Intelligent dimming sun-shading dense-mesh screen
By using intelligent dimming shading mesh and employing motor drive and microprocessor control, the shading device achieves automatic adjustment, solving the problem that existing shading devices cannot dynamically adjust, and improving user experience and adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2026-03-13
AI Technical Summary
Existing shading devices lack intelligent control functions and cannot dynamically adjust according to changes in ambient light or user needs, resulting in a reduced user experience and limiting their application in smart homes and buildings.
A smart dimming shading mesh was designed, comprising a bracket, a mesh, and a dimming device. It employs a rotating rod, a shading plate, a motor drive, and microprocessor control, combined with a temperature sensor, a light sensor, and a remote control module, to achieve automatic adjustment and personalized control of the shading effect.
It achieves dynamic adjustment of the shading effect, improves ease of use and comfort, can automatically adjust according to changes in ambient light to meet personalized needs, reduces the tediousness of manual operation, and does not affect indoor lighting while providing shading.
Smart Images

Figure CN223991715U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of dense mesh technology, specifically to an intelligent dimming shading dense mesh. Background Technology
[0002] As we all know, people nowadays have higher requirements for the comfort of their living environment, and the application of shading equipment in buildings, homes and outdoor places is becoming more and more widespread. Traditional shading nets are usually made of materials with fixed light transmittance and cannot be dynamically adjusted according to changes in ambient light or user needs, thus making it difficult to meet the needs of modern users for intelligence, convenience and functionality. As a result, intelligent shading technology has emerged on the market, which can use motor drive devices to achieve light adjustment function.
[0003] However, existing shading products lack intelligent control functions, preventing users from flexibly adjusting the shading effect according to actual needs. This results in shading devices being unable to adapt to dynamic changes in ambient light or meet personalized requirements. This limitation reduces the user experience and also restricts the widespread application of shading devices in smart homes and buildings. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this utility model provides an intelligent dimming shading mesh.
[0006] (II) Technical Solution
[0007] To achieve the above objectives, this utility model provides the following technical solution: an intelligent dimming shading mesh, comprising a support, a mesh, and a dimming device. The mesh surrounds and is adapted to the upper side of the support. The dimming device is located within the support and includes a rotating rod and a light-blocking plate. The rotating rod is arranged in multiple groups, passing through both ends of the support. Multiple rotating motors are provided on one side wall of the support. One end of each rotating rod is connected to the output end of a corresponding rotating motor. The light-blocking plate is on the rotating rod and is adapted to the support. Symmetrical fixing plates are provided at both ends of one side wall of the support, and a [missing information - likely a type of bracket or joint] is provided between two fixing plates. A winding rod is provided with a light-shielding cloth. Symmetrical electromagnetic slide rails are provided at both ends of the upper side wall of the bracket. Magnetic blocks are provided on the electromagnetic slide rails and are electromagnetically slidably connected to them. Connecting rods are provided on the inner side walls of the magnetic blocks. Both ends of the light-shielding cloth are connected to the connecting rods. The light-shielding cloth is adapted to the dense mesh. An auxiliary motor is provided on the outer side wall of one of the fixing plates. The winding rod passes through the fixing plate and is connected to the output end of the auxiliary motor. A control board is provided on one side of the bracket. A microprocessor is provided on the bottom wall of the control board. All the above motors are signal-connected to the microprocessor.
[0008] In order to monitor the ambient temperature in real time and automatically adjust the shading effect according to temperature changes, the present invention is improved by: a temperature sensor is provided on one side wall of the control board, and the temperature sensor is connected to the microprocessor.
[0009] In order to sense changes in ambient light intensity and automatically adjust the opening angle of the light shield or the degree of unfolding of the light shield according to the light intensity, the present invention is improved by: a light sensor is provided at the other end of the side wall of the control board, and the light sensor is connected to the microprocessor.
[0010] In order to enable remote control of the sunshade device via a mobile phone APP or other smart devices, the present invention has the following improvement: the microprocessor has a built-in remote control module.
