Broken bridge heat insulation waterproof system window
By adopting multi-layer waterproof structure and heat insulation components in the system window, combined with weather-resistant silicone sealant, the problems of rainwater seepage and heat transfer caused by aging of seal strips are solved, and efficient waterproof, heat insulation and water leakage are achieved.
Patent Information
- Application Number
- CN202510538160.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2045-04-27
AI Technical Summary
The existing system window seal strips are prone to aging, deforming and cracking in harsh environments, causing rainwater to seep into the room and there is a problem of heat transfer through the gaps.
The multi-layer waterproof structure is used to combine with the water-seepage guide structure, including a reversible heat insulation plate structure and a heat-insulating adhesive strip structure, combined with weather-resistant silicone sealant and waterproof components to achieve moisture isolation and heat barrier.
Effectively prevent rainwater from seeping into the room, ensure the heat insulation and sealing of the bottom between the window frame and the outer window, and achieve the purpose of multi-layer waterproof insulation and self-dirring of water seepage.
Smart Images

Figure CN120193732A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of broken bridge system windows, and particularly relates to a broken bridge heat insulation and waterproof system window. Background Art
[0002] In the construction field, as an important part of the building envelope structure, the performance of windows directly affects the energy consumption, indoor comfort and service life of buildings. A system window is a window product with high performance and systematicness, which designs, develops and manufactures various components such as window frames, window sashes, hardware fittings, and glass as a whole system.
[0003] The sealing of the system window is mainly achieved by rubber sealing strips. Under the action of harsh environmental factors such as long-term exposure to wind, sun, temperature changes, and rain erosion, the sealing strips are prone to aging, deformation, and cracking, thus losing their sealing function. When the sealing strips fail, rainwater will seep into the room along the gaps, causing problems such as damp walls and damaged decorations. Moreover, the bottom between the window body and the window frame has the largest opening and closing angle, and the gaps here are prone to heat transfer, and heat bridges are easily formed here. Therefore, it is necessary to provide a broken bridge heat insulation and waterproof system window, which adopts a multi-layer waterproof structure in cooperation with a water seepage drainage structure, can effectively isolate moisture, and at the same time quickly drain away the seepage water. By adopting a flip-type heat insulation board structure and a heat insulation rubber strip structure, it can effectively block the heat transfer from the gaps. Summary of the Invention
[0004] The purpose of the present invention is to provide a broken bridge heat insulation and waterproof system window, which adopts a multi-layer waterproof structure in cooperation with a water seepage drainage structure, can effectively isolate moisture, and at the same time quickly drain away the seepage water. By adopting a flip-type heat insulation board structure and a heat insulation rubber strip structure, it can effectively block the heat transfer from the gaps to solve the above technical problems.
[0005] The technical solution of the present invention to solve the above technical problems is as follows: A broken bridge heat insulation and waterproof system window, the system window includes a window frame: A rotatable outward-opening window is arranged in the inner cavity of the window frame, a hollow laminated glass is installed in the inner cavity of the outward-opening window, a waterproof assembly is arranged at the bottom of the outward-opening window, a heat insulation assembly is arranged at the bottom of the inner cavity of the window frame, glass retaining strips are clamped around the inner cavity of the outward-opening window, a sealing strip is inserted on the side of the glass retaining strip close to the window frame, the sealing strip is closely attached to the glass retaining strip and the outward-opening window, clamping strips are pressed around the two sides of the hollow laminated glass, weather-resistant silicone sealants adapted to the clamping strips are integrally formed around the inner cavity of the outward-opening window, weather-resistant silicone sealants are filled around the two sides of the hollow laminated glass, and the weather-resistant silicone sealants cover the surfaces of the clamping openings and the outward-opening window.
