Energy-saving, heat-insulating and noise-reducing glass window for building

By setting up a contraction unit, an extrusion unit and a replacement mechanism, the problem of sealing failure caused by aging of the sealing strip is solved, and the long-term heat insulation and noise reduction effects of the building energy-saving, heat-insulating and noise-reducing glass windows are achieved.

CN120667003AInactive Publication Date: 2025-09-19JIANGSU JIEHAO INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202510947640.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-10
Publication Date
2025-09-19
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the use of existing building energy-saving, heat-insulating and noise-reducing glass windows, the sealing strips or sealants are prone to aging and cracking, allowing outside air and sound to enter, affecting the insulation and noise reduction effects, and it is difficult to effectively solve the problem through a single measure.

Method used

The contraction unit and the extrusion unit are used together to suppress the contraction and expansion deformation of the sealing strip through the extrusion effect of the airbag and the rubber bag, and the damaged sealing strip can be replaced through the replacement mechanism to ensure the sealing effect.

Benefits of technology

It effectively prevents gaps in the sealing strip caused by shrinkage or expansion, maintains good thermal insulation and noise reduction performance, and restores the sealing effect by replacing the mechanism to ensure long-term thermal insulation and noise reduction effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a building energy-saving heat-insulation noise-reduction glass window, and relates to the technical field of building glass windows, the building energy-saving heat-insulation noise-reduction glass window comprises a body mechanism, the body mechanism comprises a window frame main body, a sealing mechanism is arranged in the window frame main body, and the sealing mechanism comprises a contraction unit which is located in the window frame main body; the shrinkage unit is used for inhibiting the shrinkage phenomenon of the sealing strip; the sealing mechanism further comprises an extrusion unit, the extrusion unit is located in the window frame body, the contraction unit is used in cooperation with the extrusion unit, and the extrusion unit is used for reducing the phenomenon that the sealing strip expands and deforms due to the temperature difference. When the sealing strip main body shrinks after being used for a long time, certain pressure is applied to the sealing strip main body, so that the applied pressure inhibits the phenomenon of shrinkage of the sealing strip, the phenomenon of air leakage at the gap between the window frame main body and the glass window main body is avoided, and the good heat insulation and noise reduction effects of the device are guaranteed.
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Description

Technical Field

[0001] The invention relates to the technical field of building glass windows, in particular to a building energy-saving, heat-insulating and noise-reducing glass window. Background Art

[0002] Building energy conservation refers to the method of reducing energy consumption and energy demand as much as possible under the conditions of meeting the same needs or achieving the same purpose during the production of building materials, construction and use of houses and structures. Doors and windows are divided into enclosure components or partition components according to their location, and have different design requirements to have insulation, heat insulation, sound insulation and waterproofing functions.

[0003] When glass windows in the prior art are in use, most of the gaps between the glass windows and the window frames are sealed with sealing strips or sealants. However, most of the sealing strips or sealants are prone to aging and cracking under the influence of ultraviolet rays or temperature difference lamps, thereby allowing outside air and sound to easily enter the interior of the building, thereby reducing the heat insulation and noise reduction effects of the glass windows, and thus reducing the energy saving of the glass windows.

[0004] Combining the above problems, we will find that it is difficult to avoid the above problems at the same time when using the existing building energy-saving, heat-insulating and noise-reducing glass windows on the market. Even if they can be solved, they need to be solved with the cooperation of external tools, which makes it impossible to achieve the desired effect. Therefore, we propose a building energy-saving, heat-insulating and noise-reducing glass window. Summary of the Invention

[0005] The object of the present invention is to provide a building energy-saving, heat-insulating and noise-reducing glass window to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: a building energy-saving, heat-insulating and noise-reducing glass window, comprising a main body mechanism, the main body mechanism comprising a window frame body, the interior of the window frame body being provided with a sealing mechanism; The sealing mechanism includes a contraction unit, which is located inside the window frame body and is used to suppress the contraction of the sealing strip; The sealing mechanism further includes an extrusion unit, which is located inside the window frame body. The contraction unit is used in conjunction with the extrusion unit to reduce the phenomenon of expansion and deformation of the sealing strip caused by temperature difference. A replacement mechanism is provided inside the window frame body. The sealing mechanism is used in conjunction with the replacement mechanism, and the replacement mechanism is used to dismantle a damaged sealing strip.

