Solar power supply camera device

By introducing an adjustable-angle solar panel and photosensitive components into the solar-powered camera device, the angle of the solar panel is automatically adjusted, solving the problem of low energy efficiency of solar panels and achieving efficient and low-cost power supply.

CN223182204UActive Publication Date: 2025-08-01HANGZHOU HUACHENG SOFTWARE TECH CO LTD
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Patent Information

Application Number
CN202422151880.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-08-01
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

Existing solar-powered cameras have low energy efficiency of solar panels, and the adjustment methods are cumbersome and consume a lot of electricity.

Method used

Design a solar-powered camera device, including a camera body, an adjustable solar panel, a drive energy storage component, and a photosensitive component. The photosensitive component adjusts the attitude of the drive energy storage component by sensing light signals, and automatically adjusts the angle of the solar panel to follow the rotation of the sun and maintain the optimal receiving angle.

Benefits of technology

This improves the energy efficiency of solar panels, reduces energy costs, and enables efficient utilization of solar energy and convenient angle adjustment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a solar power supply camera device. The solar power supply camera device comprises a camera body; the angle of the solar panel can be adjusted; the driving energy storage assembly is in driving connection with the solar panel so as to adjust the included angle between the solar panel and the horizontal plane and / or the vertical plane, and the driving energy storage assembly is connected with the camera body and used for supplying energy to the camera body; and the photosensitive component is arranged on the solar panel and is in signal connection with the driving energy storage component. According to the utility model, the problem of low energy efficiency utilization of the solar panel of the solar power supply camera in the prior art is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of solar power generation, and particularly to a solar-powered camera device. Background Art

[0002] In modern society, in order to ensure their own or the public's interests, people mostly set up cameras in important positions. The initial cameras were connected to the power supply by connecting wires, which was time-consuming for construction, and because the cameras were in the on state for a long time, the power consumption was relatively large. Currently, cameras powered by solar energy gradually appear on the market. The way is to fixedly install the camera and the solar panel at one position, use the solar panel to absorb solar energy and convert it into electrical energy, and transmit the converted electrical energy to the camera through a connecting wire. However, since the solar panel is always fixed, and the position of the sun changes constantly during the day, the energy efficiency of the solar panel is different at different irradiation angles, resulting in a decrease in the power supply effect of the solar panel. In order to obtain greater energy efficiency, it is necessary to increase the area of the solar panel. Currently, there are also manual brackets to manually adjust the angle of the solar panel, but this method has cumbersome operation steps and requires personnel to watch and adjust according to time, and it is also impossible to achieve the efficient utilization of the energy efficiency of the solar panel.

[0003] As can be seen from the above, there is a problem of low energy efficiency utilization of the solar panel of the solar-powered camera in the prior art. Summary of the Utility Model

[0004] The main purpose of the utility model is to provide a solar-powered camera device to solve the problem of low energy efficiency utilization of the solar panel of the solar-powered camera in the prior art.

[0005] To achieve the above purpose, the utility model provides a solar-powered camera device, including: a camera main body; a solar panel, the angle of the solar panel is adjustable; a driving and energy storage component, the driving and energy storage component is drivingly connected to the solar panel to adjust the included angle between the solar panel and the horizontal plane and / or the vertical plane, the driving and energy storage component is connected to the camera main body for supplying energy to the camera main body; a photosensitive component, the photosensitive component is arranged on the solar panel and is signal-connected to the driving and energy storage component.

[0006] Further, the photosensitive surface of the photosensitive component is parallel to the photosensitive surface of the solar panel.

[0007] Further, the driving and energy storage component includes: a solar panel fixer, the solar panel fixer is at least connected to the solar panel; a vertical driving mechanism, at least part of the vertical driving mechanism is connected to the solar panel fixer; a horizontal driving mechanism, at least part of the horizontal driving mechanism is connected to the vertical driving mechanism; a control board, the control board is signal-connected to the vertical driving mechanism and the horizontal driving mechanism.

