Simulation of the AGILE gamma-ray imaging detector performance: part I
arXiv:astro-ph/0202222 · doi:10.1016/S0168-9002(01)02159-3
Abstract
We present in this paper the results of a comprehensive GEANT simulation of the Gamma-Ray Imaging Detector (GRID) being developed for the AGILE space astrophysics mission. The GRID is designed to be sensitive in the 30 MeV - 50 GeV energy range, with excellent imaging and timing capabilities, and with a very large field-of-view (~3 sr). In this paper (Paper I) we present the GRID baseline geometry, a model for the charged particle and albedo-photon backgrounds for an equatorial orbit of 550-600 km altitude, and the main results of the first level (Level-1 Trigger) on-board data processing. Our simulations show that the GRID Level-1 data processing is expected to be capable of decreasing by a factor of ~ 20 the charged particle background (from \~2 kHz to below 100 Hz), and by a factor of ~ 30 the albedo-photon background. The gamma-ray photon detection efficiency by the imaging GRID is simulated to be particularly efficient, varying between 39% and 17% depending on photon energies and incident directions.
21 pages, 6 figures, accepted for publication in Nuclear Instruments and Methods in Physics Research, Section A
References in corpus (3)
Cited by in corpus (9)
- The AGILE Mission
- Design and construction of the Mini-Calorimeter of the AGILE satellite
- Prompt Emission of High Energy Photons from Gamma Ray Bursts
- Simulation of the AGILE gamma-ray imaging detector performance: Part II
- Gamma-ray burst detection with the AGILE mini-calorimeter
- On the Angular Resolution of the AGILE gamma-ray imaging detector
- Calibration of AGILE-GRID with In-Flight Data and Monte Carlo Simulations
- Monte Carlo simulations of Gamma-ray space telescopes: a BoGEMMS multi-purpose application
- AGILESim: Monte Carlo simulation of the AGILE gamma-ray telescope