Aluminum alloy door and window with convenient cleaning of dust in track and method of use thereof

By designing a dust collection and blowing mechanism, the dust inside the aluminum alloy door and window tracks is automatically cleaned, solving the problem of guide wheel wear caused by dust accumulation and extending the service life of the doors and windows.

CN117248808BActive Publication Date: 2025-11-11SANYA MOSER BUILDING ENERGY SAVING TECH CO LTD
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Patent Information

Application Number
CN202311117744.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-01
Publication Date
2025-11-11
Estimated Expiration
2043-09-01

AI Technical Summary

Technical Problem

During long-term use, aluminum alloy doors and windows accumulate a lot of dust and impurities in the tracks, which affects the sliding of the guide wheels and causes wear, thus affecting normal use.

Method used

A dust collection and cleaning mechanism and a dust blowing mechanism were designed. Through the cooperation of airbags and air jets, the dust can be automatically cleaned. The dust collection mechanism is used to collect dust, and the dust blowing mechanism is used to remove dust from the track.

Benefits of technology

It effectively removes dust from the window frame tracks, extends the service life of aluminum alloy doors and windows, ensures smooth sliding of the guide rollers, and avoids wear.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses an aluminum alloy door and window with convenient dust cleaning mechanism for tracks and its usage method, belonging to the technical field of aluminum alloy doors and windows. It includes a window frame and a window body. The window body is installed within the window frame, and two guide wheels are installed on both the upper and lower sides of the window body, located within the window frame. A dust collection and cleaning mechanism is fixedly connected to the left side of the window body, and a portion of a dust blowing mechanism is fixedly connected to the lower surface of the window body. In this invention, by setting up the dust blowing mechanism, when the window body moves to the left and drives the squeezing block to move, the squeezing block can squeeze the triangular block, causing the triangular block to move downward and squeeze the second airbag. Simultaneously, the first spring can extend through its own elasticity, pushing the triangular block upward to its initial position. At this time, the second airbag can expand through its own elasticity, drawing air from the outside through the nozzle to prepare for the next dust removal, effectively removing dust from the window frame track and extending the service life of the aluminum alloy door and window.
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Description

Technical Field

[0001] This invention belongs to the technical field of aluminum alloy doors and windows, and particularly relates to an aluminum alloy door and window that facilitates cleaning of dust inside the track and its usage method. Background Technology

[0002] Aluminum alloy doors and windows refer to doors and windows made using extruded aluminum alloy profiles as frames, mullions, and sashes, often shortened to aluminum doors and windows. Aluminum alloy doors and windows include those using aluminum alloy as the load-bearing structure (the structure that bears and transmits its own weight and load) and those made of wood or plastic composites, often shortened to aluminum-wood composite doors and windows or aluminum-plastic composite doors and windows. The quality of aluminum alloy doors and windows can be roughly judged from factors such as the selection of raw materials (aluminum profiles), the surface treatment and internal processing quality of the aluminum material, and the price of the doors and windows.

[0003] During long-term use, aluminum alloy doors and windows accumulate a lot of dust and impurities in the tracks, which can affect the sliding of the guide wheels on the tracks. Furthermore, long-term use can lead to wear and tear on the guide wheels or tracks, affecting the normal operation of the sliding doors and windows. Summary of the Invention

[0004] The purpose of this invention is to address the problem that during long-term use, aluminum alloy doors and windows accumulate a large amount of dust and impurities in the tracks, which affects the sliding of the guide wheels on the tracks and causes wear on the guide wheels or tracks, thus affecting the normal use of sliding aluminum alloy doors and windows. Therefore, this invention proposes an aluminum alloy door and window with a convenient method for cleaning dust from the tracks and its usage.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] An aluminum alloy door and window for easy cleaning of dust in the track includes a window frame and a window body. The window body is installed inside the window frame. Two guide wheels are installed on the upper and lower sides of the window body. The guide wheels are located inside the window frame. A dust collection and cleaning mechanism is fixedly connected to the left side of the window body. A part of a dust blowing mechanism is fixedly connected to the lower surface of the window body. The other part of the dust blowing mechanism is fixedly connected to the front of the window frame.

