Solar charging type diagonal cable warning and lighting device
By incorporating a rotatable solar panel into the guy wire warning light, the problem of poor adaptability caused by the fixed angle of the solar panel is solved, achieving efficient energy utilization and stable power supply, simplifying the device structure, and improving warning performance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHENZHEN OCEAN KING POWER GRID LIGHTING TECH CO LTD
- Filing Date
- 2026-01-07
- Publication Date
- 2026-05-12
AI Technical Summary
The fixed angle of the solar panel in existing guy wire warning lights results in poor environmental adaptability, affecting power generation efficiency and luminous brightness.
Design a solar-powered, maneuverable warning lighting device. By rotating the solar panel to the support cover, the device can adjust its tilt angle according to changes in the sun's position, thereby improving solar energy reception efficiency.
Under different times and environments, solar panels can more effectively face the sun, improving power generation efficiency and power supply stability, simplifying the device structure, and enhancing practicality and economy.
Smart Images

Figure CN122015055A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of lighting equipment technology, and in particular to a solar-powered, maneuverable warning lighting device. Background Technology
[0002] Guy wires, a common device used to stabilize tall structures such as towers and utility poles, are widely used in the power and telecommunications industries. Because they are typically installed near roads, areas where pedestrians or vehicles may pass, warning lights are required to provide clear warnings and ensure public safety, preventing accidents caused by accidental collisions.
[0003] A typical guy wire warning light generally consists of a casing, a light-emitting component, a solar panel, and an energy storage device. Its working principle is to utilize the solar panel to absorb solar energy and convert it into electrical energy, which is stored in the energy storage device. This electrical energy powers the light-emitting component to provide illumination at night or in low-light environments. Solar energy, as a clean energy source, is used to charge the warning light, offering advantages in energy conservation and environmental protection.
[0004] However, due to weather conditions and the location of the guy wire, the solar panels of existing conventional guy wire warning lights cannot always maintain the ideal angle facing the sun. In this case, the solar radiation energy received by the solar panels is greatly reduced, directly leading to a decrease in power generation efficiency, which in turn affects the normal operating time and brightness of the warning lights. Summary of the Invention
[0005] The purpose of this invention is to provide a solar-powered, guy wire warning lighting device to solve the technical problem of the fixed angle of the solar panel in existing guy wire warning lights, which results in poor environmental adaptability.
[0006] A solar-powered, guy wire warning lighting device includes:
[0007] A warning tube is connected to the guy cable and is installed along the extension direction of the guy cable;
[0008] An illumination assembly, connected to the warning tube, is used to provide a light source to the warning tube so that the warning tube emits a warning light;
[0009] A power supply component, electrically connected to the lighting component, is used to supply power to the lighting component. The power supply component includes a support cover and a solar panel. The support cover is connected to the inclined cable. The solar panel is rotatably connected to the support cover and can rotate relative to the support cover to adjust its own angle of illumination.
[0010] Preferably, multiple solar panels are provided, and the multiple solar panels are arranged at intervals along the circumference of the supporting cover.
[0011] Preferably, the power supply component further includes a protective shell, in which the solar panel is installed. The protective shell is rotatably connected to the outer periphery of the support cover via a damping hinge structure, and the protective shell can drive the solar panel to rotate relative to the support cover in a first direction via the damping hinge structure.
[0012] Preferably, the protective shell includes a transparent cover plate, which is provided on one side of the protective shell corresponding to the light-receiving surface of the solar panel.
[0013] Preferably, the damping hinge structure includes a first hinge, a second hinge, and a pivot. The first hinge is connected to the support cover, the second hinge is connected to the protective shell, and the first hinge and the second hinge are connected by the pivot.
[0014] Preferably, the second hinge and the protective shell are connected by a torsion structure, which can drive the protective shell to rotate relative to the support cover in a second direction, wherein the second direction is perpendicular to the first direction.
[0015] Preferably, the support cover has a clearance notch along its own radial direction, and the inclined cable can extend into the clearance notch and be connected to the support cover by a locking member.
[0016] Preferably, the support cover is positioned above the lighting assembly along the axial direction of the guy cable, and the outer surface of the support cover extends outward from top to bottom along the axial direction of the guy cable to form a protective slope.
[0017] Preferably, the power supply component further includes a power supply cable, and the power supply component is connected to the lighting component through the power supply cable. The support cover forms an accommodating space with a bottom opening, and at least part of the power supply cable is concealed within the accommodating space.