[0008] Further, the drive energy storage component further includes a housing. At least a part of the solar panel fixer is disposed inside the housing. One end of the solar panel fixer is pivotally connected to the inner wall of the housing, and the other end of the solar panel fixer is connected to the solar panel. The solar panel fixer, the vertical drive mechanism, the horizontal drive mechanism, and the control board are sequentially arranged vertically inside the housing.

[0009] Further, the vertical drive mechanism includes: a base; a first drive member disposed on the base, the first drive member being signal-connected to the control board; a first transmission member disposed on the solar panel fixer, the first drive member being drivingly connected to the first transmission member for adjusting the angle between the solar panel and the horizontal plane.

[0010] Further, the horizontal drive mechanism includes: a second transmission member disposed at the bottom of the base; a second drive member disposed at the bottom of the housing and the second drive member being signal-connected to the control board, the second drive member being drivingly connected to the second transmission member for adjusting the angle between the base and the vertical direction.

[0011] Further, a self-locking component is disposed inside the first drive member and the second drive member.

[0012] Further, the solar-powered camera device further includes a first output gear and a second output gear. The output ends of the first drive member and the second drive member are respectively connected to the first output gear and the second output gear. The first transmission member and the second transmission member are both gears, and the first output gear and the second output gear are respectively meshed with the first transmission member and the second transmission member.

[0013] Further, the number of teeth of the first output gear is less than the number of teeth of the first transmission member; and / or the number of teeth of the second output gear is less than the number of teeth of the second transmission member; and / or the axial direction of the first output gear is perpendicular to the axial direction of the second output gear.

[0014] Further, the drive energy storage component further includes an energy storage member disposed inside the housing for electrically connecting to the camera body.

[0015] Further, the photosensitive component includes: a connecting seat for connecting to the solar panel; a light-shielding flange disposed on the connecting seat, the light-shielding flange separating the connecting seat into a plurality of accommodating regions; a plurality of photosensitive mechanisms, and the plurality of photosensitive mechanisms are arranged in one-to-one correspondence with the plurality of accommodating regions.

[0016] Further, both the accommodating regions and the photosensitive mechanisms are four. The four photosensitive mechanisms are arranged in pairs close to each other, and the photosensitive surfaces of the photosensitive mechanisms are parallel to the photosensitive surface of the solar panel.

[0017] Further, the light-sensitive component further includes a waterproof cover, which is arranged on the connecting seat, and the light-shielding flange and the photosensitive mechanism are accommodated in the waterproof cover.

[0018] Further, the solar-powered camera device further includes a controller, which is signal-connected to the light-sensitive component and the driving energy storage component.

[0019] Applying the technical solution of the present utility model, the solar-powered camera device includes a camera body, a solar panel, a driving energy storage component and a light-sensitive component. The solar panel is arranged with an adjustable angle. The driving energy storage component is drivingly connected to the solar panel to adjust the included angle between the solar panel and the horizontal plane and / or the vertical plane. The driving energy storage component is connected to the camera body for supplying energy to the camera body. The light-sensitive component is arranged on the solar panel and is signal-connected to the driving energy storage component. By drivingly connecting the driving energy storage component to the solar panel and signal-connecting the light-sensitive component arranged on the solar panel to the driving energy storage component, the attitude of the driving energy storage component is adjusted by using the light-sensitive signal of the light-sensitive component, and then the angle of the solar panel is adjusted in the horizontal direction or the vertical direction, so that the solar panel follows the sun to rotate and maintains the best receiving angle. Finally, the solar panel receives sufficient sunlight, improves the energy efficiency of the work conversion, and supplies energy to the camera body, thereby reducing the energy cost of the device and solving the problem of low energy efficiency utilization of the solar panel of the solar-powered camera in the prior art. Description of the Drawings

[0020] The specification drawings forming a part of this application are used to provide a further understanding of the present utility model. The schematic embodiments of the present utility model and their descriptions are used to explain the present utility model and do not constitute an improper limitation to the present utility model. In the drawings:

[0021] Figure 1 Shows a schematic structural diagram of the solar-powered camera device in a specific embodiment of the present utility model; and

[0022] Figure 2 Shows a schematic structural diagram of the driving energy storage component in a specific embodiment of the present utility model;

[0023] Figure 3 Shows a schematic structural diagram of the light-sensitive component at an angle in a specific embodiment of the present utility model;

[0024] Figure 4 Shows a schematic structural diagram of the light-sensitive component at another angle in a specific embodiment of the present utility model.

