Leading light powered by green energy
By combining wind power generation and photovoltaic solar power supply systems, the problem of the single power supply of traditional guide lights has been solved, realizing stable power supply and adaptive brightness adjustment of guide lights, thereby improving waterway safety and energy conservation and emission reduction.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2026-03-12
AI Technical Summary
Traditional navigation lights rely on a single power supply method, which can lead to them becoming unusable when their power generation devices are damaged and cannot be repaired in a timely manner, making it difficult to meet the high safety requirements of modern shipping.
The green energy power supply system, which combines wind power generation components and photovoltaic solar energy components, converts wind and solar energy into electrical energy. Combined with servo motors and control systems, it enables adaptive adjustment of the lamp's position and brightness to ensure continuous power supply.
It achieves a stable power supply for the beacon lights, ensuring normal operation even when the power generation devices are damaged. It also features adaptive brightness adjustment and safe guidance for ships, resulting in significant energy saving and emission reduction effects.
Smart Images

Figure CN2024127834_12032026_PF_FP_ABST
Abstract
Description
Green energy power supply beacon light TECHNICAL FIELD
[0001] The present application relates to the technical field of beacon light. More particularly, the present application relates to a green energy power supply beacon light. BACKGROUND
[0002] With the development of shipping industry, navigation light plays a vital role in waterway safety. However, the traditional beacon light has the problems of single power supply mode, and if the energy generating device is damaged, it cannot be repaired in time, which will cause the beacon light to be unable to work, and it is difficult to meet the high requirements of modern shipping on waterway safety. Therefore, the present application aims to provide a beacon light with improved power supply stability to improve the safety performance of waterway.
[0003] SUMMARY
[0004] An object of the present application is to solve at least the above problems and to provide at least the advantages described later.
[0005] Another object of the present application is to provide a green energy power supply beacon light.
[0006] In order to achieve these objects and other advantages of the present application, the following technical solutions are provided:
[0007] A green energy power supply beacon light, comprising:
[0008] A lamp body comprising an LED light plate arranged in a vertical direction, a front lamp cover arranged in front of the LED light source lamp plate, a rear lamp cover arranged behind the LED light source base, a light transmission plate arranged between the front lamp cover and the LED light plate, and an LED lamp shell connecting the front lamp cover, LED light plate and rear lamp cover into a sealed space, the LED light plate is connected with LED lamp beads, wherein the side of the light transmission plate close to the LED light plate is provided with a plurality of polygonal recesses, and the polygonal recesses are arranged into at least one column along the width direction or length direction of the light transmission plate;
[0009] A support mechanism comprising a support base and a bracket fixed at one end of the support base, the bracket is arranged in a vertical direction;
[0010] A position adjusting mechanism comprising:
[0011] A sleeve is sleeved on the outer side of the bracket, and a plurality of elastic protrusions arranged in a vertical direction are arranged on the outer side of the sleeve in a circumferential direction;
[0012] A fixed cylinder is sleeved outside the sleeve, and a plurality of grooves are arranged on the inner wall of the fixed cylinder and matched with the elastic protrusions, and the fixed cylinder rotates around the sleeve under the driving of a first servo motor;
[0013] A vertical direction moving platform includes a vertical plate fixed on the fixed cylinder and arranged in a vertical direction, and a sliding groove arranged on the surface of the vertical plate, both ends of the vertical plate are provided with a baffle, wherein the lower end of the LED lamp shell is connected with a sliding rail through an L-shaped connecting frame, the sliding rail is arranged in the sliding groove and matched with the sliding groove, and the LED lamp shell reciprocally moves along the sliding groove under the driving of a linear driver;
[0014] A wind power generation assembly includes a wind power generator arranged on the support base and located on one side of the support, a rotatable transmission shaft arranged in a vertical direction, and a wind power blade assembly arranged on the upper end of the transmission shaft, the wind power generator is connected with the lower end of the transmission shaft, and when the wind power blade assembly rotates under the action of wind, the wind power generator is driven to rotate through the transmission shaft to convert wind energy into electric energy;
[0015] A storage battery is arranged on the support base, and the storage battery is electrically connected with the wind power generator;
[0016] A power supply is arranged in the support, and is electrically connected with the storage battery and the lamp body respectively;
[0017] A control circuit board is arranged between the rear lamp cover and the LED lamp plate, and the LED lamp plate is electrically connected with the power supply through the control circuit board
[0018] A photovoltaic solar energy assembly is fixed on the upper end of the support, and the photovoltaic solar energy assembly is electrically connected with the storage battery;
[0019] A second servo motor is connected with the support to drive the support to rotate.
