Energy storage outdoor emergency lighting lamp based on solar energy
By using wind detection sensors and servo motors in outdoor emergency lighting, the rotating frame drives the lamp shell and lamp to rotate and reduce the windward area and reduce the height, the problem of lamp dumping caused by strong wind is solved, and the stability and safety of lighting equipment are achieved.
Patent Information
- Application Number
- CN202510526502.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-06-17
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing outdoor emergency lighting lamps are easily blown down or the lamps fall off in strong winds, resulting in lighting interruption.
A solar-based energy-storage outdoor emergency lighting lamp is designed, using wind detection sensors and servo motors to cooperate. The rotating frame drives the lamp shell and lamp to rotate and reduce the windward area, and reduces the height of the lamp through a telescopic mechanism to avoid tilting.
It effectively avoids the overturn of lamps and lighting interruptions caused by strong winds, ensuring the stability and safety of lighting equipment.
Smart Images

Figure CN120160101A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of lighting fixtures, and particularly to a solar energy-based energy storage outdoor emergency lighting lamp. Background Art
[0002] At a construction site, in order to facilitate the night patrol or night construction of construction workers, outdoor emergency lighting lamps are generally set up in the site. The outdoor emergency lighting lamps are solar energy storage-based. The outdoor emergency lighting lamps for construction sites are generally liftable. When in use, the lamps are lifted to a certain height. However, when strong winds occur, the excessive wind force is likely to blow the lamps, resulting in the lamps falling or the entire lighting lamp being blown down.
[0003] Therefore, there is a need to develop a solar energy-based energy storage outdoor emergency lighting lamp to overcome the above disadvantages. Summary of the Invention
[0004] A solar energy-based energy storage outdoor emergency lighting lamp includes a vehicle body. A telescopic mechanism is provided on the vehicle body. Two rotating frames are arranged at the top of the telescopic mechanism. Two lamp housings are arranged on the rotating frames. Lamps are arranged on the lamp housings. The lamps store electricity through photovoltaic panels, and the photovoltaic panels are arranged on the vehicle body. A servo motor is connected to the lower part of one of the rotating frames, and the servo motor is connected to the telescopic mechanism. Gears are arranged on one side of the two rotating frames away from the telescopic mechanism.
[0005] More preferably, a wind detection sensor is further included. The wind detection sensor is arranged at the top of the telescopic mechanism. The wind detection sensor and the servo motor are electrically connected through a control module.
[0006] More preferably, symmetrically arranged telescopic rods are further included. The telescopic rods are arranged inside the lamp housings. The telescopic rods are fixedly connected to the lamp housings. A first spring is wound around the telescopic rods. The first spring is fixed between the lamp and the lamp housing.
[0007] More preferably, sliders are further included. Two sliders are arranged inside the lamp housings. The lamp housings are slidably connected to the sliders. A first connecting rod and a second connecting rod are arranged on the sliders. The first connecting rod and the second connecting rod are respectively rotatably connected to the sliders. The first connecting rod and the second connecting rod are rotatably connected through a rotating shaft. The first connecting rod and the second connecting rod form a quadrilateral. A moving plate is arranged on the rotating shaft on the side away from the lamp. The moving plate is rotatably connected to the lamp. The moving plate is slidably connected to the lamp housing. A rolling ball is arranged on the rotating shaft on the side away from the lamp. A pulling frame is arranged on the rotating shaft on the side close to the lamp. The pulling frame is fixedly connected to the lamp.
[0008] More preferably, it further includes a telescopic plate which is arranged on the top of the telescopic mechanism. The telescopic plate is fixedly connected to the top of the telescopic mechanism and is located between the two rotating frames. One of the link three is arranged on the top of the gear, and the gear is fixedly connected to the link three. The other link three is fixedly connected to the bottom of the rotating frame. A link four is arranged at the end of the link three, and the link four is rotatably connected to the link three. The side of the link four away from the link three is rotatably connected to the telescopic part of the telescopic plate.
[0009] More preferably, it further includes a gravity block which is arranged on the vehicle body and is fixedly connected to the vehicle body.
