An intelligent energy-saving lighting system capable of generating an asymmetric light distribution
Through the design of the intelligent energy-saving lighting system, the control and concentrating mechanism indicate the road lines and the location of the sewer well on rainy days, the problem of uneven light in traditional street lights is solved, and the safety and practicality of the equipment are improved.
Patent Information
- Application Number
- CN202411240705.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-05
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2044-09-05
AI Technical Summary
Traditional street lights are uneven due to road water accumulation in rainy days, making it difficult to illuminate the road lines and the location of the sewer well, increasing the risk of traffic accidents and personnel injuries.
Design an intelligent energy-saving lighting system, including lighting mechanisms, control mechanisms, concentrating mechanisms and cleaning mechanisms. The light concentration mechanism is controlled to gather light during rainy days through the control mechanism, indicating the road lines, road edges and drain well locations, and the light concentration mechanism is cleaned after the rain, improving the practicality of the equipment.
Effective lighting of road signs, road edges and sewer well locations during rainy days is achieved, which reduces light waste, improves the safety of passers-by and vehicles, and reduces the possibility of abnormal operation of equipment through intelligent control and data analysis.
Smart Images

Figure CN119042563B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of lighting, and in particular to an intelligent energy-saving lighting system capable of generating an asymmetric light distribution. Background Art
[0002] At night, in order to facilitate vehicles and pedestrians to walk on the road, a large number of street lights are installed on the roadside to illuminate vehicles and pedestrians. However, traditional street lights only emit light, and some light is irradiated outside the road, resulting in waste of light and then waste of electric energy.
[0003] Therefore, there appear a lens and an asymmetric light distribution lighting device having the lens disclosed in the patent with publication number CN105318275B, and an LED street light lens for rural road lighting disclosed in the patent with publication number CN205655240U, etc., all of which can achieve asymmetric light distribution lighting.
[0004] However, it is found in the use process that the existing lighting equipment has a relatively simple structure. In rainy days, water is likely to accumulate on the road, making it difficult for pedestrians and drivers to see the line markings on the road, the position of the road edge, and the manhole opened for rapid drainage, which easily leads to traffic accidents and personal injuries. Therefore, there is an urgent need for an intelligent energy-saving lighting system capable of generating an asymmetric light distribution to improve the above problems. Summary of the Invention
[0005] To solve the above technical problems, the present invention provides an intelligent energy-saving lighting system capable of generating an asymmetric light distribution, which provides light for pedestrians and vehicles through a lighting mechanism at night. In rainy days, the control mechanism controls the light-gathering mechanism, and then the lighting mechanism cooperates with the light-gathering mechanism to indicate the position of the line markings on the road, the position of the road edge or the opened manhole, and then the cleaning mechanism cleans the light-gathering mechanism, thereby improving the practicability of the equipment.
[0006] An intelligent energy-saving lighting system capable of generating an asymmetric light distribution of the present invention includes a lighting mechanism; and further includes a control mechanism, a light-gathering mechanism and a cleaning mechanism, and the control mechanism, the light-gathering mechanism and the cleaning mechanism are all installed on the lighting mechanism;
[0007] The lighting mechanism provides light for pedestrians and vehicles, the control mechanism controls the light-gathering mechanism, the light-gathering mechanism gathers the light, and the cleaning mechanism cleans the light-gathering.
[0008] At night, the lighting mechanism provides light for pedestrians and vehicles. In rainy days, the control mechanism controls the light-gathering mechanism, and then the lighting mechanism cooperates with the light-gathering mechanism to indicate the position of the line markings on the road, the position of the road edge or the opened manhole, and then the cleaning mechanism cleans the light-gathering mechanism, thereby improving the practicability of the equipment.
[0009] Preferably, the lighting mechanism includes a lamp post, a connecting rod, a lamp shade, a first light refractor, a second light refractor, a third light refractor, a light source and an adjusting mechanism. The lamp post is installed by the roadside, the lamp shade is installed on the lamp post through the connecting rod, the first light refractor, the second light refractor and the third light refractor are all installed on the inner wall of the lamp shade, and the left part at the bottom of the lamp shade is a light transmission part made of a high light transmission material. The light source is installed inside the lamp shade. The light source emits light, and at the same time, the light is reflected to the third light refractor through the cooperation of the first light refractor and the second light refractor, and then the light is reflected to the light transmission part of the lamp shade through the third light refractor. The light passes through the light transmission part of the lamp shade and irradiates on the road surface, realizing an asymmetric light distribution, so that most of the light irradiates on the road surface, reducing the waste of light, providing light for pedestrians and vehicles. In rainy days, the condensing is adjusted through the adjusting mechanism, so that the light passes through the condensing mechanism and irradiates on the line markings on the road, the position of the road edge or the opened sewer well, providing marks for pedestrians and drivers, thereby improving the practicability of the equipment.