[0020] Preferably, the green energy powered beacon light further includes:
[0021] A control system is respectively communicatively connected with the first servo motor, the second servo motor, the linear driver, the photovoltaic solar energy assembly, the wind power generation assembly, the storage battery, the power supply, the displacement sensor, and the control circuit board.
[0022] The control system is provided with a lamp body working state regulating module and a solar power generation state regulating module, the control system switches into the lamp body working state regulating module or the solar power generation state regulating module according to the light intensity, and when the light intensity is lower than a preset light intensity threshold, the control system enters the lamp body working state regulating module.
[0023] Preferably, in the green energy powered beacon light, the wind power blade assembly comprises a support plate and a plurality of wind power blades evenly spaced on the support plate, and the support plate is disc-shaped.
[0024] Preferably, in the green energy powered beacon light, the LED lamp plate is disc-shaped, and the light-transmitting plate is also disc-shaped.
[0025] Preferably, in the green energy powered beacon light, the polygonal recess is a hexagonal recess.
[0026] Preferably, in the green energy powered beacon light, the light-transmitting plate is made of glass.
[0027] The present application at least has the following beneficial effects:
[0028] The present application converts the wind power on the sea into electric energy through the wind power generation assembly, provides electric energy for the beacon light, drives the bracket to rotate through the second servo motor, so that the photovoltaic solar assembly and the beacon light can also rotate with the sun. The beacon light is powered by two green energy sources, wind energy and solar energy, which stably ensures the energy supply, and even if one of the energy generation devices is damaged, the beacon light can still be used. At the same time, the beacon light can enter the lamp body working state regulating module or the solar power generation state regulating module according to the change of the light intensity, realizing the continuous power supply and the brightness self-adaptive adjustment of the beacon light. The lens in the lamp body of the present application is provided with a plurality of polygonal recesses for refraction of the light source, which is used to better guide the ships and ensure safe sailing. The lamp body of the present application moves up and down along the vertical direction moving platform through the slide rail. The lamp body can change its irradiation direction by rotating around the sleeve through the fixed cylinder. When the ship approaches or other weather changes, the control system knows the specific position of the beacon light through the displacement sensor, and adjusts the position of the lamp body through the control of the first servo motor and the linear driver, so as to change the irradiation position and direction. The present application has the advantages of significant energy saving and emission reduction and improvement of ship safety, and has wide application prospect and popularization value in the field of intelligent traffic facilities.
[0029] Other advantages, objects, and features of the present application will be apparent to those skilled in the art from the following description, and will be understood by those skilled in the art. BRIEF DESCRIPTION OF DRAWINGS
[0030] Fig. 1 is a structural schematic diagram of a beacon lamp according to an embodiment of the present application.
[0031] Fig. 2 is a structural schematic diagram of a light-transmitting plate according to an embodiment of the present application.
[0032] Fig. 3 is a structural schematic diagram of a position adjusting mechanism according to an embodiment of the present application.
[0033] Fig. 4 is a structural schematic diagram of a beacon lamp powered by green energy according to an embodiment of the present application. DETAILED DESCRIPTION
[0034] The present application will be further described in detail below with reference to the accompanying drawings, so that those skilled in the art can implement the present application according to the description and the drawings.
[0035] It should be understood that the terms such as "have", "contain" and "include" used herein do not exclude the presence or addition of one or more other elements or combinations thereof.
[0036] In the description of the present application, it should be noted that unless otherwise explicitly specified and limited, the terms "mount", "connect", "set" should be understood in a broad sense, for example, can be fixedly connected, set, or can be detachably connected, set, or integrally connected, set. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances. The orientations or positional relationships indicated by the terms "transverse", "longitudinal", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like are based on the orientations or positional relationships shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application.
