An energy-saving heat-insulating broken bridge aluminum inward-opening passive window
By using alternate gas-liquid filling and circulation system in the passive window, the thermal insulation and argon gas leakage problems of the passive window are solved, and efficient energy utilization and safe and convenient installation, transportation and maintenance are achieved.
Patent Information
- Application Number
- CN202311096796.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-29
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2043-08-29
AI Technical Summary
Existing passive windows are difficult to effectively insulate and insulate heat without air conditioning or heating, and there is a problem of leakage risk and low resource utilization in argon filling.
An energy-saving thermal insulation bridge aluminum internal passive window is designed, and the gas-liquid alternate filling method is used to use the alternating storage and circulation system of medium liquid and inert gas to achieve heat absorption and reuse. At the same time, the flow of argon gas is automatically controlled when the glass plate is damaged to avoid leakage.
It improves the energy utilization rate of passive windows, reduces energy consumption, enhances safety and convenience, and reduces the complexity of maintenance and transportation.
Smart Images

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Abstract
Description
Technical Field
[0001] The invention relates to the technical field of passive windows, in particular to an energy-saving heat-insulating broken-bridge aluminum inward-opening passive window. Background Art
[0002] Passive windows help maintain indoor temperatures in passive houses without the need for air conditioning or heating, reducing energy consumption. They are an upgraded version of standard windows, requiring superior thermal insulation, sound insulation, wind resistance, and pressure resistance. Typical passive windows typically utilize technologies such as triple-glazed, double-chambered, and argon-filled windows to achieve energy savings.
[0003] Argon is an inert gas filled between glass plates to isolate the indoor and outdoor temperatures. However, argon has limited light absorption and cannot block outdoor light. When the window is opened to let light in, ultraviolet rays can still enter the room and cause harm to the human body. Argon is generally filled directly between the glass plates. When the glass window is broken, the leakage of argon will damage people's health. Argon filling can only play the role of thermal insulation and only serves the purpose of reducing indoor energy consumption. It cannot absorb and reuse external energy, and the corresponding resource utilization rate is limited. Summary of the Invention
[0004] The technical problem of the present invention is to provide an energy-saving thermal insulation aluminum inward-opening passive window to provide a passive window that alternates between gas and liquid for thermal insulation, and can absorb external heat as the driven energy of the passive room, thereby improving energy utilization and achieving higher environmental efficiency.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an energy-saving heat-insulating aluminum inward-opening passive window, comprising a mounting frame and a mounting frame, wherein the mounting frame is a rectangular ring and is provided with an active cavity therein, a positioning tooth is provided on the inner side of the mounting frame, and the positioning tooth is provided with multiple groups, an outer glass plate is fixedly mounted on the positioning tooth on one side, an inner glass plate is fixedly mounted on the positioning tooth on the other side, a middle glass plate is fixedly mounted on the mounting frame at a position corresponding to the position between the outer glass plate and the inner glass plate, an outer storage cavity is formed between the outer glass plate and the middle glass plate, and the inner glass plate is fixedly mounted on the positioning tooth at the position corresponding to the position between the outer glass plate and the inner glass plate. An inner storage cavity is formed between the middle glass plates, an upper extension tube is fixedly installed on the upper end of the active cavity, a plurality of upper inlet branches are fixedly installed on the upper extension tube, the lower ends of the upper inlet branches extend into the inner storage cavity and the outer storage cavity respectively, one end of the upper extension tube extends outside the mounting frame and is provided with a circulation system, which can automatically absorb the heat of the derived medium liquid, a processing component is provided in the active cavity, a gas inlet component is provided in the processing component, and the gas inlet component can control the gas to circulate between the inner storage cavity, the outer storage cavity and the active cavity according to the temperature.
[0006] As a further solution of the present invention, the circulation system includes a treatment box, which is arranged on a side of the installation frame close to the outer glass plate. An upper connecting pipe is fixedly installed on the lower end of the treatment box, a sealing plate is fixedly installed on the lower end of the upper connecting pipe, a lower connecting pipe is fixedly installed on the lower end of the sealing plate, an outlet pipe is fixedly installed on the lower end of the lower connecting pipe, one end of the outlet pipe away from the lower connecting pipe is fixedly connected to the upper extension pipe, an inlet pipe is fixedly installed on the upper end of the treatment box, a sealing mounting part 1 is fixedly installed on the inlet pipe, and an outlet pipe is fixedly installed on the sealing mounting part 1.