[0006] Preferably, the waterproof component includes a water collecting square pipe fixedly connected to the bottom left of the outward-opening window. A water guiding plate is integrally formed on the left side of the top of the outward-opening window. A plurality of drain holes are formed in the bottom left of the outward-opening window, and the drain holes are communicated with the water collecting square pipe. A plurality of floating balls are arranged in the inner cavity of the water collecting square pipe. Positioning sockets are fixedly connected to the bottom left of the inner cavity of the window frame and the bottom left of the outward-opening window. A water stop belt is inserted into the inner cavity of the positioning socket, and the two water stop belts are in mutual extrusion contact. A first clamping groove is integrally formed at the bottom of the outward-opening window, and a waterproof rubber strip is inserted into the inner cavity of the first clamping groove. The surface of the waterproof rubber strip is closely attached to the left side of the window frame.
[0007] Preferably, the heat insulation component includes a T-shaped clamping groove integrally formed on the bottom right of the outward-opening window. An H-shaped insertion plate is clamped in the inner cavity of the T-shaped clamping groove. A rotatable first heat insulation plate is arranged on the left side of the bottom of the H-shaped insertion plate. A second heat insulation plate is integrally formed on the bottom right of the inner cavity of the window frame. A rubber plate is adhesively fixed to the right side of the first heat insulation plate. A concave surface is formed on the left side of the second heat insulation plate, and the rubber plate is pressed against the inner wall of the concave surface.
[0008] Preferably, a second clamping groove is integrally formed on the bottom right of the inner cavity of the window frame. A sound insulation strip is inserted into the inner cavity of the second clamping groove. The surface of the sound insulation strip is closely attached to the right side of the outward-opening window. A corrugated sleeve is fixedly connected to the left side of the bottom of the H-shaped insertion plate, and the bottom end of the corrugated sleeve is fixedly connected to the surface of the first heat insulation plate.
[0009] Preferably, a rotating column is arranged through the front side of the first heat insulation plate. The rotating column is fixedly connected to the first heat insulation plate and is rotatably connected to the T-shaped clamping groove. A plurality of arc-shaped grooves are formed on the top of the first heat insulation plate. A torsion spring sleeved on the surface of the rotating column is arranged in the inner cavity of the arc-shaped groove. One end of the torsion spring is welded to the first heat insulation plate, and the other end of the torsion spring is welded to the T-shaped clamping groove.
[0010] Preferably, a guiding arc surface is arranged at the bottom of the first heat insulation plate, and the surface of the guiding arc surface is in sliding contact with the left side of the second heat insulation plate.
[0011] Preferably, a plurality of guiding clamping seats are inserted into the inner cavity of the water collecting square pipe. A plurality of guiding clamping grooves adapted to the guiding clamping seats are formed at the bottom of the water collecting square pipe. The floating balls are slidably connected between two adjacent guiding clamping seats.
[0012] Preferably, a screw is threadedly connected to the bottom of the guiding clamping seat. The top end of the screw penetrates to the top of the guiding clamping seat and is threadedly connected to the water collecting square pipe.
[0013] Preferably, a handle is installed at the bottom on the right side of the outward-opening window, and hinges are installed at the tops of the front and rear sides of the inner cavity of the window frame. One end of each hinge away from the window frame is fixedly connected to the outward-opening window.
