Systems and Methods for Solar Communication and Defense Networks
20230382563 ยท 2023-11-30
Inventors
Cpc classification
B64G1/2422
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64G1/10
PERFORMING OPERATIONS; TRANSPORTING
B64G1/68
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Generally, this disclosure provides systems and methods for solar communication and defense networks. A system may comprise a sun and a plurality of celestial bodies; a plurality of mutual orbits of the sun and celestial bodies; and a plurality of spacecraft each of which comprises at least a transmitter, a receiver, an antenna, a sensing device that is capable of monitoring and detecting space objects, a system that is able to adjust the orbit, and a system that is able to intercept space objects.
Claims
1. A system for solar communication and defense networks, or comprising: a sun and a plurality of celestial bodies; a plurality of mutual orbits of the sun and celestial bodies; and a plurality of spacecraft each of which comprises at least a transmitter, receiver, an antenna, a sensing device that is capable of monitoring and detecting space objects, a system that is able to adjust the orbit, and a system that is able to intercept space objects.
2. The system of claim 1, wherein each of the said mutual orbits of the sun and celestial bodies comprises five Lagrange points where the gravitational forces of the two large bodies and the centrifugal force balance each other.
3. The system of claim 1, wherein said spacecraft are deployed to Lagrange points of each mutual orbit of the sun and celestial bodies.
4. The system of claim 1, wherein said transmitter and receiver of a spacecraft comprise circuits and protocols to transmit and receive radio or optical signals, spanning a wide range of frequencies from MHz, GHz to millimeter wave (mmWave), Terahertz, infrared or optical frequencies.
5. The system of claim 1, wherein said antenna includes an antenna and antenna system, and is configured to form beams pointing to designated directions with particular beamwidths and gains that are amenable to transmission or reception.
6. The system of claim 1, wherein said sensing device of a spacecraft comprise circuits and protocols to monitor and detect the space object, spanning a wide range of frequencies from MHz, GHz to millimeter wave (mmWave), Terahertz (THz), infrared, optical frequencies, ultraviolet frequencies, X-rays, Gamma-rays.
7. The system of claim 1, wherein said system that is able to adjust the orbit comprises hardware, and protocols to adjust the position, gesture, mobility, and velocity of spacecraft.
8. The system of claim 1, wherein said system that is able to intercept space objects comprises hardware, and protocols to adjust the spacecraft and commands the spacecraft to perform intercepting strategies.
9. A method of communications and defense across the solar system using broad networks deployed in the solar system, the method comprising: deploying spacecraft into Lagrange points of each mutual orbit of the Sun and a celestial body; performing communications among spacecraft, between spacecraft, and any artificial infrastructure on any celestial body; performing monitoring of the space and detection of the space object which can pose a threat to the safety of humanity and property; performing interception and mitigation of the space object which can pose a threat to the safety of humanity and property.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The present disclosure is illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings and in which like reference numerals refer to similar elements and in which:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021] Some embodiments of the present disclosure and variations thereof, relate to wireless communications systems. Some of these embodiments may comprise computer software. In some of these embodiments, software may be integrated into hardware, including, without limitation, uniquely designed hardware for running embodiment software.
[0022]
[0023] During a typical orbital deployment operation, one or more spacecraft will be sent to each of the five Lagrange points, namely 108, 110, 112, 114, and 116. The spacecraft can be launched directly from Earth or any other celestial body.
[0024] It may be appreciated by a person with ordinary skill in the art that a planet 106 can be any planet in a solar system. There can be one or multiple artificial objects such as spacecraft or satellites, deployed into the five Lagrange points.
[0025]
[0026] It may be appreciated by a person with ordinary skill in the art that one or several artificial entities, such as spacecraft or satellites, can be positioned at each of the four Lagrange points in the mutual orbits of the Sun 222 and a planet.
[0027]
[0028] During a typical communication operation, all spacecraft can communicate with each other in a wireless way including radio and optical frequencies. All spacecraft can communicate directly with any planet's communication infrastructure when the communication quality is satisfied.
[0029] During a typical communication relay operation, when Solar conjunction for Mars 316 and Earth 318 (Mars and Earth are aligned on the opposite sides of the Sun) happens, spacecraft 344 and 346 on the Lagrange points L.sub.4, S-M, and L.sub.5, S-M relay the wireless signals from Mars 316 to Earth 318 or from Earth 318 to Mars 316.
[0030] During another typical communication relay operation, when Solar conjunction for Mars 316 and Earth 318 (Mars and Earth are aligned on the opposite sides of the Sun) happens, spacecraft 352 and 354 on the Lagrange points L.sub.4, S-E, and L.sub.5, S-E relay the wireless signals from Mars 316 to Earth 318 or from Earth 318 to Mars 316.
