An integrated outdoor lighting device

By employing a triangular pyramidal aluminum alloy heat dissipation frame and intelligent control module in outdoor lighting devices, combined with COB light source units and solar modules, the problems of limited beam angle and poor heat dissipation of outdoor lighting devices are solved, achieving 360° all-round lighting and multi-scene adaptation, and possessing intelligent control and emergency functions.

CN122107331APending Publication Date: 2026-05-29GUANGDONG XINTEMEI TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GUANGDONG XINTEMEI TECH CO LTD
Filing Date
2026-03-12
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing COB luminaires have limitations in outdoor applications, including limited beam angle, poor heat dissipation, lack of intelligent control and adaptability to multiple scenarios, and cannot meet the needs of 360° full-range lighting.

Method used

The aluminum alloy heat dissipation frame with a triangular pyramid structure integrates COB light source unit, solar module, energy storage battery and intelligent control module to form a 360° surrounding light-emitting surface. Combined with heat dissipation fins and thermal grease, it supports multiple installation methods and realizes intelligent control and independent power supply.

Benefits of technology

It achieves 360° all-around lighting coverage, eliminates dead corners in three-dimensional space, improves heat dissipation efficiency, supports multi-scene adaptation, and has intelligent sensing and emergency charging functions to meet the needs of outdoor composite lighting.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an integrated outdoor lighting device, which comprises a triangular pyramid, an aluminum alloy heat dissipation framework with a hollow structure, three mounting surfaces provided on the triangular pyramid, a COB light source unit mounted on the mounting surfaces, an assembling seat mounted in the triangular pyramid, an intelligent control module mounted on the assembling seat, a solar energy assembly mounted on the top of the triangular pyramid, an energy storage battery connected with the solar energy assembly, the COB light source unit and the energy storage battery connected with the intelligent control module, and a base mounted on the bottom of the triangular pyramid. The COB light source unit is fixed on the mounting surface to form a 360-degree surrounding light emitting surface, the lighting range is improved, and the dead angle of the three-dimensional space lighting is eliminated. The charging efficiency is improved through a monocrystalline silicon solar panel and a charging chip. The base is arranged to support direct placement and expansion screw fixing dual-mode installation, and the three use states of placement, wall hanging and ground fixing can be realized. The heat conduction efficiency is greatly improved through the arrangement of the heat dissipation fins and the heat conducting silicone grease.
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Description

Technical Field

[0001] This invention belongs to the field of outdoor lighting technology, and specifically relates to an integrated outdoor lighting device. Background Technology

[0002] Lighting fixtures refer to all appliances used for illumination. They illuminate a space by fixing a light source and using necessary components and wiring accessories. Lighting fixtures not only provide basic lighting but also serve decorative, ambiance-creating, and safety guidance functions. COB lighting fixtures are LED lighting products that utilize COB (Chip-on-Board) packaging technology. By directly integrating multiple LED chips onto a metal substrate, they form a high-density, high-brightness surface light source. They offer advantages such as uniform light distribution, good heat dissipation, and long lifespan, and are widely used in residential, commercial, and professional lighting scenarios. In the field of lighting fixture technology, COB lighting fixtures and solar lighting products are already widely used in outdoor applications. Currently, most COB (Chip-on-Board) lighting fixtures on the market adopt round or square planar structures, with single-sided or double-sided light emission as the main method. They rely on grid power or external batteries, and the installation methods only support fixed wall mounting or ceiling mounting, lacking flexible placement and portability. Solar lighting fixtures, on the other hand, are mostly single-sided light source designs, with solar modules fixedly connected to the main body of the fixture. The light emission angle is limited to within 180°, and the heat dissipation structure has poor compatibility with the light source. They are prone to rapid light decay after long-term operation, and the light emission coverage is insufficient, with lighting dead spots in three-dimensional space, failing to meet the needs of 360° full-range lighting. Moreover, they lack intelligent sensing, mode switching, emergency charging and other composite functions. Therefore, there is an urgent need for an integrated outdoor lighting device to solve the above problems. Summary of the Invention

[0003] In view of the problems raised in the background art above, the object of the present invention is to provide an integrated outdoor lighting device.

