Prefabricated green energy-saving wall
By using prefabricated green energy-saving wall design, combined with planting pots and gear linkage components, the problems of insufficient sound insulation and environmental protection in existing building walls are solved, achieving a comprehensive effect of beautification, sound insulation, energy saving and environmental protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- CSCEC STRAIT CONSTR & DEV
- Filing Date
- 2023-09-11
- Publication Date
- 2026-05-08
AI Technical Summary
Existing building walls are inadequate in terms of sound insulation and environmental friendliness, making it difficult to meet the high sound insulation requirements of commercial office spaces. Furthermore, traditional wall materials are not green and environmentally friendly enough.
The prefabricated green and energy-saving wall design includes load-bearing walls, leveling layers, adhesive layers, sound insulation and heat insulation layers, mortar layers and curtain wall structure. Planting pots are installed inside the curtain wall for planting plants. YT inorganic active heat insulation material and gear linkage components are used for splicing. The planting pots are designed to collect rainwater and prevent excessive water accumulation.
While beautifying the building, it also improves sound insulation and environmental friendliness, reduces material usage, facilitates maintenance and plant growth management, and has green and energy-saving characteristics.
Smart Images

Figure CN117248650B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of building walls, specifically to a prefabricated green and energy-saving wall system. Background Technology
[0002] Walls mainly consist of load-bearing walls and non-load-bearing walls, primarily serving to enclose and divide space. In load-bearing structural buildings, the walls combine load-bearing and enclosure functions; in frame structure buildings, the walls' role is both enclosure and space division. Walls must possess sufficient strength and stability, and have the ability to insulate, heat-insulate, sound-insulate, fire-resistant, and waterproof. There are many types of walls, including single-material walls and composite material walls. Furthermore, the sound insulation performance of most existing curtain walls is not particularly ideal, making it difficult to meet the requirements of some commercial office spaces with high sound insulation demands.
[0003] Chinese utility model patent CN206368455U discloses a building wall structure, including a wall. One side of the wall is sequentially provided with a cement mortar leveling layer, an adhesive layer, a thermal insulation layer, a radiation-shielding layer, and a decorative layer. The thermal insulation layer is fixed to the wall by screws. A threaded sleeve is embedded in the wall to cooperate with the screws, forming a groove within the wall that opens towards the thermal insulation layer. The radiation-shielding layer is a copper mesh. The copper mesh is bonded to the thermal insulation layer and the decorative layer by polymer mortar layers disposed on both sides. The thermal insulation layer is a rigid polyurethane foam layer. The decorative layer is a reflective panel.
[0004] The aforementioned patent suggests that setting up a radiation-proof layer can weaken the intensity of the magnetic field and enhance the radiation resistance of the entire wall, but it does not conform to the concept of green environmental protection. Summary of the Invention
[0005] To overcome the above problems, this invention proposes a prefabricated green energy-saving wall, in which the curtain wall is equipped with planting pots, in which various plants can be grown, so as to beautify the curtain wall while achieving a green and environmentally friendly effect.
[0006] The technical solution of the present invention is as follows:
[0007] A prefabricated green energy-saving wall system comprises, from the inside of the building to the outside, a load-bearing wall, a leveling layer, an adhesive layer, a sound insulation and heat preservation layer, a mortar layer, a support structure, and a curtain wall. The support structure includes a first splicing plate and a second splicing plate, which are detachably connected. The curtain wall includes an installation frame and a planting pot, with the planting pot fixed inside the installation frame.
[0008] Furthermore, the sound insulation and heat preservation layer includes a sound insulation and heat preservation board and a sound insulation and heat preservation pipe. The sound insulation and heat preservation pipe is fixed inside the sound insulation and heat preservation board, and adjacent sound insulation and heat preservation pipes are fixed together with connecting strips.
