Efficient and energy-saving house building wall heat preservation device

By focusing sunlight through a lens to heat an aluminum alloy spherical column and transferring the heat to a heating aluminum tube, combined with turbine transmission to improve gas conversion efficiency, the problem of energy-saving wall insulation in existing technologies is solved, achieving a highly efficient energy-saving insulation effect.

CN223510472UActive Publication Date: 2025-11-04HANDAN GUANGTAI HIGHWAY ENG CO LTD
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Patent Information

Application Number
CN202422417457.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-08
Publication Date
2025-11-04
Estimated Expiration
2034-10-08

AI Technical Summary

Technical Problem

Existing technologies that use electrothermal conversion for wall insulation cannot achieve energy-saving effects.

Method used

The system uses a lens to focus sunlight to heat an aluminum alloy spherical column, which uses energy conservation to transfer heat to the heating aluminum tube. The copper tube is preheated by high-temperature gas, and the gas conversion efficiency is improved by turbine drive.

Benefits of technology

It achieves energy-saving effects through wall insulation and improves the rapid conversion and heating efficiency of high-temperature gases.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an efficient and energy-saving house building wall heat preservation device, and belongs to the technical field of wall heat preservation. Comprising a toughened glass cover seat provided with a plurality of through holes; the lenses are fixedly connected in the through holes of the toughened glass cover seat and are focused to one point; the aluminum alloy ball column is used for heating gas, is fixedly connected to the interior of the tempered glass cover seat and is located at a lens focus point; the heat dissipation exhaust valve is fixedly connected to one side of the tempered glass cover seat; and a heat-insulating wall plate in which a heating aluminum pipe is additionally arranged is fixedly connected between the aluminum alloy ball column and the toughened glass cover seat through a connecting pipe head. Sunlight irradiates the lens to heat the focused aluminum alloy ball column, so that the temperature of gas in the aluminum alloy ball column is increased, heat transfer is conducted on the heating aluminum pipe in the heat preservation wallboard under the energy conservation effect, and the energy-saving and heat preservation effects of the heat preservation wallboard are achieved.
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Description

Technical Field

[0001] This application relates to the field of wall insulation technology, and more specifically, to a high-efficiency and energy-saving building wall insulation device. Background Technology

[0002] Wall insulation refers to the use of insulation materials to insulate the exterior walls of a building in order to mitigate the damage caused by thermal bridging and protect the walls from excessive temperature deformation stress, ensuring they maintain a normal temperature. Insulated wall structures are required when performing wall insulation construction.

[0003] The prior art publication (announcement) number CN219222619U provides a low-carbon wall insulation device. In this related technology, a sealed chamber consisting of a sound insulation groove and an insulation layer is set on the front side of the wall. The water outlet pipe is coiled in the chamber and finally discharged into the interior of the water storage tank. The heat is increased on one side of the wall, and the heat conduction is significantly improved compared to the pipe being buried in the wall.

[0004] Although the existing technical solutions mentioned above can achieve the relevant beneficial effects through the existing technical structure, they still have the following drawbacks: using electrothermal conversion to achieve wall insulation cannot achieve energy-saving effects.

[0005] In view of this, we propose a high-efficiency and energy-saving building wall insulation device. Utility Model Content

[0006] To address the problems mentioned in the background section, this application provides a highly efficient and energy-saving building wall insulation device.

[0007] The high-efficiency and energy-saving building wall insulation device provided in this application adopts the following technical solution:

[0008] Highly efficient and energy-saving building wall insulation devices include:

[0009] A tempered glass cover with multiple through holes;

[0010] The lens is fixedly connected to each through hole in the tempered glass cover and focuses the light to a single point;

[0011] An aluminum alloy ball column for heating gas is fixedly connected inside a tempered glass cover and positioned at the focal point of the lens.

[0012] A heat dissipation and exhaust valve is fixedly connected to one side of the tempered glass cover.

[0013] The insulated wall panel with internal heating aluminum tubes is fixedly connected between the aluminum alloy spherical column and the tempered glass cover via connecting pipe heads.

[0014] By adopting the above technical solution, the sunlight is irradiated through a lens to heat the focused aluminum alloy column, causing the gas inside the aluminum alloy column to heat up. Under the law of energy conservation, heat is transferred to the heating aluminum tube in the insulation wall panel, thereby achieving the energy-saving and heat-insulating effect of the insulation wall panel.

[0015] As an optional solution to the technical solution in this application, a buffer glass tube with a coiled structure is fixedly connected inside the aluminum alloy ball column.

[0016] By adopting the above technical solution, the gas to be converted can be further heated using a buffer glass tube, allowing the gas to heat up rapidly.