[0010] More preferably, it further includes a socket which is arranged on the lamp housing. A second circuit is arranged between the socket and the photovoltaic panel, and the second circuit is fixedly connected to the socket. A plug is arranged on the socket. A first circuit is arranged on the side of the plug close to the lamp, and the first circuit is fixedly connected to the plug and the lamp.
[0011] More preferably, it further includes a connecting rod which is arranged on the top of the plug and is fixedly connected to the plug. The top of the connecting rod is fixedly connected to the moving plate.
[0012] More preferably, it further includes a clamping component which includes a clamping head. The end of the clamping head is an arc structure. The clamping head is slidably connected to the socket. A second spring is arranged between the clamping head and the socket. A chute is opened on the side of the lamp housing close to the socket, and the chute is slidably connected to the socket. A clamping groove is opened on the side of the socket close to the chute, and the clamping groove is in clamping cooperation with the clamping head.
[0013] More preferably, it further includes a covering cover which is arranged above the lamp. The covering cover is provided with a connecting piece which is fixedly connected to the covering cover. The side of the connecting piece away from the covering cover is fixedly connected to the fixed part of the telescopic plate. An electric slide rail is arranged on the vehicle body. The electric slide rail and the wind detection sensor are electrically connected through a control module. An annular telescopic connecting rod is arranged on the electric slide rail. The telescopic rod of the annular telescopic connecting rod is slidably connected to the electric slide rail. A folding curtain is arranged on the annular telescopic connecting rod.
[0014] The beneficial effects of the present invention are as follows: 1. The present invention detects that the wind force exceeds the preset rated value through the wind detection sensor, and at the same time controls the servo motor and the telescopic mechanism to work, so that the rotating frame drives the lamp housing and the lamp to rotate to reduce the windward area, and at the same time drives the lamp housing and the lamp to lower the height where they are located, so as to overcome the problem of the lamp tipping over.
[0015] 2. During the rotation of the rotating frame of the present invention, the link one and the link two will swing, so that the pulling frame pulls the lamp to move into the lamp housing, thereby protecting the lamp.
[0016] 3. During the process of the lamp being retracted into the lamp housing in the present invention, the moving plate moves towards the side of the lamp, driving the connecting rod to move towards the side of the lamp, and the connecting rod drives the plug to move away from the socket, so that the plug and the socket are automatically disconnected, the power is automatically cut off, and the purpose of protecting the lamp is achieved. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a three-dimensional structural schematic diagram of the present invention.
[0018] Figure 2 It is a partial three-dimensional structural sectional view of the present invention.
[0019] Figure 3 It is a partial three-dimensional structural schematic diagram of the present invention.
[0020] Figure 4 It is a three-dimensional structural schematic diagram of the socket, the card joint and the spring two of the present invention.
[0021] Figure 5 It is a three-dimensional structural schematic diagram of the electric slide rail, the annular telescopic connecting rod and the folding curtain of the present invention.
[0022] The labels in the figure are: 1: vehicle body, 101: gravity block, 2: telescopic mechanism, 3: rotating frame, 4: lamp housing, 5: lamp, 6: servo motor, 7: gear, 8: wind detection sensor, 9: telescopic rod, 10: spring one, 11: slider, 12: connecting rod one, 13: connecting rod two, 14: moving plate, 15: rolling ball, 16: pulling frame, 17: telescopic plate, 18: connecting rod three, 19: connecting rod four, 20: circuit one, 21: plug, 22: socket, 23: circuit two, 24: connecting rod, 25: card joint, 26: spring two, 27: sliding groove, 28: clamping groove, 29: connecting piece, 30: covering cover, 31: electric slide rail, 32: annular telescopic connecting rod, 33: folding curtain. DETAILED DESCRIPTION OF THE INVENTION
[0023] The present invention will be described in detail below with reference to the accompanying drawings and specific embodiments, but it is not intended to limit the present invention.
[0024] A solar-based energy storage outdoor emergency lighting lamp, as Figure 1 shown, includes a vehicle body 1, a telescopic mechanism 2 is provided on the vehicle body 1, the telescopic mechanism 2 is controlled by electricity, two rotating frames 3 are provided at the top of the telescopic mechanism 2, the lifting of the rotating frames 3 is controlled by the telescopic mechanism 2, two lamp housings 4 are provided on the rotating frames 3, the lamp housings 4 are provided on the rotating frames 3, and a lamp 5 is provided on the lamp housing 4, and the lamp 5 is slidably connected in the lamp housing 4.