[0004] To achieve the above-mentioned technical objectives, the technical solution adopted by the present invention is as follows: An integrated outdoor lighting device includes a triangular cone, which is a hollow aluminum alloy heat dissipation frame. The triangular cone has three mounting surfaces, each forming a 60° angle with the axis of the cone. A COB light source unit is mounted on each mounting surface. A mounting base is installed inside the triangular cone, and an intelligent control module is mounted on the mounting base. A solar panel is mounted on the top of the triangular cone and connected to an energy storage battery, which is installed inside the cone. The COB light source unit, the energy storage battery, and the intelligent control module are connected. A base is mounted on the bottom of the triangular cone.

[0005] Furthermore, the COB light source unit includes an alumina ceramic copper-clad laminate, which is arranged in an isosceles triangular structure. Several uniformly arranged COB chips are welded to the surface of the alumina ceramic copper-clad laminate, and optical lenses are mounted on the edges of the alumina ceramic copper-clad laminate via clips. This structural design improves the lighting effect.

[0006] Furthermore, a fluororubber gasket is bonded between the optical lens and the alumina ceramic copper-clad plate. This structural design improves the sealing effect.

[0007] Furthermore, the alumina ceramic copper-clad laminate has countersunk holes at three corners, and locking screws are installed in the countersunk holes. The alumina ceramic copper-clad laminate is fixedly mounted on the mounting surface by the locking screws. This structural design facilitates the fixed installation of the alumina ceramic copper-clad laminate.

[0008] Further specifying, the intelligent control module includes a main control chip, which is connected to a light control sensor, a human body sensing module, and a charging chip. The main control chip is also connected to a high-intensity light adjustment unit, a low-intensity light adjustment unit, and a strobe adjustment unit. The charging chip is connected to an energy storage battery. This structural design achieves the effect of intelligent control.

[0009] Further specified, the human body sensing module has a response time ≤0.3s, a delay time adjustable from 10 to 60s, a calibrable trigger threshold for the light control sensor, automatically turns on the light fixture when the nighttime illuminance is <50 lux, and turns off the light fixture when the daytime illuminance is ≥50 lux, and the color temperature of the COB light source unit is adjustable from 3000K to 5700K. This structural design defines the triggering conditions, adjustable range, and operating standards of the human body sensing module, light control sensor, and COB light source unit.

[0010] Further specifying, the solar module includes a mounting base, which is secured to the top of a triangular pyramid with several screws. A monocrystalline silicon solar panel is installed inside the mounting base, and the monocrystalline silicon solar panel is arranged in an equilateral triangular structure. Tempered glass is installed on the outside of the monocrystalline silicon solar panel on the mounting base. The output end of the monocrystalline silicon solar panel is connected to an energy storage battery. This structural design facilitates fixed installation and use.

[0011] Furthermore, the energy storage battery comprises two lithium batteries connected in parallel, which are bundled together with cable ties to form a battery pack. This structural design facilitates the assembly of the energy storage battery.

[0012] Furthermore, the outer edges of the triangular pyramid are provided with several evenly arranged heat dissipation fins, and the mounting surface at the connection point with the COB light source unit is coated with thermally conductive silicone grease. This structural design improves heat conduction and dissipation.

[0013] Further specifying, the base includes a support column, the bottom of which is connected to a placement tray. The bottom of the placement tray is provided with an anti-slip rubber pad. The outer edges of the placement tray and the anti-slip rubber pad are provided with several evenly arranged mounting holes. A handle is hinged to one side of the placement tray. The top inner side of the support column is provided with a threaded groove, and a stud is connected within the threaded groove. The top of the stud is fixedly installed on the bottom of a triangular pyramid. A sleeve is installed on the outer side of the bottom of the triangular pyramid, and the sleeve is placed on top of the support column. This structural design enables connection and support.