[0007] As a further description of the above technical solution:

[0008] The dust collection and cleaning mechanism includes a U-shaped frame located inside the window. Grooves are provided on the far sides of the upper and lower ends of the U-shaped frame. A rectangular shell is provided inside the U-shaped frame, with the two ends of the rectangular shell located in the two grooves respectively.

[0009] As a further description of the above technical solution:

[0010] A triangular plate is fixedly connected to the right side of the bottom of the U-shaped frame, and a first rotating shaft is fixedly connected to the left side of the rectangular shell. The first rotating shaft is sleeved in the first bearing that is engaged on the right side of the U-shaped frame.

[0011] As a further description of the above technical solution:

[0012] The upper surface of the rectangular shell is fitted with a second bearing, the second bearing is fitted with a second rotating shaft, the top of the second rotating shaft is fixedly connected to a pressing block, the upper surface of the pressing block is fixedly connected to a first air bladder, and the lower surface of the rectangular shell is provided with a discharge port.

[0013] As a further description of the above technical solution:

[0014] The pressing block has a through hole inside, which is connected to the bottom of the first airbag. The second rotating shaft is hollow, and the through hole is connected to the top of the second rotating shaft. The semi-circular shell has a cavity inside, and the bottom of the second rotating shaft is connected to the cavity. The inner wall of the semi-circular shell has multiple air vents, which are connected to the cavity.

[0015] As a further description of the above technical solution:

[0016] The right side of the U-shaped frame has a rod groove, in which a rod is inserted. The right end of the rod is fixedly connected to a slider, which is slidably connected to a slide groove on the left side of the window. Both the slider and the slide groove are T-shaped.

[0017] As a further description of the above technical solution:

[0018] The upper surface of the U-shaped frame is fixedly mounted with two fixing plates by bolts. Each fixing plate is fixedly connected with a hinge plate, and the two hinge plates are movably connected by two connecting rods. The other fixing plate is fixedly mounted on one side of the window by bolts.

[0019] As a further description of the above technical solution:

[0020] The dust blowing mechanism includes a storage box fixedly connected to the front of the window frame. Inside the storage box, there is a partition and a support plate. The support plate is located on the left side of the partition. A limit hole is opened inside the support plate, and a triangular block is set in the limit hole. A pressing block is attached to the upper surface of the triangular block. The pressing block is fixedly connected to the lower surface of the window. The left and right sides of the lower surface of the triangular block are fixedly connected to the lower surface of the inner wall of the storage box through a first spring. A second airbag is fixedly connected to the lower surface of the inner wall of the storage box.

[0021] As a further description of the above technical solution:

[0022] The right side of the second airbag is connected to an air tube. One end of the air tube passes through the right side of the partition and is snapped into the fixing plate. The right side of the fixing plate is fixedly connected to the right side of the inner wall of the storage box by a second spring. The other end of the air tube passes through the right side of the storage box and the front of the window frame and is connected to the right side of the air storage tube. The lower surface of the air storage tube is connected to multiple air nozzles, which are inclined.

[0023] An aluminum alloy door and window that facilitates cleaning dust inside the track, and its usage method, specifically including the following steps:

[0024] S1. Control the window to move to the left and drive the squeezing block to move. The squeezing block can squeeze the triangular block, so that the triangular block can move downward and squeeze the second airbag. When the second airbag is squeezed, it can contract and deliver air into the air storage pipe through the air pipe. Finally, it is sprayed out through multiple air nozzles to blow away the dust in the track inside the window frame. As the window moves the air nozzles to the left, the air nozzles can blow the dust in the track to the left. All the dust can be blown into the dust collection and cleaning mechanism.

[0025] S2. The blown dust moves into the semi-circular shell through the triangular plate. When it is necessary to clean the dust accumulated in the semi-circular shell, pull the U-shaped frame to the left. At this time, under the action of the connecting rod, the fixed plate and the hinge plate, the U-shaped frame can be pulled and moved to the upper left. The bottom of the U-shaped frame is separated from the window frame.

