Photoelectric assembly for built-in hollow shutter glass

By introducing solar photovoltaic panels and energy storage components into the built-in hollow louver glass, combined with photosensitive sensors and programmable logic controllers, the angle of the louver blades is automatically adjusted, the energy waste problem of photoelectric components is solved, energy saving and independence are achieved, and indoor comfort and practicality are improved.

CN223135976UActive Publication Date: 2025-07-22ANHUI YIPIN GLASS TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422286828.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-07-22
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

The existing optoelectronic components with built-in hollow louver glass continue to consume electricity during use, resulting in waste of energy and is inconvenient to improve green environmental protection, energy conservation and emission reduction.

Method used

The independent power supply system is formed by solar photovoltaic panels and energy storage components. Combined with a photosensitive sensor and a programmable logic controller, the angle of the louver blades is automatically adjusted to control the light intensity and direction, and the DC power is converted into AC power through an inverter to meet the power consumption needs.

Benefits of technology

The energy saving and independence of optoelectronic components are achieved, the dependence on external power is reduced, the indoor comfort and practicality of use are improved, and the additional power installation cost is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a photoelectric assembly for built-in hollow shutter glass, which comprises double-layer glass, the inner top wall of the double-layer glass is fixedly connected with a lifting assembly and an adjusting assembly, a plurality of shutter blades are arranged in the adjusting assembly, the edge of the back of the double-layer glass is provided with a clamping groove, and the clamping groove is connected with the lifting assembly and the adjusting assembly. And a solar photovoltaic panel is embedded in the clamping groove. According to the utility model, through the arrangement of the solar photovoltaic panel and the energy storage assembly, during use, light is irradiated on the solar photovoltaic panel to convert solar energy into electric energy, the storage battery stores the electric energy for use when there is no sun, and the inverter converts the stored direct current into alternating current to meet the requirements of each electric device; therefore, an independent power supply system is formed, dependence on external power is reduced, the situation that extra power installation is needed and cost is increased when the device is used is avoided, and the energy-saving performance and independence of a photoelectric assembly in use are improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of hollow venetian glass, in particular to an optoelectronic component for an internal hollow venetian glass. Background Art

[0002] Hollow venetian glass is a traditional sunshade product. Generally, artificial magnetism is used to control the venetian blinds inside the hollow glass. Based on its excellent structural design, the hollow venetian blinds can achieve the functions of existing ordinary venetian blinds and hollow sound insulation functions, greatly increasing privacy. However, with the popularization of the current Internet of Things +, the hollow venetian blinds are becoming more and more intelligent. As an essential component in the intelligence of hollow venetian blinds, the optoelectronic component plays a crucial role.

[0003] Patent document: CN217542139U proposes an optoelectronic component for an internal hollow venetian glass, including a box shell and a main control circuit board. A daylighting window is embedded on the right side of the box shell. An embedded boss is integrally formed on the front surface of the box shell. The embedded boss is embedded with an infrared receiver, an antenna and a USB interface. A secondary integrated circuit board is fixedly installed inside the box shell behind the embedded boss. The infrared receiver, the antenna and the USB interface are welded to the secondary integrated circuit board. The main control circuit board is fixedly installed inside the box shell. An optoelectronic signal processing integrated board is fixedly installed inside the box shell on the left side of the daylighting window. By placing the side of the daylighting window, the daylighting window can be placed in the interlayer of the hollow venetian blinds. And based on the setting of the total reflection prism inside, the light can effectively enter the device, so as to achieve the purpose of side daylighting and avoiding the influence of dust. At the same time, by increasing the size of the daylighting window, the daylighting amount can be increased, thereby maintaining the sensitivity of the light sense control of the entire device.

[0004] Although this device achieves the effect of maintaining the sensitivity of light sense control, it will continuously consume electricity, causing energy waste and not being conducive to achieving the purposes of improving green environmental protection and energy conservation and emission reduction. Summary of the Utility Model

[0005] The main purpose of the utility model is to provide an optoelectronic component for an internal hollow venetian glass, which can effectively solve the problems in the background art of continuously consuming electricity, causing energy waste and not being conducive to achieving the purposes of improving green environmental protection and energy conservation and emission reduction.