[0018] Preferably, the support cover has multiple ventilation holes that extend radially through it, and these ventilation holes are used to connect the accommodating space with the outside.
[0019] Preferably, the solar-powered guy wire warning lighting device further includes a deflection component, which includes:
[0020] The detection module is used to monitor the environmental information around the warning tube and / or the power supply component and generate corresponding detection signals;
[0021] The main control module is electrically connected to the detection module and the lighting component, and is used to receive the detection signal and control the lighting component to emit a light signal for repelling the vehicle according to the detection signal.
[0022] The beneficial effects of this invention are:
[0023] The solar-powered manned cable warning lighting device proposed in this invention features a solar panel that is rotatably connected to a support housing. This allows the solar panel to flexibly adjust its tilt angle according to changes in the sun's position or the specific installation angle of the manned cable. This ensures that the solar panel's sun-receiving surface is more effectively aligned with the sun at different times of day or under different installation conditions, improving solar energy reception efficiency and charging power. This allows the power supply component to continuously and stably provide more sufficient power to the lighting component. The rotatable and adjustable solar panel design eliminates the need for a complex drive mechanism, making it easier to install manned cables at different tilt angles. The overall structure remains simple, reliable, and easy to maintain, ensuring both high energy efficiency and enhanced warning performance while maintaining the device's practicality and economy. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of the solar-chargeable inclined wire warning lighting device provided in an embodiment of the present invention;
[0025] Figure 2 This is a cross-sectional view of the solar-chargeable guy wire warning lighting device provided in an embodiment of the present invention;
[0026] Figure 3 This is a first structural schematic diagram of the power supply component provided in an embodiment of the present invention;
[0027] Figure 4 This is a schematic diagram of the second structure of the power supply component provided in an embodiment of the present invention;
[0028] Figure 5 This is a third structural schematic diagram of the power supply component provided in an embodiment of the present invention;
[0029] Figure 6 This is a fourth structural schematic diagram of the power supply component provided in an embodiment of the present invention.
[0030] In the picture:
[0031] 100. Diagonal guy cable; 1. Warning tube; 2. Lighting assembly; 3. Power supply assembly; 31. Support cover; 311. Avoidance gap; 312. Protective slope; 313. Ventilation hole; 314. Accommodation space; 32. Solar panel; 33. Protective shell; 331. Transparent cover; 34. Damping hinge structure; 341. First hinge; 342. Second hinge; 343. Shaft; 35. Power supply cable; 36. Locking element; 37. Torsion structure; 4. Removal assembly; 5. Control assembly. Detailed Implementation
[0032] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar components or components having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention.
[0033] In the description of this invention, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection or a detachable connection; a mechanical connection or an electrical connection; a direct connection or an indirect connection through an intermediate medium; or the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0034] In the description of this invention, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature being directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature being directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0035] The technical solution of the present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0036] See Figures 1 to 6The solar-powered guy wire warning lighting device provided in this embodiment of the invention includes a warning tube 1, a lighting component 2, and a power supply component 3. The warning tube 1 is connected to the guy wire 100 and is arranged along the extension direction of the guy wire 100. The lighting component 2 is connected to the warning tube 1 and provides a light source to the warning tube 1 so that the warning tube 1 emits warning light. The power supply component 3 is electrically connected to the lighting component 2 and supplies power to the lighting component 2. The power supply component 3 includes a support cover 31 and a solar panel 32. The support cover 31 is connected to the guy wire 100, and the solar panel 32 is rotatably connected to the support cover 31 and can rotate relative to the support cover 31 to adjust its own illumination angle.
[0037] The solar-powered manned cable warning lighting device proposed in this invention features a solar panel 32 rotatably connected to a support housing 31. This allows the solar panel 32 to flexibly adjust its tilt angle according to changes in the sun's position or the specific installation angle of the manned cable 100. This ensures that the solar panel 32's light-receiving surface is more effectively aligned with the sun at different times of day or under different installation conditions, improving solar energy reception efficiency and charging power. This allows the power supply component 3 to continuously and stably provide more sufficient power to the lighting component 2. The rotatable and adjustable design of the solar panel 32 eliminates the need for a complex drive mechanism, making it easier to install manned cables 100 at different tilt angles. The overall structure remains simple, reliable, and easy to maintain, ensuring both high energy efficiency and improved warning performance while maintaining the device's practicality and economy.
