METHOD FOR FLIGHT ON MOON AND LUNAR FLIGHT DEVICE
20220135257 ยท 2022-05-05
Inventors
Cpc classification
B64G2004/005
PERFORMING OPERATIONS; TRANSPORTING
B64G1/1071
PERFORMING OPERATIONS; TRANSPORTING
B64G1/10
PERFORMING OPERATIONS; TRANSPORTING
B64G1/409
PERFORMING OPERATIONS; TRANSPORTING
B64G1/403
PERFORMING OPERATIONS; TRANSPORTING
B64G99/00
PERFORMING OPERATIONS; TRANSPORTING
F05D2210/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64G1/66
PERFORMING OPERATIONS; TRANSPORTING
F02K99/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64G1/401
PERFORMING OPERATIONS; TRANSPORTING
E21C51/00
FIXED CONSTRUCTIONS
International classification
B64G1/40
PERFORMING OPERATIONS; TRANSPORTING
B64G1/42
PERFORMING OPERATIONS; TRANSPORTING
B64G1/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed are a method of flying on the moon and a device for flying using the method. A medium on a surface of a moon and a medium accelerating module are used in the flying method. The medium is transferred into the medium accelerating module, accelerated by the medium accelerating module, and ejected out of the medium accelerating module by using a power supply. A counterforce is generated in accordance with the momentum conservation, and the counterforce overcomes the lunar gravity and drives a load to take off. The method is suitable for the environment of the moon where flight by means of atmospheric buoyancy is impossible due to the shortage of atmosphere.
Claims
1. A method of flying on a moon, which uses a medium on the moon and a medium accelerating module, the method comprising: by using a power supply, transferring the medium into the medium accelerating module, accelerating the medium by the medium accelerating module and ejecting the medium out of the medium accelerating module, wherein a counterforce is generated in accordance with momentum conservation, and wherein the counterforce overcomes a lunar gravity and drives a load to take off.
2. The method of flying on the moon of claim 1, wherein the medium is a solid medium or a fluid medium.
3. The method of flying on the moon of claim 2, wherein the solid medium is one or more of soil, gravel, and rock, and the fluid medium is water.
4. The method of flying on the moon of claim 1, wherein the medium accelerating module comprises a driving unit and a rotating unit, wherein the driving unit drives the rotating unit to rotate by using the power supply, the medium is transferred to the rotating unit, and the medium is accelerated by the rotating unit and ejected outside.
5. The method of flying on the moon of claim 4, wherein the driving unit is an electric motor or a motor and the rotating unit is a blade or an impeller.
6. (canceled)
7. The method of flying on the moon of claim 1, wherein the medium accelerating module is an electromagnetic device, the medium is polarized and then input into the electromagnetic device, and the medium is accelerated and ejected out of the electromagnetic device by using an electromagnetic field.
8. The method of flying on the moon of claim 1, wherein the power supply is one or more of a generator, a storage battery, a remote energy transmission power supply, and a build-in nuclear battery.
9. The method of flying on the moon of claim 1, wherein the power supply is a solar power station on the moon which converts solar energy into electric energy, to supply power to the driving unit.
10. The method of flying on the moon of claim 1, wherein the medium is transferred to the medium accelerating module by transmission, vibration, or free fall.
11. The method of flying on the moon of claim 1, wherein the method further comprises: landing before the medium is exhausted; and taking off again after the medium is reloaded.
12. The method of flying on the moon of claim 1, wherein the medium accelerating module includes a driving unit and a rotating unit, and a diameter and a rotating speed of the rotating unit and a massflow rate of the ejected medium are determined, to determine a take-off weight.
13. A device for flying on a moon, comprising: a power supply; a medium accelerating module; and a medium storage unit, wherein, in an operating state, the power supply supplies electric power to the medium accelerating module, a medium is transferred from the medium storage unit to the medium accelerating module, and is accelerated by the medium accelerating module and ejected out of the medium accelerating module to generate a counterforce, and wherein the counterforce overcomes a lunar gravity, and the device for flying on the moon is driven to take off.
14. The device for flying on the moon of claim 13, further comprising: an ejecting unit, and the medium is ejected out of the medium accelerating module through the ejecting unit.
15. The device for flying on the moon of claim 14, wherein the ejecting unit comprises a first ejecting unit and a second ejecting unit, a counterforce generated by the medium accelerated and ejected out through the first ejecting unit overcomes the lunar gravity, and a counterforce generated by the medium ejected out through the second ejecting unit controls a flight direction of the device for flying on the moon.
16. The device for flying on the moon of claim 15, wherein the first ejecting unit is disposed on a bottom of the device for flying on the moon, and the second ejecting unit is disposed on a side of the device for flying on the moon.
17. The device for flying on the moon of claim 13, wherein the power supply is a generator or a storage battery.
18. The device for flying on the moon of claim 17, wherein the generator converts solar energy into electric energy.
19. The device for flying on the moon of claim 17, wherein a solar panel is disposed on the device for flying on the moon, and the solar panel receives solar energy and converts the received solar energy into electric energy.
20. The device for flying on the moon of claim 17, wherein the storage battery is charged by solar energy through a solar power station on the moon, or through a solar panel provided on the device for flying on the moon.
21. (canceled)
22. The device for flying on the moon of claim 13, wherein the device for flying further comprises one or more of a detector, a transceiver, and a controller.
23. (canceled)
24. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0038] The present disclosure will be further described in detail below in conjunction with the embodiments. It should be pointed out that the following embodiments are intended to facilitate the understanding of the present disclosure without any limiting effect.
