Building energy-saving door and window system

By introducing electrical transparent heating layer and frame-shaped photovoltaic panels into the building energy-saving doors and windows system, the cumbersome problem of fog cleaning on doors and windows is solved, and the energy-saving performance and practicality of the system are improved.

CN222909834UActive Publication Date: 2025-05-27NANJING RICH DOOR & WINDOW TECH CO LTD
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Patent Information

Application Number
CN202421839499.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2025-05-27
Estimated Expiration
2034-07-31

AI Technical Summary

Technical Problem

When used in the existing building energy-saving door and window systems, due to the temperature difference between indoor and outdoor, fog can easily appear on the glass in the door and windows, which is cumbersome in cleaning and reduces practicality.

Method used

A building energy-saving door and window system including double-layer transparent tempered glass, an electric transparent heating layer, a USB interface, a display screen and an operation button was designed. The fog on the glass is cleaned through the heating function of the electric transparent heating layer, and power generation and storage is generated through the frame-shaped photovoltaic panel to provide charging function.

Benefits of technology

It is easy to clean the mist on the glass in doors and windows, improves practicality, and improves the energy-saving performance and practicality of doors and windows through double-layer glass and photovoltaic power generation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a building energy-saving door and window system, which belongs to the technical field of door and window systems, and comprises a wall body, a frame is hermetically assembled in the wall body, and two sealing frames are rotatably connected in the frame through hinges. According to the building energy-saving door and window system, double-layer glass of the first transparent tempered glass and the second transparent tempered glass can isolate indoor and outdoor heat, heat loss is reduced, the door and window system has the energy-saving performance, the sealing frame is closed in the frame in a sealed mode, and the sealing effect is good. Power can be generated through a frame-shaped photovoltaic panel and stored in a storage battery pack through a circuit board box body, an electrically-made transparent heating layer can be heated by operating an operation button, and then fog on first transparent tempered glass and second transparent tempered glass can be cleaned and volatilized, so that the fog can be stored in the storage battery pack through the circuit board box body. The mobile phone is charged through the three USB interfaces, the energy-saving performance of the door and window system is improved, and the remaining electric quantity in the storage battery pack can be checked through the display screen.
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Description

Technical Field

[0001] The utility model relates to the technical field of door and window systems, in particular to an energy-saving building door and window system. Background Technique

[0002] Doors and windows are classified as enclosing components or partition components according to their positions, and have different design requirements, respectively having functions such as heat preservation, heat insulation, sound insulation, waterproofing and fire prevention. New requirements include energy conservation. In cold regions, the heat loss through door and window gaps accounts for about 25% of the total heating heat consumption. The requirement for the airtightness of doors and windows is an important part of energy-saving design. Doors and windows are important components of the building envelope structure system. Secondly, doors and windows are also important components of the building shape. Therefore, their shapes, sizes, proportions, arrangements, colors and shapes have a great impact on the overall shape of the building. Doors and windows are classified as enclosing components or partition components according to their positions. According to the door and window materials, they can be roughly divided into the following categories: wooden doors and windows, steel doors and windows, plastic-steel doors and windows, etc. Since the reform and opening up, the living standards of the people have been continuously improved, and the types of doors and windows and their derivative products have been continuously increasing, and the grades have been gradually rising.

[0003] For example, Chinese Patent CN217481159U discloses an energy-saving building door and window system, including a profile frame and windows rotatably connected to both ends of the profile frame. A wall body is fixedly installed outside the profile frame. A return-shaped cover is arranged at one end of the profile frame away from the windows. And the outside of the return-shaped cover is threadedly connected with second lock rods in a rectangular array. A first sealing pad for pressing against the wall body is fixedly installed on the outer wall of the return-shaped cover. One side of the return-shaped cover and near one end of the profile frame is fixedly connected with a second sealing pad for pressing against the profile frame. In this energy-saving building door and window system, by setting the return-shaped cover, second lock rods, first sealing pad and second sealing pad, the gap between the profile frame and the wall body is hermetically installed, improving the sealing performance between the profile frame and the wall body. By setting the moving frame, limiting plate, heat preservation strip and first lock rod, it is convenient to drive the moving frame to rotate back and forth on the limiting plate, so that the heat preservation strip contacts the profile frame, playing a role in isolating gas.