[0009] Furthermore, the first splicing plate includes a frame, a main gear, four first screws, four moving plates, a rotating rod, and a guiding device. The side walls of the frame are all provided with slots, which are clearance-fitted with the moving plates. A main gear is rotatably connected to the center of the frame's inner cavity. A screw gear is provided in each of the four directions opposite to the main gear and the four side walls of the frame, with the bottom of the screw gear meshing perpendicularly with the main gear. A first screw is fixed to the center of the screw gear. A moving plate is threaded to the outer circumference of the first screw. The rotating rod is located outside the frame, with one end penetrating the frame and fixed to the central axis of the main gear. The guiding device includes a limiting plate and four guiding rods. One end of the limiting plate is rotatably connected to the bottom of the main gear, and the other end is fixed to the inner cavity of the frame. The four guiding rods are staggered and fixed inside the limiting plate, with each guiding rod slidably connected to two moving plates at its two ends. The length of each guiding rod is equal to the inner side length of the frame.
[0010] Furthermore, the first splicing plate is also equipped with a four-linkage assembly. The linkage assembly is located on the same plane as the main gear. The linkage assembly includes a first linkage gear, a gear chain, and a third linkage gear. The first linkage gear meshes with the main gear, and its bottom is rotatably connected to the limiting plate. A second linkage gear is fixed to the top of the first linkage gear, and the first and second linkage gears share a first linkage central shaft. The third linkage gear is rotatably connected to the top of the limiting plate, and a screw gear is vertically arranged at one end of the third linkage gear opposite to the main gear. The third linkage gear meshes with the screw gear. A fourth linkage gear is fixed to the top of the third linkage gear, and the third and fourth linkage gears share a second linkage central shaft. One end of the gear chain meshes with the second linkage gear, and the other end of the gear chain meshes with the fourth linkage gear.
[0011] Furthermore, the screw gear and the gear meshing perpendicularly with the screw gear are bevel gears.
[0012] Furthermore, the second splicing plate is a solid flat plate, and the four side walls of the second splicing plate are provided with grooves, which match the movable plate.
[0013] Furthermore, a movable component is provided within the mounting frame. The movable component includes a motor, a second screw, a steering mechanism, and a movable rod. The bottom of the motor is fixed to the bottom of the inner cavity of the mounting frame. The output shaft of the motor is fixed to the input end of the first steering mechanism. The output end of the first steering mechanism is fixed to one end of a linkage rod, and the other end of the linkage rod is fixed to the input end of the second steering mechanism. The output end of the second steering mechanism is fixed to the bottom of the second screw, and the top of the second screw is rotatably connected to the top of the inner cavity of the mounting frame. One end of the movable rod is threaded to the outer periphery of the second screw, and the other end of the movable rod extends to the outside of the mounting frame and is fixed to the planting pot. A first strip-shaped hole for the movable rod to move is provided on the outer side of the mounting frame.
[0014] Further, a connecting member is fixed to one end of the planting pot, the moving rod extends to the connecting member, and a bolt penetrates through the connecting member and the moving rod from top to bottom and is fixed to the connecting member.
[0015] Further, the planting pot includes a lower pot body and an upper pot body. The lower pot body is in an "L" shape. The upper pot body is sleeved inside the lower pot body. The outer side wall of the upper pot body is slidably connected to the inner side wall of the lower pot body. The outer bottom wall of the upper pot body is fixed to the top of a hard spring, and the inner bottom wall of the lower pot body is fixed to the bottom of the hard spring. A plurality of fine holes are formed at the bottom of the upper pot body. Drainage holes are formed in the side wall outside the upper pot body. Second strip-shaped holes matching the drainage holes are formed in the side wall outside the lower pot body. A water-blocking soft plate is fixed inside the second strip-shaped holes.
[0016] Further, inside the upper pot body, a sponge layer is filled below the drainage holes, and a sandy soil layer is filled in the drainage holes and above them.
[0017] The present invention has the following beneficial effects:
[0018] 1. The curtain wall of the present invention is provided with a planting pot, and various plants can be planted in the planting pot to achieve the effect of green environmental protection while beautifying the curtain wall.
