How Can Small Satellites be used to Support Orbital Debris Removal Goals Instead of Increasing the Problem?

Similar documents
USA Space Debris Environment and Operational Updates

Ball Aerospace & Technologies Corp. & L Garde Inc.

SPACE DEBRIS CHASER CONSTELLATION

SPACE DEBRIS MITIGATION TECHNOLOGIES

USA Space Debris Environment, Operations, and Policy Updates

USA Space Debris Environment, Operations, and Modeling Updates

The Characteristics and Consequences of the Break-up of the Fengyun-1C Spacecraft

Overview of JAXA Activities on Sustainable Space Development and Space Situational Awareness

Prof. Richard Crowther Chief Engineer, UK Space Agency. Reflections on Orbital Debris Mitigation Measures

SPACE SITUATIONAL AWARENESS AND SPACE DEBRIS ACTIVITIES IN INDIA

Orbital Debris Challenges for Space Operations J.-C. Liou, PhD NASA Chief Scientist for Orbital Debris

Asia-Pacific ground-base Optical Satellite Observation System APOSOS

STUDY THE SPACE DEBRIS IMPACT IN THE EARLY STAGES OF THE NANO-SATELLITE DESIGN

Marlene H. Dortch Secretary, Federal Communications Commission th Street, S.W. Washington, D.C

CIVIL PROTECTION AND SAFE SKY

Sustainable activities in space: Space debris problematic in a nutshell

Orbital Debris Mitigation

Asteroid Robotic Mission Overview: A First Step in the Journey of Human Space Exploration and Settlement

CRITICAL NUMBER OF SPACECRAFT IN LOW EARTH ORBIT: USING SATELLITE FRAGMENTATION DATA TO EVALUATE THE STABILITY OF THE ORBITAL DEBRIS ENVIRONMENT

BravoSat: Optimizing the Delta-V Capability of a CubeSat Mission. with Novel Plasma Propulsion Technology ISSC 2013

Space Debris. New Mexico. Supercomputing Challenge. Final Report. Team 78. Mesa Middle School. Team Members. Justice Armijo.

Effects of Mitigation Measures on the Space Debris Environment

Copyright 2016 Advanced Maui Optical and Space Surveillance Technologies Conference (AMOS)

INITIAL STUDY ON SMALL DEBRIS IMPACT RISK ASSESSMENT DURING ORBIT TRANSFER TO GEO FOR ALL-ELECTRIC SATELLITE

Team X Study Summary for ASMCS Theia. Jet Propulsion Laboratory, California Institute of Technology. with contributions from the Theia Team

Rapid De-Orbit of LEO Space Vehicles Using Towed Rigidizable Inflatable Structure (TRIS) Technology: Concept and Feasibility Assessment

Creating a PZT Network Data Base for Detection of Low and High Velocity Impacts.

INTER-AGENCY SPACE DEBRIS COORDINATION COMMITTEE (IADC) SPACE DEBRIS ISSUES IN THE GEOSTATIONARY ORBIT AND THE GEOSTATIONARY TRANSFER ORBITS

THE KESSLER SYNDROME: IMPLICATIONS TO FUTURE SPACE OPERATIONS

INDEMN. A long-term collision risk prediction tool for constellation design. Romain Lucken, Damien Giolito,

Marshall H. Kaplan, Ph.D.

Implementation of the Outer Space Treaties in view of Small Satellites

Catcher s Mitt as an Alternative to laser Space Debris Mitigation

Critical Density of Spacecraft in Low Earth Orbit: Using Fragmentation Data to Evaluate the Stability of the Orbital Debris Environment

ACTIVITY OF RUSSIAN FEDERATION ON SPACE DEBRIS PROBLEM

PROTECTION OF MANNED SPACECRAFT RADIATOR FROM SPACE DEBRIS

A Drag Device for Controlled Deorbiting of LEO Spacecraft. (aka Deorbit Drag Device = D 3 )

Propellantless deorbiting of space debris by bare electrodynamic tethers

SELENE TRANSLUNAR TRAJECTORY AND LUNAR ORBIT INJECTION

A Summary of the Galaxy 15 Incident and its Impact on Space Sustainability

Solar Activity Space Debris

Laser de-spin maneuver for an active debris removal mission - a realistic scenario for Envisat

Update on NASA NEO Program

CL# Copyright 2018 California Institute of Technology Government sponsorship acknowledged1

The time period while the spacecraft is in transit to lunar orbit shall be used to verify the functionality of the spacecraft.

Implementation of Real-Time Monitoring and Warning of Near-Earth Space Dangerous Events by Roscosmos. I. Oleynikov, V. Ivanov, and M.

