New energy electric power storage power device
By designing a lifting and limiting mechanism for a new energy power storage device, the problem of finding take-off and landing platforms for drones in the field was solved, enabling convenient operation of drone take-off, landing, data transmission, and charging on the same platform.
Patent Information
- Application Number
- CN202511807332.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-03
- Publication Date
- 2026-02-06
AI Technical Summary
When drones are used for aerial photography in the field, they need to find flat and dry take-off and landing platforms, and data transmission needs to be carried out indoors. The limited space inside the existing drone box makes it impossible to perform other operations.
Design a new energy power storage device that provides an adjustable takeoff platform by combining a lifting mechanism and a limiting mechanism, and performs data transmission and charging on the platform.
No additional takeoff and landing platforms are needed; drones can take off, land, transmit data, and charge on the same platform, improving operational convenience.
Smart Images

Figure CN121469934A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to unmanned aerial vehicle auxiliary equipment for power supply technical field, especially to a new energy power storage power device. BACKGROUND
[0002] It is known that when the unmanned aerial vehicle is taking pictures, it needs to find a flat and dry ground, and when it is taking pictures in the wild, it needs to find a suitable take-off ground, and after the unmanned aerial vehicle finishes work, it also needs to find a suitable landing ground, and when transmitting data of the unmanned aerial vehicle, the unmanned aerial vehicle needs to be taken back to the indoor to be transmitted, and the box for placing the unmanned aerial vehicle is provided with foam to avoid the unmanned aerial vehicle from being bumped in the box, but the space in the foam is limited and cannot be used for other operations on the unmanned aerial vehicle. SUMMARY
[0003] In order to overcome the defects in the background art, the present application discloses a new energy power storage power device, which controls the height of the limiting mechanism through the lifting mechanism, so that the height of the unmanned aerial vehicle take-off platform can be adjusted according to the actual situation by the staff, and the take-off and landing platforms do not need to be found additionally, and the data transmission and charging of the unmanned aerial vehicle on the platform can also be realized, which is convenient for the staff to operate.
[0004] In order to achieve the purpose of the application, the following technical scheme is adopted: A new energy power storage power device, comprising a main body plate, a lifting mechanism is installed on the main body plate, and a limiting mechanism is installed on the lifting end of the lifting mechanism, the unmanned aerial vehicle is placed through the limiting mechanism, and the limiting mechanism is lifted through the lifting mechanism to provide a take-off platform for the unmanned aerial vehicle.
[0005] The main body plate is provided with equidistantly arranged installation grooves and grooves, and the installation grooves are arranged along the grooves.
[0006] The lifting mechanism comprises a first screw rod, a lifting rod, a turnover block, a limiting frame, a moving block, a bevel gear, a bevel gear ring, a servo motor, a motor gear and a connecting block, the first screw rod is located in the installation groove and is rotationally connected, one end of the first screw rod penetrates through the groove wall of the installation groove and is located in the groove and is fixedly connected with the bevel gear, the bevel gear ring is rotationally connected in the groove, and the bevel gear ring is meshingly connected with the bevel gear, the servo motor is fixedly connected in the groove, and the servo motor is connected with the motor gear through a motor shaft, the motor gear is meshingly connected with the bevel gear ring, the moving block is threadedly connected on the first screw rod, the connecting block is fixedly connected on the moving block, the lifting rod is rotationally connected on the connecting block, the top end of the lifting rod is connected with the limiting frame through the turnover block, and the limiting mechanism is installed on the limiting frame.
[0007] The inner ring of the bevel gear ring is provided with equidistantly arranged gear teeth, and the bevel gear ring is meshingly connected with the motor gear through the gear teeth.
[0008] The overturning block is located in the limiting frame and is rotationally connected.
[0009] The limiting mechanism comprises a base, limiting plates, a placement plate, a tightening belt, a second screw rod, a gear and an internally-threaded sleeve, the base is located on the limiting frame and is fixedly connected, a placement plate is rotationally connected in the base, equidistantly-arranged internally-threaded sleeves are rotationally connected to the outer wall of the placement plate, the gears are fixedly connected to the internally-threaded sleeves, the gears are meshingly connected with the base, the second screw rod is screwedly connected in the internally-threaded sleeve, one end of the second screw rod is rotationally connected with the limiting plate, and the tightening belt is fixedly connected between the limiting plates.
[0010] Equidistantly-arranged gear teeth are arranged at the edge of the base, and the base is meshingly connected with the gears through the gear teeth.
[0011] An insertion slot is arranged at the middle position of the placement plate, and a helical groove is arranged on the slot wall of the insertion slot.
[0012] A through groove is arranged at the middle position of the base, and the position of the through groove corresponds to the position of the insertion slot.
[0013] A self-locking rod is fixedly connected in the groove of the main plate, a semicircular protrusion is arranged on the self-locking rod, the position of the self-locking rod corresponds to the position of the insertion slot, and the semicircular protrusion on the self-locking rod is located in the helical groove and is slidingly connected.