[0014] A heat insulation and waterproof method for a broken bridge heat insulation and waterproof system window is as follows: Step 1: The user can close the outward-opening window through the handle, so that the outward-opening window is enclosed in the inner cavity of the window frame. During the process of closing the outward-opening window, the outward-opening window drives the first heat insulation board to displace to the right through the H-shaped insertion board until the first heat insulation board contacts the second heat insulation board. Under the guiding action of the guiding arc surface, the first heat insulation board rotates, and at the same time, the corrugated sleeve and the torsion spring are both compressed until the first heat insulation board rotates to a vertical state, and at the same time, the rubber board is pressed into the inner cavity of the concave surface to seal and insulate the bottom between the inner cavity of the window frame and the bottom of the outward-opening window. Step 2: During the process of closing the outward-opening window, the upper water stop belt and the bottom water stop belt are extruded on the surface, so as to seal and waterproof the bottom between the inner cavity of the window frame and the bottom of the outward-opening window. Finally, the waterproof rubber strip is pressed on the left side of the window frame, and the right side of the outward-opening window is pressed on the surface of the sound insulation strip, so as to seal and insulate between the window frame and the outward-opening window. Step 3: During use, through the combined use of the clamping strip and the weather-resistant silicone sealant, the connection position between the outward-opening window and the insulating glass with interlayer is sealed to prevent rainwater from penetrating at the connection position between the outward-opening window and the insulating glass with interlayer. Through the combined use of its one card slot and the waterproof rubber strip, the connection position between the left side of the outward-opening window and the window frame is sealed and waterproofed. Through the combined use of the two water stop belts, a waterproof isolation is formed between the outward-opening window and the window frame to prevent rainwater from seeping into the room. Step 4: Since the left weather-resistant silicone sealant is always outdoors, under the long-term action of light, cracks and gaps may appear at the weather-resistant silicone sealant. When gaps appear in the weather-resistant silicone sealant, rainwater penetrates from the gaps to the left side of the water guide plate, and the accumulated water enters the inner cavity of the water collecting square pipe from the drain hole, so that the accumulated water is stored in the inner cavity of the water collecting square pipe. Under the buoyancy of the accumulated water, the floating ball rises, and then the surface of the floating ball is separated from the bottom of the water collecting square pipe, so that the accumulated water is discharged from the bottom of the water collecting square pipe, effectively preventing the accumulated water from seeping at the outward-opening window.
[0015] The beneficial effects of the present invention are as follows: Through the setting of the waterproof component, the bottom between the outward-opening window and the insulating glass with interlayer is sealed and waterproofed and the accumulated water is dredged. At the same time, with the combined use of the heat insulation component, the bottom between the window frame and the outward-opening window is heat-insulated and sealed, so as to achieve the purpose of multi-layer waterproofing and heat insulation and self-dredging of seepage water. Description of the Drawings
[0016] Advantages of the above and / or other aspects of the present invention will become clearer and easier to understand through the following detailed description in conjunction with the accompanying drawings, which are illustrative only and do not limit the present invention, where: Figure 1 It is a schematic front sectional view of an embodiment of the present invention; Figure 2 It is a schematic front sectional view of a window frame, an outward-opening window and insulating glass with interlayer of an embodiment of the present invention; Figure 3 For an embodiment of the present invention Figure 2 Partial enlarged view of point A in it; Figure 4 For an embodiment of the present invention Figure 2 Partial enlarged view of point B in it; Figure 5 It is a schematic perspective view of an embodiment of the present invention; Figure 6 It is a perspective exploded view of a waterproof component of an embodiment of the present invention; Figure 7 It is a perspective exploded view of a heat insulation component of an embodiment of the present invention.
[0017] In the accompanying drawings, the components represented by each reference numeral are as follows: 1. Window frame, 2. Outward-opening window, 3. Insulating glass with interlayer, 4. Waterproof component, 41. Water-collecting square pipe, 42. Water guide plate, 43. Drainage hole, 44. Floating ball, 45. Positioning socket, 46. Water stop belt, 47. One of the card slots, 48. Waterproof rubber strip, 5. Heat insulation component, 51. T-shaped card slot, 52. H-shaped plug board, 53. First heat insulation board, 54. Second heat insulation board, 55. Rubber plate, 56. Concave surface, 57. Second card slot, 58. Sound insulation strip, 59. Corrugated sleeve, 6. Glass bead, 7. Card strip, 8. Bayonet, 9. Weather-resistant silicone sealant, 10. Rotating column, 11. Arc-shaped groove, 12. Torsion spring, 13. Guide arc surface, 14. Guide seat, 15. Guide card slot, 16. Screw, 17. Handle, 18. Hinge, 19. Sealing strip. Detailed implementation manners
[0018] Hereinafter, embodiments of the broken bridge heat insulation and waterproof system window of the present invention will be described with reference to the accompanying drawings.
