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STEREO Superior Solar Conjunction Mission PhaseWith its long duration and high gain antenna (HGA) feed thermal constraint; the NASA Solar-TErestrial RElations Observatory (STEREO) solar conjunction mission phase is quite unique to deep space operations. Originally designed for a two year heliocentric orbit mission to primarily study coronal mass ejection propagation, after 8 years of continuous science data collection, the twin STEREO observatories entered the solar conjunction mission phase, for which they were not designed. Nine months before entering conjunction, an unforeseen thermal constraint threatened to stop daily communications and science data collection for 15months. With a 3.5 month long communication blackout from the superior solar conjunction, without ground commands, each observatory will reset every 3 days, resulting in 35 system resets at an Earth range of 2 AU. As the observatories will be conjoined for the first time in 8 years, a unique opportunity for calibrating the same instruments on identical spacecraft will occur. As each observatory has lost redundancy, and with only a limited fidelity hardware simulator, how can the new observatory configuration be adequately and safely tested on each spacecraft? Without ground commands, how would a 3-axis stabilized spacecraft safely manage the ever accumulating system momentum without using propellant for thrusters? Could science data still be collected for the duration of the solar conjunction mission phase? Would the observatories survive? In its second extended mission, operational resources were limited at best. This paper discusses the solutions to the STEREO superior solar conjunction operational challenges, science data impact, testing, mission operations, results, and lessons learned while implementing.
Document ID
20170002012
Acquisition Source
Goddard Space Flight Center
Document Type
Conference Paper
Authors
Ossing, Daniel A.
(Johns Hopkins Univ. Laurel, MD, United States)
Wilson, Daniel
(Johns Hopkins Univ. Laurel, MD, United States)
Balon, Kevin
(Johns Hopkins Univ. Laurel, MD, United States)
Hunt, Jack
(Johns Hopkins Univ. Laurel, MD, United States)
Dudley, Owen
(Johns Hopkins Univ. Laurel, MD, United States)
Chiu, George
(Johns Hopkins Univ. Laurel, MD, United States)
Coulter, Timothy
(Johns Hopkins Univ. Laurel, MD, United States)
Reese, Angel
(Johns Hopkins Univ. Laurel, MD, United States)
Cox, Matthew
(Johns Hopkins Univ. Laurel, MD, United States)
Srinivasan, Dipak
(Johns Hopkins Univ. Laurel, MD, United States)
Denissen, Ronald
(Johns Hopkins Univ. Laurel, MD, United States)
Quinn, David A.
(NASA Goddard Space Flight Center Greenbelt, MD United States)
Date Acquired
March 7, 2017
Publication Date
March 4, 2017
Subject Category
Engineering (General)
Report/Patent Number
GSFC-E-DAA-TN36316
Report Number: GSFC-E-DAA-TN36316
Meeting Information
Meeting: 2017 IEEE Aerospace Conference
Location: Big Sky, MT
Country: United States
Start Date: March 4, 2017
End Date: March 11, 2017
Sponsors: American Inst. of Aeronautics and Astronautics, Institute of Electrical and Electronics Engineers
Funding Number(s)
CONTRACT_GRANT: NNN06AA01C
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
STEREO
Solar Conjunction
High Gain Antenna
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