[0026] S3. The rotating pressing block drives the semi-circular shell to rotate through the second rotating shaft. The semi-circular shell and the rectangular shell are in a closed state to seal the impurities. Then, the second rotating shaft is turned to drive the rectangular shell to rotate, so that the discharge port moves to the outside of the window frame. At this time, the first airbag is pressed continuously. The first airbag is pressed and then inhaled and expanded. The air in the first airbag is repeatedly pressed and moved into the cavity. Finally, it is sprayed out through multiple air jet holes, blowing the dust and impurities in the semi-circular shell out through the discharge port.

[0027] S4. When the window moves to the left, one end of the air tube can be pulled to the left, and the other end of the air tube can pull the fixed plate to move. When the window moves to the right to the initial position, the second spring can extend and push the fixed plate through its own elasticity. The fixed plate drives the air tube to move to the left to the initial position. At this time, the squeezing block moves to the right side and no longer squeezes the triangular block. At the same time, the first spring can extend and push the triangular block to move upward to the initial position through its own elasticity. At this time, the second airbag can expand through its own elasticity and draw air from the outside through the air nozzle to prepare for the next dust removal.

[0028] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0029] 1. In this invention, by setting a dust-blowing mechanism, when the window moves to the left and drives the squeezing block to move, the squeezing block can squeeze the triangular block, causing the triangular block to move downward and squeeze the second airbag. When the second airbag is squeezed, it can contract and deliver air into the air storage pipe through the air pipe. Finally, it is sprayed out through multiple air nozzles to blow away the dust in the track inside the window frame. As the window moves to the left with the air nozzles, the air nozzles can blow the dust in the track to the left, and all the dust can be blown into the dust collection and cleaning mechanism. When the window moves to the left, it can pull one end of the air pipe to the left, and the air pipe... The other end pulls the fixing plate to move. When the window moves to the right to the initial position, the second spring can extend and push the fixing plate with its own elasticity. The fixing plate drives the air tube to move to the left to the initial position, avoiding damage to the long air tube left outside. At this time, the squeezing block moves to the right position and no longer squeezes the triangular block. At the same time, the first spring can extend and push the triangular block upward to the initial position with its own elasticity. At this time, the second airbag can expand with its own elasticity and draw air from the outside through the air nozzle to prepare for the next dust removal. It can effectively remove dust in the window frame track and extend the service life of aluminum alloy doors and windows.

[0030] 2. In this invention, by setting up a dust collection and cleaning mechanism, the blown dust moves into the semi-circular shell through the triangular plate. When it is necessary to clean the dust accumulated in the semi-circular shell, the U-shaped frame is pulled to the left. At this time, under the action of the connecting rod, the fixed plate and the hinge plate, the U-shaped frame can be pulled and moved to the upper left. The bottom of the U-shaped frame is separated from the window frame, and at the same time, the insert rod is separated from the rod groove and drives the slider to move upward along the slide groove. The set insert rod and rod groove can ensure the stability of the U-shaped frame during movement. At this time, the rotating pressing block drives the semi-circular shell to rotate through the second rotating shaft. The semi-circular shell and the rectangular shell are in a closed state to seal the impurities. Then, the second rotating shaft is turned to drive the rectangular shell to rotate so that the discharge port moves to the outside of the window frame. At this time, the first airbag is continuously pressed. The first airbag is pressed and then inhaled and expanded. The air in the first airbag is repeatedly pressed and moved into the cavity. Finally, it is sprayed out through multiple air jet holes, blowing the dust and impurities in the semi-circular shell out through the discharge port. Attached Figure Description

[0031] Figure 1 This is a structural schematic diagram of an aluminum alloy door and window that facilitates cleaning dust inside the track, and its usage method, as proposed in this invention.

[0032] Figure 2 This is a side view of the structural diagram of the window frame and window body in an aluminum alloy door and window that facilitates cleaning dust in the track, as proposed in this invention, and its usage method.

[0033] Figure 3 This is a front-view cross-sectional structural diagram of the aluminum alloy door and window with convenient cleaning of dust in the track and its usage method proposed in this invention.

[0034] Figure 4 This is a three-dimensional structural diagram of the dust collection and cleaning mechanism in an aluminum alloy door and window that facilitates cleaning dust inside the track, as proposed in this invention, and its usage method.

[0035] Figure 5 This is an enlarged structural diagram of point A of an aluminum alloy door and window that facilitates cleaning dust inside the track, and its usage method, as proposed in this invention.

