Outdoor photography lamp with energy-saving power generation function and working method thereof
Through the design of two power generation systems and auxiliary storage components, the problems of insufficient power and poor portability of outdoor photography lights are solved, continuous power supply and convenient storage are achieved under different weather conditions, and the practicality and convenience of outdoor photography lights are improved.
Patent Information
- Application Number
- CN202511113392.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-11
- Publication Date
- 2025-09-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Outdoor photography lights often run out of power after prolonged use. Existing solar panels are bulky, difficult to carry, and require complicated storage, which affects their convenience.
Design an outdoor photography light with two power generation systems, including solar panels and hand-cranked generators. The solar panels are used to generate electricity on sunny days, and the hand-cranked generator is used on cloudy days. Combined with an auxiliary storage component, the solar panels can be deployed and stored through an adjustment plate, integrating the deployment and storage processes and simultaneously realizing the leakage and storage of the LED fill light.
It achieves continuous power supply under different weather conditions, improves power adequacy, adapts to various environments, simplifies storage and transportation processes, and improves portability and practicality.
Smart Images

Figure CN120667697A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of photographic lamps, and in particular relates to an outdoor photographic lamp with an energy-saving power generation function and a working method thereof. Background Art
[0002] Outdoor photography lights are portable lighting devices designed specifically for outdoor shooting. They provide a controllable, stable light source in challenging environments with insufficient natural light, helping photographers optimize lighting effects and enhance image quality. Conventional outdoor photography lights typically use LED light sources as fill light, and due to the lack of power sources outdoors, they are often powered by external lithium batteries.
[0003] During outdoor photography, due to the long shooting time, when the outdoor photography light is powered by an external lithium battery, the problem of insufficient power often occurs. In the existing technology, an external solar panel is used for power supply, but this solar panel is large in size and cannot be quickly unfolded and stored, and has poor portability.
[0004] Conventional outdoor photography lights are generally composed of structures such as LED lamp beads and lenses, and the surface is relatively fragile. When transporting them, the existing technology generally places them in a storage box for transportation. This storage method is relatively cumbersome and also causes many inconveniences during use, and urgently needs to be improved. Summary of the Invention
[0005] The object of the present invention is to provide an outdoor photography light with energy-saving power generation function and an operating method thereof, so as to solve the problems raised in the above background technology.
[0006] In order to achieve the above-mentioned objectives, the present invention provides the following technical solutions: an outdoor photography light with energy-saving power generation function, comprising a base, a fill light assembly is fixedly installed on the front side of the top end of the base, a storage box is provided on the outer side of the fill light assembly, the storage box and the fill light assembly are movably engaged, a longitudinal guide rail is fixedly installed on the rear side of the top end of the base, an auxiliary storage assembly is movably engaged inside the longitudinal guide rail, two solar panels are provided on the top end of the auxiliary storage assembly, a hinge is provided between the two solar panels, both ends of the hinge are connected to the two solar panels, the bottom ends of the two solar panels are connected to the auxiliary storage assembly, a bottom support frame is fixedly installed on the front end of the auxiliary storage assembly, the front end of the bottom support frame is connected to the storage box, the outer side of the hinge is movably connected to a locking frame, the front end of the locking frame is fixedly installed on the top support frame, and the front end of the top support frame is connected to the fill light assembly.
[0007] In the initial state, the fill light assembly is located inside the storage box, that is, in the storage state, and the auxiliary storage assembly is also in the initial state. At this time, the fronts of the two solar panels are in contact with each other, that is, the two solar panels are in a folded state, and the entire device is in a non-working state.
[0008] As a further technical solution of the present invention, the base is movably connected to a lithium battery pack, and casters are movably installed near the four corners of the base. The output end of the solar panel is electrically connected to the input end of the lithium battery pack.
[0009] As a further technical solution of the present invention, a hand-cranked generator is installed at the rear end of the lithium battery pack, the output end of the hand-cranked generator is electrically connected to the input end of the lithium battery pack, and the output end of the lithium battery pack is electrically connected to the input end of the fill light component.
[0010] In actual use, the casters can be rolled by moving the base, and then the device can be moved to the working position. In fine weather, photovoltaic power generation can be performed through two solar panels. In rainy weather, power generation can be performed by shaking the hand-cranked generator, and the generated current is charged into the lithium battery pack for temporary storage. The lithium battery pack is then used to continuously power the fill light component, realizing energy-saving power generation function.