[0019] 2. The sound insulation and heat insulation layer of the present invention is made of YT inorganic active thermal insulation material. The sound insulation and heat insulation layer is divided into a sound insulation and heat insulation board and a sound insulation and heat insulation pipe. Through this structure, when sound or heat passes through the sound insulation and heat insulation layer, it will pass through the solid, air, and solid in sequence, so as to reduce the transmission ability of sound and heat and reduce the use of materials.
[0020] 3. The support structure of the present invention can be prefabricated. During use, the first splicing board and the second splicing board can be directly assembled to complete the installation of the support structure. Moreover, each first splicing board or second splicing board can be disassembled separately, which is convenient for replacement when damaged and has little impact on the rest of the support structure.
[0021] 4. When the area of a single board is relatively large, a linkage component can be installed in the first connecting plate. When the area of a single first splicing board is relatively large, a linkage component can be installed in the first splicing board. The linkage component is composed of gears and a tooth chain. When the main gear rotates, the main gear drives the first linkage gear to rotate. The first linkage gear drives the second linkage gear to rotate. The second linkage gear drives the fourth linkage gear to rotate through the tooth chain. The fourth linkage gear drives the third linkage gear to rotate. The third linkage gear drives the screw gear to rotate.
[0022] 5. The planting pot of the present invention has a two-layer structure. When it rains, rainwater enters the upper pot and flows into the lower pot through the fine holes, thus achieving the effect of collecting rainwater. When the water volume is large, the excess water will be discharged through the drainage hole to prevent excessive water storage from damaging the roots and stems of the plant. As the plant grows, its weight increases, which increases the pressure on the rigid spring, causing the height of the upper pot to decrease, thereby reducing the water storage in the lower pot and preventing the plant from growing too fast. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of the present invention;
[0024] Figure 2 This is a schematic diagram of the sound insulation and heat preservation layer.
[0025] Figure 3 This is a structural schematic diagram of the first splicing panel;
[0026] Figure 4 for Figure 3 A schematic diagram of region A in the middle;
[0027] Figure 5 This is a schematic diagram of the external structure of the first splicing panel;
[0028] Figure 6 This is a structural schematic diagram of the second splicing panel;
[0029] Figure 7 This is a schematic diagram of the connection status of the support structure;
[0030] Figure 8 This is a structural schematic diagram of the curtain wall;
[0031] Figure 9 This is the front view of the curtain wall;
[0032] Figure 10 This is a structural diagram of the moving component;
[0033] Figure 11 This is a structural schematic diagram of the connector;
[0034] Figure 12 This is a schematic diagram of the planting pot structure;
[0035] Figure 13 for Figure 12 A schematic diagram of the structure of region A in the middle.
[0036] The attached image is labeled as follows:
[0037] 1. Load-bearing wall; 2. Leveling layer; 3. Adhesive layer; 4. Sound insulation and heat preservation layer; 41. Sound insulation and heat preservation board; 42. Sound insulation and heat preservation pipe; 43. Connecting strip; 5. Mortar layer; 6. Support structure; 61. First splicing plate; 611. Frame; 612. Hollow groove; 613. Main gear; 614. Screw gear; 615. First screw; 616. Moving plate; 6171. Limiting plate; 6172. Guide rod; 618. Rotating rod; 619. Linkage assembly; 6191. First linkage gear; 6192. First linkage central shaft; 6193. Second linkage gear; 6194. Gear chain; 6195. Third linkage Gear; 6196, Second linkage central shaft; 6197, Fourth linkage gear; 62, Second splicing plate; 621, Groove; 7, Curtain wall; 71, Mounting frame; 711, First strip hole; 72, Planting pot; 721, Connector; 722, Bolt; 723, Lower pot body; 7231, Second strip hole; 724, Upper pot body; 7241, Drainage hole; 7242, Fine hole; 725, Hard spring; 726, Sponge layer; 727, Sand layer; 728, Water-blocking soft plate; 73, Second screw; 74, Motor; 75, First steering gear; 76, Linkage rod; 77, Second steering gear; 78, Moving rod. Detailed Implementation
[0038] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments.
