Aluminum alloy photovoltaic sunlight room

By designing adjustable photovoltaic modules and drive mechanisms in aluminum alloy photovoltaic sunrooms, the problem of insufficient sunlight on cloudy days in spring and autumn has been solved, achieving better lighting effects and environmental control.

CN121827598APending Publication Date: 2026-04-10XINSHENGTAI INTELLIGENT TECHNOLOGY (SHANGHAI) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-02-06
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

In spring and autumn, when the weather is suitable for cloudy days, the lack of sunlight in existing aluminum alloy photovoltaic sunrooms can have adverse effects on the indoor environment, such as large differences in temperature and humidity between the inside and outside, and the ground is prone to dampness and the growth of moss and mold.

Method used

By designing detachable photovoltaic modules and drive mechanisms, the angle and position of the photovoltaic modules are adjusted using servo motors and gear assemblies, opening the light-receiving openings, increasing indoor lighting, reducing temperature and humidity differences, and preventing debris from entering through a movable baffle mechanism.

Benefits of technology

It effectively increases indoor lighting, reduces the temperature and humidity difference between indoors and outdoors, avoids dampness and mold growth on the ground, and improves environmental comfort.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an aluminum alloy photovoltaic sunlight room, and particularly relates to the field of photovoltaic sunlight rooms, the aluminum alloy photovoltaic sunlight room comprises a beam column, a cross beam is mounted on the beam column, a plurality of groups of photovoltaic modules are detachably mounted on the cross beam, the photovoltaic modules are mounted on the cross beam, each photovoltaic module comprises a mounting beam, and a sliding groove is formed in one side of each mounting beam; a linear driving mechanism is slidably mounted on the mounting beam, the linear driving mechanism is connected with one group of photovoltaic modules, the linear driving mechanism comprises a transverse guide rail, a vertical guide rail is mounted at the output end of the transverse guide rail, and a third mounting plate is arranged between the transverse guide rail and the vertical guide rail; first mounting plates are mounted at the two ends of the transverse guide rail. The movable assembly is moved to one corner of the original position, the daylighting opening is correspondingly opened at the original position, indoor daylighting is increased through the daylighting opening, the temperature and humidity difference between the interior and the exterior of the room is reduced, and the situation that the ground in the room gets damp, and moss, mold and other peculiar smells are generated is avoided.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of photovoltaic sunroom, more particularly, the present application relates to an aluminum alloy photovoltaic sunroom. BACKGROUND

[0002] The aluminum alloy photovoltaic sunroom is a typical application form of building integrated photovoltaics, which uses high-strength aluminum alloy as the main frame, replaces traditional glass or board with photovoltaic modules as the canopy, and has three core functions of shading, space utilization and photovoltaic power generation.

[0003] In order to improve the power generation, the photovoltaic module coverage of the existing full photovoltaic canopy reaches more than 95% (the remaining part is the connecting support mechanism), which easily leads to insufficient lighting in the sunroom under the weather of cloudy days in the spring and autumn seasons. Although the existing technology can compensate for the indoor brightness by installing lighting lamps, long-term insufficient lighting will cause adverse effects on the indoor environment, such as large difference between indoor and outdoor temperature and humidity, easy moisture return of the ground, and easy breeding of moss, mildew and other odors. These problems cannot be solved by installing lighting lamps.

[0004] Therefore, the present application provides an aluminum alloy photovoltaic sunroom to solve the problem of adverse effects on the indoor environment caused by insufficient lighting of the full photovoltaic canopy of the existing photovoltaic sunroom under the weather of cloudy days in the spring and autumn seasons. SUMMARY

[0005] The present application provides an aluminum alloy photovoltaic sunroom to solve the problem of adverse effects on the indoor environment caused by insufficient lighting of the full photovoltaic canopy of the existing photovoltaic sunroom under the weather of cloudy days in the spring and autumn seasons.

