Battery used for unmanned aerial vehicle and unmanned aerial vehicle
11254429 · 2022-02-22
Assignee
Inventors
Cpc classification
B64U2201/104
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2220/20
ELECTRICITY
H01M50/247
ELECTRICITY
B64C39/024
PERFORMING OPERATIONS; TRANSPORTING
B64U50/19
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64C39/00
PERFORMING OPERATIONS; TRANSPORTING
B64C27/50
PERFORMING OPERATIONS; TRANSPORTING
H01M50/20
ELECTRICITY
Abstract
The present invention discloses an unmanned aerial vehicle including a main body, a plurality of arms, a propulsion assembly and a battery assembly, where each arm is coupled to the main body and the propulsion assembly is disposed on the each arm. The battery assembly is accommodated in a battery compartment of the main body. The battery assembly includes a shell, a battery body substantially disposed in the shell, a clamp button, and a restorable elastic piece. An end of the clamp button is mounted or connects to the shell, and the other end of the clamp button is detachably coupled to the main body. An end of the restorable elastic piece is disposed on the shell or connect to the shell, and the other end of the restorable elastic piece contacts the clamp button.
Claims
1. A multi-rotor unmanned aerial vehicle, comprising: a main body comprising a battery compartment; an arm coupled to the main body and extending laterally from the main body; a propulsion assembly disposed on the arm, wherein the propulsion assembly comprises a propeller; a battery assembly comprising a shell and a battery body disposed in the shell, wherein the battery assembly is configured to be accommodated in the battery compartment; a clamp button configured to detachably attach the battery assembly to the main body; and a restorable elastic piece configured to reset the clamp button to a position to install the battery assembly within the main body, the restorable elastic piece contacting the clamp button, the restorable elastic piece and the clamp button being two different separate components.
2. The multi-rotor unmanned aerial vehicle according to claim 1, wherein a first end of the restorable elastic piece is disposed on the shell or connects directly or indirectly to the shell.
3. The multi-rotor unmanned aerial vehicle according to claim 2, wherein the first end of the restorable elastic piece is stuck in the shell or fixed with the shell.
4. The multi-rotor unmanned aerial vehicle according to claim 2, wherein the first end of the restorable elastic piece abuts against the shell.
5. The multi-rotor unmanned aerial vehicle according to claim 1, wherein a second end of the restorable elastic piece contacting the clamp button or connecting to the clamp button.
6. The multi-rotor unmanned aerial vehicle according to claim 5, wherein the second end of the restorable elastic piece abuts against the clamp button.
7. The multi-rotor unmanned aerial vehicle according to claim 5, wherein the second end of the restorable elastic piece is coupled to the clamp button or fixed with the clamp button.
8. The multi-rotor unmanned aerial vehicle according to claim 5, wherein the second end of the restorable elastic piece is disposed on an inner side of the clamp button.
9. The multi-rotor unmanned aerial vehicle according to claim 1, wherein the restorable elastic piece includes a bent portion.
10. The multi-rotor unmanned aerial vehicle according to claim 1, wherein a first end of the clamp button is mounted directly or indirectly to the shell and a second end of the clamp button is configured to be detachably coupled to the main body.
11. The multi-rotor unmanned aerial vehicle according to claim 10, wherein the battery compartment comprises a clamping portion, the second end of the clamp button defining a hook configured to engage the clamping portion of the battery compartment.
12. The multi-rotor unmanned aerial vehicle according to claim 1, wherein the unmanned aerial vehicle comprises at least two clamp buttons, the at least two clamp buttons being separately disposed on opposite sides of the shell.
13. The multi-rotor unmanned aerial vehicle according to claim 1, wherein the clamp button comprises an anti-slip structure.
14. The multi-rotor unmanned aerial vehicle according to claim 1, wherein the restorable elastic pieces is an S-shape.
15. The multi-rotor unmanned aerial vehicle according to claim 14, wherein a first end of the restorable elastic piece is stuck in the shell and an arc surface of a second end of the restorable elastic piece contacts a lower surface of the clamp button.
16. The multi-rotor unmanned aerial vehicle according to claim 1, wherein the propeller comprises foldable rotor blades.
17. The multi-rotor unmanned aerial vehicle according to claim 1, wherein the propulsion assembly further comprises a motor, the motor being configured to drive the propeller to rotate in the air.
18. The multi-rotor unmanned aerial vehicle according to claim 17, wherein the propeller further comprises a hub, the propeller being mounted on the motor through the hub.
19. The multi-rotor unmanned aerial vehicle according to claim 1, wherein the propulsion assembly comprises a first propulsion assembly and a second propulsion assembly, the first propulsion assembly comprising a first propeller, the second propulsion assembly comprising a second propeller, wherein the first propeller rotates in clockwise direction and the second propeller rotates in counterclockwise direction.
20. The multi-rotor unmanned aerial vehicle according to claim 1, further comprising a foldable or detachable landing gear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order to more clearly describe the technology in the embodiments of the invention or prior arts, it will make a simple introduction to the drawings with respect to the embodiments or prior arts. Obviously, the following drawings are some of embodiments of the present invention. The person having ordinary skill in the art can obtain other drawings based on the following drawings without any creative work.