[0039] like Figures 1-13 As shown, the prefabricated green energy-saving wall in this embodiment consists of a load-bearing wall 1, a leveling layer 2, an adhesive layer 3, a sound insulation and heat preservation layer 4, a mortar layer 5, a support structure 6, and a curtain wall 7 arranged sequentially from the inside of the building to the outside. The support structure 6 includes a first splicing plate 61 and a second splicing plate 62, which are detachably connected. The curtain wall 7 includes a mounting frame 71 and a planting pot 72, which is fixed inside the mounting frame 71.
[0040] The present invention has a multi-layer structure, the support structure 6 can be prefabricated and assembled, and plants can be planted on the outside of the curtain wall 7, which achieves the effects of green, environmental protection and energy saving.
[0041] Furthermore, the sound insulation and heat preservation layer 4 includes a sound insulation and heat preservation board 41 and a sound insulation and heat preservation pipe 42. The sound insulation and heat preservation pipe 42 is fixed inside the sound insulation and heat preservation board 41, and adjacent sound insulation and heat preservation pipes 42 are fixed together by connecting strips 43.
[0042] The sound insulation and heat preservation layer 4 is made of YT inorganic active heat preservation material. The sound insulation and heat preservation layer 4 is divided into a sound insulation and heat preservation board 41 and a sound insulation and heat preservation pipe 42. With this structure, when sound or heat passes through the sound insulation and heat preservation layer 4, it will pass through the solid, air and solid in sequence, thereby reducing the ability of sound and heat to be transmitted and reducing the amount of material used.
[0043] Furthermore, the first splicing plate 61 includes a frame 611, a main gear 613, four first screws 615, four moving plates 616, a rotating rod 618, and a guiding device. The side walls of the frame 611 are all provided with slots 612, which are clearance-fitted with the moving plates 616. The main gear 613 is rotatably connected to the center of the inner cavity of the frame 611. A screw gear 614 is provided in each of the four opposite directions of the main gear 613 and the four side walls of the frame 611. The bottom of the screw gear 614 meshes perpendicularly with the main gear 613. A first screw 615 is fixed to the center of the screw gear 614. The outer periphery of the first screw 615 is screwed... The frame is connected to a movable plate 616; a rotating rod 618 is located outside the frame 611, with one end of the rotating rod 618 passing through the frame 611 and fixed to the central shaft of the main gear 613; the guiding device includes a limiting plate 6171 and four guide rods 6172; one end of the limiting plate 6171 is rotatably connected to the bottom of the main gear 613, and the other end of the limiting plate 6171 is fixed to the inner cavity of the frame 611; the four guide rods 6172 are staggered and fixed inside the limiting plate 6171, and the two ends of one guide rod 6172 are slidably connected to the two movable plates 616 respectively; the length of the guide rod 6172 is equal to the inner side length of the frame 611.
[0044] When installing the first splicing plate 61, the rotating rod 618 is rotated externally. The rotating rod 618 drives the main gear 613 to rotate through the central shaft 6131 of the main gear. The main gear 613 drives the four screw gears 614 to rotate. The screw gears 614 drive the screw 615 to rotate. The screw 615 drives the moving plate 616 to move on the screw until the moving plate 616 is embedded in the second splicing plate 62, thus completing the connection between the first splicing plate 61 and the second splicing plate 62.