[0014] The beneficial effects of this invention are as follows: By fixing the COB light source unit on three mounting surfaces, a 360° surround light-emitting surface is formed, improving the lighting range and completely eliminating three-dimensional spatial lighting dead angles. Through the monocrystalline silicon solar panel and charging chip, the charging efficiency is improved, enabling it to work independently without the power grid. By setting a base, it supports dual-mode installation of direct placement and expansion screw fixing, realizing three usage states: placement, wall mounting, and ground fixing. It is suitable for outdoor scenarios such as campsites, courtyards, walls, and wilderness rescue, greatly improving multi-scenario adaptability. By setting heat dissipation fins and thermal grease, the heat conduction efficiency can be greatly improved, quickly transferring the heat generated by the COB light source unit to the heat dissipation fins on the triangular pyramid, accelerating the dissipation of heat into the air. Attached Figure Description

[0015] The present invention can be further illustrated by the non-limiting embodiments given in the accompanying drawings; Figure 1 This is a schematic diagram of the axonometric structure of an integrated outdoor lighting device according to an embodiment of the present invention; Figure 2 This is a cross-sectional structural diagram of an integrated outdoor lighting device according to an embodiment of the present invention; Figure 3 This is an enlarged structural diagram of point A of an integrated outdoor lighting device according to an embodiment of the present invention; Figure 4 This is an enlarged structural diagram of section B of an integrated outdoor lighting device according to an embodiment of the present invention; Figure 5 This is a schematic diagram of the intelligent control module structure of an integrated outdoor lighting device according to an embodiment of the present invention; The symbols for the main components are explained below: 1. Triangular cone; 2. Mounting surface; 3. COB light source unit; 4. Mounting base; 5. Intelligent control module; 6. Solar panel; 7. Energy storage battery; 8. Base; 9. Alumina ceramic copper-clad laminate; 10. COB chip; 11. Optical lens; 12. Fluororubber gasket; 13. Countersunk hole; 14. Locking screw; 15. Main control chip; 16. Light control sensor; 17. Human body sensing module; 18. Charging chip; 19. High light adjustment unit; 20. Low light adjustment unit; 21. Strobe adjustment unit; 22. Mounting base; 23. Monocrystalline silicon solar panel; 24. Tempered glass; 25. Heat dissipation fins; 26. Support column; 27. Placement tray; 28. Anti-slip rubber pad; 29. ​​Mounting hole; 30. Handle; 31. Threaded groove; 32. Stud; 33. Sleeve; 34. Charging indicator light. Detailed Implementation

[0016] To enable those skilled in the art to better understand the present invention, the technical solution of the present invention will be further described below in conjunction with the accompanying drawings and embodiments.

[0017] Example 1, as Figure 1 and Figure 2 As shown, an integrated outdoor lighting device includes a triangular pyramid 1 with a hollow aluminum alloy heat dissipation frame. The triangular pyramid 1 has three mounting surfaces 2, with the angle between the three mounting surfaces 2 and the axis of the triangular pyramid 1 being 60°. COB light source units 3 are mounted on the mounting surfaces 2. A mounting base 4 is installed inside the triangular pyramid 1, and an intelligent control module 5 is mounted on the mounting base 4. A solar panel 6 is installed on the top of the triangular pyramid 1, and the solar panel 6 is connected to an energy storage battery 7, which is installed inside the triangular pyramid 1. The COB light source unit 3, the energy storage battery 7, and the intelligent control module 5 are connected. A base 8 is installed at the bottom of the triangular pyramid 1.

[0018] In this embodiment, during use, the solar panel 6 absorbs sunlight and converts it into electrical energy to charge the energy storage battery 7, which in turn supplies power to the intelligent control module 5 and the COB light source unit 3. During lighting, the intelligent control module 5 controls the COB light source unit 3 to perform lighting work, so that the COB light source unit 3 on the three sides forms a 360° surround light-emitting surface, covering a wider area and eliminating three-dimensional lighting dead angles. It can be directly placed on a plane, wall, or ground via the base 8, adapting to various lighting needs.

