Seamless efficient drainage aluminum alloy translation window structure
Through integrated molded aluminum alloy material and automated sealing components, water barrier strips, drainage grooves and lead screw gear transmission, the sealing and intelligence problems of traditional aluminum alloy sliding windows are solved, efficient drainage and stable opening and closing are achieved, and the safety and comfort of the windows are improved.
Patent Information
- Application Number
- CN202510692626.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-07-18
AI Technical Summary
Traditional aluminum alloy panoramic windows have problems such as large structural splicing gaps, poor sealing performance, poor drainage, easy leakage, easy corrosion, inconvenient operation and low intelligence, which affects the comfort and safety of use.
It adopts an integrated molded aluminum alloy material, with automatic sealing components, water barrier strips and drainage tanks, combined with lead screw gear transmission and positioning unit to achieve efficient drainage, sealing and intelligent opening and closing.
It improves the overall sealing and waterproof performance of the windows, extends service life, enhances safety and ease of use, and is suitable for high-performance building needs.
Smart Images

Figure CN120331616A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of doors and windows, and specifically to a seamless and efficient drainage aluminum alloy sliding window structure. Background Art
[0002] In the existing building door and window technology, traditional aluminum alloy sliding windows generally have problems such as large structural splicing gaps, poor sealing performance, poor drainage, and easy leakage, resulting in poor sound insulation, heat insulation, and waterproof effects, affecting the use comfort and safety. At the same time, most windows adopt a split structure design, and the connection parts are easy to loosen, with poor stability during long-term use, and are prone to shortening the service life due to electrochemical corrosion. In addition, the manual opening and closing method is inconvenient to operate, lacks intelligent control, and is difficult to meet the requirements of modern buildings for high-performance doors and windows. Therefore, how to overcome the above existing technical problems and defects has become a key problem to be solved. Summary of the Invention
[0003] The invention purpose of the present invention is to overcome the defects described in the background art, so as to realize a seamless and efficient drainage aluminum alloy sliding window structure. This sliding window uses integrally formed aluminum alloy material, improving the overall strength and sealing performance, effectively waterproofing, windproof, corrosion-resistant, and long-lasting. An automatic sealing component is provided between the window sashes to enhance the closing tightness. A water retaining strip, a drainage groove, and drainage holes are provided inside the window frame to achieve efficient drainage. The moving unit uses a lead screw and gear drive, with smooth and intelligent opening and closing, and the positioning unit ensures the stability of the window sash, comprehensively improving safety and the use experience.
[0004] To achieve the above invention purpose, the technical solution of the present invention is: a seamless and efficient drainage aluminum alloy sliding window structure, including a window frame. At least two relatively movable window sashes are provided inside the inner circle of the window frame. A sealing component is provided on the opposite sides of the window sashes. A moving unit adapted to the window frame is provided at the top end inside the window sashes, and a positioning unit adapted to the window frame is provided at the bottom end inside the window sashes.
[0005] In the above seamless and efficient drainage aluminum alloy sliding window structure, the window frame is a vertically arranged rectangular structure and the whole window frame is made of aluminum alloy material integrally. The window frame is a hollow structure and multiple reinforcing ribs are provided inside it.
[0006] In the above seamless and efficient drainage aluminum alloy sliding window structure, at least two sliding rails are horizontally arranged along the length direction at the top end and the bottom end of the inner circle of the window frame. The height of the sliding rail inside the window frame is greater than the height of the sliding rail outside the window frame.
[0007] A water retaining strip is horizontally arranged along the length direction at the bottom end of the inner circle of the window frame between the two sliding rails.
[0008] In the above seamless and highly efficient drainage aluminum alloy sliding window structure, a drainage groove is horizontally opened along the length direction of the window frame between the water retaining strip and the outer sliding rail, and at least one drainage hole is opened in the side part of the outer window frame, and the drainage hole is communicated with the drainage groove.
[0009] In the above seamless and highly efficient drainage aluminum alloy sliding window structure, the window sash includes two rectangular frames that are abutted against each other. The rectangular frames are integrally made of aluminum alloy material and have a hollow structure inside.
[0010] A first sealing gasket is arranged on one side of the rectangular frame facing the vertical side of the window frame, glass is arranged at the opposite ends of the two rectangular frames, and a second sealing gasket is arranged between the rectangular frame and the glass.
[0011] Chutes adapted to the corresponding sliding rails are opened at the top and bottom ends of the rectangular frame.
