235 is fixedly connected to the center of the base 1. The motor 236 is fixedly connected to the rear exterior of the fixed base 235, and the driving gear 238 is fixedly connected to the output shaft of the motor 236. The bottom of the bearing housing 233 is fixedly connected to the center left side of the base 1. The left side of the transmission shaft 234 is movably connected inside the bearing housing 233. A transmission gear 232 is fixedly connected to the left side of the 34th shaft, and the transmission gear 232 is connected to the arc rack 231. The right side of the transmission shaft 234 is movably connected to the left side of the fixed seat 235. The right end of the transmission shaft 234 is fixedly connected to the driven gear 237, and the driven gear 237 is connected to the driving gear 238. The bottom of the bearing seat 2313 is fixedly connected to the center of the right side of the base 1. The right side of the transmission shaft 2310 is movably connected to the inside of the bearing seat 2313. The right side of the transmission shaft 2310 is fixedly connected to the transmission gear 2312, and the transmission gear 2312 is connected to the arc rack 2311. The left side of the transmission shaft 2310 is movably connected to the right side of the fixed seat 235. The left end of the transmission shaft 2310 is fixedly connected to the driven gear 239, and the driven gear 239 is connected to the driving gear 238.
[0027] The motor 236 is a servo motor or a stepper motor, which makes it easy to control the motor 236 using existing automation technology.
[0028] like Figure 5As shown, the adjustable mounting device 5 includes an electric telescopic rod 51, a slide groove 52, a movable slider 53, a connecting plate 54, a mounting mechanism 55, and a hinge 56. There are two electric telescopic rods 51, each fixedly connected to the inner side of the left-side column 3. The lower right sides of the connecting plate 54 are connected to the upper right sides of the corresponding column 3 via hinges 56. The connecting plate 54 has a mounting mechanism 55 on its top and slide grooves 52 on its lower left sides. There are two movable sliders 53, each movably connected to the upper side of its corresponding slide groove 52. The lower sides of the two movable sliders 53 are hinged to the upper sides of their respective electric telescopic rods 51.
[0029] like Figure 6 As shown, the mounting mechanism 55 includes a mounting plate 551, a photovoltaic panel 552, threaded holes 553, fixing screws 554, a second sliding groove 555, a fixing slider 556, a connecting hole 557, a drum 558, a second motor 559, and a steel wire rope 5510. The mounting plate 551 has a second sliding groove 555 on its bottom surface and several threaded holes 553 on its top surface. The photovoltaic panel 552 is located on the mounting plate 551 and is connected to the corresponding threaded holes 553 by several fixing screws 554. The fixed slider 556 is fixedly connected to the bottom of the connecting plate 54, and the outside of the fixed slider 556 is movably connected to the inside of the slide groove 555. The connecting hole 557 is opened inside the right side of the connecting plate 54, and the motor 559 is fixedly connected to the lower left side of the connecting hole 557. The drum 558 is fixedly connected to the upper output shaft of the motor 559. The steel wire rope 5510 is wound and connected to the drum 558 on the left side, and the steel wire rope 5510 passes through the connecting hole 557 on the right side and is fixedly connected to the lower right inner side of the mounting plate 551.
[0030] Among them, the second motor 559 is a geared motor with a brake; the second slide groove 555 is a T-shaped slide groove.
[0031] The invention is used as follows: It features a simple and reasonable structure, low production cost, convenient installation, and complete functions. During photovoltaic panel installation, the electric telescopic rod 51 is first activated to extend. As the electric telescopic rod 51 extends, it pushes the movable slider 53 upwards within the slide groove 52. Since the movable slider 53 is connected to the connecting plate 54 via hinges 56, and the lower right sides of the connecting plate 54 are also connected to the upper right sides of the corresponding column 3 via hinges 56, this structural design allows the connecting plate 54 to rotate clockwise around the hinges 56, thus placing the connecting plate 54 at an angle conducive to photovoltaic panel installation. Once the connecting plate 54 is adjusted to the appropriate angle, the second motor 559 is activated. The second motor 559 is a geared motor with a brake. After startup, the wire rope 5510 is released. The wire rope 5510, originally wound on the drum 558, is released by the rotation of the motor 559. The mounting plate 551 is movably connected to the connecting plate 54 via a fixed slider 556. The bottom of the fixed slider 556 is fixedly connected to the connecting plate 54. A second sliding groove 555 is formed on the bottom surface of the mounting plate 551, and this groove is T-shaped. The fixed slider 556 is movably connected to the inside of the second sliding groove 555. During the release of the wire rope 5510, the mounting plate 551 tilts and moves downwards along the