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The Neutron star Interior Composition Explorer (NICER): design and development

Keith C. GendreauZaven ArzoumanianPhillip AdkinsCheryl L. AlbertJohn F. AndersAndrew T. AylwardC. L. BakerErin BalsamoWilliam BamfordSuyog S. BenegalraoDaniel L. BerryShiraz BhalwaniJ. K. BlackCarl BlaurockGinger M. BronkeGary L. BrownJason BudinoffJeffrey D. CantwellT. CazeauPhilip T. ChenThomas G. ClementAndrew T. ColangeloJerry S. ColemanJonathan D. CoopersmithWilliam E. DehavenJ. DotyMark EganTeruaki EnotoTerry W. FanDeneen M. FerroRichard F. FosterNicholas GalassiLuis D. GalloChris GreenDave GroshKong Q. HaMonther A. HasounehKristofer B. HeefnerP. HestnesLisa J. HogeTawanda M. JacobsJohn Leif JørgensenMichael KaiserJames KelloggSteven J. KenyonRichard KoeneckeRobert P. KozonBeverly LaMarrM. LambertsonAnne M. LarsonSteven LentineJesse LewisMichael G. LillyKuochia Alice LiuAndrew MalonisSridhar ManthripragadaC. B. MarkwardtBryan D. MatonakIsaac E. McginnisRoger MillerAlissa MitchellJason W. MitchellJelila S. MohammedCharles MonroeKristina M. Montt de GarciaPeter MuleLouis T. NagaoSon N. NgoEric D. NorrisDwight A. NorwoodJoseph NovotkaTakashi OkajimaLawrence G. OlsenChimaobi O. OnyeachuHenry Y. OroscoJacqualine R. PetersonKristina N. PevearKaren PhamS. PollardJ. PopeDaniel F. PowersCharles E. PowersSamuel R. PriceG. PrigozhinJulian B. RamirezWinston J. ReidRonald A. RemillardEric M. RogstadGlenn P. RosecransJohn RoweJennifer A. SagerClaude A. SandersBruce J. SavadkinM. SaylorAlexander F. SchaefferNancy S. SchweissSean R. SemperP. J. SerlemitsosLarry V. ShackelfordYang SoongJonathan StruebelMichael VezieJoel S. VillasenorLuke B. WinternitzGeorge I. WoffordMichael WrightMike Y. YangWayne H. Yu

Abstract

During 2014 and 2015, NASA's Neutron star Interior Composition Explorer (NICER) mission proceeded success- fully through Phase C, Design and Development. An X-ray (0.2-12 keV) astrophysics payload destined for the International Space Station, NICER is manifested for launch in early 2017 on the Commercial Resupply Services SpaceX-11 flight. Its scientific objectives are to investigate the internal structure, dynamics, and energetics of neutron stars, the densest objects in the universe. During Phase C, flight components including optics, detectors, the optical bench, pointing actuators, electronics, and others were subjected to environmental testing and integrated to form the flight payload. A custom-built facility was used to co-align and integrate the X-ray "con- centrator" optics and silicon-drift detectors. Ground calibration provided robust performance measures of the optical (at NASA's Goddard Space Flight Center) and detector (at the Massachusetts Institute of Technology) subsystems, while comprehensive functional tests prior to payload-level environmental testing met all instrument performance requirements. We describe here the implementation of NICER's major subsystems, summarize their performance and calibration, and outline the component-level testing that was successfully applied.

Astro and Planetary ScienceAstronomical Observations and InstrumentationInertial Sensor and NavigationNeutron starComposition (language)Star (game theory)Computer scienceAstronomyPhysicsAstrophysicsArt
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