[0007] Preferably, the contraction unit includes a glass window body, the glass window body is fixedly connected to the inner wall of the window frame body on its outer surface, two groups of sealing strip bodies are provided on the outer surface of the glass window body, two extrusion blocks are fixedly installed on the outer surface of each sealing strip body, two groups of airbag columns are fixedly installed on the outer surface of the glass window body, the outer surface of each airbag column is in contact with the side surfaces of the two extrusion blocks that are close to each other, the outer surface of each airbag column is fixedly connected to a delivery pipe, two connecting tubes are fixedly installed on the inner wall of the window frame body, an airbag block is fixedly installed on the inner wall of each connecting tube, and one end of each delivery pipe is away from the airbag column They all penetrate into the interior of the airbag block, and each of the airbag blocks is fixedly installed with a connecting plate on the side away from the conveying pipe, and each of the connecting plates is fixedly installed with a connecting rod on the side away from the airbag block, and each of the connecting rods is fixedly installed with a moving block on the end away from the connecting plate. A number of connecting springs are fixedly installed on the inner wall of the window frame body, and each group of connecting springs is fixedly installed with a moving rack on the end away from the window frame body, and each of the moving racks is fixedly installed with a pushing block on the side close to the moving block, and each of the moving racks is fixedly installed with an airbag plate on the side away from the moving block, and each of the airbag plates is in contact with the outer surface of the sealing strip body on the side away from the moving rack.

[0008] Preferably, a plurality of expansion bolts are provided inside the window frame body, and one end of each expansion bolt away from the glass window body passes through to the outside of the window frame body.

[0009] Preferably, a slider is fixedly mounted on a side of each movable block away from the pushing block, a plurality of sliding grooves are provided on the inner wall of the window frame body, and each slider is slidably connected to the inside of the sliding groove.

[0010] Preferably, a plurality of telescopic columns are fixedly mounted on the inner wall of the window frame body, and a telescopic end of each telescopic column is fixedly connected to a side surface of the movable frame close to the pushing block.

[0011] Preferably, the extrusion unit includes two connecting boxes, the outer surface of each connecting box is fixedly connected to the inner wall of the window frame body, the inner wall of each window frame body is fixedly mounted with a mounting plate, the back of each mounting plate is fixedly mounted with a metal sheet, the back of each metal sheet is fixedly mounted with a heat-conducting column, the end of each heat-conducting column away from the metal sheet passes through the outside of the connecting box, the back of each mounting plate is fixedly mounted with a concave block, the interior of each concave block is movably hinged with an adjusting rod, the back of each metal sheet is fixedly mounted with a connecting block, one end of each adjusting rod is movably hinged inside the connecting block, the other end of each adjusting rod is movably hinged to a fixed block, an extrusion plate is fixedly mounted on the front of each fixed block, a rubber bag is fixedly mounted on the inner wall of each connecting box, a side of each extrusion plate close to the rubber bag is fixedly connected to the back of the rubber bag, and the front of each rubber bag is fixedly connected with a connecting pipe, and the end of each connecting pipe away from the rubber bag passes through the interior of multiple airbag panels respectively.

[0012] Preferably, the replacement mechanism includes a plurality of slide rails, each of the slide rails being fixedly connected to the inner wall of the window frame body on a side close to the glass window body, each of the slide rails being slidably connected to a T-block on the inside, each of the T-blocks being fixedly installed with a rubber pad on a side away from the glass window body, the outer surface of each rubber pad being fixedly connected to the outer surface of the sealing strip body, the inner wall of each rubber pad being fixedly installed with a magnet, each of the magnets being fixedly installed with a placement bag on a side close to the glass window body, a plurality of magnetic plates being fixedly installed on the inner wall of the window frame body, a resin body being provided inside the placement bag, a transparent box being fixedly installed on the inner wall of the window frame body, a silicone fiber bundle being provided inside the transparent box, two sets of sealing plates being movably hinged inside the window frame body, wherein two of the slide rails are fixedly installed with card blocks on the upper surfaces, and a baffle is clamped inside each of the card blocks.

[0013] Preferably, two groups of fixing springs are fixedly installed on the inner wall of the transparent box, and a limiting block is fixedly installed on one end of each fixing spring close to the silicone fiber bundle, and the upper surface of each limiting block is in contact with the bottom surface of the silicone fiber bundle.

[0014] Preferably, telescopic rods are fixedly mounted on the side surfaces of the two limit blocks that are away from each other, and one end of each telescopic rod away from the limit block is fixedly connected to the inner wall of the transparent box.

[0015] Preferably, a plurality of magnetic columns are fixedly mounted on the back of each sealing plate, a plurality of magnetic rods are fixedly mounted on the inner wall of the window frame body, and an end of each magnetic column away from the sealing plate contacts an end of the magnetic rod close to the sealing plate.