[0006] To achieve the above purpose, the technical solution adopted by the utility model is as follows:

[0007] An optoelectronic component for built-in hollow louvre glass, comprising double-layer glass. A lifting component and an adjustment component are fixedly connected to the inner top wall of the double-layer glass. A plurality of louvre blades are arranged inside the adjustment component. A card slot is formed at the edge of the back surface of the double-layer glass, and a solar photovoltaic panel is embedded inside the card slot. One side of the solar photovoltaic panel is electrically connected to an energy storage component through a power line. An installation component is fixedly connected to the edge of one side of the front surface of the double-layer glass. A sliding ring tube is slidably connected to the surface of the installation component. One side of the sliding ring tube is fixedly connected to a control box. A photosensitive sensor and a temperature sensor are arranged on one side of the control box. An antenna is fixedly connected to the edge of the top surface of the control box;

[0008] Preferably, the lifting component includes a dual-axis motor A fixedly connected to the inner top wall of the double-layer glass. The output ends of both ends of the dual-axis motor A are spline-connected with transmission rods. One end of the transmission rod is fixedly connected to a rotating wheel, and a lifting rope is fixedly connected to the surface of the rotating wheel;

[0009] Preferably, two sliding holes are formed on the surfaces of a plurality of the louvre blades, and the lifting ropes penetrate through the inside of the sliding holes;

[0010] Preferably, the adjustment component includes a dual-axis motor B fixedly connected to the inner top wall of the double-layer glass. The output ends of both ends of the dual-axis motor B are spline-connected with transmission rods. One end of the transmission rod is fixedly connected to an adjustment cylinder, and adjustment ropes are fixedly connected to both sides of the surface of the adjustment cylinder. Limiting ropes are fixedly connected to the surfaces of the adjustment ropes;

[0011] Preferably, the energy storage component includes a storage battery electrically connected to one side of the solar photovoltaic panel through a power line, and an inverter is electrically connected to one side of the storage battery through a power line;

[0012] Preferably, the installation component includes two installation blocks fixedly connected to the edge of one side of the front surface of the double-layer glass, and an installation rod is fixedly connected to one side of the installation block;

[0013] Preferably, an adjustment hole is formed on one side of the sliding ring tube, and a limiting component is threadedly connected to the inside of the adjustment hole. The limiting component includes a limiting bolt threadedly connected to the inside of the adjustment hole, and a limiting piece is fixedly connected to one end of the limiting bolt;

[0014] Preferably, a programmable logic controller is fixedly connected to the top end of the control box, and the programmable logic controller is electrically connected to the photosensitive sensor and the temperature sensor respectively through a power line.

[0015] Compared with the prior art, the utility model has the following beneficial effects:

[0016] 1. Through the provision of a solar photovoltaic panel and an energy storage component, during use, light irradiates on the solar photovoltaic panel to convert solar energy into electrical energy. The storage battery stores this electrical energy for use when there is no sun. The inverter then converts the stored direct current into alternating current to meet the needs of various electrical devices, thus forming an independent power supply system, reducing dependence on external power, avoiding the need for additional power installation during device use, increasing costs, and improving the energy efficiency and independence of the optoelectronic components during use.

[0017] 2. Through the provision of an adjustment component, a photosensitive sensor, and a programmable logic controller, during use, the programmable logic controller sets the monitoring threshold of the photosensitive sensor. The photosensitive sensor monitors the light intensity. When the photosensitive sensor detects that the light intensity is too high, the programmable logic controller can calculate at what angle the louvre blades need to be adjusted to reduce the entry of light, start the double-axis motor B to drive the adjustment cylinder to rotate, pull the adjustment rope, and adjust the angle of the louvre blades, thereby automatically adjusting the angle of the louvre blades according to the light intensity, effectively controlling the intensity and direction of sunlight entering the room, improving the comfort and energy-saving effect of the room, and increasing the practicality of the optoelectronic components of the insulating glass with louvres during use.