[0036] Figure 6 This is a frontal cross-sectional view of the dust removal mechanism in an aluminum alloy door and window that facilitates cleaning dust inside the track, as proposed in this invention, and its usage method.

[0037] Legend:

[0038] 1. Window frame; 2. Window body; 3. Guide wheel; 4. Dust collection and cleaning mechanism; 41. U-shaped frame; 42. Triangular plate; 43. First rotating shaft; 44. Insert rod; 45. Fixing plate; 46. Hinge plate; 47. Bolt; 48. Connecting rod; 49. Rectangular shell; 410. Discharge port; 411. First airbag; 412. Pressing block; 413. Second rotating shaft; 414. Air jet hole; 415. Semi-arc shell; 416. Slider; 5. Dust blowing mechanism; 51. Extrusion block; 52. Storage box; 53. Partition; 54. Support plate; 55. Triangular block; 56. First spring; 57. Second airbag; 58. Air pipe; 59. Fixing plate; 510. Second spring; 511. Air storage pipe; 512. Air jet nozzle. Detailed Implementation

[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0040] Please see Figure 1-6This invention provides a technical solution: an aluminum alloy door and window for easy cleaning of dust inside the track, comprising a window frame 1 and a window body 2. The window body 2 is disposed inside the window frame 1. Two guide wheels 3 are disposed on both the upper and lower sides of the window body 2. The guide wheels 3 are located inside the window frame 1. A dust collection and cleaning mechanism 4 is fixedly connected to the left side of the window body 2. The dust collection and cleaning mechanism 4 includes a U-shaped frame 41 located inside the window body 2. Grooves are formed on the far sides of the upper and lower ends of the U-shaped frame 41. A rectangular shell 49 is disposed inside the U-shaped frame 41. The two ends are respectively located in two grooves. A triangular plate 42 is fixedly connected to the right side of the bottom of the U-shaped frame 41. A first rotating shaft 43 is fixedly connected to the left side of the rectangular shell 49. The first rotating shaft 43 is sleeved in the first bearing that is snapped into the right side of the U-shaped frame 41. A second bearing is snapped into the upper surface of the rectangular shell 49. A second rotating shaft 413 is sleeved inside the second bearing. A pressing block 412 is fixedly connected to the top of the second rotating shaft 413. A first airbag 411 is fixedly connected to the upper surface of the pressing block 412. The lower surface of the U-shaped shell 49 has a discharge port 410. The pressing block 412 has a through hole that communicates with the bottom of the first airbag 411. The second rotating shaft 413 is hollow, and the through hole communicates with the top of the second rotating shaft 413. The semi-circular shell 415 has a cavity inside, and the bottom of the second rotating shaft 413 communicates with the cavity. The inner wall of the semi-circular shell 415 has multiple air jet holes 414 that communicate with the cavity. The right side of the U-shaped frame 41 has a rod groove, and an insert is provided in the rod groove. The right end of the rod 44 is fixedly connected to a slider 416. The slider 416 is slidably connected in a groove opened on the left side of the window 2. Both the slider 416 and the groove are T-shaped. The upper surface of the U-shaped frame 41 is fixedly installed with a fixing plate 45 by bolts 47. There are two fixing plates 45. A hinge plate 46 is fixedly connected to each of the two fixing plates 45. The two hinge plates 46 are movably connected by two connecting rods 48. The other fixing plate 45 is fixedly installed on one side of the window 2 by bolts 47.