[0038] The working principle and specific structure of this solar-powered manned warning lighting device will be explained in detail below.
[0039] The warning tube 1 adopts a hollow tubular structure, and its axial length direction is consistent with the extension direction of the inclined cable 100, and it can be fixedly installed on the inclined cable 100.
[0040] The warning tube 1 is usually made of light-transmitting or semi-light-transmitting materials, such as engineering plastics. The tube wall of the warning tube 1 can be designed with a frosted surface that has a light-diffusing effect or a built-in prism structure so as to scatter the internal light evenly and form a conspicuous linear or strip-shaped light-emitting band, thereby providing a clear outline and warning effect on the entire extension range or key section of the guy cable 100 at night or in low visibility conditions.
[0041] The lighting assembly 2 includes a light source unit disposed inside or at one end of the warning tube 1. The light source unit is fixed to the end position of the warning tube 1 by fasteners or mounting brackets. The light beam emitted by the light source unit illuminates the internal cavity and tube wall of the warning tube 1 along the axial direction of the warning tube 1. To ensure uniform illumination throughout the entire length of the tube, the inner wall surface of the warning tube 1 undergoes special optical treatment, such as the application of a diffuse reflection coating or the construction of continuous light guiding and scattering textures. When the light beam enters from one end, part of the light directly illuminates the tube wall and undergoes diffuse reflection, while the other part of the light may undergo multiple reflections and scatterings within the tube, ultimately allowing the light to fill the entire cavity and radiate a uniform and soft warning light outward through the tube wall material.
[0042] The power supply component 3 is used to provide the necessary electrical energy for the operation of the entire device. Specifically, the power supply component 3 receives solar energy through the solar panel 32 and converts it into electrical energy, which is then stored and stably supplied to the lighting component 2.
[0043] In this embodiment, the power supply component 3 is fixedly connected to the inclined cable 100 via a support cover 31, providing a stable installation foundation for the entire power supply component 3. The solar panel 32 is installed on the support cover 31. Its basic power supply principle is that, under sunlight, the solar panel 32 directly converts the received solar energy into DC power through the photovoltaic effect of its internal semiconductor material, and transmits it through wires to the energy storage unit electrically connected to it for storage, or directly supplies power to the lighting component 2 via the control circuit. The advantage of using the solar panel 32 for power supply is that it can utilize clean and renewable solar energy, eliminating the need for an external power source, achieving energy self-sufficiency of the device and flexible arrangement of its working position, especially suitable for outdoor environments without mains power supply.
[0044] It is understandable that the solar panel 32 is a conventional technology in this field. Its specific photoelectric conversion working principle, internal semiconductor structure and manufacturing process are all existing mature technologies, and will not be elaborated here.
[0045] In terms of specific structure, the support cover 31 is generally shell-shaped and is usually made of engineering plastic or metal to provide sufficient structural strength and weather resistance. The support cover 31 is used to undertake the dual functions of fixed support and protection.
[0046] Specifically, such as Figure 1 and Figure 2As shown, a support cover 31 is positioned above the lighting assembly 2 along the axial direction of the guy cable 100. The outer surface of the support cover 31 is configured to gradually slope outward from top to bottom along the axial direction of the guy cable 100, thereby forming a protective slope 312 with guiding and shielding functions. The inclined protective slope 312 helps rainwater and snow to slide off, preventing debris from accumulating on the support cover 31 and improving the safety of the device.
[0047] To facilitate the connection between the support cover 31 and the guy cable 100, a clearance notch 311 is provided on the support cover 31 in its radial direction, that is, in the direction perpendicular to the axis of the guy cable 100. The shape and size of the clearance notch 311 match the guy cable 100, allowing the guy cable 100 to be directly embedded or extended into it. During installation, the support cover 31 is snapped onto the guy cable 100 through the clearance notch 311, and then locked and fixed to the guy cable 100 using locking elements 36 such as bolts or clamping blocks, thereby securely locking the entire support cover 31 in the predetermined position of the guy cable 100.
[0048] The power supply component 3 and the lighting component 2 are electrically connected via a power supply cable 35. Specifically, as shown... Figures 3 to 5 As shown, the interior of the support cover 31 forms a receiving space 314 with a bottom opening. The receiving space 314 is enclosed by the inner wall of the support cover 31, and the opening of the receiving space 314 faces the inclined cable 100 and the warning tube 1 below. During assembly, at least a portion of the wires extending from the solar panel 32 and the power supply cable 35 connected to the lighting component 2 are properly laid out and shielded within the receiving space 314. This design houses the main electrical connection lines within a semi-enclosed protective structure, effectively preventing the cables from being directly exposed to harsh outdoor environments such as wind, rain, and ultraviolet radiation for extended periods. This reduces the risk of cable aging, sheath damage, or loose connections, thereby improving the reliability and durability of the electrical connections.