[0007] As a further solution of the present invention, a lower extension tube is fixedly installed at the lower end of the movable cavity, and a plurality of lower inlet branches are fixedly installed on the lower extension tube, one end of the lower inlet branch tubes extends into the inner storage cavity and the outer storage cavity respectively, one end of the lower extension tube extends from the side of the mounting frame close to the inner glass plate and a second sealing mounting part is fixedly installed on the extension end, a water inlet pipe is fixedly installed on the second sealing mounting part, and side mounting parts are fixedly installed on both the water inlet pipe and the water outlet pipe, and a plurality of groups of thin heat conduction tubes are fixedly installed between the side mounting parts.
[0008] As a further solution of the present invention, the gas inlet part includes a lower air pipe and an upper air pipe, the upper air pipe is fixedly installed on the upper surface of the processing part, and the lower air pipes are provided in two groups and are fixedly installed on the lower surface of the processing part. The lower ends of the lower air pipes extend into the inner storage cavity and the outer storage cavity, an air valve is fixedly installed in the upper air pipe, a temperature sensor is provided in the processing part, and an air pressure sensor is fixed on the processing part corresponding to the position of the lower air pipe.
[0009] As a further solution of the present invention, a mounting groove is provided on the side of the mounting frame close to the inner glass plate, a mounting seat is fixedly installed on the upper surface of the mounting frame, the mounting seat matches the mounting groove, and movable grooves are provided on both sides of the mounting groove corresponding to the mounting groove, a mounting shaft is slidably connected in the movable groove, and the mounting shaft matches the mounting seat.
[0010] As a further solution of the present invention, a sliding groove is provided on the side of the mounting frame close to the inner glass plate and corresponding to the position of the movable groove, and a sliding member is fixedly installed on the end of the mounting shaft away from the mounting seat, and the sliding member is slidably connected to the sliding groove. A locking member is rotatably installed on the sliding member, and an interference rod is provided on one side of the locking member. The outer side of the mounting frame is in horizontal contact with the surface of the mounting frame and a sealing gasket is provided at the connection.
[0011] As a further solution of the present invention, a filter is provided at the upper end of the treatment box, a rainwater collection device is provided at the upper end of the treatment box, and a positioning seat is fixedly installed on one side of the treatment box close to the installation frame.
[0012] As a further solution of the present invention, the installation frame is made of thermally-insulated aluminum, a handle is fixedly installed on the lower end of the installation frame close to the inner glass plate, and the water inlet pipe, outlet pipe and outlet pipe are all hoses.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] 1. In the present invention, argon gas and dielectric liquid are alternately filled in the inner storage chamber and the outer storage chamber. The dielectric liquid can be a heat-absorbing colored liquid or rainwater. Under high temperature conditions in summer, when the gas inlet component senses that the temperature is higher than the set value, the inert gas in the inner storage chamber and the outer storage chamber is discharged through the processing component, so that the inert gas enters the active chamber for storage, and then the extension pipe introduces the dielectric liquid into the inner storage chamber and the outer storage chamber through the upper introduction branch pipe. The dielectric liquid in the inner storage chamber and the outer storage chamber absorbs heat, and the heated dielectric liquid flows into the room through the circulation system. The heat in the dielectric liquid is discharged through the circulation system and used in the room (such as drying clothes, etc.), so that the dielectric liquid absorbs and reuses external energy while performing thermal insulation, thereby improving the energy utilization rate of the passive window.
