Energy-saving window mounting structure

By using hot-dip galvanized connectors, double-glazed windows, and expanding foam sealant in the window design, combined with high-performance insulation materials and window sill stone, the heat exchange problem of traditional windows is solved, achieving higher energy-saving effects.

CN224134502UActive Publication Date: 2026-04-17SHENZHEN HUAZHU TECH CONSTR GRP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN HUAZHU TECH CONSTR GRP CO LTD
Filing Date
2025-04-28
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Traditional sliding windows are active in heat exchange within the building envelope, leading to heat loss in winter and external heat intrusion in summer. Existing energy-saving window designs have failed to effectively address the issues of window frame sealing and wall insulation performance.

Method used

It is fixed to the building wall with hot-dip galvanized connectors, and uses double-glazed glass filled with high-performance thermal insulation materials and inert gas. Combined with foam sealing and window sill stone design, it forms a multi-layer thermal insulation structure to prevent cold air penetration and warm air leakage.

Benefits of technology

It improves the heat insulation performance of windows, reduces heat loss, enhances the overall energy efficiency of windows, and prevents cold air infiltration and warm air leakage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an energy-saving window mounting structure, which comprises a hot galvanizing connecting piece fixed on a building wall body, and an energy-saving window frame and an energy-saving window sash which are arranged between a window inclined cornice and a windowsill stone, and is characterized in that the energy-saving window frame comprises an inner window sash and an outer window sash, the upper part of the inner window sash consists of two pieces of low glass, and the lower part of the outer window sash consists of two pieces of low glass; a hollow layer is formed between the low glass, an inner cavity is formed in the upper portion of the inner window sash, and a guide wheel is arranged in the inner cavity and used for connecting the energy-saving window sash and the energy-saving window frame. The energy-saving window frame is fixed to the building wall through the hot galvanizing connecting piece, polystyrene foam is filled in a gap between the energy-saving window frame and the building wall, and indoor sill stone is slightly higher than an outdoor window inclined cornice, so that cold air permeation and warm air leakage can be effectively prevented, and the energy-saving efficiency of the window is further improved; meanwhile, accumulated water in the energy-saving window frame can be discharged outdoors along the window inclined cornice.
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Description

Technical Field

[0001] This utility model specifically relates to an energy-saving window installation structure, belonging to the field of door and window engineering technology. Background Technology

[0002] The construction industry faces pressure to improve energy efficiency and reduce carbon emissions. Windows, as an important component of the building envelope, are one of the key parts for heat exchange.

[0003] Traditional sliding windows are often among the most active heat-conducting parts of a building envelope, leading to heat loss in winter and heat intrusion in summer. Therefore, energy-efficient window design prioritizes improving insulation performance, including the use of double or triple glazing, low-emissivity (Low-E) coatings, and inert gas filling. To minimize energy loss due to air leakage, special attention must be paid to the seal between the window frame and the wall during installation. High-performance sealing materials and structural features effectively prevent cold air infiltration and warm air leakage, further enhancing window energy efficiency. Therefore, improving window insulation is crucial for enhancing the overall energy efficiency of a building.

[0004] Therefore, in view of the shortcomings of the existing technology, an energy-saving window installation structure is proposed. Utility Model Content

[0005] The purpose of this utility model is to provide an energy-saving window installation structure to solve the problems mentioned in the background art.

[0006] This utility model achieves the above-mentioned objective through the following technical solution: an energy-saving window installation structure, comprising hot-dip galvanized connectors fixed to the building wall, an energy-saving window frame and an energy-saving window sash installed between the window eaves and the window sill stone, characterized in that the energy-saving window frame includes an inner window sash and an outer window sash, the upper part of the inner window sash is composed of two low-e glass panes forming a hollow layer between the low-e glass panes, the upper part of the inner window sash is provided with an inner cavity, and the inner cavity is provided with guide wheels for connecting the energy-saving window sash and the energy-saving window frame.