[0019] The embodiments described herein are specific specific implementation manners of the present invention for explaining the concept of the present invention, and are all explanatory and exemplary, and should not be construed as limiting the implementation manners of the present invention and the scope of the present invention. Except for the embodiments described herein, those skilled in the art can also adopt other obvious technical solutions based on the content disclosed in the claims and the specification of the present application, and these technical solutions include technical solutions that make any obvious substitutions and modifications to the embodiments described herein.
[0020] The drawings in this specification are schematic diagrams, which assist in explaining the concept of the present invention and schematically show the shapes of various parts and their mutual relationships. Please note that in order to clearly show the structures of the components in the embodiments of the present invention, the drawings are not drawn according to the same scale. The same reference numerals are used to denote the same parts.
[0021] Embodiment 1: Figures 1-7 A broken-bridge heat-insulating and waterproof system window showing an embodiment of the present invention is shown. The system window includes a window frame 1. A rotatable external window 2 is provided in the inner cavity of the window frame 1. A handle 17 is installed at the bottom on the right side of the external window 2. Hinges 18 are installed at the tops of the front and rear sides of the inner cavity of the window frame 1. One end of the hinge 18 away from the window frame 1 is fixedly connected to the external window 2. A hollow laminated glass 3 is installed in the inner cavity of the external window 2. A waterproof assembly 4 is provided at the bottom of the external window 2. A heat-insulating assembly 5 is provided at the bottom of the inner cavity of the window frame 1. Glass retaining strips 6 are snap-fitted around the inner cavity of the external window 2. A sealing strip 19 is inserted on the side of the glass retaining strip 6 close to the window frame 1. The sealing strip 19 is closely attached to the glass retaining strip 6 and the external window 2. Clips 7 are pressed around the two sides of the hollow laminated glass 3. Weather-resistant silicone sealant 9 adapted to the clips 7 is integrally formed around the inner cavity of the external window 2. Weather-resistant silicone sealant 9 is filled around the two sides of the hollow laminated glass 3. The weather-resistant silicone sealant 9 covers the surfaces of the bayonet 8 and the external window 2.
[0022] Embodiment 2: It is basically the same as Embodiment 1, and furthermore: The waterproof component 4 includes a water collecting square pipe 41 fixedly connected to the left bottom of the outer window 2. A plurality of guiding clamping seats 14 are inserted into the inner cavity of the water collecting square pipe 41. A plurality of guiding clamping grooves 15 adapted to the guiding clamping seats 14 are formed at the bottom of the water collecting square pipe 41. A floating ball 44 is slidably connected between two adjacent guiding clamping seats 14. A screw 16 is threadedly connected to the bottom of the guiding clamping seat 14. The top end of the screw 16 penetrates to the top of the guiding clamping seat 14 and is threadedly connected to the water collecting square pipe 41. By the combined use of the guiding clamping seat 14, the guiding clamping groove 15 and the screw 16, the movement track of the floating ball 44 is limited to ensure that the floating ball 44 can stably lift and lower vertically, so that the floating ball 44 can accurately block the bottom of the water collecting square pipe 41 after falling back. A water guiding plate 42 is integrally formed on the left side of the top of the outer window 2. A plurality of drain holes 43 are formed at the left bottom of the outer window 2. The drain holes 43 are communicated with the water collecting square pipe 41. A plurality of floating balls 44 are arranged in the inner cavity of the water collecting square pipe 41. Positioning sockets 45 are fixedly connected to the left side of the bottom of the inner cavity of the window frame 1 and the left side of the bottom of the outer window 2. A water stop belt 46 is inserted into the inner cavity of the positioning socket 45. The two water stop belts 46 are in mutual extrusion contact. A first clamping groove 47 is integrally formed at the bottom of the outer window 2. A waterproof rubber strip 48 is inserted into the inner cavity of the first clamping groove 47. The surface of the waterproof rubber strip 48 is closely attached to the left side of the window frame 1. By the combined use of the water collecting square pipe 41, the water guiding plate 42 and the drain holes 43, the moisture that may seep in from the connection position between the insulating glass 3 and the outer side of the outer window 2 is collected. At the same time, with the combined use of the floating ball 44, the bottom of the water collecting square pipe 41 is blocked to prevent the intrusion of dust. After water accumulates in the inner cavity of the water collecting square pipe 41, it rises under the action of the buoyancy of the water, so as to drain the accumulated water in the inner cavity of the water collecting square pipe 41. By the combined use of the first clamping groove 47 and the waterproof rubber strip 48, the connection position between the left side of the outer window 2 and the window frame 1 is sealed, so as to prevent rainwater from entering from the connection position between the bottom of the outer window 2 and the left side of the window frame 1. At the same time, with the combined use of the positioning socket 45 and the water stop belt 46, the middle section of the bottom of the outer window 2 and the middle section of the bottom of the inner cavity of the window frame 1 are sealed to further prevent the penetration of moisture.
