High-power LED lamp river-crossing lighting system based on wireless remote communication

The LED lighting system controlled by wireless remote communication solves the problems of inconvenient installation and difficult angle adjustment of traditional cross-river lighting systems, and realizes efficient lighting angle adjustment and flexible lighting area control.

CN120650677APending Publication Date: 2025-09-16SHENZHEN CARY TECH CO LTD
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Patent Information

Application Number
CN202510078413.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-17
Publication Date
2025-09-16

AI Technical Summary

Technical Problem

Traditional cross-river lighting systems are inconvenient to install, the angle of the lamps is difficult to adjust, the vertical illumination results in a limited lighting area, and the construction is time-consuming and labor-intensive.

Method used

A high-power LED lighting system based on wireless remote communication is used. The angle of the lamp panel is adjusted by controlling the winch through remote signals, and the flexible adjustment of the lamp is achieved using steel cables and angle adjustment components.

Benefits of technology

It improves the efficiency and accuracy of lamp installation, reduces construction time and labor costs, and realizes flexible lighting area control.

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Abstract

The high-power LED lamp river-crossing lighting system based on wireless remote communication comprises a steel cable body, a steel cable fixing assembly is mounted in the middle of the steel cable body, a winch fixing assembly is mounted at the bottom end of the steel cable fixing assembly, and a winch mounting disc is mounted at the bottom end of the winch fixing assembly; a control signal is sent to the remote communication signal receiver installed on the winch disc through the remote communication signal transmitting device on the ground, and after the receiving device receives the signal, different instructions are sent to the winch according to different signals to control forward and reverse rotation of a winch motor. The winding and unwinding of the steel cables of the winches are realized, the different lengths of the steel cables are controlled, and the steel cables of the three winches are independently controlled, so that the different lengths of the steel cables of the three winches are conveniently controlled, different inclination angles of the whole lamp panel in different directions are realized, and time and labor are saved.
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Description

Technical Field

[0001] The present invention relates to the technical field of cross-river lighting systems, and in particular to a high-power LED lamp cross-river lighting system based on wireless remote communication. Background Art

[0002] Cross-river lighting systems typically use advanced lighting technologies, such as LED lights and fiber optic lighting, which can significantly reduce energy consumption compared to traditional lighting methods. For example, LED lights have a high energy efficiency ratio and can reduce electricity consumption, while fiber optic lighting transmits light through optical fibers and does not generate heat, further improving energy efficiency. Modern cross-river lighting systems are often equipped with intelligent control systems that can automatically adjust brightness according to environmental changes and needs. For example, smart street lights can automatically adjust brightness according to the surrounding light intensity and traffic volume, ensuring lighting effects while avoiding unnecessary energy waste. Cross-river lighting systems not only provide lighting functions, but can also create unique city night scenes through lighting design, enhancing the city's overall image and aesthetics. For example, the contrast of warm and cool light colors and holiday mode lighting control can create a vibrant city atmosphere. Intelligent lighting systems can reduce manual intervention and improve management efficiency through remote monitoring and automatic control. At the same time, the fault alarm and automatic maintenance functions of smart street lights can also detect and solve problems in a timely manner, ensuring the continuity and safety of lighting. However, the traditional cross-river lighting system has the following disadvantages: (1) The traditional cross-river lighting system is inconvenient to install: the lamps are installed on the aerial cableway, and the lighting angle is difficult to adjust; (2) The illumination is vertically downward without adjusting the illumination angle. The lighting area is limited. Some construction areas are not illuminated at all, and some construction areas have very low illumination, which affects construction. (3) Adjust the angle on the ground, then move the light panel to the corresponding position via the cableway, turn on the light to confirm the illumination angle. If the angle is not appropriate, move the light panel to the ground and adjust the angle again. Repeat this operation several times until the appropriate angle is reached. For multiple light panels, this operation is very time-consuming and labor-intensive. Summary of the Invention

[0003] The purpose of the present invention is to provide a high-power LED lamp cross-river lighting system based on wireless remote communication, so as to solve the inconvenience of installation of the traditional cross-river lighting system proposed in the above background technology: the lamp is installed on a high-altitude cableway, and the lighting angle of the lamp is difficult to adjust; the lighting is vertically downward, and the lighting angle is not adjusted, the lighting area is limited, some construction areas are not illuminated at all, and some construction areas have very low illumination, which affects construction; the angle is adjusted on the ground, and then the lamp panel is moved to the corresponding position by cableway, and the light is turned on to confirm the lighting angle. If the angle is not appropriate, the lamp panel is put on the ground and the angle is adjusted again. This operation is repeated many times until the appropriate angle is adjusted. For multiple lamp panels, this operation is very time-consuming and labor-intensive.

