Fully concealed window opener and profile, and mounting method for intelligent window and door system
By designing the window frame profile as a hollowed-out cavity structure with upper and lower frames, the concealed drive device of the intelligent door and window system is installed, solving the aesthetic problem in the existing technology, improving the stability and convenience of the window, and enhancing the sealing performance and energy-saving effect.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- SHENZHEN JIYI TECHNOLOGY CO LTD
- Filing Date
- 2026-01-12
- Publication Date
- 2026-07-23
AI Technical Summary
Existing smart door and window systems require slots to be cut into the frame when installing the drive unit, resulting in cutting marks on the exterior and affecting its appearance.
The window frame is designed with an upper frame and a lower frame, with a hollowed-out cavity between them. The drive structure can be directly installed without secondary processing, and the window can be automatically and manually controlled through a bidirectional drive motor and a manual drive device.
It achieves concealed installation of the drive unit, improves the aesthetics and stability of the window, provides convenient automated and manual operation, and enhances the window's sealing performance and energy-saving effect.
Smart Images

Figure CN2026071968_23072026_PF_FP_ABST
Abstract
Description
Intelligent window and door system with fully concealed window openers, profiles, and installation methods Technical Field
[0001] This application relates to the field of intelligent door and window technology, and in particular to fully concealed window openers, profiles and installation methods for intelligent door and window systems. Background Technology
[0002] Smart doors and windows are a new type of product that combines traditional doors and windows with modern intelligent control technology. By integrating components such as sensors, microprocessors, communication modules, and drive devices, they achieve functions such as real-time monitoring of door and window status, remote control, automated adjustment, and security protection.
[0003] In the existing technology, the drive device needs to have a groove cut into the frame before it can be installed on the door or window. This results in cutting marks on the surface where the drive device is placed, which reduces the overall aesthetics of the door or window. Summary of the Invention
[0004] In view of the shortcomings of existing technologies, the purpose of this application is to provide a fully concealed window opener, profile and installation method for an intelligent door and window system, in order to solve the problem that the door and window installation drive device in the prior art requires additional processing, which affects the overall aesthetics.
[0005] The above-mentioned objective of this application is achieved through the following technical solution: a fully concealed profile for an intelligent door and window system, including a window frame profile and a sash profile. The window frame profile includes an upper frame and a lower frame. The upper frame has a protrusion extending near the lower frame, and the lower frame has a matching groove. There is a hollow cavity between the upper frame and the lower frame for placing the drive structure. The sash profile includes an outer frame and an inner frame. A connecting frame is installed between the outer frame and the inner frame. A connecting strip is fixedly provided on one side of both the outer frame and the inner frame.
[0006] By adopting the above technical solution, by designing the window frame profile into an upper frame and a lower frame, the drive device can be directly placed into the hollow cavity and then fixed without secondary processing, thus realizing the structure of an automatically driven door and window. In this application, a sealing strip is fixedly installed between the upper frame and the lower frame.
[0007] Furthermore, the fully concealed window opener for the intelligent window and door system is applicable to the fully concealed profile of the intelligent window and door system described in the above technical solution. It includes a bidirectional drive motor with a hollowed-out cavity in the bottom of the window frame profile. One end of the bidirectional drive motor is fixedly equipped with a drive rod, and the other end is equipped with a manual drive device. The end of the manual drive device away from the drive rod is equipped with a driven rod rotatably connected to the receiving cavity. Both the drive rod and the driven rod are fixedly equipped with drive bevel gears at the ends away from the bidirectional drive motor. The hollowed-out cavities at both ends of the window frame profile are equipped with driven structures for driving the sash profile to open and close. The window frame and the sash are rotatably connected by hinges.
[0008] By adopting the above technical solution, when the bidirectional drive motor starts, it drives the drive rod on one side and the driven rod on the other side, thereby driving the driven structure of the fan profiles on both sides, pushing the fan to open and drive up and down.
[0009] Furthermore, the manual adjustment device includes a drive bevel gear fixedly mounted on the output end of the bidirectional drive motor away from the drive rod; a drive shaft rotatably connected to the window frame profile is mounted on one side of the drive bevel gear; a driving bevel gear is fixedly mounted on the bottom of the drive shaft, and the driving bevel gear meshes with the drive bevel gear; a driven bevel gear is fixedly mounted on the end of the driven rod near the bidirectional drive motor, and the driven bevel gear meshes with the drive bevel gear; a drive housing is mounted on the drive shaft; one side of the drive housing is fixedly connected to the bidirectional drive motor; the drive shaft and the drive housing are rotatably connected; a connecting post is fixedly mounted on the upper end of the drive housing; a drive block is fixedly mounted on the connecting post; a through hole rotatably connected to the drive shaft is opened inside the drive block; a driven gear is fixedly mounted on the upper end of the drive shaft; a drive gear is rotatably mounted inside the drive block, and the drive gear meshes with the driven gear; an adjustment hole for adjusting the rotation of the handle is opened in the middle of the drive gear.