[0041] The specific implementation method is as follows: By setting up a dust collection and cleaning mechanism 4, the blown dust moves through the triangular plate 42 into the semi-circular shell 415. When it is necessary to clean the dust accumulated in the semi-circular shell 415, the U-shaped frame 41 is pulled to the left. At this time, under the action of the connecting rod 48, the fixing plate 45 and the hinge plate 46, the U-shaped frame 41 can be pulled and moved to the upper left. The bottom of the U-shaped frame 41 is separated from the window frame 1. At the same time, the insert rod 44 is separated from the rod groove and drives the slider 416 to move upward along the groove. The set insert rod 44 and rod groove can ensure the stability of the U-shaped frame 41 during the movement. At this time, the rotating pressing block 412 drives the semi-arc shell 415 to rotate through the second rotating shaft 413. The semi-arc shell 415 and the rectangular shell 49 are in a closed state to seal the impurities. Then, the second rotating shaft 413 is turned to drive the rectangular shell 49 to rotate, so that the discharge port 410 moves to the outside of the window frame 1. At this time, the first airbag 411 is pressed continuously. The first airbag 411 is pressed and then inhaled and expanded. The air in the first airbag 411 is moved into the cavity by repeated pressing and finally sprayed out through multiple air jet holes 414, blowing the dust and impurities in the semi-arc shell 415 out through the discharge port 410.

[0042] A portion of a dust-blowing mechanism 5 is fixedly connected to the lower surface of window 2, and another portion of the dust-blowing mechanism 5 is fixedly connected to the front of window frame 1. The dust-blowing mechanism 5 includes a storage box 52 fixedly connected to the front of window frame 1. A partition 53 and a support plate 54 are fixedly connected inside the storage box 52. The support plate 54 is located to the left of the partition 53. A limiting hole is opened inside the support plate 54, and a triangular block 55 is provided in the limiting hole. A pressing block 51 is attached to the upper surface of the triangular block 55. The pressing block 51 is fixedly connected to the lower surface of window 2. The left and right sides of the lower surface of the triangular block 55 are fixed to the lower surface of the inner wall of the storage box 52 by a first spring 56. The lower surface of the triangular block 55 is fixedly connected to a second airbag 57, which is fixedly connected to the lower surface of the inner wall of the storage box 52. The right side of the second airbag 57 is connected to an air pipe 58. One end of the air pipe 58 passes through the right side of the partition 53 and is snapped into the fixing plate 59. The right side of the fixing plate 59 is fixedly connected to the right side of the inner wall of the storage box 52 by a second spring 510. The other end of the air pipe 58 passes through the right side of the storage box 52 and the front of the window frame 1 and is connected to the right side of the air storage pipe 511. The lower surface of the air storage pipe 511 is connected to multiple air nozzles 512, which are inclined.

[0043] The specific implementation method is as follows: By setting up a dust blowing mechanism 5, when the window 2 moves to the left and drives the squeezing block 51 to move, the squeezing block 51 can squeeze the triangular block 55, so that the triangular block 55 can move downward and squeeze the second airbag 57. When the second airbag 57 is squeezed, it can contract and deliver air into the air storage pipe 511 through the air pipe 58. Finally, it is sprayed out through multiple air nozzles 512 to achieve the purpose of blowing away the dust in the internal track of the window frame 1. As the window 2 drives the air nozzles 512 to move to the left, the air nozzles 512 can blow the dust in the track to the left, and all the dust can be blown into the dust collection and cleaning mechanism 4. When the window 2 moves to the left, it can pull one end of the air pipe 58 to move to the left. The other end of the air tube 58 pulls the fixing plate 59 to move. When the window 2 moves to the right to the initial position, the second spring 510 can extend and push the fixing plate 59 through its own elastic force. The fixing plate 59 drives the air tube 58 to move to the left to the initial position, so as to avoid the long air tube 58 being left outside and damaged. At this time, the squeezing block 51 moves to the right position and no longer squeezes the triangular block 55. At the same time, the first spring 56 can extend and push the triangular block 55 upward to the initial position through its own elastic force. At this time, the second airbag 57 can expand through its own elastic force and draw air from the outside through the air nozzle 512 to prepare for the next dust removal. It can effectively remove dust in the window frame 1 track and extend the service life of aluminum alloy doors and windows.

[0044] Working principle: When in use, control the window 2 to move to the left and drive the squeezing block 51 to move. The squeezing block 51 can squeeze the triangular block 55, so that the triangular block 55 can move downward and squeeze the second airbag 57. When the second airbag 57 is squeezed, it can contract and deliver air into the air storage pipe 511 through the air pipe 58. Finally, it is sprayed out through multiple air nozzles 512 to blow away the dust in the internal track of the window frame 1. As the window 2 drives the air nozzles 512 to move to the left, the air nozzles 512 can blow the dust in the track to the left, and all the dust can be blown into the dust collection and cleaning mechanism 4.