[0025] Among them, the above-mentioned drawings include the following reference numerals:

[0026] 10. Camera body; 20. Solar panel; 30. Driving and energy storage component; 31. Solar panel fixer; 32. Vertical driving mechanism; 321. Base; 322. First driving member; 323. First transmission member; 33. Horizontal driving mechanism; 331. Second transmission member; 332. Second driving member; 34. Control board; 35. Housing; 36. Energy storage member; 40. Photosensitive component; 41. Connection seat; 42. Light shielding flange; 43. Photosensitive mechanism; 44. Waterproof cover; 50. First output gear; 60. Second output gear; 70. Cable. Detailed implementation manners

[0027] It should be noted that, without conflict, the embodiments in the present application and the features in the embodiments may be combined with each other. The present invention will be described in detail below with reference to the drawings and in combination with the embodiments.

[0028] It should be pointed out that, unless otherwise specified, all technical and scientific terms used in the present application have the same meanings as those commonly understood by those of ordinary skill in the technical field to which the present application belongs.

[0029] In the present invention, unless otherwise stated, the orientation words such as "upper, lower, top, bottom" are usually in the directions shown in the drawings, or in the vertical, perpendicular or gravitational directions of the components themselves; similarly, for the convenience of understanding and description, "inner, outer" refer to the inner and outer of the contours of the components themselves, but the above orientation words are not used to limit the present invention.

[0030] Obviously, the above-described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present invention without creative efforts shall fall within the protection scope of the present invention.

[0031] In order to solve the problem of low energy efficiency utilization of the solar panel of the solar-powered camera in the prior art, the present invention provides a solar-powered camera device.

[0032] As Figure 1 shown, the solar-powered camera device includes a camera body 10, a solar panel 20, a driving and energy storage component 30, and a photosensitive component 40. The solar panel 20 is disposed at an adjustable angle. The driving and energy storage component 30 is drivingly connected to the solar panel 20 to adjust the angle between the solar panel 20 and the horizontal plane and / or the vertical plane. The driving and energy storage component 30 is connected to the camera body 10 for supplying energy to the camera body 10. The photosensitive component 40 is disposed on the solar panel 20 and is signal-connected to the driving and energy storage component 30.

[0033] By drivingly connecting the drive energy storage component 30 to the solar panel 20, the photosensitive component 40 provided on the solar panel 20 is signal-connected to the drive energy storage component 30, and the attitude of the drive energy storage component 30 is adjusted by using the photosensitive signal of the photosensitive component 40, thereby adjusting the angle of the solar panel 20 in the horizontal direction or the vertical direction, realizing that the solar panel 20 follows the sun to rotate, and maintaining the best receiving angle. Finally, the solar panel 20 receives sufficient sunlight, improving the energy efficiency of the work conversion and supplying energy to the camera body 10, thereby reducing the energy cost of the device.

[0034] In this embodiment, the photosensitive surface of the photosensitive component 40 is parallel to the photosensitive surface of the solar panel 20.

[0035] Specifically, by arranging the photosensitive surfaces of the photosensitive component 40 and the solar panel 20 in parallel, when the photosensitive component 40 has the best photosensitive angle with the sun, the solar panel 20 has the best angle for receiving light, so as to obtain sufficient solar energy. This setting method can ensure the accurate and convenient adjustment of the solar panel 20.