[0010] By adopting the above technical solution, when manual drive adjustment is required, the handle is inserted into the adjustment hole and rotated to drive the drive gear to rotate, which in turn drives the driven gear to rotate, thereby rotating the drive rod. The drive bevel gear at the bottom of the drive rod will drive the driven rod and the bidirectional drive motor to rotate, thus driving the driven structure of the opening and closing of the fan profiles at both ends.
[0011] Furthermore, the upper end of the adjustment hole is provided with a plug hole opened in the drive block, and a plug cylinder is fixedly provided on the outside of the plug hole, and a sealing cover is installed on the plug cylinder.
[0012] By adopting the above technical solution, when the manual adjustment device is not required, the plug-in cylinder can be covered by a sealing cap to prevent foreign objects from entering the adjustment hole.
[0013] Furthermore, a connecting magnet is embedded inside the sealing cover, and a magnet is fixedly mounted on the insertion tube.
[0014] By adopting the above technical solution and by setting up the connection and placement of magnets, the stability of the sealing cover when it is installed on the plug tube can be improved.
[0015] Furthermore, a pair of mounting blocks are provided at the bottom of the drive housing. One mounting block abuts against the driven rod and is rotatably connected to the driven rod. The other mounting block is connected to the output motor of the bidirectional drive motor and is rotatably connected to it. The bottom of the mounting block is fixedly connected to the hollow cavity.
[0016] By adopting the above technical solution, the installation block can provide support for the bottom of the driven rod.
[0017] Furthermore, the driven structure includes mounting shells fixedly disposed on both sides inside the window frame profile. A rotating screw is rotatably disposed within each mounting shell. A mating block is rotatably disposed at the upper end of the rotating screw. The mating block is fixedly connected to the hollow cavities at both ends of the window frame profile. A transmission bevel gear for meshing with a driving bevel gear is fixedly disposed at the bottom of the rotating screw. A sliding locking block installed in the window frame profile is disposed on the mounting shell. A push nut threadedly connected to the rotating screw is disposed in the middle of the sliding locking block. A pair of connecting rods are fixedly disposed at the upper end of the sliding locking block. The connecting rods are equipped with… A sliding block that slides relative to a rotating screw has a rectangular groove in its center. A sliding nut that cooperates with the rotating screw is placed in the rectangular groove. A spring is sleeved on the rotating screw at the upper end of the sliding block. A connecting plate is fixedly attached to the upper end of the spring. The connecting plate is slidably connected to the rotating screw. A connecting rod extends through the sliding block to the connecting plate. The connecting rod and the sliding block are slidably connected. The connecting rod and the connecting plate are fixedly connected. A drive bar is rotatably mounted on the sliding block. A mating bar is rotatably connected to the other end of the drive bar. The mating bar is fixedly connected to the connecting bar in the fan-shaped profile.
[0018] Furthermore, the sliding locking block is threaded with a linkage screw, which is perpendicular to and meshes with the rotating screw. A fastener is fixedly installed on the sliding locking block, and a locking hole is provided on the fastener. The linkage screw passes through the fastener. A locking member is fixedly installed inside the fan-shaped profile, and a locking cylinder is fixedly installed on the locking member. A locking screw is threaded inside the locking cylinder, and a through hole for the linkage screw to be inserted is provided on one side of the locking cylinder.
[0019] By adopting the above technical solution, rotating the nut simultaneously drives the sliding nut and rotating the nut. Since the sliding locking block is below, it will drive the sliding block to descend together through the connecting rod. When the sliding locking block reaches the bottom, the driving nut in the sliding block is still at the upper end of the rectangular groove. At this time, the linkage screw will enter the through hole in the locking cylinder, driving the locking screw to rotate and insert into the locking hole of the fastener.
[0020] The drive bevel gears on both sides drive the driven bevel gears at the bottom of the rotating screws on both sides, causing the rotating screws to rotate. This rotation of the screws will simultaneously drive the rotating nut and the sliding nut. The rotating nut will first push the sliding locking block to move, and the locking element on the sliding locking block will first disengage from the locking groove to complete the unlocking. At this time, the sliding nut will just move to the top of the rectangular groove and start pushing the sliding block to move, which will drive the drive bar to slowly push the sash profile to open, completing the window opening process.
[0021] Furthermore, both sides of the sliding locking block and the sliding block are fixedly provided with sliding components to reduce friction.
[0022] By adopting the above technical solution, the contact between the sliding locking block and the two sides of the sliding block and the window frame profile is reduced by setting the sliding parts.