[0006] In order to achieve the above object, the present application provides the following technical scheme: an aluminum alloy photovoltaic sunroom, comprising a beam column, a cross beam installed on the beam column, photovoltaic modules detachably installed on the cross beam, and the photovoltaic modules are provided in multiple groups, an inclined beam installed on the cross beam, the inclined beam comprising a mounting beam, a sliding groove is formed on one side of the mounting beam, a linear drive mechanism is slidingly installed on the mounting beam, and the linear drive mechanism is connected with one of the photovoltaic modules, the linear drive mechanism comprising a transverse guide rail, a vertical guide rail is installed at the output end of the transverse guide rail, and a third mounting plate is arranged between the transverse guide rail and the vertical guide rail; the two ends of the transverse guide rail are both provided with a first mounting plate, a servo motor one is installed on the first mounting plate, a drive wheel assembly one is installed at the output end of the servo motor one, and the drive wheel assembly one is rotatably arranged on the first mounting plate and slides along the inside of the corresponding sliding groove; the third mounting plate is slidingly arranged on the transverse guide rail, a servo motor three is installed on the third mounting plate, a drive wheel assembly three is installed at the output end of the servo motor three, and the drive wheel assembly three is rotatably arranged on the third mounting plate, one side of the third mounting plate is positioned and connected with a second mounting plate, a servo motor two is installed on the second mounting plate, a drive wheel assembly two is installed at the output end of the servo motor two, and the drive wheel assembly two is rotatably arranged on the second mounting plate, and the drive wheel assembly two drives the vertical guide rail to move vertically.

[0007] In a preferred embodiment, the top end of the vertical guide rail is provided with an angle adjusting mechanism, the angle adjusting mechanism comprising a bottom plate, a rotating plate is installed on the bottom plate, a rotary drive assembly is arranged between the bottom plate and the rotating plate, and the rotary drive assembly is used to drive the rotating plate to rotate relative to the bottom plate, a connecting leg is installed on the rotating plate through a linkage assembly, and the connecting leg is detachably connected with the photovoltaic module.

[0008] In a preferred embodiment, the rotary drive assembly comprises a servo motor four, a gear assembly one is arranged between the bottom plate and the rotating plate, and the bottom plate and the rotating plate are rotatably connected through the servo motor four and the gear assembly one.

[0009] In a preferred embodiment, a fixed side plate is installed on the rotating plate, a servo motor five and a servo motor six are respectively installed on the two sides of the fixed side plate, the servo motor five drives the linkage assembly to overturn, and the servo motor six drives the connecting leg to overturn.

[0010] In a preferred embodiment, the output end of the servo motor five is connected with a gear assembly two, the output end of the servo motor six is connected with a gear assembly three, a double-drive rod assembly is connected to the gear assembly two, and a crank linkage assembly is connected to the gear assembly three.

[0011] In one preferred implementation, the double driving rod assembly comprises a driving rod I and a passive rod I, one end of the driving rod I is rotationally connected with the fixed side plate, and the driving rod I is positioned and connected with the gear assembly II near the end part close to the fixed side plate, one end of the passive rod I is rotationally connected with the fixed side plate, the active rod I and the passive rod I are rotationally connected with two corners of the triangular plate respectively, and the driving rod I and the passive rod I are arranged in parallel, the passive rod II is rotationally connected with one corner of the triangular plate far away from the passive rod I and the driving rod I, and the passive rod II is rotationally connected with one end of the connecting leg.

[0012] In one preferred implementation, the crank connecting rod assembly comprises a driving rod II, and the driving rod II is rotationally connected by a group of long rods and a group of short rods, one end of the short rod is rotationally connected with the center of the gear assembly III, one end of the long rod is rotationally connected with the passive rod III, and the passive rod III is rotationally connected with one end of the connecting leg far away from the passive rod II.

