MGGPOD: A Monte Carlo suite for modeling instrumental line and continuum backgrounds in gamma-ray astronomy

被引:51
作者
Weidenspointner, G
Harris, MJ
Sturner, S
Teegarden, BJ
Ferguson, C
机构
[1] NASA, Goddard Space Flight Ctr, Greenbelt, MD 20771 USA
[2] Univ Southampton, Dept Phys, Southampton SO17 1BJ, Hants, England
关键词
gamma rays : observations; instrumentation : miscellaneous; line : identification; methods : data analysis; methods : numerical;
D O I
10.1086/425577
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Intense and complex instrumental backgrounds, against which the much smaller signals from celestial sources have to be discerned, are a notorious problem for low- and intermediate-energy gamma-ray astronomy (similar to50 keV-10 MeV). Therefore, a detailed qualitative and quantitative understanding of instrumental line and continuum backgrounds is crucial for most stages of gamma-ray astronomy missions, ranging from the design and development of new instrumentation through performance prediction to data reduction. We have developed MGGPOD, a user-friendly suite of Monte Carlo codes built around the widely used GEANT (ver. 3.21) package, to simulate ab initio the physical processes relevant for the production of instrumental backgrounds. These include the build-up and delayed decay of radioactive isotopes as well as the prompt de-excitation of excited nuclei, both of which give rise to a plethora of instrumental gamma-ray background lines in addition to continuum backgrounds. The MGGPOD package and documentation are publicly available online. We demonstrate the capabilities of the MGGPOD suite by modeling high-resolution gamma-ray spectra recorded by the Transient Gamma-Ray Spectrometer (TGRS) on board Wind during 1995. The TGRS is a Ge spectrometer operating in the 40 keV-8 MeV range. Because of its fine energy resolution, these spectra reveal the complex instrumental background in formidable detail, particularly the many prompt and delayed gamma-ray lines. We evaluate the successes and failures of the MGGPOD package in reproducing TGRS data and provide identifications for the numerous instrumental lines.
引用
收藏
页码:69 / 91
页数:23
相关论文
共 64 条
[11]   Background lines in the Mars Odyssey 2001 gamma-ray detector [J].
Evans, LG ;
Boynton, WV ;
Reedy, RC ;
Starr, RD ;
Trombka, JI .
X-RAY AND GAMMA-RAY DETECTORS AND APPLICATIONS IV, 2002, 4784 :31-44
[12]   MEASUREMENT OF C-12, O-16, AND FE-56 CHARGE CHANGING CROSS-SECTIONS IN HELIUM AT HIGH-ENERGY, COMPARISON WITH CROSS-SECTIONS IN HYDROGEN, AND APPLICATION TO COSMIC-RAY PROPAGATION [J].
FERRANDO, P ;
WEBBER, WR ;
GORET, P ;
KISH, JC ;
SCHRIER, DA ;
SOUTOUL, A ;
TESTARD, O .
PHYSICAL REVIEW C, 1988, 37 (04) :1490-1501
[13]  
FIRESTONE RB, 1997, TABE ISOTOPES
[14]  
GABRIEL TA, 1995, ORNLTM11185
[15]   Spallation reactions studied with 4π-detector arrays [J].
Galin, J .
PRAMANA-JOURNAL OF PHYSICS, 2001, 57 (01) :67-73
[16]   INSTRUMENTAL BACKGROUND IN GAMMA-RAY SPECTROMETERS FLOWN IN LOW EARTH ORBIT [J].
GEHRELS, N .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1992, 313 (03) :513-528
[18]  
Graham BL, 1997, AIP CONF PROC, P1642, DOI 10.1063/1.54027
[19]   The spectrum of diffuse cosmic hard X-rays measured with HEAO 1 [J].
Gruber, DE ;
Matteson, JL ;
Peterson, LE ;
Jung, GV .
ASTROPHYSICAL JOURNAL, 1999, 520 (01) :124-129
[20]   Spatial and temporal variability of the gamma radiation from Earth's atmosphere during a solar cycle [J].
Harris, MJ ;
Share, GH ;
Leising, MD .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2003, 108 (A12)