[0023] Furthermore, the installation method for the intelligent door and window system includes the following steps:
[0024] S1. Initially align the upper and lower frames using protrusions and grooves to ensure the alignment of their hollowed-out cavities. Place the bidirectional drive motor in the hollowed-out cavity at the bottom of the window frame profile and fix it in place.
[0025] S2. Install drive rods and driven rods at both ends of the bidirectional drive motor to ensure that they can drive the fan profiles on both sides to open and close respectively;
[0026] S3. Install manual drive units and ensure they can mesh and rotate correctly;
[0027] S4. Connect the outer frame and inner frame together with the connecting frame to form a complete fan profile. Use hinges to rotate and connect the fan profile to the window frame to ensure that the fan profile can open and close smoothly. Adjust the position of the fan profile to align it with the window frame.
[0028] S5. Install mounting shells on both sides inside the window frame profile, and rotate screws are installed therein;
[0029] S6. Fix the connecting block in the hollowed-out cavities at both ends of the window frame profile, and mesh the transmission bevel gear at the bottom of the rotating screw with the drive bevel gear;
[0030] S7. Install components such as sliding locking block, push nut, connecting rod, sliding block, spring, and connecting plate to ensure they can fit together correctly and work properly;
[0031] S8. Set a drive bar on the sliding block and rotate the other end of the drive bar to connect to the connecting bar in the fan profile.
[0032] By adopting the above technical solution, the protrusion and groove connection method ensures a tight connection between the upper and lower frames and the alignment of the hollowed-out chambers, providing a precise positioning benchmark for the installation of subsequent components and enhancing the stability of the overall structure. Simultaneously, a bidirectional drive motor is fixed in the hollowed-out chamber at the bottom of the window frame profile, providing a foundation for subsequent automated control. The bidirectional drive motor drives the sash profile to open and close via a drive rod and a driven rod, realizing automated window control and improving ease of use. The installation of a manual drive device provides users with an alternative solution for manually operating the window in case of power failure or other situations, enhancing the system's flexibility and reliability.
[0033] The outer and inner frames are connected by a connecting frame to form a complete sash profile, and are connected to the window frame by hinges, ensuring smooth opening and closing of the sash profile and precise alignment with the window frame, further enhancing the user experience of the window.
[0034] By using components such as the mounting shell, rotating screw, mating block, and transmission bevel gear, precise adjustment of the window's opening degree is achieved. Simultaneously, the installation of components such as the sliding locking block and push nut provides a reliable locking function, ensuring the window's safety when closed. These designs not only enhance the window's functionality but also strengthen its safety and stability.
[0035] Finally, the drive bar design allows for precise control of the sash profile's opening and closing via the movement of the sliding blocks, further enhancing the window's adjustability. This design not only improves the window's intelligence but also provides users with a more convenient and comfortable operating experience.
[0036] In summary, this application offers the following beneficial technical effects: By designing the window frame profile as a combination of an upper and lower frame with a cleverly designed hollow cavity between them, the direct installation and fixation of the drive device (such as a bidirectional drive motor) is achieved without the need for cumbersome secondary processing, greatly simplifying the installation process and improving installation efficiency. Furthermore, it ensures the tightness and stability of the structure, preventing structural deformation or damage caused by external forces. Simultaneously, the sealing strip fixed between the upper and lower frames effectively improves the window's sealing performance, preventing the intrusion of external factors such as wind, rain, and dust, thus improving indoor heat insulation and sound insulation, achieving energy conservation. In addition, the sash profile is composed of an outer frame and an inner frame connected by a connecting frame. This design makes the sash profile more structurally flexible, allowing for customization and adjustment according to actual needs. Connecting strips are fixedly installed on both the outer and inner frames for easy connection with the drive structure, enabling automated opening and closing of the sash profile and providing users with a more convenient operating experience. Overall, this concealed profile design not only optimizes the structural design and installation process, improves sealing performance and energy efficiency, but also focuses on enhancing the user experience, providing users with a more efficient, stable, comfortable, and aesthetically pleasing window solution. Attached Figure Description
[0037] Figure 1 is a schematic diagram of the overall structure in the embodiment;
[0038] Figure 2 is a cross-sectional view along section line AA in Figure 1;
[0039] Figure 3 is a schematic diagram of the window frame profile structure with part of it removed in the embodiment;
[0040] Figure 4 is an enlarged view of point A in Figure 3;
[0041] Figure 5 is an overall top view of the embodiment;
[0042] Figure 6 is an enlarged view of point B in Figure 5;
[0043] Figure 7 is a schematic diagram of the drive motor structure in the embodiment.