[0015] 2. In the present invention, when the inner glass plate and the outer glass plate are damaged, the processing unit automatically controls the flow of argon into the active cavity to prevent a large amount of argon from leaking into the air, and to prevent the human body from being damaged by inhaling a large amount of argon. During the transportation process of the passive window, the argon can also be pre-stored in the active cavity of the passive window, and the argon can be filled and discharged at any time after the inner glass plate and the outer glass plate are installed, which is convenient for replacing the inner glass plate and the outer glass plate, avoiding the trouble of requiring higher shock-absorbing protection equipment when transporting the passive window after filling with argon, or the difficulty of introducing argon behind the passive window, making the installation, transportation and maintenance of the passive window faster. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0017] Figure 1 This is a schematic diagram of the front structure of the present invention;
[0018] Figure 2 For the present invention Figure 1 A partial schematic diagram of the structure at point A;
[0019] Figure 3 This is a schematic diagram of the back structure of the present invention;
[0020] Figure 4 For the present invention Figure 3 A partial schematic diagram of the structure at B in the middle;
[0021] Figure 5 For the present invention Figure 3 A partial schematic diagram of the structure at C in the middle;
[0022] Figure 6 The structure of the present invention is cut away Figure 1 ;
[0023] Figure 7 For the present invention Figure 6 A partial schematic diagram of the structure at D in the middle;
[0024] Figure 8 The structure of the present invention is cut away Figure 2 ;
[0025] Figure 9 For the present invention Figure 8 A partial schematic diagram of the structure at E in the middle;
[0026] Figure 10 For the present invention Figure 8 Partial schematic diagram of the structure at F in the middle.
[0027] In the accompanying drawings, the components represented by the reference numerals are as follows:
[0028] 1. Mounting frame; 2. Outer glass panel; 3. Mounting frame; 4. Processing box; 5. Water outlet pipe; 6. Sealing mounting part 1; 7. Inlet pipe; 8. Thin heat conducting pipe; 9. Side mounting part; 10. Water inlet pipe; 11. Outlet pipe; 12. Lower connecting pipe; 13. Upper connecting pipe; 14. Sealing plate; 15. Inner glass panel; 16. Mounting seat; 17. Slide groove; 18. Positioning seat; 19. Locking part; 20. Sliding part; 21. Mounting groove; 22. Lower extension pipe; 23. Sealing mounting part 2; 24. Middle glass panel; 25. Inner storage chamber; 26. Outer storage chamber; 27. Movable chamber; 28. Upper inlet branch pipe; 29. Upper extension pipe; 30. Positioning tooth; 31. Movable groove; 32. Lower air pipe; 33. Processing part; 34. Upper air pipe; 35. Lower inlet branch pipe; 36. Mounting shaft. DETAILED DESCRIPTION
[0029] 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 any creative efforts shall fall within the scope of protection of the present invention.
[0030] See also Figures 1-10 The present invention provides a technical solution: an energy-saving heat-insulating aluminum inward-opening passive window, comprising a mounting frame 1 and a mounting frame 3. The mounting frame 1 is a rectangular ring and is provided with an active cavity 27 therein. A positioning tooth 30 is provided on the inner side of the mounting frame 1. The positioning tooth 30 is provided with multiple groups. An outer glass plate 2 is fixedly mounted on the positioning teeth 30 on one side, and an inner glass plate 15 is fixedly mounted on the positioning teeth 30 on the other side. A middle glass plate 24 is fixedly mounted on the mounting frame 1 at a position corresponding to the position between the outer glass plate 2 and the inner glass plate 15. An outer storage cavity 26 is formed between the outer glass plate 2 and the middle glass plate 24. An inner storage chamber 25 is formed in the middle, and an upper extension tube 29 is fixedly installed on the upper end of the active chamber 27. A plurality of upper inlet branches 28 are fixedly installed on the upper extension tube 29. The lower ends of the upper inlet branches 28 extend into the inner storage chamber 25 and the outer storage chamber 26 respectively. One end of the upper extension tube 29 extends to the outside of the mounting frame 1 and is provided with a circulation system. The circulation system can automatically absorb the heat of the derived medium liquid. A processing component 33 is provided in the active chamber 27, and a gas inlet component is provided in the processing component 33. The gas inlet component can control the gas to circulate between the inner storage chamber 25, the outer storage chamber 26 and the active chamber 27 according to the temperature.
