A green, environment-friendly, energy-saving and heat-insulating wall structure

Through the mechanical linkage design of the protruding heat insulation mechanism and the light transmission protection unit, the gaps in the wall are automatically filled and the glass windows are protected, which solves the problems of low installation efficiency and easy damage to glass windows in the existing technology, and achieves high efficiency, energy saving and convenient construction.

CN122106202APending Publication Date: 2026-05-29ZHEJIANG ZHONGTI CONSTR CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZHEJIANG ZHONGTI CONSTR CO LTD
Filing Date
2026-03-13
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

In existing technologies, the thermal insulation treatment at the joints of insulated walls relies on manual operation, which results in low installation efficiency, poor sealing consistency, easy damage to glass windows, and cumbersome installation.

Method used

It adopts a mechanical linkage design of protruding heat insulation mechanism and light transmission protection unit. The heat insulation frame is automatically embedded by the touch component, and the transmission mechanism realizes the rotation opening and closing of the cover. Combined with double-glazed windows and adjustable cover, it realizes automatic filling of gaps and protection.

Benefits of technology

It improves the ease of construction and the thermal insulation performance of the walls, reduces building energy consumption, ensures the protection of glass windows during transportation, and improves light transmittance and service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of thermal insulation wall bodies, in particular to a green, environment-friendly, energy-saving and thermal insulation wall body structure, which comprises a wall body, a double-layer glass window is embeddedly arranged in the wall body, a matching groove is arranged in the other side wall of the wall body, a touch pressure assembly is pressed when the two wall bodies are installed, the touch pressure assembly drives a convex heat insulation frame to protrude from the inside of the wall body and be embedded into the matching groove of the other connecting wall body, a transmission mechanism is connected with the convex heat insulation mechanism, so that when the convex heat insulation mechanism is driven, the cover plate rotates and is opened, through the mechanical linkage design of the convex heat insulation mechanism and the light-transmitting protection unit, the collaborative effect that the heat insulation frame is automatically filled with gaps and the cover plate is synchronously opened during wall body installation is realized, the construction convenience and the wall body thermal insulation performance are remarkably improved, meanwhile, the combination of the double-layer glass window and the adjustable cover plate effectively reduces the building energy consumption, and remarkable energy-saving and environment-friendly benefits are achieved.
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Description

Technical Field

[0001] This invention relates to the field of thermal insulation wall technology, and in particular to a green, environmentally friendly, and energy-saving thermal insulation wall structure. Background Technology

[0002] With the popularization of green building and energy conservation concepts, thermal insulation wall structures are increasingly widely used in building engineering, and thermal insulation walls are also widely used in temporary buildings.

[0003] In the existing technology, there are a variety of energy-saving and heat-insulating wall solutions with integrated glass windows. By embedding double-glazed windows in the wall, a balance between light transmission and heat insulation is achieved, and fixed thermal insulation strips or on-site filling of insulation materials are used to treat the wall splicing joints.

[0004] The insulation treatment at the joints of the walls relies on manual operation or external filling, which results in low installation efficiency and poor sealing consistency, making it difficult to guarantee a long-term stable insulation effect. Secondly, glass windows are easily damaged when not in use or during transportation, and the simple method of covering and protecting them only increases the workload, making the subsequent installation of the walls more complicated. Summary of the Invention

[0005] The purpose of this section is to outline some aspects of embodiments of the present invention and to briefly describe some preferred embodiments. Simplifications or omissions may be made in this section, as well as in the abstract and title of this application, to avoid obscuring the purpose of these documents; however, such simplifications or omissions should not be construed as limiting the scope of the invention.

[0006] In view of the problems caused by the aforementioned heat insulation of wall gaps and the protection of light-transmitting glass, which lead to complicated subsequent wall installation, this invention is proposed.

[0007] Therefore, the purpose of this invention is to provide a green, environmentally friendly, energy-saving, and heat-insulating wall structure.

