Energy-saving bridge-cutoff heat-insulation aluminum alloy door and window
Through the combined design of threaded rod and sealing ring, the problem that the broken bridge aluminum alloy door and window sealing ring cannot fit closely in the form gap is solved, achieving better sealing effect and comfort, and reducing friction and weight.
Patent Information
- Application Number
- CN202421461627.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-06-25
AI Technical Summary
The sealing rings of existing broken bridge aluminum alloy doors and windows may not fit closely with the gaps in the form without external force, resulting in unsatisfactory sealing effect.
The combination of threaded rod and sealing ring is adopted. By adjusting the fit between the pin and the limiting plate, the tight connection between the first beam frame and the second beam frame is achieved, and rubber gaskets are provided at key parts to prevent air and moisture from penetrating.
Effectively prevent air and moisture from penetrating, improve sealing effect, ensure a tight fit between the gaps in the form, enhance sealing performance and comfort, and reduce the sliding friction of the glass plate and reduce the weight of doors and windows.
Smart Images

Figure CN223119788U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aluminum alloy doors and windows, in particular to an energy-saving broken bridge heat-insulating aluminum alloy door and window. Background Technique
[0002] The broken bridge aluminum alloy door and window is an improved type launched on the basis of the old aluminum alloy door and window in order to improve the heat preservation performance of the door and window. The outstanding advantages of the heat-insulating broken bridge aluminum alloy door and window are high strength, good heat preservation and heat insulation performance, good rigidity, good fire resistance, large lighting area, good atmospheric corrosion resistance, high comprehensive performance, long service life and good decoration effect.
[0003] In the existing broken bridge aluminum alloy doors and windows, usually the doors and windows are assembled according to the design requirements to ensure that all components are tightly connected, and then sealant is applied around and at the gaps of the doors and windows to prevent air and moisture from penetrating. Finally, by checking whether the opening and closing of the doors and windows are normal, the locks and hinges are adjusted to ensure smooth use.
[0004] However, there are some defects in this broken bridge aluminum alloy door and window. In order to make the sealing and sound insulation effect of the door and window better, usually sealing rings are sleeved on two window bodies. In this device, only the closing of the window bodies is used to realize the closing of the sealing rings at both ends. Due to the lack of external force, the sealing rings may not closely fit the gap between the two window bodies, resulting in an unsatisfactory sealing effect.
[0005] Therefore, it is necessary to provide an energy-saving broken bridge heat-insulating aluminum alloy door and window to solve the above technical problems. Content of the Utility Model
[0006] In view of the above situation, in order to overcome the defects of the prior art, the utility model provides an energy-saving broken bridge heat-insulating aluminum alloy door and window which can more closely fit the gap between two window bodies through the combination of a threaded rod and a sealing ring, effectively prevent the penetration of air and moisture, and at the same time make the sealing effect better.
[0007] In order to achieve the above purpose, the technical scheme adopted by the utility model is as follows:
[0008] The energy-saving broken bridge heat-insulating aluminum alloy door and window includes: a frame body, a beam frame and an adjusting component. The frame body includes a frame. A groove is arranged inside the frame, and a beam frame is installed inside the groove. The beam plate includes a first beam frame and a second beam frame movably installed inside the frame. Glass plates are installed inside both the first beam frame and the second beam frame. Adjusting components are symmetrically arranged on the vertical beam frame of the first beam frame. The adjusting components include adjusting bolts symmetrically installed on the vertical beam frame. The two adjusting bolts penetrate through the vertical beam frame of the first beam frame and are connected with a limiting plate. One end of the limiting plate is provided with a rubber gasket, and the limiting plate abuts against the side wall of the second beam frame.
[0009] Preferably, a positioning groove is provided on the end side of the second beam frame, and a rubber gasket is also provided in the positioning groove, and the limiting plate is fitted into the positioning groove provided on the second beam frame.
[0010] Preferably, a notch is further provided in the bottom frame of the first beam frame, and sliding grooves are symmetrically provided in the notch, and the glass plate moves left and right within the range of travel provided by the sliding grooves through the sliding plate.
[0011] Preferably, a rubber frame is sleeved outside the glass plate, the rubber frame wraps the entire glass plate therein, and the outer size of the rubber frame fits into the inner grooves of the first beam frame and the second beam frame.
[0012] Preferably, a groove is provided in the frame, and a rubber gasket is sleeved outside the outer ring of the groove.
[0013] Preferably, a through groove is further provided in the bottom frame of the first beam frame, and the through groove is completely penetrated.