[0012] In the above seamless and highly efficient drainage aluminum alloy sliding window structure, the sealing assembly includes a sealing groove vertically opened on the vertical side of the opposite ends of the rectangular frame. A butt plate that can slide horizontally in the sealing groove is vertically arranged inside the rectangular frame, and a third sealing gasket that can abut against the corresponding rectangular frame is fixedly arranged at the opposite ends of the butt plate.
[0013] An installation beam is vertically and fixedly arranged inside the rectangular frames at the opposite ends of the window sash. A top frame slides horizontally on the installation beam, and the end of the top frame is fixedly arranged with the opposite end of the butt plate.
[0014] A first electric push rod is fixedly arranged on the side of the installation beam facing the butt plate, and the sleeve end of the first electric push rod is horizontally fixedly arranged on the inner wall of the rectangular frame.
[0015] In the above seamless and highly efficient drainage aluminum alloy sliding window structure, the moving unit includes a lead screw horizontally arranged along the length direction of the window frame inside the top end of the window sash. The two ends of the lead screw penetrate through both sides of the rectangular frame, and both ends of the lead screw are fixedly arranged on the window frame. The lead screw is slidably arranged with the rectangular frame.
[0016] A bidirectional motor is fixedly arranged inside the rectangular frame. A first gear is fixedly arranged at the output end of the bidirectional motor. A second gear that meshes with the first gear is rotatably arranged inside the rectangular frame. The lead screw coaxially penetrates through the second gear and is threadedly connected with the second gear.
[0017] In the above seamless and highly efficient drainage aluminum alloy sliding window structure, the positioning unit includes a limiting groove horizontally opened along the length direction of the window frame inside the rectangular frame on the side of the chute. A wedge block that can slide horizontally along the width direction of the window frame is arranged inside the limiting groove, and the outer side of the wedge block is an inclined surface that slopes downward.
[0018] Inside the rectangular frame body, at least one second electric push rod is fixedly arranged vertically. The telescopic end of the second electric push rod is fixedly provided with a pressing block adapted to the inclined surface. At least one pressing roller that can be abutted against the inclined surface is rotatably arranged at the bottom end of the pressing block.
[0019] Compared with the prior art, the seamless and efficient drainage aluminum alloy sliding window structure of the present invention has at least the following beneficial effects: For the seamless and efficient drainage aluminum alloy sliding window structure of the present invention, the one-piece forming process can ensure that the window frame and the rectangular frame body have higher structural strength and overall stability, effectively resist wind pressure and various external force influences in daily use, reduce potential safety hazards caused by loosening or breaking of the connection parts, and since it is one-piece formed, the existence of joints is reduced, which helps to improve the overall sealing performance of the window, prevent air and water vapor from penetrating through the joints, and is especially suitable for environments that require high-efficiency waterproofing and wind prevention. The aluminum alloy material naturally has good corrosion resistance, and the one-piece forming design avoids the problem of electrochemical corrosion that may occur due to material differences between different components, extending the service life of the product. The aluminum alloy material is lighter in weight but does not reduce in strength, ensuring both the firmness of the window and reducing the burden on the main building structure, facilitating installation and handling.
[0020] For the seamless and efficient drainage aluminum alloy sliding window structure of the present invention, by providing a plurality of relatively movable window sashes and arranging a sealing component between the window sashes, the window sashes can be closely attached when closed, effectively eliminating the gap problem existing in traditional window bodies, significantly improving the sealing performance of the window. The sealing component adopts a slidable abutting plate in cooperation with a third sealing pad, combined with an electric push rod drive system, to achieve automatic and high-precision sealing control, improving the convenience and sealing reliability in use.
[0021] For the seamless and efficient drainage aluminum alloy sliding window structure of the present invention, a water retaining strip and a drainage groove structure are provided inside the window frame. Cooperating with the drainage holes opened on the side of the window frame, the rainwater entering the window frame can be quickly guided out, preventing water accumulation and resulting leakage or corrosion. The design of the height difference between the inner and outer sliding rails and the water retaining strip further enhances the water retaining function, effectively preventing external rainwater from penetrating into the room and improving the overall waterproof performance of the window.