[0045] Furthermore, a four-linkage assembly 619 is also provided inside the first splicing plate 61. The linkage assembly 619 is located on the same plane as the main gear 613. The linkage assembly 619 includes a first linkage gear 6191, a gear chain 6194, and a third linkage gear 6195. The first linkage gear 6191 meshes with the main gear 613, and the bottom of the first linkage gear 6191 is rotatably connected to the limiting plate 6171. A second linkage gear 6193 is fixed to the top of the first linkage gear 6191. The first linkage gear 6191 and the second linkage gear 6193 share the first linkage central shaft 619. 2; The third linkage gear 6195 is rotatably connected to the top of the limiting plate 6171. A screw gear 614 is vertically arranged at the end of the third linkage gear 6195 opposite to the main gear 613. The third linkage gear 6195 meshes with the screw gear 614. A fourth linkage gear 6197 is fixed to the top of the third linkage gear 6195. The third linkage gear 6195 and the fourth linkage gear 6197 share the second linkage shaft 6196. One end of the toothed chain 6194 meshes with the second linkage gear 6193, and the other end of the toothed chain 6194 meshes with the fourth linkage gear 6197.
[0046] When the area of a single first splicing plate 61 is large, a linkage component 619 can be installed inside the first splicing plate 61. The linkage component 619 consists of gears and a gear chain 6194. When the main gear 613 rotates, the main gear 613 drives the first linkage gear 6191 to rotate. The first linkage gear 6191 drives the second linkage gear 6193 to rotate. The second linkage gear 6193 drives the fourth linkage gear 6197 to rotate through the gear chain 6194. The fourth linkage gear 6197 drives the third linkage gear 6195 to rotate. The third linkage gear 6195 drives the screw gear 614 to rotate.
[0047] Furthermore, the screw gear 614 and the gear that meshes perpendicularly with the screw gear 614 are bevel gears.
[0048] When the linkage component 619 is not installed, the main gear 613 and the screw gear 614 are bevel gears; when the linkage component 619 is installed, the third linkage gear 6195 and the screw gear 614 are bevel gears.
[0049] Furthermore, the second splicing plate 62 is a solid flat plate, and the four side walls of the second splicing plate 62 are provided with grooves 621, which match the movable plate 616.
[0050] The groove 621 is used to fit into the movable plate 616, making the connection between the first splicing plate 61 and the second splicing plate 62 more secure.
[0051] Furthermore, a moving assembly is provided inside the mounting frame 71. The moving assembly includes a motor 74, a second screw 73, a steering mechanism, and a moving rod 78. The bottom of the motor 74 is fixed to the bottom of the inner cavity of the mounting frame 71. The output shaft of the motor 74 is fixed to the input end of the first steering mechanism 75. The output end of the first steering mechanism 75 is fixed to one end of the linkage rod 76. The other end of the linkage rod 76 is fixed to the input end of the second steering mechanism 77. The output end of the second steering mechanism 77 is fixed to the bottom of the second screw 73. The top of the second screw 73 is rotatably connected to the top of the inner cavity of the mounting frame 71. One end of the moving rod 78 is threaded to the outer periphery of the second screw 73. The other end of the moving rod 78 extends to the outside of the mounting frame 71 and is fixed to the planting pot 72. A first strip hole 711 for the moving rod 78 to move is provided on the outer side of the mounting frame 71.
[0052] The movable component can adjust the position of the planting pot 72, so that the curtain wall 7 can install any number of planting pots 72 as needed.
[0053] Furthermore, a connector 721 is fixed to one end of the planting pot 72, a moving rod 78 extends to the connector 721, and a bolt 722 passes through the connector 721 and the moving rod 78 from top to bottom and is fixed to the connector 721.
[0054] In this way, the planting pot 72 is detachably connected to the moving rod 78, so as to facilitate the adjustment of the planting pot 72 according to requirements.