[0013] In one preferred implementation, the bottom end of the vertical guide rail is provided with a movable baffle mechanism, and the movable baffle mechanism comprises a frame, and the frame is provided with a glass plate.

[0014] In one preferred implementation, the glass plate is fixedly embedded with an embedded plate, the embedded plate is provided with a clamping groove, the embedded plate is slidably connected with a connecting seat through the clamping groove, the connecting seat is provided with a fixing groove, and the connecting seat is positioned and connected with the bottom end of the vertical guide rail through the fixing groove.

[0015] In one preferred implementation, the frame is provided with side pads on both sides, the bottom of the mounting beam is provided with a pad groove, the side pads slide along the inside of the corresponding pad grooves, and the frame is detachably provided with a collection box at one end.

[0016] The beneficial effects of the present application are as follows: The present application drives the vertical guide rail to rise through the driving wheel assembly II, so that the movable assembly is lifted relative to the fixed assembly, then the servo motor III is started, the vertical guide rail and the movable assembly are moved to one end of the horizontal guide rail through the driving wheel assembly III, and finally the servo motor I is started, the movable assembly is moved to one corner of the original position through the driving wheel assembly I, the light inlet is opened at the original position, the light inlet is increased to increase the indoor lighting, the temperature and humidity difference between the indoor and outdoor is reduced, and the ground of the house is prevented from being humid and breeding moss, mildew and other odors.

[0017] The present application drives the vertical guide rail to rise through the driving wheel assembly II, so that the movable assembly is lifted relative to the fixed assembly, then the servo motor III is started, the vertical guide rail and the movable assembly are moved to one end of the horizontal guide rail through the driving wheel assembly III, and finally the servo motor I is started, the movable assembly is moved to one corner of the original position through the driving wheel assembly I, the light inlet is opened at the original position, the light inlet is increased to increase the indoor lighting, the temperature and humidity difference between the indoor and outdoor is reduced, and the ground of the house is prevented from being humid and breeding moss, mildew and other odors.

[0018] This invention uses the rotation of gear assembly two to drive the active rod one to change the angle relative to the rotating plate and swing, while the passive rod one passively assists the swing. Then, the connecting foot is lifted upward through the triangular plate and the passive rod two, further increasing the height of the movable component and preventing the bottom of the movable component from colliding with the adjacent fixed component due to its low position.

[0019] This invention uses gear assembly three to drive the top of the active rod two to lift upwards, and then uses passive rod three to pull one end of the connecting foot to change the tilt angle of the connecting foot, thereby indirectly changing the angle of the movable component on the connecting foot, making the movable component as close to a vertical state as possible, reducing the obstruction of the light opening, further expanding the range of the light opening, and thus improving the lighting effect in the room.

[0020] When the invention moves from one end of the vertical guide rail to the horizontal guide rail, the side pad and the pad groove are engaged and limited. First, the connecting seat moves along the groove. Then, when the horizontal guide rail moves along the slide groove, it drives the moving baffle mechanism to move as a whole. The side pad slides along the corresponding pad groove, so that the glass plate corresponds to the light-transmitting opening and blocks external debris from entering from the light-transmitting opening. The debris that falls on the glass plate is collected into the collection box along its inclined surface. The collection box can be disassembled and cleaned periodically afterward. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0022] Figure 2 This is a schematic diagram of the structure above the crossbeam of the present invention.

[0023] Figure 3 This is a schematic diagram of the mounting beam structure of the present invention.

[0024] Figure 4 This is a schematic diagram showing the connection between the linear drive mechanism and the angle adjustment mechanism of the present invention.

[0025] Figure 5 This is a three-dimensional structural diagram of the linear drive mechanism of the present invention.

[0026] Figure 6 This is a three-dimensional structural diagram of one side of the angle adjustment mechanism of the present invention.

[0027] Figure 7 This is a three-dimensional structural diagram of the other side of the angle adjustment mechanism of the present invention.