[0022] For the seamless and efficient drainage aluminum alloy sliding window structure of the present invention, the moving unit adopts a lead screw and a gear transmission mechanism and is driven by a bidirectional motor, enabling the window sash to slide smoothly on the track. The opening and closing process is quiet and smooth, and the operation is more intelligent. The positioning unit cooperates with a wedge block and a pressing roller to achieve automatic locking after the window sash is in place, ensuring that the window sash is firmly fixed in the open or closed state and at a predetermined position, improving safety and the user experience. Description of the Drawings
[0023] Figure 1 It is a schematic diagram of the overall structure of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention; Figure 2 It is a schematic diagram of the position of the drainage groove of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention; Figure 3 It is a schematic diagram of the position of the sliding groove of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention; Figure 4 It is an exploded schematic diagram of the internal structure of the window sash of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention; Figure 5 It is an exploded schematic diagram of the structure of the sealing component of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention; Figure 6 It is a schematic diagram of the structure of the moving unit of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention; Figure 7 It is a schematic diagram of the structure of the positioning unit of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention; Figure 8 It is an exploded schematic diagram of the structure of the positioning unit of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention.
[0024] In the figure: 1, window frame; 2, window sash; 3, sealing component; 31, sealing groove; 32, abutting plate; 33, third sealing pad; 34, installation beam; 35, top frame; 36, first electric push rod; 4, moving unit; 41, lead screw; 42, bidirectional motor; 43, first gear; 44, second gear; 5, positioning unit; 51, limiting groove; 52, wedge block; 53, inclined surface; 54, second electric push rod; 55, extrusion block; 56, extrusion roller; 6, reinforcing rib; 7, slide rail; 8, water stop strip; 9, drainage groove; 10, drainage hole; 11, rectangular frame body; 12, first sealing pad; 13, glass; 14, second sealing pad; 15, sliding groove. Detailed implementation manners
[0025] The seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention will be described in more detail below in conjunction with the accompanying drawings and through specific implementation manners.
[0026] In the description of the present invention, it should be understood that the orientation or positional relationships indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present invention.
[0027] Referring to Figures 1-8 , the seamless and highly efficient drainage aluminum alloy sliding window structure of this embodiment uses integrally formed aluminum alloy material to enhance the overall strength and sealing performance, effectively waterproof, windproof, corrosion-resistant, and has a long service life. An automatic sealing component 3 is provided between the window sashes 2 to enhance the closing tightness. A water retaining strip 8, a drainage groove 9, and a drainage hole 10 are provided inside the window frame 1 to achieve highly efficient drainage. The moving unit 4 uses a screw 41 and gear transmission, with smooth and intelligent opening and closing, and the positioning unit 5 ensures the stability of the window sash 2, comprehensively improving the safety and user experience. In this embodiment, it mainly includes a window frame 1. The window frame 1 is a vertically arranged rectangular structure and the whole window frame 1 is made of aluminum alloy material integrally. The window frame 1 is a hollow structure and is internally provided with a plurality of reinforcing ribs 6. Through the integrally formed process, it ensures higher structural strength and overall stability, effectively resists wind pressure and various external forces in daily use, and reduces potential safety hazards caused by loosening or breaking of the connection parts. And the existence of seams is reduced, which helps to improve the overall sealing performance of the window, prevent air and water vapor from penetrating through the seams, and moreover, the aluminum alloy material is lighter in weight but does not reduce in strength, which not only ensures the firmness of the window but also reduces the burden on the main structure of the building, facilitating installation and handling.
[0028] At least two slide rails 7 are horizontally arranged along the length direction at the top and bottom of the inner circle of the window frame 1, and the height of the slide rails 7 inside the window frame 1 is greater than the height of the slide rails 7 outside. Along the length direction of the bottom of the inner circle of the window frame 1 between the two slide rails 7, a water retaining strip 8 is horizontally arranged. The design of the height difference between the inner and outer slide rails 7 and the water retaining strip 8 further enhances the water retaining function, effectively preventing external rainwater from penetrating into the room and improving the overall waterproof performance of the window. A drainage groove 9 is horizontally opened along the length direction on the window frame 1 between the water retaining strip 8 and the outer slide rail 7, and at least one drainage hole 10 is opened on the side of the outer window frame 1, and the drainage hole 10 is communicated with the drainage groove 9. It can quickly guide and discharge the rainwater entering the window frame 1, preventing water accumulation from causing leakage or corrosion.
