A smart LED street light with energy-saving control based on cloud platform

Through cloud-based smart LED street lights, using light sensors and intelligent adjustment of photovoltaic components, the problems of intelligent energy saving and low solar energy utilization efficiency of existing street lights are solved, and efficient energy utilization and power supply reliability are achieved.

CN119436033BActive Publication Date: 2025-09-30YANGZHOU HUAHENG ELECTRIC CO LTD
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Patent Information

Application Number
CN202411611945.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-13
Publication Date
2025-09-30
Estimated Expiration
2044-11-13

AI Technical Summary

Technical Problem

Existing smart street lights are difficult to achieve intelligent energy-saving control, and the efficiency of solar energy utilization is limited, resulting in energy waste and reduced public safety reliability.

Method used

Using cloud-based smart LED street lights, light sensors are used to detect light intensity, intelligently adjust the position of LED light sources and reflective components, and combined with photovoltaic components to collect solar energy in real time and store it in batteries to power lighting components, achieving intelligent energy-saving control and efficient solar energy utilization.

Benefits of technology

It can automatically adjust the lighting intensity according to the light intensity, improve the energy utilization efficiency, ensure normal lighting in the event of power failure, and enhance the energy saving and emission reduction effect and reliability of street lamps.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of smart LED street lamps, specifically a smart LED street lamp based on cloud platform energy-saving control, comprising a lamp pole, wherein both sides below the surface of the lamp pole are fixed with maintenance plates by bolts, a cavity is provided inside the lamp pole, and a lighting component is provided inside the cavity, and a reflective component and a photovoltaic component are also provided on the top of the lamp pole. The present invention can intelligently adjust the lighting position and angle according to the light intensity detected by the light sensor through the LED light source inside the cavity in conjunction with the movable lampshade and reflective component with adjustable position above, thereby achieving energy-saving control; at the same time, solar energy is collected in real time through the photovoltaic component on the top, and energy is stored in the battery to power the lighting component and reflective component inside the lamp pole, effectively improving the energy utilization efficiency of the street lamp, and ensuring normal lighting in the event of a power failure, greatly improving the practicality and energy-saving and emission reduction effects of the smart LED street lamp.
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Description

Technical Field

[0001] The present invention relates to the technical field of smart LED street lamps, and in particular to a smart LED street lamp based on cloud platform energy-saving control. Background Art

[0002] Existing smart streetlights typically use fixed reflective components, and their lighting intensity is difficult to intelligently adjust according to actual environmental conditions, resulting in a certain amount of energy waste. In addition, many streetlights rely on traditional electricity supply methods. Once the power supply is interrupted, they cannot provide lighting services, which reduces the reliability of public safety.

[0003] Currently, the technology for intelligently adjusting light intensity mainly focuses on adjusting the brightness of LED bulbs. This adjustment method is usually achieved by changing the power supply of the LED bulb, but this cannot truly achieve intelligent energy-saving control. At the same time, most existing photovoltaic street lights only absorb solar energy and store it in batteries during the day, but lack real-time control of the daytime illumination level and the sun's position, resulting in limited solar energy utilization efficiency.

[0004] Therefore, there are urgent pain points to be solved in intelligent energy-saving control of street lamps and improvement of solar energy utilization efficiency. It is necessary to develop a technical solution that can realize intelligent lighting intensity adjustment and efficient solar energy collection to improve the energy-saving, environmental protection performance and reliability of street lamps. Summary of the Invention

[0005] In response to the shortcomings of the existing technology, the present invention provides a smart LED street lamp based on cloud platform energy-saving control to solve the above-mentioned technical defects.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a smart LED street lamp based on cloud platform energy-saving control, comprising a lamp pole, wherein maintenance plates are fixedly provided on both sides below the surface of the lamp pole by bolts, a cavity is provided inside the lamp pole, and a lighting assembly is provided inside the cavity, a reflective assembly is movably provided on the top of the lamp pole, and a photovoltaic assembly is also provided on the top of the lamp pole, and the reflective assembly and the photovoltaic assembly are both communicatively connected to the cloud platform via optical fibers;

