IP Library › Granted Patent US 12,473,102
Granted Patent B2
US 12,473,102 · App. 18/281,474 · Granted Nov 18, 2025

Satellite system with orbital debris avoidance

Inventors: Leonard Vance (Tucson, AZ); Jose Maria Fernandez Moreno (Tucson, AZ); Jekan Thangavelautham (Tucson, AZ)
Assignee: Arizona Board of Regents on Behalf of the University of Arizona
B64G1/68B64G1/2429
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Quick Facts
Patent No.
US 12,473,102
App. No.
18/281,474
Granted
Nov 18, 2025
Kind
B2
Abstract

The present disclosure provides a satellite system with orbital debris avoidance. In one embodiment, the satellite system includes debris sensor circuitry to scan orbital debris items in an orbital debris field; and sensor controller circuitry to determine a search window within the orbital debris field based on, at least, uncertainties associated with a velocity of the satellite (Vsatellite) and uncertainties associated with a velocity of at least one debris item (Vdebris), the sensor controller circuitry also to control the debris sensor circuitry to detect the at least one debris item within the search window.

Claims (45)

1 . A satellite system with orbital debris avoidance, comprising:

debris sensor circuitry to scan orbital debris items in an orbital debris field; and

sensor controller circuitry to determine a search window within the orbital debris field based on, at least, uncertainties associated with a velocity of the satellite (Vsatellite) and uncertainties associated with a velocity of at least one debris item (Vdebris), the sensor controller circuitry also to control the debris sensor circuitry to detect the at least one debris item within the search window;

wherein:

the search window is defined within a debris position uncertainty zone; and

the search window is a field angle Θ based on the uncertainties associated with the velocity of the satellite (Vsatellite) and the uncertainties associated with the velocity of the at least one debris item (Vdebris).

2 . The satellite system of claim 1 , wherein the sensor controller circuitry further to determine the search window based on uncertainties associated with the debris sensor circuitry.

3 . The satellite system of claim 1 , wherein the sensor controller circuitry further to determine the search window based on a size of the satellite and uncertainties associated with a relative velocity (Vrel) between the satellite and the at least one debris item.

4 . The satellite system of claim 1 , further comprising collision prediction circuitry to generate collision alert data based on space Vdebris and Vsatellite; wherein the collision alert data includes approximate time of collision between the satellite and the at least one debris item.

5 . The satellite system of claim 4 , wherein the sensor controller circuitry further to determine the search window based on the collision alert data.

6 . The satellite system of claim 1 , wherein the sensor controller circuitry further to generate avoidance instructions to avoid a collision between the satellite and at least one debris item based on the detection of the at least one debris item within the search window.

7 . The satellite system of claim 1 , wherein the sensor controller circuitry also to control the debris sensor circuitry to scan within the search window according to a predefined scan pattern.

8 . The satellite system of claim 1 , wherein the debris sensor circuitry comprises laser circuitry to detect the at least one debris item.

9 . A method for a satellite to identify and avoid space debris, comprising:

determining, by sensor controller circuitry, a search window within an orbital debris field based on, at least, uncertainties associated with a velocity of the satellite (Vsatellite) and uncertainties associated with a velocity of at least one debris item (Vdebris) within the debris field; and

controlling, by the sensor controller circuitry, debris sensor circuitry to detect the at least one debris item within the search window;

wherein:

the search window is defined within a debris position uncertainty zone; and

the search window is a field angle θ based on the uncertainties associated with the velocity of the satellite (Vsatellite) and the uncertainties associated with the velocity of the at least one debris item (Vdebris).

10 . The method of claim 9 , further comprising determining, by the sensor controller circuitry, the search window based on uncertainties associated with the debris sensor circuitry.

11 . The method of claim 9 , further comprising determining, by the sensor controller circuitry, the search window based on a size of the satellite and uncertainties associated with a relative velocity (Vrel) between the satellite and the at least one debris item.

12 . The method of claim 9 , further comprising generating, by collision prediction circuitry, collision alert data based on space Vdebris and Vsatellite; wherein the collision alert data includes approximate time of collision between the satellite and the at least one debris item.

13 . The method of claim 12 , wherein the sensor controller circuitry further to determine the search window based on the collision alert data.

14 . The method of claim 9 , further comprising generating, by collision prediction circuitry, avoidance instructions to avoid a collision between the satellite and at least one debris item based on the detection of the at least one debris item within the search window.

15 . The method of claim 9 , further comprising controlling the debris sensor circuitry, by the sensor controller circuitry, to scan the debris items within the search window according to a predefined scan pattern.

16 . The method of claim 9 , wherein the debris sensor circuitry comprises laser circuitry to detect the at least one debris item.

17 . A non-transitory computer readable device including instructions that, when executed by processor circuitry, cause the processor circuitry to perform operations comprising:

determine a search window within an orbital debris field based on, at least, uncertainties associated with a velocity of the satellite (Vsatellite) and uncertainties associated with a velocity of at least one debris item (Vdebris) within the debris field; and

control debris sensor circuitry to detect the at least one debris item within the search window;

wherein:

the search window is defined within a debris position uncertainty zone; and

the search window is a field angle θ based on the uncertainties associated with the velocity of the satellite (Vsatellite) and the uncertainties associated with the velocity of the at least one debris item (Vdebris).