[0023] Embodiment 3: It is basically the same as Embodiment 1, and further: The heat insulation component 5 includes a T-shaped card slot 51 integrally formed on the right side of the bottom of the outward-opening window 2. The inner cavity of the T-shaped card slot 51 is engaged with an H-shaped insertion plate 52. The left side of the bottom of the H-shaped insertion plate 52 is provided with a rotatable first heat insulation plate 53. A rotating column 10 is penetrated through the front side of the first heat insulation plate 53. The rotating column 10 is fixedly connected to the first heat insulation plate 53, and the rotating column 10 is rotatably connected to the T-shaped card slot 51. A plurality of arc-shaped grooves 11 are formed on the top of the first heat insulation plate 53. A torsion spring 12 sleeved on the surface of the rotating column 10 is arranged in the inner cavity of the arc-shaped groove 11. One end of the torsion spring 12 is welded to the first heat insulation plate 53, and the other end of the torsion spring 12 is welded to the T-shaped card slot 51. Through the combined use of the rotating column 10, the arc-shaped groove 11 and the torsion spring 12, an elastic twisting effect is exerted on the first heat insulation plate 53, so that when the outward-opening window 2 is opened, the first heat insulation plate 53 rotates upward and resets under the action of torsion, thereby preventing the first heat insulation plate 53 at a vertical angle from hindering the opening and closing of the outward-opening window 2. A guiding arc surface 13 is arranged at the bottom of the first heat insulation plate 53. The surface of the guiding arc surface 13 is in sliding contact with the left side of the second heat insulation plate 54. The second heat insulation plate 54 is integrally formed on the right side of the bottom of the inner cavity of the window frame 1. A rubber plate 55 is adhesively fixed to the right side of the first heat insulation plate 53. A concave surface 56 is formed on the left side of the second heat insulation plate 54. The rubber plate 55 is pressed against the inner wall of the concave surface 56. A second card slot 57 is integrally formed on the right side of the bottom of the inner cavity of the window frame 1. A sound insulation strip 58 is inserted into the inner cavity of the second card slot 57. The surface of the sound insulation strip 58 is in close fit with the right side of the outward-opening window 2. The left side of the bottom of the H-shaped insertion plate 52 is fixedly connected with a corrugated sleeve 59. The bottom end of the corrugated sleeve 59 is fixedly connected to the surface of the first heat insulation plate 53. Through the setting of the heat insulation component 5, the combined use of the T-shaped card slot 51 and the H-shaped insertion plate 52 plays a role in installing and fixing the first heat insulation plate 53. At the same time, in the combined use of the first heat insulation plate 53 and the second heat insulation plate 54, the bottom of the inner cavity of the window frame 1 and the bottom of the outward-opening window 2 are isolated, thereby preventing heat from being transferred from between the bottom of the outward-opening window 2 and the window frame 1 to the room. At the same time, under the combined use of the rubber plate 55 and the concave surface 56, the contact between the first heat insulation plate 53 and the second heat insulation plate 54 is further made close, enhancing the heat blocking effect.