[0031] During operation, the inner storage chamber 25 and the outer storage chamber 26 are alternately filled with argon gas and dielectric liquid. The dielectric liquid can be a heat-absorbing colored liquid or rainwater. In the summer, when the temperature sensed by the gas introduction part is higher than the set value, the inert gas in the inner storage chamber 25 and the outer storage chamber 26 is discharged through the processing part 33, so that the inert gas enters the active chamber 27 for storage. Then, the extension tube introduces the dielectric liquid into the inner storage chamber 25 and the outer storage chamber 26 through the upper introduction branch pipe 28. The dielectric liquid in the inner storage chamber 25 and the outer storage chamber 26 is heated. The absorbed heat is absorbed by the medium liquid, which flows into the room through the circulation system. The heat in the medium liquid is conducted out through the circulation system and applied to the room (such as clothes drying, etc.), so that the medium liquid can absorb and reuse the external energy while performing thermal insulation, thereby improving the energy utilization rate of the passive window and increasing the environmental friendliness of the passive window. At the same time, the medium liquid can be set as a colored liquid, so that the medium liquid can filter ultraviolet rays while playing the role of heat preservation, reducing the impact of ultraviolet rays on the indoor environment, while not affecting the light transmittance of the passive window, avoiding the trouble of turning on the lights indoors during the day, reducing unnecessary energy consumption, making the energy use of the passive house more environmentally friendly, and reducing damage to the natural ecology. In winter, the temperature is lower, and the medium liquid is conducted out from the inner storage chamber 25 and the outer storage chamber 26, so that the argon gas in the active chamber 27 is conducted into the inner storage chamber 25 and the outer storage chamber 26 through the processing unit 33, so that the argon gas becomes the thermal insulation material between the inner glass plate 15 and the outer glass plate 2. When the inner glass plate 15 and the outer glass plate 2 are damaged, the processing unit 33 automatically controls the argon gas to the active chamber 27. The argon flows inside the passive window to avoid a large amount of leakage into the air, and to prevent the human body from being damaged by inhaling a large amount of argon. During the transportation process of the passive window, the argon can also be pre-stored in the active cavity 27 of the passive window, and the argon can be filled and discharged at any time after the inner glass plate 15 and the outer glass plate 2 are installed, which is convenient for replacing the inner glass plate 15 and the outer glass plate 2, avoiding the trouble of requiring higher shock-absorbing protection equipment when transporting the passive window after filling with argon, or the difficulty of introducing argon behind the passive window, making the installation, transportation and maintenance of the passive window faster.
[0032] In the present invention, the inner storage chamber 25 and the outer storage chamber 26 are alternately filled with argon gas and dielectric liquid. The dielectric liquid can be a heat-absorbing colored liquid or rainwater. Under high temperature conditions in summer, when the gas inlet component senses that the temperature is higher than the set value, the inert gas in the inner storage chamber 25 and the outer storage chamber 26 is discharged through the processing component 33, so that the inert gas enters the active chamber 27 for storage, and then the extension tube introduces the dielectric liquid into the inner storage chamber 25 and the outer storage chamber 26 through the upper introduction branch pipe 28. The dielectric liquid in the inner storage chamber 25 and the outer storage chamber 26 absorbs heat, and the dielectric liquid that absorbs heat flows into the room through the circulation system. The heat in the dielectric liquid is discharged into the room through the circulation system (such as clothes drying, etc.), so that the dielectric liquid absorbs and reuses external energy while performing thermal insulation, thereby improving the energy utilization rate of the passive window.
[0033] In the present invention, when the inner glass plate 15 and the outer glass plate 2 are damaged, the processing part 33 automatically controls the flow of argon into the active cavity 27 to prevent a large amount of argon from leaking into the air, and to prevent the human body from being damaged by inhaling a large amount of argon. During the transportation process of the passive window, the argon can also be pre-stored in the active cavity 27 of the passive window, and the argon can be filled and discharged at any time after the inner glass plate 15 and the outer glass plate 2 are installed, which is convenient for replacing the inner glass plate 15 and the outer glass plate 2, avoiding the trouble of requiring higher shock-absorbing protection equipment when transporting the passive window after filling with argon, or the difficulty of introducing argon behind the passive window, making the installation, transportation and maintenance of the passive window faster.