18 . The non-transitory computer readable device of claim 17 including instructions that, when executed by the processor circuitry, cause the processor circuitry to perform operations further comprising:

determine the search window based on uncertainties associated with the debris sensor circuitry.

19 . The non-transitory computer readable device of claim 17 including instructions that, when executed by the processor circuitry, cause the processor circuitry to perform operations further comprising:

determine the search window based on a size of the satellite and uncertainties associated with a relative velocity (Vrel) between the satellite and the at least one debris item.

20 . The non-transitory computer readable device of claim 17 including instructions that, when executed by the processor circuitry, cause the processor circuitry to perform operations further comprising:

determine collision alert data based on space Vdebris and Vsatellite; wherein the collision alert data includes approximate time of collision between the satellite and the at least one debris item.

21 . The non-transitory computer readable device of claim 20 including instructions that, when executed by the processor circuitry, cause the processor circuitry to perform operations further comprising:

determine the search window based on the collision alert data.

22 . The non-transitory computer readable device of claim 17 including instructions that, when executed by the processor circuitry, cause the processor circuitry to perform operations further comprising:

generate avoidance instructions to avoid a collision between the satellite and at least one debris item based on the detection of the at least one debris item within the search window.

23 . The non-transitory computer readable device of claim 17 including instructions that, when executed by the processor circuitry, cause the processor circuitry to perform operations further comprising:

control the debris sensor circuitry to scan the debris items within the search window according to a predefined scan pattern.

24 . The non-transitory computer readable device of claim 17 , wherein the debris sensor circuitry comprises laser circuitry to detect the at least one debris item.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 29, 2025
From: VANCE, LEONARD; MORENO, JOSE MARIA FERNANDEZ; THANGAVELAUTHAM, JEKAN
To: ARIZONA BOARD OF REGENTS ON BEHALF OF THE UNIVERSITY OF ARIZONA
Reel/Frame 070973/0025 →
Continuity (2)
Provisional Application 63159945 · Mar 11, 2021
Related Publication 20240150044A1 · May 9, 2024
References Cited (21)
US 8511614B2 · Robinson · 2013 [cited by examiner]
US 8833702B2 · Briskman · 2014 [cited by examiner]
US 9189451B1 · Freedman · 2015 [cited by examiner]
US 20080033648A1 · Kelly · 2008 [cited by examiner]
US 20100049440A1 · Alfano · 2010 [cited by examiner]
US 20130292517A1 · Briskman · 2013 [cited by examiner]
US 20170096242A1 · Alfano · 2017 [cited by examiner]
US 20200271749A1 · Wu · 2020 [cited by examiner]
US 20220380068A1 · Mukae · 2022 [cited by examiner]
International Search Report and Written Opinion from corresponding PCT Appln. No. PCT/US22/20045, dated Jun. 15, 2022. 10 pages. [cited by applicant]
International Preliminary Report on Patentability from corresponding PCT Appln. No. PCT/US2022/020045, dated Sep. 12, 2023. 9 pages. [cited by applicant]
Braun, et al., “Operational Support to Collision Avoidance Activities by ESA's Space Debris Office”, CEAS Space Journal, 2016, 8:177-189. [cited by applicant]
Carandente, et al., “New Concepts of Deployable De-Orbit and Re-Entry Systems for CubeSat Miniaturized Satellites”, Recent Patents on Engineering, Apr. 2014, vol. 8, No. 1, pp. 2-12. [cited by applicant]
Chandra, et al., “Advanced Inflatable De-Orbit Solutions for Derelict Satellites and Orbital Debris”, Space Traffic Management Conference, 2019, pp. 1-9. [cited by applicant]
Chandra, et al., “End to End Satellite Servicing and Space Debris Management”, Space Traffic Management Conference, 2019. pp. 1-14. [cited by applicant]
Levit, et al., “Improved Orbit Predictions using Two-Line Elements”, Advances in Space Research 47.7, 2011, pp. 1107-1115. [cited by applicant]
Vance, et al., “Top Level Systems Requirements Analysis for a Ground Cooperative Orbital Debris Avoidance System”, 2021 IEEE Aerospace Conference, pp. 1-6. [cited by applicant]
Vance, et al., “Value Analysis for Orbital Debris Removal”, Advances in Space Research 52.4, 2013, pp. 685-695. [cited by applicant]
Xu, et al., “Orbit Error Characteristic and Distribution of TLE using CHAMP Orbit Data”, Astrophysics and Space Science 363.2, 2018, pp. 1-6. [cited by applicant]
The NASA Orbital Debris Office Webpage, downloaded Feb. 13, 2024 from https://www/orbitaldebris.jsc.nasa.gov/. [cited by applicant]
“Space Debris by the Numbers”, European Space Agency, https://www.esa.int/Safety Security/Space Debris/Space debris by the numbers, Dec. 6, 2023. [cited by applicant]