[0025] As described in the background art, when the lighting fixture 5 is used for high-altitude lighting, if there is a strong wind, it is easy to blow the lighting fixture 5 located at a high altitude and cause it to shake, and there may be a situation where it is blown off or toppled. Therefore, further regularization is required.
[0026] To solve the problem that the lighting fixture 5 located at a high altitude may be toppled due to the blowing of the wind, the following technical solution is adopted in this embodiment: A servo motor 6 is connected to the lower part of one of the rotating frames 3, and the servo motor 6 is connected to the telescopic mechanism 2. The rotation of the rotating frame 3 is controlled by the servo motor 6. Originally, the two rotating frames 3 are in a flat plane, and the lighting fixture 5 is arranged on the rotating frame 3, and the lighting fixture 5 is also in a flat plane. When the wind force is relatively strong, the windward area of the lighting fixture 5 is relatively large. Therefore, when the wind blows on the lighting fixture 5, it may blow down the lighting fixture 5. Therefore, when the wind force is very large, in order to prevent the wind from blowing down the lighting fixture 5, the servo motor 6 is used to rotate the rotating frame 3 by 90 degrees, so that the two rotating frames 3 are combined to reduce the windward area, and at the same time, the lighting fixture 5 is also driven to rotate. Gears 7 are arranged on the side of the two rotating frames 3 away from the telescopic mechanism 2, and the two gears 7 are meshed. When one of the rotating frames 3 rotates, the other rotating frame 3 is driven to rotate synchronously in the opposite direction through the gear 7.
[0027] As Figure 1 shown, in order to realize the real-time monitoring of the wind force, a wind force detection sensor 8 is installed on the top of the telescopic mechanism 2, and the sensor is electrically connected to the servo motor 6 through a control module, so as to form an automatic response system.
[0028] The specific working process is as follows:
[0029] First, the wind force detection sensor 8 continuously monitors the wind force condition in real time.
[0030] Second, if the sensor detects that the wind force exceeds the preset rated value and this state continuously lasts for about 5 to 10 minutes, a signal will be sent to the system.
[0031] Third, after receiving the signal, the servo motor 6 is started to drive the rotating frame 3 to rotate, so that the lighting fixture 5 adjusts its angle to reduce the windward area, thereby effectively reducing the risk of the lighting fixture 5 being blown down by strong wind.
[0032] It should be noted that only when the wind force continuously exceeds the rated value for a period of time (about 5 - 10 minutes) will the action of the servo motor 6 be triggered. The main reason for this design is that in the actual environment, the wind force often fluctuates, sometimes the strong wind will quickly subside after a short period of time. In this case, there is no need to adjust the lighting fixture 5. Therefore, the continuous detection mechanism can avoid unnecessary frequent adjustments and ensure that the lighting equipment maintains a stable and efficient working state for most of the time.
[0033] Since the lamp 5 is located at a high place, it is easily blown down by the wind. Therefore, when the wind detection sensor 8 detects that the wind force exceeds the preset rated value, not only the rotating frame 3 is triggered to rotate, but also the telescopic mechanism 2 performs a contraction movement, driving the rotating frame 3, the lamp housing 4 and the lamp 5 to descend to the lowest state, which can further prevent the lamp 5 from tipping over.
[0034] When the lamp 5 is working, it is in a state of extending out of the lamp housing 4, aiming to expand the lighting range. When the wind force is relatively large, in order to protect the lamp 5, the lamp 5 needs to be retracted into the lamp housing 4. Therefore, the following solution is proposed:
[0035] As Figure 2 shown, symmetrically arranged telescopic rods 9 are provided inside the lamp housing 4. The telescopic rods 9 are fixedly connected to the lamp housing 4. A first spring 10 is wound around the telescopic rods 9. The first spring 10 is fixed between the lamp 5 and the lamp housing 4. While the rotating frame 3 rotates, the lamp 5 is driven to contract into the lamp housing 4 through a link structure, and the telescopic rods 9 and the first spring 10 are compressed. Therefore, the lamp 5 can be protected. During the reset process of the rotating frame 3, under the action of the telescopic rods 9 and the first spring 10, the lamp 5 moves outwards.