[0039] Reference numerals in
[0040] 1: aircraft body; 2: solar panel; 3: detector A; 4: detector B; 5: transceiver; 6: nozzle; 7: first nozzle; 8: lunar soil; 9: solar power station; 10: lunar soil grabbing and filtering device; 11: power supply; 12: high-speed motor; 13: impeller; 14: lunar soil storage container; 15: central processing unit; 16: power generation device; 17: second nozzle; 19: support wheel.
Embodiment 1
[0041] As illustrated in
[0042] In the operating state, the power supply 16 supplies electric power to the high-speed motor 12, the high-speed motor 12 drives the impeller 13 to rotate at a high speed. The lunar soil 8 falls from the lunar soil storage container 14 to the impeller 13, is accelerated by the high-speed rotating impeller 13, and is ejected out through a nozzle 6, and a generated counterforce overcomes the lunar gravity and drives the device for flying to take off on the surface of the moon.
[0043] The device for flying further includes a detector A 3 and a detector B 4 for detecting and researching.
[0044] The device for flying further includes a transceiver 5 for communication.
[0045] The device for flying further includes a central controller 15 for coordinating and controlling the entire device for flying.
[0046] In this embodiment, the lunar soil 8 is grabbed into the lunar soil storage container 14 from the outside of the device for flying by a lunar soil grabbing and filtering device 10. The amount of the lunar soil in the lunar soil storage container 14 is 30 Kg, the mass flow rate of the ejected lunar soil 8 is 0.1 Kg/s, and there may be arrive a 300-second flight, which can meet certain requirements for scientific exploration and engineering.
[0047] Before the lunar soil 8 is exhausted, the device for flying achieves a soft landing, loads the lunar soil 8 by the lunar soil grabbing and filtering device 10, and then takes off again.
Embodiment 2
[0048] As illustrated in
[0049] In the operating state, the power supply 11 supplies electric power to the high-speed motor 12, the high-speed motor 12 drives the impeller 13 to rotate at a high speed. The lunar soil 8 falls from the lunar soil storage container 14 to the impeller 13, is accelerated by the high-speed rotating impeller 13, and is ejected out through a nozzle 6, and a generated counterforce overcomes the lunar gravity and drives the device for flying to take off on the surface of the moon.
[0050] In this embodiment, the power supply 11 is a storage battery, and the on-board storage battery may be quickly charged by a lunar solar power station 9 when necessary.
[0051] In addition, in this embodiment, the lunar soil 8 is grabbed into the lunar soil storage container 14 from the outside of the device for flying by a lunar soil grabbing and filtering device 10. Before the lunar soil 8 is exhausted, the device for flying achieves a soft landing, loads the lunar soil 8 by the lunar soil grabbing and filtering device 10, and then takes off again.
[0052] The device for flying further includes a detector A 3 and a detector B 4 for detecting and researching.
[0053] The device for flying further includes a transceiver 5 for communication.
[0054] The device for flying further includes a central controller 15 for coordinating and controlling the entire device for flying.
Embodiment 3
[0055] In this embodiment, the structure of the device for flying on the moon is basically the same as that of the embodiment 2, except that the solar power station 9 is replaced by a solar panel 2, the solar panel 2 is disposed on the device for flying, thus, when the power is insufficient, the device for flying charges the storage battery 11 through the solar panel 2.
[0056] In this embodiment, the flight method of the device for flying is the same as that in the embodiment 1.
Embodiment 4
[0057] In this embodiment, as illustrated in
[0058] Two solar panels 2 are disposed on both sides of the aircraft body 1. Since there is no atmospheric resistance on the moon, the solar panels may be installed on the upper part of the aircraft to provide electric energy to the high-speed motor.
[0059] In the operating state, the solar panel 2 supplies electric power to the high-speed motor, the high-speed motor drives the impeller to rotate at a high speed. The lunar soil 8 falls from the lunar soil storage container to the impeller, is accelerated by the high-speed rotating impeller, and is ejected out through a first nozzle 6 and a second nozzle 7. The first nozzle 6 is disposed on the side surface of the aircraft body 1, a counterforce generated by the ejected lunar soil is used to control the flight direction; the second nozzle 7 is disposed on the bottom surface of the aircraft body 1, a counterforce generated by the ejected lunar soil is used to overcome the lunar gravity.
[0060] In this embodiment, the device for flying further includes a support wheel 9, which is disposed on the side of the aircraft body 1, for maintaining the attitude of the device for flying and buffering for take-off and landing.
[0061] In addition, in this embodiment, before the lunar soil 8 is exhausted, the device for flying is soft landing, loads the lunar soil 8 and then takes off again.
[0062] The device for flying further includes a detector A 3 and a detector B 4 for detecting and researching.
[0063] The device for flying further includes a transceiver 5 for communication.
[0064] The device for flying further includes a central controller 15 for coordinating and controlling a series of actions of the device for flying including take-off, detection, timely landing and replenishment, etc.
Embodiment 5
[0065] In this embodiment, the structure of the device for flying on the moon is basically the same as that of the embodiment 4, except that since there is no atmospheric resistance on the moon, a solar panel 2 is installed on the top of the aircraft body and is vertically disposed, as illustrated in
[0066] In this embodiment, the flight method of the device for flying is the same as that in the embodiment 4.
Embodiment 6
[0067] In this embodiment, the structure of the device for flying on the moon is basically the same as that of the embodiment 4, except that the solar panel 2 is replaced by a power generation device 16 disposed inside the aircraft body 1, as illustrated in
[0068] The above-mentioned embodiments describe the technical solutions of the present disclosure in detail. It should be understood that the embodiments are only specific embodiments of the present disclosure and are not intended to limit the present disclosure. Any modification, supplement or similar substitution within the scope of the principle of the present disclosure shall be included in the protection scope of the present disclosure.