[0010] Preferably, the adjusting mechanism includes two groups of drive shafts, a tensioning shaft and a spring. A drive motor is arranged on the top of the lamp shade, and a double-output reduction gear is arranged on the drive motor. The two groups of drive shafts are rotatably installed on the top of the lamp shade, and the rear ends of the two groups of drive shafts are respectively connected to the two output ends of the double-output reduction gear. The tensioning shaft is installed on the top of the lamp shade through the spring. The condensing mechanism is supported by the tensioning shaft. By turning on the drive motor and driving through the double-output reduction gear, the two groups of drive shafts rotate, and the two groups of drive shafts drive the condensing mechanism, thereby improving the practicability of the equipment.
[0011] Preferably, the light condensing mechanism includes a light-transmitting belt, a water storage cylinder, a first electric cylinder, a first piston, a first solenoid valve, a drain pipe, and a color mixing mechanism. The light-transmitting belt is sleeved on the lampshade, and there is an interlayer on the light-transmitting belt. The water storage cylinder is installed on the lampshade, and a water inlet valve is arranged on the water storage cylinder. The first electric cylinder is installed on the top of the water storage cylinder. The first piston is slidably installed in the water storage cylinder, and the bottom end of the first electric cylinder is connected to the top end of the first piston. The first solenoid valve is installed at the bottom end of the water storage cylinder. One end of the drain pipe is installed on the first solenoid valve, and the other end of the drain pipe extends into the interlayer, and a plurality of drain holes are arranged at the other end of the drain pipe. The color mixing mechanism is installed on the water storage cylinder and communicates with the inside of the drain pipe. By contracting the first electric cylinder, the first piston slides upward, and then pure water is discharged into the water storage cylinder. On rainy days, by rotating two driving shafts, the position of the interlayer on the light-transmitting belt is adjusted. The first solenoid valve is opened, and by extending the first electric cylinder, the first piston slides downward, and the pure water is discharged into the interlayer, causing the interlayer to expand and form a convex lens to condense the light in the lampshade. Then the light irradiates on the line markings on the road, the position of the road edge, or the opened manhole, providing marks for pedestrians and drivers. After the rain, by contracting the first electric cylinder, the pure water in the interlayer is sucked back into the water storage cylinder, or by the color mixing mechanism, the pigment is discharged into the drain pipe, so that the pure water is mixed with the pigment and enters the interlayer, changing the color of the light passing through the interlayer, facilitating the observation of pedestrians and drivers, thereby improving the practicability of the device.
[0012] Preferably, the color mixing mechanism includes a material storage cylinder, a second piston, a second electric cylinder, and a second solenoid valve. The material storage cylinder is installed on the water storage cylinder, and a feed valve is arranged on the material storage cylinder. The second piston is slidably installed inside the material storage cylinder. The second electric cylinder is installed on the top of the material storage cylinder. The second solenoid valve is installed at the bottom of the material storage cylinder, and the bottom end of the second electric cylinder is connected to the top end of the second piston. The pigment is discharged into the second electric cylinder. By extending the second electric cylinder and opening the second solenoid valve at the same time, the pigment is discharged into the drain pipe, so that the pigment is mixed with water. After the rain, by contracting the first electric cylinder, the water with pigment in the interlayer is sucked back into the water storage cylinder, thereby improving the practicability of the device.
[0013] Preferably, the cleaning mechanism includes a housing, a cleaning roller, multiple groups of spray heads, a water supply pipe, and a driving motor. The housing is installed on the lamp cover. The cleaning roller is rotatably installed in the housing. Multiple groups of spray heads are all installed on the cleaning roller. And the cleaning roller communicates with the inside of the water storage cylinder through the water supply pipe. The cleaning roller is rotatably connected to the water supply pipe. An electric control valve is arranged on the water supply pipe. The driving motor is installed on the housing. And the output shaft of the driving motor is connected to the front end of the cleaning roller. By extending the first electric cylinder, the first piston slides downward, and the electric control valve on the water supply pipe is opened. The pure water in the first piston sequentially passes through the water supply pipe and the cleaning roller, and then is sprayed out through multiple groups of spray heads. At the same time, the driving motor is turned on to make the cleaning roller rotate, so as to clean the surface of the light transmission belt, thereby improving the practicability of the equipment.