[0028] Figure 8 This is a three-dimensional structural diagram of the movable baffle mechanism of the present invention.

[0029] The attached diagram is labeled as follows: 1. Beam / Column; 2. Horizontal Beam; 3. Photovoltaic Module; 4. Inclined Beam; 41. Mounting Beam; 42. Slide Groove; 43. Pad Groove; 5. Linear Drive Mechanism; 51. Transverse Guide Rail; 511. First Mounting Plate; 512. Servo Motor 1; 513. Drive Wheel Assembly 1; 52. Vertical Guide Rail; 521. Second Mounting Plate; 522. Servo Motor 2; 523. Drive Wheel Assembly 2; 53. Third Mounting Plate; 531. Servo Motor 3; 532. Drive Wheel Assembly 3; 6. Angle Adjustment Mechanism; 61. Base Plate; 611. Servo Motor 4; 612. Gear 62. Wheel assembly 1; 62. Rotating plate; 621. Fixed side plate; 622. Servo motor 5; 623. Gear assembly 2; 624. Gear assembly 3; 625. Servo motor 6; 63. Linkage frame assembly; 631. Active rod 1; 632. Passive rod 1; 633. Active rod 2; 634. Triangular plate; 635. Passive rod 2; 636. Passive rod 3; 64. Connecting foot; 7. Moving baffle mechanism; 71. Frame; 72. Glass plate; 721. Inset plate; 722. Slot; 73. Side pad; 74. Connecting seat; 741. Fixing slot; 75. Collection box. Detailed Implementation

[0030] The present application will now be described in further detail with reference to the accompanying drawings. It should be noted that the following specific embodiments are only used to further illustrate the present application and should not be construed as limiting the scope of protection of the present application. Those skilled in the art can make some non-essential improvements and adjustments to the present application based on the above application content. Example 1

[0031] Refer to the instruction manual appendix Figures 1 to 5An aluminum alloy photovoltaic sunroom includes a beam column 1, a crossbeam 2 mounted on the beam column 1, and photovoltaic modules 3 detachably mounted on the crossbeam 2, with multiple sets of photovoltaic modules 3. An inclined beam 4 is mounted on the crossbeam 2, and the inclined beam 4 includes a mounting beam 41. A groove 42 is provided on one side of the mounting beam 41. A linear drive mechanism 5 is slidably mounted on the mounting beam 41 and is connected to one set of photovoltaic modules 3. The linear drive mechanism 5 includes a transverse guide rail 51, a vertical guide rail 52 mounted at the output end of the transverse guide rail 51, and a third mounting plate 53 between the transverse guide rail 51 and the vertical guide rail 52. First mounting plates 511 are mounted at both ends of the transverse guide rail 51, and a servo motor 512 is mounted on the first mounting plate 511. A drive mechanism is mounted at the output end of the servo motor 512. A first wheel assembly 513 is rotatably mounted on a first mounting plate 511 and slides along the interior of a corresponding groove 42. A third mounting plate 53 is slidably mounted on a transverse guide rail 51 and a third servo motor 531 is mounted on the third mounting plate 53. A third drive wheel assembly 532 is mounted on the output end of the third servo motor 531 and rotatably mounted on the third mounting plate 53. A second mounting plate 521 is positioned and connected to one side of the third mounting plate 53. A second servo motor 522 is mounted on the second mounting plate 521 and a second drive wheel assembly 523 is mounted on the output end of the second servo motor 522 and rotatably mounted on the second mounting plate 521. The second drive wheel assembly 523 drives the vertical guide rail 52 to move vertically.