[0019] Among them, the triangular pyramid 1 is a hollow aluminum alloy heat dissipation frame. The aluminum alloy material has both lightweight and excellent thermal conductivity. The hollow structure facilitates the installation and arrangement of internal components and reduces the overall weight of the device, making it easy to transport and install. Furthermore, the three mounting surfaces 2 are at an angle of 60° with the axis of the triangular pyramid 1. This angle setting allows the three mounting surfaces 2 to be evenly distributed, ensuring that the COB light source units 3 on the three mounting surfaces 2 form an all-round, dead-angle-free lighting coverage and avoid lighting blind spots.

[0020] Among them, the solar panel 6 converts solar energy into electrical energy and stores it in the energy storage battery 7, providing a clean and sustainable energy supply for the entire device, eliminating the dependence on traditional external power sources. The COB light source unit 3, the energy storage battery 7, and the intelligent control module 5 are connected to achieve reasonable energy distribution and intelligent control of lighting.

[0021] The energy storage battery 7 is also connected to a charging indicator light 34. When charging, the red light of the charging indicator light 34 will light up. When the energy storage battery 7 is fully charged, the green light of the charging indicator light 34 will light up, and the circuit will automatically cut off the charging circuit to avoid overcharging and damaging the battery.

[0022] Example 2, as Figure 1 , Figure 2 and Figure 3 As shown, this embodiment adds the following structure based on embodiment 1: the COB light source unit 3 includes an alumina ceramic copper-clad plate 9, which is arranged in an isosceles triangle structure. A number of uniformly arranged COB chips 10 are welded to the surface of the alumina ceramic copper-clad plate 9. An optical lens 11 is installed on the edge of the alumina ceramic copper-clad plate 9. The optical lens 11 is installed on the alumina ceramic copper-clad plate 9 by a snap fastener.

[0023] In this embodiment, the alumina ceramic copper-clad laminate 9 has excellent thermal conductivity and insulation properties, which can quickly conduct the heat generated by the COB chip 10 during operation and prevent the chip from overheating. The isosceles triangular structure of the alumina ceramic copper-clad laminate 9 is precisely matched with the shape of the mounting surface 2 of the triangular pyramid 1, which improves the installation firmness. The uniformly arranged COB chips 10 can make the light emission more uniform and eliminate the lighting blind spots. The optical lens 11 can converge and refract the light, expand the effective lighting range, improve the lighting effect, and meet the needs of large-scale outdoor lighting. The optical lens 11 is installed on the alumina ceramic copper-clad laminate 9 by a snap-fit, which facilitates the installation, disassembly and subsequent maintenance of the optical lens 11.

[0024] Example 3, as Figure 3 As shown, this embodiment adds the following structure to the embodiment 2: a fluororubber gasket 12 is attached between the optical lens 11 and the alumina ceramic copper-clad plate 9.

[0025] In this embodiment, the fluororubber gasket 12 has the characteristics of high temperature resistance, aging resistance, strong weather resistance and excellent sealing performance. When pasted between the two, it can effectively fill the tiny gap between the optical lens 11 and the alumina ceramic copper-clad plate 9, forming a reliable sealing structure that can effectively prevent outdoor rainwater, dust, moisture, mosquitoes and other impurities from entering the interior of the COB light source unit 3.

[0026] Example 4, as Figure 3As shown, this embodiment adds the following structure based on embodiment 2: countersunk holes 13 are provided at the three corners of the alumina ceramic copper-clad plate 9, and locking screws 14 are installed in the countersunk holes 13. The alumina ceramic copper-clad plate 9 is fixedly installed on the mounting surface 2 by the locking screws 14.

