A green, low-carbon, and energy-saving building structure

By designing structures such as collection plates, floating plates, and extrusion components on the top floor of the building, the problems of lack of shade and water storage for green plants have been solved, realizing automatic water storage and shade protection for green plants, reducing labor costs, and improving the growth effect and low-carbon energy-saving effect of green plants.

CN116537457BActive Publication Date: 2025-10-28DALIAN VOCATIONAL & TECHNICAL COLLEGE (DALIAN OPEN UNIVERSITY)
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Patent Information

Application Number
CN202310725277.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-19
Publication Date
2025-10-28
Estimated Expiration
2043-06-19

AI Technical Summary

Technical Problem

In existing green, low-carbon, and energy-saving buildings, the rooftop greenery lacks effective shading and water retention devices, causing the plants to easily wither when rain and sunlight alternate, increasing labor costs.

Method used

A structure was designed that includes a building top slab, a green plant placement slab, a collection slab, a floating slab, an extrusion assembly, a pulling assembly, and a rotating assembly. The collection slab collects rainwater, the floating slab is replenished with water periodically, and the extrusion and pulling slabs provide shading protection.

Benefits of technology

It enables automatic water storage and shading protection for green plants, reduces the need for manual maintenance, and improves the growth effect and low-carbon energy saving effect of green plants.

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Abstract

A green, low-carbon, and energy-saving building structure includes a top floor slab and a plant placement panel. The plant placement panel is fixedly connected to the top of the top floor slab. A first collection plate and a second collection plate are hinged to both sides of the top of the top floor slab, respectively. A floating plate is movably connected inside the top floor slab. The beneficial effects of this invention are: by combining the first and second collection plates, a water-retaining effect is achieved for the plants. Rainwater flows through the top of the first and second collection plates into the interior of their outer ends. Simultaneously, rainwater flows through the interior of both the first and second collection plates into the lower end of the top floor slab's inner cavity via first slots and connecting pipes. The rainwater is then stored inside the top floor slab, thus achieving rainwater collection.
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Description

Technical Field

[0001] This invention belongs to the field of energy-saving building equipment technology, specifically a green, low-carbon, and energy-saving building structure. Background Technology

[0002] Green, low-carbon, and energy-efficient buildings refer to buildings that reduce the use of fossil fuels, improve energy efficiency, and reduce carbon dioxide emissions throughout the entire life cycle of building materials, equipment manufacturing, construction, and use. Currently, when constructing green, low-carbon, and energy-efficient buildings, the rooftop is usually greened (planted with greenery). The purpose of greening is to control light and heat pollution and reduce secondary pollution from dust in the air, thereby improving air quality and achieving the goal of green, low-carbon, and energy-saving. However, existing rooftop greening systems still have drawbacks in practical use: when there is alternation between rain and sunshine, the existing rooftop plants do not have water storage devices, which can cause them to wither when exposed to sunlight for a long time. Furthermore, prolonged exposure to sunlight can damage the low-carbon and energy-saving effect of the plants, requiring staff to replenish the water regularly, which increases labor costs. Therefore, this paper proposes a green, low-carbon, and energy-efficient building structure that can significantly improve the energy-saving effect of greenery and provide adequate shading and water storage protection. Summary of the Invention

[0003] To address the problems mentioned in the background art, the present invention provides a green, low-carbon, and energy-saving building structure that has the advantages of shading and storing water for green plants, thus solving the problem that the prior art cannot achieve the purpose of storing water for green plants and providing sufficient shading for them.

