Hollow glass shutter window capable of being controlled horizontally
By installing a sliding control mechanism on the top of the hollow louver glass window, the problem of limited opening in narrow windows is solved, a wider visual effect and better lighting are achieved, the thermal insulation and sound insulation performance are maintained, and it is suitable for a variety of window sizes and shapes.
Patent Information
- Application Number
- CN202422552478.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-10-22
AI Technical Summary
Traditional hollow louver glass windows are limited in opening when installed in narrow windows, affecting the aesthetics and lighting, and the side control mechanism takes up space and cannot meet users' needs for wider visual effects.
A horizontally operable hollow louver glass window is designed. A sliding control mechanism is set at the top of the window, and an extremely narrow side frame structure is adopted. A partition plate in the top frame is used to divide the window into a sliding groove cavity and a flip groove cavity. Combined with a sliding control device, a flip drive device and a steering transmission device, the lifting and flipping control of the louver is achieved.
Maximize the width of the window opening, improve the aesthetics and lighting effects, save indoor space, maintain thermal insulation and sound insulation performance, suitable for a variety of window sizes and shapes, especially suitable for narrow window scenes.
Smart Images

Figure CN223330476U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hollow louver glass windows, in particular to a hollow louver glass window that can be controlled horizontally. Background Art
[0002] Insulated Venetian blinds have gained widespread popularity in recent years due to their superior functionality and aesthetics. Combining excellent thermal and acoustic insulation with adjustable light and privacy, these windows are suitable for a variety of building types, making them a popular choice in modern architectural design. However, while insulated Venetian blinds excel in many installation scenarios, they exhibit some practical limitations, particularly in narrow window installations.
[0003] Traditional insulated Venetian blinds typically have the sliding control mechanism located within the left or right side of the window frame. This design works well for standard windows, but in narrow windows, the side controls further reduce the window opening, impacting both aesthetics and daylighting. Clients often desire wider windows to enhance the visual experience and create a more elegant and inviting space. However, narrow window openings not only reduce the amount of daylight in the room but can also negatively impact the indoor environment. Therefore, new solutions are urgently needed to address the design requirements of this specialized window form and overcome its limitations in narrow window applications. Utility Model Content
[0004] In response to the aforementioned problems with the existing technology, the present invention aims to provide a horizontally operable hollow Venetian blind window. By optimizing the design of the sliding control mechanism, the window's width is maximized, thereby enhancing both its aesthetics and daylighting. This design aims to address the limited opening in traditional narrow windows, satisfying users' desire for a wider visual experience while also ensuring excellent thermal and sound insulation, improving overall living comfort.
[0005] The technical solution adopted by the utility model to solve its technical problems is:
[0006] A horizontally operable hollow louvered glass window, comprising: a window frame, a glass cover, a venetian blind, and a venetian blind drive mechanism; the window frame is characterized in that it is composed of a top frame, a bottom partition, and two side partitions connected by corner connectors; the venetian blind drive mechanism is disposed within the top frame and connected to the venetian blind located below the top frame; the glass cover comprises two pieces, each of which covers and is bonded to two surfaces of the window frame;
[0007] The opening of the top frame faces the indoor side, and a partition plate is provided in the frame body, dividing the frame body into an upper layer and a lower layer, the upper layer being a slide groove cavity, and the lower layer being a turning groove cavity; one end of the partition plate extends to one end of the top frame, and the other end thereof does not touch the other end of the top frame, thereby forming a turning groove cavity communicating with each other at the other end of the top frame;
[0008] The venetian blind drive mechanism includes: a sliding control device, a flip drive device and a steering transmission device; the sliding control device is arranged in the sliding groove cavity; the flip drive device is arranged in the flip groove cavity; the steering transmission device is installed in the steering groove cavity; the sliding control device is connected to the venetian blind through a lifting control rope, passes through the steering transmission device, and controls the lifting of the venetian blind; the sliding control device drives the wheel in the steering transmission device to rotate through the first flip control rope, and the wheel of the steering transmission device drives the rotating shaft of the flip drive device to rotate; the flip drive device is connected to the venetian blind through the second flip control rope, driving it to complete the flipping action of the curtain blades.
