VIRTIS: Visible Infrared Thermal Imaging Spectrometer for the Rosetta mission

被引:32
|
作者
Reininger, F
Coradini, A
Capaccioni, F
Capria, M
Cerroni, P
DeSanctis, M
Magni, G
Drossart, P
Barucci, M
BockeleeMorvan, D
Combes, J
Crovisier, J
Encrenaz, T
Reess, J
Semery, A
Tiphene, D
Arnold, G
Carsenty, U
Michaelis, H
Mottola, S
Neukum, G
Peter, G
Schade, U
Taylor, F
Calcutt, S
Vellacott, T
Venters, P
Watkins, R
Bellucci, G
Formisano, V
Angrilli, F
Bianchini, G
Saggin, B
Bussoletti, E
Colangeli, L
Mennella, V
Fonti, S
Bibring, J
Langevin, Y
Schmitt, B
Combi, M
Fink, U
McCord, T
Ip, W
Carlson, R
Jennings, E
机构
来源
IMAGING SPECTROMETRY II | 1996年 / 2819卷
关键词
comet; asteroid; imaging spectrometer; echelle grating; infrared instrument; planetary remote sensing; VIRTIS;
D O I
10.1117/12.258082
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The Visible Infrared Thermal Imaging Spectrometer (VIRTIS) is one of the principal payloads to be launched in 2003 on ESA's Rosetta spacecraft. Its primary scientific objectives are to map the surface of the comet Wirtanen, monitor its temperature, and identify the solids and gaseous species on the nucleus and in the coma. VIRTIS will also collect data on two asteroids, one of which has been identified as Mimistrobell. The data is collected remotely using a mapping spectrometer co-boresighted with a high spectral resolution spectrometer. The mapper consists of a Shafer telescope matched to an Offner grating spectrometer capable of gathering high spatial, medium spectral. resolution image cubes in the 0.25 to 5 mu m waveband. The high spectral resolution spectrometer uses an echelle grating and a cross dispersing prism to achieve resolving powers of 1200 to 3000 in the 1.9 to 5 mu m band. Both sub-systems are passively coded to 130 K and use two Sterling cycle coolers to enable two HgCdTe detector arrays to operate at 70 K. The mapper also uses a silicon back-side illuminated detector array to cover the ultra-violet io near-infrared optical band.
引用
收藏
页码:66 / 77
页数:12
相关论文
共 50 条
  • [31] Airborne Visible/Infrared Imaging spectrometer AVIS: Design, characterization and calibration
    Oppelt, Natascha
    Mauser, Wolfram
    SENSORS, 2007, 7 (09) : 1934 - 1953
  • [32] DESIGN OF A HYPERSPECTRAL IMAGING SPECTROMETER FOR VISIBLE AND NEAR INFRARED REGION APPLICATIONS
    Cirpici, Ulas
    Karaca, Ali Can
    Erturk, Alp
    Gullu, M. Kemal
    Erturk, Sarp
    2014 22ND SIGNAL PROCESSING AND COMMUNICATIONS APPLICATIONS CONFERENCE (SIU), 2014, : 1407 - 1410
  • [33] An imaging spectrometer operating in the visible near infrared for the study of planetary surfaces
    Bellucci, G
    Formisano, V
    Capaccioni, F
    PLANETARY AND SPACE SCIENCE, 1998, 46 (9-10) : 1277 - 1290
  • [34] Morphology and dynamics of Venus oxygen airglow from Venus Express/Visible and Infrared Thermal Imaging Spectrometer observations
    Hueso, R.
    Sanchez-Lavega, A.
    Piccioni, G.
    Drossart, P.
    Gerard, J. C.
    Khatuntsev, I.
    Zasova, L.
    Migliorini, A.
    JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2008, 113 : E00B02
  • [35] Refractory and semi-volatile organics at the surface of comet 67P/Churyumov-Gerasimenko: Insights from the VIRTIS/Rosetta imaging spectrometer
    Quirico, E.
    Moroz, L. V.
    Schmitt, B.
    Arnold, G.
    Faure, M.
    Beck, P.
    Bonal, L.
    Ciarniello, M.
    Capaccioni, F.
    Filacchione, G.
    Erard, S.
    Leyrat, C.
    Bockelee-Morvan, D.
    Zinzi, A.
    Palomba, E.
    Drossart, P.
    Tosi, F.
    Capria, M. T.
    De Sanctis, M. C.
    Raponi, A.
    Fonti, S.
    Mancarella, F.
    Orofino, V.
    Barucci, A.
    Blecka, M. I.
    Carlson, R.
    Despan, D.
    Faure, A.
    Fornasier, S.
    Gudipati, M. S.
    Longobardo, A.
    Markus, K.
    Mennella, V.
    Merlin, F.
    Piccioni, G.
    Rousseau, B.
    Taylor, F.
    ICARUS, 2016, 272 : 32 - 47
  • [36] Wide-field imaging spectrometer for the Hyperspectral Infrared Imager (HyspIRI) mission
    Bender, Holly A.
    Mouroulis, Pantazis
    Korniski, Ronald J.
    Green, Robert O.
    Wilson, Daniel W.
    IMAGING SPECTROMETRY XIX, 2014, 9222
  • [37] Spectral analysis of Ahuna Mons from Dawn mission's visible-infrared spectrometer
    Zambon, F.
    Raponi, A.
    Tosi, F.
    De Sanctis, M. C.
    McFadden, L. A.
    Carrozzo, F. G.
    Longobardo, A.
    Ciarniello, M.
    Krohn, K.
    Stephan, K.
    Palomba, E.
    Pieters, C. M.
    Ammannito, E.
    Russell, C. T.
    Raymond, C. A.
    GEOPHYSICAL RESEARCH LETTERS, 2017, 44 (01) : 97 - 104
  • [38] Thermal infrared imaging spectrometer: An advanced optical technical instrument
    Li, Ling
    Hongwai/Infrared, 1992, (12): : 1 - 5
  • [39] Interference efficiency of Thermal Infrared Imaging Fourier Transform Spectrometer
    Xiao, Xiangguo
    Gao, Jiaobo
    Jiao, Mingyin
    Si, Jinhai
    OPTOELECTRONIC IMAGING AND MULTIMEDIA TECHNOLOGY, 2010, 7850
  • [40] Mako airborne thermal infrared imaging spectrometer - performance update
    Hall, Jeffrey L.
    Boucher, Richard H.
    Buckland, Kerry N.
    Gutierrez, David J.
    Keim, Eric R.
    Tratt, David M.
    Warren, David W.
    IMAGING SPECTROMETRY XXI, 2016, 9976