[0004] To achieve the above objectives, the present invention provides the following technical solution:

[0005] A green, low-carbon, and energy-saving building structure includes a top floor slab and a plant placement slab. The plant placement slab is fixedly connected to the top of the top floor slab. A first collecting plate and a second collecting plate are hinged to both sides of the top of the top floor slab. A floating plate is movably connected inside the top floor slab. A pressing component is movably engaged at the lower sides of both ends of the inner cavity of the top floor slab. A hinged pushing block is hinged to both ends of the inner cavities of the first and second collecting plates. A pulling component is fixedly connected to the top of the hinged pushing block. The lower end of the pulling component is fixedly connected to the pressing component. A bearing is connected to the upper ends of the front and back sides of the top floor slab. A rotating component is engaged at the lower end of the bearing. A first slot is formed on both sides of the inner cavity of the first and second collecting plates. A connecting pipe located directly below the first slot is fixedly connected to the bottom ends of the first and second collecting plates. The bottom end of the connecting pipe extends into the interior of the top floor slab and is movably connected to the inner wall of the top floor slab. Protective films are fixedly installed at both the front and rear ends of the first and second collecting plates.

[0006] Preferably, both sides of the bottom end of the first and second collecting plates are fixedly connected to limiting arc-shaped telescopic cylinders, and the bottom ends of the limiting arc-shaped telescopic cylinders are fixedly connected to the top floor slab of the building. The top of the top floor slab of the building has a second slot located below the green plant placement plate.

[0007] Preferably, the extrusion assembly includes an extrusion block, which is movably connected to the lower end of the inner cavity of the building's top floor slab. An extrusion rod is fixedly installed at the end of the extrusion block away from the building's top floor slab. The extrusion rod is movably connected to the interior of the building's top floor slab. First spring telescopic cylinders are fixedly installed on both sides of the end of the extrusion rod away from the extrusion block. The end of the first spring telescopic cylinder near the floating plate is fixedly connected to the building's top floor slab. The top of the extrusion rod at one end of the building's top floor slab is fixedly connected to the bottom of the pulling assembly.

[0008] Preferably, the pulling assembly includes a pulling rope, the bottom of which is fixedly connected to the top of the hinged push block, the lower end of which extends to the bottom of the first collecting plate and is fixedly connected to a connecting rope, the bottom of which is fixedly connected to the top of the extrusion assembly, and a fixed shaft is movably connected to the lower end of the connecting rope, the fixed shaft being fixedly connected to the top floor slab of the building.

[0009] Preferably, the abutting component includes a first spur gear, which is connected to a bearing on the top floor of the building. An abutting plate is fixedly connected inside the first spur gear. The top of the abutting plate is in contact with the floating plate. The abutting plate is elliptical in shape. The bottom end of the first spur gear is meshed with a rotating component.

[0010] Preferably, the rotating component includes a fan connected to a bearing on the building's top floor slab. A second spur gear located inside the building's top floor slab is fixedly connected to one end of the fan near the top floor slab, and the surface of the second spur gear meshes with an abutment component.

[0011] Preferably, the first collecting plate and the second collecting plate have the same shape and are both inclined, and the outer ends of the first collecting plate and the second collecting plate are both cylindrical.

[0012] Preferably, the upper and lower surfaces at both ends of the float plate are inclined and adapted to the inner end of the extrusion assembly, and the outer shells of the first and second collecting plates are both transparent.

[0013] Preferably, the protective film is made of rubber-plastic.

[0014] Preferably, both the first and second collecting plates contain black solvent. Beneficial effects

[0015] This invention, through the combination of a first collection plate and a second collection plate, achieves a water storage effect for green plants. When it rains, rainwater flows from the top of the first and second collection plates into the interior of their outer ends. Due to their weight, the first and second collection plates tilt, allowing the rainwater to replenish the water supply to the green plants inside the plant placement plate. The rainwater then slowly flows downwards through the soil inside the plant placement plate and the second slot to the interior of the building's top slab. Simultaneously, the rainwater flows into the lower end of the building's top slab's inner cavity through the first slot and connecting pipe inside both the first and second collection plates. At this point, the rainwater is stored inside the building's top slab, thus achieving the effect of rainwater collection.