[0049] Furthermore, to ensure air circulation within the accommodating space 314 and prevent heat buildup and potential malfunctions caused by moisture condensation during the operation of electrical components, multiple vent holes 313 are radially oriented through the side wall or at appropriate locations on the supporting cover 31. These vent holes 313 are regularly distributed to connect the accommodating space 314 with the outside environment, promoting natural convection of air and aiding in heat dissipation and balancing internal and external air pressure and humidity.
[0050] To achieve efficient solar energy collection and ensure the connection and flexible adjustment between the solar panel 32 and the support housing 31, the power supply assembly 3 specifically includes a protective shell 33. The solar panel 32 is fixedly installed inside the protective shell 33, and the protective shell 33 is rotatably connected to the outer periphery of the support housing 31 via a damping hinge structure 34. This allows the protective shell 33 to drive the solar panel 32 to rotate relative to the support housing 31 in a first direction via the damping hinge structure 34, thereby achieving stepless adjustment of the light-receiving angle of the solar panel 32.
[0051] More specifically, the damping hinge structure 34 includes a first hinge 341, a second hinge 342, and a pivot 343. The first hinge 341 is connected to the support cover 31, the second hinge 342 is connected to the protective shell 33, and the first hinge 341 and the second hinge 342 are connected by the pivot 343. While enabling free rotation, the damping hinge structure 34 provides appropriate frictional resistance through its internal damping element, ensuring that the protective shell 33, together with the solar panel 32, can stably maintain its position after adjustment to a certain angle, preventing easy displacement due to gravity or wind, thus ensuring stable and reliable operation after adjustment.
[0052] Furthermore, in order to achieve more precise and flexible adjustment of the position of the solar panel 32 under sunlight, thereby further improving the solar energy collection efficiency, in this embodiment, the second hinge 342 and the protective shell 33 are connected by a torsion structure 37. The torsion structure 37 can drive the protective shell 33 together with the solar panel 32 to rotate relative to the support cover 31 in a second direction, wherein the second direction is perpendicular to the first direction.
[0053] Specifically, the torsion structure 37 includes a base fixedly connected to the second hinge 342 and a rotating seat fixedly connected to the protective shell 33. The base and the rotating seat are rotatably connected via a rotating shaft perpendicular to the pivot 343. The rotating shaft integrates a damping element or employs a fine-tuning mechanism with self-locking characteristics, such as a worm gear. By manually operating the torsion structure 37 or with the aid of an additional drive device, the protective shell 33 can be adjusted around the pivot 343, and its tilt angle can be further changed along a second direction perpendicular to the first direction. This allows the light-receiving surface of the solar panel 32 to be adjusted in multiple dimensions, enhancing its adaptability to complex installation environments and annual changes in the solar trajectory, and ensuring high photoelectric conversion efficiency under various conditions.
[0054] To protect the solar panel 32 from rain, dust accumulation, and external impacts, a transparent cover plate 331 is provided on the side of the protective shell 33 corresponding to the light-receiving surface of the solar panel 32. The transparent cover plate 331 is made of a high light transmittance material, allowing sunlight to pass through and illuminate the internal solar panel 32 to the maximum extent, while also providing physical protection. The rest of the protective shell 33 is an opaque shell, providing shade for the back of the solar panel 32 and the circuitry.
[0055] To further improve photoelectric conversion efficiency and energy harvesting stability, multiple solar panels 32 are provided. These multiple solar panels 32 are arranged at circumferential intervals along the supporting cover 31. This layout ensures that, regardless of whether it's morning, noon, or afternoon, some solar panels 32 are always at a relatively good angle of sunlight, thereby extending the effective daily power generation time and improving the overall charging capacity under diffuse light conditions such as cloudy days. Multiple panels can be connected in parallel, improving system redundancy and reliability.