[0044] Reference numerals: 1. Window frame profile; 11. Upper frame; 12. Lower frame; 2. Sash profile; 21. Inner frame; 22. Outer frame; 23. Connecting frame; 24. Connecting strip; 3. Bidirectional drive motor; 30. Drive shaft; 31. Drive rod; 32. Driven rod; 33. Mounting block; 34. Drive housing; 35. Driving bevel gear; 36. Driving bevel gear; 37. Driven bevel gear; 38. Driven gear; 39. Driving gear; 40. Drive hole; 41. Drive bevel gear; 411. Transmission bevel gear; 42. Sliding locking block; 43. Push nut; 44. Sliding block; 45. Sliding nut; 46. Spring; 47. Connecting plate; 48. Connecting rod; 5. Drive block; 50. Locking cylinder; 500. Locking screw; 501. Fastener; 502. Linkage screw; 503. Locking component; 51. Sealing cover; 52. Connecting magnet; 53. Magnet placement; 54. Drive bar; 6. Rotating screw. Detailed Implementation
[0045] The present application will be further described in detail below with reference to the accompanying drawings.
[0046] In the embodiment, referring to Figures 1 and 2, the fully concealed profile of the intelligent door and window system includes a window frame profile 1 and a sash profile 2. The window frame profile 1 includes an upper frame 11 and a lower frame 12. The upper frame 11 has a protrusion extending near the lower frame 12, and the lower frame 12 has a matching groove. There is a hollow cavity between the upper frame 11 and the lower frame 12 for placing the drive structure. The sash profile 2 includes an outer frame 22 and an inner frame 21. A connecting frame 23 is provided between the outer frame 22 and the inner frame 21 to connect the two together. A connecting strip 24 for connecting the drive structure is fixedly provided on one side of both the outer frame 22 and the inner frame 21.
[0047] By designing the window frame profile 1 as an upper frame 11 and a lower frame 12, the drive device can be directly placed into the hollow cavity and then fixed without secondary processing, thus realizing the structure of an automatically driven door and window. In this application, a sealing strip is fixedly installed between the upper frame 11 and the lower frame 12.
[0048] In this embodiment, referring to Figures 3, 4, 5, 6, and 7, the fully concealed window opener for the door and window system is applicable to the concealed profiles in the above-mentioned technical solution. It includes a bidirectional drive motor 3 with a hollowed-out cavity in the bottom of the window frame profile. One end of the bidirectional drive motor 3 is fixedly provided with a drive rod 31, and the other end is provided with a manual drive device. The end of the manual drive device away from the drive rod 31 is provided with a driven rod 32 rotatably connected to the receiving cavity. Both the drive rod 31 and the driven rod 32 are fixedly provided with a drive bevel gear 41 at the ends away from the bidirectional drive motor 3. The hollowed-out cavities at both ends of the window frame profile are provided with driven structures for driving the sash profile 2 to open and close. The window frame and the sash are rotatably connected by hinges.
[0049] When the bidirectional drive motor 3 starts, it drives the drive rod 31 on one side and the driven rod 32 on the other side, thereby driving the driven structure of the fan profile 2 on both sides, pushing the fan profile 2 to open and drive up and down.
[0050] The manual adjustment device includes a drive bevel gear 36 fixedly mounted on the output end of the bidirectional drive motor 3 away from the drive rod 31, a drive shaft 30 rotatably connected to the window frame profile on one side of the drive bevel gear 36, a driving bevel gear 35 fixedly mounted at the bottom of the drive shaft 30, the driving bevel gear 35 meshing with the drive bevel gear 36, a driven bevel gear 37 fixedly mounted on the end of the driven rod 32 near the bidirectional drive motor 3, the driven bevel gear 37 meshing with the driving bevel gear 35, a drive housing 34 mounted on the drive shaft 30, a drive housing 34 fixedly connected to the bidirectional drive motor 3 on one side, the drive shaft 30 and the drive housing 34 rotatably connected, a connecting post fixedly mounted on the upper end of the drive housing 34, a drive block 5 fixedly mounted on the connecting post, a through hole rotatably connected to the drive shaft 30 inside the drive block 5, a driven gear 38 fixedly mounted on the upper end of the drive shaft 30, a drive gear 39 rotatably mounted inside the drive block 5, the drive gear 39 meshing with the driven gear 38, and an adjustment hole for the handle to adjust the rotation in the middle of the drive gear 39.
[0051] When manual adjustment is required, insert the handle into the adjustment hole and rotate it to drive the drive gear 39 to rotate, which in turn drives the driven gear 38 to rotate, thereby rotating the drive rod 31. The drive bevel gear 35 at the bottom of the drive rod 31 will drive the driven rod 32 and the bidirectional drive motor 3 to rotate, thus driving the driven structure of the opening and closing of the fan profiles 2 at both ends.