[0011] To ensure that the device can provide shade without affecting indoor lighting, the present invention is improved in that the dense mesh is made of a high-transmittance polymer material and coated with a nano heat-insulating coating.
[0012] To improve the practicality and durability of the device, the present invention includes the following improvements: the light-shielding cloth has a multi-layer composite structure, including an ultraviolet-proof layer, a heat-insulating layer, and a waterproof layer.
[0013] In order to accurately control the position of the magnetic block on the electromagnetic slide rail, the present invention has the following improvement: the magnetic block has a built-in position sensor.
[0014] To make the installation and disassembly of the mesh more convenient, the present invention is improved in that the mesh and the bracket are connected by snap fasteners.
[0015] (III) Beneficial Effects
[0016] Compared with the prior art, this utility model provides an intelligent dimming shading mesh, which has the following beneficial effects:
[0017] This intelligent dimming shading mesh is equipped with a dimming device. A rotating motor drives a rotating rod, which in turn rotates the shading panel, enabling dynamic adjustment of the shading effect. By adjusting the angle of the shading panel, the amount of light transmitted can be flexibly controlled. It can not only automatically adjust according to changes in ambient light but also meet the personalized needs of users for different shading effects, significantly improving the convenience and comfort of use. It is equipped with a shading cloth and a retractable rod, which, together with an electromagnetic slide rail and a magnetic block, allows the magnetic block to move on the electromagnetic slide rail under electromagnetic action, thereby moving the shading cloth. This allows for the rapid unfolding or retraction of the shading cloth to adapt to different shading needs. The microprocessor is connected to the rotating motor and auxiliary motor, and can automatically adjust the shading effect according to preset programs or user commands. It can automatically enhance the shading function when the light is strong and reduce the shading when the light is weak, thereby optimizing indoor lighting conditions and reducing the tediousness of manual operation. Attached Figure Description
[0018] Figure 1 This is a first-view schematic diagram of the structure of this utility model;
[0019] Figure 2 This is a second-view schematic diagram of the structure of this utility model;
[0020] Figure 3 This is a third-view schematic diagram of the structure of this utility model;
[0021] Figure 4 This is an enlarged schematic diagram of the dimming device of this utility model.
[0022] In the diagram: 1. Blackout cloth; 2. Support frame; 3. Rotating motor; 4. Auxiliary motor; 5. Fixing plate; 6. Winding rod; 7. Electromagnetic slide rail; 8. Magnetic block; 9. Connecting rod; 10. Microprocessor; 11. Control board; 12. Temperature sensor; 13. Light sensor; 14. Dense mesh; 15. Rotating rod; 16. Blackout plate. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Please see Figure 1-4A smart dimming shading mesh includes a support 2, a mesh 14, and a dimming device. The mesh 14 surrounds and is adapted to the upper side of the support 2. The dimming device is located inside the support 2 and includes a rotating rod 15 and a light-shielding plate 16. The rotating rod 15 is arranged in multiple groups, passing through both ends of the support 2. Multiple rotating motors 3 are provided on one side wall of the support 2. One end of the rotating rod 15 is connected to the output end of the corresponding rotating motor 3. The light-shielding plate 16 is on the rotating rod 15 and is adapted to the support 2. Symmetrical fixing plates 5 are provided at both ends of one side wall of the support 2. A winding rod 6 is provided between two fixing plates 5. A light-shielding cloth 1 is provided on the winding rod 6. Symmetrical electromagnetic slide rails 7 are provided at both ends of the upper side wall of the support 2. Magnetic blocks 8 are provided on the electromagnetic slide rails 7 and pass through the electromagnetic slide rails 7 and are connected to the support 2. The device features an electromagnetic sliding connection. Each inner wall of the magnetic block 8 is equipped with a connecting rod 9. Both ends of the light-shielding cloth 1 are connected to the connecting rod 9. The light-shielding cloth 1 is adapted to the dense mesh 14. An auxiliary motor 4 is installed on the outer wall of one of the fixing plates 5. The winding rod 6 passes through the fixing plate 5 and is connected to the output end of the auxiliary motor 4. A control board 11 is installed on one side of the bracket 2. A microprocessor 10 is installed on the bottom wall of the control board 11. All the aforementioned motors are signal-connected to the microprocessor 10. A temperature sensor 12 is installed at one end of the upper wall of the control board 11 and is signal-connected to the microprocessor 10. A light sensor 13 is installed at the other end of the upper wall of the control board 11 and is signal-connected to the microprocessor 10. The microprocessor 10 has a built-in remote control module, and the magnetic block 8 has a built-in position sensor.