[0008] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a green, environmentally friendly, energy-saving and heat-insulating wall structure, comprising a wall, wherein a double-glazed window is embedded in the wall, a protruding heat insulation mechanism is provided on one side of the wall, and a matching groove is provided on the other side wall of the wall, wherein the protruding heat insulation mechanism protrudes from the inside of the wall and is embedded in the matching groove of another wall when pressed; The protruding insulation mechanism includes a protruding insulation frame and a pressing component that moves the protruding insulation frame when pressed. The pressing component is squeezed when the two sets of walls are installed, and the pressing component causes the protruding insulation frame to protrude from the inside of the wall and embed into the mating groove of another connecting wall. The light-transmitting protection unit includes two sets of rotatable covers and a transmission mechanism for driving the covers in the protective assembly. One set of covers is located on the outward side of the wall and rotates upward to open, while the other set of covers is located on the inward side of the wall and rotates downward to open. The transmission mechanism is connected to the protruding heat insulation mechanism, so that when the protruding heat insulation mechanism is driven, its covers rotate and open.

[0009] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, wherein: each corner of the wall is provided with a fixing seat, and the fixing seats between every two sets of walls are fastened by bolts.

[0010] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, the pressing component includes an embedded cavity formed within the wall. A bent rod is installed on the inner wall of the embedded cavity. The central end of the bent rod is fixed by a shaft. A first connecting rod is installed at one end of the bent rod. One end of the first connecting rod is movably connected to the top of the protruding heat insulation frame by a pin. A second connecting rod is installed at the other end of the bent rod. A protruding rod is installed within the embedded cavity. The protruding rod extends to the outside of the wall sidewall, and one end of the second connecting rod is movably connected to one end of the protruding rod.

[0011] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, the embedded cavity provides installation space for the pressure-sensitive components and the protruding heat insulation frame. A set of pressure-sensitive components is installed on the upper and lower sides of the protruding heat insulation frame. The protruding rod moves under the pressure of another wall. Through the deflection of the second connecting rod, the bending rod, and the first connecting rod, the protruding rod moves, causing the protruding heat insulation frame inside the wall to gradually move outward.

[0012] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, the transmission mechanism includes a fixed block installed on the outer wall of the wall, the shaft of the fixed block is embedded in the connecting end of the cover plate, and the embedded end of the shaft is connected to the inner wall of the cover plate by a torsion spring, and the shaft of the fixed block is equipped with a passive gear.

[0013] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, a rotating column is installed on one side of the interior of the wall, and an active gear is installed at the end of the rotating column. The active gear meshes with the passive gear. A spiral guide groove is opened on the surface of the rotating column. An embedded column is installed on the side wall of the protruding heat insulation frame. The end of the embedded column is provided with a protrusion that matches the spiral guide groove.

[0014] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, wherein: the protruding heat insulation frame moves and pulls the embedded column, and the axial force applied by the embedded column is transformed into a rotational force on the rotating column through the spiral guide groove. After the rotating column rotates, it drives the cover plate to rotate through the active gear and the passive gear.

[0015] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, the light-transmitting protection unit further includes a limiting component for locking the cover plate when light transmission heating is not required in summer.

[0016] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, the limiting component includes an opening installed on the cover plate and a rotating knob installed on the outer wall of the wall. When the rotating knob is in a horizontal position, it can pass through the opening and enter the other side of the cover plate.

[0017] As a preferred embodiment of the green, environmentally friendly, energy-saving, and heat-insulating wall structure of the present invention, a cleaning component is installed on the inner wall of the wall and on the outer side of the double-glazed window. The cleaning component includes a sliding groove opened on one side of the cover plate, a slider slidably connected inside the sliding groove, and a scraper slidably connected on one side of the double-glazed window. The end of the scraper is movably connected to the slider through a connecting plate, and the scraper contacts the double-glazed window through a scraper strip.

[0018] The technical solution provided by this invention has the following advantages compared with the known prior art: 1. Through the mechanical linkage design of the protruding heat insulation mechanism and the light-transmitting protection unit, the heat insulation frame automatically fills the gap and the protective cover opens synchronously during wall installation, which significantly improves the convenience of construction and the heat insulation performance of the wall. At the same time, the combination of double-glazed windows and adjustable cover effectively reduces building energy consumption and has significant energy-saving and environmental protection benefits. Second, the protruding heat insulation frame driven by the touch-sensitive component automatically embeds into the mating groove of the adjacent wall during installation, eliminating cold bridges between walls without additional operation; the transmission mechanism converts the linear motion of the heat insulation frame into the rotational motion of the cover plate, so that the cover plate for transportation protection opens automatically after installation, and can be locked by the limiting component according to seasonal needs, providing sun shading and heat insulation in summer and light transmission and heat storage in winter; in addition, the cleaning component automatically scrapes dust off the glass surface as the cover plate moves, ensuring good light transmittance and further improving energy-saving effect and service life. Attached Figure Description

[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] Figure 1 This is a schematic diagram of a green, environmentally friendly, energy-saving, and heat-insulating wall structure.