[0037] As shown in Figs. 1, 2, 3 and 4, the present application provides a beacon lamp powered by green energy, comprising:
[0038] A lamp body 1, comprising an LED light source plate 103 arranged in a vertical direction, a front lamp cover 101 arranged in front of the LED light source plate, a rear lamp cover 104 arranged behind the LED light source base, a light-transmitting plate 102 arranged between the front lamp cover 101 and the LED light source plate 103, and an LED lamp shell 106 connecting the front lamp cover 101, the LED light source plate 103 and the rear lamp cover 104 into a sealed space, wherein the LED light source plate 103 is connected with LED lamp beads, and a plurality of polygonal recesses 1021 are arranged on the side of the light-transmitting plate 102 close to the LED light source plate 103, and the plurality of polygonal recesses 1021 are arranged in at least one column along the width direction or length direction of the light-transmitting plate 102.
[0039] A support mechanism comprising a support base 3 and a support frame 2 fixed at one end of the support base 3, the support frame 2 being arranged in a vertical direction;
[0040] A position adjusting mechanism comprising a sleeve 1010, a fixed cylinder 109 and a vertical direction moving platform 108:
[0041] The sleeve 1010 is sleeved on the outside of the support frame, and a plurality of elastic protrusions arranged in a vertical direction are arranged on the outside of the sleeve 1010 in a circumferential direction;
[0042] The fixed cylinder 109 is sleeved on the outside of the sleeve 1010, and a plurality of grooves are arranged on the inner wall of the fixed cylinder 109, the grooves are matched with the elastic protrusions, the grooves and the elastic protrusions are arranged in a triangular shape, and the fixed cylinder 109 rotates around the sleeve 1010 under the drive of a first servo motor; the first servo motor is arranged on the support frame.
[0043] The vertical direction moving platform 108 comprises a vertical plate arranged in a vertical direction and fixed on the fixed cylinder 109, and a sliding groove arranged on the surface of the vertical plate, both ends of the vertical plate are provided with baffles, the lower end of the LED lamp shell 106 is connected with a sliding rail through an L-shaped connecting frame 107, the sliding rail is arranged in the sliding groove and matched with the sliding groove, and the LED lamp shell moves back and forth along the sliding groove under the drive of a linear driver; the linear driver is arranged inside the vertical plate.
[0044] A wind power generation assembly comprising a wind power generator 6 arranged on the support base 3 and located at one side of the support frame 2, a rotatable transmission shaft 7 arranged in a vertical direction, and a wind power blade assembly 8 arranged at the upper end of the transmission shaft 7, the wind power generator 6 is connected with the lower end of the transmission shaft 7, and when the wind power blade assembly 8 rotates under the action of wind, the wind power generator 6 is driven to rotate through the transmission shaft 7 to convert wind energy into electric energy;
[0045] A storage battery 5 arranged on the support base 3, the storage battery 5 is electrically connected with the wind power generator 6;
[0046] A power supply 4 arranged in the support frame 2 and electrically connected with the storage battery 5 and the lamp body 1 respectively;
[0047] A control circuit board 105 arranged between the rear lamp cover 104 and the LED lamp plate 103, the LED lamp plate 103 is electrically connected with the power supply 4 through the control circuit board 105.
[0048] A photovoltaic solar module 9 is fixed to the upper end of the support 2, and the photovoltaic solar module 9 is electrically connected with the battery 5.
[0049] A second servo motor is connected with the support 2 and drives the support 2 to rotate.
[0050] The wind power generation assembly converts the wind power on the sea into electric energy to provide electric energy for the beacon light, the second servo motor drives the support to rotate, so that the photovoltaic solar module and the beacon light can also rotate with the sun. The wind energy and the solar energy are used as two green energy sources for power supply, and the energy supply is stably ensured, and even if one kind of energy generation device is damaged, the use of the beacon light is not affected. Meanwhile, the light body 1 working state control module or the solar power generation state control module can be entered according to the change of the light intensity, and the continuous power supply and the brightness adaptive adjustment of the beacon light are realized. The lens in the light body is provided with a plurality of polygonal recesses, and the light source is refracted, so as to better guide the ships and safely travel. The present application has the advantages of significant energy-saving and emission-reducing effect and improved safety of ships, and has wide application prospect and popularization value in the field of intelligent traffic facilities.
