Title :
Design and testing of lightweight and high resolution X-ray mirror modules
Author :
McClelland, Ryan S.
Author_Institution :
SGT Inc., Greenbelt, MD, USA
Abstract :
Lightweight and high resolution optics are needed for future space-based X-ray telescopes to achieve advances in high-energy astrophysics. The Next Generation X-ray Optics (NGXO) team at NASA GSFC is nearing mission readiness for a 10 arc-second Half Power Diameter (HPD) slumped glass mirror technology while laying the groundwork for a future 1-2 arc-second technology based on polished silicon mirrors. Technology Development Modules (TDMs) have been designed, fabricated, integrated with mirrors segments, and extensively tested to demonstrate technology readiness. Tests include X-ray performance, thermal vacuum, acoustic load, and random vibration. The thermal vacuum and acoustic load environments have proven relatively benign, while the random vibration environment has proven challenging due to large input amplification at frequencies above 500 Hz. Epoxy selection, surface preparation, and larger bond area have increased bond strength while vibration isolation has decreased vibration amplification allowing for space launch requirements to be met in the near term.
Keywords :
aerospace instrumentation; astronomical telescopes; mirrors; E-60 Beryllium-Oxide Metal Matrix Composite material; HPD slumped glass mirror technology; Half Diameter; NASA GSFC; NGXO team; Next Generation X-ray Optics; Technology Development Modules; VBL test facility; Vertical Beam Line; X-ray mirror modules; X-ray performance; acoustic load; acoustic load environments; arc-second mirror segments; arc-second technology; high resolution optics; high-energy astrophysics; lightweight optics; mirror gravity distortion; mirror segments; permanent kinematic mounting; polished silicon mirrors; random vibration; space-based X-ray telescopes; superior performance characteristics; thermal vacuum; vibration amplification; Biographies; Green products; Optical device fabrication; Temperature measurement; Testing; Time division multiplexing; Vibrations;
Conference_Titel :
Aerospace Conference, 2015 IEEE
Conference_Location :
Big Sky, MT
Print_ISBN :
978-1-4799-5379-0
DOI :
10.1109/AERO.2015.7119254