[0018] 3. Through the provision of a mounting component, a sliding ring tube, and a limiting component, during use, the sensitivity of the photosensitive sensor needs to be continuously adjusted to achieve more accurate detection. For the angle adjustment of the louvre blades, turn the limiting bolt to move the sliding ring tube on the mounting rod. After accurately debugging the photosensitive sensor, tighten the limiting bolt to fix it, thereby ensuring that the louvre blades can be accurately adjusted according to the actual light conditions and improving the comfort of the user. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a schematic diagram of the overall structure of the present utility model;

[0020] Figure 2 is a schematic diagram of the lifting component structure of the present utility model;

[0021] Figure 3 is a schematic diagram of the adjustment component structure of the present utility model;

[0022] Figure 4 is a schematic diagram of the back structure of the double-layer glass of the present utility model;

[0023] Figure 5 is a schematic diagram of the mounting component structure of the present utility model;

[0024] Figure 6 is a schematic diagram of the energy storage component structure of the present utility model.

[0025] In the figure: 1. Double-layer glass; 2. Lifting component; 201. Biaxial motor A; 202. Rotating wheel; 203. Lifting rope; 3. Adjusting component; 301. Biaxial motor B; 302. Adjusting cylinder; 303. Adjusting rope; 304. Limiting rope; 4. Venetian blades; 5. Solar photovoltaic panel; 6. Energy storage component; 601. Battery; 602. Inverter; 7. Installation component; 701. Installation block; 702. Installation rod; 8. Sliding ring tube; 9. Control box; 10. Photosensitive sensor; 11. Temperature sensor; 12. Antenna; 13. Limiting component; 1301. Limiting bolt; 1302. Limiting piece; 14. Programmable logic controller. Detailed implementation mode

[0026] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0027] Please refer to Figures 1-6 , the present invention provides a technical solution: an optoelectronic component for built-in hollow venetian glass, including double-layer glass 1. The inner top wall of the double-layer glass 1 is fixedly connected with a lifting component 2 and an adjusting component 3. Several venetian blades 4 are arranged inside the adjusting component 3. A card slot is opened at the edge of the back surface of the double-layer glass 1, and a solar photovoltaic panel 5 is embedded in the card slot. One side of the solar photovoltaic panel 5 is electrically connected with an energy storage component 6 through a power cord. Through the settings of the solar photovoltaic panel 5 and the energy storage component 6, an independent power supply system is formed, reducing the dependence on external power, avoiding the need for additional power installation during the use of the device, increasing costs, and improving the energy-saving and independence of the optoelectronic component during use. The edge of one side of the front surface of the double-layer glass 1 is fixedly connected with an installation component 7, and the surface of the installation component 7 is slidably connected with a sliding ring tube 8. Through the settings of the installation component 7, the sliding ring tube 8 and the limiting component 13, the venetian blades 4 can be accurately adjusted according to the actual light conditions, improving the comfort of the user. One side of the sliding ring tube 8 is fixedly connected with a control box 9. One side of the control box 9 is provided with a photosensitive sensor 10 and a temperature sensor 11. Through the settings of the adjusting component 3, the photosensitive sensor 10 and the programmable logic controller 14, the angle of the venetian blades 4 is automatically adjusted according to the light intensity, effectively controlling the intensity and direction of sunlight entering the room, improving the comfort and energy-saving effect of the room, and increasing the practicality of the optoelectronic component of the hollow venetian glass during use. The edge of the top surface of the control box 9 is fixedly connected with an antenna 12.