[0051] In the above scheme, as a preferred, further comprising:
[0052] A control system is in communication connection with the second servo motor, the photovoltaic solar module 9, the wind power generation assembly, the battery 5, the power supply 4 and the control circuit board 105 respectively.
[0053] The control system is provided with a light body 1 working state control module and a solar power generation state control module, and the control system switches into the light body 1 working state control module or the solar power generation state control module according to the light intensity. When the light intensity is lower than a preset light intensity threshold, the control system enters the light body 1 working state control module, the control system obtains the light intensity information through the photosensitive sensor connected therewith, and the photosensitive sensor is arranged on one side of the photovoltaic solar module 9. The second servo motor drives the support 2 to rotate, so that the photovoltaic solar module 9 and the beacon light can also rotate with the sun, and the light body 1 working state control module or the solar power generation state control module can be entered according to the change of the light intensity, so that the continuous power supply and the brightness adaptive adjustment of the beacon light are realized. The light body moves up and down along the vertical direction moving platform 108 through the sliding rail of the LED lamp shell. The light body can change the irradiation direction by rotating around the sleeve 1010 through the fixing cylinder 109
[0054] When the ship approaches or there is other weather changes, the control system learns the specific position of the leading light through the displacement sensor, and the position of the light body can be adjusted by controlling the first servo motor and the linear driver, so as to change the irradiation position and direction.
[0055] In one embodiment of the present application, preferably, the wind power blade assembly 8 comprises a support plate and a plurality of wind power blades uniformly spaced on the support plate, and the support plate is disc-shaped.
[0056] In one embodiment of the present application, preferably, the LED lamp plate 103 is disc-shaped, and the light-transmitting plate 102 is also disc-shaped.
[0057] In one embodiment of the present application, preferably, the polygonal recess 1021 is a hexagonal recess.
[0058] In one embodiment of the present application, preferably, the light-transmitting plate 102 is made of glass.
[0059] In order for those skilled in the art to better understand the technical solutions of the present application, the following examples are provided for illustration:
[0060] A green energy-powered leading light, comprising:
[0061] A light body 1, comprising an LED lamp plate 103 arranged in a vertical direction, a front lamp cover 101 arranged in front of the LED light source lamp plate, a rear lamp cover 104 arranged behind the LED light source base, a light-transmitting plate 102 arranged between the front lamp cover 101 and the LED lamp plate 103, and an LED lamp shell 106 connecting the front lamp cover 101, the LED lamp plate 103 and the rear lamp cover 104 into a sealed space, and LED lamp beads connected to the LED lamp plate 103, wherein the side of the light-transmitting plate 102 close to the LED lamp plate 103 is provided with a plurality of polygonal recesses 1021, and the plurality of polygonal recesses 1021 are arranged in at least one column along the width direction or length direction of the light-transmitting plate 102; the lower end of the LED lamp shell 106 is provided with a position sensor.
[0062] A support mechanism, comprising a support base 3 and a support bracket 2 fixed at one end of the support base 3, and the support bracket 2 is arranged in a vertical direction;
[0063] A position adjusting mechanism, comprising:
[0064] A sleeve 1010 sleeved on the outer side of the support bracket, and a plurality of vertically arranged elastic protrusions are arranged on the outer side of the sleeve 1010 in the circumferential direction;
[0065] A fixing cylinder 109 is sleeved outside the sleeve 1010, and a plurality of grooves are arranged on the inner wall of the fixing cylinder 109, which are matched with the elastic protrusions, and the grooves and the elastic protrusions are triangularly arranged; the fixing cylinder 109 rotates around the sleeve 1010 under the driving of a first servo motor;
[0066] A vertical direction moving platform 108 includes a vertical plate arranged in the vertical direction and fixed on the fixing cylinder 109 and a sliding groove arranged on the surface of the vertical plate, and the two ends of the vertical plate are both provided with a baffle; the lower end of the LED lamp shell is connected with a sliding rail through an L-shaped connecting frame 107, the sliding rail is arranged in the sliding groove and matched with the sliding groove, and the LED lamp shell reciprocally moves along the sliding groove under the driving of a linear driver; the lamp body moves up and down along the vertical direction moving platform 108 through the sliding rail of the LED lamp shell; and the lamp body can change the irradiation direction by rotating the fixing cylinder 109 around the sleeve 1010.