[0009] A further preferred technical solution is that a top frame slot extending along the length direction is provided on the upper edge of the top frame; a top frame cover is provided on the opening surface of the top frame, the cross-section of the top frame cover is L-shaped, and the top edge of the top frame cover is inserted into the top frame slot and fixed.
[0010] A further preferred technical solution is that the steering transmission device includes a seat body, a first lifting fixed pulley, a second lifting fixed pulley, a first flipping fixed pulley, a second flipping fixed pulley and a flip shaft docking wheel; the first lifting fixed pulley and the second lifting fixed pulley are respectively fixed on one side of the seat body in upper and lower correspondence, and the first flipping fixed pulley and the second flipping fixed pulley are arranged side by side on the upper part of the other side of the seat body, and the flip shaft docking wheel is located below the two flipping fixed pulleys and placed perpendicular to them.
[0011] A further preferred technical solution is that the sliding control device includes a horizontal slider and a fixed pulley base; the fixed pulley base is located in the slide groove cavity and is fixed at the other end opposite to the steering transmission device, and the horizontal slider is located in the slide groove cavity and slides between the fixed pulley base and the steering transmission device.
[0012] According to a further preferred technical solution, the horizontal slider includes a slider body; a slider movable pulley is provided at the front end of the slider body, a magnetic block and two pulleys are provided in the middle of the slider body, and the two pulleys are arranged on both sides of the magnetic block.
[0013] A further preferred technical solution is that the fixed pulley base includes a pulley seat and a spring seat; the fixed pulley is installed in the pulley seat, and the spring seat is installed in the spring seat. The pulley seat is inserted into the spring seat to compress the spring, and is confined in the spring seat by the limiting structure at the tail of the spring seat.
[0014] A further preferred technical solution is that one end of the first flip control rope is fixed to the front end of the horizontal slider, the rope body passes through the first flip fixed pulley, goes downward and then around the flip shaft docking wheel, goes upward and then around the second flip fixed pulley, then passes out of the base body, and then around the fixed pulley in the fixed pulley base, and the other end is fixed to the tail end of the horizontal slider.
[0015] A further preferred technical solution is that the flip drive device includes a lifting wheel, a flip wheel, a flip shaft and a flip seat; the lifting wheel and the flip wheel are both fixed on the flip seat; two flip seats are provided, which are respectively fixed on the bottom edge of the top frame; the flip shaft is installed on the flip seat, and one end is docked with the rotating shaft of the flip shaft docking wheel, and is driven to rotate synchronously by the flip shaft docking wheel; the flip wheel is installed on the flip shaft.
[0016] A further preferred technical solution is that one end of the lifting control rope is fixed on the base body, the rope body passes around the movable pulley of the slider at the front end of the horizontal slider, and the other end passes around the first lifting fixed pulley and the second lifting fixed pulley respectively, passes through the base body of the steering transmission device, and finally passes through the lifting wheel in the flip drive device and is downwardly connected to the venetian blind.
[0017] According to a further preferred technical solution, the rope body of the second flip control rope is wound around the flip wheel of the flip drive device, and both ends thereof are downwardly connected to the venetian blind.
[0018] The beneficial effects of the utility model are:
[0019] 1. Improve the aesthetics of windows: By designing the sliding control mechanism to be top-mounted and adopting an extremely narrow side frame structure, the opening width of the window is maximized, making the window appear more beautiful and elegant, and improving the overall visual effect of indoor and outdoor.
[0020] 2. Improve lighting effects: The optimized structural design increases the effective lighting area of the windows, extends the indoor sunshine time, improves the utilization rate of natural light, and helps to improve the comfort of the living space.
[0021] 3. Save indoor space: The top control mechanism reduces the occupation of side space, making the window structure more compact and suitable for a variety of installation environments, especially for applications in limited spaces.
[0022] 4. Maintaining thermal and acoustic performance: Despite the increased opening width, the improved hollow louver glass window still maintains excellent thermal and acoustic performance, ensuring a quiet and comfortable indoor environment. 5. Wide applicability: The design can adapt to different window sizes and shapes, especially suitable for narrow window scenarios, meeting diverse architectural needs. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the utility model.
[0024] Figure 2 It is a structural diagram of the top frame.