[0016] Compared with the prior art, the present invention has the following beneficial effects: The present invention is provided with a contraction unit, so that when the sealing strip body shrinks after long-term use, the contraction of the sealing strip body drives the extrusion block to squeeze the airbag column, so that the gas inside the airbag column is transported to the inside of the airbag block, and then the connecting plate cooperates with the connecting rod and the moving block to push the pushing block and the moving frame to squeeze the sealing strip body, so that the contraction of the sealing strip body is suppressed by the applied pressure, thereby avoiding the phenomenon of air leakage in the gap between the window frame body and the glass window body, thereby ensuring the good heat insulation and noise reduction effects of the device.

[0017] The present invention is provided with an extrusion unit, so that when the device detects the increase in external temperature by utilizing the thermal expansion of the metal sheet, the expansion amount is amplified by a lever, and then the silicone oil inside the rubber bag is squeezed into the interior of the airbag plate, thereby cooperating with the airbag plate to further pressurize the sealing strip body, further avoiding the deformation and leakage of the sealing strip body, and further ensuring the good heat insulation and noise reduction effects of the device.

[0018] The present invention is provided with a replacement mechanism, so that the device can disassemble the sealing strip body and then replace it with a new sealing strip body, and then use the magnet and the magnetic plate to squeeze the placement bag, so that the resin body inside the placement bag overflows and fills the gap between the sealing strip body and the glass window body, thereby restoring the good heat insulation and noise reduction effects of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic structural diagram of the present invention as a whole; Figure 2 This is a structural diagram of a rear view of the window frame body of the present invention; Figure 3 This is a structural schematic diagram of a cross-sectional view of the window frame body of the present invention; Figure 4 For the present invention Figure 3 A schematic diagram of the structure at point A in the middle; Figure 5 Schematic diagram of the structure of the glass window body of the present invention; Figure 6 It is a structural schematic diagram of the mobile rack of the present invention; Figure 7 For the present invention Figure 6 A magnified schematic diagram of the structure at point B; Figure 8 This is a schematic structural diagram of a cross-sectional view of the connecting tube of the present invention; Figure 9 It is a structural schematic diagram of a cross-sectional view of the connection box of the present invention; Figure 10 It is a structural schematic diagram of a cross-sectional view of the slide rail of the present invention; Figure 11 This is a schematic diagram of the structure of a rear cross-sectional view of the sealing strip of the present invention; Figure 12 It is a structural schematic diagram of a cross-sectional view of the transparent shell of the present invention.

[0020] In the figure: 1. Main body; 11. Window frame body; 12. Expansion bolt; 2. Sealing mechanism; 21. Contraction unit; 2101. Glass window body; 2102. Sealing strip body; 2103. Extrusion block; 2104. Airbag column; 2105. Delivery pipe; 2106. Connecting tube; 2107. Airbag block; 2108. Connecting plate; 2109. Connecting rod; 2110. Moving block; 2111. Connecting spring; 2112. Moving frame; 2113. Pushing block; 2114. Airbag plate; 2115. Slider; 2116. Slide; 2117. Telescopic column; 22. Extrusion unit; 2201. Connection box; 2202. Mounting plate ;2203, metal sheet; 2204, thermal conductive column; 2205, concave block; 2206, adjusting rod; 2207, connecting block; 2208, fixing block; 2209, extrusion plate; 2210, rubber bag; 2211, connecting pipe; 3, replacement mechanism; 301, slide rail; 302, T-block; 303, rubber pad; 304, magnet; 305, placement capsule; 306, magnetic plate; 307, resin body; 308, transparent box; 309, silicone fiber bundle; 310, sealing plate; 311, fixing spring; 312, limit block; 313, telescopic rod; 314, block; 315, baffle; 316, magnetic column; 317, magnetic rod. DETAILED DESCRIPTION

[0021] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0022] Example 1: Please refer to Figures 1-8 The present invention provides a technical solution: a building energy-saving, heat-insulating and noise-reducing glass window, comprising a main body mechanism 1, the main body mechanism 1 comprising a window frame body 11, and a sealing mechanism 2 is provided inside the window frame body 11; The sealing mechanism 2 includes a shrinking unit 21 . The shrinking unit 21 is located inside the window frame body 11 . The shrinking unit 21 is used to suppress shrinkage of the sealing strip.