[0052] An insertion hole is provided at the upper end of the adjustment hole and is opened in the drive block 5. An insertion cylinder is fixedly installed on the outside of the insertion hole and a sealing cover 51 is installed on the insertion cylinder.
[0053] When the manual adjustment device is not needed, the plug-in cylinder can be covered by the sealing cover 51 to prevent foreign objects from entering the adjustment hole.
[0054] A connecting magnet 52 is embedded inside the sealing cover 51, and a placement magnet 53 is fixedly installed on the plug tube.
[0055] By connecting magnet 52 and placing magnet 53, the stability of the sealing cover 51 when it is installed on the plug tube can be improved.
[0056] The bottom of the drive housing 34 is provided with a pair of mounting blocks 33. One mounting block 33 abuts against the driven rod 32 and is rotatably connected to the driven rod 32. The other mounting block 33 is connected to the output motor of the bidirectional drive motor 3 and is rotatably connected to it. The bottom of the mounting block 33 is fixedly connected in the hollow cavity.
[0057] The mounting block 33 provides support for the bottom of the driven rod 32.
[0058] The driven structure includes mounting shells fixedly installed on both sides inside the window frame profile 1. A rotating screw 6 is rotatably installed in the mounting shell. A mating block is rotatably installed at the upper end of the rotating screw 6. The mating block is fixedly connected to the hollow cavities at both ends of the window frame profile 1. A transmission bevel gear 411 for meshing with a drive bevel gear 41 is fixedly installed at the bottom of the rotating screw 6. A sliding locking block 42 installed in the window frame profile 1 is provided on the mounting shell. A push nut 43 threadedly connected to the rotating screw 6 is provided in the middle of the sliding locking block 42. A pair of connecting rods 48 are fixedly installed at the upper end of the sliding locking block 42. The connecting rods 48 are provided with a corresponding rod to the rotating screw 6. A sliding block 44 has a rectangular groove in its middle, in which a sliding nut 45 that cooperates with the rotating screw 6 is placed. A spring is sleeved on the rotating screw 6 at the upper end of the sliding block 44. A connecting plate 47 is fixedly placed at the upper end of the spring. The connecting plate 47 is slidably connected to the rotating screw 6. A connecting rod 48 passes through the sliding block 44 and extends to the connecting plate 47. The connecting rod 48 and the sliding block 44 are slidably connected. The connecting rod 48 and the connecting plate 47 are fixedly connected. A drive bar 54 is rotatably arranged on the sliding block 44. A mating bar is rotatably connected to the other end of the drive bar 54. The mating bar is fixedly connected to the connecting bar 24 in the fan profile 2.
[0059] A linkage screw 502 is threaded onto the sliding locking block 42. The linkage screw 502 and the rotating screw 6 are perpendicular and mesh with each other. A fastener 501 is fixedly mounted on the sliding locking block 42. The fastener 501 has a locking hole. The linkage screw 502 passes through the fastener 501. A locking element 503 is fixedly mounted inside the fan-shaped profile 2. A locking cylinder 50 is fixedly mounted on the locking element 503. A locking screw 500 is threaded inside the locking cylinder 50. A through hole for the linkage screw 502 to be inserted is opened on one side of the locking cylinder 50. Rotating the nut simultaneously drives the sliding nut 45 and the rotating nut. Since the sliding locking block 42 is below, it will drive the sliding block 44 to descend together through the connecting rod 48. When the sliding locking block 42 reaches the bottom, the driving nut in the sliding block 44 is still at the upper end of the rectangular groove. At this time, the linkage screw 502 will enter the through hole in the locking cylinder 50, driving the locking screw 500 to rotate and insert into the locking hole of the fastener 501.
[0060] Both sides of the sliding locking block 42 and the sliding block 44 are fixedly equipped with sliding elements to reduce friction. The sliding elements reduce the contact between the sides of the sliding locking block 42 and the sliding block 44 and the window frame profile.
[0061] The installation method for intelligent door and window systems includes the following steps:
[0062] S1. Initially align the upper frame 11 and the lower frame 12 using protrusions and grooves to ensure that the hollow cavities between them are aligned. Place the bidirectional drive motor 3 in the hollow cavity at the bottom of the window frame profile 1 and fix it in place.
[0063] S2. Install drive rod 31 and driven rod 32 at both ends of bidirectional drive motor 3 to ensure that they can drive the fan profiles 2 on both sides to open and close respectively;
[0064] S3. Install manual drive units and ensure they can mesh and rotate correctly;
[0065] S4. Connect the outer frame 22 and the inner frame 21 together through the connecting frame 23 to form a complete fan profile 2. Use hinges to rotate and connect the fan profile 2 to the window frame to ensure that the fan profile 2 can open and close smoothly. Adjust the position of the fan profile 2 to align it with the window frame.