[0034] As a further solution of the present invention, the circulation system includes a treatment box 4, which is arranged on a side of the installation frame 1 close to the outer glass plate 2. The lower end of the treatment box 4 is fixedly installed with an upper connecting pipe 13, the lower end of the upper connecting pipe 13 is fixedly installed with a sealing plate 14, the lower end of the sealing plate 14 is fixedly installed with a lower connecting pipe 12, the lower end of the lower connecting pipe 12 is fixedly installed with an outlet pipe 11, and the end of the outlet pipe 11 away from the lower connecting pipe 12 is fixedly connected to the upper extension pipe 29, the upper end of the treatment box 4 is fixedly installed with an inlet pipe 7, the inlet pipe 7 is fixedly installed with a sealing mounting member 6, and the sealing mounting member 6 is fixedly installed with a water outlet pipe 5.
[0035] During operation, during the medium liquid circulation process, the medium liquid enters the upper connecting pipe 13 through the processing box 4, flows from the upper connecting pipe 13 to the lower connecting pipe 12, and then enters the outlet pipe 11 through the lower connecting pipe 12, enters the upper extension pipe 29 through the inlet pipe 7, and then the medium liquid flows through the upper extension pipe 29 to the upper inlet branch pipe 28 and enters the inner storage chamber 25 and the outer storage chamber 26. After the medium liquid absorbs heat, it flows into the lower extension pipe 22 through the lower inlet branch pipe 35, and then enters the water inlet pipe 10 through the lower extension pipe 22. The high-temperature medium liquid flows into the side mounting member 9 through the water inlet pipe 10, and then is diverted through the side mounting member 9 to enter the thin heat conducting pipe 8 (the thin heat conducting pipe 8 is to the position in the room that needs heating and drying). The medium liquid dissipates heat through the heat conducting pipe to exchange heat with the surrounding area, realizes heat absorption and reuse, improves energy utilization, and reduces energy waste. After heat exchange, the medium liquid enters the inlet pipe 7 through the outlet pipe 5, and then returns to the processing box 4 through the inlet pipe 7.
[0036] As a further solution of the present invention, a lower extension tube 22 is fixedly installed at the lower end of the movable cavity 27, and a plurality of lower inlet branches 35 are fixedly installed on the lower extension tube 22. One end of the lower inlet branch tube 35 extends into the inner storage cavity 25 and the outer storage cavity 26 respectively. One end of the lower extension tube 22 extends from the side of the mounting frame 1 close to the inner glass plate 15 and a sealing mounting part 23 is fixedly installed on the extending end. A water inlet pipe 10 is fixedly installed on the sealing mounting part 23. Side mounting parts 9 are fixedly installed on the water inlet pipe 10 and the water outlet pipe 5. Multiple groups of thin heat conduction tubes 8 are fixedly installed between the side mounting parts 9.
[0037] As a further solution of the present invention, the gas inlet part includes a lower air pipe 32 and an upper air pipe 34. The upper air pipe 34 is fixedly installed on the upper surface of the processing part 33. Two groups of lower air pipes 32 are provided and are fixedly installed on the lower surface of the processing part 33. The lower end of the lower air pipe 32 extends into the inner storage chamber 25 and the outer storage chamber 26. An air valve is fixedly installed in the upper air pipe 34. A temperature sensor is provided in the processing part 33. An air pressure sensor is fixed at the position of the processing part 33 corresponding to the lower air pipe 32.
[0038] During operation, a control component is set in the processing part 33, and the temperature sensor senses the surrounding temperature to control the interaction between gas and liquid. A control valve is set on the outlet pipe 11, and the control component controls the interaction between gas and liquid by controlling the opening and closing of the gas valve and the control valve.
[0039] As a further solution of the present invention, a mounting groove 21 is provided on the side of the mounting frame 3 close to the inner glass plate 15, a mounting seat 16 is fixedly installed on the upper surface of the mounting frame 1, and the mounting seat 16 matches the mounting groove 21. Movable grooves 31 are provided on both sides of the mounting groove 21 corresponding to the mounting groove 21 in the mounting frame 3, and a mounting shaft 36 is slidably connected in the movable groove 31, and the mounting shaft 36 matches the mounting seat 16.