[0028] Please refer to Figure 2 ,Figure 3 , Figure 5 , the lifting component 2 includes a biaxial motor A201 fixedly connected to the inner top wall of the double-layer glass 1. The output ends of both ends of the biaxial motor A201 are spline-connected with transmission rods. One end of the transmission rod is fixedly connected with a rotating wheel 202, and a lifting rope 203 is fixedly connected to the surface of the rotating wheel 202; two sliding holes are formed on the surfaces of several louver blades 4, and the lifting rope 203 penetrates through the inside of the sliding holes; the adjusting component 3 includes a biaxial motor B301 fixedly connected to the inner top wall of the double-layer glass 1. The output ends of both ends of the biaxial motor B301 are spline-connected with transmission rods. One end of the transmission rod is fixedly connected with an adjusting cylinder 302, and adjusting ropes 303 are fixedly connected to both sides of the surface of the adjusting cylinder 302. Limiting ropes 304 are fixedly connected to the surfaces of the adjusting ropes 303; a programmable logic controller 14 is fixedly connected to the top end of the control box 9, and one side of the programmable logic controller 14 is electrically connected to the photosensitive sensor 10 and the temperature sensor 11 through power lines respectively;

[0029] Through the settings of the adjusting component 3, the photosensitive sensor 10 and the programmable logic controller 14, during use, the programmable logic controller 14 will set the monitoring threshold of the photosensitive sensor 10. The photosensitive sensor 10 monitors the light intensity. When the photosensitive sensor 10 detects that the light intensity is too high, the programmable logic controller 14 can calculate what angle the louver blades 4 need to be adjusted to reduce the entry of light, start the biaxial motor B301, drive the adjusting cylinder 302 to rotate, lift the adjusting rope 303, so that the angle of the louver blades 4 is adjusted, so as to automatically adjust the angle of the louver blades 4 according to the light intensity, effectively control the intensity and direction of sunlight entering the room, improve the comfort and energy-saving effect of the room, and increase the practicability of the optoelectronic component of the insulating louver glass during use.

[0030] Please refer to Figure 6 , the energy storage component 6 includes a storage battery 601 electrically connected to one side of the solar photovoltaic panel 5 through a power line, and an inverter 602 is electrically connected to one side of the storage battery 601 through a power line;

[0031] Through the setting of the energy storage component 6, during use, the light irradiates on the solar photovoltaic panel 5 to convert solar energy into electrical energy. The storage battery 601 stores this electrical energy for use when there is no sun. The inverter 602 converts the stored direct current into alternating current to meet the needs of various electrical equipment, so as to form an independent power supply system, reduce the dependence on external power, avoid the need for additional power installation when the device is in use, increase the cost, and improve the energy-saving and independence of the optoelectronic component during use.

[0032] Please refer to Figure 5 , Figure 6, the installation component 7 includes two installation blocks 701 fixedly connected to one side edge of the front surface of the double-layer glass 1, and one side of the installation block 701 is fixedly connected with an installation rod 702; an adjustment hole is formed on one side of the sliding ring tube 8, and a limiting component 13 is threadedly connected inside the adjustment hole. The limiting component 13 includes a limiting bolt 1301 threadedly connected inside the adjustment hole, and one end of the limiting bolt 1301 is fixedly connected with a limiting piece 1302;

[0033] Through the settings of the installation component 7, the sliding ring tube 8 and the limiting component 13, during use, the sensitivity of the photosensitive sensor 10 needs to be continuously adjusted to achieve more accurate detection. For the angle adjustment of the louver blades 4, turn the limiting bolt 1301 to move the sliding ring tube 8 on the installation rod 702. After precisely debugging the photosensitive sensor 10, tighten the limiting bolt 1301 to fix it, so as to ensure that the louver blades 4 can be accurately adjusted according to the actual light conditions, improving the comfort of the user;

[0034] Working principle: During use, the sensitivity of the photosensitive sensor 10 needs to be continuously adjusted to achieve more accurate detection. For the angle adjustment of the louver blades 4, turn the limiting bolt 1301 to move the sliding ring tube 8 on the installation rod 702. After precisely debugging the photosensitive sensor 10, tighten the limiting bolt 1301 to fix it;

[0035] During use, light irradiates on the solar photovoltaic panel 5 to convert solar energy into electrical energy. The storage battery 601 stores this electrical energy for use when there is no sun, and the inverter 602 converts the stored direct current into alternating current to meet the needs of various electrical equipment;

[0036] During use, the programmable logic controller 14 will set the monitoring threshold of the photosensitive sensor 10. The photosensitive sensor 10 monitors the light intensity. When the photosensitive sensor 10 detects that the light intensity is too high, the programmable logic controller 14 can calculate what angle the louver blades 4 need to be adjusted to reduce the entry of light, start the biaxial motor B301 to drive the adjustment cylinder 302 to rotate, and lift the adjustment rope 303 to adjust the angle of the louver blades 4. The above is the entire working process of the device, and the content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.