[0004] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a high-power LED lamp cross-river lighting system based on wireless remote communication, comprising a steel cable body, a steel cable fixing assembly installed in the middle of the steel cable body, a winch fixing assembly installed at the bottom end of the winch fixing assembly, a winch mounting plate installed at the bottom end of the winch mounting plate, a lamp panel assembly installed at the bottom end of the lamp panel assembly, several lamp mounting assemblies installed at the bottom end of several of the lamp mounting assemblies are installed with LED lamps, three angle adjustment assemblies arranged in a triangle are installed at the bottom end of the winch mounting plate, the bottom ends of the three angle adjustment assemblies are connected to the lamp panel assembly, and an LED lamp junction box is installed in the middle of the top of the lamp panel assembly.

[0005] As an optimal technical solution of the present invention, the angle adjustment assembly includes a motor base and a winch body, the bottom end of the motor base is fixedly connected to the top end of the winch body, the output end of the winch body is fixedly installed with a rotating shaft, one end of the rotating shaft is fixedly installed with a limiting plate, the surface of the rotating shaft is wrapped with a steel wire rope, the bottom end of the steel wire rope is installed with a direction plate, the bottom end of the direction plate is rotatably connected to an angle seat, the bottom end of the angle seat is connected to the lamp panel assembly, the top of the motor base is connected to the winch mounting plate, the winch body is started after power is supplied, the winch drives the rotating shaft to rotate, and after the rotating shaft rotates, it drives the steel wire rope to complete the retraction and extension movement, the steel wire rope pulls the direction plate from one side, and the direction plate is deflected relative to the angle seat to adjust the angle of the lamp panel assembly.

[0006] As a preferred technical solution of the present invention, a remote communication signal receiver is fixedly installed on the surface of the winch mounting plate, and the remote communication signal receiver signal is connected to a remote communication signal transmitting device. The remote communication signal transmitting device sends an angle adjustment instruction. After receiving the instruction, the remote communication signal receiver controls the winch body to drive the rotating shaft to rotate, thereby adjusting the lighting angle of the device.

[0007] As a preferred technical solution of the present invention, the winch fixing assembly includes a center rod and four fixing rods, the top ends of the four fixing rods are fixedly connected to the end opposite the center rod, and mounting rods are provided on both sides of the center rod, the top ends of the two mounting rods and the top end of the center rod are fixedly connected to the steel cable fixing assembly, the bottom ends of the two mounting rods and the bottom ends of the four fixing rods are fixedly connected to the winch mounting disk, and the center rod and the mounting rod are installed between the steel cable fixing assembly and the winch mounting disk.

[0008] As a preferred technical solution of the present invention, the lamp panel assembly includes an outer lamp panel and an inner lamp panel, a transition panel is provided on the outer side of the inner lamp panel, and a plurality of first reinforcement rods are fixedly installed on the outer side of the inner lamp panel, and the ends of the plurality of first reinforcement rods away from the inner lamp panel are fixedly connected to the side opposite to the transition panel, and a plurality of second reinforcement rods are fixedly installed on the outer side of the transition panel, and the outer sides of the plurality of second reinforcement rods are fixedly connected to the side opposite to the outer lamp panel, the bottom end of the outer lamp panel is respectively connected to a plurality of lamp mounting assemblies, and the top end of the outer lamp panel is respectively connected to three angle adjustment assemblies, and the lamp panel assembly is made of a hollow structural material, which facilitates the full contact of the LED lamp with the low-temperature gas in the external environment during operation to complete heat dissipation and cooling.

[0009] As a preferred technical solution of the present invention, several of the lamp mounting assemblies include a mounting frame and two first tooth plates, and splints are provided on both sides of the inner wall of the mounting frame. The two sides of the inner wall of the mounting frame are respectively connected to the side opposite to the two first tooth plates, and the two sides of the splints are installed with second tooth plates on the opposite sides. The outer sides of the two first tooth plates are respectively engaged with the outer sides of the two second tooth plates, and the top of the mounting frame is connected to the lamp panel assembly, and the opposite sides of the two splints are connected to the two sides of the LED lamp. The two splints cooperate with each other from both sides of the LED lamp to clamp and fix. During the rotation of the splint relative to the mounting frame, the first tooth plate rotates relative to the second tooth plate, thereby improving the stability of the angle deflection of the splint.