[0007] The lighting assembly includes an LED light source, an electric slide is fixedly provided on one side of the inner wall of the cavity, and two micro-electric cylinders are slidably provided on the surface of the electric slide, and the driving ends of the two micro-electric cylinders are fixedly provided with LED light sources, and the illumination directions of the two LED light sources are both inclined upward, and a plurality of movable lampshades are rotatably provided on both sides of the inner wall of the lamp pole, and the front and rear sides of the movable lampshades on both sides are movably connected to the interior of the lamp pole through torsion springs, wherein the tops of the movable lampshades on both sides are provided with transparent acrylic plates;

[0008] The reflector assembly includes an adjustment frame and a fixed frame. The adjustment frame is slidably provided on the surface of the lamp pole, and fixed frames are fixedly provided on both sides of the adjustment frame. Adjustment tooth grooves are provided above the front and back of the lamp pole. Adjustment gear rollers are rotatably provided on the front and back sides of the adjustment frame, and the surfaces of the two adjustment gear rollers are respectively engaged with the inner walls of the two adjustment tooth grooves for transmission.

[0009] A fixed reflector is fixedly provided in the middle of the bottom of the fixing frame, and adjustable reflectors are rotatably provided on the front and rear sides of the bottom of the fixing frame. One side of the two adjustable reflectors is fixedly connected to one end of the transmission rod 1 and the transmission rod 2 located on the rear side respectively.

[0010] Preferably, a fixed block is fixedly provided on the front of the adjustment frame, and an adjusting motor is fixedly provided inside the fixed block, a driving gear is rotatably provided inside the fixed block, and the output shaft of the adjusting motor is fixedly connected to the inside of the driving gear, a rotating rod 1 is also rotatably provided inside the adjustment frame, and a driven gear 1 that meshes with the driving gear is fixedly provided on the surface of the rotating rod 1, a transmission gear 1 is fixedly provided on the surface of the rotating rod 1 and one end of the adjusting gear roller located on the front side, and the tooth surfaces of the two transmission gears 1 are meshed for transmission.

[0011] Preferably, rotating rods 2 are rotatably provided on both sides of the interior of the adjustment frame, and the front ends of the two rotating rods 2 are respectively fixedly provided with bevel gears 1 at both ends of the rotating rod 1, and the tooth surfaces of the two bevel gears 1 on both sides are engaged with each other for transmission, and rotating rods 3 are rotatably provided inside the two fixed frames, and one ends of the two rotating rods 3 are respectively fixedly provided with bevel gears 2 at the rear ends of the two rotating rods 2, and the tooth surfaces of the two bevel gears 2 on both sides are engaged with each other for transmission.

[0012] Preferably, two transmission rods 1 are rotatably provided inside the two fixed frames, and one end of the two transmission rods 1 and one end of the rotating rod 3 are fixedly provided with pulleys, and the surfaces of the three pulleys are connected by belt transmission. A transmission rod 2 is also rotatably provided on one side of the interior of the fixed frame, and one end of the transmission rod 2 and one end of the transmission rod 1 located on the front side are fixedly provided with a driven gear 2, and the tooth surfaces of the two driven gears 2 are engaged for transmission.

[0013] Preferably, the photovoltaic assembly includes a mounting frame and a flip frame, the mounting frame is fixedly provided on the top of the lamp pole, and the front and rear sides of the top of the mounting frame are rotatably provided with flip frames through an electric rotating shaft, the front and rear sides of the inner wall of the mounting frame and the opposite sides of the two flip frames are provided with movable tooth grooves, and the inside of the two movable tooth grooves are slidably provided with driving blocks, one side of the two driving blocks is rotatably provided with a driving gear roller, and the surfaces of the two driving gear rollers are respectively engaged with the inner walls of the two movable tooth grooves for transmission.

[0014] Preferably, a driving motor is fixedly installed inside the two driving blocks, and the output shafts of the two driving motors are fixedly installed with a driving shaft through a coupling. A rotating shaft is also rotatably installed on the opposite side of the two driving blocks. A photovoltaic panel is rotatably installed inside the mounting frame, and one end of the two rotating shafts is fixedly connected to the front and rear sides of the photovoltaic panel respectively.