fixed slider 556 due to its own weight, lowering its position and making it easier for operators to install the photovoltaic panel 552 onto the mounting plate 551. After the operator places the photovoltaic panel 552 on the mounting plate 551, several fixing screws 554 are connected to the corresponding threaded holes 553 on the mounting plate 551 to fix the photovoltaic panel 552 to the mounting plate 551. After the photovoltaic panel is installed, the motor 559 is started again to reverse and tighten the steel wire rope 5510. The steel wire rope 5510 is gradually wound around the drum 558 under the action of the drum, thereby pulling the mounting plate 551 upward along the fixed slider 556, and finally moving the mounting plate 551 onto the connecting plate 54, completing the preparation work for the installation of the photovoltaic panel. After the photovoltaic panel is installed, it enters the power generation state. At this time, the angle adjustment mechanism 2 plays an important role, which can adjust the angle according to the angle of the photovoltaic panel. The angle adjustment mechanism 2 adjusts the orientation of the photovoltaic panel to maintain its perpendicularity to sunlight as much as possible, thereby improving the power generation efficiency of the photovoltaic panel. The working principle of the angle adjustment mechanism 2 is as follows: Motor 236 (either a servo motor or a stepper motor with high-precision control) is started. The drive gear 238, fixedly connected to the output shaft of motor 236, begins to rotate. When the drive gear 238 rotates, it drives the driven gears 237 and 239, which mesh with it, to rotate. Driven gear 237 is fixedly connected to the right end of transmission shaft 234. As driven gear 237 rotates, transmission shaft 234 also begins to rotate, and transmission gear 232, fixedly connected to the left side of transmission shaft 234, rotates accordingly.The transmission gear 232 meshes with the arc rack 231 fixedly connected to the arc slide block 22, thereby driving the arc slide block 22 to slide within the arc guide groove 21. Similarly, the driven gear 239 drives the transmission shaft 2310 to rotate, and the transmission gear 2312 fixedly connected to the outside of the right side of the transmission shaft 2310 rotates, thereby driving the arc rack 2311 fixedly connected to the arc slide block 25 to move, causing the arc slide block 25 to slide within the arc guide groove 24. Since columns 3 are fixedly connected to both sides of the arc slide blocks 22 and 25, the angle of the columns 3 changes during the movement of the arc slide blocks 22 and 25, thus realizing the adjustment of the photovoltaic panel direction. In addition, the extension and retraction of the electric telescopic rod 51 facilitates the adjustment of the photovoltaic panel angle. When it is necessary to adjust the tilt angle of the photovoltaic panel, the rod is activated. The electric telescopic rod 51 extends or retracts, pushing the movable slider 53 to move up and down within the slide groove 52. Since the movable slider 53 is connected to the connecting plate 54 via hinges 56, and the lower right sides of the connecting plate 54 are also connected to the upper right sides of the corresponding columns 3 via hinges 56, this structure allows the connecting plate 54 to rotate around the hinges 56, thereby changing the pitch angle of the photovoltaic panel on the connecting plate 54. Through the angle adjustment mechanism 2 adjusting the direction of the photovoltaic panel and the electric telescopic rod 51 adjusting the angle of the photovoltaic panel, the photovoltaic panel can always receive sunlight in the best condition during power generation, improving the efficiency of photovoltaic power generation. In different seasons and times, operators can flexibly adjust the direction and angle of the photovoltaic panel according to the actual situation by controlling the motor 236 and the electric telescopic rod 51, ensuring that the photovoltaic panel can fully utilize solar energy for power generation.
[0032] In the description of this invention, it should be understood that the terms "coaxial," "bottom," "one end," "top," "middle," "other end," "upper," "side," "top," "inner," "front," "center," "both ends," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.
[0033] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "setting," "connection," "fixing," "screw connection," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components. Unless otherwise explicitly limited, those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0034] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the present invention. Various changes and modifications can be made to the present invention without departing from its spirit and scope. All such changes and modifications fall within the scope of the present invention as claimed, which is defined by the appended claims and their equivalents.
[0035] The control method of this invention is to control the device by manually starting and stopping the switch. The wiring diagram of the power element and the supply of power are common knowledge in the field. Since this invention is mainly used to protect mechanical devices, the control method and wiring layout will not be explained in detail.