[0016] This invention achieves regular water replenishment for green plants by setting up rotating components and floating plates in combination. When the wind blows, the fan will rotate, and the rotation of the fan will drive the second spur gear and the first spur gear to push the top of the floating plate downward. When the floating plate moves downward, rainwater will flow into the top of the floating plate through both ends. At this time, the rainwater above the floating plate will regularly replenish the soil inside the green plant placement board, thereby ensuring the growth of the green plants inside the green plant placement board.

[0017] This invention achieves a shading and protection effect for green plants by setting up a pulling component and a squeezing component in combination. When the water source inside the top floor slab of the building gradually decreases, the bottom end of the floating plate will squeeze the inner end of the squeezing block. The squeezing block will cause the squeezing rod to move outward, and at the same time drive the connecting rope to move outward. The connecting rope will pull the two hinged pushing blocks to move in opposite directions. When the middle ends of the two hinged pushing blocks move into the inside of the collection plate, they will push the black solvent inside the collection plate, so that the black solvent completely covers the inside of the first and second collection plates. At this time, the inside of the first and second collection plates, covered by the black solvent, will provide a shading and protection effect for the green plants inside the plant placement plate. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0019] Figure 2 This is a schematic diagram of the rear structure of the present invention;

[0020] Figure 3 This is a schematic diagram of the front cross-sectional structure of the present invention;

[0021] Figure 4 This is a schematic diagram of the side cross-sectional structure of the present invention;

[0022] Figure 5 This is a schematic diagram showing the structural fit between the limiting arc-shaped telescopic cylinder and the first collecting plate of the present invention;

[0023] Figure 6 for Figure 5 A magnified view of the structure at point A in the middle;

[0024] Figure 7 This is a schematic diagram showing the structural fit between the float and the protective film of the present invention;

[0025] Figure 8 for Figure 7 A magnified schematic diagram of the structure at point B in the middle;

[0026] Figure 9 for Figure 7 A magnified schematic diagram of the structure at point C in the middle;

[0027] Figure 10 This is a schematic diagram showing the structural fit between the connecting pipe and the first slot of the present invention;

[0028] Figure 11 This is a schematic diagram showing the structural fit between the pull component and the hinged push block of the present invention;

[0029] Figure 12 This is a schematic diagram showing the structural fit between the rotating component and the pulling component of the present invention;

[0030] Figure 13 This is a schematic diagram showing the structural fit between the hinged push block and the first slot hole of the present invention.

[0031] In the diagram: 1. Building top slab; 2. First collection plate; 3. Second collection plate; 4. Green plant placement plate; 5. Floating plate; 6. Extrusion assembly; 61. Extrusion block; 62. Extrusion rod; 63. First spring telescopic cylinder; 7. Pulling assembly; 71. Pulling rope; 72. Connecting rope; 73. Fixed shaft; 8. Abutting assembly; 81. First spur gear; 82. Abutting plate; 9. Rotating assembly; 91. Fan; 92. Second spur gear; 10. Hinge push block; 11. Protective film; 12. Limiting arc telescopic cylinder; 13. First slot; 14. Second slot; 15. Connecting pipe. Detailed Implementation