[0029] To install the window sash, referring to Figures 1-4, at least two relatively movable window sashes 2 are provided on the inner circle of the window frame 1. The window sash 2 includes two rectangular frames 11 that are abutted against each other. The rectangular frame 11 is integrally made of aluminum alloy material and has a hollow structure inside. The two rectangular frames 11 are combined into one body relatively by means of bolts or the like. One side of the rectangular frame 11 facing the vertical side of the window frame 1 is provided with a first sealing gasket 12. The first sealing gasket 12 can be attached to the window frame 1, so that when the window sash 2 is closed, it can be closely attached, effectively eliminating the gap problem existing in the traditional window body and significantly improving the sealing performance of the window. Glass 13 is provided at the opposite ends of the two rectangular frames 11, and a second sealing gasket 14 is provided between the rectangular frame 11 and the glass 13. The glass 13 is clamped by the second sealing gasket 14. Chutes 15 adapted to the corresponding slide rails 7 are provided at the top and bottom of the rectangular frame 11. The installation of the rectangular frame 11 is realized through the chutes 15 and the slide rails 7.
[0030] To achieve the sealing of the window, refer to Figure 4 and Figure 5 , a sealing component 3 is provided on the opposite sides of the window sash 2. The sealing component 3 includes a sealing groove 31 vertically opened on the vertical sides of the opposite ends of the rectangular frame 11. A contact plate 32 that can slide horizontally in the sealing groove 31 is vertically provided inside the rectangular frame 11. Third sealing gaskets 33 that can abut against the corresponding rectangular frames 11 are fixedly provided at the opposite ends of the contact plate 32. An installation beam 34 is vertically and fixedly provided inside the rectangular frames 11 at the opposite ends of the window sash 2. A top frame 35 is horizontally slidably provided on the installation beam 34, and the end of the top frame 35 is fixedly provided with the opposite end of the contact plate 32. A first electric push rod 36 is fixedly provided on the side of the installation beam 34 facing the contact plate 32, and the sleeve end of the first electric push rod 36 is horizontally fixedly provided on the inner wall of the rectangular frame 11. When sealing is required, control the first electric push rod 36 to work, so that the top frame 35 moves on the installation beam 34, thereby pushing the contact plate 32 and the third sealing gasket 33 to extend out of the sealing groove 31. At this time, the third sealing gasket 33 abuts against the corresponding rectangular frame 11, thereby realizing automatic and high-precision sealing control through the third sealing gasket 33 and improving the use convenience and sealing reliability.
[0031] To achieve automatic window opening and closing, refer to Figure 4 and Figure 6, a moving unit 4 adapted to the window frame 1 is provided at the inner top end of the window sash 2. The moving unit 4 includes a lead screw 41 horizontally arranged along the length direction of the window frame 1 inside the top end of the window sash 2. Both ends of the lead screw 41 penetrate through both sides of the rectangular frame 11, and both ends thereof are fixedly arranged on the window frame 1. The lead screw 41 is slidably arranged with the rectangular frame 11. A bidirectional motor 42 is fixedly arranged inside the rectangular frame 11. An output end of the bidirectional motor 42 is fixedly provided with a first gear 43. A second gear 44 meshing with the first gear 43 is rotatably arranged inside the rectangular frame 11. The lead screw 41 coaxially penetrates through the second gear 44 and is threadedly connected with the second gear 44. When it is necessary to open or close the window, the bidirectional motor 42 is controlled to work, and the second gear 44 is driven to rotate on the lead screw 41 through the first gear 43. At this time, the second gear 44 moves on the lead screw 41 to drive the rectangular frame 11 to move along the lead screw 41, and is guided by the slide rail 7 and the chute 15. The window sash 2 can slide smoothly on the track, and the opening and closing process is quiet and smooth, and the operation is more intelligent.
[0032] To fix the position of the window sash, refer to Figure 6 and Figure 7 , a positioning unit 5 adapted to the window frame 1 is provided at the inner bottom end of the window sash 2. The positioning unit 5 includes a limit groove 51 horizontally opened along the length direction of the window frame 1 inside the rectangular frame 11 on the side of the chute 15. A wedge block 52 capable of horizontally sliding along the width direction of the window frame 1 is arranged inside the limit groove 51. The outer side of the wedge block 52 is an inclined surface 53 inclined downward. At least one second electric push rod 54 is vertically and fixedly arranged inside the rectangular frame 11. A pressing block 55 adapted to the inclined surface 53 is fixedly arranged at the telescopic end of the second electric push rod 54. At least one pressing roller 56 capable of abutting against the inclined surface 53 is rotatably arranged at the bottom end of the pressing block 55. During the movement of the window sash 2, the corresponding second electric push rod 54 is controlled to work. At this time, the pressing block 55 drives the pressing roller 56 to move downward, and the pressing roller 56 presses the inclined surface 53 downward, so that the wedge block 52 horizontally moves inside the limit groove 51 and abuts against the slide rail 7, increasing the friction force. At the same time, the bidirectional motor 42 is controlled to stop working to achieve automatic locking, ensuring that the window sash 2 is firmly fixed in the open or closed state and at a predetermined position, improving safety and the use experience.
