Energy-saving building structures with heat-insulating function

CN224514628UActive Publication Date: 2026-07-17

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Filing Date
2025-06-13
Publication Date
2026-07-17

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Abstract

This utility model relates to the field of building materials technology, specifically an energy-saving building structure with heat-insulating function. It includes multiple splicing panels connected sequentially. Each splicing panel has an internal heat-insulating component, comprising a first heat-insulating board, a second heat-insulating board, a first turntable, a second turntable, a first through hole, and a second through hole. Each splicing panel has a first heat-insulating board and a second heat-insulating board fixedly connected inside. A first turntable is rotatably connected to both the first and second heat-insulating boards. A second turntable is rotatably connected between the two first turntables. A first through hole is located on the first turntable, and a second through hole is located on the second turntable. Switching components are provided on both the first and second turntables. This utility model can adjust the structure to a heat-insulating mode or a heat-dissipating mode according to heat insulation requirements, thereby flexibly adjusting the indoor heat insulation effect based on weather and temperature.
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Description

Technical Field

[0001] This utility model relates to the field of building materials technology, specifically an energy-saving building structure with heat-insulating function. Background Technology

[0002] High-rise buildings receive more sunlight due to their height, and there is also a risk of strong winds at high altitudes without other buildings to block the wind. Therefore, high-rise buildings suffer from the problems of being hot in summer and cold in winter.

[0003] While air conditioning can change room temperature, if the building itself has poor thermal insulation, air conditioning will consume a lot of energy. Not only does it consume a lot of electricity, but it also cannot fundamentally change the problem of the building being hot in summer and cold in winter. Some interior decorations use insulation materials installed on the walls and floors of buildings to achieve a thermal insulation effect. However, if insulation materials are used all year round, the temperature cannot dissipate when there is a need for heat dissipation, such as on rainy days. The indoor temperature cannot dissipate, and the indoor temperature is higher than the outdoor temperature. In addition, the air humidity increases when it rains, and the indoor temperature will feel stuffy. Therefore, a thermal insulation building structure that can be adjusted according to the situation is needed. Utility Model Content

[0004] To address the aforementioned technical problems, this utility model proposes an energy-saving building structure with heat-insulating function, which can be adjusted to either heat-insulating or heat-dissipating mode according to insulation requirements, thereby flexibly adjusting the indoor insulation effect based on weather and temperature.

[0005] The technical solution to achieve the purpose of this utility model is as follows: an energy-saving building structure with heat-insulating function, comprising multiple splicing panels connected in sequence, wherein each splicing panel is provided with a heat-insulating component, the heat-insulating component comprising a first heat-insulating board, a second heat-insulating board, a first turntable, a second turntable, a first through hole, and a second through hole, wherein the first heat-insulating board and the second heat-insulating board are fixedly connected inside each splicing panel, the first turntable is rotatably connected to both the first heat-insulating board and the second heat-insulating board, the second turntable is rotatably connected between the two first turntables, the first through hole is opened on the first turntable, the second through hole is opened on the second turntable, and a switch component is provided on the first turntable and the second turntable.

[0006] Preferably, the switch assembly further includes a round shaft and a groove. The round shaft is fixedly connected to each first turntable, and the groove is provided on both sides of each second turntable. Each round shaft is rotatably connected to the inside of the groove.

[0007] Preferably, the switch assembly further includes a spring, and each groove is provided with a spring inside, with each spring fixedly connected between the inner wall of the groove and the round shaft.

[0008] Preferably, the switch assembly further includes a cavity, and each second turntable has a cavity inside.

[0009] Preferably, each of the splicing panels has two water holes around its perimeter, and the eight water holes are divided into two groups. The first and second insulation boards in each splicing panel are located between the two groups of water holes.

[0010] Preferably, the first turntable is made of high-density metal and the second turntable is made of low-density plastic.

[0011] Compared with the prior art, the significant advantages of this utility model are:

[0012] Firstly, in this invention, during the installation of the splicing panels, a water inlet pipe is connected to the first splicing panel, and a drain pipe is connected to the last splicing panel. When there is a need for heat dissipation indoors, water is injected into each splicing panel through the water inlet pipe. Since the water holes on each splicing panel are connected, all splicing panels will eventually be filled with water. When the splicing panels are full of water, the first turntable will, due to its own weight, have its first through hole facing upwards. Under the action of the spring, the second through hole on the second turntable, which was originally misaligned with the first through hole, but... After the splicing panel is filled with water, the second turntable will be buoyed, and its internal cavity needs to rotate to an upward position. Therefore, the second turntable will rotate relative to the first turntable so that the cavity is at the upper end. At the same time, the second through hole will connect with the first through hole, so that the water on one side of the first insulation board and the water on the other side of the second insulation board can be connected through the first through hole and the second through hole. At this time, the first insulation board and the second insulation board lose their insulation function, and the water channel connecting the two can play a good heat conduction effect. Therefore, the splicing panel no longer has an insulation effect.