[0014] Due to the adoption of the above technical scheme, the present application has the following beneficial effects: The new energy power storage power device controls the height of the limiting mechanism through the lifting mechanism, facilitates the staff to adjust the height of the unmanned aerial vehicle take-off platform according to the actual situation, does not need to find another take-off and landing platform, and can also perform data transmission and charging on the unmanned aerial vehicle on the platform, facilitating the staff to operate. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a schematic diagram of the three-dimensional structure of the present application; Figure 2 It is a sectional view of the present application; Figure 3 It is an enlarged structural schematic diagram of A of the present application; Figure 2 It is an enlarged structural schematic diagram of B of the present application; Figure 4 Figure 2 It is an enlarged structural schematic diagram of B of the present application; 1, main plate; 2, lifting mechanism; 201, first screw; 202, lifting rod; 203, turnover block; 204, limiting frame; 205, moving block; 206, bevel gear; 207, bevel gear; 208, servo motor; 209, motor gear; 210, connecting block; 3, limiting mechanism; 301, base; 302, limiting plate; 303, placing plate; 304, tightening belt; 305, second screw; 306, gear; 307, internally threaded sleeve; 4, self-locking rod. DETAILED DESCRIPTION
[0016] The application can be explained in detail by the following examples, and the purpose of the disclosure is to protect all technical improvements within the scope of the application.
[0017] Combine the drawings Figures 1-4 The new energy power storage power device comprises a main plate 1, a lifting mechanism 2 is installed on the main plate 1, and a limiting mechanism 3 is installed on the lifting end of the lifting mechanism 2. The limiting mechanism 3 is used for placing the unmanned aerial vehicle. The lifting mechanism 2 is used for lifting the limiting mechanism 3 to provide a take-off platform for the unmanned aerial vehicle. The limiting mechanism 3 is used for placing and locking the position of the unmanned aerial vehicle. Two devices do not need to be carried at the same time. The electrical equipment in the lifting mechanism 2 is connected with an external control device. The electrical equipment in the lifting mechanism 2 is controlled to work by the external control device. The main plate 1 can also place a transmission device and an unmanned aerial vehicle charging device for the unmanned aerial vehicle. The results of the unmanned aerial vehicle aerial photography and the working state of the unmanned aerial vehicle can be detected in time.
[0018] The main plate 1 is provided with equidistantly arranged mounting grooves and grooves, and the mounting grooves are arranged along the grooves.
[0019] The lifting mechanism 2 comprises a first screw 201, a lifting rod 202, a turnover block 203, a limiting frame 204, a moving block 205, a bevel gear 206, a bevel gear 207, a servo motor 208, a motor gear 209 and a connecting block 210. The first screw 201 is rotatably connected in the mounting groove, one end of the first screw 201 penetrates through the groove wall of the mounting groove and is fixedly connected with the bevel gear 206 in the groove, the bevel gear 207 is rotatably connected in the groove, and the bevel gear 207 is meshingly connected with the bevel gear 206, the servo motor 208 is fixedly connected in the groove, and the servo motor 208 is connected with the motor gear 209 through a motor shaft, the motor gear 209 is meshingly connected with the bevel gear 207, the moving block 205 is threadedly connected on the first screw 201, the connecting block 210 is fixedly connected on the moving block 205, the lifting rod 202 is rotatably connected on the connecting block 210, the top end of the lifting rod 202 is connected with the limiting frame 204 through the turnover block 203, and the limiting mechanism 3 is installed on the limiting frame 204.
[0020] The inner ring of the bevel gear 207 is provided with gear teeth arranged at equal intervals, and the bevel gear 207 is connected with the motor gear 209 through the gear teeth.
[0021] The turnover block 203 is located in the limiting frame 204 and is rotationally connected.
[0022] The limiting mechanism 3 comprises a base 301, limiting plates 302, a placing plate 303, tightening belts 304, second screw rods 305, gears 306 and internally-threaded sleeves 307. The base 301 is fixedly connected to the limiting frame 204, and the placing plate 303 is rotationally connected in the base 301. The externally-threaded sleeves 307 arranged at equal intervals are rotationally connected to the outer wall of the placing plate 303, and the gears 306 are fixedly connected to the internally-threaded sleeves 307. The gears 306 are meshingly connected with the base 301. The second screw rods 305 are screw-connected to the internally-threaded sleeves 307, and one end of each second screw rod 305 is rotationally connected to a limiting plate 302. The tightening belts 304 are fixedly connected between the limiting plates 302, and the limiting plates 302 are provided with anti-skid protrusions.
[0023] The edge of the base 301 is also provided with gear teeth arranged at equal intervals, and the base 301 is meshingly connected with the gears 306 through the gear teeth.