[0033] Usage method of the seamless and highly efficient drainage aluminum alloy sliding window structure of the present invention: First, through the integral molding process, it ensures higher structural strength and overall stability, effectively resists wind pressure and various external forces in daily use, reduces potential safety hazards caused by loosening or breaking of the connection parts, and reduces the existence of seams, which helps to improve the overall sealing performance of the window, prevents air and water vapor from penetrating through the seams, and the aluminum alloy material is lighter in weight but does not reduce in strength, which not only ensures the firmness of the window but also reduces the burden on the main building structure, facilitating installation and handling. The two rectangular frames 11 are combined into one body relatively by means of bolts or the like. When sealing is required, control the first electric push rod 36 to work, so that the top frame 35 moves on the installation beam 34, thereby pushing the abutting plate 32 and the third sealing gasket 33 to extend out of the sealing groove 31. At this time, the third sealing gasket 33 abuts against the corresponding rectangular frame 11, thereby realizing automatic and high-precision sealing control through the third sealing gasket 33, improving the use convenience and sealing reliability. The first sealing gasket 12 can be attached to the window frame 1, so that when the window sash 2 is closed, it can fit tightly, effectively eliminating the gap problem existing in the traditional window form and significantly improving the sealing performance of the window. The design of the height difference between the inner and outer slide rails 7 and the water retaining strip 8 further enhances the water retaining function, effectively preventing external rainwater from penetrating into the room and improving the overall waterproof performance of the window. And the rainwater entering the window frame 1 is quickly guided out through the drain holes 10 and the drain grooves 9 to prevent water accumulation from causing leakage or corrosion.
[0034] When the window needs to be opened or closed, control the bidirectional motor 42 to work, and drive the second gear 44 to rotate on the lead screw 41 through the first gear 43. At this time, the second gear 44 moves on the lead screw 41 to drive the rectangular frame 11 to move along the lead screw 41, and is guided by the slide rails 7 and the chute 15. So that the window sash 2 can slide smoothly on the track, the opening and closing process is quiet and smooth, and the operation is more intelligent. During the movement of the window sash 2, control the corresponding second electric push rod 54 to work. At this time, the extrusion block 55 drives the extrusion roller 56 to move downward, and the extrusion roller 56 squeezes the inclined surface 53 downward, so that the wedge block 52 moves horizontally inside the limit groove 51 and abuts against the slide rail 7, increasing the friction force. At the same time, control the bidirectional motor 42 to stop working to achieve automatic locking, ensuring that the window sash 2 is firmly fixed in the open or closed state and at a predetermined position, improving safety and the use experience.
[0035] Unless otherwise defined, technical or scientific terms used herein shall have the ordinary meanings as understood by those of ordinary skill in the art to which this invention belongs. The use of words such as "a" or "an" in the description and claims of this application does not necessarily limit the quantity. Words such as "comprising" or "including" mean that the elements or items appearing before the word cover the elements or items listed after the word and their equivalents, without excluding other elements or items. Words such as "connected" or "coupled" are not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect.
[0036] The exemplary embodiments of the present invention have been described in detail above with reference to the preferred embodiments. However, those skilled in the art can understand that, without departing from the concept of the present invention, various modifications and variations can be made to the above specific embodiments, and various combinations of the technical features and structures proposed by the present invention can be made without exceeding the protection scope of the present invention.
Claims
1. A seamless and highly efficient drainage aluminum alloy sliding window structure, characterized in that: It includes a window frame (1), at least two relatively movable window sashes (2) are arranged on the inner circle of the window frame (1), a sealing component (3) is arranged on the opposite sides of the window sashes (2), a moving unit (4) adapted to the window frame (1) is arranged at the top end inside the window sash (2), and a positioning unit (5) adapted to the window frame (1) is arranged at the bottom end inside the window sash (2).