[0045] The blown dust moves into the semi-circular shell 415 through the triangular plate 42. When it is necessary to clean the dust accumulated in the semi-circular shell 415, the U-shaped frame 41 is pulled to the left. At this time, under the action of the connecting rod 48, the fixing plate 45 and the hinge plate 46, the U-shaped frame 41 can be pulled and moved to the upper left. The bottom of the U-shaped frame 41 is separated from the window frame 1.

[0046] The rotating pressing block 412 drives the semi-arc shell 415 to rotate via the second rotating shaft 413. The semi-arc shell 415 and the rectangular shell 49 are in a closed state to seal the impurities. Then, the second rotating shaft 413 is turned to drive the rectangular shell 49 to rotate, so that the discharge port 410 moves to the outside of the window frame 1. At this time, the first airbag 411 is pressed continuously. The first airbag 411 is pressed and then inhaled and expanded. The air in the first airbag 411 is moved into the cavity by repeated pressing and finally sprayed out through multiple air jet holes 414, blowing the dust and impurities in the semi-arc shell 415 out through the discharge port 410.

[0047] When window 2 moves to the left, it can pull one end of air tube 58 to the left, and the other end of air tube 58 pulls the fixed plate 59 to move. When window 2 moves to the right to the initial position, the second spring 510 can extend and push the fixed plate 59 through its own elastic force. The fixed plate 59 drives air tube 58 to move to the left to the initial position. At this time, the squeezing block 51 moves to the right side and no longer squeezes the triangular block 55. At the same time, the first spring 56 can extend and push the triangular block 55 upward to the initial position through its own elastic force. At this time, the second airbag 57 can expand through its own elastic force and draw air from the outside through the air nozzle 512 to prepare for the next dust removal.

[0048] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. An aluminum alloy door and window for easy cleaning of dust inside the track, comprising a window frame (1) and a window body (2), characterized in that, The window frame (1) is provided with a window body (2). Two guide wheels (3) are provided on the upper and lower sides of the window body (2). The guide wheels (3) are located inside the window frame (1). A dust collection and cleaning mechanism (4) is fixedly connected to the left side of the window body (2). A part of a dust blowing mechanism (5) is fixedly connected to the lower surface of the window body (2). The other part of the dust blowing mechanism (5) is fixedly connected to the front of the window frame (1). The dust collection and cleaning mechanism (4) includes a U-shaped frame (41) located inside the window (2). Grooves are provided on the far sides of the upper and lower ends of the U-shaped frame (41). A rectangular shell (49) is provided inside the U-shaped frame (41). The two ends of the rectangular shell (49) are respectively located in the two grooves. A triangular plate (42) is fixedly connected to the right side of the bottom of the U-shaped frame (41). A first rotating shaft (43) is fixedly connected to the left side of the rectangular shell (49). The first rotating shaft (43) is sleeved on the right side of the U-shaped frame (41). Inside the first bearing, which is snapped together, a second bearing is snapped onto the upper surface of the rectangular shell (49). A second rotating shaft (413) is fitted inside the second bearing. A pressing block (412) is fixedly connected to the top of the second rotating shaft (413). A first airbag (411) is fixedly connected to the upper surface of the pressing block (412). A discharge port (410) is opened on the lower surface of the rectangular shell (49). A through hole is opened inside the pressing block (412), which communicates with the bottom of the first airbag (411). The second rotating shaft... (413) is hollow, with a through hole connected to the top of the second rotating shaft (413). A cavity is opened inside the semi-circular shell (415), and the bottom end of the second rotating shaft (413) is connected to the cavity. Multiple air jet holes (414) are opened on the inner wall of the semi-circular shell (415), and the air jet holes (414) are connected to the cavity. A rod groove is opened on the right side of the U-shaped frame (41), and a rod (44) is installed in the rod groove. A slider (416) is fixedly connected to the right end of the rod (44), and the slider (416) slides... The sliding connection is in the slide groove opened on the left side of the window (2). Both the slider (416) and the slide groove are T-shaped. The upper surface of the U-shaped frame (41) is fixedly installed with a fixing plate (45) by bolts (47). There are two fixing plates (45). A hinge plate (46) is fixedly connected to each of the two fixing plates (45). The two hinge plates (46) are movably connected by two connecting rods (48). The other fixing plate (45) is fixedly installed on one side of the window (2) by bolts (47).