[0014] Preferably, the control mechanism includes a deep learning data processor, a data storage, a data transceiver, a sealed housing, a camera, and a humidity sensor. The sealed housing is installed on the top of the lamp cover. The deep learning data processor, the data storage, and the data transceiver are all installed inside the sealed housing. The camera and the humidity sensor are both installed on the sealed housing. The humidity sensor is used to detect the humidity in the air. The camera is used to detect the road surface. And the detection data is transmitted to the deep learning data processor. When the humidity in the air exceeds the threshold set in the deep learning data processor, when the marking line on the road surface is flooded by water, when the manhole cover is opened, at the same time, the detection data is stored by the data storage. The data transceiver receives the detection data of other identical lighting devices and sends its own detection data to other identical lighting devices. Through multiple copies of data, the deep learning data processor analyzes whether its own detection result is incorrect. After analyzing that its own detection result is correct, the deep learning data processor controls the lighting mechanism and the light condensing mechanism to operate, so as to mark the marking line on the road surface, the road curb, or the opened manhole in the light irradiation range, thereby improving the practicability of the equipment.
[0015] Preferably, the data storage includes a storage module, a data management module, and a data recovery module. The data management module and the data recovery module are both electrically connected to the storage module. The data is stored within a time limit by the storage module. The data that exceeds the storage period is deleted by the data management module. The accidentally deleted data is recovered by the data recovery module, thereby improving the practicability of the equipment.
[0016] Preferably, a first support frame, a second support frame, and a storage battery are arranged on the top of the lamp cover. Solar panels are arranged on the first support frame and the second support frame. A storage battery is arranged at the bottom of the solar panel. The solar energy is converted into electric energy by the solar panel and stored in the storage battery, and the municipal power grid is cooperated to provide electric energy for the lighting mechanism, the control mechanism, the light condensing mechanism, and the cleaning mechanism, thereby improving the practicability of the equipment.
[0017] Preferably, the deep learning data processor adopts the PyTorch framework and convolutional neural network to analyze and process data through a pre-trained model, improving the data and accuracy of data analysis and processing.
[0018] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0019] 1. By reflecting light, the waste of light is reduced, the lighting effect is improved, the energy consumption of the equipment is reduced, and in rainy days, through the mutual cooperation of multiple groups of equipment, the road marking lines, road edges, and manholes with manhole covers opened within the lighting range are marked by concentrating light, improving the safety of pedestrians and vehicles;
[0020] 2. Through intelligent control, the equipment can automatically identify the surrounding environment, and even in the case of network disconnection, it can still achieve marking of designated positions;
[0021] 3. By comparing with the detection data in other equipment, the situation of abnormal operation of the equipment is reduced. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is an isometric structural schematic diagram of the present invention;
[0023] Figure 2 is a first isometric enlarged structural schematic diagram of the lighting mechanism, light condensing mechanism and other structures of the present invention;
[0024] Figure 3 is a second isometric enlarged structural schematic diagram of the lighting mechanism, light condensing mechanism and other structures of the present invention;
[0025] Figure 4 is a front isometric enlarged structural schematic diagram of the lighting mechanism, light condensing mechanism and other structures of the present invention;
[0026] Figure 5 is a front sectional enlarged structural schematic diagram of the lighting mechanism, light condensing mechanism and other structures of the present invention;
[0027] Figure 6 is a front sectional enlarged structural schematic diagram of the water storage cylinder, material storage cylinder and other structures of the present invention;
[0028] Figure 7 is the present invention Figure 5 in the enlarged structural schematic diagram of part A;
[0029] Figure 8 is the present invention Figure 5 in the enlarged structural schematic diagram of part B;
[0030] Figure 9 is the present invention Figure 5 in the enlarged structural schematic diagram of part C;
[0031] Figure 10 is a schematic structural diagram of the control mechanism of the present invention;
[0032] Figure 11 is a schematic structural diagram of the data storage of the present invention.