[0032] It should be noted that the photovoltaic module 3 includes fixed modules and movable modules. The movable modules are arranged at intervals, such as one movable module set every two sets of fixed modules. The inclined beam 4 is provided with a fixed beam and a mounting beam 41 corresponding to the fixed modules and movable modules respectively. The fixed modules are directly mounted on the fixed beams through the support frame, and the movable modules are mounted on the vertical guide rail 52. The servo motor 1 512, servo motor 2 522 and servo motor 3 531 all adopt existing remote control technology and can be powered by the photovoltaic module 3. This is an existing mature technology and will not be described in detail. The mounting beam 41 is perpendicular to the horizontal guide rail 51, and the horizontal guide rail 51 is perpendicular to the vertical guide rail 52.

[0033] In this embodiment, the specific implementation scenario is as follows: When it is a cloudy day with suitable climate in spring and autumn, and the room needs to increase natural light, firstly, servo motor 2 522 is started, which drives the vertical guide rail 52 to rise through drive wheel assembly 2 523, raising the height of the movable component relative to the fixed component. Then, servo motor 3 531 is started, which moves horizontally along the transverse guide rail 51 through drive wheel assembly 3 532, moving the vertical guide rail 52 and the movable component to one end of the transverse guide rail 51. Finally, servo motor 1 512 is started, which slides along the slide groove 42 through drive wheel assembly 1 513, moving towards one end of the mounting beam 41, and finally moving the movable component to one corner of its original position. At the original position, a light-receiving opening is opened to increase the natural light in the room, reduce the temperature and humidity difference between the inside and outside of the room, and prevent the floor from becoming damp and to prevent the growth of moss, mold, and other unpleasant odors. Example 2

[0034] Refer to the instruction manual appendix Figure 4 , Figure 6 and Figure 7 An angle adjustment mechanism 6 is installed at the top of the vertical guide rail 52. The angle adjustment mechanism 6 includes a base plate 61, a rotating plate 62 is installed on the base plate 61, a rotation drive assembly is provided between the base plate 61 and the rotating plate 62, and the rotation drive assembly is used to drive the rotating plate 62 to rotate relative to the base plate 61. A connecting foot 64 is installed on the rotating plate 62 through a linkage frame assembly 63, and the connecting foot 64 is detachably connected to the photovoltaic module 3.

[0035] The rotary drive assembly includes a servo motor 611, and a gear assembly 612 is provided between the base plate 61 and the rotating plate 62. The base plate 61 and the rotating plate 62 are rotatably connected by the servo motor 611 and the gear assembly 612.

[0036] In this embodiment, the specific implementation scenario is as follows: servo motor 611 is started, and gear assembly 612 causes rotating plate 62 to rotate relative to base plate 61, thereby driving photovoltaic module 3 to rotate and adjust through connecting foot 64, so that the upwardly extending movable module rotates above the adjacent fixed module, further expanding the range of light-receiving opening and improving the lighting effect in the room. Example 3

[0037] Refer to the instruction manual appendix Figure 6 and Figure 7 A fixed side plate 621 is installed on the rotating plate 62. Servo motor 5 622 and servo motor 625 are respectively installed on both sides of the fixed side plate 621. Servo motor 5 622 drives the linkage frame assembly 63 to rotate, and servo motor 625 drives the connecting foot 64 to rotate.

[0038] The output end of servo motor 5 622 is connected to gear assembly 2 623, the output end of servo motor 6 625 is connected to gear assembly 3 624, gear assembly 2 623 is connected to a dual drive rod assembly, and gear assembly 3 624 is connected to a crank connecting rod assembly.

[0039] The dual-drive rod assembly includes an active rod 631 and a passive rod 632. One end of the active rod 631 is rotatably connected to the fixed side plate 621, and the end of the active rod 631 near the fixed side plate 621 is positioned and connected to the gear assembly 623. One end of the passive rod 632 is rotatably connected to the fixed side plate 621. The movable ends of the active rod 631 and the passive rod 632 away from the fixed side plate 621 are respectively rotatably connected to the two corners of the triangular plate 634. The active rod 631 and the passive rod 632 are arranged in parallel. The corner of the triangular plate 634 away from the passive rod 632 and away from the active rod 631 and the passive rod 632 is rotatably connected to the passive rod 635, and the passive rod 635 is rotatably connected to one end of the connecting foot 64.

