Integrated sunshade window powered by solar energy
By designing integrated sunshade windows powered by solar energy, the light sensing monitor and controller control drive components drive the sunshade to automatically expand or store, the problem of poor operation convenience of existing outdoor sunshade devices is solved, and automation and energy efficiency are improved.
Patent Information
- Application Number
- CN202421893268.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-08-07
AI Technical Summary
The existing outdoor sunshade device needs to rely on manual expansion and storage when used, which is less convenient to operate.
A solar-powered integrated sunshade window is designed, including a sunshade part and a driving component in the storage box. The driving component is controlled by the light sensing monitor and controller to drive the sunshade to slide or store simultaneously.
The sun visor is automatically expanded or stored according to the light intensity, solving the convenience of manual operation, and at the same time, power is used to use solar panels to improve the automation and energy efficiency of the device.
Smart Images

Figure CN222862727U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a sunshade device for an exterior window of a building, in particular to an integrated sunshade window powered by solar energy. Background Art
[0002] In existing building designs, shading devices are often installed to prevent direct sunlight from entering the room. Shading devices can be divided into indoor shading systems and outdoor shading devices according to different usage scenarios.
[0003] At present, outdoor sunshade devices often need to be deployed and stored manually when in use, and the operation convenience is poor. Utility Model Content
[0004] The utility model aims to provide an integrated sunshade window powered by solar energy, which is used to solve the problem that the current outdoor sunshade devices often need to rely on manual operation to unfold and store during use, and the operation convenience is poor.
[0005] To achieve the above-mentioned purpose, the utility model provides an integrated sunshade window powered by solar energy, including a storage box, which is fixedly installed on a wall, wherein a placement cavity is provided in the storage box, wherein the placement cavity is used to place a sunshade panel component, wherein the sunshade panel component includes a sunshade panel I and a sunshade panel II, wherein the sunshade panel I and the sunshade panel II are slidably installed in the storage box along a vertical direction, and the sunshade panel I and the sunshade panel II are driven to synchronously linearly slide by a driving component in the storage box, wherein the upper end surfaces of the sunshade panel I and the sunshade panel II are both installed with solar panels, and the two groups of the solar panels are electrically connected to a power supply box in the storage box, and a light sensor monitor for monitoring the ambient light intensity is provided on the outside of the storage box, wherein the light sensor monitor is connected to a controller in the storage box, and the driving component is driven by the controller;
[0006] The driving assembly includes a driving gear and a rotating power component. The driving gear is rotatably installed at one end of the sun visor I close to the inner cavity of the storage box and is driven to rotate by the rotating power component. The top of the placement cavity and the upper side of the sun visor II are provided with transmission racks for engaging the upper and lower sides of the driving gear.
[0007] As a further solution of the utility model, an inclined panel is provided on the top of the storage box.
[0008] As a further solution of the utility model, a placement groove for placing the drive assembly is provided on the inner side of the sun visor I.
[0009] As a further solution of the utility model, the number of the driving gears is two groups, and two groups of transmission racks for meshing with the driving gears are respectively provided on the top of the corresponding placement cavity and the sun visor II.
[0010] As a further solution of the utility model, the rotating power part is a double-headed motor, and the double-headed motor is fixedly installed in the placement groove, and the output shafts at both ends of the double-headed motor are coaxially connected with the corresponding driving gears.
[0011] Compared with the prior art, the utility model places a sun visor assembly in a storage box, wherein the sun visor assembly includes a sun visor I and a sun visor II, and drives the sun visor I and the sun visor II to synchronously slide linearly through a driving assembly in the storage box. When the light sensor monitor detects that the light intensity in the environment is higher than the set threshold, the controller controls the driving gear in the driving assembly to rotate, and the two sets of transmission racks are engaged to drive the sun visor I and the sun visor II to synchronously extend out of the storage box to achieve a shielding operation. The solar panels installed on the sun visor I and the sun visor II are exposed, and the two sets of solar panels convert sunlight into electrical energy and store it in the power supply box, thereby solving the problem that the current outdoor sunshade devices often need to rely on manual deployment and storage during use, and have poor operational convenience. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 It is a structural schematic diagram of an integrated sunshade window powered by solar energy in the utility model.