[0033] Reference numerals in the drawings: 1, lamp post; 2, connecting rod; 3, lamp shade; 4, first refractive mirror; 5, second refractive mirror; 6, third refractive mirror; 7, light source; 8, drive shaft; 9, tensioning shaft; 10, spring; 11, light-transmitting belt; 12, water storage cylinder; 13, first electric cylinder; 14, first piston; 15, first solenoid valve; 16, drain pipe; 17, interlayer; 18, storage cylinder; 19, second piston; 20, second electric cylinder; 21, second solenoid valve; 22, housing; 23, cleaning roller; 24, spray head; 25, water supply pipe; 26, drive motor; 27, deep learning data processor; 28, data storage; 29, data transceiver; 30, sealing shell; 31, camera; 32, humidity sensor; 34, solar panel; 35, first support frame; 36, second support frame; 37, storage battery; 38, storage module; 39, data management module; 40, data recovery module. Detailed implementation manners
[0034] To facilitate the understanding of the present invention, the present invention will be described more comprehensively below with reference to the relevant drawings. The present invention can be implemented in many different forms and is not limited to the embodiments described herein. On the contrary, these embodiments are provided to make the disclosure of the present invention more thorough and comprehensive.
[0035] Embodiment 1
[0036] An intelligent energy-saving lighting system capable of generating an asymmetric light distribution includes a lighting mechanism; it further includes a control mechanism, a light condensing mechanism, and a cleaning mechanism, and the control mechanism, the light condensing mechanism, and the cleaning mechanism are all installed on the lighting mechanism;
[0037] The lighting mechanism provides light for passers-by and vehicles, the control mechanism controls the light condensing mechanism, the light condensing mechanism condenses the light, and the cleaning mechanism cleans the light condensation;
[0038] The lighting mechanism includes a lamp post 1, a connecting rod 2, a lamp shade 3, a first refractive mirror 4, a second refractive mirror 5, a third refractive mirror 6, a light source 7, and an adjusting mechanism. The lamp post 1 is installed by the roadside, the lamp shade 3 is installed on the lamp post 1 through the connecting rod 2. The first refractive mirror 4, the second refractive mirror 5, and the third refractive mirror 6 are all installed on the inner wall of the lamp shade 3, and the left part of the bottom end of the lamp shade 3 is a light-transmitting part, and the light-transmitting part is made of a high-light-transmitting material. The light source 7 is installed inside the lamp shade 3;
[0039] The adjusting mechanism includes two groups of drive shafts 8, tensioning shafts 9 and springs 10. A drive motor is provided at the top of the lamp shade 3, and a double-output reduction gear is provided on the drive motor. The two groups of drive shafts 8 are rotatably installed at the top of the lamp shade 3, and the rear ends of the two groups of drive shafts 8 are respectively connected to the two output ends of the double-output reduction gear. The tensioning shaft 9 is installed at the top end of the lamp shade 3 through a spring 10;
[0040] The light condensing mechanism includes a light-transmitting belt 11, a water storage cylinder 12, a first electric cylinder 13, a first piston 14, a first solenoid valve 15, a drain pipe 16 and a color adjustment mechanism. The light-transmitting belt 11 is sleeved on the lamp shade 3, and an interlayer 17 is provided on the light-transmitting belt 11. The water storage cylinder 12 is installed on the lamp shade 3, and a water inlet valve is provided on the water storage cylinder 12. The first electric cylinder 13 is installed at the top of the water storage cylinder 12. The first piston 14 is slidably installed in the water storage cylinder 12, and the bottom end of the first electric cylinder 13 is connected to the top end of the first piston 14. The first solenoid valve 15 is installed at the bottom end of the water storage cylinder 12. One end of the drain pipe 16 is installed on the first solenoid valve 15, and the other end of the drain pipe 16 extends into the interlayer 17, and multiple drain holes are provided at the other end of the drain pipe 16. The color adjustment mechanism is installed on the water storage cylinder 12 and is communicated with the inside of the drain pipe 16;
[0041] The cleaning mechanism includes a housing 22, a cleaning roller 23, multiple spray heads 24, a water supply pipe 25 and a drive motor 26. The housing 22 is installed on the lamp shade 3. The cleaning roller 23 is rotatably installed in the housing 22. The multiple spray heads 24 are all installed on the cleaning roller 23, and the cleaning roller 23 is communicated with the inside of the water storage cylinder 12 through the water supply pipe 25. The cleaning roller 23 is rotatably connected to the water supply pipe 25. An electric control valve is provided on the water supply pipe 25. The drive motor 26 is installed on the housing 22, and the output shaft of the drive motor 26 is connected to the front end of the cleaning roller 23;
