Space radiation environment forecast for EGYPTSAT-2 satellite

被引:6
|
作者
Samwel, S. W. [1 ,3 ]
Hady, A. A. [2 ,4 ]
机构
[1] Natl Res Inst Astron & Geophys, Cairo 11421, Egypt
[2] Cairo Univ, Fac Sci, Cairo 12613, Egypt
[3] Natl Res Inst Astron & Geophys, Helwan, Egypt
[4] Cairo Univ, Fac Sci, Giza, Egypt
来源
SPACE WEATHER-THE INTERNATIONAL JOURNAL OF RESEARCH AND APPLICATIONS | 2009年 / 7卷
关键词
PROTON FLUENCE MODEL; SHIELDING SIMULATION; DISPLACEMENT DAMAGE; MULASSIS;
D O I
10.1029/2009SW000482
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The space environment provides an assortment of hazards whose ill effects can range from degraded performance up to catastrophic loss of a spacecraft. The radiation environment is believed to be the most significant in terms of spacecraft failures. Hence, the present work provides a radiation analysis for the EGYPTSAT-2 which is supposed to be launched in 2012 as a low Earth orbit satellite in order to assist the EGYPTSAT-2 instrument team with adequate planning decisions. AE-8, AP-8, Jet Propulsion Laboratory (JPL) model, and the cosmic ray effects in microelectronic (CREME86) code are used to estimate the fluences of the trapped electrons and protons, solar protons, and galactic cosmic protons, respectively. SHIELDOSE-2 code is used for space-shielding radiation dose calculations, and the nonionizing energy loss function is used to estimate the nonionizing dose of space radiation. Finally, the end-of-life solar cell performance is evaluated using the displacement damage dose (DDD) method. The slowed down spectra emerging from the shielding material is obtained using the Multilayered Shielding Simulation Software (MULASSIS) code. It has been found that the radiation environment will not impede the sensitivity of EGYPTSAT-2 materials over the course of the baseline mission lifetime. For 1.5 mm aluminum shielding thickness, total ionizing dose is 2.65 x 10(4) rads (Si) and DDD is 7.75 x 10(7) MeV/g(Si) for 5 years mission length, which are less than critical thresholds. Also, a flat glass of SiO(2) sheet of thickness 0.5 mm is enough to resist the damage effect of the solar array cells.
引用
收藏
页数:5
相关论文
共 50 条
  • [1] Space radiation environment and its effects on satellite navigation systems
    Nieminen, P
    Mohammadzadeh, A
    Daly, E
    de Marino, R
    SATELLITE NAVIGATION SYSTEMS: POLICY, COMMERCIAL AND TECHNICAL INTERACTION, 2003, 8 : 245 - 246
  • [2] Reliability of laser diodes for laser satellite communication in space radiation environment
    Liu, Yun
    Zhao, Shanghong
    Yang, Shengsheng
    Li, Yongjun
    Qiang, Ruoxin
    OPTIK, 2015, 126 (20): : 2588 - 2590
  • [3] SATELLITE MEASUREMENTS OF SPACE RADIATION DOSES .2.
    GLASS, RA
    GAINES, EE
    RADIATION RESEARCH, 1964, 22 (01) : 189 - &
  • [4] Focal plane damage analysis by the space radiation environment in Aura satellite orbit
    Ko, D. H.
    Yeon, J. H.
    Kim, S. H.
    Yong, S. S.
    Lee, S. H.
    Sim, Eun Sup
    Lee, Cheol Woo
    de Vries, Johan
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2011, 638 (01): : 183 - 186
  • [5] Space-weather forecast to improve with European satellite
    Gibney, Elizabeth
    NATURE, 2017, 541 (7637) : 271 - 271
  • [6] RADIATION ENVIRONMENT IN SPACE
    NEWELL, HE
    NAUGLE, JE
    SCIENCE, 1960, 132 (3438) : 1465 - 1472
  • [7] SPACE RADIATION ENVIRONMENT
    VETTE, JI
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1965, NS12 (05) : 1 - &
  • [8] The space radiation environment
    Robbins, DE
    ACCEPTABILITY OF RISK FROM RADIATION - APPLICATION TO HUMAN SPACE FLIGHT, 1997, (03): : 5 - 31
  • [9] RADIATION SPACE ENVIRONMENT
    BOUDENOT, JC
    ONDE ELECTRIQUE, 1991, 71 (03): : 62 - 68
  • [10] THE SPACE RADIATION ENVIRONMENT
    BOURRIEAU, J
    ANNALES DE CHIMIE-SCIENCE DES MATERIAUX, 1992, 17 (05): : 303 - 305