[0011] By setting up two power generation systems, that is, in fine weather, photovoltaic power generation is carried out through solar panels to supplement the power of the lithium battery pack, and in rainy weather, power is supplemented by a hand-cranked generator to ensure that the lithium battery pack has sufficient power to meet its lighting needs in long-term outdoor environments, and adapt to different weather environments, ensuring that the device can meet long-term use and improve practicality.
[0012] As a further technical solution of the present invention, the auxiliary storage assembly includes an adjustment plate, which is located directly below the locking frame. A first fixed seat is fixedly installed at the top of the adjustment plate near the four corners, and a longitudinal guide block is fixedly installed at the rear end of the adjustment plate. The adjustment plate is movably connected to the longitudinal guide rail through the longitudinal guide block, and the adjustment plate moves up and down relative to the longitudinal guide rail.
[0013] As a further technical solution of the present invention, the end of the first fixing seat away from the adjustment plate is movably connected to the support rod via a rotating shaft, and the end of the support rod away from the first fixing seat is movably connected to the second fixing seat via a rotating shaft, and the top end of the second fixing seat is connected to the bottom end of the solar panel.
[0014] As a further technical solution of the present invention, when the adjustment plate is at the lowest point, the two solar panels are in a completely flattened state, and when the adjustment plate is at the highest point, the two solar panels are in a completely folded state.
[0015] When the device is in operation, the adjustment plate can be pulled downward to move the adjustment plate downward. When the adjustment plate moves downward, multiple support rods move downward and apply tension to the two solar panels above. At this time, the two solar panels rotate relative to the hinge until the two solar panels are fully unfolded and remain relatively parallel. At this time, the overall photovoltaic area is expanded, and the two solar panels can be used to generate electricity. When the device is not working, the adjustment plate can be lifted upward to move the adjustment plate upward. At this time, multiple support rods move upward and apply thrust to the two solar panels above. At this time, the two solar panels can rotate relative to each other around the hinge axis and move closer until the adjustment plate moves to the highest point. At this time, the front faces of the two solar panels touch each other, and the folding and storage process is completed.
[0016] By utilizing the cooperation between the auxiliary storage component and the solar panel, and through the two solar panels, the device can be stored when not in use and unfolded when in use. The integrated unfolding and storage process only requires the up and down displacement of the adjustment plate, thereby achieving portable storage when not in use and rapid unfolding when in use. The entire process can be completed quickly, is compatible with portability and practicality, and improves the usage scenarios of the device.
[0017] As a further technical solution of the present invention, the fill light assembly includes an LED fill light, a storage slot is provided inside the storage box, a mounting seat is fixedly installed on the back of the LED fill light near the top, and the rear end of the mounting seat is movably connected to an adjustment seat.
[0018] As a further technical solution of the present invention, a support column is fixedly installed at the rear end of the adjustment seat, and the support column is movably connected to the storage slot. A support rod is fixedly installed at the bottom end of the support column, and the bottom end of the support rod passes through the bottom end of the storage box and is connected to the top end of the base.
[0019] As a further technical solution of the present invention, when the adjustment plate is at the lowest point, the storage box is directly below the LED fill light and the LED fill light is completely exposed. When the adjustment plate is at the highest point, the storage box completely stores the LED fill light.
[0020] When the adjustment plate moves downward, the bottom support frame and the storage box can be driven to move downward synchronously, while the fill light component maintains a constant height under the action of the top support frame. When the storage box moves downward, it can move relative to the support column until the adjustment plate reaches the lowest point. At this time, the storage box also drops to the lowest point, and the LED fill light is completely exposed, and the fill light operation is performed by the LED fill light. When the adjustment plate moves upward, that is, the device is in a non-working state, the storage box moves upward relative to the LED fill light, and the LED fill light can be stored inside the storage box. When the adjustment plate rises to the highest point, the LED fill light is completely stored inside the storage box, completing the storage process.
[0021] By further utilizing the up and down displacement of the adjustment plate, that is, realizing the unfolding and storage of the solar panel through the up and down displacement of the adjustment plate, the leakage and storage process of the LED fill light can also be realized. The whole process can be completed synchronously, and there is no need for traditional devices to be transported in a storage box. The protection of the LED fill light can be realized quickly, and fast transportation can be realized through the base. The whole storage process is completed quickly, which significantly improves the overall convenience of use.