[0042] The control mechanism includes a deep learning data processor 27, a data storage 28, a data transceiver 29, a sealed housing 30, a camera 31 and a humidity sensor 32. The sealed housing 30 is installed at the top of the lamp shade 3. The deep learning data processor 27, the data storage 28 and the data transceiver 29 are all installed inside the sealed housing 30. The camera 31 and the humidity sensor 32 are both installed on the sealed housing 30;
[0043] The data storage 28 includes a storage module 38, a data management module 39 and a data recovery module 40. The data management module 39 and the data recovery module 40 are both electrically connected to the storage module 38;
[0044] A first support frame 35, a second support frame 36 and a storage battery 37 are provided at the top of the lamp shade 3. A solar panel 34 is provided on the first support frame 35 and the second support frame 36, and the storage battery 37 is provided at the bottom of the solar panel 34;
[0045] The deep learning data processor 27 adopts the PyTorch framework and convolutional neural network to analyze and process data through a pre-trained model;
[0046] Solar energy is converted into electrical energy by the solar panel 34 and stored in the storage battery 37, which, in cooperation with the municipal power grid, provides electrical energy for the lighting mechanism, control mechanism, light condensing mechanism, and cleaning mechanism. Light is emitted by the light source 7. At the same time, the light is reflected to the third refractive mirror 6 through the cooperation of the first refractive mirror 4 and the second refractive mirror 5, and then the light is reflected to the light-transmitting part of the lamp cover 3 through the third refractive mirror 6. The light passes through the light-transmitting part of the lamp cover 3 and irradiates on the road surface, realizing asymmetric light distribution, so that most of the light irradiates on the road surface, reducing the waste of light, providing light for pedestrians and vehicles, and detecting the humidity in the air through the humidity sensor 32, detecting the road surface through the camera 31, and transmitting the detection data to the deep learning data processor 27. When the humidity in the air exceeds the threshold set in the deep learning data processor 27, when the road marking line is flooded by water, when the manhole cover is opened, at the same time, the detection data is stored through the data storage 28, the detection data of other identical lighting devices is received through the data transceiver 29, and its own detection data is sent to other identical lighting devices. Through multiple data, the deep learning data processor 27 analyzes whether its own detection result is incorrect. After analyzing that its own detection result is correct, the light-transmitting belt 11 is supported by the tensioning shaft 9. By turning on the driving motor and driving through the double-output reduction gearbox, the two driving shafts 8 rotate, driving the light-transmitting belt 11, and moving the upper sandwich layer 17 of the light-transmitting belt 11 to a suitable position. By contracting the first electric cylinder 13, the first piston 14 slides upward, and then pure water is discharged into the water storage cylinder 12. On rainy days, by rotating the two driving shafts 8, the position of the upper sandwich layer 17 on the light-transmitting belt 11 is adjusted, the first solenoid valve 15 is opened, and by extending the first electric cylinder 13, the first piston 14 slides downward, and pure water is discharged into the sandwich layer 17, causing the sandwich layer 17 to expand and form a convex lens to concentrate the light in the lamp cover 3. Then the light irradiates on the line markings on the road, the position of the road edge, or the opened manhole, providing marks for pedestrians and drivers. After the rain, by contracting the first electric cylinder 13, the pure water in the sandwich layer 17 is sucked back into the water storage cylinder 12, and then by extending the first electric cylinder 13, the first piston 14 slides downward, and the electric control valve on the water supply pipe 25 is opened. The pure water in the first piston 14 passes through the water supply pipe 25 and the cleaning roller 23 in sequence, and then the water is sprayed out through multiple nozzles 24. At the same time, the driving motor 26 is turned on to rotate the cleaning roller 23 to clean the surface of the light-transmitting belt 11, thereby improving the practicability of the device.
