Mesospheric CO2 ice clouds on Mars observed by Planetary Fourier Spectrometer onboard Mars Express

被引:19
作者
Aoki, S. [1 ,2 ,3 ,4 ]
Sato, Y. [3 ]
Giuranna, M. [4 ]
Wolkenberg, P. [4 ,5 ]
Sato, T. M. [6 ]
Nakagawa, H. [3 ]
Kasaba, Y. [3 ]
机构
[1] Belgian Inst Space Aeron IASB BIRA, Ringlaan 3 Avenue Circulaire, B-1180 Brussels, Belgium
[2] FNRS, 5 Rue Egmont, B-1000 Brussels, Belgium
[3] Tohoku Univ, Grad Sch Sci, Dept Geophys, Aoba Ku, Aramaki Aza Aoba 6-3, Sendai, Miyagi 9808578, Japan
[4] Ist Nazl Astrofis INAF, IAPS, Via Fosso Cavaliere 100, I-00133 Rome, Italy
[5] CBK PAN, Ul Bartycka 18A, PL-00716 Warsaw, Poland
[6] Japan Aerosp Explorat Agcy JAXA, ISAS, Chuo Ku, 3-1-1 Yoshinodai, Sagamihara, Kanagawa 2525210, Japan
关键词
Mars; atmosphere; climate; Infrared observations; Spectroscopy; MARTIAN ATMOSPHERE; CARBON-DIOXIDE; HUMLICEK ALGORITHM; IMPLEMENTATION; CALIBRATION; SPECTRUM;
D O I
10.1016/j.icarus.2017.10.047
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We have investigated mesospheric CO2 ice clouds on Mars through analysis of near-infrared spectra acquired by Planetary Fourier Spectrometer (PFS) onboard the Mars Express (MEx) from MY 27 to MY 32. With the highest spectral resolution achieved thus far in the relevant spectral range among remote sensing experiments orbiting Mars, PFS enables precise identification of the scattering peak of CO2 ice at the bottom of the 4.3 mu m CO2 band. A total of 111 occurrences of CO2 ice cloud features have been detected over the period investigated. Data from the OMEGA imaging spectrometer onboard MEx confirm all of PFS detections from times when OMEGA operated simultaneously with PFS. The spatial and seasonal distributions of the CO2 ice clouds detected by PFS are consistent with previous observations by other instruments. We find CO2 ice clouds between Ls = 0 degrees and 140 degrees in distinct longitudinal corridors around the equatorial region (+/- 20 degrees N). Moreover, CO2 ice clouds were preferentially detected at the observational LT range between 15-16 h in MY 29. However, observational biases prevent from distinguishing local time dependency from inter-annual variation. PFS also enables us to investigate the shape of mesospheric CO2 ice cloud spectral features in detail. In all cases, peaks were found between 4.240 and 4.265 mu m. Relatively small secondary peaks were occasionally observed around 4.28 mu m (8 occurrences). These spectral features cannot be reproduced using our radiative transfer model, which may be because the available CO2 ice refractive indices are inappropriate for the mesospheric temperatures of Mars, or because of the assumption in our model that the CO2 ice crystals are spherical and composed by pure CO2 ice. (C) 2017 Elsevier Inc. All rights reserved.
引用
收藏
页码:175 / 190
页数:16
相关论文
共 34 条
[1]   CO2 ice clouds in the upper atmosphere of Mars [J].
Clancy, RT ;
Sandor, BJ .
GEOPHYSICAL RESEARCH LETTERS, 1998, 25 (04) :489-492
[2]   Carbon dioxide clouds in an early dense Martian atmosphere [J].
Colaprete, A ;
Toon, OB .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2003, 108 (E4)
[3]   A solar spectrum for PFS data analysis [J].
Fiorenza, C ;
Formisano, V .
PLANETARY AND SPACE SCIENCE, 2005, 53 (10) :1009-1016
[4]   Observations of non-LTE emission at 4-5 microns with the planetary Fourier spectrometer abord the Mars Express mission [J].