[0022] A method for operating an outdoor photography light with an energy-saving power generation function comprises the following steps: S1: When the LED fill light needs to be unfolded, the adjustment plate is pulled downward, and the adjustment plate moves downward relative to the longitudinal guide rail, and the bottom support frame and the storage box are pulled downward. At this time, the storage box moves downward relative to the support column until the LED fill light is completely exposed. At this time, the fill light operation is performed by the LED fill light; S2: When the adjustment plate moves downward, the multiple support rods apply tension to the two solar panels. The two solar panels rotate relative to the hinge until the adjustment plate reaches the lowest point. At this time, the two solar panels form a complete plane and are unfolded. The solar panels then generate electricity. S3: When folding, the control adjustment plate moves upward, and a thrust is applied to the two solar panels, causing them to move closer together until their front faces touch each other, completing the folding process. At the same time, the storage box moves upward until the LED fill light is completely stored inside the storage box. S4: When encountering rainy weather, the hand-crank generator is manually cranked to generate electricity and charge the lithium battery pack to complete the power generation process in multiple scenarios.
[0023] The beneficial effects of the present invention are as follows: 1. The present invention utilizes the cooperation between the auxiliary storage component and the solar panel, and uses two solar panels to achieve storage when not in use and deployment when in use. The integrated deployment and storage process only requires the up and down displacement of the adjustment plate, thereby achieving portable storage when not in use and rapid deployment when in use. The entire process can be completed quickly, which is compatible with portability and practicality, and improves the use scenarios of the device.
[0024] 2. The present invention further utilizes the up and down displacement of the adjustment plate, that is, the up and down displacement of the adjustment plate can realize the unfolding and storage of the solar panel while also realizing the leakage and storage process of the LED fill light. The whole process can be completed synchronously, without the need for traditional devices to be transported in a storage box. The protection of the LED fill light can be quickly realized, and rapid transportation can be achieved through the base. The whole storage process is completed quickly, which significantly improves the overall convenience of use.
[0025] 3. The present invention is equipped with two power generation systems. In fine weather, photovoltaic power generation is performed by solar panels to supplement the power of the lithium battery pack. In rainy weather, power is supplemented by a hand-cranked generator to ensure that the lithium battery pack has sufficient power to meet its lighting needs in long-term outdoor environments. It can also adapt to different weather environments, ensuring that the device can meet long-term use and improving practicality. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a front schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the back of the overall structure of the present invention; Figure 3 A schematic diagram of the coordination between the base and the lithium battery pack structure of the present invention; Figure 4 This is a schematic diagram of the coordination of the storage box and the fill light assembly structure of the present invention; Figure 5 It is a cross-sectional schematic diagram of the internal structure of the storage box of the present invention; Figure 6 It is a separate exploded schematic diagram of the fill light assembly structure of the present invention; Figure 7 This is an exploded schematic diagram of the solar panel, locking frame, and auxiliary storage assembly structure of the present invention; Figure 8 It is a separate schematic diagram of the auxiliary storage component structure of the present invention.
[0027] In the figure: 1. Base; 2. Lithium battery pack; 3. Longitudinal guide rail; 4. Caster; 5. Hand-crank generator; 6. Bottom support frame; 7. Top support frame; 8. Storage box; 9. Fill light assembly; 901. LED fill light; 902. Mounting seat; 903. Adjustment seat; 904. Support column; 905. Support rod; 10. Solar panel; 11. Hinge; 12. Locking frame; 13. Auxiliary storage assembly; 131. Adjustment plate; 132. Longitudinal guide block; 133. First fixing seat; 134. Second fixing seat; 135. Support rod. DETAILED DESCRIPTION
[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0029] like Figures 1 to 8 As shown, in the embodiment of the present invention, an outdoor photography light with energy-saving power generation function includes a base 1, a fill light component 9 is fixedly installed on the front side of the top of the base 1, a storage box 8 is provided on the outer side of the fill light component 9, and the storage box 8 and the fill light component 9 are movably connected, a longitudinal guide rail 3 is fixedly installed on the rear side of the top of the base 1, and an auxiliary storage component 13 is movably connected inside the longitudinal guide rail 3, and two solar panels 10 are provided on the top of the auxiliary storage component 13, a hinge 11 is provided between the two solar panels 10, and both ends of the hinge 11 are connected to the two solar panels 10, and the bottom ends of the two solar panels 10 are connected to the auxiliary storage component 13, and a bottom support frame 6 is fixedly installed on the front end of the auxiliary storage component 13, and the front end of the bottom support frame 6 is connected to the storage box 8, and a locking frame 12 is movably connected on the outer side of the hinge 11, and a top support frame 7 is fixedly installed on the front end of the locking frame 12, and the front end of the top support frame 7 is connected to the fill light component 9.