[0024] A heat insulation and waterproof method for a broken bridge heat insulation and waterproof system window, and the method steps are as follows: Step 1: The user can close the outward-opening window 2 by turning the handle 17, so that the outward-opening window 2 is enclosed in the inner cavity of the window frame 1. During the process of closing the outward-opening window 2, the outward-opening window 2 drives the first heat insulation plate 53 to displace to the right through the H-shaped insertion plate 52 until the first heat insulation plate 53 comes into contact with the second heat insulation plate 54. Under the guiding action of the guiding arc surface 13, the first heat insulation plate 53 rotates. At the same time, the corrugated sleeve 59 and the torsion spring 12 are both compressed until the first heat insulation plate 53 rotates to a vertical state. At the same time, the rubber plate 55 is pressed into the inner cavity of the concave surface 56 to seal and insulate the bottom between the inner cavity of the window frame 1 and the bottom of the outward-opening window 2. Step 2: During the process of closing the outward-opening window 2, the water stop strips 46 located above and the water stop strips 46 at the bottom are squeezed against each other, thereby sealing and waterproofing the bottom between the inner cavity of the window frame 1 and the bottom of the outward-opening window 2. Finally, the waterproof rubber strip 48 is pressed against the left side of the window frame 1, and the right side of the outward-opening window 2 is pressed against the surface of the sound insulation strip 58, so as to seal and insulate between the window frame 1 and the outward-opening window 2. Step 3: During use, through the combined use of the clamping strip 7 and the weather-resistant silicone sealant 9, the connection position between the outward-opening window 2 and the insulating glass unit 3 is sealed to prevent rainwater from penetrating through the connection position between the outward-opening window 2 and the insulating glass unit 3. Through the combined use of its one card slot 47 and the waterproof rubber strip 48, the connection position between the left side of the outward-opening window 2 and the window frame 1 is sealed and waterproofed. Through the combined use of the two water stop strips 46, a waterproof isolation is formed between the outward-opening window 2 and the window frame 1 to prevent rainwater from seeping into the room. Step 4: Since the left weather-resistant silicone sealant 9 is long-term outdoors, under the long-term action of light, cracks and gaps may appear at the weather-resistant silicone sealant 9. When gaps appear in the weather-resistant silicone sealant 9, rainwater penetrates from the gaps to the left side of the water guide plate 42, and the accumulated water enters the inner cavity of the water collection square pipe 41 from the drain hole 43, so that the accumulated water is stored in the inner cavity of the water collection square pipe 41. Under the buoyancy of the accumulated water, the floating ball 44 rises, and then the surface of the floating ball 44 is separated from the bottom of the water collection square pipe 41, so that the accumulated water is drained from the bottom of the water collection square pipe 41, effectively preventing the accumulated water from seeping at the outward-opening window 2.
[0025] In summary, for this broken bridge heat insulation and waterproof system window, through the setting of the waterproof component 4, the bottom between the outward-opening window 2 and the insulating glass unit 3 is sealed and waterproofed and the accumulated water is drained. At the same time, with the combined use of the heat insulation component 5, the bottom between the window frame 1 and the outward-opening window 2 is heat-insulated and sealed, so as to achieve the purpose of multi-layer waterproofing and heat insulation and self-drainage of seepage water.
[0026] The disclosed technical features are not limited to the combinations with other disclosed features. Those skilled in the art can also make other combinations between the technical features according to the purpose of the invention, subject to achieving the purpose of the present invention.
