Simulation of the capabilities of an orbiter for monitoring the entry of interplanetary matter into the terrestrial atmosphere

被引:41
作者
Bouquet, Alexis [1 ,2 ,3 ,4 ]
Baratoux, David [3 ]
Vaubaillon, Jeremie [5 ]
Gritsevich, Maria I. [6 ,7 ,8 ]
Mimoun, David [9 ,10 ]
Mousis, Olivier [4 ]
Bouley, Sylvain [5 ,11 ]
机构
[1] Univ Texas San Antonio, Dept Phys & Astron, San Antonio, TX 78249 USA
[2] Southwest Res Inst, Space Sci & Engn Div, San Antonio, TX USA
[3] Univ Toulouse, UPS OMP, IRAP, Toulouse, France
[4] Univ Franche Comte, Inst UTINAM, CNRS INSU, Observ Sci Univers Besancon,UMR 6213, F-25030 Besancon, France
[5] Inst Mecan Celeste & Calcul Ephemerides, UMR8028, F-75014 Paris, France
[6] Finnish Geodet Inst, Masala, Finland
[7] Ural Fed Univ, Inst Phys & Technol, Dept Phys Methods & Devices Qual Control, Ekaterinburg, Russia
[8] Russian Acad Sci, Dorodnicyn Comp Ctr, Dept Computat Phys, Moscow, Russia
[9] Univ Toulouse, Inst Super Aeronaut & Espace, Toulouse, France
[10] Jet Prop Lab, Pasadena, CA USA
[11] Univ Paris 11, CNRS, Lab IDES, UMR 8148, F-91405 Orsay, France
基金
芬兰科学院;
关键词
Meteors; Photometry; CANADIAN CAMERA NETWORK; INNISFREE METEORITE; FIREBALL NETWORK; MISSION; RADIATION; BOLIDES; SCIENCE; PHYSICS; MOTION; EARTH;
D O I
10.1016/j.pss.2014.09.001
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
In comparison with existing ground-based camera networks for meteors monitoring, a space-based optical system would escape dependency on weather and atmospheric conditions and would offer a wide spatial coverage and an unrestricted and extinction-free spectral domain. The potential rates of meteor detections by such systems are evaluated in this paper as a function of observations parameters (optical system capabilities, orbital parameters) and considering a reasonable range of meteoroids properties (e.g., mass, velocity, composition) determining their luminosity. A numerical tool called SWARMS (Simulator for Wide Area Recording of Meteors from Space) has been developed. SWARMS is also intended to be used in an operational phase to facilitate the comparison of observations with up-do-date constraints on the flux and characteristics of the interplanetary matter entering our planet's atmosphere. The laws governing the conversion of a fraction of the meteor kinetic energy into radiation during atmospheric entry have been revisited and evaluated based on an analysis of previously published meteor trajectories. Rates of detection were simulated for two different systems: the SPOSH (Smart Panoramic Optical Sensor Head) camera optimized for the observation of transient luminous events, and the JEM-EUSO (Japanese Experiment Module-Extreme Universe Space Observatory) experiment on the ISS (International Space Station). We conclude that up to 6 events per hour in the case of SPOSH, and up to 0.67 events in the case of JEM-EUSO may be detected. The optimal orbit for achieving such rates of detections depends on the mass index of the meteoroid populations. The determination of this parameter appears therefore critical before an optimal orbiting system might be designed for meteors monitoring. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:238 / 249
页数:12
相关论文
共 33 条
[1]  
Ayers W.G., 1970, SAO Spec. Rep. 317
[2]   The Australian Desert Fireball Network: a new era for planetary science [J].
Bland, P. A. ;
Spurny, P. ;
Bevan, A. W. R. ;
Howard, K. T. ;
Towner, M. C. ;
Benedix, G. K. ;
Greenwood, R. C. ;
Shrbeny, L. ;
Franchi, I. A. ;
Deacon, G. ;
Borovicka, J. ;
Ceplecha, Z. ;
Vaughan, D. ;
Hough, R. M. .
AUSTRALIAN JOURNAL OF EARTH SCIENCES, 2012, 59 (02) :177-187
[3]   Atmospheric deceleration and light curves of Draconid meteors and implications for the structure of cometary dust [J].
Borovicka, J. ;
Spurny, P. ;
Koten, P. .
ASTRONOMY & ASTROPHYSICS, 2007, 473 (02) :661-672
[4]   The flux of small near-Earth objects colliding with the Earth [J].
Brown, P ;
Spalding, RE ;
ReVelle, DO ;
Tagliaferri, E ;
Worden, SP .
NATURE, 2002, 420 (6913) :294-296
[5]   Spectrum of a Leonid meteor from 110 to 860 nm [J].
Carbary, JF ;
Morrison, D ;
Romick, GJ ;
Yee, JH .
IMPACT OF MINOR BODIES OF OUR SOLAR SYSTEM ON PLANETS AND THEIR MIDDLE AND UPPER ATMOSPHERE, 2004, 33 (09) :1455-1458
[6]   Fragmentation model of meteoroid motion, mass loss, and radiation in the atmosphere [J].
Ceplecha, Z ;
ReVelle, DO .
METEORITICS & PLANETARY SCIENCE, 2005, 40 (01) :35-54
[7]  
Charriet M., 2013, THESIS U P M CURIE P
[8]   Orbital observations of meteors in the Martian atmosphere using the SPOSH camera [J].
Christou, A. A. ;
Oberst, J. ;
Elgner, S. ;
Flohrer, J. ;
Margonis, A. ;
McAuliffe, J. P. ;
Koschny, D. .
PLANETARY AND SPACE SCIENCE, 2012, 60 (01) :229-235
[9]   The JEM-EUSO Mission [J].
Ebisuzaki, T. ;
Mase, H. ;
Takizawa, Y. ;
Kawasaki, Y. ;
Miyamoto, H. ;
Shinozaki, K. ;
Ohmori, H. ;
Hachisu ;
Wada, S. ;
Ogawa, T. ;
Kajino, F. ;
Inoue, N. ;
Sakaki, N. ;
Adams, J. ;
Christl, M. ;
Young, R. ;
Bonamente, M. ;
Santangelo, A. ;
Teshima, M. ;
Parizot, E. ;
Gorodetzky, P. ;
Catalano, O. ;
Picozza, P. ;
Casolino, M. ;
Bertaina, M. ;
Panasyuk, M. ;
Khrenov, B. A. ;
Park, I. H. ;
Neronov, A. ;
Medina-Tanco, G. ;
Rodriguez-Frias, D. ;
Szabelski, J. ;
Bobik, P. ;
Tsenov, R. .
INTERNATIONAL SYMPOSIUM ON THE RECENT PROGRESS OF ULTRA-HIGH ENERGY COSMIC RAY OBSERVATION, 2011, 1367 :120-125
[10]   The Pribram, Lost City, Innisfree, and Neuschwanstein falls: An analysis of the atmospheric trajectories [J].
Gritsevich, M. I. .
SOLAR SYSTEM RESEARCH, 2008, 42 (05) :372-390