[0025] During use, the user can first preset the desired temperature or light conditions via the remote control module. The remote control module is connected to the microprocessor 10, and the user can send commands via a mobile app or other smart devices to set the target parameters of the shading device (the indoor light intensity or temperature range can be set, and the microprocessor 10 will automatically adjust the device's operating status based on these preset values). Once the device is activated, the light sensor 13 and temperature sensor 12 begin real-time monitoring of the ambient light intensity and temperature. The light sensor 13 receives ambient light through its built-in photosensitive element, which generates a corresponding electrical signal based on the intensity of the light, thereby detecting the ambient light intensity. The temperature sensor 12 senses the ambient temperature through its built-in thermal sensor. The resistance value of the thermistor changes with the ambient temperature, detecting this change (this process uses readily available and mature technologies). This data is transmitted in real time to the microprocessor 10. The microprocessor 10 compares and analyzes the data with preset conditions to determine if the shading effect needs adjustment. If complete shading is required, the microprocessor 10 activates the rotating motor 3, which drives the rotating rod 15 to rotate, gradually flattening the shading plate 16 from its upright position. Flattening the shading plate 16 effectively blocks light from entering, achieving initial shading. Subsequently, the microprocessor 10 activates the auxiliary motor 4, which drives the winding rod 6 to rotate. Simultaneously, the microprocessor 10 sends a control signal to the electromagnetic rail 7, activating the electromagnetic coil inside the electromagnetic rail 7. The magnetic material inside the magnetic block 8 interacts with the magnetic field generated by the electromagnetic coil, causing the magnetic block 8 to experience a corresponding electromagnetic force and slide on the electromagnetic rail 7. While sliding, the built-in position sensor monitors the position of the magnetic block 8 in real time and transmits the data back to the microprocessor 10. The microprocessor 10 dynamically adjusts the magnetic field strength and direction of the electromagnetic rail 7 according to the preset unfolding path and the current position of the magnetic block 8, ensuring that the magnetic block 8 slides smoothly along the set trajectory. The sliding of the magnetic block 8 can cause the light-blocking cloth 1 to unfold via the connecting rod 9, further enhancing the light-blocking effect and achieving complete light blocking. When light is needed, the microprocessor 10 will initiate the opposite operation. First, the auxiliary... Motor 4 drives the winding rod 6 to rotate in the opposite direction, gradually winding up the light-blocking cloth 1. The magnetic block 8 slides on the electromagnetic rail 7 to its initial position, and the light-blocking cloth 1 is fully retracted. Subsequently, the rotating motor 3 drives the rotating rod 15 to rotate, causing the light-blocking plate 16 to gradually stand up from its flat position, allowing light to pass through the mesh 14 into the room. According to the user's desired light intensity, the microprocessor 10 can precisely adjust the angle of the light-blocking plate 16 to control the amount of light transmitted. Furthermore, each rotating motor 3 is independently controlled, allowing the microprocessor 10 to adjust the angle of the light-blocking plate 16 in different areas as needed. For example, if a certain area requires more light, the microprocessor 10 will adjust the rotating motor 3 in that area separately, causing the light-blocking plate 16 to stand at a greater angle, while other areas remain in their original state.This zone control function allows the device to flexibly adapt to the lighting needs of different areas, further enhancing ease of use and comfort.