[0055] Furthermore, the planting pot 72 includes a lower pot body 723 and an upper pot body 724. The lower pot body 723 is in an "L" shape. The upper pot body 724 is sleeved inside the lower pot body 723. The outer wall of the upper pot body 724 is slidably connected to the inner wall of the lower pot body 723. The bottom outer wall of the upper pot body 724 is fixed to the top of a hard spring 725, and the bottom inner wall of the lower pot body 723 is fixed to the bottom of the hard spring 725. A plurality of fine holes 7242 are formed at the bottom of the upper pot body 724. A drain hole 7241 is formed in the side wall outside the upper pot body 724. A second strip-shaped hole 7231 matching the drain hole 7241 is formed in the side wall outside the lower pot body 723. A water-blocking soft plate 728 is fixed inside the second strip-shaped hole 7231.
[0056] The planting pot 72 has a two-layer structure. When it rains, after the rainwater enters the upper pot body 724, it flows into the lower pot body 723 through the fine holes 7242, thus achieving the effect of collecting rainwater. When the amount of water is large, the excess water will be discharged through the drain hole 7241 to prevent excessive water storage from damaging the roots of the plants. As the plants grow, their weight increases, which will increase the pressure on the hard spring 725, causing the height of the upper pot body 724 to decrease, and further reducing the water storage amount in the lower pot body 723 to prevent the plants from growing too fast.
[0057] Furthermore, inside the upper pot body 724, a sponge layer 726 is filled below the drain hole 7241, and a sandy soil layer 727 is filled in the drain hole 7241 and above it.
[0058] Multiple soil layers are more conducive to the growth of plants.
[0059] The above are only embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. All equivalent structural or equivalent process transformations made by using the content of the specification and drawings of the present invention, or directly or indirectly applied to other related technical fields, are similarly included in the patent protection scope of the present invention.
Claims
1. A prefabricated green energy-saving wall system, characterized in that, From the inside of the building outwards, the following are arranged sequentially: load-bearing wall (1), leveling layer (2), adhesive layer (3), sound insulation and heat preservation layer (4), mortar layer (5), supporting structure (6), and curtain wall (7). The supporting structure (6) includes a first splicing plate (61) and a second splicing plate (62), which are detachably connected. The curtain wall (7) includes a mounting frame (71) and planting pots (72), which are fixed inside the mounting frame (71). The first splicing plate (61) includes a frame (611), a main gear (613), four first screws (615), four moving plates (616), a rotating rod (618), and a guiding device. The side walls of the frame (611) are all provided with slots (612), which are clearance-fitted with the moving plates (616). The main gear (613) is rotatably connected to the center of the inner cavity of the frame (611), and the main gear (613) is opposite to the four side walls of the frame (611). A screw gear (614) is provided in each direction, and the bottom of the screw gear (614) meshes perpendicularly with the main gear (613); a first screw (615) is fixed at the center of the screw gear (614); a movable plate (616) is threadedly connected to the outer circumference of the first screw (615); a rotating rod (618) is provided outside the frame (611), and one end of the rotating rod (618) passes through the frame (611) and is fixed to the central axis of the main gear (613). The guiding device includes The limiting plate (6171) and four guide rods (6172) are provided. One end of the limiting plate (6171) is rotatably connected to the bottom of the main gear (613), and the other end of the limiting plate (6171) is fixed to the inner cavity of the frame (611). The four guide rods (6172) are staggered and fixed inside the limiting plate (6171). The two ends of the guide rods (6172) are slidably connected to two moving plates (616) respectively. The length of the guide rods (6172) is equal to the inner side length of the frame (611).
2. The prefabricated green energy-saving wall system as described in claim 1, characterized in that, The sound insulation and heat preservation layer (4) includes a sound insulation and heat preservation board (41) and a sound insulation and heat preservation pipe (42). The sound insulation and heat preservation pipe (42) is fixed inside the sound insulation and heat preservation board (41), and adjacent sound insulation and heat preservation pipes (42) are fixed together by connecting strips (43).