[0024] The middle position of the placing plate 303 is provided with an insertion slot, and the slot wall of the insertion slot is provided with a helical groove.
[0025] The middle position of the base 301 is provided with a through slot, and the position of the through slot corresponds to the position of the insertion slot.
[0026] The self-locking rod 4 is fixedly connected in the recess of the main plate 1, and the self-locking rod 4 is provided with a semicircular protrusion. The self-locking rod 4 corresponds to the position of the insertion slot, and the semicircular protrusion of the self-locking rod 4 is located in the helical groove and is slidingly connected.
[0027] The new energy power storage power device, in use, servo motor 208 drives bevel gear 207 to rotate through motor gear 209, bevel gear 207 drives first screw rod 201 fixed with bevel gear 206 to rotate in the process of rotating, moves control block 205 through the rotation of first screw rod 201, changes the inclination state of lifting rod 202 through the movement of control block 205, controls the lifting height of base 301 through lifting rod 202, the placing plate 303 in base 301 is caused to rotate under the action of self-locking rod 4 in the process of lifting, the inner thread sleeve 307 on the placing plate 303 is caused to rotate under the action of gear 306 in the process of rotating, the second screw rod 305 in the inner thread sleeve 307 is extended, and the limiting plate 302 on the second screw rod 305 is separated from the unmanned aerial vehicle, forming an unmanned aerial vehicle take-off platform.
[0028] The part of the application not described in detail is prior art, although the application is specifically shown and introduced in combination with the preferred embodiment, and there are many specific implementation technical solutions and methods and ways, and the above-mentioned is only the preferred embodiment of the application, but the skilled in the art should understand that various changes can be made to the application in form and detail without departing from the spirit and scope of the application defined in the appended claims, and all are within the protection scope of the application.
Claims
1. A new energy power storage device, comprising a main body plate, characterized in that: The main body plate is equipped with a lifting mechanism, and a limiting mechanism is installed on the lifting end of the lifting mechanism. The drone is placed through the limiting mechanism, and the lifting mechanism lifts the limiting mechanism to provide a takeoff platform for the drone.
2. The new energy power storage device according to claim 1, characterized in that: The main body plate is provided with equidistant mounting slots and grooves, and the mounting slots are arranged along the grooves.
3. The new energy power storage device according to claim 1, characterized in that: The lifting mechanism includes a first screw, a lifting rod, a flipping block, a limiting frame, a moving block, a bevel gear, a bevel gear ring, a servo motor, a motor gear, and a connecting block. The first screw is located in the mounting groove and is rotatably connected. One end of the first screw passes through the groove wall and is located in the groove and is fixedly connected to the bevel gear. The bevel gear ring is rotatably connected in the groove and meshes with the bevel gear. The servo motor is fixedly connected in the groove and is connected to the motor gear through a motor shaft. The motor gear meshes with the bevel gear ring. The moving block is threaded onto the first screw, and the connecting block is fixedly connected to the moving block. The lifting rod is rotatably connected to the connecting block, and the top end of the lifting rod is connected to the limiting frame through the flipping block. A limiting mechanism is installed on the limiting frame.
4. The new energy power storage device according to claim 3, characterized in that: The inner ring of the bevel gear ring is provided with equidistantly arranged gear teeth, and the bevel gear ring is connected to the motor gear through the gear teeth.
5. A new energy power storage device according to claim 3, characterized in that: The flipping block is located inside the limiting frame and is rotatably connected.
6. The new energy power storage device according to claim 1, characterized in that: The limiting mechanism includes a base, a limiting plate, a placement plate, a tightening band, a second screw, a gear, and an internally threaded sleeve. The base is located on the limiting frame and is fixedly connected, and the placement plate is rotatably connected inside the base. The outer wall of the placement plate is rotatably connected to an equidistantly arranged internally threaded sleeve, and a gear is fixedly connected to the internally threaded sleeve. The gear meshes with the base. The internally threaded sleeve is internally threadedly connected to the second screw, and one end of the second screw is rotatably connected to the limiting plate. A tightening band is fixedly connected between the limiting plates.
7. A new energy power storage device according to claim 6, characterized in that: The base is also provided with equidistantly arranged gear teeth at its edge, and the base is connected to the gears through the meshing of the gear teeth.
8. A new energy power storage device according to claim 6, characterized in that: The placement plate has an insertion slot in the middle, and the wall of the insertion slot has a spiral groove.
9. A new energy power storage device according to claim 6, characterized in that: The base has a through groove in the middle, and the position of the through groove corresponds to the position of the insertion groove.
10. A new energy power storage device according to claim 1, characterized in that: A self-locking rod is fixedly connected in the groove of the main plate, and a semi-circular protrusion is provided on the self-locking rod. The self-locking rod is positioned corresponding to the insertion groove, and the semi-circular protrusion on the self-locking rod is located in the spiral groove and is slidably connected.