[0023] See also Figure 1 and Figure 2A number of expansion bolts 12 are arranged inside the window frame main body 11. The end of each expansion bolt 12 away from the glass window main body 2101 penetrates the outside of the window frame main body 11. The window frame main body 11 is fixed to the building through the expansion bolts 12, and the space between the window frame main body 11 and the building is filled with materials such as glass glue and foam glue, thereby ensuring the stability of the installation of the glass window main body 2101.

[0024] As a further limitation of the contraction unit 21 of the present invention, the contraction unit 21 includes a glass window body 2101, the glass window body 2101 and the outer surface are fixedly connected to the inner wall of the window frame body 11, the outer surface of the glass window body 2101 is provided with two groups of sealing strip bodies 2102, and the outer surface of each sealing strip body 2102 is fixedly installed with two extrusion blocks 2103. When the sealing strip body 2102 contracts, the extrusion blocks 2103 on the corresponding sealing strip body 2102 will move toward the side close to each other, and the outer surface of the glass window body 2101 is fixedly installed with two groups of airbag columns 2104, the airbag columns 2104 are filled with nitrogen, and the outer surface of each airbag column 2104 is respectively In contact with the side of the two extrusion blocks 2103 that are close to each other, the outer surface of each airbag column 2104 is fixedly connected with a delivery pipe 2105, and two connecting cylinders 2106 are fixedly installed on the inner wall of the window frame body 11. An airbag block 2107 is fixedly installed on the inner wall of each connecting cylinder 2106. The end of each delivery pipe 2105 away from the airbag column 2104 passes through the interior of the airbag block 2107, and nitrogen circulates inside the airbag column 2104, the delivery pipe 2105 and the airbag block 2107. A connecting plate 2108 is fixedly installed on the side of each airbag block 2107 away from the delivery pipe 2105, and a connecting plate 2108 is fixedly installed on the side of each connecting plate 2108 away from the airbag block 2107. A connecting rod 2109 is installed, and a moving block 2110 is fixedly installed at one end of each connecting rod 2109 away from the connecting plate 2108. A plurality of connecting springs 2111 are fixedly installed on the inner wall of the window frame body 11. A moving frame 2112 is fixedly installed at one end of each group of connecting springs 2111 away from the window frame body 11. A pushing block 2114 is fixedly installed on one side of each moving frame 2112 close to the moving block 2110. An airbag plate 2113 is fixedly installed on one side of each moving frame 2112 away from the moving block 2110. A side of each airbag plate 2113 away from the moving frame 2112 contacts the outer surface of the sealing strip body 2102. By providing a contraction unit 21 , so that when the sealing strip body 2102 shrinks after long-term use, the sealing strip body 2102 shrinks and drives the extrusion block 2103 to squeeze the airbag column 2104, so that the gas inside the airbag column 2104 is transported to the inside of the airbag block 2107, and then the connecting plate 2108 cooperates with the connecting rod 2109 and the moving block 2110 to push the pushing block 2113 and the moving frame 2112 to squeeze the sealing strip body 2102, thereby suppressing the shrinkage of the sealing strip body 2102 through the applied pressure, thereby avoiding air leakage in the gap between the window frame body 11 and the glass window body 2101, thereby ensuring the good heat insulation and noise reduction effects of the device.

[0025] See also Figure 5 、 Figure 7 and Figure 8A slider 2115 is fixedly installed on the side of each moving block 2110 away from the pushing block 2114, and a plurality of sliding grooves 2116 are opened on the inner wall of the window frame body 11. Each slider 2115 is slidably connected to the inside of the sliding groove 2116. The installation of the slider 2115 and the sliding groove 2116 limits the moving trajectory of the moving block 2110, thereby ensuring the stability of the movement of the moving block 2110.

[0026] See also Figure 6 and Figure 7 A number of telescopic columns 2117 are fixedly installed on the inner wall of the window frame body 11. The telescopic end of each telescopic column 2117 is fixedly connected to a side of the mobile frame 2112 close to the pushing block 2114. The installation of the telescopic column 2117 limits the moving trajectory of the mobile frame 2112, thereby ensuring the stability of the movement of the mobile frame 2112.