[0004] Although the above patent is convenient to drive the moving frame to rotate back and forth on the limiting plate, so that the heat preservation strip contacts the profile frame, playing a role in isolating gas, when the energy-saving building door and window in this patent is in use, due to the temperature difference between indoors and outdoors, it is easy to cause fogging on the glass of the door and window. When cleaning the fog on the glass of the door and window, a rag is needed for cleaning, and the process is relatively cumbersome, reducing the practicability. Content of the Utility Model

[0005] In view of the deficiencies of the prior art, the present utility model provides a building energy-saving door and window system, which has the advantages of being convenient for cleaning the fog on the glass in the doors and windows, etc., and solves the problem that when the building energy-saving doors and windows are in use, due to the temperature difference between the indoor and outdoor, it is easy for the glass in the doors and windows to fog up. When cleaning the fog on the glass in the doors and windows, a rag is needed for cleaning, and the process is relatively cumbersome, reducing the practicality.

[0006] To achieve the above object, the present utility model provides the following technical solution: A building energy-saving door and window system includes a wall, a frame is hermetically assembled inside the wall, two sealing frames are rotatably connected inside the frame through hinges, a handle is fixed on the front of the sealing frame, and a connecting mechanism is provided on the front of the frame;

[0007] The connecting mechanism includes a battery box, a fixing plate, a battery pack, a circuit board box body, a frame-shaped photovoltaic panel and a connecting component. The battery box is fixed on the lower side of the front of the frame through bolts, the fixing plate is fixed on the front of the battery box through bolts, the battery pack is assembled inside the battery box, the circuit board box body is fixed on the right side of the battery box, the frame-shaped photovoltaic panel is arranged on the back of the frame, and both the battery pack and the frame-shaped photovoltaic panel are electrically connected to the circuit board box body through wires.

[0008] By adopting this technical solution, it is convenient to clean the fog on the glass in the doors and windows.

[0009] Further, the connecting component includes a first transparent tempered glass, an electrically controlled transparent heating layer, a second transparent tempered glass, three USB interfaces, a display screen, and two operation buttons. The first transparent tempered glass is fixed inside the sealing frame through sealant, the electrically controlled transparent heating layer is fixed inside the sealing frame through sealant, the second transparent tempered glass is fixed inside the sealing frame through sealant, the three USB interfaces are all arranged on the front of the circuit board box body, the display screen is arranged on the front of the circuit board box body, the two operation buttons are all arranged on the front of the circuit board box body, and the electrically controlled transparent heating layer, the two operation buttons, the three USB interfaces and the display screen are all electrically connected to the circuit board box body through wires.

[0010] By adopting this technical solution, the mobile phone can be charged through the three USB interfaces.

[0011] Further, the electrically controlled transparent heating layer is located behind the first transparent tempered glass, and the second transparent tempered glass is located behind the electrically controlled transparent heating layer.

[0012] By adopting this technical solution, the electrically controlled transparent heating layer can generate heat to heat the first transparent tempered glass and the second transparent tempered glass to an appropriate temperature.

[0013] Further, the operation button is located on the right side of the display screen, and the display screen is located on the right side of the USB interface.

[0014] By adopting this technical solution, the electrochromic transparent heating layer can be started and closed through the operation button.

[0015] Further, the handle is located on the horizontal central axis of the sealing frame.

[0016] By adopting this technical solution, the sealing frame can be opened by holding the handle.

[0017] Further, the framed photovoltaic panel is located on the vertical central axis of the frame.

[0018] By adopting this technical solution, the framed photovoltaic panel can generate electricity by sunlight.

[0019] Further, the left and right sealing frames are symmetrically distributed on the left and right sides of the vertical central axis of the frame.

[0020] By adopting this technical solution, the stability of the two sealing frames in the frame is improved.

[0021] Further, the first transparent tempered glass and the second transparent tempered glass are symmetrically distributed on the front and back sides of the horizontal central axis of the sealing frame.

[0022] By adopting this technical solution, the heat insulation performance and sound insulation performance of the door and window system can be improved through the mutual cooperation of the first transparent tempered glass and the second transparent tempered glass.