[0066] S5. Install mounting shells on both sides inside the window frame profile 1, and rotate screws 6 are installed therein;
[0067] S6. Fix the connecting block in the hollowed-out cavities at both ends of the window frame profile 1, and mesh the transmission bevel gear at the bottom of the rotating screw 6 with the drive bevel gear 41;
[0068] S7. Install components such as sliding locking block 42, push nut 43, connecting rod 48, sliding block 44, spring, and connecting plate 47 to ensure that they can fit together and work properly;
[0069] S8. A drive bar 54 is set on the sliding block 44, and the other end of the drive bar 54 is rotated and connected to the connecting bar 24 in the fan profile 2.
[0070] The protrusions and grooves in the design ensure a tight connection between the upper frame 11 and the lower frame 12, as well as alignment of the hollowed-out chambers. This provides a precise positioning reference for the installation of subsequent components and enhances the overall structural stability. Simultaneously, the bidirectional drive motor 3 is fixed in the hollowed-out chamber at the bottom of the window frame profile 1, providing a foundation for subsequent automated control. The bidirectional drive motor 3 drives the sash profile 2 to open and close via the drive rod 31 and the driven rod 32, achieving automated window control and improving ease of use. The installation of a manual drive device provides users with an alternative solution for manually operating the window in case of power failure or other situations, enhancing the system's flexibility and reliability.
[0071] The outer frame 22 and the inner frame 21 are connected by the connecting frame 23 to form a complete sash profile 2, and are connected to the window frame by hinges, ensuring smooth opening and closing of the sash profile 2 and precise alignment with the window frame, further improving the user experience of the window.
[0072] By using components such as the mounting shell, rotating screw 6, connecting block, and transmission bevel gear in coordination, precise adjustment of the window's opening and closing degree is achieved. Simultaneously, the installation of components such as the sliding locking block 42 and the push nut 43 provides a reliable locking function for the window, ensuring its safety when closed. These designs not only enhance the window's functionality but also strengthen its safety and stability.
[0073] Finally, the drive bar 54 allows for precise control of the opening and closing of the sash profile 2 via the movement of the sliding block 44, further enhancing the window's adjustability. This design not only improves the window's intelligence but also provides users with a more convenient and comfortable operating experience.
[0074] Specific implementation process: The window opener has a hollowed-out cavity in the bottom of the window frame profile, which houses a bidirectional drive motor 3. One end of the motor is fixedly connected to a drive rod 31, and the other end is equipped with a manual drive device. The end of this manual device away from the drive rod 31 is rotatably connected to a driven rod 32 that houses the cavity. Both the drive rod 31 and the driven rod 32, at their ends away from the motor, are fixedly equipped with drive bevel gears 41. The hollowed-out cavities at both ends of the window frame profile contain driven structures for driving the sash profile 2 to open and close, while the window frame and sash are rotatably connected by hinges.
[0075] When the bidirectional drive motor 3 starts, it synchronously drives the drive rod 31 on one side and the driven rod 32 on the other side to rotate, thereby driving the driven structure of the fan profiles 2 on both sides to realize the opening and closing of the fan. This automated process greatly improves the ease of operation.
[0076] A drive bevel gear 36 is fixed to the output end of the bidirectional drive motor 3, away from the drive rod 31. A drive shaft 30, rotatably connected to the window frame profile, is located on one side of the drive bevel gear 36. A driving bevel gear 35 is fixed to the bottom of the drive shaft 30, meshing with the drive bevel gear 36. A driven bevel gear 37 is fixed to the end of the driven rod 32 near the motor, meshing with the driving bevel gear 35. A drive housing 34 is mounted on the drive shaft 30. One side of the drive housing 34 is fixedly connected to the bidirectional drive motor 3, and a driven gear 38 is fixed to the upper end of the drive shaft 30, which is rotatably connected to the drive housing 34. A drive gear 39 is rotatably mounted inside the drive block 5, meshing with the driven gear 38. An adjustment hole is provided in the middle of the drive gear 39 for easy adjustment of rotation by inserting a handle.
[0077] When manual operation is required, the user can insert the handle into the adjustment hole and rotate it to drive the drive gear 39 to rotate, which in turn drives the driven gear 38 and the drive rod 31 to rotate. At this time, the drive bevel gear 35 at the bottom of the drive rod 31 will drive the driven rod 32 and the bidirectional drive motor 3 to rotate, thereby realizing the opening and closing drive of the fan profile 2.
[0078] To ensure that the manual adjustment device is protected from foreign objects when not in use, a plug-in hole is provided at the upper end of the adjustment hole, and a plug-in cylinder is fixed on the outside. A sealing cover 51 is installed on the cylinder. A connecting magnet 52 is embedded inside the sealing cover 51, and a placement magnet 53 is fixed on the plug-in cylinder to enhance the stability of the sealing cover 51.
