A thermally insulated window frame structure

By introducing a heat-conducting layer and a heat-insulating layer into the window frame, the problem of heat diffusion from the window frame into the room is solved, resulting in better heat insulation and structural stability, and extending the service life of the window.

CN117588136BActive Publication Date: 2026-04-03SHENZHEN QIANLIMA DECORATION GRP CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-08
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The existing window frame structure lacks thermal insulation design, causing heat to diffuse from the frame structure into the room, affecting the indoor environment.

Method used

A heat-conducting layer and a heat-insulating layer are introduced into the window frame structure. The heat-conducting layer conducts heat from the outer frame to the wall through the heat-conducting frame and heat-conducting nails, while the heat-insulating layer prevents heat from dissipating into the room. The outer frame is designed as a hollow structure to reduce heat absorption.

Benefits of technology

It effectively prevents heat from entering the room from the outer frame, maintains a stable indoor temperature, and improves the window's thermal insulation performance and lifespan.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117588136B_ABST
    Figure CN117588136B_ABST
Patent Text Reader

Abstract

This application provides a heat-insulating window frame structure, including an outer frame, a heat-conducting layer, and a heat-insulating layer. The heat-conducting layer includes a heat-conducting frame and heat-conducting nails. The heat-conducting frame is disposed on the outer frame and is used to conduct heat within the outer frame. A plurality of heat-conducting nails are disposed on the inner circumferential surface of the heat-conducting frame and extend beyond the outer circumferential surface of the heat-conducting frame. The heat-insulating layer is disposed on the heat-conducting layer and is used to prevent heat in the heat-conducting layer from dissipating into the room. The heat-insulating window frame structure provided above solves the problem of heat entering the room from the outer frame by setting a heat-conducting layer on the outer frame and guiding the heat absorbed by the outer frame into the wall through the heat-conducting layer.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of door and window structure technology, and in particular to a heat-insulating window frame structure. Background Technology

[0002] As the number of houses continues to increase, people are also expanding the scope of window usage. Some windows are exposed to extreme environments, such as high temperature and strong light. The magnetic poles of light and high temperature can be conducted into the room through the window, affecting the indoor environment.

[0003] CN 217233323 U proposes a window with a heat-insulating structure. By installing a light-blocking structure that can be retracted and extended by a motor in front of the window's light-transmitting structure, the light-blocking structure can be lowered by controlling the motor when light needs to be blocked, thus blocking sunlight. By setting a glass body, a reflective film, and a heat-insulating film in the light-transmitting structure, heat can be prevented from entering the room through the glass.

[0004] However, the lack of insulation in the frame structure allows heat to diffuse from the frame structure into the room, which is detrimental to the window's insulation. Summary of the Invention

[0005] In view of this, it is necessary to provide a heat-insulating window frame structure to solve the above problems.

[0006] Embodiments of this application provide a heat-insulating window frame structure, comprising:

[0007] Outer frame;

[0008] A heat-conducting layer includes a heat-conducting frame and heat-conducting pins. The heat-conducting frame is disposed on the outer frame and is used to conduct heat within the outer frame. A plurality of heat-conducting pins are disposed on the inner circumferential surface of the heat-conducting frame and extend out of the outer circumferential surface of the heat-conducting frame.

[0009] A heat insulation layer is provided on the heat-conducting layer to prevent heat from the heat-conducting layer from dissipating into the room.

[0010] In at least one embodiment of this application, a light-shielding layer and a light-transmitting panel are provided on the inner peripheral surface of the outer frame. The light-shielding layer is used to block light, and the light-transmitting panel is used to transmit light.

[0011] In at least one embodiment of this application, the outer frame is provided with a first mounting groove and a second mounting groove, and the first mounting groove is mortise and tenon connected to the light-shielding layer and the second mounting groove is mortise and tenon connected to the light-transmitting panel.

[0012] In at least one embodiment of this application, the outer frame is a hollow structure to reduce the volume of the outer frame, thereby reducing the heat absorbed by the outer frame when it heats up.

[0013] In at least one embodiment of this application, the outer frame includes a frame body and a mounting bracket, the mounting bracket being used to bolt to the frame body after the light-transmitting panel is placed on the frame body, thereby fixing the light-transmitting panel inside the outer frame.

[0014] In at least one embodiment of this application, the mounting bracket is provided with a limiting groove for restricting the movement of the light-transmitting panel.