[0017] As an optional solution to the technical solution of this application, the heat dissipation exhaust valve includes a valve head, one end of which is fixedly connected to a tempered glass frame, and a preheating copper pipe is fixedly connected inside the tempered glass frame. One end of the preheating copper pipe is fixedly connected to the air inlet end of an aluminum alloy ball column, and the other end is fixedly connected to a filter cylinder.

[0018] By adopting the above technical solution, after the internal temperature of the tempered glass cover rises to the rated degree, the high-temperature gas is discharged through the heat dissipation exhaust valve, ensuring the stability of the internal air pressure of the tempered glass cover. At the same time, the discharged high-temperature gas can assist in heating the gas drawn into the preheating copper pipe, ensuring the heating effect of the high-temperature gas on the insulation wall panel.

[0019] As an optional solution to the technical solution in this application, the preheating copper tube is arranged in a bent structure.

[0020] By adopting the above technical solution, the preheating copper tube with a curved structure can ensure the gas heating effect.

[0021] As an optional solution to the technical solution of this application, an extension tube is fixedly connected to the heat dissipation vent of the tempered glass frame, a turbine A is rotatably connected inside the extension tube, a turbine B is connected to the outside of the turbine A through a synchronous wheel structure, and the turbine B is rotatably connected to the connection between the preheating copper tube and the air inlet end of the aluminum alloy ball column.

[0022] By adopting the above technical solution, when high-temperature gas is discharged through the extension pipe, it impacts turbine A to rotate. The rotating turbine A drives the friction-driven turbine B to rotate synchronously, thereby realizing the rapid conversion of high-temperature gas and improving the heating effect of the insulation wall panel.

[0023] In summary, this application includes at least one of the following beneficial technical effects:

[0024] 1. This application utilizes a sunlight-irradiated lens to heat a focused aluminum alloy spherical column, causing the gas inside the aluminum alloy spherical column to heat up. Under the principle of energy conservation, heat is transferred to the heating aluminum tube in the insulation wall panel, thereby achieving the energy-saving and heat-insulating effect of the insulation wall panel.

[0025] 2. This application utilizes the fact that when high-temperature gas is discharged through the extension pipe, it impacts the turbine A to rotate, and the rotating turbine A drives the friction-driven turbine B to rotate synchronously, thereby achieving rapid conversion of high-temperature gas and improving the heating effect of the insulation wall panel. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of the overall structure of a high-efficiency and energy-saving building wall insulation device disclosed in a preferred embodiment of this application.

[0027] Figure 2 This is a schematic diagram of the internal structure of an aluminum alloy spherical column of a high-efficiency and energy-saving building wall insulation device disclosed in a preferred embodiment of this application.

[0028] Figure 3 This is a schematic diagram of the internal structure of the heat dissipation and exhaust valve of a high-efficiency and energy-saving building wall insulation device disclosed in a preferred embodiment of this application.

[0029] The following are the labels in the diagram: 1. Tempered glass cover; 2. Lens; 3. Aluminum alloy ball column; 4. Heat dissipation and exhaust valve; 5. Insulated wall panel; 31. Buffer glass tube; 41. Pipe valve head; 42. Tempered glass frame; 43. Preheating copper tube; 44. Filter cartridge; 45. Extension tube; 46. Turbine A; 47. Turbine B. Detailed Implementation

[0030] The present application will be further described in detail below with reference to the accompanying drawings.

[0031] Reference Figure 1-3 The high-efficiency and energy-saving building wall insulation device described in this application includes:

[0032] A tempered glass cover with multiple through holes 1;

[0033] Lens 2 is fixedly connected to each through hole in the tempered glass cover 1 and focuses to a single point;

[0034] The aluminum alloy ball column 3 used for heating gas is fixedly connected inside the tempered glass cover 1 and is located at the focal point of the lens 2;

[0035] The heat dissipation and exhaust valve 4 is fixedly connected to one side of the tempered glass cover 1;

[0036] The heat-insulating wall panel 5, with an internal heating aluminum tube, is fixedly connected between the aluminum alloy ball column 3 and the tempered glass cover 1 via a connecting pipe head.

[0037] This high-efficiency and energy-saving building wall insulation device uses sunlight to irradiate the lens 2, which heats the focused aluminum alloy ball column 3, causing the gas inside the aluminum alloy ball column 3 to heat up. Under the law of energy conservation, the gas is transferred to the heating aluminum tube in the insulation wall panel 5, thereby achieving the energy-saving and heat-insulating effect of the insulation wall panel 5.

[0038] Reference Figure 2 and Figure 1 In the high-efficiency and energy-saving building wall insulation device described in this application embodiment, the aluminum alloy ball column 3 is internally fixedly connected to a buffer glass tube 31 with a coiled structure.