[0040] The crank-connecting rod assembly includes a second driving rod 633, which is composed of a set of long rods and a set of short rods rotatably connected. One end of the short rods is rotatably connected to the center of the third gear assembly 624, and one end of the long rods is rotatably connected to a third driven rod 636. The third driven rod 636 is rotatably connected to the end of the connecting foot 64 away from the second driven rod 635.

[0041] In this embodiment, the specific implementation scenario is as follows: The servo motor 622 is activated, which drives the active rod 631 to swing relative to the rotating plate 62 by rotating the gear assembly 623. The passive rod 632 passively assists in the swinging. Then, the connecting foot 64 is lifted upwards by the triangular plate 634 and the passive rod 635, further increasing the height of the movable component and preventing the bottom of the movable component from colliding with the adjacent fixed component due to its low position. At this time, the tilt angle of the movable component changes. When the movable component approaches a horizontal state, it will block the light-transmitting opening. Therefore, the servo motor 625 is activated, which drives the top of the active rod 633 to lift upwards by the gear assembly 624. Then, the passive rod 636 pulls one end of the connecting foot 64, changing the tilt angle of the connecting foot 64 and indirectly changing the angle of the movable component on the connecting foot 64, so that the movable component is as close to a vertical state as possible, reducing the obstruction of the light-transmitting opening, further expanding the range of the light-transmitting opening, and thus improving the lighting effect in the room. Example 3

[0042] Refer to the instruction manual appendix Figure 2 and Figure 8 A movable baffle mechanism 7 is installed at the bottom of the vertical guide rail 52. The movable baffle mechanism 7 includes a frame 71, on which a glass plate 72 is installed.

[0043] Refer to the instruction manual appendix Figure 1 , Figure 8 An inner plate 721 is fixedly embedded on the glass plate 72. A slot 722 is provided on the inner plate 721. A connecting seat 74 is slidably connected to the inner plate 721 through the slot 722. A fixing groove 741 is provided on the connecting seat 74. The connecting seat 74 is positioned and connected to the bottom end of the vertical guide rail 52 through the fixing groove 741.

[0044] Side pads 73 are installed on both sides of the frame 71, and a pad groove 43 is opened at the bottom of the mounting beam 41. The side pads 73 slide along the corresponding pad groove 43. A collection box 75 is detachably installed at one end of the frame 71.

[0045] In this embodiment, the specific implementation scenario is as follows: The vertical guide rail 52 is connected to the connecting seat 74 through the fixing groove 741. When the vertical guide rail 52 moves to one end of the horizontal guide rail 51, the side pad 73 and the pad groove 43 engage and limit the movement. First, the connecting seat 74 moves along the slot 722. Then, when the horizontal guide rail 51 moves along the sliding groove 42, it drives the moving baffle mechanism 7 to move as a whole. The side pad 73 slides along the corresponding pad groove 43, so that the glass plate 72 corresponds to the light-transmitting opening, blocking external debris from entering from the light-transmitting opening. The debris that falls on the glass plate 72 is collected into the collection box 75 along its inclined surface. The collection box 75 can be disassembled and cleaned periodically afterward.

[0046] Working principle: First, start servo motor 2 522, which drives the vertical guide rail 52 to rise through drive wheel assembly 2 523, raising the height of the movable component relative to the fixed component. Then, start servo motor 3 531, which moves horizontally along the transverse guide rail 51 through drive wheel assembly 3 532, moving the vertical guide rail 52 and the movable component to one end of the transverse guide rail 51. Finally, start servo motor 1 512, which slides along the slide groove 42 through drive wheel assembly 1 513, moving towards one end of the mounting beam 41, and finally moving the movable component to one corner of its original position, opening the light-collecting opening at the original position.