[0013] Secondly, in this utility model, since each splicing panel is equipped with a first insulation board and a second insulation board, and the first and second insulation boards are made of insulation materials, after the splicing panels are installed, the entire wall surface will be covered by the first and second insulation boards inside the splicing panels, which has a good insulation effect. When water is injected, the splicing panels can use water to conduct heat, causing them to lose their insulation and heat-insulating effect. When the splicing panels need to play an insulation role again, all the water needs to be drained. At this time, the second turntable is no longer subject to buoyancy, and the second through hole on it will rotate back to the downward position due to the weak restoring force of the spring. At this time, there is only a weak gap between the first insulation board and the second insulation board, and the first insulation board and the second insulation board have a good air seal and poor air circulation, so the insulation effect can be fully utilized. Attached Figure Description

[0014] The present invention will be further explained below with reference to the accompanying drawings and embodiments:

[0015] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0016] Figure 2 This is an exploded view of the structure of this utility model;

[0017] Figure 3 This is a three-dimensional structural diagram of the first insulation board and the second insulation board in this utility model;

[0018] Figure 4 This is a cross-sectional view of the internal structure of the second turntable in this utility model;

[0019] Figure 5 This is a cross-sectional view of the connection structure between the splicing plate and the first and second insulation plates in this utility model.

[0020] Explanation of reference numerals in the attached figures:

[0021] 1. Splicing plate; 2. Water hole; 3. Insulation component; 31. First insulation board; 32. Second insulation board; 33. First turntable; 34. Second turntable; 35. First through hole; 36. Second through hole; 4. Switch component; 41. Round shaft; 42. Groove; 43. Spring; 44. Cavity. Detailed Implementation

[0022] The present invention will now be described in detail, and the technical solutions in the embodiments of the present invention will be clearly and completely described. 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 protection scope of the present invention.

[0023] This utility model improves upon the provision of an energy-saving building structure with heat-insulating function. The technical solution of this utility model is as follows:

[0024] like Figures 1-5As shown, an energy-saving building structure with heat-insulating function includes multiple splicing panels 1, which are connected in sequence. Each splicing panel 1 has an insulation component 3 inside. The insulation component 3 includes a first insulation board 31, a second insulation board 32, a first turntable 33, a second turntable 34, a first through hole 35, and a second through hole 36. Each splicing panel 1 has a first insulation board 31 and a second insulation board 32 fixedly connected inside. The first insulation board 31 and the second insulation board 32 are made of insulation material. Therefore, after the splicing panel 1 is installed, the entire wall surface will be covered by the first insulation board 31 and the second insulation board 32 inside the splicing panel 1, providing good insulation. A first turntable 33 is rotatably connected to both the first insulation board 31 and the second insulation board 32. A second turntable 34 is rotatably connected between the two first turntables 33. A first through hole 35 is opened on the first turntable 33, and a second through hole 36 is opened on the second turntable 34. A switch component 4 is provided on the first turntable 33 and the second turntable 34.

[0025] In this utility model, such as Figure 2 and Figure 3 As shown, the switch assembly 4 also includes a round shaft 41 and a groove 42. A round shaft 41 is fixedly connected to each first turntable 33, and a groove 42 is provided on both sides of each second turntable 34. Each round shaft 41 is rotatably connected to the inside of the groove 42. The groove 42 is used to place the spring 43.

[0026] In this utility model, such as Figure 2 and Figure 3 As shown, the switch assembly 4 also includes a spring 43. Each groove 42 is provided with a spring 43 inside, and each spring 43 is fixedly connected between the inner wall of the groove 42 and the round shaft 41.

[0027] In this utility model, such as Figure 4 As shown, the switch assembly 4 also includes a cavity 44. Each second turntable 34 has a cavity 44 inside. The purpose of setting the cavity 44 is to make the second turntable 34 buoyant when there is water in the splicing plate 1, and the second through hole 36 and the first through hole 35 on it are connected.

[0028] In this utility model, such as Figure 1 , Figure 2 and Figure 5 As shown, each of the four sides of the splicing plate 1 has two water holes 2. The eight water holes 2 are divided into two groups. The first insulation board 31 and the second insulation board 32 in each splicing plate 1 are located between the two groups of water holes 2.

[0029] In this utility model, the first turntable 33 is made of high-density metal, the second turntable 34 is made of low-density plastic, and the surface of the splicing plate 1 is square. Therefore, no matter which direction the splicing plate 1 is installed, the first turntable 33 will be positioned at the top due to its center of gravity, while the second through hole 36 on the second turntable 34 will be positioned at the bottom due to the spring 43.