[0039] This high-efficiency and energy-saving building wall insulation device can further heat the gas to be converted by using a buffer glass tube 31, so that the gas can be heated rapidly.

[0040] Reference Figure 3 and Figure 1 The heat dissipation and exhaust valve 4 in the high-efficiency and energy-saving building wall insulation device described in this application embodiment includes a pipe valve head 41. One end of the pipe valve head 41 is fixedly connected to a tempered glass frame 42. A preheating copper pipe 43 is fixedly connected inside the tempered glass frame 42. One end of the preheating copper pipe 43 is fixedly connected to the air inlet end of the aluminum alloy ball column 3, and the other end is fixedly connected to a filter cylinder 44. The preheating copper pipe 43 is arranged in a curved structure.

[0041] This high-efficiency and energy-saving building wall insulation device utilizes the fact that after the internal temperature of the tempered glass cover 1 rises to the rated temperature, the high-temperature gas is discharged through the heat dissipation exhaust valve 4, ensuring the stability of the internal air pressure of the tempered glass cover 1. At the same time, the discharged high-temperature gas can assist in heating the gas drawn into the preheating copper pipe 43, ensuring the heating effect of the high-temperature gas on the insulation wall panel 5. The preheating copper pipe 43 with its curved structure can ensure the gas heating effect.

[0042] Reference Figure 3 and Figure 1 In the high-efficiency and energy-saving building wall insulation device described in this application embodiment, an extension pipe 45 is fixedly connected to the heat dissipation port of the tempered glass frame 42. A turbine A46 is rotatably connected inside the extension pipe 45. A turbine B47 is connected to the outside of the turbine A46 through a synchronous wheel structure. The turbine B47 is rotatably connected to the connection between the preheating copper pipe 43 and the air inlet end of the aluminum alloy ball column 3.

[0043] This high-efficiency and energy-saving building wall insulation device utilizes the impact of high-temperature gas as it is discharged through the extension pipe 45, causing the turbine A46 to rotate. The rotating turbine A46 drives the friction-driven turbine B47 to rotate synchronously, thereby achieving rapid conversion of high-temperature gas and improving the heating effect of the insulation wall panel 5.

[0044] Working principle: When sunlight heats the aluminum alloy spherical column 3 through lens 2, the gas inside the aluminum alloy spherical column 3 heats up rapidly and performs energy conservation with the connected heat insulation wall panel 5, thus achieving gas heat exchange.

[0045] When the temperature inside the tempered glass cover 1 exceeds the rated temperature, the high-temperature gas is discharged through the extension pipe 45. The discharged high-temperature gas preheats the cold gas inside the preheating copper pipe 43 and impacts the turbine A46 to rotate. The rotating turbine A46 drives the friction-driven turbine B47 to rotate synchronously, realizing the rapid conversion of high-temperature gas.

Claims

1. A high-efficiency and energy-saving building wall insulation device, characterized in that, include: Tempered glass cover with multiple through holes (1); The lens (2) is fixedly connected to each through hole of the tempered glass cover (1) and focused to a single point; An aluminum alloy ball column (3) for heating gas is fixedly connected inside a tempered glass cover (1) and is located at the focal point of the lens (2); A heat dissipation exhaust valve (4) is fixedly connected to one side of the tempered glass cover (1); An insulated wall panel (5) with an internal heating aluminum tube is fixedly connected between an aluminum alloy ball column (3) and a tempered glass cover (1) via a connecting pipe head; The aluminum alloy ball column (3) is internally fixedly connected to a buffer glass tube (31) with a coiled structure. The heat dissipation exhaust valve (4) includes a valve head (41), one end of which is fixedly connected to a tempered glass frame (42), and a preheating copper pipe (43) is fixedly connected inside the tempered glass frame (42). One end of the preheating copper pipe (43) is fixedly connected to the air inlet end of the aluminum alloy ball column (3), and the other end is fixedly connected to a filter cylinder (44).

2. The high-efficiency and energy-saving building wall insulation device according to claim 1, characterized in that: The preheating copper tube (43) is arranged in a curved structure.

3. The high-efficiency and energy-saving building wall insulation device according to claim 2, characterized in that: An extension tube (45) is fixedly connected to the heat dissipation port of the tempered glass frame (42). A turbine A (46) is rotatably connected inside the extension tube (45). A turbine B (47) is connected to the outside of the turbine A (46) through a synchronous wheel structure. The turbine B (47) is rotatably connected to the connection between the preheating copper tube (43) and the air inlet end of the aluminum alloy ball column (3).

Citation Information

Patent Citations

  • Low-carbon wall thermal insulation device

    CN219222619U