[0056] To adapt to different application scenarios and cost requirements, the angle adjustment of the solar panel 32 can be achieved manually in some embodiments. Specifically, the operator can manually turn the protective shell 33 to overcome the damping force provided by the damping hinge structure 34, causing the protective shell 33 to rotate the solar panel 32 around the pivot 343 for coarse angle adjustment in the first direction. Further, the torsion structure 37 connecting the second hinge 342 and the protective shell 33 can be operated. By turning the adjustment knob on the torsion structure 37 or directly micro-adjusting the protective shell 33, the protective shell 33 can be adjusted in the second direction, perpendicular to the first direction, around the pivot. By sequentially or collaboratively operating the two mutually perpendicular degrees of rotation, the operator can precisely adjust the light-receiving surface of the solar panel 32 to the optimal angle facing the sun for the current season and time. After adjustment, the frictional resistance or self-locking characteristics of the damping hinge structure 34 and the torsion structure 37 together ensure that the solar panel 32 remains stable in the new working posture without additional locking.
[0057] In other embodiments, to achieve automatic tracking of the sun's position, maximize solar energy collection efficiency, and reduce human intervention, the angle adjustment of the solar panel 32 is achieved through an electronically controlled drive. Specifically, the power supply component 3 also includes a control component 5, which includes a drive unit, a photosensitive unit, and a control unit. The drive unit is fixedly connected to the support cover 31, and its power output end is connected to the protective shell 33.
[0058] Specifically, the drive unit is preferably a servo motor or a stepper motor, and can be configured with a reduction gear set. It can output a precise angular rotation torque after receiving an electrical signal, thereby driving the protective shell 33 together with the solar panel 32 inside it to rotate around the axis of the rotating shaft 343 or the axis of the rotating shaft.
[0059] The photosensitive unit is used to detect the direction and intensity of sunlight in real time. The photosensitive unit includes multiple photosensitive sensors, such as multiple photodiodes or photoresistors, which are circumferentially spaced at prominent, unshaded locations on the support cover 31. The photosensitive unit can generate and output an electrical signal reflecting the current relative position of the sun based on the incident direction of sunlight and the differences in light intensity received by each sensor.
[0060] The control unit is a microcontroller unit, electrically connected to both the photosensitive unit and the drive unit. The control unit receives and processes electrical signals from the photosensitive unit, compares the signal strength of each photosensitive sensor using a built-in algorithm to determine the direction of maximum light intensity, performs logical judgments, and sends control commands to the drive unit to adaptively adjust the orientation of the solar panel 32.
[0061] Specifically, the control unit sends pulse signals or direction control signals to the drive unit, driving the drive unit to operate until the signal from the photosensitive unit indicates that the light-receiving surface of the solar panel 32 is directly or optimally aligned with the sun. At this point, the control command stops, and the solar panel 32 remains at that optimal angle. This process can be performed periodically or continuously, thereby achieving all-weather automatic solar tracking.
[0062] In practical applications, guy wire warning lights are often outdoors. In some cases, birds and small animals may climb onto the lights, which may block the solar panels and affect the charging efficiency, or build nests or defecate on the surface of the device, thus adversely affecting the cleanliness, appearance and normal function of the device.
[0063] Therefore, the solar-powered guyed warning lighting device also includes a deflector component 4. The deflector component 4 is integrated into the device and is used to automatically drive away approaching small animals without human intervention. The deflector component 4 includes a detection module and a main control module.
[0064] Specifically, the detection module is used to monitor environmental information around the warning tube 1 and / or power supply component 3 and generate corresponding detection signals. The detection module includes various types of sensors to meet different monitoring needs.
[0065] For example, the detection module may include a vibration sensor mounted on the support cover 31 or the warning tube 1 to sense abnormal vibrations caused by small animals climbing, scratching or staying; or the detection module may also include an infrared pyroelectric sensor or a miniature radar sensor to detect biological heat sources or moving objects within a specific range around the warning tube 1 and the power supply component 3.
[0066] In some embodiments, the detection module may also include an image sensor to determine whether a small animal is approaching by capturing images and performing simple moving object recognition. The detection module operates continuously or intermittently, monitoring the environmental information around the warning tube 1 and / or the power supply component 3. Once the collected data, such as vibration amplitude, infrared signal intensity, and moving target characteristics, exceeds a preset threshold, indicating that an unexpected living organism has approached or come into contact with the object, the detection module will generate a corresponding detection signal and output it.
[0067] The main control module is electrically connected to the detection module and lighting component 2. The main control module is a microprocessor or a dedicated control chip used to receive detection signals. The main control module has a pre-set logic judgment program. When the main control module receives a detection signal from the detection module, it will immediately analyze and process the signal to determine whether it is a valid small animal approach event.
