The SiC technology is ready for the next generation of extremely large telescopes

被引:5
|
作者
Bougoin, M [1 ]
Deny, P [1 ]
机构
[1] Boostec, F-65460 Bazet, France
关键词
extremely large telescope; silicon carbide; characteristics; manufacturing; lightweight; optics;
D O I
10.1117/12.553770
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Beside the baseline glass-ceramics, the sintered silicon carbide (SSiC) technology appears as a valid and very attractive alternative for the mass production of the next generation extremely large mirror segments. The specific stiffness of SSiC ceramic is about four times better than the one of glass-ceramics. Furthermore, the SSiC manufacturing process allows lightweighing the blanks at very cost effective condition. The spectacular expected gain in mass will dramatically relax the requirements of the moving, structure, which supports the mirror segments. Boostec team has got two different and very useful experiences in SSiC, components that are serial production of low cost parts and the manufacturing of the largest space telescopes particularly through Herschel ESA program. A paper study has clearly shown that the thousands of OWL segments could be made of SSiC at competitive costs. The needed investments are easily affordable and they do not require any technological development. On the other hand, four hexagonal segments have been designed (1 m flat to flat, only 44 kg/m(2)) and successfully manufactured in order to qualify this technology.
引用
收藏
页码:9 / 18
页数:10
相关论文
共 50 条
  • [21] Asteroid Confusions with Extremely Large Telescopes
    Gyula M. Szabó
    Attila E. Simon
    Earth, Moon, and Planets, 2009, 105 : 227 - 234
  • [22] Structural Response of Extremely Large Telescopes
    Bastaits, R.
    Preumont, A.
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 2010, 33 (05) : 1357 - 1367
  • [23] Extremely large telescopes on the Antarctic plateau
    Lawrence, J. S.
    HIGHLIGHTS OF ASTRONOMY, VOL 13, 2005, 13 : 956 - 957
  • [24] Asteroid Confusions with Extremely Large Telescopes
    Szabo, Gyula M.
    Simon, Attila E.
    EARTH MOON AND PLANETS, 2009, 105 (2-4): : 227 - 234
  • [25] Simulation of MCAO on (extremely) large telescopes
    Le Louarn, M
    Verinaud, C
    Korkiakoski, V
    COMPTES RENDUS PHYSIQUE, 2005, 6 (10) : 1070 - 1080
  • [26] Management of equipment vibration for extremely large telescopes
    Adams, David
    Fordham, Bart
    Jakob, Gerd
    MacMartin, Douglas
    Sedghi, Babak
    Schwartz, David
    Thompson, Hugh
    Travouillon, Tony
    Smith, Byron
    Kerrian, Peter
    JOURNAL OF ASTRONOMICAL TELESCOPES INSTRUMENTS AND SYSTEMS, 2022, 8 (02)
  • [27] The fight for first light: Extremely large telescopes
    Coffey, Valerie C.
    Photonics Spectra, 2020, 54 (09) : 30 - 37
  • [28] Fund two extremely large US telescopes
    McCarthy, Patrick
    Kirshner, Robert P.
    Shelton, Robert N.
    SCIENCE, 2024, 383 (6684)
  • [29] Global wavefront sensing for Extremely Large Telescopes
    Ragazzoni, R.
    Bergomi, M.
    Brunelli, A.
    Dima, M.
    Farinato, J.
    Magrin, D.
    Marafatto, L.
    Viotto, V.
    ADAPTIVE OPTICS SYSTEMS III, 2012, 8447
  • [30] Cooling technology for the next generation SiC on-vehicle inverters
    Department of Mechanical Engineering, Faculty of Engineering, Tokyo University of Science-Yamaguchi, 1-1-1 Daigaku-dori, Sanyo-Onoda
    Yamaguchi, Japan
    J. Jpn. Inst. Electron. Packag., 2 (94-99):