[0026] In practical use, it is necessary to provide shade without affecting indoor lighting, thereby further improving the heat insulation performance of the device. In order to meet the above requirements, in this embodiment, the dense mesh 14 is made of a high light transmittance polymer material and coated with a nano heat insulation coating.
[0027] In practical use, it is necessary to have UV protection function, as well as effective heat insulation and waterproofing. In order to meet the above requirements, in this embodiment, the light-blocking cloth 1 is a multi-layer composite structure, including a UV protection layer, a heat insulation layer and a waterproof layer.
[0028] In practical use, it is necessary to make the installation and disassembly of the dense net 14 more convenient. In order to meet the above requirements, in this embodiment, the dense net 14 is connected to the bracket 2 by a snap fastener.
[0029] To illustrate the possible application scenarios, technical principles, implementable specific solutions, and achievable objectives and effects of this application in detail, the following description, in conjunction with the listed specific embodiments and accompanying drawings, provides a detailed explanation. The embodiments described herein are merely illustrative of the technical solutions of this application and are therefore intended to limit the scope of protection of this application.
[0030] 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 alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A smart light control solar screen comprising a support (2), a screen (14) and a light control device, characterized in that: The dense net (14) surrounds the upper side of the support (2) and is adapted thereto, the light adjusting device is in the support (2), the light adjusting device comprises rotating rods (15) and light shielding plates (16), the rotating rods (15) are in multiple groups and penetrate through both ends of the support (2), one side wall of the support (2) is provided with multiple rotating motors (3), one end of the rotating rod (15) is connected with the output end of the corresponding rotating motor (3), the light shielding plate (16) is on the rotating rod (15), the light shielding plate (16) is adapted to the support (2), both ends of one side wall of the support (2) are provided with symmetrical fixed plates (5), a winding rod (6) is arranged between the two fixed plates (5), the light shielding cloth (1) is arranged on the winding rod (6), both ends of the upper wall of the support (2) are provided with symmetrical electromagnetic sliding rails (7), the electromagnetic sliding rails (7) are provided with magnetic blocks (8), the magnetic blocks (8) penetrate through the electromagnetic sliding rails (7) and are connected with the electromagnetic sliding rails (7) in a sliding manner, the inner side wall of the magnetic block (8) is provided with a connecting rod (9), both ends of the light shielding cloth (1) are connected with the connecting rod (9), the light shielding cloth (1) is adapted to the dense net (14), one of the fixed plates (5) is provided with an auxiliary motor (4), the winding rod (6) penetrates through the fixed plate (5) and is connected with the output end of the auxiliary motor (4), one side of the support (2) is provided with a control panel (11), the bottom wall of the control panel (11) is provided with a microprocessor (10), and the above-mentioned motors are signal connected with the microprocessor (10).
2. The smart light control solar screen of claim 1, wherein: One end of the upper side wall of the control panel (11) is provided with a temperature sensor (12), and the temperature sensor (12) is signal connected with the microprocessor (10).
3. The smart light control solar screen of claim 2, wherein: The other end of the upper side wall of the control panel (11) is provided with a light sensor (13), and the light sensor (13) is signal connected with the microprocessor (10).
4. The smart light control solar screen of claim 3, wherein: The microprocessor (10) is provided with a remote control module.
5. The smart light control solar screen of claim 4, wherein: The dense net (14) is made of high light transmission high polymer material, and the surface is coated with a nano thermal insulation coating.
6. The smart light control solar screen of claim 5, wherein: The light shielding cloth (1) is a multi-layer composite structure, comprising an ultraviolet-proof layer, a heat insulation layer and a waterproof layer.
7. The smart light control solar screen of claim 6, wherein: The magnetic block (8) is provided with a position sensor.
8. The smart light control solar screen of claim 7, wherein: The dense net (14) and the support (2) are connected through buckles.