[0025] Figure 3 It is a structural diagram of the steering transmission device.
[0026] Figure 4 It is a structural schematic diagram of the sliding control device.
[0027] Figure 5 It is a structural diagram of the horizontal slider.
[0028] Figure 6 It is a structural diagram of the fixed pulley base.
[0029] Figure 7 It is a structural diagram of the flip drive device.
[0030] In the figure: 1 - window frame, 2 - glass cover, 3 - venetian blind, 4 - venetian blind drive mechanism; 11 - top frame, 12 - bottom partition, 13 - side partition, 41 - sliding control device, 42 - tilting drive device, 43 - steering transmission device, 111 - partition plate, 112 - slide groove cavity, 113 - tilting groove cavity, 114 - steering groove cavity, 421 - lifting wheel, 422 - tilting wheel, 423 - tilting shaft, 424 - tilting seat, 431 - seat body, 432 - first lifting fixed pulley, 433 - second lifting fixed pulley, 434 - first tilting fixed pulley, 435 - second tilting fixed pulley, 436 - tilting shaft docking wheel, 4111 - slider movable pulley, 4112 - magnetic block, 4113 - pulley, 4121 - pulley seat, 4122 - spring seat. 411 - horizontal slider, 412 - fixed pulley base. DETAILED DESCRIPTION
[0031] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0032] like Figure 1 As shown, an embodiment of the present invention relates to a horizontally controllable hollow louvered glass window, comprising a window frame 1 , a glass cover plate 2 , a louver 3 and a louver driving mechanism 4 .
[0033] The window frame 1 is a rectangular frame formed by a top frame 11, a bottom partition 12 and two side partitions 13 connected by corner connectors. The glass cover 2 includes two glass cover plates, which respectively cover and bond to the two sides of the window frame 1 to form a hollow structure.
[0034] The venetian blind 3 is arranged below the top frame 11 and is controlled by a venetian blind driving mechanism 4 located in the top frame 11 .
[0035] The venetian blind driving mechanism 4 includes a sliding control device 41 , a tilting driving device 42 and a steering transmission device 43 .
[0036] like Figure 2 As shown, in this embodiment, the top frame 11 opens toward the interior of the room. A partition plate 111 is installed within the frame, dividing the frame into upper and lower layers: the upper layer comprises a chute cavity 112, and the lower layer comprises a reversing cavity 113. One end of the partition plate 111 extends to one end of the top frame 11, while the other end does not touch the other end of the top frame 11. This forms a diverting cavity 114 at the other end of the top frame 11, connecting the upper and lower parts. A sliding control device 41 is installed within the chute cavity 112, controlling the raising and lowering of the Venetian blind 3. A reversing drive device 42 is installed within the reversing cavity 113, controlling the reversing of the Venetian blind 3. A steering transmission device 43 is installed within the diverting cavity 114, enabling transmission of sliding and reversing control.
[0037] like Figure 3 As shown, the steering transmission device 43 includes a base 431, a first lifting fixed pulley 432, a second lifting fixed pulley 433, a first flipping fixed pulley 434, a second flipping fixed pulley 435, and a flip shaft docking pulley 436. The first lifting fixed pulley 432 and the second lifting fixed pulley 433 are fixed to one side of the base 431, one above the other. The first flipping fixed pulley 434 and the second flipping fixed pulley 435 are fixed side by side to the other side of the base 431. The flip shaft docking pulley 436 is perpendicular to and located below the flipping fixed pulleys 434 and 435. The coordination of these pulleys enables the transfer and conversion of the lifting and flipping control ropes.
[0038] like Figure 4As shown, the sliding control device 41 includes a horizontal slider 411 and a fixed pulley base 412. The fixed pulley base 412 is fixed to one end of the chute cavity 112, and the horizontal slider 411 is capable of sliding horizontally within the chute cavity 112. One end of the first flip control rope is fixed to the front end of the horizontal slider 411. It passes through the first flip fixed pulley 434, the flip shaft docking wheel 436, the second flip fixed pulley 435, and then passes through the base 431. It then passes around the fixed pulley in the fixed pulley base 412 and is finally fixed to the rear end of the horizontal slider 411. When the horizontal slider 411 moves, the first flip control rope drives the flip shaft docking wheel 436 to rotate.