[0027] In this embodiment, during installation, the countersunk hole 13 allows the locking screw 14 to be fully embedded in the hole, preventing the head of the locking screw 14 from protruding and affecting the installation and fit of the optical lens 11. This ensures that the light transmission is not blocked and the lighting effect is not affected. Furthermore, the screw fixing method is simple and convenient, making it easy for staff to disassemble, maintain and replace the COB light source unit 3 later.

[0028] Example 5, as Figure 5 As shown, this embodiment adds the following structure based on embodiment 1: the intelligent control module 5 includes a main control chip 15, which is connected to a light control sensor 16, a human body sensing module 17 and a charging chip 18. The main control chip 15 is also connected to a strong light adjustment unit 19, a weak light adjustment unit 20 and a strobe adjustment unit 21. The charging chip 18 is connected to the energy storage battery 7.

[0029] In this embodiment, the main control chip 15 serves as the control core, enabling the coordinated operation of various components and enhancing the intelligence of the device. It can complete the start-up, shutdown, and adjustment of lighting without manual intervention, making it convenient to use. The light control sensor 16 enables the lamps to automatically start and stop according to the ambient light intensity, avoiding ineffective lighting during the day and saving energy. The human body sensing module 17 enables the lights to turn on when people are present and turn off (or turn off after a delay) when people leave. The charging chip 18 can rectify and stabilize the electrical energy converted by the solar panel 6, protecting the energy storage battery 7 from overcharging and over-discharging, and extending the lifespan of the energy storage battery 7. The strong light adjustment unit 19, the weak light adjustment unit 20, and the strobe adjustment unit 21 can adapt to the lighting needs of different outdoor scenarios. Strong and weak light are used in normal scenarios, and strobe is used in emergency scenarios, improving the practicality and applicability of the device.

[0030] Example 6: Based on Example 5, this example adds the following structure: the human body sensing module 17 has a response time of ≤0.3s and a delay time that is adjustable from 10 to 60s; the trigger threshold of the light control sensor 16 is calibrable; the lamp automatically turns on when the illuminance is <50 lux at night and turns off when the illuminance is ≥50 lux during the day; and the color temperature of the COB light source unit 3 is adjustable from 3000K to 5700K.

[0031] In this embodiment, the human body sensing module 17 has a response time of ≤0.3s, which ensures that the COB light source unit 3 lights up quickly after a human body enters the sensing range, avoiding lighting delay. The delay time is adjustable and can be flexibly set according to the flow of people in different scenarios, taking into account both energy saving and ease of use. The trigger threshold of the light control sensor 16 is calibrable, which can adapt to the differences in light intensity in different regions and seasons, ensuring trigger accuracy and avoiding false triggering of the lamps due to differences in light intensity. The clear light intensity threshold setting makes the start and stop of the COB light source unit 3 more precise. The COB light source unit 3 can adjust the color temperature according to the needs of the scene, adapting to various outdoor scenarios such as parks, walkways, and parking lots.

[0032] Example 7, as Figure 1 , Figure 2 and Figure 4 As shown, this embodiment adds the following structure based on embodiment 1: the solar module 6 includes a mounting base 22, which is locked onto the top of the triangular pyramid 1 by several screws. A monocrystalline silicon solar panel 23 is installed inside the mounting base 22. The monocrystalline silicon solar panel 23 is arranged in an equilateral triangle structure. Tempered glass 24 is installed on the outside of the monocrystalline silicon solar panel 23 on the mounting base 22. The output end of the monocrystalline silicon solar panel 23 is connected to the energy storage battery 7.