[0013] Figure 2 It is a schematic diagram of the interior of the storage box in the utility model.
[0014] Figure 3 It is a schematic diagram of the unfolded state of the sunshade panel in the utility model.
[0015] Figure 4 It is a structural schematic diagram of the driving component in the utility model.
[0016] In the attached drawings: 1. Storage box; 2. Wall; 3. Light sensor; 4. Power supply box; 5. Sun visor assembly; 501. Sun visor I; 502. Sun visor II; 6. Driving assembly; 601. Driving gear; 602. Double-headed motor; 7. Transmission rack; 8. Solar panel; 9. Controller. DETAILED DESCRIPTION
[0017] The technical solution of the utility model is further described in detail below in conjunction with specific implementation methods.
[0018] like Figures 1 to 4As shown, in an embodiment of the utility model, a solar-powered integrated sunshade window comprises a storage box 1, which is fixedly mounted on a wall 2, wherein a placement cavity is provided in the storage box 1, wherein the placement cavity is used to place a sunshade member 5, wherein the sunshade member 5 comprises a sunshade Ⅰ 501 and a sunshade Ⅱ 502, wherein the sunshade Ⅰ 501 and the sunshade Ⅱ 502 are slidably mounted in the storage box 1 along a vertical direction, and the sunshade Ⅰ 501 and the sunshade Ⅱ 502 are driven to synchronously slide linearly by a driving component 6 in the storage box 1, and the upper end surfaces of the sunshade Ⅰ 501 and the sunshade Ⅱ 502 are both mounted with solar panels 8, and two groups of the solar panels 8 are electrically connected to a power supply box 4 in the storage box 1, and a light sensor monitor 3 for monitoring the ambient light intensity is provided on the outside of the storage box 1, and the light sensor monitor 3 is connected to a controller 9 in the storage box 1, and the driving component 6 is driven by the controller 9;
[0019] The driving assembly 6 includes a driving gear 601 and a rotating power member. The driving gear 601 is rotatably mounted on one end of the sun visor I 501 close to the inner cavity of the storage box 1 and is driven to rotate by the rotating power member. The top of the placement cavity and the upper side of the sun visor II 502 are provided with a transmission rack 7 for meshing the upper and lower sides of the driving gear 601.
[0020] Specifically, after the utility model is installed, the light sensor monitor 3 monitors the light intensity in the environment. When the light intensity in the environment is higher than the set threshold, the controller 9 controls the driving assembly 6 to operate, and the driving gear 601 rotates and drives the two sets of transmission racks 7 to engage, driving the sun visor Ⅰ501 and the sun visor Ⅱ502 to synchronously extend out of the storage box 1 to achieve the covering operation. At the same time, when the sun visor Ⅰ501 and the sun visor Ⅱ502 are extended, the solar panels 8 installed thereon leak out, and the two sets of solar panels 8 convert sunlight into electrical energy and store it in the power supply box 4;
[0021] When the light intensity in the environment is lower than the set threshold, there is no need to unfold the sun visor 5 for shading operation. At this time, the sun visor I 501 and the sun visor II 502 are stored in the storage box 1, and the two sets of solar panels 8 can be stored in the storage box 1 for protection.
[0022] like Figure 1 and Figure 2 As shown, in the embodiment of the utility model, an inclined panel is provided on the top of the storage box 1 to prevent impurities from accumulating on the top of the storage box 1.