[0047] Embodiment 2
[0048] As Figures 1 to 11 shown, an intelligent energy-saving lighting system capable of generating an asymmetric light distribution includes a lighting mechanism; it also includes a control mechanism, a light condensing mechanism, and a cleaning mechanism. The control mechanism, the light condensing mechanism, and the cleaning mechanism are all installed on the lighting mechanism;
[0049] The lighting mechanism provides light for pedestrians and vehicles. The control mechanism controls the light condensing mechanism, the light condensing mechanism condenses the light, and the cleaning mechanism cleans the light condensation;
[0050] The lighting mechanism includes a lamp post 1, a connecting rod 2, a lampshade 3, a first refractive mirror 4, a second refractive mirror 5, a third refractive mirror 6, a light source 7, and an adjusting mechanism. The lamp post 1 is installed by the roadside. The lampshade 3 is installed on the lamp post 1 through the connecting rod 2. The first refractive mirror 4, the second refractive mirror 5, and the third refractive mirror 6 are all installed on the inner wall of the lampshade 3. And the left part of the bottom end of the lampshade 3 is a light-transmitting part, which is made of a high-light-transmitting material. The light source 7 is installed inside the lampshade 3;
[0051] The adjusting mechanism includes two groups of drive shafts 8, a tensioning shaft 9, and a spring 10. A drive motor is provided at the top of the lampshade 3. A double-output reduction gear is provided on the drive motor. The two groups of drive shafts 8 are rotatably installed at the top of the lampshade 3. And the rear ends of the two groups of drive shafts 8 are respectively connected to the two output ends of the double-output reduction gear. The tensioning shaft 9 is installed at the top end of the lampshade 3 through the spring 10;
[0052] The light condensing mechanism includes a light-transmitting belt 11, a water storage cylinder 12, a first electric cylinder 13, a first piston 14, a first solenoid valve 15, a drain pipe 16, and a color adjusting mechanism. The light-transmitting belt 11 is sleeved on the lampshade 3. And an interlayer part 17 is provided on the light-transmitting belt 11. The water storage cylinder 12 is installed on the lampshade 3. An inlet valve is provided on the water storage cylinder 12. The first electric cylinder 13 is installed at the top of the water storage cylinder 12. The first piston 14 is slidably installed in the water storage cylinder 12. And the bottom end of the first electric cylinder 13 is connected to the top end of the first piston 14. The first solenoid valve 15 is installed at the bottom end of the water storage cylinder 12. One end of the drain pipe 16 is installed on the first solenoid valve 15. The other end of the drain pipe 16 extends into the interlayer part 17. And multiple drain holes are provided at the other end of the drain pipe 16. The color adjusting mechanism is installed on the water storage cylinder 12. And the color adjusting mechanism communicates with the inside of the drain pipe 16;
[0053] The color adjusting mechanism includes a storage barrel 18, a second piston 19, a second electric cylinder 20, and a second solenoid valve 21. The storage barrel 18 is installed on the water storage cylinder 12. And a feed valve is provided on the storage barrel 18. The second piston 19 is slidably installed inside the storage barrel 18. The second electric cylinder 20 is installed at the top of the storage barrel 18. The second solenoid valve 21 is installed at the bottom of the storage barrel 18. And the bottom end of the second electric cylinder 20 is connected to the top end of the second piston 19;
[0054] The control mechanism includes a deep learning data processor 27, a data storage 28, a data transceiver 29, a sealed housing 30, a camera 31 and a humidity sensor 32. The sealed housing 30 is installed on the top of the lamp shade 3. The deep learning data processor 27, the data storage 28 and the data transceiver 29 are all installed inside the sealed housing 30. The camera 31 and the humidity sensor 32 are both installed on the sealed housing 30;
[0055] The data storage 28 includes a storage module 38, a data management module 39 and a data recovery module 40. The data management module 39 and the data recovery module 40 are both electrically connected to the storage module 38;
[0056] The top of the lamp shade 3 is provided with a first support frame 35, a second support frame 36 and a storage battery 37. The first support frame 35 and the second support frame 36 are provided with a solar panel 34. The bottom of the solar panel 34 is provided with a storage battery 37;
[0057] The deep learning data processor 27 uses the PyTorch framework and a convolutional neural network to analyze and process data through a pre-trained model;
[0058] Solar energy is converted into electrical energy by the solar panel 34, and the electrical energy is stored in the storage battery 37. It cooperates with the municipal power grid to provide electrical energy for the lighting mechanism, control mechanism, light condensing mechanism and cleaning mechanism. Light is emitted by the light source 7. At the same time, the light is reflected onto the third refractive mirror 6 through the cooperation of the first refractive mirror 4 and the second refractive mirror 5. Then, the light is reflected onto the light-transmitting part of the lamp cover 3 through the third refractive mirror 6. The light passes through the light-transmitting part of the lamp cover 3 and shines on the road surface, realizing asymmetric light distribution, so that most of the light shines on the road surface, reducing the waste of light, providing light for pedestrians and vehicles, and detecting the humidity in the air through the humidity sensor 32, detecting the road surface through the camera 31, and transmitting the detection data to the deep learning data processor 27. When the humidity in the air exceeds the threshold set in the deep learning data processor 27, when the road marking line is flooded with water, when the manhole cover is opened, at the same time, the detection data is stored through the data storage 28, the detection data of other identical lighting devices is received through the data transceiver 29, and its own detection data is sent to other identical lighting devices. Through multiple data, the deep learning data processor 27 analyzes whether