[0021] Figure 2This is a side sectional view of a green, environmentally friendly, energy-saving, and heat-insulating wall structure.

[0022] Figure 3 for Figure 2 Enlarged view of point A in the image.

[0023] Figure 4 This is a schematic diagram of a cover plate for a green, environmentally friendly, energy-saving, and heat-insulating wall structure.

[0024] Figure 5 for Figure 4 Enlarged view of point B in the image.

[0025] Figure 6 This is a schematic diagram of a fixing block for a green, environmentally friendly, energy-saving, and heat-insulating wall structure.

[0026] Figure 7 This is a schematic diagram of a double-glazed window, representing a green, environmentally friendly, energy-saving, and heat-insulating wall structure.

[0027] Figure 8 for Figure 7 Enlarged view of point C in the image.

[0028] Reference numerals: 1. Wall; 11. Fixing seat; 12. Mating groove; 2. Double-glazed window; 3. Protruding heat insulation mechanism; 31. Embedded cavity; 32. Protruding heat insulation frame; 33. Bending rod; 34. First connecting rod; 35. Second connecting rod; 36. Protruding rod; 4. Light transmission protection unit; 42. Protective component; 421. Fixing block; 422. Torsion spring; 423. Cover plate; 424. Passive gear; 425. Driving gear; 426. Rotating column; 427. Spiral guide groove; 428. Embedded column; 43. Restriction component; 431. Opening; 432. Rotary knob; 5. Cleaning component; 51. Sliding groove; 52. Sliding block; 53. Scraper; 54. Connecting plate. Detailed Implementation

[0029] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0030] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.

[0031] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that is mutually exclusive with other embodiments.

[0032] Secondly, the present invention is described in detail with reference to the schematic diagrams. When detailing the embodiments of the present invention, for ease of explanation, the cross-sectional views illustrating the device structure may be partially enlarged, not according to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of the present invention. In addition, actual fabrication should include three-dimensional spatial dimensions of length, width, and depth.

[0033] Reference Figures 1-8 This is one embodiment of the present invention, which provides a green, environmentally friendly, energy-saving, and heat-insulating wall structure, including a wall 1. The wall 1 is made of green and environmentally friendly heat-insulating material. A double-glazed window 2 is embedded in the wall 1. The double-glazed window 2 can be filled with heat-insulating gas to further improve the heat insulation effect. A protruding heat-insulating mechanism 3 is provided on one side of the wall 1, and a matching groove 12 is provided on the other side wall of the wall 1. The matching groove 12 matches the size of the protruding heat-insulating frame 32. When the protruding heat-insulating mechanism 3 is pressed, it protrudes from the inside of the wall 1 and is embedded in the matching groove 12 of another wall 1. Fixing seats 11 are provided at the corners of the wall 1. The fixing seats 11 between each two sets of wall 1 are fastened by bolts. The embedded protruding structure makes the protruding heat-insulating frame 32 less prone to deformation and damage. During transportation, the protruding heat-insulating frame 32 is retracted into the wall 1 and is not easily deformed by external forces.

[0034] Specifically, the protruding heat insulation mechanism 3 includes a protruding heat insulation frame 32 and a pressing component that moves the protruding heat insulation frame 32 after being pressed. The pressing component mainly protrudes from the outside of the wall 1 and is squeezed and moved by the side walls of the two sets of walls 1. When the two sets of walls 1 are installed, the pressing component is squeezed and generates transmission. The pressing component drives the protruding heat insulation frame 32 to protrude from the inside of the wall 1 and embed into the mating groove 12 of another connecting wall 1, so that the gap between the two sets of walls 1 is blocked by the heat insulation frame.