[0023] Compared with the prior art, the technical solution of the present application has the following beneficial effects:

[0024] In this building energy-saving door and window system, the double-layer glass of the first transparent tempered glass and the second transparent tempered glass can isolate the heat inside and outside the room, reduce the heat loss, making the door and window system energy-saving. The sealing frame is sealed and closed inside the frame, and the framed photovoltaic panel is located on the back of the frame, which is equivalent to being outside the window. The framed photovoltaic panel can generate electricity and store it in the internal battery pack through the circuit board box. By operating the operation button, the electrochromic transparent heating layer can be heated, and then the fog on the first transparent tempered glass and the second transparent tempered glass can be cleared and volatilized. The three USB interfaces can be used to charge mobile phones, improving the energy-saving performance of the door and window system. The remaining power in the battery pack can be viewed through the display screen. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 is a schematic structural diagram of the present utility model;

[0026] Figure 2 is a schematic diagram of the connection mechanism of the present utility model;

[0027] Figure 3 Schematic diagram of the back structure of the frame type of the present utility model;

[0028] Figure 4 Schematic three-dimensional diagram of the first transparent tempered glass of the structure of the present utility model.

[0029] In the figure: 1, wall; 2, frame type; 3, sealing frame; 4, handle; 5, connection mechanism; 51, battery box; 52, fixing plate; 53, battery pack; 54, circuit board box body; 55, frame-shaped photovoltaic panel; 56, connection component; 561, first transparent tempered glass; 562, electrically controlled transparent heating layer; 563, second transparent tempered glass; 564, USB interface; 565, display screen; 566, operation button. Specific implementation manner

[0030] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0031] Please refer to Figure 1 , a building energy-saving door and window system in this embodiment includes a wall 1. A frame type 2 is hermetically assembled inside the wall 1. Two sealing frames 3 are rotatably connected inside the frame type 2 through hinges. A handle 4 is fixed on the front of the sealing frame 3. A connection mechanism 5 is provided on the front of the frame type 2. The connection mechanism 5 facilitates cleaning the fog on the glass in the door and window.

[0032] In this embodiment, the handle 4 is located on the horizontal central axis of the sealing frame 3, and the left and right sealing frames 3 are symmetrically distributed on the left and right sides of the vertical central axis of the frame type 2.

[0033] Please refer to Figures 2 - 4 , in order to facilitate cleaning the fog on the glass in the door and window, in this embodiment, the connection mechanism 5 includes a battery box 51, a fixing plate 52, a battery pack 53, a circuit board box body 54, a frame-shaped photovoltaic panel 55 and a connection component 56. The battery box 51 is fixed to the lower side of the front of the frame type 2 by bolts. The fixing plate 52 is fixed to the front of the battery box 51 by bolts. The battery pack 53 is assembled inside the battery box 51. The circuit board box body 54 is fixed to the right side of the battery box 51. The frame-shaped photovoltaic panel 55 is arranged on the back of the frame type 2. Both the battery pack 53 and the frame-shaped photovoltaic panel 55 are electrically connected to the circuit board box body 54 through wires.

[0034] In this embodiment, the connection component 56 includes a first transparent tempered glass 561, an electrically controlled transparent heating layer 562, a second transparent tempered glass 563, three USB interfaces 564, a display screen 565, and two operation buttons 566. The first transparent tempered glass 561 is fixed inside the sealing frame 3 through sealant. The electrically controlled transparent heating layer 562 is fixed inside the sealing frame 3 through sealant. The second transparent tempered glass 563 is fixed inside the sealing frame 3 through sealant. The double-layer glass composed of the first transparent tempered glass 561 and the second transparent tempered glass 563 can isolate the heat inside and outside the room, reduce heat loss, and make the door and window system energy-saving. The sealing frame 3 is hermetically closed inside the frame type 2. The three USB interfaces 564 are all arranged on the front of the circuit board box body 54, and the display screen 565 is arranged on the front of the circuit board box body 54.

[0035] In this embodiment, the two operation buttons 566 are both arranged on the front of the circuit board box body 54. The electrically controlled transparent heating layer 562, the two operation buttons 566, the three USB interfaces 564, and the display screen 565 are all electrically connected to the circuit board box body 54 through wires. The frame-shaped photovoltaic panel 55 is located on the back of the frame type 2, which is equivalent to being outside the window. Power can be generated through the frame-shaped photovoltaic panel 55 and stored inside the battery pack 53 through the circuit board box body 54.

[0036] The electrically controlled transparent heating layer 562 is located behind the first transparent tempered glass 561. The second transparent tempered glass 563 is located behind the electrically controlled transparent heating layer 562. The operation button 566 is located on the right side of the display screen 565. The display screen 565 is located on the right side of the USB interface 564. The frame-shaped photovoltaic panel 55 is located on the longitudinal central axis of the frame type 2. The first transparent tempered glass 561 and the second transparent tempered glass 563 are symmetrically distributed on the front and back sides of the transverse central axis of the sealing frame 3.