[0036] As Figure 2 shown, the drive energy storage component 30 includes a solar panel holder 31, a vertical drive mechanism 32, a horizontal drive mechanism 33 and a control board 34. The solar panel holder 31 is at least connected to the solar panel 20. The vertical drive mechanism 32 is at least partially connected to the solar panel holder 31. The horizontal drive mechanism 33 is at least partially connected to the vertical drive mechanism 32. The control board 34 is signal-connected to the vertical drive mechanism 32 and the horizontal drive mechanism 33.

[0037] Specifically, the control board 34 receives the signal from the photosensitive component 40, and adjusts the rotation angle of the solar panel 20 on the horizontal plane or the vertical plane by driving the horizontal drive mechanism 33 or the vertical drive mechanism 32, thereby adjusting the rotation angle of the solar panel 20. The control board 34 can adjust the vertical drive mechanism 32 and the horizontal drive mechanism 33 simultaneously, or the vertical drive mechanism 32 and the horizontal drive mechanism 33 can be adjusted separately in sequence.

[0038] As Figure 2 shown, the drive energy storage component 30 further includes a housing 35. At least part of the solar panel holder 31 is arranged in the housing 35. One end of the solar panel holder 31 is pivotally connected to the inner wall of the housing 35, and the other end of the solar panel holder 31 is connected to the solar panel 20. The solar panel holder 31, the vertical drive mechanism 32, the horizontal drive mechanism 33 and the control board 34 are arranged in the housing 35 in sequence from top to bottom.

[0039] Specifically, the housing 35 includes an upper housing and a lower housing. A convex shaft is provided on one side inside the upper housing. The solar panel fixer 31 is provided with a through hole adapted to the convex shaft. The housing 35 is connected to the solar panel fixer 31 through the convex shaft. The upper housing is provided with an avoidance opening, and a part of the solar panel fixer 31 moves in the avoidance opening. A gap is provided between the upper and lower housings. The vertical driving mechanism 32 and the horizontal driving mechanism 33 are respectively accommodated in the upper housing and the lower housing, and the upper and lower housings rotate relative to each other when horizontally adjusting the solar panel 20. When the horizontal driving mechanism 33 operates, only the solar panel fixer 31 moves in the avoidance opening.

[0040] As Figure 2 shown, the vertical driving mechanism 32 includes a base 321, a first driving member 322 and a first transmission member 323. The first driving member 322 is provided on the base 321, and the first driving member 322 is signal-connected to the control board 34. The first transmission member 323 is provided on the solar panel fixer 31, and the first driving member 322 is drivingly connected to the first transmission member 323 for adjusting the angle between the solar panel 20 and the horizontal plane.

[0041] Specifically, the first transmission member 323 is provided on the solar panel fixer 31, and the first driving member 322 drives the solar panel fixer 31 to rotate around the rotating convex shaft through the first transmission member 323. The base 321 is provided inside the upper housing and is flush with the bottom surface of the upper housing.

[0042] As Figure 2 shown, the horizontal driving mechanism 33 includes a second transmission member 331 and a second driving member 332. The second transmission member 331 is provided at the bottom of the base 321. The second driving member 332 is provided at the bottom of the housing 35 and the second driving member 332 is signal-connected to the control board 34. The second driving member 332 is drivingly connected to the second transmission member 331 for adjusting the angle between the base 321 and the vertical direction.

[0043] Specifically, the second transmission member 331 is provided on the bottom surface of the base 321, and the second driving member 332 is provided inside the lower housing and is drivingly connected to the second transmission member 331. When it is necessary to adjust the rotation angle of the solar panel 20, the second driving member 332 operates to drive the base 321 to rotate through the second transmission member 331. Since the first driving member 322 abuts against the first transmission member 323, finally the solar panel 20 is driven to rotate a certain angle on the horizontal plane.

[0044] In this embodiment, a self-locking component is provided in the first driving member 322 and the second driving member 332.