[0015] Preferably, a bevel gear three is fixedly provided on one end of the rotating shaft and the surface of the driving shaft, and the tooth surfaces of the two bevel gears three are meshed for transmission. A transmission gear two is fixedly provided on one end of the driving shaft and one end of the driving gear roller, and the tooth surfaces of the two transmission gears two are meshed for transmission.

[0016] Compared with the existing technology, it has the following beneficial effects:

[0017] 1. In the present invention, the LED light source inside the cavity is combined with the movable lampshade and reflective component with adjustable position above, and the lighting position and angle can be intelligently adjusted according to the light intensity detected by the light sensor to achieve energy-saving control; at the same time, solar energy is collected in real time by the photovoltaic component on the top, and energy is stored in the battery to power the lighting component and reflective component inside the lamp pole, effectively improving the energy utilization efficiency of the street lamp, and ensuring normal lighting in the event of a power failure, greatly improving the practicality and energy-saving and emission reduction effects of the smart LED street lamp, and the reflective component and photovoltaic component can be intelligently controlled through the cloud platform for regulation and operation.

[0018] 2. In the intelligent energy-saving control of the brightness of smart LED street lights, the present invention realizes multi-directional fine adjustment of the reflective component through the cooperation of the adjustment frame slidingly set on the surface of the lamp pole and the fixed frames on both sides, thereby optimizing the lighting effect and improving the lighting efficiency and uniformity; the front and rear sides of the interior of the adjustment frame are provided with adjustment gear rollers that can mesh with the adjustment teeth on the surface of the lamp pole for transmission, and the adjustment motor installed in the fixed block drives the driven gear 1, thereby driving the rotation of the transmission gear 1 and the adjustment gear roller, and finally achieving the adjustment of the position of the reflective component. The rotating rods 2 on both sides are connected to the rotating rod 1 through the bevel gear 1, and are connected to the rotating rod 3 inside the fixed frame through the bevel gear 2, and cooperate to drive the transmission rod 1 and the transmission rod 2 inside the fixed frame to work. The two adjustment reflective plates at the bottom of the fixed frame are respectively connected to the ends of the transmission rod 1 and the transmission rod 2, so that the two adjustment reflective plates can adjust the angle as needed, optimize the lighting effect, and improve the lighting efficiency and uniformity. The overall design enables the reflective component to be flexibly adjusted, improving the practicality of the lighting device.

[0019] 3. In the present invention, when adjusting the orientation of the photovoltaic panel for collecting sunlight, the two flip frames are unfolded 90 degrees by operating the electric rotating shaft, and the driving motor in the mounting frame is used to control the rotation of the driving shaft, thereby driving the driving gear roller to rotate. The rotation of the driving gear roller causes the photovoltaic panel to rise along the movable tooth groove inside the driving block under the drive of the rotating shaft. At the same time, the meshing transmission of the bevel gear three is used to adjust the inclination angle of the photovoltaic panel around the two rotating shafts to ensure that the photovoltaic panel is always facing the direction of sunlight, thereby maximizing the efficiency of the photovoltaic panel in collecting sunlight and improving the overall power generation performance of the photovoltaic module.

[0020] Other features and advantages of the present invention will be set forth in the following description and, in part, will become apparent from the description or will be understood through implementation of the present invention. The objectives and other advantages of the present invention can be realized and obtained through the structures indicated in the description and the drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 This is a schematic diagram of a smart LED street lamp structure based on cloud platform energy-saving control according to an embodiment of the present invention;

[0022] Figure 2 This is a schematic diagram of the internal structure of a lamp pole according to an embodiment of the present invention;

[0023] Figure 3 For the present invention Figure 2 A magnified view of the structure at center A;

[0024] Figure 4 A schematic diagram of a fixing frame, a fixing reflector plate, and an adjusting reflector plate structure according to an embodiment of the present invention;

[0025] Figure 5 A schematic diagram of the internal structure of the adjustment frame and the fixing block according to an embodiment of the present invention;

[0026] Figure 6 Schematic diagram of the mutually matched transmission structure of the rotating rod 1, the rotating rod 2 and the rotating rod 3 according to an embodiment of the present invention;

[0027] Figure 7 This is a schematic diagram of the structure of the flip frame in the closed state according to an embodiment of the present invention;

[0028] Figure 8 A schematic diagram of the photovoltaic panel and driver block structure according to an embodiment of the present invention;

[0029] Figure 9 Schematic diagram of the drive shaft and drive gear roller structure according to an embodiment of the present invention.