[0007] Furthermore, the energy-saving window sash uses high-performance thermal insulation materials.

[0008] Furthermore, the internal structure of the inner window sash and the outer window sash are identical.

[0009] Furthermore, the hollow layer is filled with an inert gas to reduce heat loss.

[0010] Furthermore, the hot-dip galvanized connector is fixed to the building wall using expanding foam.

[0011] Furthermore, the windowsill stone is higher than the window sloping eaves to prevent cold air from penetrating.

[0012] Furthermore, the energy-saving window frame includes an outer frame, an inner frame, and a thermal insulation strip. Both the outer frame and the inner frame are provided with a slot, a guide rail, and a thermal insulation strip groove. The slot is located at the lower end of the energy-saving window frame for fixed connection with the hot-dip galvanized connector. The guide rail is located at the upper end of the energy-saving window frame for the guide wheels to push and pull.

[0013] Furthermore, the heat insulation strip is located between the outer frame and the inner frame, and multiple sets of the heat insulation strip are fixedly connected through heat insulation strip grooves.

[0014] Furthermore, the upper guide rail of the inner frame is provided with sealing strip grooves on both sides for connecting the sealing strip to the inner frame.

[0015] Furthermore, the hot-dip galvanized connector is provided with a hook and a fixing plate. The hook is snapped into the slot, and the fixing plate is fixedly connected to the building wall by a cement nail.

[0016] The beneficial effects of this utility model are:

[0017] The energy-saving window frame of this utility model is fixed to the building wall with hot-dip galvanized connectors, and the gap between the two is filled with expanding foam. The indoor window sill stone is slightly higher than the outdoor window eaves, which can effectively prevent cold air penetration and warm air leakage, thereby further improving the energy efficiency of the window. At the same time, it is conducive to the drainage of water accumulated in the energy-saving window frame to the outside along the window eaves. In addition, the energy-saving window sash is also made of heat insulation material, which effectively reduces the heat loss caused by the transfer of heat through the window sash. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of this utility model;

[0019] Figure 2 This is a schematic diagram of the installation structure of this utility model;

[0020] Figure 3 This is an exploded view of the energy-saving window frame of this utility model;

[0021] Figure 4 This is a schematic diagram of the hot-dip galvanized connector of this utility model;

[0022] In the diagram: 1. Energy-saving window sash; 1.1. Inner sash window; 1.2. Outer sash window; 1.21. Insulating layer; 1.22. Lowe glass; 1.23. Sealant; 1.24. Inner cavity; 1.25. Guide roller; 2. Energy-saving window frame; 2.1. Outer frame; 2.14. Slot; 2.15. Thermal insulation strip groove; 2.16. Guide rail; 2.17. Sealant strip groove; 2.2. Inner frame; 2.3. Thermal insulation strip; 2.4. Sealant strip; 3. Hot-dip galvanized connectors; 3.1. Expanding foam; 3.2. Fixing plate; 3.3. Hook; 4. Building wall; 5. Window sill stone; 6. Window eaves; 7. Insulation layer; 8. Cement nail. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0024] Please see Figures 1-4 As shown, Figures 1-4 The diagram schematically illustrates an energy-saving window mounting structure according to the present invention.

[0025] An energy-saving window installation structure includes a hot-dip galvanized connector 3 fixed to a building wall 4, an energy-saving window frame 2 and an energy-saving window sash 1 installed between the window eaves 6 and the window sill stone 5. The energy-saving window frame 2 includes an inner window sash 1.1 and an outer window sash 1.2. The upper part of the inner window sash 1.1 is composed of two low-e glass panes 1.22, with a hollow layer 1.21 formed between the low-e glass panes 1.22. The upper part of the inner window sash 1.1 is provided with an inner cavity 1.24, and a guide wheel 1.25 is provided inside the inner cavity 1.24 for connecting the energy-saving window sash 1 and the energy-saving window frame 2.