[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0033] like Figures 1 to 13As shown, this invention provides a green, low-carbon, and energy-saving building structure, including a top floor slab 1 and a plant placement board 4. The plant placement board 4 is fixedly connected to the top of the top floor slab 1. A first collection plate 2 and a second collection plate 3 are respectively hinged to both sides of the top of the top floor slab 1. A floating plate 5 is movably connected inside the top floor slab 1. A pressing component 6 is movably engaged at the lower sides of both ends of the inner cavity of the top floor slab 1. A hinged pushing block 10 is hinged to both ends of the inner cavity of the first collection plate 2 and the second collection plate 3. A pulling component 7 is fixedly connected to the top of the hinged pushing block 10. The lower end of component 7 is fixedly connected to the extrusion component 6. The upper ends of both the front and back sides of the building top panel 1 are bearing-connected to abutment components 8. The lower ends of abutment components 8 are meshed with rotating components 9. First slots 13 are provided on both sides of the inner cavities of the first collecting plate 2 and the second collecting plate 3. A connecting pipe 15 located directly below the first slot 13 is fixedly connected to the bottom ends of both the first collecting plate 2 and the second collecting plate 3. The bottom end of the connecting pipe 15 extends into the interior of the building top panel 1 and is movably connected to the inner wall of the building top panel 1. The front and rear ends of the first collecting plate 2 and the second collecting plate 3... Protective films 11 are fixedly installed at both ends. Using the above-described structure, when it rains, rainwater flows through the tops of the first collecting plate 2 and the second collecting plate 3 into the interior of their outer ends. Due to weight, the adjacent ends of the first collecting plate 2 and the second collecting plate 3 move in opposite directions, causing rainwater to drip into the interior of the green plant placement plate 4 and flow through it into the interior of the building's top slab 1. Simultaneously, the interiors of the first collecting plate 2 and the second collecting plate 3 are both connected by the first... The slot 13 and the connecting pipe 15 flow into the lower end of the inner cavity of the building top plate 1, thereby causing the floating plate 5 to move upward inside the building top plate 1. At the same time, when the wind blows, it will cause the rotating component 9 to rotate. The rotation of the rotating component 9 will drive the abutting component 8 to squeeze and abut the top of the floating plate 5. When the floating plate 5 moves downward, rainwater will flow into the upper part of the floating plate 5 through both ends. At this time, the rainwater on the floating plate 5 will replenish the soil inside the green plant placement board 4, thereby ensuring the growth of the green plants inside the green plant placement board 4.

[0034] like Figure 1 , Figure 2 and Figure 9As shown, both sides of the bottom of the first collecting plate 2 and the second collecting plate 3 are fixedly connected to limiting arc-shaped telescopic cylinders 12. The bottom ends of the limiting arc-shaped telescopic cylinders 12 are fixedly connected to the top floor slab 1 of the building. The top of the top floor slab 1 has a second slot 14 located below the green plant placement plate 4. The extrusion assembly 6 includes an extrusion block 61, which is movably connected to the lower end of the inner cavity of the top floor slab 1. An extrusion rod 62 is fixedly installed at the end of the extrusion block 61 away from the top floor slab 1. The extrusion rod 62 is movably connected to the interior of the top floor slab 1. First spring telescopic cylinders 63 are fixedly installed on both sides of the end of the extrusion rod 62 away from the extrusion block 61. One end of the spring telescopic cylinder 63 near the float 5 is fixedly connected to the top floor slab 1 of the building. The compression rod 62 is located at the top of one end of the top floor slab 1 and fixedly connected to the bottom of the pulling assembly 7. Using the above scheme: through the cooperation of the compression block 61 and the first spring telescopic cylinder 63, when the water inside the top floor slab 1 gradually flows downwards, the float 5 will move downwards inside the top floor slab 1. The float 5 will compress the inner end of the compression block 61, causing the compression block 61 to move towards the outer end of the top floor slab 1. At this time, the compression block 61 will pull the pulling assembly 7, thereby causing the pulling assembly 7 to push the hinged push block 10. The green plants provide shade and prevent the plants inside the plant placement board 4 from withering. Through the cooperation of the limiting arc telescopic cylinder 12 and the second slot 14, the bottom of the first collection board 2 and the second collection board 3 will be stably limited. When the first collection board 2 and the second collection board 3 tilt due to their weight, and the rainwater inside them flows into the interior of the building's top floor slab 1 through the connecting pipe 15, the rainwater will be restored to its original position after it is lost. Through the cooperation of the limiting arc telescopic cylinder 12, the rainwater will flow downward through the top of the building's top floor slab 1. Due to the hygroscopicity of the soil and plants inside the plant placement board 4, the rainwater flows downward through the second slot 14 at a slower speed and cannot cover the top of the floating board 5 with its weight.