[0036] The link structure includes sliders 11. The two sliders 11 are arranged inside the lamp housing 4. The lamp housing 4 is slidably connected to the sliders 11. A first link 12 and a second link 13 are provided on the sliders 11. The first link 12 and the second link 13 are respectively rotatably connected to the sliders 11. The first link 12 and the second link 13 are rotatably connected to each other through a rotating shaft. The first link 12 and the second link 13 form a quadrilateral. A moving plate 14 is provided on the rotating shaft on the side away from the lamp 5. The moving plate 14 is rotatably connected to the lamp 5. The moving plate 14 is slidably connected to the lamp housing 4. A rolling ball 15 is provided on the rotating shaft on the side away from the lamp 5. A pulling frame 16 is provided on the rotating shaft on the side close to the lamp 5. The pulling frame 16 is fixedly connected to the lamp 5.
[0037] When the rotating frames 3 rotate relative to each other and drive the lamp 5, the first link 12 and the second link 13 to rotate together, a contact surface is provided in the middle of the top of the telescopic mechanism 2. The contact surface provides a surface for the roller to abut against. Therefore, when the roller moves along with the first link 12 and the second link 13 and contacts the contact surface, the roller will be pressed, causing the first link 12 and the second link 13 to rotate and drive the sliders 11 to move outwards, thereby driving the pulling frame 16 to slide along the inside of the lamp housing 4. The pulling frame 16 drives the lamp 5 to move and retract into the lamp housing 4, which can protect the lamp 5. When the rotating frame 3 rotates and opens, the rolling ball 15 slowly moves away from the contact surface, and the rolling ball 15 slowly stops being pressed. Then, under the action of the first spring 10, the lamp 5 moves back to its original position, causing the pulling frame 16 to move back to its original position and drive the first link 12, the second link 13, and the sliders 11 to reset.
[0038] AsFigure 3 As shown, according to the above description, the contact surface needs to be a straight surface and is arranged on the upper part of the telescopic mechanism 2. However, its windward area is relatively large. Therefore, in order to reduce its windward area, the contact surface is set as a telescopic surface, that is, the telescopic plate 17 arranged on the top of the telescopic mechanism 2. The telescopic plate 17 is fixedly connected to the top of the telescopic mechanism 2. The telescopic plate 17 is located between the two rotating frames 3. During the lighting of the lamp 5, the telescopic plate 17 is in a contracted state. Therefore, the windward surface of the telescopic plate 17 is reduced, and it can avoid shaking under the influence of wind force. While the rotating frame 3 rotates, the telescopic plate 17 will automatically extend through a linkage assembly. The purpose is to be able to contact the roller and provide a surface for the roller to lean against. While the rotating frame 3 rotates and unfolds, the telescopic plate 17 will be contracted and reset through the linkage assembly at the same time.
[0039] As Figure 3 shown, the linkage assembly includes the third connecting rod 18. One of the third connecting rods 18 is arranged on the top of the gear 7, and the gear 7 is fixedly connected to the third connecting rod 18. The other third connecting rod 18 is fixedly connected to the bottom of the rotating frame 3. The end of the third connecting rod 18 is provided with the fourth connecting rod 19. The fourth connecting rod 19 is rotatably connected to the third connecting rod 18. The side of the fourth connecting rod 19 away from the third connecting rod 18 is rotatably connected to the telescopic part of the telescopic plate 17. By setting the third connecting rod 18 and the fourth connecting rod 19, when the gear 7 rotates to drive the rotating frame 3 to rotate, it will drive the third connecting rod 18 to rotate. The third connecting rod 18 will drive the fourth connecting rod 19 to rotate. The fourth connecting rod 19 will automatically push out the telescopic part of the telescopic plate 17, so that the telescopic plate 17 automatically unfolds. Therefore, the telescopic plate 17 can be unfolded while the rotating frame 3 rotates, and the lamp 5 can also be automatically received into the lamp housing 4 for protection. While when the gear 7 drives the rotating frame 3 to rotate in the reverse direction to open, it will drive the telescopic plate 17 to automatically contract through the third connecting rod 18 and the fourth connecting rod 19 at the same time.