Claims
1. A photovoltaic power generation installation structure for the solar energy industry, characterized in that: It includes a base (1), an angle adjustment mechanism (2), a column (3), a crossbeam (4), and an adjustable mounting device (5); An angle adjustment mechanism (2) is provided on the upper side of the base (1); There are four columns (3). The bottom of the four columns (3) is fixedly connected to the four corners of the angle adjustment mechanism (2). The four columns (3) are all fixedly connected to each other with crossbeams (4). The upper side of the four columns (3) is provided with an adjustable installation device (5). The adjustable mounting device (5) includes an electric telescopic rod (51), a slide rail (52), a movable slider (53), a connecting plate (54), a mounting mechanism (55), and a hinge (56). There are two electric telescopic rods (51), and the two electric telescopic rods (51) are respectively fixedly connected to the inside of the left column (3); The lower right side of the connecting plate (54) is connected to the upper right side of the corresponding column (3) by hinges (56). The connecting plate (54) is provided with an installation mechanism (55). The lower left side of the connecting plate (54) is provided with a sliding groove (52). There are two movable sliders (53). The upper sides of the two movable sliders (53) are movably connected to the inside of the corresponding slide groove (52). The lower sides of the two movable sliders (53) are respectively hinged to the upper side of the corresponding electric telescopic rod (51). The installation mechanism (55) includes an installation plate (551), a photovoltaic panel (552), a threaded hole (553), a fixing screw (554), a second slide groove (555), a fixing slider (556), a connecting hole (557), a drum (558), a second motor (559), and a wire rope (5510). The mounting plate (551) has a sliding groove (555) on its bottom surface and several threaded holes (553) on its top surface. The photovoltaic panel (552) is located on the mounting plate (551), and the photovoltaic panel (552) is connected to the corresponding threaded hole (553) by several fixing screws (554); The bottom of the fixed slider (556) is fixedly connected to the connecting plate (54), and the outside of the fixed slider (556) is movably connected to the inside of the slide groove (555); The connecting hole (557) is located inside the right side of the connecting plate (54), and a motor (559) is fixedly connected to the lower left side of the connecting hole (557). A drum (558) is fixedly connected to the upper output shaft of the second motor (559); The left side of the wire rope (5510) is wound and connected to the drum (558), and the right side of the wire rope (5510) passes through the connecting hole (557) and is fixedly connected to the lower right inner side of the mounting plate (551).
2. The photovoltaic power generation installation structure for the solar energy industry according to claim 1, characterized in that: The angle adjustment mechanism (2) includes an arc guide groove (21), an arc slide block (22), an angle driving mechanism (23), an arc guide groove (24), and an arc slide block (25). The arc guide groove (21) is opened on the left side of the base (1), and the arc slide block (22) is movably connected inside the arc guide groove (21). The second arc guide groove (24) is opened on the right side of the base (1), and the second arc slide block (25) is movably connected inside the second arc guide groove (24). The angle driving mechanism (23) is fixedly connected to the base (1), and the two sides of the angle driving mechanism (23) are respectively connected to the upper surface of the first arc slide (22) and the second arc slide (25); Both sides of the arc slide block one (22) and arc slide block two (25) are fixedly connected with columns (3).
3. The photovoltaic power generation installation structure for the solar energy industry according to claim 2, characterized in that: The angle driving mechanism (23) includes a circular arc rack (231), a transmission gear (232), a bearing seat (233), a transmission shaft (234), a fixed seat (235), a motor (236), a driven gear (237), a driving gear (238), a driven gear (239), a transmission shaft (2310), a circular arc rack (2311), a transmission gear (2312), and a bearing seat (2313). The first arc rack (231) is fixedly connected to the first arc slide (22); The second arc rack (2311) is fixedly connected to the second arc slide (25); The fixed base (235) is fixedly connected to the center of the base (1). A motor (236) is fixedly connected to the rear side of the fixed base (235), and a drive gear (238) is fixedly connected to the output shaft of the motor (236). The bearing housing (233) is fixedly connected to the center left side of the base (1) at its bottom; The left side of the first transmission shaft (234) is movably connected to the inside of the first bearing seat (233). The left side of the first transmission shaft (234) is fixedly connected to the first transmission gear (232), and the first transmission gear (232) is connected to the first arc rack (231). The right side of the first transmission shaft (234) is movably connected to the inside of the left side of the fixed seat (235). The right end of the first transmission shaft (234) is fixedly connected to the first driven gear (237), and the driven gear (237) is connected to the driving gear (238). The bottom of the bearing housing 2 (2313) is fixedly connected to the center of the right side of the base (1); The right side of the second transmission shaft (2310) is movably connected to the inside of the second bearing seat (2313). The right side of the second transmission shaft (2310) is fixedly connected to the second transmission gear (2312), and the second transmission gear (2312) is connected to the second arc rack (2311). The left side of the second transmission shaft (2310) is movably connected to the inside of the right side of the fixed seat (235). The left end of the second transmission shaft (2310) is fixedly connected to the second driven gear (239), and the second driven gear (239) is connected to the driving gear (238).
4. The photovoltaic power generation installation structure for the solar energy industry according to claim 3, characterized in that: The motor (236) is a servo motor or a stepper motor.
5. The photovoltaic power generation installation structure for the solar energy industry according to claim 1, characterized in that: The second motor (559) is a geared motor with a brake.
6. The photovoltaic power generation installation structure for the solar energy industry according to claim 1, characterized in that: The second slide (555) is a T-shaped slide.