Formisano, V ;
Maturilli, A ;
Giuranna, M ;
D'Aversa, E ;
Lopez-Valverde, MA .
ICARUS, 2006, 182 (01) :51-67
[5]   The Planetary Fourier Spectrometer (PFS) onboard the European Mars Express mission [J].
Formisano, V ;
Angrilli, F ;
Arnold, G ;
Atreya, S ;
Bianchini, G ;
Biondi, D ;
Blanco, A ;
Blecka, MI ;
Coradini, A ;
Colangeli, L ;
Ekonomov, A ;
Esposito, F ;
Fonti, S ;
Giuranna, M ;
Grassi, D ;
Gnedykh, V ;
Grigoriev, A ;
Hansen, G ;
Hirsh, H ;
Khatuntsev, I ;
Kiselev, A ;
Ignatiev, N ;
Jurewicz, A ;
Lellouch, E ;
Moreno, JL ;
Marten, A ;
Mattana, A ;
Maturilli, A ;
Mencarelli, E ;
Michalska, M ;
Moroz, V ;
Moshkin, B ;
Nespoli, F ;
Nikolsky, Y ;
Orfei, R ;
Orleanski, P ;
Orofino, V ;
Palomba, E ;
Patsaev, D ;
Piccioni, G ;
Rataj, M ;
Rodrigo, R ;
Rodriguez, J ;
Rossi, M ;
Saggin, B ;
Titov, D ;
Zasova, L .
PLANETARY AND SPACE SCIENCE, 2005, 53 (10) :963-974
[6]   Carbon dioxide crystals: An examination of their size, shape, and scattering properties at 37 GHz and comparisons with water ice (snow) measurements [J].
Foster, JL ;
Chang, ATC ;
Hall, DK ;
Wergin, WP ;
Erbe, EF ;
Barton, J .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 1998, 103 (E11) :25839-25850
[7]   Calibration of the Planetary Fourier Spectrometer short wavelength channel [J].
Giuranna, M ;
Formisano, V ;
Biondi, D ;
Ekonomov, A ;
Fonti, S ;
Grassi, D ;
Hirsch, H ;
Khatuntsev, I ;
Ignatiev, N ;
Michalska, M ;
Mattana, A ;
Maturilli, A ;
Moshkin, BE ;
Mencarelli, E ;
Nespoli, F ;
Orfei, R ;
Orleanski, P ;
Piccioni, G ;
Rataj, M ;
Saggin, B ;
Zasova, L .
PLANETARY AND SPACE SCIENCE, 2005, 53 (10) :975-991
[8]   Calibration of the Planetary Fourier Spectrometer long wavelength channel [J].
Giuranna, M ;
Formisano, V ;
Biondi, D ;
Ekonomov, A ;
Fonti, S ;
Grassi, D ;
Hirsch, H ;
Khatuntsev, I ;
Ignatiev, N ;
Malgoska, M ;
Mattana, A ;
Maturilli, A ;
Mencarelli, E ;
Nespoli, F ;
Orfei, R ;
Orleanski, P ;
Piccioni, G ;
Rataj, M ;
Saggin, B ;
Zasova, L .
PLANETARY AND SPACE SCIENCE, 2005, 53 (10) :993-1007
[9]   The martian mesosphere as revealed by CO2 cloud observations and General Circulation Modeling [J].
Gonzalez-Galindo, Francisco ;
Maattanen, Anni ;
Forget, Francois ;
Spiga, Aymeric .
ICARUS, 2011, 216 (01) :10-22
[10]   Methods for the analysis of data from the Planetary Fourier Spectrometer on the Mars Express Mission [J].
Grassi, D ;
Ignatiev, NT ;
Zasova, LV ;
Maturilli, A ;
Formisano, V ;
Bianchini, GA ;
Giuranna, M .
PLANETARY AND SPACE SCIENCE, 2005, 53 (10) :1017-1034