2. The aluminum alloy door and window for easy cleaning of dust inside the track according to claim 1, characterized in that, The dust blowing mechanism (5) includes a storage box (52) fixedly connected to the front of the window frame (1). The storage box (52) has a partition (53) and a support plate (54) fixedly connected inside. The support plate (54) is located on the left side of the partition (53). A limiting hole is opened inside the support plate (54). A triangular block (55) is provided in the limiting hole. A pressing block (51) is attached to the upper surface of the triangular block (55). The pressing block (51) is fixedly connected to the lower surface of the window (2). The left and right sides of the lower surface of the triangular block (55) are fixedly connected to the lower surface of the inner wall of the storage box (52) through a first spring (56). A second airbag (57) is fixedly connected to the lower surface of the inner wall of the storage box (52).

3. An aluminum alloy door and window for easy cleaning of dust inside the track according to claim 2, characterized in that, The right side of the second airbag (57) is connected to an air tube (58). One end of the air tube (58) passes through the right side of the partition (53) and is snapped into the fixing plate (59). The right side of the fixing plate (59) is fixedly connected to the right side of the inner wall of the storage box (52) by the second spring (510). The other end of the air tube (58) passes through the right side of the storage box (52) and the front of the window frame (1) and is connected to the right side of the air storage tube (511). The lower surface of the air storage tube (511) is connected to multiple air nozzles (512), which are inclined.

4. A method for using an aluminum alloy door and window that facilitates cleaning dust inside the track, as described in any one of claims 1-3, characterized in that... Specifically, the following steps are included: S1. Control the window (2) to move to the left and drive the squeezing block (51) to move. The squeezing block (51) can squeeze the triangular block (55), so that the triangular block (55) can move down and squeeze the second airbag (57). When the second airbag (57) is squeezed, it can contract and deliver air into the air storage pipe (511) through the air pipe (58). Finally, it is sprayed out through multiple air nozzles (512) to blow away the dust in the track inside the window frame (1). As the window (2) drives the air nozzle (512) to move to the left, the air nozzle (512) can blow the dust in the track to the left. All the dust can be blown into the dust collection and cleaning mechanism (4). S2. The blown dust moves into the semi-circular shell (415) through the triangular plate (42). When it is necessary to clean the dust accumulated in the semi-circular shell (415), the U-shaped frame (41) is pulled to the left. At this time, under the action of the connecting rod (48), the fixing plate (45) and the hinge plate (46), the U-shaped frame (41) can be pulled and moved to the upper left. The bottom of the U-shaped frame (41) is separated from the window frame (1). S3. The rotating pressing block (412) drives the semi-arc shell (415) to rotate through the second rotating shaft (413). The semi-arc shell (415) and the rectangular shell (49) are in a closed state to seal the impurities. Then, the second rotating shaft (413) is turned to drive the rectangular shell (49) to rotate so that the discharge port (410) moves to the outside of the window frame (1). At this time, the first air bag (411) is pressed continuously. The first air bag (411) is pressed and then inhaled and expanded. The air in the first air bag (411) is repeatedly pressed and moved into the cavity. Finally, it is sprayed out through multiple air jet holes (414) to blow the dust and impurities in the semi-arc shell (415) out through the discharge port (410). S4. When the window (2) moves to the left, it can pull one end of the air tube (58) to the left, and the other end of the air tube (58) pulls the fixed plate (59) to move. When the window (2) moves to the right to the initial position, the second spring (510) can extend and push the fixed plate (59) through its own elastic force. The fixed plate (59) drives the air tube (58) to move to the left to the initial position. At this time, the squeezing block (51) moves to the right side and no longer squeezes the triangular block (55). At the same time, the first spring (56) can extend and push the triangular block (55) to move upward to the initial position through its own elastic force. At this time, the second airbag (57) can expand through its own elastic force and draw air from the outside through the jet nozzle (512) to prepare for the next dust removal.

Citation Information

Patent Citations

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