Report on Space Debris Related Activities in Japan (For UNCOPUOS/STSC February, 2009)

The Inter-Agency Space Debris Coordination Committee (IADC)

Space debris. feature. David Wright

Circular vs. Elliptical Orbits for Persistent Communications

Paper Session III-B - Mars Global Surveyor: Cruising to Mars

IMPACT OF SPACE DEBRIS MITIGATION REQUIREMENTS ON THE MISSION DESIGN OF ESA SPACECRAFT

CONCEPTUAL DESIGN OF A SPACE VEHICLE FOR ORBITAL DEBRIS PROTECTION

Sunbeams from Space Mirrors Feeding Solar Farms on the Ground at Dusk and Dawn. Lewis M Fraas EUEC 2013 Phoenix, AZ Jan

The Inter-Agency Space Debris Coordination Committee (IADC)

Finding Near Earth Objects Before They Find Us! Lindley Johnson Near Earth Object Observations Program Executive NASA HQ

Analysis of Debris from the Collision of the Cosmos 2251 and the Iridium 33 Satellites

The Inter-Agency Space Debris Coordination Committee (IADC)

Integrity Applications Inc.

ACOUSTIC EMISSION DETECTION OF IMPACT DAMAGE ON SPACE SHUTTLE STRUCTURES

DESIGN STANDARD. Micro-debris Impact Survivability Assessment Procedure

Creating Large Space Platforms From Small Satellites

THE VULNERABILITY ASSESSMENT AND DEBRIS PRODUCTION RISK MITIGATION IN COSMO-SkyMed CURRENT AND FUTURE GENERATIONS

Exploring New Lagrangian Cyclers to Enhance Science: Communications with CubeSat Technology

RF APERTURE ARCHITECTURES 11 Nov. 08

Focused Solar Ablation: A Nanosat-Based Method for Active Removal of Space Debris

Bring the Asteroids to the Astronauts

Deep Space Communication*

Shields-1, A SmallSat Radiation Shielding Technology Demonstration

Goddard Space Flight Center

CONSIDERATION OF SPACE DEBRIS ISSUES IN EARLY SPACECRAFT DESIGN PHASES

STRETCHED LENS ARRAY (SLA): A PROVEN AND AFFORDABLE SOLUTION TO SPACECRAFT CHARGING IN GEO

A DETAILED IMPACT RISK ASSESSMENT OF POSSIBLE PROTECTION ENHANCEMENTS TO TWO LEO SPACECRAFT

Multi-sensor Observations of the SpinSat Satellite

Aerobraking Technology for Earth Orbit Transfers. Paul Gloyer AeroAstro, Inc. 160 Adams Lane Waveland, MS

LOW-COST LUNAR COMMUNICATION AND NAVIGATION

How to Improve Small Satellite Missions in Two Easy Steps:

ATTITUDE CONTROL MECHANIZATION TO DE-ORBIT SATELLITES USING SOLAR SAILS

Space Debris Mitigation Activities at ESA

SCIENCE WITH DIRECTED AERIAL DR. ALEXEY PANKINE GLOBAL AEROSPACE CORPORATION SAILING THE PLANETS

Boom-Membrane Integrated Deployable Structures for De-orbiting Satellites and Future Applications

A Gravitational Tractor for Towing Asteroids

Solar & Electric Sailing Overview

OVERVIEW ON 2012 SPACE DEBRIS ACTIVITIES IN FRANCE

Systems Engineering in Venus Satellite

Introduction to Astrodynamics and the Air Force Maui Optical and Supercomputing Site (AMOS)

Small Satellite Aerocapture for Increased Mass Delivered to Venus and Beyond

Space debris and NEAs research at IFAC-CNR

Reduction of Trapped Energetic Particle Fluxes in Earth and Jupiter Radiation Belts

Summaries for the 2017 Applied Space Environments Conference (ASEC) and the Space Environment Engineering and Science Applications Workshop (SEESAW)

Small Satellite Deployments From STS116 - Development Of New Manned Spaceflight Deployment Systems

Space Traffic Control: An Industry Perspective

Orbital Debris Observation via Laser Illuminated Optical Measurement Techniques

Security in Outer Space: Rising Stakes

Prospects for the use of nuclear power sources in outer space. Working document submitted by the Russian Federation

Cosmic RAy Telescope for the Effects of Radiation. (CRaTER): Science Overview

In-space Assembly of Large Telescopes for Exoplanet Direct Imaging

Spacer Development and Analysis

Spacecraft design indicator for space debris

Preliminary Results from the ATHENA-OAWL Venture Tech Airborne Mission

Transcription:

How Can Small Satellites be used to Support Orbital Debris Removal Goals Instead of Increasing the Problem? August 19, 2010 Jose Guerrero, Jon Manash, Kevin McKee, Matt Russell, Steve Stone and Doyle Towles Jose.Guerrero@ATK.com (626) 470-5134 Kevin.McKee@ATK.com (626) 470-5072 ATK Spacecraft, Systems and Services 370 N. Halstead St., Pasadena, Ca. 91107; Paper Ref. SSC10-II-7