[0035] like Figure 6 , Figure 11 and Figure 12As shown, the pulling assembly 7 includes a pulling rope 71, the bottom of which is fixedly connected to the top of the hinged push block 10. The lower end of the pulling rope 71 extends below the collecting plate and is fixedly connected to a connecting rope 72. The bottom of the connecting rope 72 is fixedly connected to the top of the squeezing assembly 6. A fixed shaft 73 is movably connected inside the lower end of the connecting rope 72. The fixed shaft 73 is fixedly connected to the building top plate 1. The abutting assembly 8 includes a first spur gear 81, which is bearing-connected to the building top plate 1. An abutting plate 82 is fixedly connected inside the first spur gear 81. The top of the abutting plate 82 abuts against the floating plate 5. The abutting plate 82 is elliptical in shape. The bottom end of the first spur gear 81 meshes with the rotating assembly 9. With the above scheme, through the cooperation of the first spur gear 81 and the abutting plate 82, when the first spur gear 81 rotates, it will drive the abutting plate 82 against the building top plate. The internal rotation of the 1 causes the contact plate 82 to press against the floating plate 5, causing the floating plate 5 to move downward inside the building's top floor slab 1. As the floating plate 5 moves downward, it will press against the water source below the floating plate 5, causing the water source to flow to the top of the floating plate 5, thereby replenishing the water source inside the green plant placement plate 4. Through the cooperation of structures such as the pulling rope 71 and the fixed shaft 73, when the extrusion assembly 6 is pulled outward, its top surface will pull the connecting rope 72 and the pulling rope 71, causing the pulling rope 71 to pull the hinged push block 10, thereby causing the hinged push block 10 to fully cover the black solvent inside the first collection plate 2, thus achieving a shading effect. At the same time, due to the cooperation of the fixed shaft 73, the connecting rope 72 will be pulled and limited, ensuring that when the extrusion rod 62 moves outward, its top end will pull and tighten the connecting rope 72.

[0036] like Figure 6 and Figure 7As shown, the rotating component 9 includes a fan 91, which is connected to a bearing in the building's top floor slab 1. A second spur gear 92 located inside the top floor slab 1 is fixedly connected to one end of the fan 91 near the top floor slab 1. The surface of the second spur gear 92 meshes with the contact component 8. The first collecting plate 2 and the second collecting plate 3 have the same shape and are both inclined. The outer ends of both the first collecting plate 2 and the second collecting plate 3 are cylindrical. Using the above scheme, the inclined design of the first collecting plate 2 and the second collecting plate 3 will collect rainwater. When rainwater flows through the inclined surfaces of the first collecting plate 2 and the second collecting plate 3 into… Inside the outer circular tubes of the first collecting plate 2 and the second collecting plate 3, rainwater will flow into the interior of the building's top floor slab 1 and below the floating plate 5 through the first slot 13 and the connecting pipe 15. At the same time, when the adjacent ends of the first collecting plate 2 and the second collecting plate 3 move towards each other, they will provide shade protection for the green plants inside the green plant placement plate 4. Through the cooperation of the wind fan 91 and the second spur gear 92, when the wind blows the wind fan 91, the wind fan 91 will drive the first spur gear 81 and the contact plate 82 to rotate through the second spur gear 92, thereby rotating the contact plate 82 to make contact with the floating plate 5.