[0030] In the initial state, the fill light assembly 9 is located inside the storage box 8, that is, it is in the storage state, and the auxiliary storage assembly 13 is also in the initial state. At this time, the front faces of the two solar panels 10 are in contact with each other, that is, the two solar panels 10 are in the folded state, and the entire device is in the non-working state.
[0031] like Figure 2 and Figure 3 As shown, the internal movable card of the base 1 is connected to the lithium battery pack 2, and casters 4 are movably installed near the four corners of the base 1. The output end of the solar panel 10 is electrically connected to the input end of the lithium battery pack 2. A hand-cranked generator 5 is installed at the rear end of the lithium battery pack 2. The output end of the hand-cranked generator 5 is electrically connected to the input end of the lithium battery pack 2, and the output end of the lithium battery pack 2 is electrically connected to the input end of the fill light component 9.
[0032] In actual use, the casters 4 can be rolled by moving the base 1, and then the device can be moved to the working position. In fine weather, photovoltaic power generation can be performed through the two solar panels 10. In rainy weather, power generation can be performed by shaking the hand-cranked generator 5, and the generated current is charged into the lithium battery pack 2 for temporary storage. The lithium battery pack 2 is then used to continuously power the fill light component 9, thereby realizing energy-saving power generation function.
[0033] By setting up two power generation systems, that is, in fine weather, photovoltaic power generation is performed by the solar panel 10 to supplement the power of the lithium battery pack 2, and in rainy weather, power is supplemented by the hand-cranked generator 5, ensuring that the lithium battery pack 2 has sufficient power to meet its lighting needs in long-term outdoor environments, and adapting to different weather environments, ensuring that the device can meet long-term use and improving practicality.
[0034] like Figure 1 and Figure 2 as well as Figure 7 and Figure 8 As shown, the auxiliary storage assembly 13 includes an adjustment plate 131, which is located just below the locking frame 12, and a first fixing seat 133 is fixedly installed at the top of the adjustment plate 131 near the four corners, and a longitudinal guide block 132 is fixedly installed at the rear end of the adjustment plate 131, and the adjustment plate 131 is movably engaged with the longitudinal guide rail 3 through the longitudinal guide block 132, and the adjustment plate 131 moves up and down relative to the longitudinal guide rail 3, and the end of the first fixing seat 133 away from the adjustment plate 131 is movably connected to the support rod 135 through a rotating shaft, and the end of the support rod 135 away from the first fixing seat 133 is movably connected to the second fixing seat 134 through a rotating shaft, and the top of the second fixing seat 134 is connected to the bottom end of the solar panel 10, and when the adjustment plate 131 is at the lowest point, the two solar panels 10 are in a completely flattened state, and when the adjustment plate 131 is at the highest point, the two solar panels 10 are in a completely folded state.
[0035] Embodiment: When the device is in operation, the adjustment plate 131 can be pulled downward to move the adjustment plate 131 downward. When the adjustment plate 131 moves downward, the multiple support rods 135 also move downward and apply tension to the two solar panels 10 above. At this time, the two solar panels 10 rotate relative to the hinge 11 until the two solar panels 10 are fully unfolded and remain relatively parallel. At this time, the overall photovoltaic area is expanded, and the two solar panels 10 can be used to generate electricity. When the device is not in operation, the adjustment plate 131 can be lifted upward to move the adjustment plate 131 upward. At this time, the multiple support rods 135 move upward and apply a thrust to the two solar panels 10 above. At this time, the two solar panels 10 can rotate relative to each other around the axis of the hinge 11 and move closer until the adjustment plate 131 moves to the highest point. At this time, the front faces of the two solar panels 10 touch each other, and the folding and storage process is completed.
[0036] By utilizing the cooperation between the auxiliary storage component 13 and the solar panel 10, and through the two solar panels 10, storage when not in use and deployment when in use can be achieved, and the integrated deployment and storage process only requires the up and down displacement of the adjustment plate 131 to achieve portable storage when not in use and rapid deployment when in use. The entire process can be completed quickly, which is compatible with portability and practicality, and improves the usage scenarios of the device.