[0014] Compared with the prior art, the utility model has the following beneficial effects:
[0015] (1) By the combined use of the frame, the first beam frame, the second beam frame and the adjusting assembly provided by the utility model, during actual use, through the cooperation of the adjusting bolt, the limiting plate and the rubber gasket, the first beam frame and the second beam frame can be tightly connected. By tightly fitting the gap between the two window bodies, the penetration of air and moisture can be effectively prevented, and at the same time, the sealing effect is better;
[0016] (2) By the positioning groove provided on the end side of the second beam frame of the utility model, during actual use, the limiting plate is driven by the adjusting bolt to move into the positioning groove provided on the end side of the second beam frame. Through the fitting of the provided positioning groove and the limiting plate, the tight connection between the two can be realized, and the possibility of poor sealing effect caused by the existence of a gap between them can be avoided;
[0017] (3) By the notch and the sliding groove provided in the first beam frame of the utility model, during actual use, the glass plate is moved left and right within the range of travel provided by the sliding groove through the sliding plate. The provided sliding groove can reduce the friction force when the glass plate slides, and further make the left and right adjustment of the glass plate smoother. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a front view structural schematic diagram of the energy-saving broken bridge heat-insulating aluminum alloy door and window provided by the utility model;
[0019] Figure 2 is a structural schematic diagram of the first beam frame and the second beam frame;
[0020] Figure 3 is a structural schematic diagram of the glass plate installation;
[0021] Figure 4 Schematic diagram of the installation structure of the adjustment component
[0022] Among them, the names corresponding to the reference numerals are: 100, frame; 101, framework; 102, rubber gasket; 200, beam plate; 201, first beam frame; 202, through groove; 203, sliding groove; 204, second beam frame; 205, glass plate; 206, rubber frame; 207, positioning groove; 300, adjustment component; 301, adjustment bolt; 302, limit plate; 303, sealing gasket Specific implementation manners
[0023] The present utility model will be further described below in conjunction with the accompanying drawings and embodiments. The implementation manners of the present utility model include but are not limited to the following embodiments
[0024] First embodiment
[0025] As shown in the figure Figures 1-4 The energy-saving broken bridge heat-insulating aluminum alloy door and window provided by the present utility model includes: a frame 100, a beam plate 200 and an adjustment component 300. The frame 100 includes a framework 101. A groove is provided inside the framework 101, and the beam plate 200 is installed inside the groove. The beam plate 200 includes a first beam frame 201 and a second beam frame 204 that are movably installed inside the framework 101. Glass plates 205 are installed inside both the first beam frame 201 and the second beam frame 204. Adjustment components 300 are symmetrically arranged on the vertical beam frame of the first beam frame 201. The adjustment component 300 includes adjustment bolts 301 that are symmetrically installed on the vertical beam frame. The two adjustment bolts 301 penetrate through the vertical beam frame of the first beam frame 201 and are connected to a limit plate 302. A sealing gasket 303 is provided at one end of the limit plate 302. The limit plate 302 abuts against the side wall of the second beam frame 204. During actual use, the installer first snaps the first beam frame 201 and the second beam frame 204 into the groove provided in the framework 101. When the first beam frame 201 and the second beam frame 204 are installed, by rotating the adjustment bolt 301 provided on the end side of the first beam frame 201. Since the port of the adjustment bolt 301 is a threaded structure, by rotating the adjustment bolt 301, the limit plate 302 at one end is moved towards the second beam frame 204 until the sealing gasket 303 provided at one end of the limit plate 302 tightly abuts against the second beam frame 204
[0026] Through the combined use of the provided framework 101, first beam frame 201, second beam frame 204 and adjustment component 300, during actual use, through the cooperation of the adjustment bolt 301, the limit plate 302 and the sealing gasket 303, the first beam frame 201 and the second beam frame 204 can be tightly connected. By tightly fitting the gap between the two window bodies, the penetration of air and moisture can be effectively prevented, and at the same time, the sealing effect is better
[0027] Second embodiment
[0028] As Figure 2 , Figure 4 shown, a positioning groove 207 is provided on the end side of the second beam frame 204, a sealing gasket 303 is also provided in the positioning groove 207, and the limiting plate 302 is fitted into the positioning groove 207 provided on the second beam frame 204.
[0029] Through the positioning groove 207 provided on the end side of the second beam frame 204, during actual use, the limiting plate 302 is driven by the adjusting bolt 301 to move into the positioning groove 207 provided on the end side of the second beam frame 204. Through the fitting of the provided positioning groove 207 and the limiting plate 302, a tight connection between the two can be achieved, avoiding the possibility of poor sealing due to gaps between them.
[0030] Third Embodiment:
[0031] As Figure 3 shown, a notch is further provided in the first beam frame 201, and sliding grooves 203 are symmetrically provided in the notch. The glass plate 205 moves left and right within the range of the path set by the sliding grooves 203 through the sliding plate.