Claims
1. A thermal insulation and waterproof system window, characterized in that: The system window comprises a window frame (1): the inner cavity of the window frame (1) is provided with a rotatable outward-opening window (2), the inner cavity of the outward-opening window (2) is installed with a hollow laminated glass (3), the bottom of the outward-opening window (2) is provided with a waterproof component (4), the bottom of the inner cavity of the window frame (1) is provided with a heat insulation component (5), the inner cavity of the outward-opening window (2) is clamped with glass buckle strips (6) on all sides, and a sealing strip (19) is inserted on the side of the glass buckle strip (6) close to the window frame (1). The sealing strip (19) is tightly fitted with the glass buckle strip (6) and the outward-opening window (2); the clamping strips (7) are pressed around the sides of both sides of the hollow laminated glass (3); the weather-resistant silicone sealant (9) that is compatible with the clamping strip (7) is integrally formed around the inner cavity of the outward-opening window (2); the weather-resistant silicone sealant (9) is filled around the sides of both sides of the hollow laminated glass (3); and the weather-resistant silicone sealant (9) covers the surface of the clamping slot (8) and the outward-opening window (2).
2. A thermal insulation and waterproof system window according to claim 1, characterized in that: The waterproof component (4) comprises a water collecting square tube (41) fixedly connected to the left bottom of the outward opening window (2); a water guide plate (42) is integrally formed on the left side of the top of the outward opening window (2); a plurality of drainage holes (43) are provided on the left bottom of the outward opening window (2); the drainage holes (43) are connected to the water collecting square tube (41); a plurality of floating balls (44) are provided in the inner cavity of the water collecting square tube (41); a positioning socket (45) is fixedly connected to the left side of the inner cavity bottom of the window frame (1) and the left side of the bottom of the outward opening window (2); a water stop strip (46) is inserted into the inner cavity of the positioning socket (45); the two water stop strips (46) are pressed and contacted with each other; a card slot (47) is integrally formed on the bottom of the outward opening window (2); a waterproof rubber strip (48) is inserted into the inner cavity of the card slot (47); the surface of the waterproof rubber strip (48) is tightly fitted with the left side of the window frame (1).
3. The thermal insulation and waterproof system window according to claim 2, characterized in that: The heat insulation component (5) comprises a T-shaped slot (51) integrally formed and arranged on the right side of the bottom of the outward-opening window (2); an H-shaped plug plate (52) is engaged in the inner cavity of the T-shaped slot (51); a rotatable first heat insulation plate (53) is arranged on the left side of the bottom of the H-shaped plug plate (52); a second heat insulation plate (54) is integrally formed and arranged on the right side of the bottom of the inner cavity of the window frame (1); a rubber plate (55) is bonded and fixed to the right side of the first heat insulation plate (53); a concave surface (56) is provided on the left side of the second heat insulation plate (54); and the rubber plate (55) is pressed onto the inner wall of the concave surface (56).
4. The thermal insulation and waterproof system window according to claim 3, characterized in that: A second slot (57) is integrally formed on the right side of the bottom of the inner cavity of the window frame (1); a sound insulation strip (58) is inserted into the inner cavity of the second slot (57); the surface of the sound insulation strip (58) is tightly fitted to the right side of the outward-opening window (2); a corrugated sleeve (59) is fixedly connected to the left side of the bottom of the H-shaped plug plate (52); and the bottom end of the corrugated sleeve (59) is fixedly connected to the surface of the first heat insulation board (53).
5. The thermal insulation and waterproof system window according to claim 4, characterized in that: A rotating column (10) is provided through the front side of the first heat insulation plate (53), the rotating column (10) is fixedly connected to the first heat insulation plate (53), the rotating column (10) is rotatably connected to the T-shaped slot (51), a plurality of arc-shaped grooves (11) are provided on the top of the first heat insulation plate (53), a torsion spring (12) sleeved on the surface of the rotating column (10) is provided in the inner cavity of the arc-shaped groove (11), one end of the torsion spring (12) is welded to the first heat insulation plate (53), and the other end of the torsion spring (12) is welded to the T-shaped slot (51).
6. The thermal insulation and waterproof system window according to claim 5, characterized in that: A guide arc surface (13) is provided at the bottom of the first heat insulation board (53), and the surface of the guide arc surface (13) is in sliding contact with the left side of the second heat insulation board (54).