[0015] In at least one embodiment of this application, the heat-conducting frame is provided with screw holes, and the heat-conducting nail is provided with threads corresponding to the screw holes, so as to fix the heat-conducting nail and the heat-conducting frame by threaded connection.

[0016] In at least one embodiment of this application, the thermally conductive layer is provided with a boss that extends into the outer frame to increase the contact area with the outer frame, thereby increasing the thermal conductivity.

[0017] In at least one embodiment of this application, the materials of the heat-conducting nail and the heat-conducting frame are copper.

[0018] In at least one embodiment of this application, silicone grease is provided between the thermally conductive layer and the outer frame to increase the contact area between the outer frame and the thermally conductive layer.

[0019] The aforementioned heat-insulating window frame structure solves the problem of heat entering the room from the outer frame by setting a heat-conducting layer on the outer frame. This is achieved by introducing a heat-conducting layer into the wall through the outer frame, preventing heat from entering the room along the outer frame. Attached Figure Description

[0020] Figure 1 This is a three-dimensional diagram of the frame structure of an insulated window.

[0021] Figure 2 for Figure 1 An exploded view of the heat-insulating window frame structure after concealing the light-blocking layer, light-transmitting panel, and heat-conducting nails.

[0022] Figure 3 This is a 3D view of the heat-conducting nail.

[0023] Explanation of main component symbols

[0024] 100. Insulated window frame structure; 10. Outer frame; 11. First mounting groove; 12. Second mounting groove; 13. Frame body; 14. Mounting bracket; 141. Limiting groove; 20. Heat-conducting layer; 21. Heat-conducting frame; 211. Screw hole; 212. Boss; 22. Heat-conducting nail; 221. Thread; 30. Heat insulation layer; 40. Light-blocking layer; 50. Light-transmitting panel. Detailed Implementation

[0025] The embodiments of this application will now be described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.

[0026] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or may also have an intervening component. When a component is considered to be "placed" on another component, it can be directly placed on the other component or may also have an intervening component. The terms "top," "bottom," "upper," "lower," "left," "right," "front," "back," and similar expressions used in this article are for illustrative purposes only.

[0027] Embodiments of this application provide a heat-insulating window frame structure, comprising:

[0028] Outer frame;

[0029] A heat-conducting layer includes a heat-conducting frame and heat-conducting pins. The heat-conducting frame is disposed on the outer frame and is used to conduct heat within the outer frame. A plurality of heat-conducting pins are disposed on the inner circumferential surface of the heat-conducting frame and extend out of the outer circumferential surface of the heat-conducting frame.

[0030] A heat insulation layer is provided on the heat-conducting layer to prevent heat from the heat-conducting layer from dissipating into the room.

[0031] The aforementioned heat-insulating window frame structure solves the problem of heat entering the room from the outer frame by setting a heat-conducting layer on the outer frame. This is achieved by introducing a heat-conducting layer into the wall through the outer frame, preventing heat from entering the room along the outer frame.

[0032] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.

[0033] Please see Figures 1-3 This application provides a heat-insulating window frame structure 100, including an outer frame 10, a heat-conducting layer 20, and a heat-insulating layer 30. The heat-conducting layer 20 includes a heat-conducting frame 21 and heat-conducting nails 22. The heat-conducting frame 21 is disposed on the outer frame 10 and is used to conduct heat in the outer frame 10. A plurality of heat-conducting nails 22 are disposed on the inner circumferential surface of the heat-conducting frame 21 and extend out of the outer circumferential surface of the heat-conducting frame 21. The heat-insulating layer 30 is disposed on the heat-conducting layer 20 and is used to prevent heat in the heat-conducting layer 20 from dissipating into the room.

[0034] Specifically, the outer frame 10 is the foundation of the entire insulated window frame structure 100. It surrounds and supports the entire system, including the heat-conducting layer 20 and the heat-insulating layer 30. The main function of the heat-conducting layer 20 is to conduct heat from the outer frame 10, guiding the heat away from the outer frame 10 to the wall for dissipation. The heat-conducting frame 21 is bolted to the outer frame 10, allowing heat to be conducted from the outer frame 10 to the heat-conducting layer 20. Multiple heat-conducting nails 22 are installed on the heat-conducting frame 21, increasing the contact area between the heat-conducting layer 20 and the wall, increasing the speed of heat transfer into the wall, thereby preventing the interior from overheating. The heat-insulating layer 30 is located above the heat-conducting layer 20, preventing heat from the heat-conducting layer 20 from dissipating into the interior. This layer is usually made of rock wool, which can effectively isolate heat conduction between the interior and the heat-conducting layer 20, keeping the interior relatively cool.