[0040] Since the lamp 5 is suspended at a high place, and components such as the rotating frame 3 and the lamp housing 4 are all located at a high place, when pushed by the wind force, the vehicle body 1 is prone to unstable center of gravity and tipping over. Therefore, a gravity block 101 is arranged on the vehicle body 1. The purpose is to reinforce the vehicle body 1 and thus enhance the resistance to wind force.
[0041] The lamp 5 may be damaged after long-term use. Therefore, in this solution, the lamp housing 4 and the vehicle body 1 are set to be detachable, which facilitates the removal of the lamp housing 4 and the replacement of the lamp 5. However, the vehicle body 1 and the lamp housing 4 are set as a split type, and the photovoltaic panel is set on the vehicle body 1. In this way, the lamp 5 and the photovoltaic panel need to be connected by a circuit to be powered on. Therefore, a socket 22 is set on the lamp housing 4. The socket 22 can be detached from the lamp housing 4. A second circuit 23 is set between the socket 22 and the photovoltaic panel. The second circuit 23 is fixedly connected to the socket 22. A plug 21 is set on the socket 22. A first circuit 20 is provided on the side of the plug 21 close to the lamp 5. The first circuit 20 is fixedly connected to the plug 21. The first circuit 20 is fixedly connected to the lamp 5. Through the snap-fit between the plug 21 and the socket 22, the lamp 5 can be charged by the photovoltaic panel.
[0042] However, when the wind detection sensor 8 detects that the wind force exceeds the preset rated value, in order to avoid the circuit from burning out and further protect the lamp 5, the power supply of the lamp 5 needs to be cut off. Therefore, a connecting rod 24 is set on the top of the plug 21. The connecting rod 24 is fixedly connected to the plug 21. The top of the connecting rod 24 is fixedly connected to the moving plate 14. The working principle is as follows:
[0043] When the rolling ball 15 is pressed and moves towards the position of the lamp 5, the rolling ball 15 will drive its upper rotating shaft and the moving plate 14 to move towards the side of the lamp 5. The moving plate 14 will drive the connecting rod 24 to move towards the side of the lamp 5. The connecting rod 24 will drive the plug 21 to move towards the side away from the socket 22. In this way, the plug 21 and the socket 22 are automatically disconnected. Therefore, when the wind detection sensor 8 detects that the wind force exceeds the preset rated value, in order to avoid damage to the lamp 5, the lamp 5 can be automatically retracted, and the plug 21 and the socket 22 can be automatically disconnected, so that the power is automatically disconnected, achieving the purpose of protecting the lamp 5.
[0044] According to the previous description, the lamp housing 4 can be detached from the rotating frame 3. Therefore, the socket 22 is only snap-fitted on the lamp housing 4. Therefore, it is fixed on the socket 22 through a snap-fit component, so that the socket 22 is snap-fitted on the lamp housing 4. The snap-fit component includes a snap head 25. The end of the snap head 25 is an arc structure. The snap head 25 is slidably connected to the socket 22. A second spring 26 is provided between the snap head 25 and the socket 22. A chute 27 is opened on the side of the lamp housing 4 close to the socket 22. The chute 27 is slidably connected to the socket 22. A card slot 28 is opened on the side of the socket 22 close to the chute 27. The card slot 28 is snap-fitted with the snap head 25. The working principle is as follows:
[0045] When the socket 22 is inserted into the sliding groove 27, it will drive the clamping joint 25 to move together. When the clamping joint 25 contacts the clamping groove 28, the spring two 26, which is in the initial compressed state, drives the clamping joint 25 to move towards the position of the clamping groove 28, so that the clamping joint 25 is clamped into the clamping groove 28. In this way, the socket 22 can be clamped to the lamp housing 4, thus achieving the purpose of fixing the socket 22 firmly. If it is necessary to remove the socket 22 from the lamp housing 4, then manually pull out the socket 22. Since the end of the clamping joint 25 is an arc structure, the clamping joint 25 can be taken out from the lamp housing 4, and the socket 22 can also be pulled out.