[0030] In the figure, 1. lamp pole; 2. adjustment frame; 3. fixing frame; 4. fixed reflector; 5. adjustment reflector; 6. fixing block; 7. adjustment motor; 8. driving gear; 9. driven gear 1; 10. rotating rod 1; 11. transmission gear 1; 12. adjustment gear roller; 13. adjustment gear groove; 14. bevel gear 1; 15. rotating rod 2; 16. bevel gear 2; 17. rotating rod 3; 18. pulley; 19. transmission rod 1; 20. transmission rod 2; 21. driven gear 2; 22. mounting frame; 23. flip frame; 24. movable gear groove; 25. driving block; 26. photovoltaic panel; 27. rotating shaft; 28. driving shaft; 29. ​​bevel gear 3; 30. driving motor; 31. transmission gear 2; 32. driving gear roller; 33. cavity; 34. electric slide; 35. micro electric cylinder; 36. LED light source; 37. movable lampshade; 38. maintenance panel. DETAILED DESCRIPTION

[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0032] Example 1:

[0033] See also Figures 1 to 9 As shown, a smart LED street light based on cloud platform energy-saving control includes a lamp pole 1. A maintenance plate 38 is fixed on both sides below the surface of the lamp pole 1 by bolts. A cavity 33 is provided inside the lamp pole 1, and a lighting component is provided inside the cavity 33. A reflective component is movably provided on the top of the lamp pole 1. A photovoltaic component is also provided on the top of the lamp pole 1. The reflective component and the photovoltaic component are both connected to the cloud platform via optical fiber.

[0034] In a specific embodiment, the present invention intelligently adjusts the lighting intensity of the street lamp through the lighting component inside the cavity 33 in cooperation with the reflective component movably arranged on the top of the lamp pole 1, wherein a light sensor for real-time detection of light intensity is provided at the bottom of the smart LED street lamp, and the positions of the reflective component and the lighting component on the lamp pole 1 are adjusted according to the light intensity at the bottom of the smart LED street lamp, thereby realizing intelligent energy-saving control of the smart LED street lamp; in addition, the photovoltaic component arranged on the top of the lamp pole 1 collects the solar energy of the smart LED street lamp in real time during daily operation, and intelligently adjusts it according to the direction of sunlight, thereby greatly improving the efficiency of collecting solar energy, and converts the collected solar energy into electrical energy and stores it in the battery inside the lamp pole 1, and the lighting component and reflective component inside the lamp pole 1 are powered by the battery, thereby avoiding the situation where the lamp pole 1 cannot provide normal lighting when the power supply fails.

[0035] Furthermore, the lighting assembly includes an LED light source 36, an electric slide 34 is fixedly provided on one side of the inner wall of the cavity 33, and two micro electric cylinders 35 are slidingly provided on the surface of the electric slide 34, and the driving ends of the two micro electric cylinders 35 are fixedly provided with LED light sources 36, and the illumination directions of the two LED light sources 36 are inclined upward, and several movable lampshades 37 are rotatably provided on both sides of the inner wall of the lamp pole 1, and the front and rear sides of the movable lampshades 37 on both sides are movably connected to the interior of the lamp pole 1 through torsion springs, and the tops of the movable lampshades 37 on both sides are provided with transparent acrylic plates.

[0036] It should be noted that when performing intelligent control of lighting brightness, by changing the positions of the two LED light sources 36 inside the cavity 33, the electric slide 34 is used to drive the two micro electric cylinders 35 to move up and down inside the cavity 33, so that the two LED light sources 36 are respectively located on one side of the movable lampshade 37 at different positions, and the driving ends of the two micro electric cylinders 35 are used to control the LED light source 36 to move to the movable lampshade 37 on one side, and the LED light source 36 is used to push the movable lampshade 37 to rotate outward, and the LED light source 36 is used for lighting, and the light is transmitted through the transparent acrylic plate on the top of the movable lampshade 37, and the reflected light is reflected by the reflective component above the lamp pole 1. According to the position between the LED light source 36 and the reflective component, the intelligent energy-saving adjustment of the brightness of the smart LED street light can be achieved without increasing the power of the LED light source 36.