[0030] The specific working method is as follows: First, during the building decoration, the splicing panel 1 is installed into the wall. The surface of the splicing panel 1 can be decorated with wallpaper or other materials. After multiple splicing panels 1 are installed, the water holes 2 on them are connected to each other, so the interiors of multiple splicing panels 1 are interconnected. Since each splicing panel 1 is equipped with a first insulation board 31 and a second insulation board 32, and the first insulation board 31 and the second insulation board 32 are made of insulation materials, after the splicing panel 1 is installed, the entire wall surface will also be covered by the first insulation board 31 and the second insulation board 32 inside the splicing panel 1, which has a good insulation effect.

[0031] When installing the splicing panels 1, a water inlet pipe is connected to the first splicing panel 1, and a drain pipe is connected to the last splicing panel 1. When there is a need for heat dissipation indoors, water is injected into each splicing panel 1 through the water inlet pipe. Since the water holes 2 on each splicing panel 1 are connected, all splicing panels 1 will eventually be filled with water. When the splicing panels 1 are full of water, the first turntable 33 will, due to its own weight, have its first through hole 35 facing upwards. Under the action of the spring 43, the second through hole 36 on the second turntable 34, which was originally misaligned with the first through hole 35, will also be misaligned after the splicing panels 1 are filled with water. The second turntable 34 will be subject to buoyancy, and its internal cavity 44 needs to rotate to the upward position. Therefore, the second turntable 34 will rotate relative to the first turntable 33 so that the cavity 44 is at the upper end. At the same time, the second through hole 36 will connect with the first through hole 35, so that the water on one side of the first insulation plate 31 and the water on the other side of the second insulation plate 32 can be connected through the first through hole 35 and the second through hole 36. At this time, the first insulation plate 31 and the second insulation plate 32 lose their heat preservation function, and the water channel connecting the two can play a good heat conduction effect. Therefore, the splicing plate 1 no longer has a heat preservation effect.

[0032] When the splicing plate 1 needs to perform its insulation function again, simply drain all the water. At this time, the second turntable 34 is no longer subject to buoyancy, and the second through hole 36 on it will rotate back to the downward position due to the slight restoring force of the spring 43. At this time, there is only a slight gap between the first insulation plate 31 and the second insulation plate 32, which exists between the first turntable 33 and the second turntable 34. The first insulation plate 31 and the second insulation plate 32 have a good air seal and poor air circulation, so the insulation effect can be fully utilized.

[0033] The technical means disclosed in this utility model are not limited to those described above, but also include technical solutions composed of equivalent substitutions of the above technical features. Matters not covered in this utility model are common knowledge to those skilled in the art.

Claims

1. Energy-saving building structure with heat resistance function, comprising a plurality of splicing plates (1), the plurality of splicing plates (1) are connected in sequence, characterized in that: The splicing plate (1) is provided with a heat insulation component (3) inside. The heat insulation component (3) includes a first heat insulation plate (31), a second heat insulation plate (32), a first turntable (33), a second turntable (34), a first through hole (35), and a second through hole (36). The first heat insulation plate (31) and the second heat insulation plate (32) are fixedly connected inside each splicing plate (1). The first turntable (33) is rotatably connected to both the first heat insulation plate (31) and the second heat insulation plate (32). The second turntable (34) is rotatably connected between the two first turntables (33). The first through hole (35) is opened on the first turntable (33), and the second through hole (36) is opened on the second turntable (34). Switch components (4) are provided on the first turntable (33) and the second turntable (34).

2. The energy-saving building structure with heat-insulating function according to claim 1, characterized in that: The switch assembly (4) further includes a round shaft (41) and a groove (42). The round shaft (41) is fixedly connected to each first turntable (33), and the groove (42) is provided on both sides of each second turntable (34). Each round shaft (41) is rotatably connected to the inside of the groove (42).

3. The energy-saving building structure having a heat-blocking function according to claim 2, characterized in that: The switch assembly (4) also includes a spring (43), and each groove (42) is provided with a spring (43), and each spring (43) is fixedly connected between the inner wall of the groove (42) and the round shaft (41).

4. The energy-saving building structure having a heat-blocking function according to claim 1, characterized in that: The switch assembly (4) also includes a cavity (44), and each second turntable (34) has a cavity (44) inside.

5. The energy-saving building structure having a heat-blocking function according to claim 1, characterized in that: Two water holes (2) are opened around each of the splicing plate (1). The eight water holes (2) are divided into two groups. The first insulation board (31) and the second insulation board (32) in each splicing plate (1) are located between the two groups of water holes (2).

6. The energy-saving building structure with heat-insulating function according to claim 1, characterized in that: The first turntable (33) is made of high-density metal, and the second turntable (34) is made of low-density plastic.