[0037] like Figure 5 and Figure 9 As shown, the upper and lower surfaces of both ends of the floating plate 5 are inclined and adapted to the inner end of the extrusion assembly 6. The outer shells of the first collecting plate 2 and the second collecting plate 3 are both transparent. The protective film 11 is made of rubber and plastic. Black solvent is placed inside the first collecting plate 2 and the second collecting plate 3. With the above scheme: through the setting of black solvent inside the first collecting plate 2 and the second collecting plate 3, when the middle end of the hinge pushing block 10 moves outward, the black solvent inside the first collecting plate 2 and the second collecting plate 3 will move downward. As the hinge pushing block 10 moves, the black solvent will also expand outward, thereby providing sun protection for the green plants inside the green plant placement plate 4; through the design of the protective film 11, the plants are protected from the sun. The protective film 11 will cover the hinged push block 10, and the surface of the protective film 11 is elastic. When the hinged push block 10 moves into the interior of the first collecting plate 2 or the second collecting plate 3, the protective film 11 will also cover the outer ends of the first collecting plate 2 and the second collecting plate 3 to ensure the tightness of the interior of the first collecting plate 2 and the second collecting plate 3. Through the cooperation of the first collecting plate 2 and the second collecting plate 3, the transparent design of the first collecting plate 2 and the second collecting plate 3 will facilitate the photosynthesis of the green plants inside the green plant placement plate 4 by the sun through the first collecting plate 2 and the second collecting plate 3. At the same time, the design of the floating plate 5 will facilitate the subsequent shading effect of the extrusion component 6 on the green plant placement plate 4.

[0038] Working principle and usage process of this invention:

[0039] During use, when it rains, rainwater will flow through the top of the first collecting plate 2 and the second collecting plate 3 into the interior of the outer end of the first collecting plate 2 and the second collecting plate 3. At this time, due to the weight, the first collecting plate 2 and the second collecting plate 3 will tilt. At this time, the rainwater will replenish the water source of the green plants inside the green plant placement plate 4, and slowly flow downward through the soil inside the green plant placement plate 4 and the second slot 14 into the interior of the building top plate 1. At the same time, the interior of the first collecting plate 2 and the second collecting plate 3 will flow into the lower end of the inner cavity of the building top plate 1 through the first slot 13 and the connecting pipe 15. At this time, the rainwater will be stored inside the building top plate 1.

[0040] Subsequently, as the rainwater disappears and the rainwater flows downward into the outer ends of the first collecting plate 2 and the second collecting plate 3, the first collecting plate 2 and the second collecting plate 3 will be subjected to the elastic force of the limiting arc telescopic cylinder 12, so that the adjacent ends of the first collecting plate 2 and the second collecting plate 3 move towards each other and provide shade for the top of the green plant placement plate 4. At the same time, when the wind comes, it will cause the fan 91 to rotate. The rotation of the fan 91 will drive the abutment plate 82 to press against the top of the floating plate 5 through the second spur gear 92 and the first spur gear 81. When the floating plate 5 moves downward, the rainwater will flow into the top of the floating plate 5 through both ends. It should be noted that the surface of the floating plate 5 is made of iron plate. At this time, the rainwater above the floating plate 5 will replenish the soil inside the green plant placement plate 4, thereby ensuring the growth of the green plants inside the green plant placement plate 4.

[0041] Subsequently, as the water level inside the top floor slab 1 gradually decreases, the bottom of the floating plate 5 will press against the inner end of the squeezing block 61. The squeezing block 61 will cause the squeezing rod 62 to move outward. When the squeezing rod 62 moves, it will drive the connecting rope 72 to move outward as well. At this time, the connecting rope 72 will pull the pulling rope 71, which will pull the two hinged pushing blocks 10 to move in opposite directions. At the same time, when the middle end of the hinged pushing block 10 moves into the interior of the first collecting plate 2, it will push the black solvent inside the first collecting plate 2, so that the black solvent completely covers the interior of the first collecting plate 2 and the second collecting plate 3. At this time, the interior of the first collecting plate 2 and the second collecting plate 3, covered by the black solvent, will provide shade protection for the green plants inside the green plant placement plate 4.