[0037] Example 2:

[0038] Furthermore, the reflective assembly includes an adjustment frame 2 and a fixed frame 3. The adjustment frame 2 is slidably provided on the surface of the lamp pole 1, and the fixed frames 3 are fixedly provided on both sides of the adjustment frame 2. Adjustment tooth grooves 13 are provided above the front and back of the lamp pole 1, and one side of the two adjustment tooth grooves 13 is provided with a sealing rubber strip; the front and rear sides of the interior of the adjustment frame 2 are rotatably provided with adjustment tooth rollers 12, and the surfaces of the two adjustment tooth rollers 12 are respectively engaged with the inner walls of the two adjustment tooth grooves 13 for transmission, and the front of the adjustment frame 2 is fixedly provided with a fixed block 6, and the fixed block 6 The interior of the adjusting frame 2 is fixedly provided with an adjusting motor 7, the interior of the fixed block 6 is rotatably provided with a driving gear 8, and the output shaft of the adjusting motor 7 is fixedly connected to the interior of the driving gear 8. The interior of the adjusting frame 2 is also rotatably provided with a rotating rod 10, and the surface of the rotating rod 10 is fixedly provided with a driven gear 9 meshing with the driving gear 8. The surface of the rotating rod 10 and one end of the adjusting gear roller 12 on the front side are fixedly provided with a transmission gear 11, and the tooth surfaces of the two transmission gears 11 are meshed for transmission, wherein the surface of the rotating rod 10 is fixed with a driven gear 9 meshing with the driving gear 8. The transmission gear 11 is movably connected to the rotating rod 10 through an electric limit block; the two sides of the adjusting frame 2 are rotatably provided with a rotating rod 2 15, and the front ends of the two rotating rods 2 15 are respectively fixed with a bevel gear 14 at both ends of the rotating rod 10, and the tooth surfaces of the two bevel gears 14 on both sides are meshed with each other for transmission, and the interiors of the two fixed frames 3 are rotatably provided with a rotating rod 3 17, and one end of the two rotating rods 3 17 is respectively fixed with a bevel gear 2 16 at the rear end of the two rotating rods 2 15, and the two sides are fixed with the bevel gear 2 16. The tooth surfaces of the two helical gears 2 16 mesh with each other for transmission. Two transmission rods 19 are rotatably provided inside the two fixed frames 3, and pulleys 18 are fixedly provided at one end of the two transmission rods 19 and one end of the rotating rod 3 17. The surfaces of the three pulleys 18 are connected by a belt transmission. A transmission rod 20 is also rotatably provided on one side of the fixed frame 3. A driven gear 21 is fixedly provided at one end of the transmission rod 20 and one end of the transmission rod 19 located on the front side, and the tooth surfaces of the two driven gears 2 21 mesh with each other for transmission.

[0039] Furthermore, a fixed reflector 4 is fixedly provided in the middle of the bottom of the fixed frame 3, and an adjustable reflector 5 is rotatably provided on the front and rear sides of the bottom of the fixed frame 3. One side of the two adjustable reflector plates 5 is fixedly connected to one end of the transmission rod 19 and the transmission rod 2 20 located on the rear side respectively.