[0027] The specific implementation of this embodiment is as follows: when the sealing strip body 2102 shrinks after long-term use, the shrinkage of the sealing strip body 2102 will drive the two extrusion blocks 2103 connected thereto to move toward one side close to each other, so that the extrusion blocks 2103 will squeeze the airbag column 2104, and then the gas inside the airbag column 2104 enters the interior of the airbag block 2107 through the delivery tube 2105, causing the airbag block 2107 to expand. Therefore, under the restriction of the connecting tube 2106, the airbag block 2107 pushes the connecting plate 2108 to move toward the side close to the pushing block 2113, so that the connecting plate 2108 drives the connecting rod 2109 and the moving block 2110 move toward the side close to the pushing block 2113, so that the moving block 2110 pushes the pushing block 2113 to move toward the side close to the sealing strip body 2102, so that the moving frame 2112 drives the airbag plate 2114 to squeeze the sealing strip body 2102, thereby increasing the pressure applied by the airbag plate 2114 to the sealing strip body 2102. By increasing the pressure, the contraction of the sealing strip body 2102 is suppressed, thereby avoiding the gap exposed due to the contraction of the sealing strip body 2102, thereby avoiding external gas or sound from entering the interior of the building through the gap, thereby ensuring the good heat insulation and noise reduction effect of the device.

[0028] Example 2: Please refer to Figure 2 、 Figure 7 and Figure 9 The present invention provides a technical solution: a building energy-saving, heat-insulating and noise-reducing glass window. The present invention makes corresponding improvements to the technical problems mentioned in the background technology. The sealing mechanism 2 also includes an extrusion unit 22. The extrusion unit 22 is located inside the window frame body 11. The contraction unit 21 is used in conjunction with the extrusion unit 22. The extrusion unit 22 is used to reduce the phenomenon of expansion and deformation of the sealing strip caused by temperature difference.

[0029] As a further limitation of the extrusion unit 22 of the present invention, the extrusion unit 22 includes two connection boxes 2201, the outer surface of each connection box 2201 is fixedly connected to the inner wall of the window frame body 11, and the two connection boxes 2201 are diagonally distributed on the upper and lower sides. The inner wall of each window frame body 11 is fixedly installed with a mounting plate 2202, and the back of each mounting plate 2202 is fixedly installed with a metal sheet 2203. The material of the metal sheet 2203 is manganese-nickel-copper alloy, so that it can begin to expand after the temperature exceeds 20°C, and the back of each metal sheet 2203 is fixed. A heat-conducting column 2204 is installed, and one end of each heat-conducting column 2204 away from the metal sheet 2203 passes through the outside of the connection box 2201. A concave block 2205 is fixedly installed on the back of each mounting plate 2202, and an adjustment rod 2206 is movably hinged inside each concave block 2205. A connecting block 2207 is fixedly installed on the back of each metal sheet 2203, and one end of each adjustment rod 2206 is movably hinged inside the connecting block 2207, and the other end of each adjustment rod 2206 is movably hinged to a fixed block 2208. The ratio between the distance between the fixed block 2208 and the distance between the connecting block 2207 is 5:1, thereby amplifying the expansion of the metal sheet 2203. An extrusion plate 2209 is fixedly installed on the front of each fixed block 2208. A rubber bag 2210 is fixedly installed on the inner wall of each connecting box 2201. The interior of the rubber bag 2210 is filled with silicone oil. The side of each extrusion plate 2209 close to the rubber bag 2210 is fixedly connected to the back of the rubber bag 2210. The front of each rubber bag 2210 is fixedly connected to a connecting pipe 2211. Each connecting pipe 2211 is fixedly connected to the front of each rubber bag 2210. One end of 11 away from the rubber bag 2210 penetrates into the interior of multiple airbag panels 2113 respectively, and is provided with an extrusion unit 22, so that when the device detects the increase in external temperature by utilizing the thermal expansion of the metal sheet 2203, the expansion amount is amplified by the lever, and then the silicone oil inside the rubber bag 2210 is squeezed into the interior of the airbag panel 2114, thereby cooperating with the airbag panel 2114 to further pressurize the sealing strip body 2102, further avoiding the deformation and leakage of the sealing strip body 2102, and further ensuring the good heat insulation and noise reduction effects of the device.

[0030] The specific implementation of this embodiment is as follows: when the external temperature rises, the external temperature is transmitted to the metal sheet 2203 through the heat-conducting column 2204, so that the metal sheet 2203 begins to expand under the action of heat, thereby causing the metal sheet 2203 to push the connecting block 2207 to move to the side away from the metal sheet 2203, and then the connecting block 2207 cooperates with the concave block 2205 to adjust the angle of the adjusting rod 2206, and then the adjusting rod 2206 pushes the extrusion plate 2209 to squeeze the rubber bag 2210, so that the silicone oil inside the rubber bag 2210 enters the interior of the airbag plate 2114 through the connecting tube 2211, thereby causing the airbag plate 2114 to begin to expand, and then further increasing the pressure applied to the sealing strip main body 2102, thereby preventing the sealing strip main body 2102 from exposing gaps after expansion and deformation due to heat, and cooperating with the pressure applied by the shrinkage unit 21 to ensure good heat insulation and noise reduction effects of the device.