[0045] Specifically, both the first driving member 322 and the second driving member 332 are motors, and the self-locking assembly is a worm and worm gear assembly. By arranging the worm and worm gear assembly in the first driving member 322 and the second driving member 332, it can be realized that after the solar panel 20 is adjusted by a certain angle, the position swing caused by strong wind and center of gravity offset can be effectively prevented, thereby avoiding continuously energizing the vertical driving mechanism 32 or the horizontal driving mechanism 33 to keep the angle of the solar panel 20 unchanged, and saving unnecessary power waste.

[0046] As Figure 2 shown, the solar camera device further includes a first output gear 50 and a second output gear 60. The output ends of the first driving member 322 and the second driving member 332 are respectively connected to the first output gear 50 and the second output gear 60. The first transmission member 323 and the second transmission member 331 are both gears, and the first output gear 50 and the second output gear 60 are respectively meshed with the first transmission member 323 and the second transmission member 331.

[0047] Specifically, the first output gear 50 and the second output gear 60 are respectively arranged at the output ends of the first driving member 322 and the second driving member 332, and the first transmission member 323 and the second transmission member 331 are respectively kept meshed with the first output gear 50 and the second output gear 60. When the first driving member 322 is powered off, since a self-locking assembly is arranged in the first driving member 322, the first output gear 50 arranged on the first driving member 322 is meshed with the first transmission member 323, thereby preventing the solar panel fixer 31 from rotating, and further preventing the angle between the solar panel 20 and the horizontal plane from changing.

[0048] In this embodiment, the number of teeth of the first output gear 50 is less than the number of teeth of the first transmission member 323; and / or the number of teeth of the second output gear 60 is less than the number of teeth of the second transmission member 331; and / or the axial direction of the first output gear 50 is perpendicular to the axial direction of the second output gear 60.

[0049] Specifically, a speed reduction transmission assembly is formed between the output gear and the transmission member. The size of the output gear is smaller than that of the transmission member. By the way of a small gear driving a large gear to adjust the angle between the solar panel 20 and the horizontal plane, the output torque can be increased. Even if the volume and output torque of the first driving member 322 and the second driving member 332 themselves are small, the solar panel fixer 31 can still be driven to rotate.

[0050] Furthermore, by the fact that the axial directions of the first output gear 50 and the second output gear 60 are perpendicular to each other, it can be ensured that the vertical driving mechanism 32 and the horizontal driving mechanism 33 respectively adjust the rotation angle of the solar panel 20 in one direction.

[0051] As Figure 2As shown, the drive energy storage component 30 further includes an energy storage element 36, and the energy storage element 36 is arranged in the housing 35 for electrically connecting with the camera body 10.

[0052] Specifically, the energy storage element 36 is arranged on the bottom surface of the housing 35, and the energy storage element 36 is connected with the solar panel 20 and the camera body 10 through a cable 70. Optionally, the energy storage element 36 is a lithium battery.

[0053] As Figures 3 to 4 shown, the photosensitive component 40 includes a connection base 41, a light shielding flange 42 and a photosensitive mechanism 43. The connection base 41 is used for connecting with the solar panel 20. The light shielding flange 42 is arranged on the connection base 41, and the light shielding flange 42 divides the connection base 41 into multiple accommodating areas. There are multiple photosensitive mechanisms 43, and the multiple photosensitive mechanisms 43 are arranged in one-to-one correspondence with the multiple accommodating areas.

[0054] Specifically, the connection base 41 is arranged at one end of the solar panel 20 and is welded or detachably connected with the solar panel 20. The light shielding flange 42 is integrally presented with the connection base 41. The whole connection base 41 is divided into multiple accommodating areas through the light shielding flange 42. Each photosensitive mechanism 43 is arranged on the bottom surface of an accommodating area and is welded or detachably connected with the bottom surface.

[0055] In this embodiment, both the accommodating areas and the photosensitive mechanisms 43 are four. The four photosensitive mechanisms 43 are arranged in pairs close to each other, and the photosensitive surfaces of the photosensitive mechanisms 43 are parallel to the photosensitive surface of the solar panel 20.