[0068] Subsequently, the main control module controls the lighting component 2 to emit a light signal for deterring occupants based on the detection signal. This light signal for deterring occupants differs from conventional warning lights used for static or regularly flashing purposes; it is characterized by its stronger visual stimulation properties.
[0069] For example, the main control module can control the light source unit in lighting component 2 to emit extremely high brightness or rapidly switch between glaring colors such as red and blue in a short period of time, or to initiate an irregular, sudden, and intense flashing mode. This special light signal can effectively deter and disturb birds and small animals, prompting them to leave, thereby achieving the purpose of non-harmful repelling.
[0070] Obviously, the above embodiments of the present invention are merely examples for clearly illustrating the present invention, and are not intended to limit the implementation of the present invention. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the scope of protection of the claims of the present invention.
Claims
1. A solar-powered, manned-wire warning lighting device, characterized in that, include: Warning tube (1) is connected to the inclined cable (100) and is arranged along the extension direction of the inclined cable (100); An illumination assembly (2) is connected to the warning tube (1). The illumination assembly (2) is used to provide a light source to the warning tube (1) so that the warning tube (1) emits a warning light. The power supply component (3) is electrically connected to the lighting component (2) and is used to supply power to the lighting component (2). The power supply component (3) includes a support cover (31) and a solar panel (32). The support cover (31) is connected to the inclined cable (100). The solar panel (32) is rotatably connected to the support cover (31) and can rotate relative to the support cover (31) to adjust its own illumination angle.
2. The solar-powered, manned-wire warning lighting device according to claim 1, characterized in that, Multiple solar panels (32) are provided, and the multiple solar panels (32) are arranged at intervals along the circumference of the support cover (31).
3. The solar-powered manned cable warning lighting device according to claim 1, characterized in that, The power supply component (3) also includes a protective shell (33), in which the solar panel (32) is installed. The protective shell (33) is rotatably connected to the outer periphery of the support cover (31) through a damping hinge structure (34). The protective shell (33) can drive the solar panel (32) to rotate relative to the support cover (31) in a first direction through the damping hinge structure (34).
4. The solar-powered, guyed wire warning lighting device according to claim 3, characterized in that, The protective shell (33) includes a transparent cover plate (331), and the transparent cover plate (331) is provided on one side of the protective shell (33) corresponding to the light-receiving surface of the solar panel (32).
5. The solar-powered, guyed wire warning lighting device according to claim 3, characterized in that, The damping hinge structure (34) includes a first hinge (341), a second hinge (342), and a pivot (343). The first hinge (341) is connected to the support cover (31), the second hinge (342) is connected to the protective shell (33), and the first hinge (341) and the second hinge (342) are connected by the pivot (343).
6. The solar-powered manned cable warning lighting device according to claim 5, characterized in that, The second hinge (342) and the protective shell (33) are connected by a torsion structure (37), which can drive the protective shell (33) to rotate relative to the support cover (31) in a second direction, wherein the second direction is perpendicular to the first direction.
7. The solar-powered, manned-wire warning lighting device according to claim 1, characterized in that, The support cover (31) has a clearance notch (311) along its own radial direction. The inclined cable (100) can extend into the clearance notch (311) and is connected to the support cover (31) by a locking member (36).
8. The solar-powered, manned-wire warning lighting device according to claim 1, characterized in that, Along the axial direction of the inclined cable (100), the support cover (31) is disposed above the lighting assembly (2), and the outer surface of the support cover (31) extends outward from top to bottom along the axial direction of the inclined cable (100) to form a protective slope (312).
9. The solar-powered, manned-wire warning lighting device according to claim 1, characterized in that, The power supply component (3) also includes a power supply cable (35), the power supply component (3) is connected to the lighting component (2) through the power supply cable (35), and the support cover (31) forms a bottom opening accommodating space (314) inside, at least part of the power supply cable (35) is covered in the accommodating space (314).
10. The solar-powered, guyed wire warning lighting device according to claim 1, characterized in that, The solar-powered manned warning lighting device also includes a deflector component (4), which comprises: The detection module is used to monitor the environmental information around the warning tube (1) and / or the power supply component (3) and generate corresponding detection signals; The main control module is electrically connected to the detection module and the lighting component (2), and is used to receive the detection signal and control the lighting component (2) to emit a light signal for driving away according to the detection signal.