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E-grāmata: Achieving Science with CubeSats: Thinking Inside the Box

  • Formāts: 130 pages
  • Izdošanas datums: 06-Oct-2016
  • Izdevniecība: National Academies Press
  • Valoda: eng
  • ISBN-13: 9780309442664
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  • Formāts: 130 pages
  • Izdošanas datums: 06-Oct-2016
  • Izdevniecība: National Academies Press
  • Valoda: eng
  • ISBN-13: 9780309442664
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Space-based observations have transformed our understanding of Earth, its environment, the solar system and the universe at large. During past decades, driven by increasingly advanced science questions, space observatories have become more sophisticated and more complex, with costs often growing to billions of dollars. Although these kinds of ever-more-sophisticated missions will continue into the future, small satellites, ranging in mass between 500 kg to 0.1 kg, are gaining momentum as an additional means to address targeted science questions in a rapid, and possibly more affordable, manner. Within the category of small satellites, CubeSats have emerged as a space-platform defined in terms of (10 cm x 10 cm x 10 cm)- sized cubic units of approximately 1.3 kg each called "U's." Historically, CubeSats were developed as training projects to expose students to the challenges of real-world engineering practices and system design. Yet, their use has rapidly spread within academia, industry, and government agencies both nationally and internationally.



In particular, CubeSats have caught the attention of parts of the U.S. space science community, which sees this platform, despite its inherent constraints, as a way to affordably access space and perform unique measurements of scientific value. The first science results from such CubeSats have only recently become available; however, questions remain regarding the scientific potential and technological promise of CubeSats in the future.



Achieving Science with CubeSats reviews the current state of the scientific potential and technological promise of CubeSats. This report focuses on the platform's promise to obtain high- priority science data, as defined in recent decadal surveys in astronomy and astrophysics, Earth science and applications from space, planetary science, and solar and space physics (heliophysics); the science priorities identified in the 2014 NASA Science Plan; and the potential for CubeSats to advance biology and microgravity research. It provides a list of sample science goals for CubeSats, many of which address targeted science, often in coordination with other spacecraft, or use "sacrificial," or high-risk, orbits that lead to the demise of the satellite after critical data have been collected. Other goals relate to the use of CubeSats as constellations or swarms deploying tens to hundreds of CubeSats that function as one distributed array of measurements.

Table of Contents



Front Matter Summary 1 Introduction 2 CubeSats - A Disruptive Innovation 3 CubeSats as a Tool for Education and Hands-on Training 4 Science Impact and Potential 5 Technology Development: Current Status and Future Direction 6 Policy Challenges and Solutions 7 Conclusions and Future Program Recommendations Appendixes Appendix A: Statement of Task Appendix B: CubeSat Publications - Descriptive Statistics Appendix C: Additional Technology and Policy Details Appendix D: Biographies of Committee Members and Staff Appendix E: Abbreviations and Acronyms
SUMMARY
1(92)
1 Introduction
6(18)
What Are CubeSats?
6(1)
Rationale for the Creation of the Committee on Achieving Science Goals with CubeSats
7(1)
History and Growth of CubeSats
8(4)
Growth of the Community
12(1)
The Current NSF and NASA CubeSat Programs
12(6)
Future NASA CubeSat Programs
18(1)
Other U.S. Government Programs
19(2)
CubeSat Success and Reliability
21(3)
2 Cubesats---A Disruptive Innovation
24(4)
CubeSats as a Disruptive Platform
24(3)
Implications
27(1)
3 Cubesats As A Tool For Education And Hands-On Training
28(5)
Why CubeSats for Education and Training?
28(1)
Education and Training Programs
29(3)
Summary for CubeSats for Education
32(1)
4 Science Impact And Potential
33(22)
Overview
33(2)
Solar and Space Physics
35(4)
Earth Science and Applications from Space
39(4)
Planetary Science
43(3)
Astronomy and Astrophysics
46(4)
Biological and Physical Sciences in Space
50(2)
Summary of CubeSats in Science
52(3)
5 Technology Development: Current Status And Future Direction
55(16)
Commercial Players and Their Relevance to Science and Technology Development
55(5)
Technology Areas
60(11)
6 Policy Challenges And Solutions
71(12)
CubeSat Orbital Debris
71(4)
CubeSat Communication
75(5)
Launch as a Choke Point
80(2)
Other CubeSat-Related Policy Challenges
82(1)
7 Conclusions And Future Program Recommendations
83(10)
Evolution from a Novel Educational Tool to a Standardized Commercial Platform
83(1)
Science Promise of CubeSats
84(1)
Programmatic Recommendations
85(2)
Technology Investments
87(1)
Policy
88(1)
Best Practices to Guide Ongoing CubeSat Development
89(4)
APPENDIXES
A Statement of Task
93(1)
B CubeSat Publications---Descriptive Statistics
94(7)
C Additional Technology and Policy Details
101(6)
D Biographies of Committee Members and Staff
107(6)
E Abbreviations and Acronyms
113