3. The prefabricated green energy-saving wall system as described in claim 1, characterized in that, The first splicing plate (61) is also provided with a four-linkage assembly (619). The linkage assembly (619) and the main gear (613) are located on the same plane. The linkage assembly (619) includes a first linkage gear (6191), a gear chain (6194) and a third linkage gear (6195). The first linkage gear (6191) meshes with the main gear (613). The bottom of the first linkage gear (6191) is rotatably connected to the limiting plate (6171). A second linkage gear (6193) is fixed on the top of the first linkage gear (6191). The first linkage gear (6191) and the second linkage gear (6193) share the first linkage central shaft (6192). The third linkage gear (6195) is rotatably connected to the top of the limiting plate (6171). A screw gear (614) is vertically arranged at the end of the third linkage gear (6195) opposite to the main gear (613). The third linkage gear (6195) meshes with the screw gear (614). A fourth linkage gear (6197) is fixed on the top of the third linkage gear (6195). The third linkage gear (6195) and the fourth linkage gear (6197) share the second linkage shaft (6196). One end of the tooth chain (6194) meshes with the second linkage gear (6193), and the other end of the tooth chain (6194) meshes with the fourth linkage gear (6197).
4. A prefabricated green energy-saving wall system as described in claim 3, characterized in that, The screw gear (614) and the gear that meshes perpendicularly with the screw gear (614) are bevel gears.
5. A prefabricated green energy-saving wall system as described in claim 1, characterized in that, The second splicing plate (62) is a solid flat plate. The four side walls of the second splicing plate (62) are provided with grooves (621), and the grooves (621) match the moving plate (616).
6. A prefabricated green energy-saving wall system as described in claim 1, characterized in that, The mounting frame (71) is provided with a moving component, which includes a motor (74), a second screw (73), a steering mechanism, and a moving rod (78). The bottom of the motor (74) is fixed to the bottom of the inner cavity of the mounting frame (71). The output shaft of the motor (74) is fixed to the input end of the first steering mechanism (75). The output end of the first steering mechanism (75) is fixed to one end of the linkage rod (76). The other end of the linkage rod (76) is fixed to the input end of the second steering mechanism (77). The output end of the second steering mechanism (77) is fixed to the bottom of the second screw (73). The top of the second screw (73) is rotatably connected to the top of the inner cavity of the mounting frame (71). One end of the moving rod (78) is threaded to the outer periphery of the second screw (73). The other end of the moving rod (78) extends to the outside of the mounting frame (71) and is fixed to the planting pot (72). A first strip hole (711) for the moving rod (78) to move is provided on the outside of the mounting frame (71).
7. A prefabricated green energy-saving wall system as described in claim 6, characterized in that, One end of the planting pot (72) is fixed with a connector (721), the moving rod (78) extends to the connector (721), and a bolt (722) passes through the connector (721) and the moving rod (78) from top to bottom and is fixed to the connector (721).
8. A prefabricated green energy-saving wall system as described in claim 1, characterized in that, The planting pot (72) includes a lower pot body (723) and an upper pot body (724). The lower pot body (723) is in an "L" shape. The upper pot body (724) is sleeved inside the lower pot body (723). The outer side wall of the upper pot body (724) is slidably connected with the inner side wall of the lower pot body (723). The outer bottom wall of the upper pot body (724) is fixed to the top of a hard spring (725), and the inner bottom wall of the lower pot body (723) is fixed to the bottom of the hard spring (725). Multiple fine holes (7242) are formed at the bottom of the upper pot body (724). A drain hole (7241) is formed in the side wall outside the upper pot body (724). A second strip-shaped hole (7231) matching the drain hole (7241) is formed in the side wall outside the lower pot body (723). A water-blocking soft plate (728) is fixed inside the second strip-shaped hole (7231).
9. A prefabricated green energy-saving wall system as described in claim 8, characterized in that, Inside the upper pot body (724), a sponge layer (726) is filled below the drain hole (7241), and a sandy soil layer (727) is filled in the drain hole (7241) and above it.
Citation Information
Patent Citations
Building wall
CN206368455U
Landscape greening curtain wall
CN114190196A
Horizontal fiber rock wool board thin plaster exterior wall external heat insulation system
CN202202424U