[0032] Through the notch and the sliding grooves 203 provided in the first beam frame 201, during actual use, by moving the glass plate 205 left and right within the range of the path set by the sliding grooves 203 through the sliding plate, the sliding grooves 203 provided can reduce the friction force when the glass plate 205 slides, and thus make the left - right adjustment of the glass plate 205 smoother.
[0033] Fourth Embodiment:
[0034] As Figures 2-4 shown, a rubber frame 206 is further sleeved around the glass plate 205. The rubber frame 206 wraps the entire glass plate 205 therein, and the outer size of the rubber frame 206 is fitted with the inner grooves of the first beam frame 201 and the second beam frame 204.
[0035] The rubber frame 206 can tightly wrap the glass plate 205, preventing air and moisture from penetrating through the gaps between the glass plate 205 and the beam frame, thereby improving the sealing performance of the entire door and window.
[0036] Fifth Embodiment:
[0037] As Figure 1 shown, a groove is provided in the frame 101, and a rubber gasket 102 is sleeved outside the groove.
[0038] Due to the provided rubber gasket 102 having certain elasticity and sound - absorbing performance, it can effectively reduce the noise generated during the use of the door and window, improving the living comfort.
[0039] Sixth Embodiment:
[0040] As Figure 3 shown, a through groove 202 is further provided in the first beam frame 201, and the through groove 202 is completely opened up.
[0041] The overall weight of the doors and windows can be reduced through the provided through groove 202, the material cost can be lowered, and the doors and windows can be made more lightweight.
[0042] Working principle: In actual use, the installer first engages the first beam frame 201 and the second beam frame 204 into the groove provided in the frame 101. When the first beam frame 201 and the second beam frame 204 are installed, by rotating the adjustment bolt 301 provided at the end side of the first beam frame 201, since the port of the adjustment bolt 301 is a threaded structure, through the rotation of the adjustment bolt 301, the limit plate 302 at one end moves towards the second beam frame 204 until the sealing gasket 303 provided at one end of the limit plate 302 tightly abuts against the second beam frame 204.
[0043] The above embodiments are only one of the preferred embodiments of the present utility model and should not be used to limit the protection scope of the present utility model. Any meaningless modifications or polishings made on the main design concept and spirit of the present utility model, as long as the technical problems solved are still the same as those of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. An energy-saving broken bridge heat-insulating aluminum alloy door and window, characterized in that, Including: A frame body (100), a beam plate (200) and an adjusting component (300). The frame body (100) includes a framework (101). A groove is arranged inside the framework (101), and the beam plate (200) is installed in the groove. The beam plate (200) includes a first beam frame (201) and a second beam frame (204) movably installed inside the framework (101). Glass plates (205) are installed inside both the first beam frame (201) and the second beam frame (204). Adjusting components (300) are symmetrically arranged on the vertical beam frames of the first beam frame (201). The adjusting component (300) includes adjusting bolts (301) symmetrically installed on the vertical beam frames. The two adjusting bolts (301) penetrate through the vertical beam frames of the first beam frame (201) and are connected to a limiting plate (302). A sealing gasket (303) is arranged at one end of the limiting plate (302), and the limiting plate (302) resists against the side wall of the second beam frame (204).
2. An energy-saving broken bridge heat-insulating aluminum alloy door and window according to claim 1, characterized in that, A positioning groove (207) is arranged at the end side of the second beam frame (204), and a sealing gasket (303) is also arranged inside the positioning groove (207), and the limiting plate (302) is fitted into the positioning groove (207) arranged on the second beam frame (204).
3. The energy-saving broken bridge heat-insulating aluminum alloy door and window according to claim 1, characterized in that, A notch is further arranged inside the first beam frame (201), and sliding grooves (203) are symmetrically arranged inside the notch. The glass plate (205) moves left and right within the range of the path set by the sliding grooves (203) through a sliding plate.
4. An energy-saving broken bridge heat-insulating aluminum alloy door and window according to claim 3, characterized in that, A rubber frame (206) is sleeved outside the glass plate (205). The rubber frame (206) wraps the entire glass plate (205) inside, and the outer size of the rubber frame (206) is embedded with the inner grooves of the first beam frame (201) and the second beam frame (204).
5. An energy-saving broken bridge thermal insulation aluminum alloy door and window according to claim 1, characterized in that, A rubber gasket (102) is sleeved outside the groove.
6. The energy-saving broken bridge heat-insulating aluminum alloy door and window according to claim 4, characterized in that, A through groove (202) is further arranged inside the first beam frame (201), and the through groove (202) is completely penetrated.