[0042] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0043] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A green, low-carbon, and energy-saving building structure, comprising a building top slab (1) and a green plant placement board (4), wherein the green plant placement board (4) is fixedly connected to the top of the building top slab (1), characterized in that: The top of the building top plate (1) is hinged to two sides of the top, with a first collecting plate (2) and a second collecting plate (3) respectively. A floating plate (5) is movably connected inside the building top plate (1). A pressing component (6) is movably snapped onto the lower side of both ends of the inner cavity of the building top plate (1). A hinged pushing block (10) is hinged to both ends of the inner cavity of the first collecting plate (2) and the second collecting plate (3). A pulling component (7) is fixedly connected to the top of the hinged pushing block (10). The lower end of the pulling component (7) is fixedly connected to the pressing component (6). The upper ends of the front and back sides of the building top plate (1) are both bearing connected. A contact component (8) is connected, and a rotating component (9) is engaged at the lower end of the contact component (8). A first slot (13) is provided on both sides of the inner cavity of the first collecting plate (2) and the second collecting plate (3). A connecting pipe (15) located directly below the first slot (13) is fixedly connected to the bottom end of the first collecting plate (2) and the second collecting plate (3). The bottom end of the connecting pipe (15) extends into the interior of the building top plate (1) and is movably connected to the inner wall of the building top plate (1). A protective film (11) is fixedly installed at both the front and rear ends of the first collecting plate (2) and the second collecting plate (3).

2. The green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: Both sides of the bottom end of the first collection plate (2) and the second collection plate (3) are fixedly connected to the limiting arc telescopic cylinder (12). The bottom end of the limiting arc telescopic cylinder (12) is fixedly connected to the top floor plate (1) of the building. The top floor plate (1) of the building has a second slot (14) located below the green plant placement plate (4).

3. The green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The extrusion assembly (6) includes an extrusion block (61), which is movably connected to the lower end of the inner cavity of the building top plate (1). An extrusion rod (62) is fixedly installed at the end of the extrusion block (61) away from the building top plate (1). The extrusion rod (62) is movably connected to the interior of the building top plate (1). A first spring telescopic cylinder (63) is fixedly installed on both sides of the end of the extrusion rod (62) away from the extrusion block (61). The end of the first spring telescopic cylinder (63) near the floating plate (5) is fixedly connected to the building top plate (1). The top of the extrusion rod (62) at one end of the building top plate (1) is fixedly connected to the bottom of the pulling assembly (7).

4. The green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The pulling assembly (7) includes a pulling rope (71), the bottom of which is fixedly connected to the top of the hinged push block (10). The lower end of the pulling rope (71) extends to the bottom of the first collecting plate (2) and is fixedly connected to a connecting rope (72). The bottom of the connecting rope (72) is fixedly connected to the top of the extrusion assembly (6). The lower end of the connecting rope (72) is movably connected to a fixed shaft (73), which is fixedly connected to the top floor plate (1) of the building.

5. A green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The abutment component (8) includes a first spur gear (81), which is connected to the bearing of the building top plate (1). An abutment plate (82) is fixedly connected inside the first spur gear (81). The top of the abutment plate (82) is in contact with the floating plate (5). The abutment plate (82) is elliptical in shape. The bottom end of the first spur gear (81) is meshed with the rotating component (9).

6. A green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The rotating assembly (9) includes a fan (91), which is connected to the building top plate (1) by a bearing. The fan (91) is fixedly connected to a second spur gear (92) located inside the building top plate (1) at one end near the building top plate (1). The surface of the second spur gear (92) meshes with the abutment assembly (8).

7. A green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The first collecting plate (2) and the second collecting plate (3) have the same shape and are both inclined. The outer ends of the first collecting plate (2) and the second collecting plate (3) are both cylindrical.

8. A green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The upper and lower surfaces of both ends of the float (5) are inclined and are adapted to the inner end of the extrusion assembly (6). The outer shells of the first collection plate (2) and the second collection plate (3) are both transparent.

9. A green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The protective film (11) is made of rubber and plastic.

10. A green, low-carbon, and energy-saving building structure according to claim 1, characterized in that: The first collecting plate (2) and the second collecting plate (3) both contain black solvent.

Citation Information

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