[0067] The wind power generation assembly includes a wind power generator 6 arranged on the support base 3 and located on one side of the support 2, a rotatable transmission shaft 7 arranged in the vertical direction, and a wind power blade assembly 8 arranged on the upper end of the transmission shaft 7; the wind power generator 6 is connected with the lower end of the transmission shaft 7, and when the wind power blade assembly 8 rotates under the action of wind, the wind power generator 6 is driven to rotate through the transmission shaft 7 to convert wind energy into electric energy.
[0068] A storage battery 5 is arranged on the support base 3, and the storage battery 5 is electrically connected with the wind power generator 6.
[0069] A power supply 4 is arranged in the support 2 and electrically connected with the storage battery 5 and the lamp body 1 respectively.
[0070] A control circuit board 105 is arranged between the rear lamp cover 104 and the LED lamp plate 103, and the LED lamp plate 103 is electrically connected with the power supply 4 through the control circuit board 105.
[0071] A photovoltaic solar energy assembly 9 is fixed on the upper end of the support 2, and the photovoltaic solar energy assembly 9 is electrically connected with the storage battery 5.
[0072] A second servo motor is connected with the support 2 and drives the support 2 to rotate.
[0073] A control system is in communication connection with the first servo motor, the second servo motor, the linear driver, the photovoltaic solar module 9, the wind power generation module, the battery 5, the power supply 4, the control circuit board 105, the displacement sensor, and each of them is in communication connection respectively;
[0074] The control system is provided with a lamp body 1 working state control module and a solar power generation state control module, and the control system switches into the lamp body 1 working state control module or the solar power generation state control module according to the light intensity; when the light intensity is lower than a preset light intensity threshold, the control system enters the lamp body 1 working state control module, and the control system obtains the light intensity information through the photosensitive sensor connected thereto; the photosensitive sensor is arranged on one side of the photovoltaic solar module 9. The second servo motor drives the support 2 to rotate, so that the photovoltaic solar module 9 and the leading light can also rotate with the sun, and the lamp body 1 working state control module or the solar power generation state control module can be entered according to the change of the light intensity, so that the continuous power supply and the brightness adaptive adjustment of the leading light are realized.
[0075] When the ship approaches or there is other weather change, the control system obtains the specific position of the leading light through the displacement sensor, and the position of the lamp body can be adjusted through the control of the first servo motor and the linear driver, so that the irradiation position and direction thereof are changed.
[0076] The wind power blade assembly 8 comprises a support plate and a plurality of wind power blades uniformly and spacedly arranged on the support plate, and the support plate is in a disc shape.
[0077] The LED lamp plate 103 is in a disc shape, and the light-transmitting plate 102 is also in a disc shape.
[0078] The polygonal recess 1021 is a hexagonal recess, and the light-transmitting plate 102 is made of glass.
[0079] The wind power generation module converts the wind power on the sea into electric energy to provide electric energy for the leading light, the second servo motor drives the support 2 to rotate, so that the photovoltaic solar module 9 and the leading light can also rotate with the sun, the lamp body 1 working state control module or the solar power generation state control module can be entered according to the change of the light intensity, and the continuous power supply and the brightness adaptive adjustment of the leading light are realized. Green energy is used for power supply, energy consumption and carbon emission are effectively reduced, and the environmental protection requirement is met. The lens in the lamp body 1 is provided with a plurality of polygonal recesses 1021 to refract the light source, so as to better guide the ships and enable the ships to travel safely. The present application has the advantages of significant energy-saving and emission-reducing effect and safety improvement of ships, and has wide application prospect and popularization value in the field of intelligent traffic facilities.