[0040] During operation, the mounting bracket 3 is fixed to the inside of the wall. When installing the mounting frame 1, the mounting seat 16 is embedded in the mounting groove 21. Then, the locking piece 19 is folded so that the locking piece 19 is away from the edge of the mounting bracket 3 and perpendicular to the surface of the sliding piece 20. The user pulls the sliding piece 20 to slide in the sliding groove 17 through the locking piece 19, thereby driving the mounting shaft 36 to slide into the mounting seat 16, so that the mounting shaft 36 is embedded in the mounting seat 16. Then, the locking piece 19 is folded back so that the locking piece 19 contacts the surface of the mounting bracket 3 again, so that the resistance rod on the mounting bracket 3 is The locking piece 19 is fixed in position, thereby fixing the position of the mounting shaft 36, and then the mounting frame 1 is installed with the mounting bracket 3. When the window is opened or closed, the handle is pulled upward through the lower end to make the mounting frame 1 rotate around the mounting shaft 36, thereby opening the passive window, making the installation and disassembly of the mounting frame 1 more convenient and quick, and there is no hinge gap in the outer connection between the mounting frame 1 and the mounting bracket 3. The outer connection is completely in fully attached horizontal contact, which reduces the gap when the passive window is installed, making the seal between the passive window and the room body tighter, thereby reducing the possibility of external interference with the internal environment.
[0041] As a further solution of the present invention, a slide groove 17 is provided on the side of the mounting frame 3 close to the inner glass plate 15 and corresponding to the movable groove 31, and a sliding member 20 is fixedly installed on the end of the mounting shaft 36 away from the mounting seat 16. The sliding member 20 is slidably connected to the slide groove 17, and a locking member 19 is rotatably installed on the sliding member 20. A resistance rod is provided on one side of the locking member 19. The outer side of the mounting frame 3 is in horizontal contact with the surface of the mounting frame 1 and a sealing gasket is provided at the connection.
[0042] As a further solution of the present invention, a filter is provided at the upper end of the treatment box 4 , a rainwater collection device is provided at the upper end of the treatment box 4 , and a positioning seat 18 is fixedly installed on one side of the treatment box 4 close to the installation frame 1 .
[0043] As a further solution of the present invention, the installation frame 1 is made of thermally-insulated aluminum, and a handle is fixedly installed on the lower end of the installation frame 1 close to the inner glass plate 15. The water inlet pipe 10, the water outlet pipe 5 and the outlet pipe 11 are all hoses.
Claims
1. An energy-saving heat-insulating aluminum inward-opening passive window, comprising a mounting frame (1) and a mounting bracket (3), characterized in that: The installation frame (1) is a rectangular ring and is provided with an active cavity (27) therein. Positioning teeth (30) are provided on the inner side of the installation frame (1). The positioning teeth (30) are provided in multiple groups. An outer glass plate (2) is fixedly installed on the positioning teeth (30) on one side, and an inner glass plate (15) is fixedly installed on the positioning teeth (30) on the other side. A middle glass plate (24) is fixedly installed on the installation frame (1) at a position corresponding to the position between the outer glass plate (2) and the inner glass plate (15). An outer storage cavity (26) is formed between the outer glass plate (2) and the middle glass plate (24), and an inner storage cavity (25) is formed between the inner glass plate (15) and the middle glass plate (24). The active An upper extension tube (29) is fixedly mounted on the upper end of the cavity (27), and a plurality of upper introduction branches (28) are fixedly mounted on the upper extension tube (29), and the lower ends of the upper introduction branches (28) extend into the inner storage cavity (25) and the outer storage cavity (26) respectively. One end of the upper extension tube (29) extends outside the mounting frame (1) and is provided with a circulation system, and the circulation system can automatically absorb the heat of the derived medium liquid. A processing component (33) is provided in the active cavity (27), and a gas introduction component is provided in the processing component (33), and the gas introduction component can control the gas to circulate between the inner storage cavity (25), the outer storage cavity (26) and the active cavity (27) according to the temperature. The circulation system comprises a treatment box (4), the treatment box (4) being arranged on a side of the installation frame (1) close to the outer glass plate (2), an upper connecting pipe (13) being fixedly mounted on the lower end of the treatment box (4), a sealing