[0010] As a preferred technical solution of the present invention, the steel cable fixing assembly includes a fixing seat and several assembly seats, the bottom ends of several of the assembly seats are fixedly connected to the bottom ends of the inner walls of the fixing seats, the tops of several of the assembly seats are provided with fixing rings, both sides of the bottom ends of several of the fixing rings are installed with locking screws that penetrate to the outside, the surfaces of several of the locking screws are threadedly connected with locking nuts, the bottom end of the fixing seat is connected to the winch fixing assembly, the user rotates the locking screw, the thread on the surface of the locking screw matches the thread on the inner wall of the assembly seat, so the locking screw rotates and rises relative to the assembly seat, so that the fixing ring and the fixing seat are clamped and fixed from both sides of the steel cable body, and the user screws the locking nut to fix the locking screw.

[0011] As a preferred technical solution of the present invention, the LED lamp junction box includes a RESET circuit component, a Crystal circuit component and a circuit main part, the RESET circuit component includes a resistor R35, a diode D1 and a capacitor C4, one end of the capacitor C4 is respectively connected to one end of the resistor R35 and one end of the diode D1, and the other end of the capacitor C4 is grounded, the Crystal circuit component includes a capacitor C5, a crystal oscillator Y1 and a capacitor C6, one end of the capacitor C5 and one end of the capacitor C6 are respectively connected to the two ends of the crystal oscillator Y1, the other end of the capacitor C5 and the other end of the capacitor C6 are both grounded, and the ISP circuit component is provided with a power chip P5, and the 6-pin terminal of the power chip P5 Grounded, the main components of the circuit include chip U2, resistor R7, resistor R29, resistor R38, resistor R28, resistor R10, capacitor C8 and LED3. Pin 21 of the chip U2 is connected to one end of the resistor R28, pin 23 of the chip U2 is connected to one end of the resistor R38, pin 22 of the chip U2 is connected to one end of the resistor R7, pin 24 of the chip U2 is connected to one end of the resistor R29, pin 29 of the chip U2 is connected to one end of the capacitor C8, pin 32 of the chip U2 is connected to one end of the LED3, and the other end of the capacitor C8, pin 6 of the chip U2, pin 18 of the chip U2, pin 28 of the chip U2 and pin 39 of the chip U2 are all grounded.

[0012] As a preferred technical solution of the present invention, the remote communication signal receiver includes a first step-down circuit component, a second step-down circuit component and a communication circuit. The first step-down circuit component includes a chip U6, a resistor R15, a resistor R16, a resistor R43, a resistor R32, a capacitor C18, a diode D8, a capacitor C13, a capacitor C2, a capacitor C3, a power supply chip P3, an inductor L11, an LED1 and a resistor R5. One end of the LED1 is connected to one end of the resistor R5, and the 5 pins of the chip U6 are respectively connected to the 1 end of the power supply chip P3 and one end of the resistor R16. The 4 pins of the chip U6 are connected to one end of the resistor R15, and the other end of the resistor R15 is connected to one end of the resistor R43. The 1 end of the chip U6 is connected to one end of the capacitor C18, and the other end of the capacitor C18 is connected to one end of the diode D8. The 6 pins of the chip U6 are respectively connected to one end of the resistor R32 and one end of the inductor L11. The first end of the inductor L11 is connected to the first end of the capacitor C2 and the second end of the capacitor C3, and the other end of the inductor L11 is connected to one end of the capacitor C2 and the other end of the capacitor C3 respectively. The 3-terminal pin of the chip U6 is connected to one end of the capacitor C13. The 2-terminal pin of the power supply chip P3, the 2-terminal pin of the chip U6, the other end of the resistor R16, the other end of the resistor R43, the other end of the diode D8, the other end of the capacitor C2, the other end of the capacitor C3 and the other end of the resistor R32 are all grounded. The second step-down circuit component includes a chip U11, a capacitor C43, a capacitor C40, a capacitor C42 and a capacitor C39. The 3-terminal pin of the chip U11 is connected to one end of the capacitor C39 and one end of the capacitor C42 respectively. The 2-terminal pin of the chip U11 is connected to one end of the capacitor C43. The 4-terminal pin of the chip U11 is connected to one end of the capacitor C40. The 1-terminal pin of the chip U11, the other end of the capacitor C39, the other end of the capacitor C42, the other end of the capacitor C40 and the other end of the capacitor C43 are all grounded.