[0035] Furthermore, when the outside temperature is high, the outer frame 10 absorbs heat. The heat-conducting frame 21 transfers this heat from the outer frame 10 to the heat-conducting layer 20, and the heat-conducting nails 22 conduct the heat into the wall. At the same time, due to the presence of the insulation layer 30, the heat cannot be further transferred into the room.

[0036] In one specific example, the inner circumferential surface of the outer frame 10 is provided with a light-shielding layer 40 and a light-transmitting panel 50. The light-shielding layer 40 is used to block light, and the light-transmitting panel 50 is used to transmit light.

[0037] Specifically, when light needs to be blocked, users can choose to lower the light-blocking layer 40 to block bright outside light. This is useful in situations such as presentations, media viewing, or when privacy is required. When natural light or light from outside the window is needed, users can choose to retract the light-blocking layer 40 to allow light to enter the room through the window. This helps to provide a sense of openness and increase natural light in the room.

[0038] In a specific example, the outer frame 10 is provided with a first mounting groove 11 and a second mounting groove 12, and the first mounting groove 11 is mortised and tenoned with the light-shielding layer 40 and the second mounting groove 12 is mortised and tenoned with the light-transmitting panel 50.

[0039] Specifically, the first mounting groove 11 is a recess on the outer frame 10 used to accommodate the edge portion of the light-blocking layer 40. A mortise and tenon joint is a traditional connection method, typically consisting of a tenon and a mortise, with the tenon inserted into the mortise to connect the two components. In this case, the first mounting groove 11 on the outer frame 10 acts as the mortise, while the edge portion of the light-blocking layer 40 acts as the tenon. This connection method allows the light-blocking layer 40 to be securely mounted on the outer frame 10, ensuring it won't easily detach. This mortise and tenon joint provides a stable fixation, ensuring the light-blocking layer 40 adheres tightly to the outer frame 10, preventing light leakage through the edges of the light-blocking layer 40. This helps achieve a better light-blocking effect, effectively controlling indoor light. The mortise and tenon connection between the second mounting groove 12 and the light-transmitting panel 50 is similar to the connection between the first mounting groove 11 and the light-blocking layer 40. The second mounting groove 12 is another recess on the outer frame 10 used to accommodate the edge portion of the light-transmitting panel 50. The edge portion of the light-transmitting panel 50 acts as a tenon, inserting into the second mounting groove 12 to connect with the outer frame 10. The tenon-and-mortise connection between the second mounting groove 12 and the light-transmitting panel 50 ensures that the light-transmitting panel 50 is tightly embedded in the outer frame 10, preventing displacement or loosening during use. This helps maintain the window's thermal insulation and sealing performance.

[0040] Furthermore, during installation, the edges of the light-shielding layer 40 and the light-transmitting panel 50 are respectively inserted into the first mounting groove 11 and the second mounting groove 12 to achieve a mortise and tenon connection. This can be accomplished by applying slight insertion pressure or gently pressing down.

[0041] In one specific example, the outer frame 10 is a hollow structure, which is used to reduce the volume of the outer frame 10, thereby reducing the heat absorbed by the outer frame 10 when it heats up.

[0042] Specifically, the hollow design of the outer frame 10 reduces its mass, thus absorbing less heat during hot summer weather, thereby slowing down the rate of indoor temperature rise. The hollow structure effectively reduces heat transfer between the outer frame 10 and the indoor / outdoor temperature difference, improving the window's insulation performance. This helps maintain a stable indoor temperature and reduces heat loss. Compared to a solid structure, the hollow structure reduces material usage, making the window lighter overall and easier to install and maintain.

[0043] Furthermore, the shape and structure of the outer frame 10 are designed to be hollow. This means that the edges and interior of the outer frame 10 are hollow, without any solid filling material. This structure can be manufactured through appropriate processes or molds to ensure the strength and stability of the outer frame 10.

[0044] In one specific example, the outer frame 10 includes a frame body 13 and a mounting bracket 14. The mounting bracket 14 is used to bolt the light-transmitting panel 50 to the frame body 13 after it is placed on the frame body 13, thereby fixing the light-transmitting panel 50 inside the outer frame 10.