[0037] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An optoelectronic component for built-in hollow venetian glass, comprising a double-layer glass (1), characterized in that: A lifting component (2) and an adjustment component (3) are fixedly connected to the inner top wall of the double-layer glass (1). A plurality of louver blades (4) are arranged inside the adjustment component (3). A card slot is formed at the edge of the back surface of the double-layer glass (1), and a solar photovoltaic panel (5) is embedded in the card slot. One side of the solar photovoltaic panel (5) is electrically connected to an energy storage component (6) through a power line. An installation component (7) is fixedly connected to the edge of one side of the front surface of the double-layer glass (1). A sliding ring pipe (8) is slidably connected to the surface of the installation component (7). A control box (9) is fixedly connected to one side of the sliding ring pipe (8). A photosensitive sensor (10) and a temperature sensor (11) are arranged on one side of the control box (9). An antenna (12) is fixedly connected to the edge of the top surface of the control box (9).

2. The optoelectronic component for built-in hollow venetian blinds according to claim 1, characterized in that: The lifting component (2) includes a double-shaft motor A (201) fixedly connected to the inner top wall of the double-layer glass (1). The output ends of both ends of the double-shaft motor A (201) are spline-connected with transmission rods. One end of the transmission rod is fixedly connected with a rotating wheel (202). A lifting rope (203) is fixedly connected to the surface of the rotating wheel (202).

3. The optoelectronic component for built-in hollow Venetian blinds according to claim 1, characterized in that: Two sliding holes are formed on the surfaces of a plurality of the louver blades (4), and the lifting rope (203) penetrates through the inside of the sliding holes.

4. The optoelectronic component for built-in hollow venetian glass according to claim 1, characterized in that: The adjustment component (3) includes a double-shaft motor B (301) fixedly connected to the inner top wall of the double-layer glass (1). The output ends of both ends of the double-shaft motor B (301) are spline-connected with transmission rods. One end of the transmission rod is fixedly connected with an adjustment cylinder (302). Adjustment ropes (303) are fixedly connected to both sides of the surface of the adjustment cylinder (302), and limit ropes (304) are fixedly connected to the surfaces of the adjustment ropes (303).

5. The optoelectronic component for built-in hollow venetian glass according to claim 1, characterized in that: The energy storage component (6) includes a storage battery (601) electrically connected to one side of the solar photovoltaic panel (5) through a power line. An inverter (602) is electrically connected to one side of the storage battery (601) through a power line.

6. The optoelectronic component for built-in hollow venetian blinds according to claim 1, characterized in that: The installation component (7) includes two installation blocks (701) fixedly connected to the edge of one side of the front surface of the double-layer glass (1). An installation rod (702) is fixedly connected to one side of the installation block (701).

7. The optoelectronic component for built-in hollow venetian blinds according to claim 1, characterized in that: An adjustment hole is formed on one side of the sliding ring pipe (8), and a limit component (13) is threadedly connected to the inside of the adjustment hole. The limit component (13) includes a limit bolt (1301) threadedly connected to the inside of the adjustment hole, and a limit piece (1302) is fixedly connected to one end of the limit bolt (1301).

8. An optoelectronic component for an internally mounted hollow venetian blind glass according to claim 1, characterized in that: A programmable logic controller (14) is fixedly connected to the top end of the control box (9). The programmable logic controller (14) is electrically connected to the photosensitive sensor (10) and the temperature sensor (11) respectively through power lines.

Citation Information

Patent Citations

  • Photoelectric assembly for built-in hollow shutter glass

    CN217542139U