[0047] Second, start the servo motor 611, and make the rotating plate 62 rotate relative to the base plate 61 through the gear assembly 612. This will drive the photovoltaic module 3 to rotate and adjust through the connecting foot 64, so that the upwardly extending movable module is rotated above the adjacent fixed module, further expanding the range of the light-collecting opening.

[0048] 3. Start servo motor 5 622, which drives gear assembly 2 623 to rotate and change the angle of the active rod 1 631 relative to the rotating plate 62, causing it to swing. Passive rod 1 632 passively assists in the swing. Then, through triangular plate 634 and passive rod 2 635, the connecting foot 64 is lifted upward, further increasing the height of the movable component. Start servo motor 625, which drives gear assembly 3 624 to lift the top of the active rod 2 633 upward. Then, through passive rod 3 636, one end of the connecting foot 64 is pulled, changing the tilt angle of the connecting foot 64 and indirectly changing the angle of the movable component on the connecting foot 64. This makes the movable component as close to a vertical state as possible, reducing the obstruction of the light-receiving opening and further expanding the range of the light-receiving opening.

[0049] Fourth, the vertical guide rail 52 is connected to the connecting seat 74 through the fixed groove 741. When the vertical guide rail 52 moves to one end of the horizontal guide rail 51, the side pad 73 and the pad groove 43 are engaged and limited. First, the connecting seat 74 is moved along the slot 722. Then, when the horizontal guide rail 51 moves along the sliding groove 42, the moving baffle mechanism 7 moves as a whole. The side pad 73 slides along the corresponding pad groove 43, so that the glass plate 72 corresponds to the light-transmitting opening and blocks external debris from entering the light-transmitting opening.

[0050] The above embodiments are merely illustrative of several implementation methods of the present invention, and their descriptions are relatively specific and detailed. However, they should not be construed as limiting the scope of the present invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these modifications and improvements all fall within the protection scope of the present invention.

Claims

1. An aluminum alloy photovoltaic sunroom, comprising beams and columns (1), wherein crossbeams (2) are installed on the beams and columns (1), and photovoltaic modules (3) are detachably installed on the crossbeams (2), wherein multiple sets of photovoltaic modules (3) are provided, characterized in that: An inclined beam (4) is installed on the crossbeam (2). The inclined beam (4) includes a mounting beam (41). A groove (42) is provided on one side of the mounting beam (41). A linear drive mechanism (5) is slidably installed on the mounting beam (41). The linear drive mechanism (5) is connected to one of the photovoltaic modules (3). The linear drive mechanism (5) includes a transverse guide rail (51). A vertical guide rail (52) is installed at the output end of the transverse guide rail (51). A third mounting plate (53) is provided between the transverse guide rail (51) and the vertical guide rail (52). Both ends of the transverse guide rail (51) are equipped with a first mounting plate (511). A servo motor (512) is mounted on the first mounting plate (511). A drive wheel assembly (513) is mounted on the output end of the servo motor (512). The drive wheel assembly (513) is rotatably mounted on the first mounting plate (511). The drive wheel assembly (513) slides along the inside of the corresponding slide groove (42). The third mounting plate (53) is slidably mounted on the transverse guide rail (51). A servo motor three (531) is mounted on the third mounting plate (53). A drive wheel assembly three (532) is mounted on the output end of the servo motor three (531). The drive wheel assembly three (532) is rotatably mounted on the third mounting plate (53). A second mounting plate (521) is positioned and connected to one side of the third mounting plate (53). A servo motor two (522) is mounted on the second mounting plate (521). A drive wheel assembly two (523) is mounted on the output end of the servo motor two (522). The drive wheel assembly two (523) is rotatably mounted on the second mounting plate (521). The drive wheel assembly two (523) drives the vertical guide rail (52) to move vertically.