[0013] Compared with the prior art, the beneficial effects of the present invention are: a control signal is sent to a remote communication signal receiver installed on the winch disk through a remote communication signal transmitter on the ground; after receiving the signal, the receiving device sends different instructions to the winch according to different signals, controls the forward and reverse rotation of the winch motor, realizes the retraction and extension of the winch steel cable, and controls the different lengths of the steel cable. Since the three winches are independently controlled, the three winch steel cables can be conveniently controlled to different lengths, so that the entire lamp panel can achieve different tilt angles in different directions, saving time and effort. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 A top view of the present invention; Figure 2 A perspective view of the present invention; Figure 3 It is a partial schematic diagram of the present invention; Figure 4 A side view of the lamp mounting assembly of the present invention; Figure 5 A circuit diagram of a remote communication signal transmitting device according to the present invention; Figure 6 This is a circuit diagram of the LED lamp junction box of the present invention; Figure 7 This is a circuit diagram of a remote communication signal receiver according to the present invention.

[0015] Figure: 1. Winch fixing assembly; 101. Mounting rod; 102. Center rod; 103. Fixing rod; 2. Winch mounting plate; 3. Lamp panel assembly; 31. Outer lamp panel; 32. Second reinforcement rod; 33. Transition plate; 34. First reinforcement rod; 35. Inner lamp panel; 4. Lamp mounting assembly; 41. Mounting bracket; 42. Clamp; 43. First tooth plate; 44. Second tooth plate; 5. LED lamp; 6. Remote communication signal transmitter ;7. Angle adjustment assembly;71. Motor base;72. Winch body;73. Rotating shaft;74. Limit plate;75. Wire rope;76. Steering plate;77. Angle seat;8. Steel cable body;9. LED lamp junction box;10. Steel cable fixing assembly;1001. Fixing seat;1002. Fixing ring;1003. Assembly seat;1004. Locking screw;1005. Locking nut;11. Remote communication signal receiver. DETAILED DESCRIPTION

[0016] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described 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.

[0017] See also Figure 1-7 The present invention provides a high-power LED lamp cross-river lighting system based on wireless remote communication, including a steel cable body 8, a steel cable fixing component 10 is installed in the middle of the steel cable body 8, a winch fixing component 1 is installed at the bottom end of the steel cable fixing component 10, a winch mounting plate 2 is installed at the bottom end of the winch mounting plate 2, a lamp panel component 3 is provided at the bottom end of the lamp panel component 3, a plurality of lamp mounting components 4 are installed at the bottom end of the plurality of lamp mounting components 4, LED lamps 5 are installed at the bottom end of the winch mounting plate 2, three angle adjustment components 7 arranged in a triangle are installed at the bottom end of the winch mounting plate 2, the bottom ends of the three angle adjustment components 7 are connected to the lamp panel component 3, and an LED lamp junction box 9 is installed in the middle of the top of the lamp panel component 3.

[0018] The angle adjustment assembly 7 includes a motor base 71 and a winch body 72. The bottom end of the motor base 71 is fixedly connected to the top of the winch body 72. The output end of the winch body 72 is fixedly installed with a rotating shaft 73. One end of the rotating shaft 73 is fixedly installed with a limiting plate 74. A steel wire rope 75 is wrapped around the surface of the rotating shaft 73. The bottom end of the steel wire rope 75 is installed with a direction plate 76. The bottom end of the direction plate 76 is rotatably connected to an angle seat 77. The bottom end of the angle seat 77 is connected to the lamp panel assembly 3. The top of the motor base 71 is connected to the winch mounting plate 2. After the winch body 72 is powered on, it starts, and the winch 72 drives the rotating shaft 73 to rotate. After the rotating shaft 73 rotates, it drives the steel wire rope 75 to complete the retraction and extension movement. The steel wire rope 75 pulls the direction plate 76 from one side, and the direction plate 76 deflects relative to the angle seat 77 to adjust the angle of the lamp panel assembly 3.