[0080] The number of devices and processing stages described herein are used to simplify the description of the application. Applications, modifications and variations of the application will be apparent to those skilled in the art without departing from the general concept of the application.
[0081] While the embodiments of the application have been disclosed in connection with the specification and examples herein, it should be understood that they are not limited to the specific details described therein. Rather, there is implied in this description certain pos sibilities of modifications and alterations of the application as can be readily selected by one of ordinary skill in the art, in view of this disclosure. Further, it is intended to cover the application falling within the scope of the claims and their equivalents.
Claims
1. A green energy powered beacon light, characterized in that, The lamp body comprises an LED light plate arranged in a vertical direction, a front lamp cover arranged in front of the LED light source lamp plate, a rear lamp cover arranged behind the LED light source base, a light-transmitting plate arranged between the front lamp cover and the LED light plate, and an LED lamp shell connecting the front lamp cover, LED light plate and rear lamp cover into a sealed space, and the LED light plate is connected with LED lamp beads, wherein a plurality of polygonal recesses are arranged on the side of the light-transmitting plate close to the LED light plate, and the polygonal recesses are arranged into at least one column along the width direction or length direction of the light-transmitting plate. The support mechanism comprises a support base and a support fixed at one end of the support base, and the support is arranged in a vertical direction. The position adjusting mechanism comprises a sleeve, a fixed cylinder and a vertical direction moving platform: The sleeve is sleeved on the outside of the support, and a plurality of vertically arranged elastic protrusions are arranged on the outside of the sleeve in the circumferential direction; The fixed cylinder is slidably sleeved on the outside of the sleeve, and a plurality of grooves are arranged on the inner wall of the fixed cylinder, which are matched with the elastic protrusions, and the fixed cylinder rotates around the sleeve under the drive of the first servo motor; The vertical direction moving platform comprises a vertical plate fixed on the fixed cylinder arranged in a vertical direction and a sliding groove arranged on the surface of the vertical plate, and the both ends of the vertical plate are provided with baffles, wherein the lower end of the LED lamp shell is connected with a sliding rail through an L-shaped connecting frame, the sliding rail is arranged in the sliding groove and matched with the sliding groove, and the LED lamp shell reciprocally moves along the sliding groove under the drive of the linear driver; The wind power generation assembly comprises a wind turbine arranged on the support base and located on one side of the support, a rotatable transmission shaft arranged in a vertical direction and a wind power blade assembly arranged on the upper end of the transmission shaft, the wind turbine is connected with the lower end of the transmission shaft, and when the wind power blade assembly rotates under the action of wind, the wind turbine rotates through the transmission shaft to convert wind energy into electric energy; The battery is arranged on the support base and electrically connected with the wind turbine; The power supply is arranged in the support and electrically connected with the battery and the lamp body respectively; The control circuit board is arranged between the rear lamp cover and the LED light plate, and the LED light plate is electrically connected with the power supply through the control circuit board; The photovoltaic solar energy assembly is fixed on the upper end of the support, and the photovoltaic solar energy assembly is electrically connected with the battery The second servo motor is connected with the support to drive the support to rotate. Further comprising: The control system is respectively communicated with the first servo motor, the second servo motor, the linear driver, the photovoltaic solar energy assembly, the wind power generation assembly, the battery, the power supply, the displacement sensor and the control circuit board.
2. The green energy powered beacon light as claimed in claim 1, wherein, The control system is provided with a lamp body working state regulating module and a solar power generation state regulating module.
3. The green energy powered beacon light as claimed in claim 1, wherein, The wind power blade assembly comprises a support plate and a plurality of wind power blades uniformly and spacedly arranged on the support plate.
4. The green energy powered beacon light as claimed in claim 1, wherein, The LED lamp plate is in a disc shape, and the light-transmitting plate is also in a disc shape.
5. The green energy powered beacon light as claimed in claim 1, wherein, The polygonal recess is a hexagonal recess.
6. The green energy powered beacon light as claimed in claim 1, wherein, The light-transmitting plate is made of glass.
Citation Information
Patent Citations
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