Technology developments needed for future X-ray astronomy missions

被引:5
|
作者
de Korte, Piet
机构
关键词
X-ray astronomy; Instrumentation; Future X-ray missions;
D O I
10.1016/j.actaastro.2012.03.015
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
X-ray astronomy is in a privileged situation with the successful missions Chandra and XMM-Newton for more than 10 years in orbit, and Astro-H in the building phase. Over the past 10 years ESA, NASA, and YAXA studies have been made of follow-up missions, like Constellation-X, XEUS, IXO, and ATHENA. This presentation will highlight the technological challenges encountered to build X-ray optics and instrumentation for these types of missions. The optics requires an order of magnitude more collecting area ( > 5 m(2)) for a few seconds of arc spatial resolution. This drives the focal length of the telescope ( similar to 25 m), and thereby the complexity of the spacecraft. Furthermore new technologies are required to realize such an optic within a reasonable mass. The detectors require significant improvement in field of view (number of pixels), energy resolution, and count rate ability. This tends to be possible by the use of Si-based imaging arrays with a large number of pixels, high detection efficiency, and high count rate ability at one side, and the development of modest imaging arrays of cryogenic sensors with very high energy resolution and good detection efficiency at the other side. The cryogenic detectors require further development of cooling systems based on mechanical coolers, like employed for the 1st time on Planck, and planned for Astro-H. The biggest challenge for the realization of such a mission is however not technical. That challenge is that the realization of this future X-ray astronomy mission will require coordination between scientists and Space Agencies on a Global scale. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:118 / 125
页数:8
相关论文
共 50 条
  • [41] Technology challenges of active x-ray optics for astronomy
    Reid, Paul B.
    Davis, William
    Schwartz, Daniel A.
    Trolier-McKinstry, Susan
    Wilke, Rudeger H. T.
    ADAPTIVE X-RAY OPTICS, 2010, 7803
  • [42] Hyper-velocity impact risk assessment and mitigation strategies in the context of future X-ray astronomy missions
    Emanuele Perinati
    Martin Rott
    Andrea Santangelo
    Chris Tenzer
    Experimental Astronomy, 2017, 44 : 337 - 357
  • [43] Hyper-velocity impact risk assessment and mitigation strategies in the context of future X-ray astronomy missions
    Perinati, Emanuele
    Rott, Martin
    Santangelo, Andrea
    Tenzer, Chris
    EXPERIMENTAL ASTRONOMY, 2017, 44 (03) : 337 - 357
  • [44] X-RAY OPTICS AND X-RAY ASTRONOMY
    KANTOR, FW
    TRANSACTIONS OF THE NEW YORK ACADEMY OF SCIENCES, 1968, 30 (08): : 1100 - &
  • [45] X-Ray Astronomy
    Coats, Glenn S.
    Gunderman, Richard B.
    JOURNAL OF THE AMERICAN COLLEGE OF RADIOLOGY, 2012, 9 (01) : 3 - 6
  • [46] X-RAY ASTRONOMY
    FRIEDMAN, H
    USPEKHI FIZICHESKIKH NAUK, 1964, 84 (03): : 505 - &
  • [47] X-RAY ASTRONOMY
    TAYLOR, B
    NATURE, 1982, 298 (5877) : 798 - 800
  • [48] X-RAY ASTRONOMY
    FRIEDMAN, HT
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1965, NS12 (01) : 12 - &
  • [49] X-RAY ASTRONOMY
    PATCHETT, BE
    CONTEMPORARY PHYSICS, 1989, 30 (02) : 77 - 88
  • [50] X-RAY ASTRONOMY
    POUNDS, KA
    SCIENCE JOURNAL, 1970, 6 (04): : 61 - &