plate (14) being fixedly mounted on the lower end of the upper connecting pipe (13), a lower connecting pipe (12) being fixedly mounted on the lower end of the sealing plate (14), an outlet pipe (11) being fixedly mounted on the lower end of the lower connecting pipe (12), an end of the outlet pipe (11) away from the lower connecting pipe (12) being fixedly connected to the upper extension pipe (29), an inlet pipe (7) being fixedly mounted on the upper end of the treatment box (4), a sealing mounting member (6) being fixedly mounted on the inlet pipe (7), and a water outlet pipe (5) being fixedly mounted on the sealing mounting member (6); A lower extension tube (22) is fixedly mounted on the lower end of the movable cavity (27), and a plurality of lower introduction branches (35) are fixedly mounted on the lower extension tube (22), one end of each of the lower introduction branches (35) extending into the inner storage cavity (25) and the outer storage cavity (26), respectively. One end of the lower extension tube (22) extends from a side of the installation frame (1) close to the inner glass plate (15), and a second sealing installation component (23) is fixedly mounted on the extension end. A water inlet pipe (10) is fixedly mounted on the second sealing installation component (23), and side installation components (9) are fixedly mounted on both the water inlet pipe (10) and the water outlet pipe (5), and a plurality of groups of thin heat conducting pipes (8) are fixedly mounted between the side installation components (9); The gas introduction member includes a lower air pipe (32) and an upper air pipe (34), the upper air pipe (34) is fixedly mounted on the upper surface of the processing member (33), the lower air pipe (32) is provided with two groups and both are fixedly mounted on the lower surface of the processing member (33), the lower end of the lower air pipe (32) extends into the inner storage cavity (25) and the outer storage cavity (26), an air valve is fixedly mounted in the upper air pipe (34), a temperature sensor is provided in the processing member (33), and an air pressure sensor is fixed on the processing member (33) at a position corresponding to the lower air pipe (32); When the inner glass plate (15) and the outer glass plate (2) are damaged, the processing unit (33) automatically controls the flow of argon gas into the active cavity (27), thereby preventing a large amount of argon gas from leaking into the air and preventing the human body from being damaged by inhaling a large amount of argon gas. During the transportation process of the passive window, the argon gas can also be pre-stored in the active cavity (27) of the passive window, and the argon gas can be filled and discharged at any time after the inner glass plate (15) and the outer glass plate (2) are installed.
2. The energy-saving thermal insulation aluminum inward-opening passive window according to claim 1 is characterized by: A mounting groove (21) is provided on a side of the mounting frame (3) close to the inner glass plate (15); a mounting seat (16) is fixedly mounted on the upper surface of the mounting frame (1); the mounting seat (16) matches the mounting groove (21); movable grooves (31) are provided on both sides of the mounting frame (3) corresponding to the mounting groove (21); a mounting shaft (36) is slidably connected in the movable groove (31); the mounting shaft (36) matches the mounting seat (16).
3. The energy-saving thermal insulation aluminum inward-opening passive window according to claim 2 is characterized by: A sliding groove (17) is provided on the mounting frame (3) at a position close to the inner glass plate (15) and corresponding to the movable groove (31); a sliding member (20) is fixedly installed on one end of the mounting shaft (36) away from the mounting seat (16); the sliding member (20) is slidably connected to the sliding groove (17); a locking member (19) is rotatably installed on the sliding member (20); a resisting rod is provided on one side of the locking member (19); the outer side of the mounting frame (3) is in horizontal contact with the surface of the mounting frame (1), and a sealing gasket is provided at the connection.
4. The energy-saving thermal insulation aluminum inward-opening passive window according to claim 3 is characterized by: The upper end of the treatment box (4) is provided with a filter element, the upper end of the treatment box (4) is provided with a rainwater collection device, and a positioning seat (18) is fixedly installed on one side of the treatment box (4) close to the installation frame (1).
5. The energy-saving thermal insulation aluminum inward-opening passive window according to claim 4 is characterized by: The installation frame (1) is made of thermally-insulated aluminum. A handle is fixedly mounted on the lower end of one side of the installation frame (1) close to the inner glass plate (15). The water inlet pipe (10), the water outlet pipe (5) and the outlet pipe (11) are all hoses.
Citation Information
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