[0033] In this embodiment, the mounting base 22 is fixedly installed on the top of the triangular pyramid 1 with screws, which facilitates subsequent disassembly and assembly. The monocrystalline silicon solar panel 23 has high photoelectric conversion efficiency, good stability, and long service life. It can efficiently convert solar energy into electrical energy, reduce dependence on traditional external power sources, and is more energy-efficient and environmentally friendly. In addition, the monocrystalline silicon solar panel 23 has an equilateral triangular structure design that matches the shape of the top of the triangular pyramid 1, making full use of the top space, maximizing the solar energy receiving area, and improving the solar energy collection effect. Tempered glass 24 is installed on the outside of the monocrystalline silicon solar panel 23. Tempered glass 24 has the characteristics of high strength, impact resistance, and good light transmission, which can effectively protect the monocrystalline silicon solar panel 23 from damage caused by outdoor wind, sand, impact, rain and other external factors, while not affecting the reception of solar energy. The monocrystalline silicon solar panel 23 is directly connected to the energy storage battery 7, which can store the converted electrical energy in a timely manner to ensure normal operation in the absence of sunlight, such as on cloudy days and at night.

[0034] Example 8: Based on Example 1, this example adds the following structure: the energy storage battery 7 includes two lithium batteries connected in parallel, and the two lithium batteries are bundled and fixed together by cable ties to form a battery pack.

[0035] In this embodiment, the energy storage battery 7 is constructed by two LG HG2 18650 lithium batteries connected in parallel and spot-welded with nickel strips (80A / 0.2s), with a total capacity of 6000mAh. Lithium batteries have the advantages of high energy density, light weight, long cycle life, and low self-discharge rate, making them suitable for outdoor energy storage. Furthermore, the parallel connection of the two lithium batteries increases the total capacity of the energy storage battery and improves the battery life. The cable tie binding method is simple and convenient, ensuring a tight connection and structural stability between the two lithium batteries.

[0036] Example 9, as Figure 1 and Figure 2 As shown, this embodiment adds the following structure based on embodiment 1: the outer edge of the triangular pyramid 1 is provided with several evenly arranged heat dissipation fins 25, and the connection between the mounting surface 2 and the COB light source unit 3 is coated with thermally conductive silicone grease.

[0037] In this embodiment, a large amount of heat is generated when the COB light source unit 3 is working. Thermal grease can greatly improve the heat conduction efficiency and quickly transfer the heat generated by the COB light source unit 3 to the heat dissipation fins 25 on the triangular pyramid 1. The heat dissipation fins 25 increase the heat dissipation area of ​​the triangular pyramid 1 and accelerate the heat dissipation into the air.

[0038] Example 10, as Figure 1 and Figure 2 As shown, this embodiment adds the following structure to embodiment 1: the base 8 includes a support column 26, a placement tray 27 is connected to the bottom of the support column 26, an anti-slip rubber pad 28 is provided on the bottom of the placement tray 27, and several evenly arranged mounting holes 29 are provided on the outer edges of the placement tray 27 and the anti-slip rubber pad 28. A handle 30 is hinged to one side of the placement tray 27. A threaded groove 31 is provided on the inner side of the top of the support column 26, and a stud 32 is connected in the threaded groove 31. The top of the stud 32 is fixedly installed on the bottom of the triangular pyramid 1. A sleeve 33 is installed on the outer side of the bottom of the triangular pyramid 1, and the sleeve 33 is placed on the top of the support column 26. This structural design enables connection and support.

[0039] In this embodiment, the support column 26 provides a stable support height to adapt to the lighting height requirements of different outdoor scenarios. The placement plate 27 increases the contact area with the ground, improving the placement stability of the device and preventing it from tipping over. At the same time, the anti-slip rubber pad 28 increases the friction and further improves the anti-slip and anti-tipping performance. By installing expansion bolts in the mounting hole 29, the base can be fixed to the ground and wall, or it can be placed directly on a flat surface for use.

[0040] The handle 30 facilitates the handling and movement of the device by the staff, and the engagement of the threaded groove 31 and the stud 32 facilitates the disassembly and assembly of the triangular cone 1 and the support column 26, making it convenient for later maintenance.