[0040] It should be noted that when performing intelligent energy-saving control of the brightness of the smart LED street lamp, the adjustment of the reflective component is achieved by sliding the adjustment frame 2 set on the surface of the lamp pole 1 in conjunction with the fixed frames 3 on both sides. Among them, the front and rear sides of the interior of the adjustment frame 2 are provided with an adjustment gear roller 12 that can engage with the adjustment tooth groove 13 on the surface of the lamp pole 1 for transmission. The driven gear 9 installed in the fixed block 6 is driven by the adjustment motor 7 to rotate, thereby driving the driven gear 9 and the transmission gear 11 to rotate, thereby realizing the rotation of the adjustment gear roller 12. The meshing transmission between the adjustment gear roller 12 and the adjustment tooth groove 13 is used to adjust the position of the reflective component, and the rotation of both sides is controlled. Rod 2 15 is connected to rotating rod 10 through bevel gear 1 14, and is connected to rotating rod 3 17 inside the fixed frame 3 through bevel gear 2 16, thereby driving transmission rod 1 19 and transmission rod 2 20 inside the fixed frame 3 to work together. The two adjustment reflective plates 5 at the bottom of the fixed frame 3 are respectively connected to the ends of transmission rod 1 19 and transmission rod 2 20, so that the two adjustment reflective plates 5 can adjust the angle as needed to optimize the lighting effect and improve the lighting efficiency and uniformity. Overall, this structural design enables the reflective component to achieve multi-directional fine adjustment, thereby improving the flexibility and practicality of the lighting device.

[0041] Example 3:

[0042] Specifically, the photovoltaic module includes a mounting frame 22 and a flip frame 23. The mounting frame 22 is fixedly provided on the top of the lamp pole 1, and the front and rear sides of the top of the mounting frame 22 are both provided with flip frames 23 which are rotated by an electric rotating shaft. The front and rear sides of the inner wall of the mounting frame 22 and the opposite side of the two flip frames 23 are provided with movable tooth grooves 24, and the inside of the two movable tooth grooves 24 are both slidably provided with driving blocks 25. One side of the two driving blocks 25 is rotatably provided with driving gear rollers 32, and the surfaces of the two driving gear rollers 32 are respectively engaged with the inner walls of the two movable tooth grooves 24 for transmission. The insides of the two driving blocks 25 are both fixedly provided with driving motors 30, and the output shafts of the two driving motors 30 are A driving shaft 28 is fixedly provided through a coupling, and a rotating shaft 27 is also rotatably provided on the opposite side of the two driving blocks 25. A photovoltaic panel 26 is rotatably provided inside the mounting frame 22, and one end of the two rotating shafts 27 is fixedly connected to the front and rear sides of the photovoltaic panel 26 respectively. A bevel gear three 29 is also fixedly provided on one end of the rotating shaft 27 and the surface of the driving shaft 28, and the tooth surfaces of the two bevel gears three 29 are engaged for transmission, wherein the interior of the bevel gear three 29 located on the surface of the rotating shaft 27 is movably connected through an electric limit block; a transmission gear two 31 is fixedly provided on one end of the driving shaft 28 and one end of the driving gear roller 32, and the tooth surfaces of the two transmission gears two 31 are engaged for transmission.

[0043] It should be noted that when adjusting the orientation of the photovoltaic panel 26, the two flip frames 23 are controlled to unfold 90 degrees by the electric rotating shaft, the output shaft of the driving motor 30 inside the two driving blocks 25 is used to control the driving shaft 28 to rotate, and the two transmission gears 2 31 are used to control the driving gear roller 32 to rotate, and the two driving gear rollers 32 are used to drive the photovoltaic panel 26 to move upward, and then the two bevel gears 3 29 are used to drive the rotating shaft 27 to rotate, and the two rotating shafts 27 are used to drive the photovoltaic panel 26 to rotate, and the photovoltaic panel 26 is controlled to follow the direction of sunlight, thereby ensuring the efficiency of the photovoltaic panel 26 in collecting sunlight; when photovoltaic collection is not performed, the two flip frames 23 are used to perform safety protection on the photovoltaic panel 26 inside the mounting frame 22.