[0079] The bottom of the drive housing 34 is provided with a pair of mounting blocks 33. One mounting block 33 is rotatably connected to the driven rod 32 and provides support, while the other is rotatably connected to the output end of the bidirectional drive motor 3 and fixed in the hollow cavity.
[0080] From the perspective of the driven structure, the window frame profile 1 has mounting shells on both sides inside, and a rotating screw 6 is rotatably mounted inside the shell. The upper end of the rotating screw 6 has a connecting block, which is fixedly connected to the hollow cavities at both ends of the window frame profile 1. The bottom of the rotating screw 6 is fixed with a transmission bevel gear, which meshes with the drive bevel gear 41. The mounting shell has a sliding locking block 42, and the block has a push nut 43 threadedly connected to the rotating screw 6. The upper end of the sliding locking block 42 has a pair of connecting rods 48, and the rods have sliding blocks 44 that slide relative to the rotating screw 6. The middle of the sliding block 44 has a rectangular groove, and the groove has a sliding nut 45 that cooperates with the rotating screw 6. The upper end of the sliding block 44 has a spring sleeved on the rotating screw 6, and the upper end of the spring is fixed with a connecting plate 47. The connecting plate 47 is slidably connected to the rotating screw 6, and the connecting rod 48 extends through the sliding block 44 to the connecting plate 47. The connecting rod 48 is slidably connected to the sliding block 44, but fixedly connected to the connecting plate 47. A drive bar 54 is rotatably mounted on the sliding block 44, and a mating bar is rotatably connected to the other end of the bar. The mating bar is fixedly connected to the connecting bar 24 in the fan profile 2.
[0081] A linkage screw 502 is threaded onto the sliding locking block 42, perpendicular to and meshing with the rotating screw 6. A fastener 501 is fixed to the sliding locking block 42, with a locking hole on the fastener 501 through which the linkage screw 502 passes. A locking element 503 is fixed inside the fan-shaped profile 2, and a locking cylinder 50 is fixed on the element, with a locking screw 500 threaded inside the cylinder. A through hole for the linkage screw 502 to be inserted is opened on one side of the locking cylinder 50. When the rotating nut drives the sliding nut 45 and the rotating nut to descend simultaneously, the sliding locking block 42 drives the sliding block 44 to descend via the connecting rod 48. After the sliding locking block 42 reaches the bottom, the driving nut in the sliding block 44 is still at the upper end of the rectangular groove. At this time, the linkage screw 502 enters the through hole in the locking cylinder 50, drives the locking screw 500 to rotate and insert into the locking hole of the fastener 501, thus achieving locking.
[0082] Both sides of the sliding locking block 42 and the sliding block 44 are fixed with sliding parts to reduce friction, thereby minimizing contact friction with the window frame profile. In actual use, users can choose between automatic or manual drive as needed to ensure the flexibility and convenience of the door and window system.
[0083] The embodiments described in this specific implementation are preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A fully concealed profile for an intelligent door and window system, characterized in that: The window frame includes a window frame profile and a sash profile. The window frame profile includes an upper frame and a lower frame. The upper frame has a protrusion extending near the lower frame, and the lower frame has a matching groove. There is a hollow cavity between the upper frame and the lower frame. The sash profile includes an outer frame and an inner frame. A connecting frame is installed between the outer frame and the inner frame. A connecting strip is fixedly installed on one side of both the outer frame and the inner frame.
2. The fully concealed window opener for the intelligent door and window system is applicable to the fully concealed profile of the intelligent door and window system as described in claim 1, characterized in that, The device includes a bidirectional drive motor with a hollowed-out cavity in the bottom of the window frame profile. One end of the bidirectional drive motor is fixedly equipped with a drive rod, and the other end is equipped with a manual drive device. The end of the manual drive device away from the drive rod is equipped with a driven rod rotatably connected to the receiving cavity. Both the drive rod and the driven rod are fixedly equipped with drive bevel gears at the ends away from the bidirectional drive motor. The hollowed-out cavities at both ends of the window frame profile are equipped with driven structures for driving the sash profile to open and close. The window frame and the sash are rotatably connected by hinges.