[0023] like Figure 3 and Figure 4As shown, in the embodiment of the utility model, the inner side of the sun visor I 501 is provided with a placement groove for placing the driving assembly 6, and the number of the driving gears 601 is two groups, and the two groups of driving gears 601 are rotatably mounted on both sides of the placement groove, and the corresponding top of the placement cavity and the sun visor II 502 are respectively provided with two groups of transmission racks 7 for meshing the driving gears 601;
[0024] In addition, the rotating power part is a double-headed motor 602, which is fixedly installed in the placement slot, and the output shafts at both ends are coaxially connected to the corresponding driving gears 601. When driven to unfold, the double-headed motor 602 drives the two sets of driving gears 601 to rotate coaxially and engage the two sets of transmission racks 7, so that the sun visor I 501 and the sun visor II 502 are synchronously extended out of the storage box 1 to achieve the sunshade operation. Conversely, when storing, the double-headed motor 602 drives the two sets of driving gears 601 to rotate coaxially in the opposite direction, so that the sun visor I 501 and the sun visor II 502 are synchronously reset and slid into the storage box 1.
[0025] In summary, the utility model places a sun visor assembly 5 in a storage box 1, and the sun visor assembly 5 includes a sun visor Ⅰ501 and a sun visor Ⅱ502. The sun visor Ⅰ501 and the sun visor Ⅱ502 are driven by a driving assembly 6 in the storage box 1 to synchronously slide linearly. When the light sensor monitor 3 detects that the light intensity in the environment is higher than the set threshold, the controller 9 controls the driving gear 601 in the driving assembly 6 to rotate, and the two sets of transmission racks 7 are engaged to drive the sun visor Ⅰ501 and the sun visor Ⅱ502 to synchronously extend out of the storage box 1 to achieve the shielding operation, and the solar panels 8 installed on the sun visor Ⅰ501 and the sun visor Ⅱ502 are exposed, and the two sets of solar panels 8 convert sunlight into electrical energy and store it in the power supply box 4, thereby solving the problem that the current outdoor sunshade devices often need to rely on manual deployment and storage during use, and the operation convenience is poor.
[0026] The preferred embodiments of the present invention are described in detail above, but the present invention is not limited to the above embodiments, and various changes can be made within the knowledge scope of ordinary technicians in this field without departing from the purpose of the present invention.
Claims
1. An integrated solar-powered sunshade window, characterized in that: It comprises a storage box, which is fixedly mounted on a wall, wherein a placement cavity is provided in the storage box, wherein the placement cavity is used to place a sun visor component, wherein the sun visor component comprises a sun visor I and a sun visor II, wherein the sun visor I and the sun visor II are slidably mounted in the storage box along a vertical direction, and the sun visor I and the sun visor II are driven to synchronously linearly slide by a driving component in the storage box, wherein the upper end surfaces of the sun visor I and the sun visor II are both mounted with solar panels, and the two groups of the solar panels are electrically connected to a power supply box in the storage box, and a light sensor monitor for monitoring the ambient light intensity is provided on the outside of the storage box, wherein the light sensor monitor is connected to a controller in the storage box, and the driving component is driven by the controller; The driving assembly includes a driving gear and a rotating power component. The driving gear is rotatably installed at one end of the sun visor I close to the inner cavity of the storage box and is driven to rotate by the rotating power component. The top of the placement cavity and the upper side of the sun visor II are provided with transmission racks for engaging the upper and lower sides of the driving gear.
2. The solar-powered integrated sunshade window according to claim 1, characterized in that: The top of the storage box is provided with an inclined panel.
3. The solar-powered integrated sunshade window according to claim 1, characterized in that: The inner side of the sun visor I is provided with a placement groove for placing the drive assembly.
4. The solar-powered integrated sunshade window according to claim 3, characterized in that: There are two groups of driving gears, and two groups of transmission racks for meshing with the driving gears are respectively provided on the top of the corresponding placement cavity and the sun visor II.
5. The solar-powered integrated sunshade window according to claim 4, characterized in that: The rotating power part is a double-headed motor, which is fixedly installed in the placement slot, and the output shafts at both ends of the double-headed motor are coaxially connected with the corresponding driving gears.