[0056] Specifically, the light shielding flange 42 divides the connection base 41 into four equally spaced accommodating areas, and the four photosensitive mechanisms 43 are respectively arranged at the central positions of the connection base 41. The photosensitive surfaces of the four photosensitive mechanisms 43 being parallel to the photosensitive surface of the solar panel 20 can better reflect the irradiation angle of sunlight on the solar panel 20.

[0057] As Figure 4 shown, the photosensitive component 40 further includes a waterproof cover 44. The waterproof cover 44 is arranged on the connection base 41, and the light shielding flange and the photosensitive mechanism 43 are accommodated in the waterproof cover 44.

[0058] Specifically, the waterproof cover 44 is made of a transparent material, which can prevent water while not interfering with the normal acquisition of light data. Optionally, the surface of the waterproof cover 44 is provided with an inclined surface to prevent rainwater from remaining on the waterproof cover 44.

[0059] In this embodiment, the solar-powered camera device further includes a controller, and the controller is in signal connection with the photosensitive component 40 and the drive energy storage component 30.

[0060] Specifically, the controller controls the start and stop of the photosensitive component 40 and the driving energy storage component 30 for pre-adjustment before formal use. When there is water accumulation on the surface of the waterproof cover 44, the states of the photosensitive component 40 and the driving energy storage component 30 can be adjusted to make the water accumulation fall.

[0061] From the above description, it can be seen that the above embodiments of the present invention achieve the following technical effects: By providing a solar-powered camera device including a camera main body 10, a solar panel 20, a driving energy storage component 30, and a photosensitive component 40, the solar panel 20 is arranged to be angle-adjustable, and the driving energy storage component 30 is drivingly connected to the solar panel 20 to adjust the included angle between the solar panel 20 and the horizontal plane and / or the vertical plane. The driving energy storage component 30 is connected to the camera main body 10 for supplying energy to the camera main body 10. The photosensitive component 40 is arranged on the solar panel 20 and is signal-connected to the driving energy storage component 30. By drivingly connecting the driving energy storage component 30 to the solar panel 20 and signal-connecting the photosensitive component 40 arranged on the solar panel 20 to the driving energy storage component 30, the attitude of the driving energy storage component 30 is adjusted by using the photosensitive signal of the photosensitive component 40, and then the angle of the solar panel 20 is adjusted in the horizontal direction or the vertical direction, so that the solar panel 20 follows the sun's rotation and maintains the best receiving angle. Finally, the solar panel 20 receives sufficient sunlight, improving the energy efficiency of the work conversion and supplying energy to the camera main body 10, thereby reducing the energy cost of the device.

[0062] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0063] It should be noted that the terms "first", "second", etc. in the specification, claims, and above-mentioned drawings of the present application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances so that the embodiments of the present application described herein can be implemented in an order different from those illustrated or described herein.

[0064] The above are only the preferred embodiments of the present invention and are not used to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A solar-powered camera device, characterized in that, Comprising: A camera body (10); A solar panel (20), the angle of the solar panel (20) being adjustable; A driving and energy storage component (30), the driving and energy storage component (30) being drivingly connected to the solar panel (20) to adjust the angle between the solar panel (20) and the horizontal plane and / or the vertical plane, the driving and energy storage component (30) being connected to the camera body (10) for supplying energy to the camera body (10); A photosensitive component (40), the photosensitive component (40) being disposed on the solar panel (20) and being signal-connected to the driving and energy storage component (30).

2. The solar-powered camera device according to claim 1, characterized in that The photosensitive surface of the photosensitive component (40) is parallel to the photosensitive surface of the solar panel (20).

3. The solar-powered camera device according to claim 1, characterized in that, The driving and energy storage component (30) includes: A solar panel fixer (31), the solar panel fixer (31) being at least connected to the solar panel (20); A vertical driving mechanism (32), at least a part of the vertical driving mechanism (32) being connected to the solar panel fixer (31); A horizontal driving mechanism (33), at least a part of the horizontal driving mechanism (33) being connected to the vertical driving mechanism (32); A control board (34), the control board (34) being signal-connected to the vertical driving mechanism (32) and the horizontal driving mechanism (33).