[0039] like Figure 5 As shown, the horizontal slider 411 includes a slider body; a slider movable pulley 4111 is provided at the front end of the slider body, a magnetic block 4112 and two pulleys 4113 are provided in the middle of the slider body, and the two pulleys 4113 are provided on both sides of the magnetic block 4112.
[0040] like Figure 6 As shown, the fixed pulley base 412 includes a pulley seat 4121 and a spring seat 4122; the fixed pulley is installed in the pulley seat 4121, and the spring is installed in the spring seat 4122. The pulley seat 4121 is inserted into the spring seat 4122 to compress the spring, and is limited in the spring seat 4122 by the limiting structure at the tail of the spring seat 4122.
[0041] like Figure 7 As shown, the tilting drive device 42 includes a lifting wheel 421, a tilting wheel 422, a tilting shaft 423, and a tilting seat 424. The tilting seat 424 is fixed to the bottom edge of the top frame 11. The tilting shaft 423 is mounted on the tilting seat 424, with one end docking with a tilting shaft docking wheel 436. This docking wheel 436 drives the tilting shaft 423 to rotate synchronously. A second tilting control rope is connected to the Venetian blind 3 and is wrapped around the tilting wheel 422. The rotation of the tilting wheel 422 drives the Venetian blind 3 to complete its tilting motion.
[0042] The lifting control rope passes over the lifting wheel 421 and is connected to the venetian blind 3 to realize the lifting of the venetian blind.
[0043] In addition, a longitudinal slot 115 is provided along the top edge of the top frame 11 for securing an L-shaped top frame cover. One side of the top frame cover is inserted into slot 115 to seal the top frame opening. This design not only conceals the drive mechanism within the top frame, but also facilitates installation and maintenance, and enhances the aesthetics and stability of the overall structure.
[0044] This solution works as follows:
[0045] Lifting operation principle: One end of the lift control rope is fixed to the base of the steering drive device 43. The rope passes over the movable pulley of the horizontal slider 411. The other end passes over the first and second fixed lift pulleys 432, 433, and then passes over the lift pulley 421 of the tilting drive device 42. The rope is then pulled downward to connect to the Venetian blind 3. When the horizontal slider 411 slides to the left, the fixed pulley drives the lift control rope, thereby pulling the Venetian blind 3 up. Otherwise, it descends.
[0046] The flipping mechanism works as follows: One end of the first flip control rope is fixed to the front end of the horizontal slider 411. The rope passes through the first flip fixed pulley 434, then passes downward around the flip shaft docking pulley 436, and then passes upward around the second flip fixed pulley 435. It then passes through the base 431, around the fixed pulley in the fixed pulley base 412, and the other end is fixed to the rear end of the horizontal slider 411. The second flip control rope is connected to the Venetian blind 3 and is wrapped around the flip pulley 422. The rotation of the flip pulley 422 drives the Venetian blind 3 to complete the flipping movement.
[0047] Through the above design, the hollow louver glass window of the utility model can realize the flexible control of the louver curtain, while maximally retaining the width of the window, improving the aesthetics and lighting effect of the window, and is suitable for a variety of different building installation scenarios.
[0048] It should be noted that, in this document, terms such as "comprises", "includes" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements, but also includes other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the sentence "comprises a..." does not exclude the presence of other identical elements in the process, method, article or device comprising the element. Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A horizontally operable hollow louvered glass window, comprising: A window frame, a glass cover, a venetian blind, and a venetian blind drive mechanism; the window frame is characterized in that the window frame is composed of a top frame, a bottom partition, and two side partitions connected by corner connectors; the venetian blind drive mechanism is disposed within the top frame and connected to the venetian blind located below the top frame; the glass cover comprises two pieces, each of which covers and is bonded to two sides of the window frame; The opening of the top frame faces the indoor side, and a partition plate is provided in the frame body, dividing the frame body into an upper layer and a lower layer, the upper layer being a slide groove cavity, and the lower layer being a turning groove cavity; one end of the partition plate extends to one end of the top frame, and the other end thereof does not touch the other end of the top frame, thereby forming a turning groove cavity communicating with each other at the other end of the top frame; The venetian blind drive mechanism includes: a sliding control device, a flip drive device and a steering transmission device; the sliding control device is arranged in the sliding groove cavity; the flip drive device is arranged in the flip groove cavity; the steering transmission device is installed in the steering groove cavity; the sliding control device is connected to the venetian blind through a lifting control rope, passes through the steering transmission device, and controls the lifting of the venetian blind; the sliding control device drives the wheel in the steering transmission device to rotate through the first flip control rope, and the wheel of the steering transmission device drives the rotating shaft of the flip drive device to rotate; the flip drive device is connected to the venetian blind through the second flip control rope, driving it to complete the flipping action of the curtain blades.