[0026] The inner cavity 1.24 serves as both a mounting position for the guide wheel 1.25 and a concealment point for the guide wheel 1.25. The guide wheel 1.25 facilitates the connection between the energy-saving window sash 1 and the energy-saving window frame 2 on the 2.16 guide rail, which makes it easier and more convenient to operate the window when it is being moved and pushed.

[0027] Furthermore, the energy-saving window sash 1 uses high-performance thermal insulation materials.

[0028] Among them, the energy-saving window sash 1 is fixed with double-layer low-emissivity glass and energy-saving window frame 2.

[0029] Furthermore, the internal structures of the inner window sash 1.1 and the outer window sash 1.2 are identical.

[0030] The internal structure of the inner window sash 1.1 is the same as that of the outer window sash 1.2, so the details of the outer window sash 1.2 will not be described here.

[0031] Furthermore, the hollow layer 1.21 is filled with inert gas to reduce heat loss.

[0032] Filling with inert gas also helps reduce heat loss through the energy-saving window sash 1 and energy-saving window frame 2.

[0033] Furthermore, the hot-dip galvanized connector 3 is fixed to the building wall 4 using expanding foam 3.1.

[0034] Furthermore, the window sill stone 5 is higher than the window eaves 6 to prevent cold air from penetrating.

[0035] Among them, the indoor window sill stone 5 is slightly higher than the outdoor window eaves 6, which can effectively prevent cold air from penetrating and warm air from leaking out, thereby further improving the energy efficiency of the window. At the same time, it is conducive to the drainage of water accumulated in the energy-saving window frame to the outside along the window eaves.

[0036] Furthermore, the energy-saving window frame 2 includes an outer frame 2.1, an inner frame 2.2, and a thermal insulation strip 2.3. Both the outer frame 2.1 and the inner frame 2.2 are provided with a slot 2.14, a guide rail 2.16, and a thermal insulation strip groove 2.15. The slot 2.14 is located at the lower end of the energy-saving window frame 2 for fixed connection with the hot-dip galvanized connector 3. The guide rail 2.16 is located at the upper end of the energy-saving window frame 2 for the guide wheel 1.25 to push and pull.

[0037] Furthermore, the thermal insulation strip 2.3 is located between the outer frame 2.1 and the inner frame 2.2, and multiple sets of thermal insulation strips 2.3 are fixedly connected through the thermal insulation strip groove 2.15.

[0038] Among them, the heat insulation groove 2.15 is located symmetrically on the outer frame 2.1 and the inner frame 2.2.

[0039] Furthermore, the upper guide rail 2.16 of the inner frame 2.2 is provided with sealing strip grooves 2.17 on both sides for connecting the sealing strip 2.4 to the inner frame 2.2.

[0040] Among them, the thermal insulation strip 2.3 combines the outer frame 2.1 and the inner frame 2.2 to form an energy-saving window frame 2, while separating the inner and outer window frames to form a thermal break, which greatly reduces the possibility of heat being conducted through the window frame.

[0041] When the energy-saving window sash 1 and the energy-saving window frame 2 are combined and connected, the sealing strip 2.4 contacts the inner window sash 1.1 and the outer window sash 1.2 respectively, which effectively improves the sealing performance between the energy-saving window sash 1 and the energy-saving window frame 2.

[0042] Furthermore, the hot-dip galvanized connector 3 is provided with a hook 3.3 and a fixing piece 3.2. The hook 3.3 and the slot 2.14 are fastened together, and the fixing piece 3.2 is fixedly connected to the building wall 4 by a cement nail 8.