4. The solar-powered camera device according to claim 3, characterized in that, The driving and energy storage component (30) further includes a housing (35), at least a part of the solar panel fixer (31) being disposed within the housing (35), one end of the solar panel fixer (31) being pivotally connected to the inner wall of the housing (35), the other end of the solar panel fixer (31) being connected to the solar panel (20), and the solar panel fixer (31), the vertical driving mechanism (32), the horizontal driving mechanism (33) and the control board (34) being sequentially arranged vertically within the housing (35).

5. The solar-powered camera device according to claim 4, wherein, The vertical driving mechanism (32) includes: A base (321); A first driving member (322), the first driving member (322) being disposed on the base (321), the first driving member (322) being signal-connected to the control board (34); A first transmission member (323), the first transmission member (323) being disposed on the solar panel fixer (31), the first driving member (322) being drivingly connected to the first transmission member (323) for adjusting the angle between the solar panel (20) and the horizontal plane.

6. The solar-powered camera device according to claim 5, wherein The horizontal driving mechanism (33) includes: A second transmission member (331), the second transmission member (331) being disposed at the bottom of the base (321); A second driving member (332), the second driving member (332) being disposed at the bottom of the housing (35) and the second driving member (332) being signal-connected to the control board (34), the second driving member (332) being drivingly connected to the second transmission member (331) for adjusting the angle between the base (321) and the vertical direction.

7. The solar-powered imaging device according to claim 6, wherein A self-locking component is provided inside the first driving member (322) and the second driving member (332).

8. The solar-powered camera device according to claim 6, wherein The solar-powered camera device further includes a first output gear (50) and a second output gear (60). The output ends of the first driving member (322) and the second driving member (332) are respectively connected to the first output gear (50) and the second output gear (60). The first transmission member (323) and the second transmission member (331) are both gears. The first output gear (50) and the second output gear (60) are respectively meshed with the first transmission member (323) and the second transmission member (331).

9. The solar-powered camera device according to claim 8, wherein the number of teeth of the first output gear (50) is less than the number of teeth of the first transmission member (323); and / or the number of teeth of the second output gear (60) is less than the number of teeth of the second transmission member (331); and / or the axial direction of the first output gear (50) is perpendicular to the axial direction of the second output gear (60).

10. The solar-powered camera device according to claim 4, wherein, The driving and energy storage component (30) further includes an energy storage member (36). The energy storage member (36) is disposed inside the housing (35) and is electrically connected to the camera body (10).

11. The solar-powered camera device according to claim 1, wherein The photosensitive component (40) includes: a connecting seat (41) for connecting with the solar panel (20); a light-shielding flange (42) disposed on the connecting seat (41). The light-shielding flange (42) divides the connecting seat (41) into a plurality of accommodating regions; photosensitive mechanisms (43). There are a plurality of the photosensitive mechanisms (43), and the plurality of photosensitive mechanisms (43) are provided in one-to-one correspondence with the plurality of accommodating regions.

12. The solar-powered imaging device according to claim 11, wherein, There are four accommodating regions and four photosensitive mechanisms (43). The four photosensitive mechanisms (43) are arranged in pairs close to each other, and the photosensitive surfaces of the photosensitive mechanisms (43) are parallel to the photosensitive surface of the solar panel (20).

13. The solar-powered camera device according to claim 11, characterized in that, The photosensitive component (40) further includes a waterproof cover (44). The waterproof cover (44) is disposed on the connecting seat (41), and the light-shielding flange and the photosensitive mechanisms (43) are accommodated inside the waterproof cover (44).

14. The solar-powered camera device according to any one of claims 1 to 13, characterized in that, The solar-powered camera device further includes a controller, and the controller is in signal connection with the photosensitive component (40) and the driving and energy storage component (30).