[0019] A remote communication signal receiver 11 is fixedly installed on the surface of the winch mounting plate 2. The remote communication signal receiver 11 is connected to the remote communication signal transmitting device 6. The remote communication signal transmitting device 6 sends an angle adjustment instruction. After receiving the instruction, the remote communication signal receiver 11 controls the winch body 72 to drive the rotating shaft 73 to rotate, thereby adjusting the lighting angle of the device.

[0020] The winch fixing assembly 1 includes a center rod 102 and four fixing rods 103. The top ends of the four fixing rods 103 are fixedly connected to the end opposite the center rod 102. Installation rods 101 are provided on both sides of the center rod 102. The top ends of the two installation rods 101 and the top end of the center rod 102 are fixedly connected to the steel cable fixing assembly 10. The bottom ends of the two installation rods 101 and the bottom ends of the four fixing rods 103 are fixedly connected to the winch mounting plate 2. The center rod 102 and the installation rods 101 are installed between the steel cable fixing assembly 10 and the winch mounting plate 2.

[0021] The lamp panel assembly 3 includes an outer lamp panel 31 and an inner lamp panel 35. A transition plate 33 is provided on the outer side of the inner lamp panel 35. Several first reinforcement rods 34 are fixedly installed on the outer side of the inner lamp panel 35. The ends of several first reinforcement rods 34 away from the inner lamp panel 35 are fixedly connected to the side opposite to the transition plate 33. Several second reinforcement rods 32 are fixedly installed on the outer side of the transition plate 33. The outer sides of several second reinforcement rods 32 are fixedly connected to the side opposite to the outer lamp panel 31. The bottom end of the outer lamp panel 31 is respectively connected to several lamp mounting assemblies 4, and the top of the outer lamp panel 31 is respectively connected to three angle adjustment assemblies 7. The lamp panel assembly 3 is made of a hollow structure material, which is convenient for the LED lamp 5 to fully contact with the low-temperature gas in the external environment during operation to complete heat dissipation and cooling.

[0022] Several lamp mounting assemblies 4 each include a mounting frame 41 and two first tooth plates 43. Clamps 42 are provided on both sides of the inner wall of the mounting frame 41. The two sides of the inner wall of the mounting frame 41 are respectively connected to the side opposite to the two first tooth plates 43. The two clamps 42 are respectively installed on the side opposite to each other with second tooth plates 44. The outer sides of the two first tooth plates 43 are respectively engaged with the outer sides of the two second tooth plates 44. The top of the mounting frame 41 is connected to the lamp panel assembly 3, and the opposite sides of the two clamps 42 are connected to the two sides of the LED lamp 5. The two clamps 42 cooperate with each other from both sides of the LED lamp 5 to clamp and fix. During the rotation of the clamp 42 relative to the mounting frame 41, the first tooth plate 43 rotates relative to the second tooth plate 44, thereby improving the stability of the angular deflection of the clamp 42.

[0023] The steel cable fixing assembly 10 includes a fixing seat 1001 and several assembly seats 1003. The bottom ends of several assembly seats 1003 are fixedly connected to the bottom ends of the inner walls of the fixing seat 1001. The tops of several assembly seats 1003 are provided with fixing rings 1002. Both sides of the bottom ends of several fixing rings 1002 are installed with locking screws 1004 that penetrate to the outside. The surfaces of several locking screws 1004 are threadedly connected with locking nuts 1005. The bottom end of the fixing seat 1001 is connected to the winch fixing assembly 1. The user rotates the locking screw 1004. The thread on the surface of the locking screw 1004 matches the thread on the inner wall of the assembly seat 1003. Therefore, the locking screw 1004 rotates and rises relative to the assembly seat 1003, so that the fixing ring 1002 and the fixing seat 1001 are clamped and fixed from both sides of the steel cable body 8. The user screws the locking nut 1005 to fix the locking screw 1004.