[0031] Example 3: Please refer to Figure 1 、 Figure 4 and Figure 10-12 The present invention provides a technical solution: a building energy-saving, heat-insulating and noise-reducing glass window. The present invention makes corresponding improvements to the technical problems mentioned in the background technology. A replacement mechanism 3 is provided inside the window frame body 11. The sealing mechanism 2 is used in conjunction with the replacement mechanism 3. The replacement mechanism 3 is used to disassemble the damaged sealing strip.

[0032] As a further limitation of the replacement mechanism 3 of the present invention, the replacement mechanism 3 includes a plurality of slide rails 301, and each slide rail 301 is fixedly connected to the inner wall of the window frame main body 11 on a side close to the glass window main body 2101, and a T-block 302 is slidably connected to the interior of each slide rail 301, and a rubber pad 303 is fixedly installed on the side of each T-block 302 away from the glass window main body 2101. The T-block 302 and the rubber pad 303 are made of rubber material, which makes it have a certain degree of softness, thereby facilitating entry into the interior of the slide rail 301, and the outer surface of each rubber pad 303 is fixedly connected to the outer surface of the sealing strip main body 2102, and the inner wall of each rubber pad 303 is fixedly installed with a magnet 304, and each magnet 304 is close to the glass window main body 2101 A placement capsule 305 is fixedly installed on one side of the window frame body 11, and a tiny hole is opened on the outer surface of the placement capsule 305. A number of magnetic plates 306 are fixedly installed on the inner wall of the window frame body 11. A resin body 307 is arranged inside each placement capsule 305. After the sealing strip body 2102 is installed, the attraction between the magnet 304 and the magnetic plate 306 is used to squeeze the placement capsule 305, so that the resin body 307 fills the gap between the sealing strip body 2102 and the glass window body 2101 through the tiny hole, thereby filling the gap. A transparent box 308 is fixedly installed on the inner wall of the window frame body 11, and a silicone fiber bundle 309 is arranged inside the transparent box 308. The silicone fiber bundle 309 contains iron ions, so when it encounters water vapor: Fe 3 ⁺→Fe 2 ⁺Reduction reaction, the color changes from brown-red to light green, so that the user can judge whether the sealing strip body 2102 needs to be replaced by observing the color of the silicone fiber bundle 309 from the outside. The window frame body 11 is internally hinged with two sets of sealing plates 310, wherein the upper surfaces of the two slide rails 301 are fixedly installed with a clamping block 314, that is, the two slide rails 301 in the vertical state are provided with a clamping block 314, and the interior of each clamping block 314 is clamped with a baffle 315, so that the clamping block 314 cooperates with the baffle 315 to T The T-block 302 is blocked to prevent it from sliding off the slide rail 301. By providing a replacement mechanism 3, the device can disassemble the sealing strip body 2102 and then replace it with a new sealing strip body 2102. Then, the magnet 304 and the magnetic plate 306 are used to squeeze the placement capsule 305, so that the resin body 307 inside the placement capsule 305 overflows and fills the gap between the sealing strip body 2102 and the glass window body 2101, thereby restoring the good heat insulation and noise reduction effects of the device.

[0033] See also Figure 12Two sets of fixing springs 311 are fixedly installed on the inner wall of the transparent box 308. A limiting block 312 is fixedly installed on one end of each fixing spring 311 close to the silicone fiber bundle 309. The upper surface of each limiting block 312 is in contact with the bottom surface of the silicone fiber bundle 309. The installation of the fixing springs 311 and the limiting blocks 312 prevents the silicone fiber bundle 309 from slipping out of the transparent box 308, and at the same time facilitates the user to replace the silicone fiber bundle 309.

[0034] See also Figure 12 A telescopic rod 313 is fixedly installed on the side of the two limit blocks 312 away from each other, and one end of each telescopic rod 313 away from the limit block 312 is fixedly connected to the inner wall of the transparent box 308. The installation of the telescopic rod 313 limits the moving trajectory of the limit block 312, thereby ensuring the stability of the movement of the limit block 312.