2. The seamless and highly efficient drainage aluminum alloy sliding window structure according to claim 1, characterized in that: The window frame (1) is a vertically arranged rectangular structure and the whole window frame (1) is integrally made of aluminum alloy material. The window frame (1) is a hollow structure and a plurality of reinforcing ribs (6) are arranged inside it.
3. The seamless and highly efficient drainage aluminum alloy sliding window structure according to claim 2, characterized in that: At least two slide rails (7) are horizontally arranged along the length direction at the top end and the bottom end of the inner circle of the window frame (1). The height of the slide rail (7) on the inner side of the window frame (1) is greater than the height of the slide rail (7) on the outer side. A water stop strip (8) is horizontally arranged along the length direction at the bottom end of the inner circle of the window frame (1) between the two slide rails (7).
4. The seamless and highly efficient drainage aluminum alloy sliding window structure according to claim 3, wherein: A drainage groove (9) is horizontally opened along the length direction on the window frame (1) between the water stop strip (8) and the slide rail (7) on the outer side. At least one drainage hole (10) is opened on the side part of the outer window frame (1), and the drainage hole (10) is communicated with the drainage groove (9).
5. The seamless and highly efficient drainage aluminum alloy sliding window structure according to claim 3, characterized in that: The window sash (2) includes two rectangular frames (11) arranged in abutting connection. The rectangular frame (11) is integrally made of aluminum alloy material and its interior is a hollow structure. A first sealing gasket (12) is arranged on one side of the rectangular frame (11) facing the vertical side of the window frame (1). Glass (13) is arranged at the opposite ends of the two rectangular frames (11), and a second sealing gasket (14) is arranged between the rectangular frame (11) and the glass (13). Chutes (15) adapted to the corresponding slide rails (7) are opened at the top end and the bottom end of the rectangular frame (11).
6. The seamless and highly efficient drainage aluminum alloy sliding window structure according to claim 5, characterized in that: The sealing component (3) includes a sealing groove (31) vertically opened on the vertical side of the opposite ends of the rectangular frame (11). An abutting plate (32) that can slide horizontally in the sealing groove (31) is vertically arranged inside the rectangular frame (11). Third sealing gaskets (33) that can abut against the corresponding rectangular frames (11) are fixedly arranged at the opposite ends of the abutting plate (32). An installation beam (34) is vertically and fixedly arranged inside the rectangular frames (11) at the opposite ends of the window sash (2). A top frame (35) is horizontally slidably arranged on the installation beam (34), and the end part of the top frame (35) is fixedly arranged with the opposite end of the abutting plate (32). A first electric push rod (36) is fixedly arranged on the side of the installation beam (34) facing the abutting plate (32), and the sleeve end of the first electric push rod (36) is horizontally fixedly arranged on the inner wall of the rectangular frame (11).
7. The seamless and highly efficient drainage aluminum alloy sliding window structure according to claim 5, characterized in that: The moving unit (4) includes a lead screw (41) horizontally arranged along the length direction of the window frame (1) inside the top end of the window sash (2). The two ends of the lead screw (41) penetrate through both sides of the rectangular frame (11) and both ends thereof are fixedly arranged on the window frame (1). The lead screw (41) is slidably arranged with the rectangular frame (11). A two-way motor (42) is fixedly arranged inside the rectangular frame body (11), a first gear (43) is fixedly arranged at the output end of the two-way motor (42), a second gear (44) meshing with the first gear (43) is rotatably arranged inside the rectangular frame body (11), and the lead screw (41) coaxially penetrates through the second gear (44) and is in threaded connection with the second gear (44).
8. The seamless and highly efficient drainage aluminum alloy sliding window structure according to claim 5, characterized in that: The positioning unit (5) includes a limiting groove (51) horizontally opened along the length direction of the window frame (1) inside the rectangular frame body (11) on the side of the sliding groove (15), a wedge-shaped block (52) capable of horizontally sliding along the width direction of the window frame (1) is arranged inside the limiting groove (51), and the outer side of the wedge-shaped block (52) is an inclined surface (53) inclined downward; At least one second electric push rod (54) is vertically and fixedly arranged inside the rectangular frame body (11), an extrusion block (55) adapted to the inclined surface (53) is fixedly arranged at the telescopic end of the second electric push rod (54), and at least one extrusion roller (56) capable of abutting against the inclined surface (53) is rotatably arranged at the bottom end of the extrusion block (55).