[0024] The LED lamp junction box 9 includes a RESET circuit component, a Crystal circuit component and a circuit main part. The RESET circuit component includes a resistor R35, a diode D1 and a capacitor C4. One end of the capacitor C4 is connected to one end of the resistor R35 and one end of the diode D1 respectively, and the other end of the capacitor C4 is grounded. The Crystal circuit component includes a capacitor C5, a crystal oscillator Y1 and a capacitor C6. One end of the capacitor C5 and one end of the capacitor C6 are connected to the two ends of the crystal oscillator Y1 respectively, and the other end of the capacitor C5 and the other end of the capacitor C6 are both grounded. The ISP circuit component is provided with a power chip P5, and the 6-pin of the power chip P5 is grounded. The circuit main part includes Including chip U2, resistor R7, resistor R29, resistor R38, resistor R28, resistor R10, capacitor C8 and LED3, pin 21 of chip U2 is connected to one end of resistor R28, pin 23 of chip U2 is connected to one end of resistor R38, pin 22 of chip U2 is connected to one end of resistor R7, pin 24 of chip U2 is connected to one end of resistor R29, pin 29 of chip U2 is connected to one end of capacitor C8, pin 32 of chip U2 is connected to one end of LED3, the other end of capacitor C8, pin 6 of chip U2, pin 18 of chip U2, pin 28 of chip U2 and pin 39 of chip U2 are all grounded.

[0025] The remote communication signal receiver 11 includes a first step-down circuit component, a second step-down circuit component and a communication circuit. The first step-down circuit component includes a chip U6, a resistor R15, a resistor R16, a resistor R43, a resistor R32, a capacitor C18, a diode D8, a capacitor C13, a capacitor C2, a capacitor C3, a power supply chip P3, an inductor L11, an LED1 and a resistor R5. One end of the LED1 is connected to one end of the resistor R5, and the 5th pin of the chip U6 is respectively connected to the 1st pin of the power supply chip P3 and one end of the resistor R16. The 4th pin of the chip U6 is connected to one end of the resistor R15, and the other end of the resistor R15 is connected to one end of the resistor R43. The 1st pin of the chip U6 is connected to one end of the capacitor C18, and the other end of the capacitor C18 is connected to one end of the diode D8. The 6th pin of the chip U6 is respectively connected to one end of the resistor R32 and one end of the inductor L11. The other end of 1 is respectively connected to one end of capacitor C2 and one end of capacitor C3, the 3-end pin of chip U6 is connected to one end of capacitor C13, the 2-end pin of power supply chip P3, the 2-end pin of chip U6, the other end of resistor R16, the other end of resistor R43, the other end of diode D8, the other end of capacitor C2, the other end of capacitor C3 and the other end of resistor R32 are all grounded, the second step-down circuit component includes chip U11, capacitor C43, capacitor C40, capacitor C42 and capacitor C39, the 3-end pin of chip U11 is respectively connected to one end of capacitor C39 and one end of capacitor C42, the 2-end pin of chip U11 is connected to one end of capacitor C43, the 4-end pin of chip U11 is connected to one end of capacitor C40, the 1-end pin of chip U11, the other end of capacitor C39, the other end of capacitor C42, the other end of capacitor C40 and the other end of capacitor C43 are all grounded.

[0026] In the present invention, the user rotates the locking screw 1004, and the threads on the surface of the locking screw 1004 match the threads on the inner wall of the assembly seat 1003. Therefore, the locking screw 1004 rotates and rises relative to the assembly seat 1003, so that the fixing ring 1002 and the fixing seat 1001 are clamped and fixed from both sides of the steel cable body 8. The user screws the locking nut 1005 to fix the locking screw 1004. Then, the center rod 102 and the mounting rod 101 are installed between the steel cable fixing assembly 10 and the winch mounting plate 2. The lamp panel assembly 3 is made of a hollow structural material, which is convenient for the LED lamp 5 to fully contact the low-temperature gas in the external environment during operation to complete heat dissipation and cooling. The two splints 42 are from both sides of the LED lamp 5. Cooperate with each other to clamp and fix. During the rotation of the splint 42 relative to the mounting frame 41, the first tooth plate 43 rotates relative to the second tooth plate 44 to improve the stability of the angle deflection of the splint 42. The remote communication signal transmitter 6 sends an angle adjustment instruction. After receiving the instruction, the remote communication signal receiver 11 controls the winch body 72 to drive the rotating shaft 73 to rotate, so as to adjust the lighting angle of the device. After the winch body 72 is powered on, it starts, and the winch 72 drives the rotating shaft 73 to rotate. After the rotating shaft 73 rotates, it drives the wire rope 75 to complete the retraction and extension movement. The wire rope 75 pulls the direction plate 76 from one side, and the direction plate 76 deflects relative to the angle seat 77 to adjust the angle of the lamp panel assembly 3. Figure 5-Figure 7 The circuit schematic diagram shows that resistor R35, diode D1 and capacitor C4 constitute the RESET circuit component, capacitor C5, crystal oscillator Y1 and capacitor C6 constitute the Crystal circuit component, P5 constitutes the ISP circuit component, chip U2, resistor R7, resistor R29, resistor R38, resistor R28, resistor R10, capacitor C8 and LED3 constitute the main circuit components, chip U6, resistor R15, resistor R16, resistor R43, resistor R32, capacitor C18, diode D8, capacitor C13, capacitor C2, capacitor C3 and power supply chip P3 constitute the first step-down circuit component.