[0045] Specifically, the mounting bracket 14, as a key component of the outer frame 10, is used to secure the light-transmitting panel 50 to the inside of the outer frame 10 via bolts after it has been placed on the frame 13. This ensures that the light-transmitting panel 50 is securely fixed and will not loosen or fall off. The design of the mounting bracket 14 enhances the overall stability of the window frame, reduces the risk of deformation or displacement, and thus extends the service life of the window. The bolted connection also allows the light-transmitting panel 50 to be relatively easily disassembled and replaced, facilitating maintenance and cleaning.

[0046] Furthermore, during the manufacturing process, the frame 13 of the outer frame 10 is first manufactured. This frame 13 can be made of metal, plastic, or other suitable materials. The mounting bracket 14 is designed to connect to a specific part of the frame 13, and it is placed on top of the frame 13 after the light-transmitting panel 50 is prepared. Then, the position of the mounting bracket 14 is precisely aligned with the edge of the light-transmitting panel 50, and the mounting bracket 14 is fixedly connected to the frame 13 using connecting elements such as bolts. This can be achieved by tightening the bolts to establish a stable mechanical connection between the mounting bracket 14 and the frame 13.

[0047] In one specific example, the mounting bracket 14 is provided with a limiting groove 141 to restrict the movement of the light-transmitting panel 50.

[0048] Specifically, the presence of the limiting groove 141 effectively restricts the movement range of the light-transmitting panel 50. This is crucial for ensuring proper window installation and preventing excessive movement or detachment of the light-transmitting panel 50. By limiting the movement of the light-transmitting panel 50, the stability of the entire window structure can be improved. This helps reduce panel swaying, collisions, and other issues, maintaining the window's normal usability.

[0049] Furthermore, during the manufacturing process, the designer added a limiting groove 141 to the design of the mounting bracket 14. These grooves can be located at specific positions on the mounting bracket 14, and their dimensions match the size and range of movement of the light-transmitting panel 50. When the light-transmitting panel 50 is placed on the mounting bracket 14, its edge may contact the corresponding position of the limiting groove 141. When the light-transmitting panel 50 is moved, its edge will move within the limiting groove 141 until it reaches the boundary of the groove. At this point, the movement of the light-transmitting panel 50 will be restricted because its edge can no longer move, thereby ensuring the stability of the position of the light-transmitting panel 50.

[0050] In one specific example, the heat-conducting frame 21 has a screw hole 211, and the heat-conducting nail 22 has a thread 221 corresponding to the screw hole 211, so that the heat-conducting nail 22 and the heat-conducting frame 21 are connected and fixed by the thread 221.

[0051] Specifically, the heat-conducting nail 22 and the heat-conducting frame 21 are securely connected via the threaded connection 221. This ensures the structural stability of the window frame, preventing it from loosening or falling off during use. The physical contact between the heat-conducting nail 22 and the heat-conducting frame 21 via the threaded connection effectively transfers heat from the outer frame 10, helping to maintain the thermal insulation effect of the window frame. The threaded connection 221 reduces the force and vibration experienced by the window structure, improving the durability of the window frame and extending its service life.

[0052] Furthermore, during the manufacturing process, screw holes 211 are pre-drilled on the heat-conducting frame 21. The positions of these screw holes 211 correspond to the positions of the heat-conducting pins 22, and the heat-conducting pins 22 are provided with threads 221 corresponding to the screw holes 211 of the heat-conducting frame 21. During installation, the heat-conducting pins 22 are inserted into the screw holes 211 on the heat-conducting frame 21, and the heat-conducting pins 22 are rotated so that their threads 221 engage with the screw holes 211. Through rotation, the heat-conducting pins 22 will gradually enter the heat-conducting frame 21 until the appropriate tightness is achieved, thereby fixing the heat-conducting pins 22 on the heat-conducting frame 21.

[0053] In one specific example, the heat-conducting frame 21 is provided with a boss 212, which extends into the outer frame 10 to increase the contact area with the outer frame 10, thereby increasing the heat conduction efficiency.

[0054] Specifically, the presence of the boss 212 increases the contact area between the heat-conducting frame 21 and the outer frame 10. A larger contact area means more heat can be transferred through physical contact, thus improving thermal conductivity. By increasing the contact area, the boss 212 can better facilitate heat conduction. Heat will be transferred more efficiently from the outer frame 10 to the heat-conducting frame 21, and then to other parts, thereby better achieving the intended function of the insulated window.