[0043] The beneficial effects of this utility model are:

[0044] The energy-saving window frame of this utility model is fixed to the building wall with hot-dip galvanized connectors, and the gap between the two is filled with expanding foam. The indoor window sill stone is slightly higher than the outdoor window eaves, which can effectively prevent cold air penetration and warm air leakage, thereby further improving the energy efficiency of the window. At the same time, it is conducive to the drainage of water accumulated in the energy-saving window frame to the outside along the window eaves. In addition, the energy-saving window sash is also made of heat insulation material, which effectively reduces the heat loss caused by the transfer of heat through the window sash.

[0045] Installation steps of this utility model:

[0046] Step 1: First, install the energy-saving window frame 2 on the building wall 4. Before installing the window frame, verify the opening size and the window frame size.

[0047] Step 2: The energy-saving window frame 2 is pre-connected to the hook 3.3 on the hot-dip galvanized connector 3. The fixing piece 3.2 on the hot-dip galvanized connector 3 is fixed to the building wall 4 with cement nails 8. The gap between the hot-dip galvanized connector 3 and the building wall 4 is filled with expanding foam 3.1 to complete the installation of the energy-saving window frame 2.

[0048] Step 3: Pre-install the sealing strip 2.4 at the sealing strip groove 2.17 position on the energy-saving window frame 2, and then install the energy-saving window sash 1 at the guide rail 2.16 position on the energy-saving window frame 2, so that the guide wheel 1.25 can contact the guide rail 2.16 to ensure that the energy-saving window frame 2 can be pushed and pulled freely;

[0049] Step 4: Install the insulation layer 7 on the outdoor side of the energy-saving window frame 2, and construct the window sloping eaves 6. Install the window sill stone 5 on the indoor side of the energy-saving window frame 2, ensuring that the horizontal elevation of the indoor window sill stone 5 is slightly higher than that of the outdoor window sloping eaves 6.

[0050] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0051] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A structure for installing energy saving windows, comprising a hot-dipped galvanized connecting member fixed to a building wall, an energy saving window frame and an energy saving window sash installed between a window eave and a window sill, characterized in that, The energy-saving window frame includes an inner window sash and an outer window sash. The upper part of the inner window sash consists of two low-e glass panes with a hollow layer between them. The upper part of the inner window sash has an inner cavity with guide wheels inside for connecting the energy-saving window sash and the energy-saving window frame.

2. An energy saving window mounting structure as defined in claim 1, wherein The energy-saving window sash uses high-performance thermal insulation materials.

3. An energy saving window mounting structure as defined in claim 2, wherein The internal structure of the inner window sash is the same as that of the outer window sash.

4. An energy saving window mounting structure as defined in claim 3, wherein The hollow layer is filled with inert gas to reduce heat loss.

5. An energy saving window mounting structure as defined in claim 4 wherein, The hot-dip galvanized connectors are fixed to the building walls using expanding foam.

6. An energy saving window mounting structure as defined in claim 5, wherein The stone sill is higher than the eaves of the window to prevent cold air from penetrating.

7. An energy saving window mounting structure as defined in claim 6 wherein, The energy-saving window frame includes an outer frame, an inner frame, and a thermal insulation strip. Both the outer frame and the inner frame are provided with a slot, a guide rail, and a thermal insulation strip groove. The slot is located at the lower end of the energy-saving window frame and is used to fix it to the hot-dip galvanized connector. The guide rail is located at the upper end of the energy-saving window frame and is used for the guide wheels to push and pull.

8. An energy saving window mounting structure as defined in claim 7, wherein The heat insulation strip is located between the outer frame and the inner frame, and multiple sets of the heat insulation strip are fixedly connected through heat insulation strip grooves.

9. An energy saving window mounting structure as defined in claim 7, wherein The upper guide rail of the inner frame is also provided with sealing strip grooves on both sides for connecting the sealing strip to the inner frame.

10. An energy saving window mounting structure as defined in claim 7, wherein The hot-dip galvanized connector is provided with a hook and a fixing plate. The hook is connected to the slot by a snap-fit, and the fixing plate is fixedly connected to the building wall by a cement nail.