its own detection result is incorrect. After analyzing that its own detection result is correct, the light-transmitting belt 11 is supported by the tensioning shaft 9. By turning on the drive motor and driving through the double-output reduction gearbox, the two drive shafts 8 rotate, and the two drive shafts 8 drive the light-transmitting belt 11, moving the sandwich layer 17 on the light-transmitting belt 11 to a suitable position. On rainy days, the two drive shafts 8 rotate to adjust the position of the sandwich layer 17 on the light-transmitting belt 11. The first solenoid valve 15 is opened, and the first electric cylinder 13 extends, causing the first piston 14 to slide downward. At the same time, the pigment is discharged into the second electric cylinder 20. The second electric cylinder 20 extends, and the second solenoid valve 21 is opened at the same time, discharging the pigment into the drain pipe 16, mixing the pigment with water, and then discharging the mixture into the sandwich layer 17, causing the sandwich layer 17 to expand to form a convex lens, concentrating the light in the lamp cover 3 and changing the color of the light. Then the light shines on the line markings on the road, the position of the road edge or the opened manhole, providing markings for pedestrians and drivers, thereby improving the practicality of the device.
[0059] The main functions achieved by the present invention are: improving the lighting effect, improving the intelligent effect, and improving the operation stability;
[0060] 1. Improving the lighting effect: By reflecting the light, reducing the waste of light, improving the lighting effect, reducing the energy consumption of the device, and on rainy days, through the mutual cooperation of multiple devices, marking the road markings, road edges and manholes with opened covers within the light irradiation range by condensing light, improving the safety of pedestrians and vehicles;
[0061] 2. Improve the intelligent effect: Through intelligent control, the device can automatically identify the surrounding environment and still achieve the identification of specified locations even in the case of network disconnection.
[0062] 3. Improve the operation stability: By comparing with the detection data in other devices, reduce the occurrence of abnormal device operation.
[0063] An intelligent energy-saving lighting system capable of generating asymmetric light distribution according to the present invention, its installation method, connection method or setting method are all common mechanical methods, and any implementation that can achieve its beneficial effects can be carried out; the quantity and type of the light source 7 can be selected according to actual usage; the lamp post 1, connecting rod 2, light source 7, first electric cylinder 13, first solenoid valve 15, second electric cylinder 20, drive motor 26, deep learning data processor 27, data storage 28, data transceiver 29, camera 31, humidity sensors 32, 33 and storage battery 37 of an intelligent energy-saving lighting system capable of generating asymmetric light distribution according to the present invention are purchased on the market, and those skilled in the art only need to install and operate according to the attached user manual without the need for creative labor from those skilled in the art.
[0064] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the technical principle of the present invention, several improvements and modifications can still be made, and these improvements and modifications should also be regarded as the protection scope of the present invention.
Claims
1. An intelligent energy-saving lighting system capable of generating asymmetric light distribution, comprising a lighting mechanism; characterized in that: It also includes a control mechanism, a focusing mechanism and a cleaning mechanism, and the control mechanism, the focusing mechanism and the cleaning mechanism are all installed on the lighting mechanism; The lighting mechanism provides light for pedestrians and vehicles, the control mechanism controls the focusing mechanism, the focusing mechanism focuses the light, and the cleaning mechanism cleans the focused light; It also comprises a lamp pole (1), a connecting rod (2) and a lamp shade (3), wherein the lamp shade (3) is mounted on the lamp pole (1) via the connecting rod (2); The light focusing mechanism comprises a light-transmitting belt (11), a water storage cylinder (12), a first electric cylinder (13), a first piston (14), a drainage pipe (16) and a color adjustment mechanism. The light-transmitting belt (11) is mounted on the lampshade (3). An interlayer (17) is provided on the light-transmitting belt (11). The water storage cylinder (12) is mounted on the lampshade (3). An inlet valve is provided on the water storage cylinder (12). The first electric cylinder (13) is mounted on the top of the water storage cylinder (12). The first piston (14) is slidably mounted in the water storage cylinder (12). The bottom end of the first electric cylinder (13) is connected to the top end of the first piston (14). The other end of the drainage pipe (16) extends to the interlayer (17). The color adjustment mechanism is mounted on the water storage cylinder (12). The color adjustment mechanism is communicated with the inside of the drainage pipe (16). The color adjustment mechanism comprises a material storage barrel (18), a second piston (19) and a second electric cylinder (20); the material storage barrel (18) is mounted on the water storage barrel (12); the second piston (19) is slidably mounted inside the material storage barrel (18); the second electric cylinder (20) is mounted on the top of the material storage barrel (18); and the bottom end of the second electric cylinder (20) is connected to the top end of the second piston (19); The cleaning mechanism comprises a housing (22), a cleaning roller (23), a plurality of nozzles (24), a water supply pipe (25) and a driving motor (26); the housing (22) is mounted on the lampshade (3); the cleaning roller (23) is rotatably mounted in the housing (22); the plurality of nozzles (24) are all mounted on the cleaning roller (23); the driving motor (26) is mounted on the housing (22); the output shaft of the driving motor (26) is connected to the front end of the cleaning roller (23); and the cleaning roller (23) is communicated with the interior of the water storage cylinder (12) through the water supply pipe (25).