[0044] Example 5:

[0045] Specifically, this embodiment also discloses a method for operating a smart LED street lamp based on cloud platform energy-saving control, including the following steps:

[0046] Step 1: Use the brightness sensor provided under the lamp pole 1 to monitor the brightness in real time. When performing intelligent control of the lighting brightness, by changing the position of the two LED light sources 36 inside the cavity 33, use the electric slide 34 to drive the two micro electric cylinders 35 to move up and down inside the cavity 33, so that the two LED light sources 36 are respectively located on one side of the movable lampshade 37 at different positions, and use the driving ends of the two micro electric cylinders 35 to control the LED light sources 36 to move toward the movable lampshade 37 on one side. Use the LED light sources 36 to push the movable lampshade 37 to rotate outward, and illuminate through the LED light sources 36. The light is transmitted through the transparent acrylic plate on the top of the movable lampshade 37, and the reflected light is reflected by the reflective component above the lamp pole 1;

[0047] Step 2: When performing intelligent energy-saving control of the brightness of the smart LED street lamp, the adjustment of the reflective component is achieved by sliding the adjustment frame 2 on the surface of the lamp pole 1 in cooperation with the fixed frames 3 on both sides, wherein the front and rear sides of the adjustment frame 2 are provided with an adjustment gear roller 12 that can engage and transmit with the adjustment tooth groove 13 on the surface of the lamp pole 1. The driven gear 19 installed in the fixed block 6 is driven by the adjustment motor 7, thereby driving the driven gear 19 and the transmission gear 11 to rotate, so as to realize the rotation of the adjustment gear roller 12. The meshing transmission between the adjustment gear roller 12 and the adjustment tooth groove 13 is used to adjust the position of the reflective component. The rotating rods 2 15 on both sides are connected to the rotating rod 10 through the bevel gear 14, and are connected to the rotating rod 3 17 inside the fixed frame 3 through the bevel gear 2 16, thereby driving the transmission rod 1 19 and the transmission rod 2 20 inside the fixed frame 3 to work together, and the two adjustment reflective plates 5 at the bottom of the fixed frame 3 are respectively connected to the ends of the transmission rod 19 and the transmission rod 2 20, so that the two adjustment reflective plates 5 adjust the reflection angle;

[0048] Step 3. When adjusting the orientation of the photovoltaic panel 26, the two flip frames 23 are controlled to unfold 90 degrees by the electric rotating shaft, the output shaft of the driving motor 30 inside the two driving blocks 25 is used to control the driving shaft 28 to rotate, and the two transmission gears 2 31 are used to control the driving gear roller 32 to rotate. The two driving gear rollers 32 are used to drive the photovoltaic panel 26 to move upward, and then the two bevel gears 3 29 are used to drive the rotating shaft 27 to rotate. The two rotating shafts 27 are used to drive the photovoltaic panel 26 to rotate, and the photovoltaic panel 26 is controlled to follow the direction of sunlight.

[0049] Meanwhile, the contents not described in detail in this specification belong to the prior art known to those skilled in the art.