[0037] like Figure 1 and Figure 4 as well as Figure 5 and Figure 6 As shown, the fill light assembly 9 includes an LED fill light 901, and a storage slot is provided inside the storage box 8. A mounting base 902 is fixedly installed on the back of the LED fill light 901 near the top, and the rear end of the mounting base 902 is movably connected to an adjustment base 903. A support column 904 is fixedly installed on the rear end of the adjustment base 903, and the support column 904 is movably connected to the storage slot. A support rod 905 is fixedly installed on the bottom end of the support column 904, and the bottom end of the support rod 905 passes through the bottom end of the storage box 8 and is connected to the top end of the base 1. When the adjustment plate 131 is at the lowest point, the storage box 8 is directly below the LED fill light 901 and the LED fill light 901 is completely exposed. When the adjustment plate 131 is at the highest point, the storage box 8 completely stores the LED fill light 901.
[0038] Embodiment: When the adjustment plate 131 moves downward, the bottom support frame 6 and the storage box 8 can be synchronously driven to move downward, while the fill light assembly 9 maintains a constant height under the action of the top support frame 7. When the storage box 8 moves downward, it can move relative to the support column 904 until the adjustment plate 131 reaches the lowest point. At this time, the storage box 8 also drops to the lowest point, and the LED fill light 901 is completely exposed, and the fill light operation is performed by the LED fill light 901. When the adjustment plate 131 moves upward, that is, the device is in a non-working state, the storage box 8 moves upward relative to the LED fill light 901, and the LED fill light 901 can be stored inside the storage box 8. When the adjustment plate 131 rises to the highest point, the LED fill light 901 is completely stored inside the storage box 8, completing the storage process.
[0039] By further utilizing the up and down displacement of the adjustment plate 131, that is, by realizing the deployment and storage of the solar panel 10 through the up and down displacement of the adjustment plate 131, the leakage and storage process of the LED fill light 901 can also be realized. The whole process can be completed synchronously, and there is no need for traditional devices to be transported in a storage box. The protection of the LED fill light 901 can be quickly realized, and rapid transportation can be achieved through the base 1. The whole storage process is completed quickly, which significantly improves the overall convenience of use.
[0040] A method for operating an outdoor photography light with an energy-saving power generation function comprises the following steps: S1: When the LED fill light 901 needs to be unfolded, the adjustment plate 131 is pulled downward. At this time, the adjustment plate 131 moves downward relative to the longitudinal guide rail 3, and the bottom support frame 6 and the storage box 8 are pulled downward. At this time, the storage box 8 moves downward relative to the support column 904 until the LED fill light 901 is completely exposed. At this time, the fill light operation is performed by the LED fill light 901; S2: When the adjustment plate 131 moves downward, the multiple support rods 135 apply tension to the two solar panels 10. The two solar panels 10 rotate relative to the hinge 11 until the adjustment plate 131 reaches the lowest point. At this time, the two solar panels 10 form a complete plane and are unfolded. The solar panels 10 then generate electricity. S3: When folding, the control regulating plate 131 is moved upward, and a thrust is applied to the two solar panels 10, causing the two solar panels 10 to move relatively closer until their front faces touch each other, completing the folding process. At the same time, the storage box 8 moves upward until the LED fill light 901 is completely stored inside the storage box 8. S4: When encountering rainy weather, the hand-cranked generator 5 is manually cranked to generate electricity and charge the lithium battery pack 2, completing the power generation process in multiple scenarios.
[0041] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. An outdoor photography light with energy-saving power generation function, comprising a base (1), characterized in that: A fill light assembly (9) is fixedly mounted on the front side of the top of the base (1), a storage box (8) is provided on the outer side of the fill light assembly (9), and the storage box (8) and the fill light assembly (9) are movably connected. A longitudinal guide rail (3) is fixedly mounted on the rear side of the top of the base (1), and an auxiliary storage assembly (13) is movably connected inside the longitudinal guide rail (3), and two solar cell panels (10) are provided on the top of the auxiliary storage assembly (13), and a hinge (11) is provided between the two solar cell panels (10), and the two ends of the hinge (11) are connected to each other. The ends of the hinges (11) are connected to two solar panels (10), the bottom ends of the two solar panels (10) are connected to an auxiliary storage assembly (13), a bottom support frame (6) is fixedly mounted on the front end of the auxiliary storage assembly (13), the front end of the bottom support frame (6) is connected to the storage box (8), the outer side surface of the hinge (11) is movably connected to a locking frame (12), the front end of the locking frame (12) is fixedly mounted to a top support frame (7), and the front end of the top support frame (7) is connected to the fill light assembly (9).