(2)
(3)
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(5)
DETAILED DESCRIPTION
(6) The technical solution in the present invention will herein be described clearly and fully in a combination with the drawings. Obviously, embodiments described below are part of the possible embodiments of the present invention, and not all embodiments of the present invention. Based on the embodiments described below, the embodiments, which are obtained by a person having ordinary skill in the art without creative work, are in the scope of the present invention.
(7) In the following embodiments of the present invention, unless there is an another expressly definition, the term “install”, “connected” or “connecting” should be understood in a broad sense, for example, it could be interpreted as fixed connection, or detachable connection, or integral connection. It also could be interpreted as direct connection, or indirect connection via a component. The person having ordinary skill in the art could understand specific meanings of the above terms in the present invention based on specific circumstance.
(8) Moreover, the technical features described in different embodiments described below can be combined as long as there is no conflict between each other.
(9)
(10) As illustrated in
(11) In one embodiment of the invention, the propeller 41 includes at least two rotor blades, such as two or three rotor blades. For example, referring to
(12) In an embodiment of the invention, the hub 412 engages with the driveshaft of the motor 42 through threaded connection. For example, the driveshaft is provided with a male threaded structure in the outer surface of the driveshaft. The hub 412 includes a cavity, and a female threaded structure is provided in the cavity. The hub 412 thus engages with the motor through the threaded connection.
(13) In an embodiment of the invention, the propeller 41 can be released from the motor 42 through lugs and notches. For example, the hub 412 defines at least two lugs, and the motor 42 defines at least two notches. The lugs on the hub 412 engage the notches on the motor 42.
(14) In some embodiments of the invention, the propulsion assembly includes a first propulsion assembly and a second propulsion assembly. The first propulsion assembly includes a first propeller which rotates in clockwise direction, and the second propulsion assembly includes a second propeller which rotates in counterclockwise direction. In an embodiment of the invention, the unmanned aerial vehicle includes at least one electrical component. The electrical component can be selected from the group consisting of Global Position System (GPS) module, compass, flight control module, and image processing unit. The at least one of the electrical component are disposed in a cavity formed by the main body 1 or the arm 3.
(15) In some embodiments of the invention, the unmanned aerial vehicle further includes a landing gear in order to support the unmanned aerial vehicle when the unmanned aerial vehicle is on the ground. The landing gear may be foldable. In one embodiment of the invention, the landing gear is fixed to the downside of the arm 3. In other embodiment of the invention, the landing gear is fixed to the underside of the main body 1.
(16) In some embodiments of the invention, the landing gear is detachable, in order to save the storage space.
(17)
(18) In an embodiment, the battery 2 further includes a restorable elastic piece 222. With the help of restorable elastic piece 222, the clamp button 221 can automatically return to original position. In an embodiments, referring to
(19) In some embodiments, the end 222a of the restorable elastic piece 222 is disposed on the shell 22 and abuts against the shell 22, the other end of the restorable elastic piece 222b contacts the clamp button 221 and is fixed with the clamp button 221. In other embodiments, the end 222a of the restorable elastic piece 222 is fixed with the shell 22 and the other end 222b abuts against the clamp button 221.
(20) Alternatively, in some embodiments of the invention, the end 222a of the restorable elastic piece 222 abuts against the shell and the end 222b abuts against the clamp button 221. In another embodiment, the end 222a of the restorable elastic piece 222 is stuck in the shell and the end 222b abuts against the clamp button 221. In some other embodiments of the invention, the end 222a of the restorable elastic piece 222 abuts against the shell and the end 222b is stuck in the clamp button.
(21) Referring to
(22) In an embodiment of the invention, the restorable elastic pieces 222 are mirror symmetric and have an S-shape in order to better stick in the inner side of the clamp button 221. The end 222a of the restorable elastic piece 222 is stuck in the shell 22. For example, the end 222a which is stuck in the shell can be pressed by the end 221a of the clamp button 221 which contacts this end 222a. An arc surface 222c of the end 222b contacts a lower surface of the clamp button 221. In this way, the restorable elastic piece 222 can provide the clamp button 221 with a driving force of returning to original place.
(23) Because the clamping button 221 is provided on the upper and lower sides of the shell 22, the clamp button 221 can be pressed down and the unmanned aerial vehicle can be thus moved inwards. The clamp button 221 is capable of returning to the original place automatically under the function of the restorable elastic piece 222 after hands of a user are loosen. Therefore, it is realized to detachably connect the battery 2 to the main body 1 of the unmanned aerial vehicle. It is also convenient for a user to replace a battery.
(24) Referring to
(25) Referring to
(26) Apparently, the embodiments described above are just some examples for clearly illustrating the present invention. It is not intent to limit the scope of the present invention within the embodiments described above. For a person having ordinary skill in the art, various changes or alterations can be made based on the above embodiments. It's not necessary to enumerate any and all embodiments. The obvious changes and alterations which are made based on the embodiments described above are still in the scope of the present invention.