[0035] Furthermore, the pressure-sensitive component includes an embedded cavity 31 within the wall 1. The embedded cavity 31 provides installation space for the pressure-sensitive component and the protruding heat insulation frame 32, and there is a certain resistance between the embedded cavity 31 and the protruding heat insulation frame 32. A bent rod 33 is installed on the inner wall of the embedded cavity 31. The two ends of the bent rod 33 are inclined upwards and downwards, respectively. The center end of the bent rod 33 is fixed by a shaft. A first connecting rod 34 is installed at one end of the bent rod 33. One end of the first connecting rod 34 is movably connected to the top of the protruding heat insulation frame 32 by a pin. The first connecting rod 34 is located at the top of the bent rod 33. On one side, a second connecting rod 35 is installed at the other end of the bent rod 33. The second connecting rod 35 is located at the bottom side of the bent rod 33. Through the inclined bent rod 33, the transmission and steering between the convex rod 36 and the protruding heat insulation frame 32 are realized. The convex rod 36 is installed in the embedded cavity 31. The convex rod 36 extends to the outside of the side wall of the wall 1. One end of the second connecting rod 35 is movably connected to one end of the convex rod 36. The convex rod 36 slightly cooperates with the hole on the other side of the wall 1. The hole here is only to ensure the positioning between the two sets of walls 1. The protruding part of the convex rod 36 will be pressed into the interior of its own wall 1.

[0036] Furthermore, a set of pressure-sensitive components is installed on the upper and lower sides of the protruding heat insulation frame 32. The upper set of pressure-sensitive components is used to drive the wall 1 towards the outer cover plate 423, and the lower set of pressure-sensitive components is used to drive the wall 1 towards the inner cover plate 423. The protruding rod 36 moves under the pressure of another wall 1. Through the deflection of the second connecting rod 35, the bending rod 33 and the first connecting rod 34, the protruding rod 36 moves, causing the protruding heat insulation frame 32 inside the wall 1 to gradually move outward, thereby improving the heat insulation effect of the wall 1.

[0037] Furthermore, the light-transmitting protection unit 4 includes two sets of rotatable covers 423 in the protective assembly 42 and a transmission mechanism for driving the covers 423. One set of covers 423 is located on the outward side of the wall 1 and rotates upward to open, while the other set of covers 423 is located on the inward side of the wall 1 and rotates downward to open. The transmission ratio of the transmission mechanism for rotating upward to open the covers 423 is different from that for rotating downward to open the covers 423. The downward-rotating covers 423 only need to rotate 90 degrees, while the upward-rotating covers 423 need to rotate more than 90 degrees to prevent the covers 423 from blocking sunlight. This transmission mechanism is connected to the protruding heat insulation mechanism 3, so that when the protruding heat insulation mechanism 3 is in operation, its covers 423 rotate and open, so that the transmission mechanism does not require an additional power source.

[0038] Furthermore, the transmission mechanism includes a fixing block 421 installed on the outer wall of the wall 1. The shaft of the fixing block 421 is embedded in the connecting end of the cover plate 423, and the embedded end of the shaft is connected to the inner wall of the cover plate 423 by a torsion spring 422. The shaft of the fixing block 421 is equipped with a driven gear 424. When the cover plate 423 is restricted, the rotational force of the driven gear 424 drives the driven gear 424 to rotate, and its rotation drives the torsion spring 422 to store force. When needed, the restriction of the cover plate 423 can be removed, and the cover plate 423 can be opened by the stored torsion spring 422. Thus, the use of the cover plate 423 can be changed according to the actual situation.

[0039] Furthermore, a rotating column 426 is installed on one side of the interior of the wall 1. The rotating column 426 is located on one side of the fixing block 421. The rotating column 426 is fixed externally by a bearing sleeve. A drive gear 425 is installed at the end of the rotating column 426. The drive gear 425 meshes with the driven gear 424. A spiral guide groove 427 is opened on the surface of the rotating column 426. An embedded column 428 is installed on the side wall of the protruding heat insulation frame 32. The end of the embedded column 428 is provided with a protrusion that matches the spiral guide groove 427. The protruding heat insulation frame 32 moves and pulls the embedded column 428. The axial force applied by the embedded column 428 is converted into a rotational force on the rotating column 426 through the spiral guide groove 427. After the rotating column 426 rotates, it drives the cover plate 423 to rotate through the drive gear 425 and the driven gear 424. Conversely, during restoration, the protruding heat insulation frame 32 is pressed and pressed back into the interior of the wall 1.