ATK Aerospace Systems Clearfield, UT Aerospace Systems HQ Magna, UT Magna, UT Precision Structures Promontory, UT Colorado Springs, CO Field Office Lancaster, CA Field Office Pasadena, CA Engineering Services (JPL) Commerce, CA Propulsion Tanks VAFB Goleta, CA Solar Arrays and Deployables El Segundo, CA LA Field Office Corona, CA Panels / Bus Structures Omaha, NE Field Office Albuquerque, NM Field Office Beltsville, MD Engineering Services Spacecraft Systems Thermal Systems Hampton, VA Engineering Services (LaRC) Huntsville, AL KSC, CCAFS & FL San Diego, CA Precision Structures Ceramics / Reflectors ATK Proprietary & Competition Sensitive Houston, TX Field Office August 19, 2010

Orbital Debris Problem Background Orbital debris refers to material that is on orbit as the result of space initiatives but is no longer serving any function. Debris poses increasing risk to existing and new spacecraft. Obsolete man-made objects in Earth Orbit 19,000 objects > 10 cm 500,000 objects > 1 cm Tens of Millions < 1 cm Most Debris Concentrated in Low Earth Orbit Debris Population Estimates and Tracking Objects > 10 cm tracked by US Space Surveillance Network Objects 3 mm detected by ground based radars Smaller object populations estimated based on impact features on returned spacecraft Particle Velocity Average Impact Speed = 10 km/sec 1 cm objects could cause catastrophic failure < 1 cm objects may cause significant damage > 10 cm objects are tracked, spacecraft can maneuver around them. Image credit: NASA August 19, 2010 http://orbitaldebris.jsc.nasa.gov/index.html

ATK Trade Studies Mitigation of Medium Size (1 to 10cm) Orbital Debris in Low Earth Orbit (< 2000 km) 1 to 10cm debris: Cannot be Effectively Shielded Against nor Consistently Maneuvered Around Non Tracked Objects: Too Difficult to Observe with Ground-Based Telescopes, Radars >1 cm debris: Cause Catastrophic Failure (loss of functionality of satellite due to the impact) Low Earth Orbit (LEO) Selected : Most concentrated area Trade Study Scorecard - Summary Four approaches to reducing Orbital Debris issues De-orbiting (1) Orbital lifetime reduction (2) Repositioning into "disposal" orbits (3) Active removal of debris from orbit (4) Not compatible with Small Sat use Laser Ground Based UAV Based Space Based Aerogel Capture Solar Concentrator August 19, 2010 Compatible with Small Sat use Multi-Layer Sphere

Multi-Layer Sphere Debris Removal Concept Operational Applications A lightweight, multi-layer sphere deployed In Space can break- up large particles-> creating particles to break up other particles causing effective Mass Fission Debris depletion Deployed around a spacecraft, it can break- up large particles into shield-able debris (note only half of sphere is shown for clarity of layers). The MLS system can be used to provide additional protection to the International Space Station.

Multi-Layer Sphere Debris Removal Concept Operational Use (1) Around a critical asset acting to intercept & pulverize debris (2) Roam in space, sweeping out and similarly pulverizing debris (3) Stored on orbit for future use to prevent a catastrophic collision Notional Boom Spacecraft Thruster Locations Inflatable Structure (Stowed) MLS Construction Specifically spaced discrete material Break-up large particle debris that later impacts other internal layers Impacts other large particles creating small shield-able debris particles One-half of MLS (Deployed) Target Size and Orbit Orbital debris in low-earth orbit: Diameter: 1 to 10 cm Material: ~ Metallic Velocities: 10 Km/sec. 6

Existing Test Data Demonstrates Physics Hypervelocity Testing Hydro Code Simulation 6 km/s 1cm Diameter Particle During Impact Test 6 km/s 1cm Diameter Particle During Hydro Code Simulation Testing and simulation from: S.R. Beissel, C.A. Gerlach, G.R. Johnson, Hypervelocity impact computations with finite elements and mesh free particles, International Journal of Impact Engineering 33 (2006) 80-90. 7

Low Earth Orbit Focused Highest Particle Density Location Mitigation of orbital debris in LEO (< 2000 km) with highest particle density > 1 cm. Particle Flux for 1 cm. Particles Peaks at ~ 4x 10^-5/M^2/Year at 900 Km. http://ston.jsc.nasa.gov/collections/trs/_techrep/tp-2002-210780.pdf 8

Required Maneuverability Sweep cross-section of LEO torus orbital volume Spherical Shape => No special pointing requirements during operations Maneuverability requirements higher if spacecraft used as protector shield for high value space assets 9

Conclusions Orbital Debris Problem Becoming Critical Since 2005, the space debris environment has been unstable and began a collision cascade effect per NASA. Impact is due to wide range of size distribution (1cm and larger). Need resolution plan developed and implemented. MLS Mitigation Strategies via Small Satellite Mission Life >3 years Accommodate ROM of 100,000 impacts per sphere Multiple spacecraft needed to mitigate LEO debris particles Continued Awareness & Support to Resolve NASA effort to define and track orbital debris problem Presidential support to address an international need August 19, 2010