[0041] Detailed workflow: During the day, the monocrystalline silicon solar panel 23 at the top of the triangular pyramid 1 receives sunlight and converts solar energy into electrical energy. This electrical energy is rectified and regulated by the charging chip 18 in the intelligent control module 5 before charging the energy storage battery 7. Simultaneously, the charging chip 18 monitors the energy storage battery 7's charge status in real time to prevent overcharging and over-discharging, ensuring the battery's safety and lifespan. The energy storage battery 7 stores the electrical energy transmitted by the charging chip 18, providing continuous and stable power support for the normal operation of the entire device. Even in scenarios without sunlight, such as cloudy days or evenings, the device can still operate using the electrical energy stored in the energy storage battery 7. In use, the light control sensor 16 detects the light intensity of the outdoor environment in real time. Its trigger threshold can be calibrated according to the actual scene. When the ambient illuminance is ≥50 lux during the day, the light control sensor 16 transmits a shutdown signal to the main control chip 15. The main control chip 15 controls the COB light source unit 3 to be in the off state to avoid ineffective lighting during the day and save energy. When it is night or in a dimly lit environment with illuminance <50 lux, the light control sensor 16 transmits an on signal to the main control chip 15. The main control chip 15 triggers the COB light source unit 3 to enter the standby state, waiting for the human body sensing signal. At the same time, the human body sensing module 17 detects the surrounding human activities in real time, and its response time is ≤0.When someone enters the sensing range, the human body sensing module 17 quickly transmits a signal to the main control chip 15 within 3 seconds. The main control chip 15 immediately issues a control command to activate the COB light source unit 3. If no one enters the sensing range, the COB light source unit 3 remains in standby mode, consuming no power. The main control chip 15 controls the lighting mode of the COB light source unit 3 according to actual needs through the strong light adjustment unit 19, weak light adjustment unit 20, and strobe adjustment unit 21. Simultaneously, the color temperature of the COB light source unit 3 can be adjusted (3000K~5700K adjustable). When the human body sensing module 17 detects human activity, it defaults to activating either weak or strong light mode to provide clear and comfortable lighting for pedestrians and vehicles. When the human body leaves the sensing range and the human body sensing module 17 loses its signal, the main control chip 15 controls the COB light source unit 3 to enter a delay state. The delay time can be flexibly adjusted between 10 and 60 seconds. After the delay ends, the COB light source unit 3 automatically shuts off, further saving energy. In case of emergencies (such as outdoor malfunctions or sudden accidents), external... The terminal connects to the main control chip 15, triggering the strobe adjustment unit 21. The main control chip 15 controls the COB light source unit 3 to enter strobe mode, emitting a clear strobe light to serve as a warning and reminder, adapting to outdoor emergency lighting needs. During operation, the COB light source unit 3 generates heat. The thermally conductive silicone grease applied at the connection between the mounting surface 2 and the COB light source unit 3 quickly transfers the heat to the triangular pyramid 1. The heat dissipation fins 25 evenly distributed on the outer edges of the triangular pyramid 1 increase the heat dissipation area, accelerating heat dissipation into the air and effectively controlling the operating temperature of the COB light source unit 3, preventing overheating damage to components. Simultaneously, the fluororubber gasket 12 between the optical lens 11 and the alumina ceramic copper-clad plate 9 effectively prevents rainwater, dust, moisture, and other impurities from entering the COB light source unit 3. The anti-slip rubber pad 28 of the base 8 provides stable and reliable support, and can be placed directly on a flat surface (such as a campsite or courtyard). For wall mounting and ground fixing, it can be fixed to the wall or ground through the mounting holes 29, adapting to various lighting scenarios.

[0042] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the invention. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in the present invention should still be covered by the claims of the present invention.

Claims

1. An integrated outdoor lighting device, characterized in that: The device includes a triangular cone (1), which is a hollow aluminum alloy heat dissipation frame. The triangular cone (1) has three mounting surfaces (2), and the angle between the three mounting surfaces (2) and the axis of the triangular cone (1) is 60°. A COB light source unit (3) is installed on the mounting surface (2). A mounting base (4) is installed inside the triangular cone (1). An intelligent control module (5) is installed on the mounting base (4). A solar panel (6) is installed on the top of the triangular cone (1). The solar panel (6) is connected to an energy storage battery (7). The energy storage battery (7) is installed inside the triangular cone (1). The COB light source unit (3), the energy storage battery (7) and the intelligent control module (5) are connected. A base (8) is installed at the bottom of the triangular cone (1).