[0040] Furthermore, the light-transmitting protection unit 4 also includes a limiting component 43, which is used to always limit and lock the cover plate 423 when light transmission heating is not required in summer. The limiting component 43 includes an opening 431 installed on the cover plate 423. The opening 431 is a horizontal rectangle. A rotary knob 432 is installed on the outer wall of the wall 1. When the rotary knob 432 is in a horizontal state, it passes through the opening 431 and enters the other side of the cover plate 423. When the rotary knob 432 is rotated so that it is in a vertical state, the cover plate 423 can be limited.

[0041] Furthermore, a cleaning component 5 is installed on the inner wall of the wall 1 and on the outer side of the double-glazed window 2. The cleaning component 5 includes a sliding groove 51 opened on one side of the cover plate 423. A slider 52 is slidably connected inside the sliding groove 51, and a scraper 53 is slidably connected on one side of the double-glazed window 2. The scraper 53 can move vertically up and down. The end of the scraper 53 is movably connected to the slider 52 through a connecting plate 54. The movement of the scraper 53 is affected by the opening action of the cover plate 423. When the cover plate 423 is closed, the scraper 53 is moved by the restoring tension spring. The scraper 53 contacts the double-glazed window 2 through a scraper strip to ensure that the double-glazed window 2 can be cleaned and to avoid excessive dust affecting light transmission.

[0042] Operation process: When connecting wall 1 to wall 1, it is fastened by bolts and fixing seat 11. During the fastening process, the protruding rod 36 is squeezed and moves. The movement of the protruding rod 36 drives the second connecting rod 35 and the bending rod 33 to bend. The other end of the bending rod 33 drives the protruding heat insulation frame 32 to move in the opposite direction through the first connecting rod 34, so that the protruding heat insulation frame 32 gradually embeds into the matching groove 12 of the other wall 1, thereby further sealing the gap between the two sets of wall 1, effectively improving the heat insulation effect. When the protruding heat insulation frame 32 moves, the protruding heat insulation frame... 32 drives the embedded column 428 to move, and the movement of the embedded column 428 causes the rotating column 426 with the spiral guide groove 427 to rotate. The rotation of the rotating column 426 drives the driving gear 425 to rotate, and the rotation of the driving gear 425 drives the driven gear 424 to rotate. The rotation of the driven gear 424 drives the cover plate 423 to rotate and open on the fixed block 421 through the torsion spring 422. When no external force is applied to the cover plate 423, the torsion spring 422 has a large torque and will not easily deform, so that the torsion spring 422 is sufficient to drive the cover plate 423 to flip. The cover plate 423 facing outward of the wall 1 flips upward, and the cover plate 423 facing inward of the wall 1 flips upward. 3. Flipping downwards allows the inward-flipping cover 423 to rotate 90 degrees, providing a tabletop for placing items indoors. The outer cover 423 can be equipped with a gear ratio, allowing it to rotate nearly 180 degrees. During the rotation of the cover 423, its flipping movement pulls the connecting plate 54 via the slider 52. The movement of the connecting plate 54 pulls the scraper 53, causing it to move from one end of the double-glazed window 2 to the other, thus allowing the glass window to be scraped. This ensures the light transmission effect of the double-glazed window 2 after the wall 1 is connected. During disassembly... The cover plate 423 and other components can be restored simply by squeezing the protruding heat insulation frame 32. A tension spring is also provided between the slide groove and the slider 52, allowing the scraper 53 to automatically restore itself. Through this mechanism, the thermal insulation effect of the wall 1 is effectively improved. Furthermore, the double-glazed window 2 can effectively increase the indoor temperature in winter, thereby reducing the output of indoor heating equipment and achieving energy savings. The cover plate 423 effectively protects the double-glazed window 2 from damage during transportation. Moreover, the cover plate 423, originally intended for protection, can be converted into other functions after opening, further improving the usability of the insulated wall 1. It should be noted that the above embodiments are only used to illustrate the technical solution of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of the present invention without departing from the spirit and scope of the present invention, and all such modifications and substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A green, environmentally friendly, energy-saving, and heat-insulating wall structure, characterized in that: include, A wall (1) is fitted with a double-glazed window (2). A protruding heat insulation mechanism (3) is provided on one side of the wall (1). A matching groove (12) is provided on the other side wall of the wall (1). When the protruding heat insulation mechanism (3) is pressed, it protrudes from the inside of the wall (1) and is embedded in the matching groove (12) of another wall (1). The protruding heat insulation mechanism (3) includes a protruding heat insulation frame (32) and a pressing component that moves the protruding heat insulation frame (32) after being pressed. The pressing component is squeezed when the two sets of walls (1) are installed. The pressing component causes the protruding heat insulation frame (32) to protrude from the inside of the wall (1) and be embedded in the mating groove (12) of another connecting wall (1). The light-transmitting protection unit (4) includes two sets of rotatable covers (423) in the protective assembly (42) and a transmission mechanism for driving the covers (423). One set of covers (423) is located on the outward side of the wall (1) and rotates upward to open, while the other set of covers (423) is located on the inward side of the wall (1) and rotates downward to open. The transmission mechanism is connected to the protruding heat insulation mechanism (3) so that when the protruding heat insulation mechanism (3) is driven, its cover (423) rotates open.

2. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 1, characterized in that: Each corner of the wall (1) is provided with a fixing seat (11), and the fixing seats (11) between each two sets of walls (1) are fastened by bolts.

3. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 2, characterized in that: The pressure-sensitive assembly includes an embedded cavity (31) within the wall (1). A bent rod (33) is installed on the inner wall of the embedded cavity (31). The center end of the bent rod (33) is fixed by a shaft. A first connecting rod (34) is installed at one end of the bent rod (33). One end of the first connecting rod (34) is movably connected to the top of the protruding heat insulation frame (32) by a pin. A second connecting rod (35) is installed at the other end of the bent rod (33). A protruding rod (36) is installed inside the embedded cavity (31). The protruding rod (36) extends to the outside of the side wall of the wall (1), and one end of the second connecting rod (35) is movably connected to one end of the protruding rod (36).

4. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 3, characterized in that: The embedded cavity (31) provides installation space for the pressure-sensitive component and the protruding heat insulation frame (32). A set of pressure-sensitive components is installed on the upper and lower sides of the protruding heat insulation frame (32). The protruding rod (36) moves under the pressure of another wall (1). Through the turning of the second connecting rod (35), the bending rod (33) and the first connecting rod (34), the protruding rod (36) moves, causing the protruding heat insulation frame (32) inside the wall (1) to gradually move outward.

5. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 1, characterized in that: The transmission mechanism includes a fixed block (421) installed on the outer wall of the wall (1). The shaft of the fixed block (421) is embedded in the connecting end of the cover plate (423), and the embedded end of the shaft is connected to the inner wall of the cover plate (423) by a torsion spring (422). A passive gear (424) is installed on the shaft of the fixed block (421).

6. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 5, characterized in that: A rotating column (426) is installed on one side of the interior of the wall (1). A drive gear (425) is installed at the end of the rotating column (426). The drive gear (425) meshes with the driven gear (424). A spiral guide groove (427) is opened on the surface of the rotating column (426). An embedded column (428) is installed on the side wall of the protruding heat insulation frame (32). A protrusion at the end of the embedded column (428) matches the spiral guide groove (427).

7. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 6, characterized in that: The protruding heat insulation frame (32) moves and pulls the embedded column (428). The axial force applied by the embedded column (428) is transformed into a rotational force on the rotating column (426) through the spiral guide groove (427). After the rotating column (426) rotates, it drives the cover plate (423) to rotate through the active gear (425) and the passive gear (424).

8. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 1, characterized in that: The light-transmitting protection unit (4) also includes a limiting component (43) for always limiting and locking the cover plate (423) when light transmission heating is not required in summer.

9. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 8, characterized in that: The limiting component (43) includes an opening (431) mounted on the cover plate (423) and a rotary knob (432) mounted on the outer wall of the wall (1). When the rotary knob (432) is in a horizontal position, it can pass through the opening (431) to enter the other side of the cover plate (423).

10. The green, environmentally friendly, energy-saving, and heat-insulating wall structure as described in claim 8, characterized in that: A cleaning assembly (5) is installed on the inner wall of the wall (1) and on the outer side of the double-glazed window (2). The cleaning assembly (5) includes a sliding groove (51) opened on one side of the cover plate (423). A slider (52) is slidably connected inside the sliding groove (51), and a scraper (53) is slidably connected on one side of the double-glazed window (2). The end of the scraper (53) is movably connected to the slider (52) through a connecting plate (54). The scraper (53) and the double-glazed window (2) are in contact through a scraper strip.