2. The horizontally controllable hollow louver glass window according to claim 1, characterized in that: A top frame slot extending along the length direction is provided on the upper edge of the top frame; a top frame cover is provided on the opening surface of the top frame, the cross section of the top frame cover is L-shaped, and the top edge of the top frame cover is inserted into the top frame slot and fixed.
3. The horizontally controllable hollow louver glass window according to claim 1, characterized in that: The steering transmission device includes a seat body, a first lifting fixed pulley, a second lifting fixed pulley, a first flipping fixed pulley, a second flipping fixed pulley and a flip shaft docking wheel; the first lifting fixed pulley and the second lifting fixed pulley are respectively fixed to one side of the seat body in upper and lower correspondence, and the first flipping fixed pulley and the second flipping fixed pulley are arranged side by side on the upper part of the other side of the seat body, and the flip shaft docking wheel is located below the two flipping fixed pulleys and placed perpendicular to them.
4. The horizontally controllable hollow louver glass window according to claim 3, characterized in that: The sliding control device includes a horizontal slider and a fixed pulley base; the fixed pulley base is located in the slide groove cavity and is fixed at the other end opposite to the steering transmission device, and the horizontal slider is located in the slide groove cavity and slides between the fixed pulley base and the steering transmission device.
5. The horizontally controllable hollow louver glass window according to claim 4, characterized in that: The horizontal slider includes a slider body; a slider movable pulley is provided at the front end of the slider body, a magnetic block and two pulleys are provided in the middle of the slider body, and the two pulleys are arranged on both sides of the magnetic block.
6. The horizontally controllable hollow louver glass window according to claim 4, characterized in that: The fixed pulley base includes a pulley seat and a spring seat; the fixed pulley is installed in the pulley seat, and the spring is installed in the spring seat. The pulley seat is inserted into the spring seat to compress the spring and is confined in the spring seat by the limiting structure at the tail of the spring seat.
7. The horizontally controllable hollow louver glass window according to claim 6, characterized in that: One end of the first flip control rope is fixed to the front end of the horizontal slider, the rope body passes through the first flip fixed pulley, goes down around the flip shaft docking wheel, goes up around the second flip fixed pulley, then passes out of the base body, and then goes around the fixed pulley in the fixed pulley base, and the other end is fixed to the tail end of the horizontal slider.
8. The horizontally controllable hollow louver glass window according to claim 6, characterized in that: The flip driving device includes a lifting wheel, a flip wheel, a flip shaft and a flip seat; the lifting wheel and the flip wheel are both fixed on the flip seat; two flip seats are provided, which are respectively fixed on the bottom edge of the top frame; the flip shaft is installed on the flip seat, and one end is docked with the rotating shaft of the flip shaft docking wheel, and is driven to rotate synchronously by the flip shaft docking wheel; the flip wheel is installed on the flip shaft.
9. The horizontally controllable hollow louver glass window according to claim 8, characterized in that: One end of the lifting control rope is fixed on the base body, and the rope body passes around the movable pulley of the slider at the front end of the horizontal slider, and the other end passes around the first lifting fixed pulley and the second lifting fixed pulley respectively, passes through the base body of the steering transmission device, and finally passes through the lifting wheel in the flip drive device and is downwardly connected to the venetian blind.
10. The horizontally controllable hollow louver glass window according to claim 8, characterized in that: The rope body of the second flip control rope is wound around the flip wheel of the flip drive device, and both ends of the rope are downwardly connected to the venetian blind.