2. The integrated outdoor lighting device according to claim 1, characterized in that: The COB light source unit (3) includes an alumina ceramic copper-clad laminate (9), which is arranged in an isosceles triangular structure. A number of uniformly arranged COB chips (10) are welded to the surface of the alumina ceramic copper-clad laminate (9). An optical lens (11) is installed on the edge of the alumina ceramic copper-clad laminate (9), and the optical lens (11) is installed on the alumina ceramic copper-clad laminate (9) by a snap fastener.

3. An integrated outdoor lighting device according to claim 2, characterized in that: A fluororubber gasket (12) is attached between the optical lens (11) and the alumina ceramic copper-clad plate (9).

4. An integrated outdoor lighting device according to claim 3, characterized in that: The alumina ceramic copper-clad plate (9) has countersunk holes (13) at its three corners, and locking screws (14) are installed in the countersunk holes (13). The alumina ceramic copper-clad plate (9) is fixedly installed on the mounting surface (2) by the locking screws (14).

5. An integrated outdoor lighting device according to claim 4, characterized in that: The intelligent control module (5) includes a main control chip (15), which is connected to a light control sensor (16), a human body sensing module (17) and a charging chip (18). The main control chip (15) is also connected to a strong light adjustment unit (19), a weak light adjustment unit (20) and a strobe adjustment unit (21). The charging chip (18) is connected to the energy storage battery (7).

6. An integrated outdoor lighting device according to claim 5, characterized in that: The human body sensing module (17) has a response time of ≤0.3s and a delay time of 10 to 60s that is adjustable. The trigger threshold of the light control sensor (16) is calibrable. The lamps are automatically turned on when the illuminance is <50 lux at night and turned off when the illuminance is ≥50 lux during the day. The color temperature of the COB light source unit (3) is adjustable from 3000K to 5700K.

7. An integrated outdoor lighting device according to claim 6, characterized in that: The solar module (6) includes a mounting base (22), which is locked onto the top of a triangular pyramid (1) by a number of screws. A monocrystalline silicon solar panel (23) is installed inside the mounting base (22). The monocrystalline silicon solar panel (23) is arranged in an equilateral triangle structure. Tempered glass (24) is installed on the outside of the monocrystalline silicon solar panel (23) on the mounting base (22). The output end of the monocrystalline silicon solar panel (23) is connected to the energy storage battery (7).

8. An integrated outdoor lighting device according to claim 7, characterized in that: The energy storage battery (7) includes two lithium batteries connected in parallel, and the two lithium batteries are bundled together with cable ties to form a battery pack.

9. An integrated outdoor lighting device according to claim 8, characterized in that: The outer edge of the triangular pyramid (1) is provided with several evenly arranged heat dissipation fins (25), and the connection between the mounting surface (2) and the COB light source unit (3) is coated with thermally conductive silicone grease.

10. An integrated outdoor lighting device according to claim 9, characterized in that: The base (8) includes a support column (26), the bottom of which is connected to a placement plate (27). The bottom of the placement plate (27) is provided with an anti-slip rubber pad (28). The outer edges of the placement plate (27) and the anti-slip rubber pad (28) are provided with several evenly arranged mounting holes (29). A handle (30) is hinged to one side of the placement plate (27). The inner side of the top of the support column (26) is provided with a threaded groove (31). A stud (32) is connected in the threaded groove (31). The top of the stud (32) is fixedly installed on the bottom of the triangular cone (1). A sleeve (33) is installed on the outer side of the bottom of the triangular cone (1). The sleeve (33) is placed on the top of the support column (26).