[0035] See also Figure 4 A number of magnetic columns 316 are fixedly installed on the back of each sealing plate 310, and a number of magnetic rods 317 are fixedly installed on the inner wall of the window frame body 11. The end of each magnetic column 316 away from the sealing plate 310 is in contact with the end of the magnetic rod 317 close to the sealing plate 310. The attraction between the magnetic columns 316 and the magnetic rods 317 is used to tightly fit the sealing plate 310 and prevent the sealing plate 310 from opening by itself.

[0036] The specific implementation of this embodiment is as follows: the user observes the color change of the silicone fiber bundle 309 from the outside of the transparent box 308. When the user finds that the silicone fiber bundle 309 changes to light green, the user opens the sealing plate 310 to expose the interior of the window frame body 11 to the outside. Then the worker removes the baffle 315 and pushes the movable frame 2112 away from the sealing strip body 2102. Then the user pulls the rubber pad 303 to drive the T-block 302 and the sealing strip body 2102 to slide off the slide rail 301. Then the user takes out the new sealing strip body 2102 and inserts the T-block 302 into the interior of the slide rail 301. Then the new sealing strip body 2102 is moved to the initial position of the old sealing strip body 2102. Then the worker removes the baffle 315 and pushes the movable frame 2112 away from the sealing strip body 2102. Pressing makes the sealing strip body 2102 fit with the glass window body 2101. During this process, the attraction between the magnet 304 and the magnetic plate 306 squeezes the placement capsule 305, so that the resin body 307 inside the placement capsule 305 is discharged from the placement capsule 305, so that the resin body 307 enters the gap between the sealing strip body 2102 and the glass window body 2101, and then fills the gap to prevent external gas from entering the interior of the building through the gap. At the same time, during the use of the window, due to the continuous action of the magnetic attraction, the resin body 307 can automatically fill the gap caused by the deformation of the sealing strip body 2102, further ensuring the good sealing effect of the window and ensuring the good heat insulation and noise reduction effects of the device.

[0037] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0038] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A building energy-saving, heat-insulating and noise-reducing glass window, comprising a main body (1), characterized in that: The main body mechanism (1) comprises a window frame body (11), and a sealing mechanism (2) is provided inside the window frame body (11); The sealing mechanism (2) comprises a shrinkage unit (21), the shrinkage unit (21) is located inside the window frame body (11), and the shrinkage unit (21) is used to suppress shrinkage of the sealing strip; The sealing mechanism (2) further comprises an extrusion unit (22), the extrusion unit (22) being located inside the window frame body (11), the contraction unit (21) being used in conjunction with the extrusion unit (22), and the extrusion unit (22) being used to reduce the phenomenon of expansion and deformation of the sealing strip caused by temperature difference; A replacement mechanism (3) is provided inside the window frame body (11); the sealing mechanism (2) is used in conjunction with the replacement mechanism (3); and the replacement mechanism (3) is used to dismantle a damaged sealing strip.

2. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 1, characterized in that: The shrinkage unit (21) comprises a glass window body (2101), wherein the outer surface of the glass window body (2101) is fixedly connected to the inner wall of the window frame body (11), and the outer surface of the glass window body (2101) is provided with two groups of sealing strip bodies (2102), and the outer surface of each sealing strip body (2102) is fixedly mounted with two extrusion blocks (2103), and the outer surface of the glass window body (2101) is fixedly mounted with two groups of airbag columns (2104), and each of the airbag columns ( The outer surfaces of the two extrusion blocks (2103) are in contact with the side surfaces of the two extrusion blocks (2103) that are close to each other. The outer surface of each airbag column (2104) is fixedly connected to a delivery pipe (2105). Two connecting tubes (2106) are fixedly installed on the inner wall of the window frame body (11). An airbag block (2107) is fixedly installed on the inner wall of each connecting tube (2106). The end of each delivery pipe (2105) away from the airbag column (2104) passes through the inner wall of the airbag block (2107). A connecting plate (2108) is fixedly installed on the side of each airbag block (2107) away from the delivery pipe (2105), a connecting rod (2109) is fixedly installed on the side of each connecting plate (2108) away from the airbag block (2107), and a moving block (2110) is fixedly installed on the end of each connecting rod (2109) away from the connecting plate (2108). A plurality of connecting springs (2111) are fixedly installed on the inner wall of the window frame body (11), and each group of the connecting springs A movable frame (2112) is fixedly mounted on one end of (2111) away from the window frame main body (11), a pushing block (2114) is fixedly mounted on one side of each movable frame (2112) close to the movable block (2110), an airbag plate (2113) is fixedly mounted on one side of each movable frame (2112) away from the movable block (2110), and a side of each airbag plate (2113) away from the movable frame (2112) contacts the outer surface of the sealing strip main body (2102).

3. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 1, characterized in that: A plurality of expansion bolts (12) are provided inside the window frame body (11), and one end of each expansion bolt (12) away from the glass window body (2101) passes through to the outside of the window frame body (11).

4. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 2, characterized in that: A slider (2115) is fixedly mounted on a side of each movable block (2110) away from the pushing block (2114), and a plurality of sliding grooves (2116) are provided on the inner wall of the window frame body (11), and each slider (2115) is slidably connected to the inside of the sliding groove (2116).

5. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 2, characterized in that: A plurality of telescopic columns (2117) are fixedly mounted on the inner wall of the window frame body (11), and the telescopic end of each telescopic column (2117) is fixedly connected to a side surface of the movable frame (2112) close to the pushing block (2114).

6. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 2, characterized in that: The extrusion unit (22) includes two connection boxes (2201), the outer surface of each connection box (2201) is fixedly connected to the inner wall of the window frame body (11), the inner wall of each window frame body (11) is fixedly installed with a mounting plate (2202), the back of each mounting plate (2202) is fixedly installed with a metal sheet (2203), the back of each metal sheet (2203) is fixedly installed with a heat conducting column (2204), the end of each heat conducting column (2204) away from the metal sheet (2203) passes through the outside of the connection box (2201), the back of each mounting plate (2202) is fixedly installed with a concave block (2205), the interior of each concave block (2205) is movably hinged with an adjustment rod (2206), and the back of each metal sheet (2203) is fixedly installed with a heat conducting column (2204). A connecting block (2207) is fixedly installed on the back side, one end of each adjusting rod (2206) is movably hinged inside the connecting block (2207), the other end of each adjusting rod (2206) is movably hinged to a fixing block (2208), an extrusion plate (2209) is fixedly installed on the front side of each fixing block (2208), a rubber bag (2210) is fixedly installed on the inner wall of each connecting box (2201), a side of each extrusion plate (2209) close to the rubber bag (2210) is fixedly connected to the back side of the rubber bag (2210), and a connecting pipe (2211) is fixedly connected to the front side of each rubber bag (2210), and an end of each connecting pipe (2211) away from the rubber bag (2210) respectively passes through the interior of multiple airbag plates (2113).

7. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 2, characterized in that: The replacement mechanism (3) comprises a plurality of slide rails (301), wherein a side of each slide rail (301) close to the glass window body (2101) is fixedly connected to the inner wall of the window frame body (11), a T-shaped block (302) is slidably connected to the interior of each slide rail (301), a side of each T-shaped block (302) away from the glass window body (2101) is fixedly mounted with a rubber pad (303), an outer surface of each rubber pad (303) is fixedly connected to the outer surface of the sealing strip body (2102), a magnet (304) is fixedly mounted on the inner wall of each rubber pad (303), and each magnet (304) close to the glass window body (2101) is fixedly mounted with a magnet (304). A placement capsule (305) is fixedly mounted on one side of the main body (2101), a plurality of magnetic plates (306) are fixedly mounted on the inner wall of the window frame main body (11), a resin main body (307) is arranged inside each placement capsule (305), a transparent box (308) is fixedly mounted on the inner wall of the window frame main body (11), a silicone fiber bundle (309) is arranged inside the transparent box (308), two sets of sealing plates (310) are movably hinged inside the window frame main body (11), and a clamping block (314) is fixedly mounted on the upper surface of two of the slide rails (301), and a baffle (315) is clamped inside each of the clamping blocks (314).

8. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 7, characterized in that: Two groups of fixed springs (311) are fixedly mounted on the inner wall of the transparent box (308), and a limiting block (312) is fixedly mounted on one end of each fixed spring (311) close to the silicone fiber bundle (309), and the upper surface of each limiting block (312) is in contact with the bottom surface of the silicone fiber bundle (309).

9. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 8, characterized in that: A telescopic rod (313) is fixedly mounted on the side surfaces of the two limit blocks (312) that are away from each other, and one end of each telescopic rod (313) away from the limit block (312) is fixedly connected to the inner wall of the transparent box (308).

10. The building energy-saving, heat-insulating and noise-reducing glass window according to claim 7, characterized in that: A plurality of magnetic columns (316) are fixedly mounted on the back of each sealing plate (310), and a plurality of magnetic rods (317) are fixedly mounted on the inner wall of the window frame body (11), wherein an end of each magnetic column (316) away from the sealing plate (310) contacts an end of the magnetic rod (317) close to the sealing plate (310).