[0031] During a typical sky survey operation, any spacecraft within the SCADN framework 300, potential hazards to Earth, human lives, and property on other celestial bodies or in space can be identified and monitored, ensuring overall safety.
[0032] It may be appreciated by a person with ordinary skill in the art that any radio and optical frequencies can be utilized by any spacecraft within the SCADN framework 300 to fulfill communication and survey purposes.
[0033] It may be appreciated by a person with ordinary skill in the art that these established links within the SCADN framework 300 can be utilized to transmit information and energy simultaneously, synchronously, or asynchronously.
[0034]
[0035] Referring now to
[0036] If the wireless signal is impacted by some objects or events, including but not limited to the Sun, solar flare, coronal mass ejection, cosmic rays/radiation, celestial bodies, and other artificial interferences, the SCADN operation step 406 should be initialized to scan and examine the entire SCADN network to find another one or multiple spacecraft/satellites, or communication facilities on/over another one or more celestial bodies. Subsequently, the available spacecraft/satellites or communication facilities will function as communication relays.
[0037] If performing the SCADN operation step 406 can lead to better and satisfying signal quality in the step of conditional decision about signal quality improvement 408, the wireless communications based on the SCADN framework process 400 will re-enter step 402, otherwise, it will re-enter step 406 until better and satisfying signal quality is obtained.
[0038] It may be appreciated by a person with ordinary skill in the art that the Sun can introduce very severe interference to the radio and optical signals over a very large spectrum, particularly when the signal propagation path is very close to the Sun.
[0039] It may be appreciated by a person with ordinary skill in the art that every step of the wireless communications based on the SCADN framework process 400 may involve a series of protocols and artificial intelligence (AI) aided management.
[0040]
[0041] During a typical operation of the SCADN network detecting, intercepting, and mitigating space objects, the SCADN network surveys the sky, detects the potential object to impact Earth 568, and calculates the trajectory of the identified object to impact 570. Furthermore, the SCADN network sends spacecraft/satellites and artificial objects to intercept the identified object to impact 568. In the exemplary situation, spacecraft 542, 550, and 560 on orbits L.sub.3, S-M, L.sub.3, S-E, and L.sub.4, S-V, and the object 564 will be mobilized to intercept the identified object to impact 568.
[0042] It may be appreciated by a person with ordinary skill in the art that any spacecraft/satellites within the SCADN network can be commanded to intercept the identified space object. One or multiple times of interceptions by one or multiple spacecraft might be required to completely mitigate the threat of space objects.
[0043] It may be appreciated by a person with ordinary skill in the art that the overall strategy of detection and interception can be performed both manually and by AI.
[0044] It may be appreciated by a person with ordinary skill in the art that the spacecraft/satellites can be equipped with devices and methods that can facilitate the interception, including but not limited to explosive devices, kinetic impact devices, laser ablation, ion beam shepherd, focused solar energy.
[0045]
[0046] Referring now to
[0047] It may be appreciated by a person with ordinary skill in the art that the spacecraft/satellites can be equipped with devices and methods that can facilitate the interception, including but not limited to explosive devices, kinetic impact devices, laser ablation, ion beam shepherd, focused solar energy. Using which type(s) of mitigation technology depends on the actual application scenario and many factors including but not limited to, the dimension, mass, and threat level of the space object.
[0048] It may be appreciated by a person with ordinary skill in the art that the process of detecting, intercepting and mitigating space objects based on the SCADN framework 600 may involve a series of protocols and artificial intelligence (AI) aided management.
[0049]
[0050] During a typical operation of spacecraft/satellites deployment based on the SCADN framework, one or multiple launching vehicles such as 736, 738, 740, 742, 744, 746, 748, 750, 752, will carry one or multiple spacecraft/satellites such as 720, 722, 724, 726, 728, 730, 732, into the orbits such as 702, 704, and 706.
[0051] It may be appreciated by a person with ordinary skill in the art that launching vehicles can be launched from any possible celestial body including but not limited to, Moon 716, Europa 744.
[0052] It may be appreciated by a person with ordinary skill in the art that spacecraft/satellites such as 720, 722, 724, 726, 728, 730, 732, may require further orbital adjustment so that they can be positioned in the expected positions such as Lagrange points.
[0053] It may be appreciated by a person with ordinary skill in the art that launching vehicles can help deploy one or multiple spacecraft/satellites into further orbits other than the mutual orbit of the Sun and Saturn.
[0054] It may be appreciated by a person with ordinary skill in the art that the process of spacecraft/satellites deployment based on the SCADN framework may involve a series of protocols and artificial intelligence (AI) aided management.