3. The fully concealed window opener of the intelligent door and window system according to claim 2, characterized in that, The manual adjustment device includes a drive bevel gear fixedly mounted on the output end of a bidirectional drive motor away from the drive rod. A drive shaft rotatably connected to the window frame profile is mounted on one side of the drive bevel gear. A driving bevel gear is fixedly mounted at the bottom of the drive shaft, and the driving bevel gear meshes with the drive bevel gear. A driven bevel gear is fixedly mounted on the end of the driven rod near the bidirectional drive motor, and the driven bevel gear meshes with the drive bevel gear. A drive housing is mounted on the drive shaft, and one side of the drive housing is fixedly connected to the bidirectional drive motor. The drive shaft and the drive housing are rotatably connected. A connecting post is fixedly mounted on the upper end of the drive housing, and a drive block is fixedly mounted on the connecting post. A through hole rotatably connected to the drive shaft is opened inside the drive block. A driven gear is fixedly mounted on the upper end of the drive shaft, and a drive gear is rotatably mounted inside the drive block, meshing with the driven gear. An adjustment hole for adjusting the rotation of the handle is opened in the middle of the drive gear.
4. The fully concealed window opener of the intelligent door and window system according to claim 3, characterized in that, The upper end of the adjustment hole is provided with a plug hole opened on the drive block, and a plug cylinder is fixedly provided on the outside of the plug hole, and a sealing cover is installed on the plug cylinder.
5. The fully concealed window opener of the intelligent door and window system according to claim 4, characterized in that, The sealing cap is embedded with a connecting magnet, and the insertion tube is fixedly equipped with a magnet for placement.
6. The fully concealed window opener of the intelligent door and window system according to claim 3, characterized in that, The bottom of the drive housing is provided with multiple sets of mounting blocks for support, and the bottom of the mounting blocks is fixedly connected to the hollow cavity.
7. The fully concealed window opener of the intelligent door and window system according to claim 2, characterized in that, The driven structure includes mounting shells fixedly disposed on both sides inside the window frame profile. A rotating screw is rotatably disposed within each mounting shell. A mating block is rotatably disposed at the upper end of each rotating screw. The mating block is fixedly connected to the hollow cavities at both ends of the window frame profile. A transmission bevel gear for driving a bevel gear is fixedly disposed at the bottom of the rotating screw. A sliding locking block is disposed on the mounting shell and installed in the window frame profile. A push nut threadedly connected to the rotating screw is disposed in the middle of the sliding locking block. A pair of connecting rods are fixedly disposed at the upper end of the sliding locking block. A rotating screw is disposed on each connecting rod. A sliding block that slides relative to a rotating screw has a rectangular groove in its center. A sliding nut that cooperates with the rotating screw is placed in the rectangular groove. A spring is sleeved on the rotating screw at the upper end of the sliding block. A connecting plate is fixedly attached to the upper end of the spring. The connecting plate is slidably connected to the rotating screw. A connecting rod extends through the sliding block to the connecting plate. The connecting rod and the sliding block are slidably connected. The connecting rod and the connecting plate are fixedly connected. A drive bar is rotatably mounted on the sliding block. A mating bar is rotatably connected to the other end of the drive bar. The mating bar is fixedly connected to the connecting bar in the fan-shaped profile.
8. The fully concealed window opener of the intelligent door and window system according to claim 2, characterized in that, The sliding locking block is threaded with a linkage screw, which is perpendicular to and meshes with the rotating screw. A fastener is fixedly installed on the sliding locking block, and a locking hole is provided on the fastener. The linkage screw passes through the fastener. A locking member is fixedly installed inside the fan-shaped profile, and a locking cylinder is fixedly installed on the locking member. A locking screw is threaded inside the locking cylinder, and a through hole for the linkage screw to be inserted is provided on one side of the locking cylinder.
9. The fully concealed window opener of the intelligent door and window system according to claim 8, characterized in that, The sliding locking block and both sides of the sliding block are fixedly provided with sliding components to reduce friction.
10. A method for installing an intelligent door and window system, applied to the fully concealed window opener of the intelligent door and window system according to any one of claims 2-9, characterized in that, Includes the following steps: S1. Initially align the upper and lower frames using protrusions and grooves to ensure the alignment of their hollowed-out cavities. Place the bidirectional drive motor in the hollowed-out cavity at the bottom of the window frame profile and fix it in place. S2. Install drive rods and driven rods at both ends of the bidirectional drive motor to ensure that they can drive the fan profiles on both sides to open and close respectively; S3. Install the manual drive device; S4. Connect the outer frame and inner frame together with the connecting frame to form a complete sash profile. Use hinges to rotate and connect the sash profile to the window frame to ensure that the sash profile can open and close smoothly. Adjust the position of the sash profile to align it with the window frame profile. S5. Install mounting shells on both sides inside the window frame profile and set rotating screws therein; S6. Fix the connecting block in the hollowed-out cavities at both ends of the window frame profile, and mesh the transmission bevel gear at the bottom of the rotating screw with the drive bevel gear; S7. Install the sliding locking block, push nut, connecting rod, sliding block, spring, and connecting plate to ensure they work correctly. S8. Set a drive bar on the sliding block and rotate the other end of the drive bar to connect to the connecting bar in the fan profile.