2. The outdoor photography light with energy-saving power generation function according to claim 1, characterized in that: The base (1) is movably connected to a lithium battery pack (2), and casters (4) are movably mounted near the four corners of the base (1). The output end of the solar cell panel (10) is electrically connected to the input end of the lithium battery pack (2).
3. The outdoor photography light with energy-saving power generation function according to claim 2, characterized in that: A hand-cranked generator (5) is installed at the rear end of the lithium battery pack (2); the output end of the hand-cranked generator (5) is electrically connected to the input end of the lithium battery pack (2); and the output end of the lithium battery pack (2) is electrically connected to the input end of the fill light component (9).
4. The outdoor photography light with energy-saving power generation function according to claim 3, characterized in that: The auxiliary storage assembly (13) includes an adjustment plate (131), the adjustment plate (131) is located directly below the locking frame (12), a first fixing seat (133) is fixedly installed at the top of the adjustment plate (131) near the four corners, a longitudinal guide block (132) is fixedly installed at the rear end of the adjustment plate (131), the adjustment plate (131) is movably connected to the longitudinal guide rail (3) through the longitudinal guide block (132), and the adjustment plate (131) moves up and down relative to the longitudinal guide rail (3).
5. The outdoor photography light with energy-saving power generation function according to claim 4, characterized in that: One end of the first fixing seat (133) away from the adjustment plate (131) is movably connected to a support rod (135) via a rotating shaft, and one end of the support rod (135) away from the first fixing seat (133) is movably connected to a second fixing seat (134) via a rotating shaft, and the top end of the second fixing seat (134) is connected to the bottom end of the solar cell panel (10).
6. The outdoor photography light with energy-saving power generation function according to claim 5, characterized in that: When the adjustment plate (131) is at the lowest point, the two solar panels (10) are in a completely flattened state; when the adjustment plate (131) is at the highest point, the two solar panels (10) are in a completely folded state.
7. The outdoor photography light with energy-saving power generation function according to claim 6, characterized in that: The fill light assembly (9) comprises an LED fill light (901), a storage slot is provided inside the storage box (8), a mounting seat (902) is fixedly mounted on the back of the LED fill light (901) near the top, and an adjustment seat (903) is movably connected to the rear end of the mounting seat (902).
8. The outdoor photography light with energy-saving power generation function according to claim 7, characterized in that: A support column (904) is fixedly mounted on the rear end of the adjustment seat (903), and the support column (904) is movably connected to the storage slot. A support rod (905) is fixedly mounted on the bottom end of the support column (904), and the bottom end of the support rod (905) passes through the bottom end of the storage box (8) and is connected to the top end of the base (1).
9. The outdoor photography light with energy-saving power generation function according to claim 8, characterized in that: When the adjustment plate (131) is at the lowest point, the storage box (8) is directly below the LED fill light (901) and the LED fill light (901) is completely exposed; when the adjustment plate (131) is at the highest point, the storage box (8) completely stores the LED fill light (901).
10. The operating method of the outdoor photography light with energy-saving power generation function according to claim 9, characterized in that: The following steps are involved: S1: When the LED fill light (901) needs to be unfolded, the adjustment plate (131) is pulled downward, and the adjustment plate (131) is then moved downward relative to the longitudinal guide rail (3), and the bottom support frame (6) and the storage box (8) are pulled downward, and the storage box (8) is then moved downward relative to the support column (904) until the LED fill light (901) is completely exposed, and the fill light operation is then performed through the LED fill light (901); S2: When the adjustment plate (131) moves downward, the plurality of support rods (135) apply a pulling force to the two solar panels (10), and the two solar panels (10) rotate relative to the hinge (11) until the adjustment plate (131) reaches the lowest point. At this time, the two solar panels (10) form a complete plane, are unfolded, and generate electricity through the solar panels (10); S3: When storing, the control regulating plate (131) is moved upward, and a thrust is applied to the two solar panels (10), and the two solar panels (10) are then moved relatively close to each other until the front faces touch each other, completing the folding, and at the same time the storage box (8) is moved upward until the LED fill light (901) is completely stored inside the storage box (8); S4: When encountering rainy weather, the hand-crank generator (5) is manually cranked to generate electricity and charge the lithium battery pack (2), completing the power generation process in multiple scenarios.