[0046] When it rains, rainwater may seep into the lamp 5, which is likely to cause the lamp 5 to burn out. Therefore, a covering hood 30 is provided above the lamp 5. The covering hood 30 is used to cover all the lamps 5. The covering hood 30 is provided with a connecting piece 29, and the connecting piece 29 is fixedly connected to the covering hood 30. The side of the connecting piece 29 away from the covering hood 30 is fixedly connected to the fixed part of the telescopic plate 17. Therefore, the covering hood 30 is supported by the connecting piece 29.
[0047] Although the rotating frame 3 is lowered to reduce the height, after the rotating frame 3 is folded, there will still be a windward area, and the windward area is a plane. Generally, a plane cannot effectively guide the wind flow around its surface, and the wind will directly impact the plane and generate a large pressure. For this reason, the following solution is proposed in this scheme:
[0048] An electric slide rail 31 is provided on the vehicle body 1. The electric slide rail 31 and the wind detection sensor 8 are electrically connected through a control module. An annular telescopic connecting rod 32 is provided on the electric slide rail 31. The telescopic rod 9 of the annular telescopic connecting rod 32 is slidably connected to the electric slide rail 31, and a folding curtain 33 is provided on the annular telescopic connecting rod 32.
[0049] As Figure 5 shown, after the wind detection sensor 8 triggers the servo motor 6, the rotating frame 3 descends to the lowest position and then drives the covering hood 30 to descend. The wind detection sensor 8 will send an electrical signal to the electric slide rail 31 after a delay of ten seconds. The rotating frame 3 has ten seconds to descend. The electric slide rail 31 will control the telescopic rod 9 of the annular telescopic connecting rod 32 to slide along the electric slide rail 31, so that the annular telescopic connecting rod 32 automatically unfolds (from the Figure 1 state to the Figure 5 state). The folding curtain 33 is pulled and unfolded by the annular telescopic connecting rod 32, and the covering hood 30 is just above the folding curtain 33. The folding curtain 33 and the covering hood 30 form a spherical shape, and the spherical shape covers the rotating frame 3 and its upper components for protection. The spherical shape has the characteristic of evenly distributing pressure, which can disperse the wind force to the entire surface, avoiding excessive pressure on a local area. Therefore, it can reduce the impact of the wind force on the lamp 5. When the rotating frame 3 is raised, the electric slide rail 31 will control the telescopic rod 9 of the annular telescopic connecting rod 32 to slide back to its original position, and the annular telescopic connecting rod 32 will automatically contract and drive the folding curtain 33 to open.
[0050] The above embodiments are only used to illustrate the technical concept and features of the present invention. The purpose is to enable those skilled in the art to understand the content of the present invention and implement it accordingly, and it cannot be used to limit the protection scope of the present invention. Any equivalent changes or modifications made according to the spirit of the present invention should be covered within the protection scope of the present invention.
Claims
1. A solar energy storage outdoor emergency lighting lamp, comprising a vehicle body (1), a telescopic mechanism (2) being provided on the vehicle body (1), two rotating frames (3) being provided on the top of the telescopic mechanism (2), two lamp housings (4) being provided on the rotating frames (3), a lamp (5) being provided on the lamp housings (4), the lamp (5) storing electricity through a photovoltaic panel, and the photovoltaic panel being provided on the vehicle body (1), characterized in that: A servo motor (6) is connected to the lower part of one of the rotating frames (3), and the servo motor (6) is connected to the telescopic mechanism (2). A gear (7) is arranged on the side of the two rotating frames (3) away from the telescopic mechanism (2).
2. A solar energy storage outdoor emergency lighting lamp according to claim 1, characterized in that: It also includes a wind force detection sensor (8), which is arranged on the top of the telescopic mechanism (2), and the wind force detection sensor (8) and the servo motor (6) are electrically connected via a control module.
3. A solar energy storage outdoor emergency lighting lamp according to claim 2, characterized in that: The invention also comprises a symmetrically arranged telescopic rod (9), the telescopic rod (9) being arranged inside the lamp housing (4), the telescopic rod (9) and the lamp housing (4) being fixedly connected, the telescopic rod (9) being wound with a spring (10), and the spring (10) being fixed between the lamp (5) and the lamp housing (4).