2. The aluminum alloy photovoltaic sunroom according to claim 1, characterized in that: An angle adjustment mechanism (6) is installed at the top of the vertical guide rail (52). The angle adjustment mechanism (6) includes a base plate (61) and a rotating plate (62) is installed on the base plate (61). A rotation drive assembly is provided between the base plate (61) and the rotating plate (62), and the rotation drive assembly is used to drive the rotating plate (62) to rotate relative to the base plate (61). A connecting foot (64) is installed on the rotating plate (62) through a linkage frame assembly (63), and the connecting foot (64) is detachably connected to the inclined beam (4).

3. The aluminum alloy photovoltaic sunroom according to claim 2, characterized in that: The rotary drive assembly includes a servo motor four (611), and a gear assembly one (612) is provided between the base plate (61) and the rotating plate (62). The base plate (61) and the rotating plate (62) are rotatably connected by the servo motor four (611) and the gear assembly one (612).

4. The aluminum alloy photovoltaic sunroom according to claim 3, characterized in that: A fixed side plate (621) is installed on the rotating plate (62). Servo motor five (622) and servo motor six (625) are respectively installed on both sides of the fixed side plate (621). Servo motor five (622) drives the linkage frame assembly (63) to rotate, and servo motor six (625) drives the connecting foot (64) to rotate.

5. The aluminum alloy photovoltaic sunroom according to claim 4, characterized in that: The output end of the servo motor five (622) is connected to the gear assembly two (623), the output end of the servo motor six (625) is connected to the gear assembly three (624), the gear assembly two (623) is connected to the dual drive rod assembly, and the gear assembly three (624) is connected to the crank connecting rod assembly.

6. The aluminum alloy photovoltaic sunroom according to claim 5, characterized in that: The dual-drive rod assembly includes an active rod one (631) and a passive rod one (632). One end of the active rod one (631) is rotatably connected to the fixed side plate (621), and the end of the active rod one (631) near the fixed side plate (621) is positioned and connected to the gear assembly two (623). One end of the passive rod one (632) is rotatably connected to the fixed side plate (621). The movable ends of the active rod one (631) and the passive rod one (632) away from the fixed side plate (621) are respectively rotatably connected to the two corners of the triangular plate (634), and the active rod one (631) and the passive rod one (632) are arranged in parallel. The corner of the triangular plate (634) away from the passive rod one (632) and away from the active rod one (631) and the passive rod one (632) is rotatably connected to the passive rod two (635), and the passive rod two (635) is rotatably connected to one end of the connecting foot (64).

7. An aluminum alloy photovoltaic sunroom according to claim 6, characterized in that: The crank-connecting rod assembly includes a second active rod (633), which is composed of a set of long rods and a set of short rods rotatably connected. One end of the short rods is rotatably connected to the center of the third gear assembly (624), and one end of the long rods is rotatably connected to a third passive rod (636). The third passive rod (636) is rotatably connected to the end of the connecting foot (64) away from the second passive rod (635).

8. The aluminum alloy photovoltaic sunroom according to claim 7, characterized in that: The bottom end of the vertical guide rail (52) is equipped with a movable baffle mechanism (7), which includes a frame (71) on which a glass plate (72) is mounted.

9. An aluminum alloy photovoltaic sunroom according to claim 8, characterized in that: An inlay plate (721) is fixedly embedded on the glass plate (72). A slot (722) is provided on the inlay plate (721). A connecting seat (74) is slidably connected to the inlay plate (721) through the slot (722). A fixing groove (741) is provided on the connecting seat (74). The connecting seat (74) is positioned and connected to the bottom end of the vertical guide rail (52) through the fixing groove (741).

10. An aluminum alloy photovoltaic sunroom according to claim 9, characterized in that: Side pads (73) are installed on both sides of the frame (71), and a pad groove (43) is opened at the bottom of the mounting beam (41). The side pads (73) slide along the corresponding pad groove (43). A collection box (75) is detachably installed at one end of the frame (71).