[0027] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A high-power LED lamp cross-river lighting system based on wireless remote communication, comprising a steel cable body (8), characterized in that: A steel cable fixing assembly (10) is installed in the middle of the steel cable body (8), a winch fixing assembly (1) is installed at the bottom end of the steel cable fixing assembly (10), a winch mounting plate (2) is installed at the bottom end of the winch mounting plate (2), a lamp panel assembly (3) is provided at the bottom end of the lamp panel assembly (3), a plurality of lamp mounting assemblies (4) are installed at the bottom end of the plurality of lamp mounting assemblies (4), and LED lamps (5) are installed at the bottom end of the winch mounting plate (2), three angle adjustment assemblies (7) arranged in a triangle are installed at the bottom end of the winch mounting plate (2), the bottom ends of the three angle adjustment assemblies (7) are connected to the lamp panel assembly (3), and an LED lamp junction box (9) is installed in the middle of the top end of the lamp panel assembly (3).

2. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 1 is characterized in that: The angle adjustment assembly (7) includes a motor base (71) and a winch body (72), the bottom end of the motor base (71) is fixedly connected to the top end of the winch body (72), the output end of the winch body (72) is fixedly mounted with a rotating shaft (73), one end of the rotating shaft (73) is fixedly mounted with a limiting plate (74), a steel wire rope (75) is wound around the surface of the rotating shaft (73), a direction plate (76) is mounted on the bottom end of the steel wire rope (75), the bottom end of the direction plate (76) is rotatably connected to an angle seat (77), the bottom end of the angle seat (77) is connected to the lamp panel assembly (3), and the top end of the motor base (71) is connected to the winch mounting plate (2).

3. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 1 is characterized in that: A remote communication signal receiver (11) is fixedly mounted on the surface of the hoist mounting plate (2), and the remote communication signal receiver (11) is signal-connected to a remote communication signal transmitter (6).

4. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 1 is characterized in that: The winch fixing assembly (1) comprises a central rod (102) and four fixing rods (103), the top ends of the four fixing rods (103) are fixedly connected to the end opposite to the central rod (102), both sides of the central rod (102) are provided with mounting rods (101), the top ends of the two mounting rods (101) and the top end of the central rod (102) are fixedly connected to the steel cable fixing assembly (10), and the bottom ends of the two mounting rods (101) and the bottom ends of the four fixing rods (103) are fixedly connected to the winch mounting plate (2).

5. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 1 is characterized in that: The lamp panel assembly (3) includes an outer lamp panel (31) and an inner lamp panel (35), a transition panel (33) is provided on the outer side of the inner lamp panel (35), a plurality of first reinforcement rods (34) are fixedly installed on the outer side of the inner lamp panel (35), and the ends of the plurality of first reinforcement rods (34) away from the inner lamp panel (35) are fixedly connected to the side directly opposite to the transition panel (33), a plurality of second reinforcement rods (32) are fixedly installed on the outer side of the transition panel (33), and the outer sides of the plurality of second reinforcement rods (32) are fixedly connected to the side directly opposite to the outer lamp panel (31), the bottom end of the outer lamp panel (31) is respectively connected to a plurality of lamp mounting assemblies (4), and the top end of the outer lamp panel (31) is respectively connected to three angle adjustment assemblies (7).

6. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 1 is characterized in that: Several of the lamp mounting assemblies (4) include a mounting frame (41) and two first tooth plates (43), and clamping plates (42) are provided on both sides of the inner wall of the mounting frame (41). The two sides of the inner wall of the mounting frame (41) are respectively connected to the sides opposite to the two first tooth plates (43), and the sides opposite to the two clamping plates (42) are respectively installed with second tooth plates (44), and the outer sides of the two first tooth plates (43) are respectively engaged with the outer sides of the two second tooth plates (44). The top end of the mounting frame (41) is connected to the lamp panel assembly (3), and the opposite sides of the two clamping plates (42) are connected to the two sides of the LED lamp (5).

7. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 1 is characterized in that: The steel cable fixing assembly (10) comprises a fixing seat (1001) and a plurality of assembly seats (1003), the bottom ends of the plurality of assembly seats (1003) are fixedly connected to the bottom end of the inner wall of the fixing seat (1001), the top ends of the plurality of assembly seats (1003) are provided with a fixing ring (1002), both sides of the bottom ends of the plurality of fixing rings (1002) are installed with locking screws (1004) penetrating to the outside, the surfaces of the plurality of locking screws (1004) are threadedly connected with locking nuts (1005), and the bottom end of the fixing seat (1001) is connected to the winch fixing assembly (1).

8. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 1 is characterized in that: The LED lamp junction box (9) includes a RESET circuit component, a Crystal circuit component and a circuit main part. The RESET circuit component includes a resistor R35, a diode D1 and a capacitor C4. One end of the capacitor C4 is connected to one end of the resistor R35 and one end of the diode D1 respectively, and the other end of the capacitor C4 is grounded. The Crystal circuit component includes a capacitor C5, a crystal oscillator Y1 and a capacitor C6. One end of the capacitor C5 and one end of the capacitor C6 are connected to two ends of the crystal oscillator Y1 respectively, and the other end of the capacitor C5 and the other end of the capacitor C6 are both grounded. The ISP circuit component is provided with a power chip P5. The 6-pin terminal of the power chip P5 is grounded. The main circuit components include chip U2, resistor R7, resistor R29, resistor R38, resistor R28, resistor R10, capacitor C8 and LED3. Pin 21 of the chip U2 is connected to one end of the resistor R28, pin 23 of the chip U2 is connected to one end of the resistor R38, pin 22 of the chip U2 is connected to one end of the resistor R7, pin 24 of the chip U2 is connected to one end of the resistor R29, pin 29 of the chip U2 is connected to one end of the capacitor C8, pin 32 of the chip U2 is connected to one end of the LED3, and the other end of the capacitor C8, pin 6 of the chip U2, pin 18 of the chip U2, pin 28 of the chip U2 and pin 39 of the chip U2 are all grounded.

9. The high-power LED lamp cross-river lighting system based on wireless remote communication according to claim 3 is characterized by: The remote communication signal receiver (11) includes a first step-down circuit component, a second step-down circuit component and a communication circuit, wherein the first step-down circuit component includes a chip U6, a resistor R15, a resistor R16, a resistor R43, a resistor R32, a capacitor C18, a diode D8, a capacitor C13, a capacitor C2, a capacitor C3, a power supply chip P3, an inductor L11, an LED1 and a resistor R5, one end of the LED1 is connected to one end of the resistor R5, the 5-pin of the chip U6 is respectively connected to the 1-pin of the power supply chip P3 and one end of the resistor R16, the 4-pin of the chip U6 is connected to one end of the resistor R15, the other end of the resistor R15 is connected to one end of the resistor R43, the 1-pin of the chip U6 is connected to one end of the capacitor C18, the other end of the capacitor C18 is connected to one end of the diode D8, the 6-pin of the chip U6 is respectively connected to one end of the resistor R32 and one end of the inductor L11, and the The other end of the inductor L11 is respectively connected to one end of the capacitor C2 and one end of the capacitor C3, the 3-terminal pin of the chip U6 is connected to one end of the capacitor C13, the 2-terminal pin of the power chip P3, the 2-terminal pin of the chip U6, the other end of the resistor R16, the other end of the resistor R43, the other end of the diode D8, the other end of the capacitor C2, the other end of the capacitor C3 and the other end of the resistor R32 are all grounded, and the second step-down circuit component includes chip U11, capacitor C43, capacitor C40, capacitor C42 and capacitor C39, the 3-terminal pin of the chip U11 is respectively connected to one end of the capacitor C39 and one end of the capacitor C42, the 2-terminal pin of the chip U11 is connected to one end of the capacitor C43, the 4-terminal pin of the chip U11 is connected to one end of the capacitor C40, the 1-terminal pin of the chip U11, the other end of the capacitor C39, the other end of the capacitor C42, the other end of the capacitor C40 and the other end of the capacitor C43 are all grounded.