7. The thermal insulation and waterproof system window according to claim 6, characterized in that: A plurality of guide clamping seats (14) are inserted into the inner cavity of the water collecting square tube (41), a plurality of guide clamping slots (15) matching the guide clamping seats (14) are provided at the bottom of the water collecting square tube (41), and the floating ball (44) is slidably connected between two adjacent guide clamping seats (14).
8. The thermal insulation and waterproof system window according to claim 7, characterized in that: The bottom of the guide holder (14) is threadedly connected to a screw (16), and the top of the screw (16) penetrates the top of the guide holder (14) and is threadedly connected to the water collecting square pipe (41).
9. The thermal insulation and waterproof system window according to claim 8, characterized in that: A handle (17) is installed at the bottom of the right side of the outward-opening window (2), and hinges (18) are installed at the top of the front and rear sides of the inner cavity of the window frame (1), and the end of the hinge (18) away from the window frame (1) is fixedly connected to the outward-opening window (2).
10. A thermal insulation and waterproofing method for a thermal insulation and waterproofing system window of a thermal insulation bridge, which is applied to the thermal insulation and waterproofing system window of claim 9, characterized in that: The method steps are as follows: Step 1: The user can close the outward-opening window (2) by means of the handle (17), so that the outward-opening window (2) is enclosed in the inner cavity of the window frame (1). In the process of closing the outward-opening window (2), the outward-opening window (2) drives the first heat insulation board (53) to move to the right through the H-shaped plug plate (52) until the first heat insulation board (53) comes into contact with the second heat insulation board (54). Under the guidance of the guide arc surface (13), the first heat insulation board (53) rotates, and at the same time, the corrugated sleeve (59) and the torsion spring (12) are compressed until the first heat insulation board (53) rotates to a vertical state. At the same time, the rubber plate (55) is pressed into the inner cavity of the concave surface (56), so as to seal and insulate the bottom of the inner cavity of the window frame (1) and the bottom of the outward-opening window (2). Step 2: During the closing process of the outward-opening window (2), the water stop strip (46) at the top and the surface of the water stop strip (46) at the bottom are squeezed, thereby sealing and waterproofing the bottom of the inner cavity of the window frame (1) and the bottom of the outward-opening window (2). Finally, the waterproof rubber strip (48) is pressed onto the left side of the window frame (1), and the right side of the outward-opening window (2) is pressed onto the surface of the sound insulation strip (58), thereby sealing and insulating the window frame (1) and the outward-opening window (2); Step 3: During use, the connection position between the outward-opening window (2) and the hollow laminated glass (3) is sealed by using the card strip (7) and the weather-resistant silicone sealant (9) to prevent rainwater from penetrating from the connection position between the outward-opening window (2) and the hollow laminated glass (3); the connection position between the outward-opening window (2) and the left side of the window frame (1) is sealed and waterproofed by using one of the card slots (47) and the waterproof adhesive strip (48); and waterproof isolation is formed between the outward-opening window (2) and the window frame (1) by using two water stop strips (46) to prevent rainwater from penetrating into the room; Step 4: Since the left side weather-resistant silicone sealant (9) is outdoors for a long time, under the long-term action of light, cracks and cracks may appear on the weather-resistant silicone sealant (9). When cracks appear in the weather-resistant silicone sealant (9), rainwater penetrates from the cracks to the left side of the water guide plate (42), and the accumulated water enters the inner cavity of the water collecting square tube (41) from the drainage hole (43), so that the accumulated water is stored in the inner cavity of the water collecting square tube (41). Under the buoyancy of the accumulated water, the float (44) rises upward, and then the surface of the float (44) is separated from the bottom of the water collecting square tube (41), so that the accumulated water is discharged from the bottom of the water collecting square tube (41), thereby effectively preventing the accumulated water from seeping at the external window (2).
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