4. A solar energy storage outdoor emergency lighting lamp according to claim 3, characterized in that: The invention also comprises a slider (11), wherein the two sliders (11) are arranged in the lamp housing (4), the lamp housing (4) and the slider (11) are connected in a sliding manner, the slider (11) is provided with a connecting rod (12) and a connecting rod (13), the connecting rod (12) and the connecting rod (13) are respectively connected in a rotational manner to the slider (11), the connecting rod (12) and the connecting rod (13) are connected in a rotational manner via a rotating shaft, the connecting rod (12) and the connecting rod (13) form a quadrilateral, a moving plate (14) is provided on the rotating shaft at a side away from the lamp (5), the moving plate (14) and the lamp (5) are connected in a rotational manner, the moving plate (14) and the lamp housing (4) are connected in a sliding manner, a rolling ball (15) is provided on the rotating shaft at a side away from the lamp (5), a pulling frame (16) is provided on the rotating shaft at a side close to the lamp (5), and the pulling frame (16) is fixedly connected to the lamp (5).
5. A solar energy storage outdoor emergency lighting lamp according to claim 4, characterized in that: The invention also comprises a telescopic plate (17), the telescopic plate (17) being arranged on the top of the telescopic mechanism (2), the telescopic plate (17) being fixedly connected to the top of the telescopic mechanism (2), the telescopic plate (17) being located between the two rotating frames (3), one connecting rod (18) being arranged on the top of the gear (7), the gear (7) being fixedly connected to the connecting rod (18), the other connecting rod (18) being fixedly connected to the bottom of the rotating frame (3), a connecting rod (19) being arranged at the end of the connecting rod (18), the connecting rod (19) being rotatably connected to the connecting rod (18), and the connecting rod (19) being rotatably connected to the telescopic portion of the telescopic plate (17) on the side away from the connecting rod (18).
6. A solar energy storage outdoor emergency lighting lamp according to claim 5, characterized in that: It also includes a gravity block (101), which is arranged on the vehicle body (1), and the gravity block (101) and the vehicle body (1) are fixedly connected.
7. A solar energy storage outdoor emergency lighting lamp according to claim 6, characterized in that: The lamp also comprises a socket (22), the socket (22) being arranged on the lamp housing (4), a second circuit (23) being arranged between the socket (22) and the photovoltaic panel, the second circuit (23) being fixedly connected to the socket (22), a plug (21) being arranged on the socket (22), a first circuit (20) being arranged on a side of the plug (21) close to the lamp (5), the first circuit (20) being fixedly connected to the plug (21), and the first circuit (20) being fixedly connected to the lamp (5).
8. A solar energy storage outdoor emergency lighting lamp according to claim 7, characterized in that: It also includes a connecting rod (24), which is arranged on the top of the plug (21), the connecting rod (24) and the plug (21) are fixedly connected, and the top of the connecting rod (24) is fixedly connected to the moving plate (14).
9. A solar energy storage outdoor emergency lighting lamp according to claim 8, characterized in that: The lamp housing (4) further comprises a snap-on assembly, which comprises a snap-on joint (25), the end of which is an arc structure, the snap-on joint (25) is slidably connected to the socket (22), a second spring (26) is provided between the snap-on joint (25) and the socket (22), a slide groove (27) is provided on the side of the lamp housing (4) close to the socket (22), the slide groove (27) and the socket (22) are slidably connected, a snap-on groove (28) is provided on the side of the socket (22) close to the slide groove (27), and the snap-on groove (28) and the snap-on joint (25) are snap-fitted.
10. A solar energy storage outdoor emergency lighting lamp according to claim 9, characterized in that: The vehicle also includes a cover (30), the cover (30) being arranged above the lamp (5), the cover (30) being provided with a connecting piece (29), the connecting piece (29) and the cover (30) being fixedly connected, the connecting piece (29) being fixedly connected to the fixed part of the telescopic plate (17) on a side away from the cover (30), an electric slide rail (31) being arranged on the vehicle body (1), the electric slide rail (31) and the wind force detection sensor (8) being electrically connected via a control module, an annular telescopic connecting rod (32) being arranged on the electric slide rail (31), a telescopic rod (9) of the annular telescopic connecting rod (32) being slidably connected to the electric slide rail (31), and a folding curtain (33) being arranged on the annular telescopic connecting rod (32).