[0050] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0051] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A smart LED street light based on cloud platform energy-saving control, comprising a lamp pole (1), characterized in that: Both sides below the surface of the lamp pole (1) are fixed with maintenance plates (38) by bolts, a cavity (33) is provided inside the lamp pole (1), and a lighting assembly is provided inside the cavity (33), a reflective assembly is movably provided on the top of the lamp pole (1), and a photovoltaic assembly is also provided on the top of the lamp pole (1), and both the reflective assembly and the photovoltaic assembly are connected to the cloud platform through optical fibers; The lighting assembly includes an LED light source (36), an electric slide (34) is fixedly provided on one side of the inner wall of the cavity (33), and two micro electric cylinders (35) are slidably provided on the surface of the electric slide (34), the driving ends of the two micro electric cylinders (35) are fixedly provided with LED light sources (36), and the irradiation directions of the two LED light sources (36) are inclined upward, and a plurality of movable lampshades (37) are rotatably provided on both sides of the inner wall of the lamp pole (1), and the front and rear sides of the movable lampshades (37) on both sides are movably connected to the interior of the lamp pole (1) through torsion springs, wherein the tops of the movable lampshades (37) on both sides are provided with transparent acrylic plates; The reflective assembly comprises an adjustment frame (2) and a fixed frame (3), the surface of the lamp post (1) is provided with an adjustment frame (2) in a sliding manner, and the two sides of the adjustment frame (2) are fixedly provided with fixed frames (3), the front of the adjustment frame (2) is fixedly provided with a fixed block (6), and the interior of the fixed block (6) is fixedly provided with an adjustment motor (7), the interior of the fixed block (6) is provided with a driving gear (8) for rotation, and the output shaft of the adjustment motor (7) is fixedly connected to the interior of the driving gear (8), the interior of the adjustment frame (2) is also provided with a rotating rod (10) for rotation, and the surface of the rotating rod (10) is fixedly provided with a driven gear (9) meshing with the driving gear (8), the surface of the rotating rod (10) and one end of the adjusting gear roller (12) located on the front side are fixedly provided with a transmission gear (11), and the tooth surfaces of the two transmission gears (11) are Meshing transmission, the front and back sides of the lamp pole (1) are both provided with adjustment tooth grooves (13), the front and back sides of the adjustment frame (2) are both rotatably provided with adjustment tooth rollers (12), and the surfaces of the two adjustment tooth rollers (12) are respectively meshed with the inner walls of the two adjustment tooth grooves (13) for transmission, the two sides of the adjustment frame (2) are both rotatably provided with rotating rods (15), and the front ends of the two rotating rods (15) are respectively fixed with bevel gears (14) at both ends of the rotating rods (10), and the tooth surfaces of the two bevel gears (14) on both sides are meshed with each other for transmission, the interiors of the two fixed frames (3) are both rotatably provided with rotating rods (17), and one end of the two rotating rods (17) is respectively fixed with bevel gears (16) at the rear ends of the two rotating rods (15), and the tooth surfaces of the two bevel gears (16) on both sides are meshed with each other for transmission; A fixed reflector (4) is fixedly provided at the middle of the bottom of the fixed frame (3), and an adjustment reflector (5) is rotatably provided on the front and rear sides of the bottom of the fixed frame (3). Two transmission rods (19) are rotatably provided inside the two fixed frames (3), and one end of the two transmission rods (19) and one end of the rotation rod (17) are fixedly provided with pulleys (18). The surfaces of the three pulleys (18) are connected by belt transmission. A transmission rod (20) is also rotatably provided on one side of the interior of the fixed frame (3). One end of the transmission rod (20) and one end of the transmission rod (19) located at the front side are fixedly provided with a driven gear (21), and the tooth surfaces of the two driven gears (21) are meshed for transmission. One side of the two adjustment reflectors (5) is fixedly connected to the transmission rod (19) located at the rear side and one end of the transmission rod (20).

2. The smart LED street light based on cloud platform energy-saving control according to claim 1, characterized in that: The photovoltaic assembly comprises a mounting frame (22) and a flip frame (23), the top of the lamp pole (1) is fixedly provided with the mounting frame (22), and the front and rear sides of the top of the mounting frame (22) are both provided with flip frames (23) rotatably arranged via an electric rotating shaft, the front and rear sides of the inner wall of the mounting frame (22) and the opposite sides of the two flip frames (23) are both provided with movable tooth grooves (24), and the interiors of the two movable tooth grooves (24) are both slidably provided with driving blocks (25), one side of the two driving blocks (25) is both rotatably provided with driving gear rollers (32), and the surfaces of the two driving gear rollers (32) are respectively engaged with the inner walls of the two movable tooth grooves (24) for transmission.

3. The smart LED street light based on cloud platform energy-saving control according to claim 2, characterized in that: A driving motor (30) is fixedly installed inside the two driving blocks (25), and the output shafts of the two driving motors (30) are fixedly installed with a driving shaft (28) through a coupling. A rotating shaft (27) is also rotatably installed on the opposite side of the two driving blocks (25). A photovoltaic panel (26) is rotatably installed inside the mounting frame (22), and one end of the two rotating shafts (27) is fixedly connected to the front and rear sides of the photovoltaic panel (26), respectively.

4. The smart LED street light based on cloud platform energy-saving control according to claim 3, characterized in that: A bevel gear three (29) is fixedly provided on one end of the rotating shaft (27) and the surface of the driving shaft (28), and the tooth surfaces of the two bevel gears three (29) are meshed for transmission. A transmission gear two (31) is fixedly provided on one end of the driving shaft (28) and one end of the driving gear roller (32), and the tooth surfaces of the two transmission gears two (31) are meshed for transmission.