2. An intelligent energy-saving lighting system capable of generating asymmetric light distribution as claimed in claim 1, characterized in that: The lighting mechanism comprises a first folding mirror (4), a second folding mirror (5), a third folding mirror (6), a light source (7) and an adjustment mechanism. The lamp pole (1) is installed on the roadside. The first folding mirror (4), the second folding mirror (5) and the third folding mirror (6) are all installed on the inner wall of the lampshade (3). The left bottom end of the lampshade (3) is a light-transmitting portion, which is made of a highly light-transmitting material. The light source (7) is installed inside the lampshade (3).
3. An intelligent energy-saving lighting system capable of generating asymmetric light distribution as claimed in claim 2, characterized in that: The adjustment mechanism comprises two groups of drive shafts (8), a tensioning shaft (9) and a spring (10); a drive motor is arranged at the top of the lampshade (3); a dual-output reducer is arranged on the drive motor; the two groups of drive shafts (8) are rotatably mounted on the top of the lampshade (3); and the rear ends of the two groups of drive shafts (8) are respectively connected to the two groups of output ends of the dual-output reducer; the tensioning shaft (9) is mounted on the top of the lampshade (3) via a spring (10).
4. The intelligent energy-saving lighting system capable of generating asymmetric light distribution according to claim 1, characterized in that: It also includes a first solenoid valve (15), which is installed at the bottom end of the water storage cylinder (12), one end of a drainage pipe (16) is installed on the first solenoid valve (15), and the other end of the drainage pipe (16) is provided with a plurality of drainage holes.
5. The intelligent energy-saving lighting system capable of generating asymmetric light distribution according to claim 1, characterized in that: The invention also comprises a second solenoid valve (21), which is installed at the bottom of the material storage barrel (18), and a feed valve is arranged on the material storage barrel (18).
6. The intelligent energy-saving lighting system capable of generating asymmetric light distribution according to claim 1, characterized in that: The cleaning roller (23) is rotatably connected to the water supply pipe (25), and an electric control valve is arranged on the water supply pipe (25).
7. The intelligent energy-saving lighting system capable of generating asymmetric light distribution as claimed in claim 2, characterized in that: The control mechanism comprises a deep learning data processor (27), a data storage device (28), a data transceiver (29), a sealed shell (30), a camera (31) and a humidity sensor (32); the sealed shell (30) is installed on the top of the lampshade (3); the deep learning data processor (27), the data storage device (28) and the data transceiver (29) are all installed inside the sealed shell (30); and the camera (31) and the humidity sensor (32) are both installed on the sealed shell (30).
8. An intelligent energy-saving lighting system capable of generating asymmetric light distribution as claimed in claim 7, characterized in that: The data storage device (28) comprises a storage module (38), a data management module (39) and a data recovery module (40), and the data management module (39) and the data recovery module (40) are both electrically connected to the storage module (38).
9. The intelligent energy-saving lighting system capable of generating asymmetric light distribution as claimed in claim 2, characterized in that: A first support frame (35), a second support frame (36) and a storage battery (37) are arranged on the top of the lampshade (3); a solar panel (34) is arranged on the first support frame (35) and the second support frame (36); and a storage battery (37) is arranged on the bottom of the solar panel (34).
10. The intelligent energy-saving lighting system capable of generating asymmetric light distribution according to claim 7, characterized in that: The deep learning data processor (27) uses a PyTorch framework and a convolutional neural network to analyze and process data using a pre-trained model.
Citation Information
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