[0055] Furthermore, during the manufacturing process, a boss 212 structure is added or formed on the upper or side surface of the heat-conducting frame 21. The boss 212 can be a protruding, expanded, or raised structure, and its size and shape will affect the contact area with the outer frame 10. During installation, the contact area between the heat-conducting frame 21 and the outer frame 10 increases because the boss 212 extends into the outer frame 10. This increased contact area will help to transfer heat more effectively.

[0056] In one specific example, the heat-conducting nail 22 and the heat-conducting frame 21 are made of copper.

[0057] Specifically, copper is an excellent thermal conductor with high thermal conductivity. This means that when the thermally conductive pins 22 and the thermally conductive frame 21 are made of copper, heat can be transferred to the thermally conductive layer 20 more quickly, thereby improving the overall thermal conductivity. Copper's high thermal conductivity helps to quickly transfer external heat to the thermally conductive layer 20, allowing the insulated window to better control the indoor temperature. This is very important for heating and cooling regulation and energy saving. Copper has good stability and corrosion resistance, which can maintain its performance for a long time and extend the service life of the window structure. Copper has a high specific heat capacity, so its temperature does not rise rapidly when absorbing heat, making it easy to maintain a certain temperature difference, which is beneficial for heat conduction.

[0058] In one specific example, silicone grease is provided between the thermally conductive layer 20 and the outer frame 10 to increase the contact area between the outer frame 10 and the thermally conductive layer 20.

[0059] Specifically, silicone grease is a material with high adhesion and lubricity that can fill the tiny gaps between the thermally conductive layer 20 and the outer frame 10, thereby increasing the contact area between them. By filling the tiny gaps, silicone grease can improve the thermal conductivity between the thermally conductive layer 20 and the outer frame 10, allowing heat to be transferred more effectively from the outer frame 10 to the thermally conductive layer 20, thus achieving better heat insulation.

[0060] The above description is merely an embodiment of this application. It should be noted that those skilled in the art can make improvements without departing from the inventive concept of this application, but these improvements all fall within the protection scope of this application.

Claims

1. A heat-insulating window frame structure, characterized in that, include: The outer frame is a hollow structure, which is used to reduce the volume of the outer frame, thereby reducing the heat absorbed by the outer frame when it heats up; A heat-conducting layer includes a heat-conducting frame and heat-conducting pins. The heat-conducting frame is disposed on the outer frame and is used to conduct heat within the outer frame. A plurality of heat-conducting pins are disposed on the inner circumferential surface of the heat-conducting frame and extend out of the outer circumferential surface of the heat-conducting frame. A heat insulation layer is provided on the heat-conducting layer to prevent heat in the heat-conducting layer from dissipating into the room; The heat-conducting frame is provided with a boss that extends into the outer frame to increase the contact area with the outer frame, thereby increasing the heat conduction efficiency.

2. The heat-insulating window frame structure according to claim 1, characterized in that, The inner circumferential surface of the outer frame is provided with a light-shielding layer and a light-transmitting panel. The light-shielding layer is used to block light, and the light-transmitting panel is used to transmit light.

3. The heat-insulating window frame structure according to claim 2, characterized in that, The outer frame is provided with a first mounting groove and a second mounting groove, and the first mounting groove is connected to the light-shielding layer and the second mounting groove is connected to the light-transmitting panel by tenon and tenon joints.

4. The heat-insulating window frame structure according to claim 2, characterized in that, The outer frame includes a frame body and a mounting bracket. The mounting bracket is used to bolt the light-transmitting panel to the frame body after the light-transmitting panel is placed on the frame body, thereby fixing the light-transmitting panel inside the outer frame.

5. The heat-insulating window frame structure according to claim 4, characterized in that, The mounting bracket is provided with a limiting groove to restrict the movement of the light-transmitting panel.

6. The heat-insulating window frame structure according to claim 1, characterized in that, The heat-conducting frame has screw holes, and the heat-conducting nail has threads corresponding to the screw holes, so that the heat-conducting nail and the heat-conducting frame are fixed by threaded connection.

7. The heat-insulating window frame structure according to claim 1, characterized in that, The heat-conducting nails and the heat-conducting frame are made of copper.

8. The heat-insulating window frame structure according to claim 1, characterized in that, Silicone grease is provided between the thermal conductive layer and the outer frame to increase the contact area between the outer frame and the thermal conductive layer.

Citation Information

Patent Citations

  • Sound-insulation and heat-insulation three-cavity type aluminum alloy door and window frame

    CN211144280U

  • Effective heat insulation structure of window

    CN217233323U