[0037] It should be noted that by operating the operation button 566, the electrically controlled transparent heating layer 562 can be heated, and then the fog on the first transparent tempered glass 561 and the second transparent tempered glass 563 can be cleared and volatilized. The three USB interfaces 564 can be used to charge the mobile phone, improving the energy-saving performance of the door and window system. The remaining power inside the battery pack 53 can be viewed through the display screen 565, thereby improving the practicality.

[0038] The working principle of the above embodiment is as follows:

[0039] The double-layer glass composed of the first transparent tempered glass 561 and the second transparent tempered glass 563 can isolate the heat inside and outside the room, reduce heat loss, and make the door and window system energy-saving. The sealing frame 3 is hermetically closed inside the frame type 2. The frame-shaped photovoltaic panel 55 is located on the back of the frame type 2, which is equivalent to being outside the window. Electricity can be generated through the frame-shaped photovoltaic panel 55 and stored in the internal battery pack 53 through the circuit board box 54. By operating the operation button 566, the electrochromic transparent heating layer 562 can be heated, and then the fog on the first transparent tempered glass 561 and the second transparent tempered glass 563 can be cleared and volatilized. Charging for mobile phones can be carried out through three USB interfaces 564, improving the energy-saving performance of the door and window system. The remaining power inside the battery pack 53 can be viewed through the display screen 565, thereby enhancing the practicality.

Claims

1. A building energy-saving door and window system, comprising a wall (1), characterized in that: The wall (1) is sealed inside with a frame (2), the frame (2) is rotatably connected to two sealing frames (3) via hinges, a handle (4) is fixed on the front of the sealing frame (3), and a connecting mechanism (5) is provided on the front of the frame (2); The connecting mechanism (5) comprises a battery frame (51), a fixing plate (52), a battery pack (53), a circuit board box (54), a frame-shaped photovoltaic panel (55) and a connecting assembly (56); the battery frame (51) is fixed to the lower side of the front side of the frame (2) by means of bolts; the fixing plate (52) is fixed to the front side of the battery frame (51) by means of bolts; the battery pack (53) is assembled inside the battery frame (51); the circuit board box (54) is fixed to the right side of the battery frame (51); the frame-shaped photovoltaic panel (55) is arranged on the back side of the frame (2); and the battery pack (53) and the frame-shaped photovoltaic panel (55) are both electrically connected to the circuit board box (54) by means of wires.

2. The building energy-saving door and window system according to claim 1, characterized in that: The connection component (56) comprises a first transparent tempered glass (561), an electrically transparent heating layer (562), a second transparent tempered glass (563), three USB interfaces (564), a display screen (565), and two operating buttons (566); the first transparent tempered glass (561) is fixed to the inside of the sealing frame (3) by means of a sealant; the electrically transparent heating layer (562) is fixed to the inside of the sealing frame (3) by means of a sealant; the second transparent tempered glass (563) is fixed to the inside of the sealing frame (3) by means of a sealant; the three USB interfaces (564) are all arranged on the front side of the circuit board box (54); the display screen (565) is arranged on the front side of the circuit board box (54); the two operating buttons (566) are all arranged on the front side of the circuit board box (54); and the electrically transparent heating layer (562), the two operating buttons (566), the three USB interfaces (564), and the display screen (565) are all electrically connected to the circuit board box (54) by means of wires.

3. The building energy-saving door and window system according to claim 2, characterized in that: The electrically transparent heating layer (562) is located on the rear side of the first transparent tempered glass (561), and the second transparent tempered glass (563) is located on the rear side of the electrically transparent heating layer (562).

4. The building energy-saving door and window system according to claim 2, characterized in that: The operation button (566) is located on the right side of the display screen (565), and the display screen (565) is located on the right side of the USB interface (564).

5. The building energy-saving door and window system according to claim 1, characterized in that: The handle (4) is located on the transverse center axis of the sealing frame (3).

6. The building energy-saving door and window system according to claim 1, characterized in that: The frame-shaped photovoltaic panel (55) is located on the longitudinal center axis of the frame (2).

7. The building energy-saving door and window system according to claim 1, characterized in that: The left and right sealing frames (3) are symmetrically distributed on the left and right sides of the longitudinal center axis of the frame (2).

8. The building energy-saving door and window system according to claim 2, characterized in that: The first transparent tempered glass (561) and the second transparent tempered glass (563) are symmetrically distributed on the front and rear sides of the transverse central axis of the sealing frame (3).

Citation Information

Patent Citations

  • Building energy-saving door and window system

    CN217481159U