Influence of structure on radiation shielding effectiveness of graphite fiber reinforced polyethylene composite

被引:14
作者
Emmanuel, A. [1 ]
Raghavan, J. [1 ]
机构
[1] Univ Manitoba, Dept Mech Engn, Composite Mat Struct Res Grp, Winnipeg, MB R3T 6A6, Canada
关键词
Radiation shielding; Simulation; Highly Elliptical Orbit; Composite shield; Multi-layered shield; Composite structure;
D O I
10.1016/j.asr.2015.06.028
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
While LEO and GEO are used for most satellite missions, Highly Elliptical Orbits (HEOs) are also used for satellite missions covering Polar Regions of Earth. Satellites in HEO are exposed to a relatively harsher radiation environment than LEO and GEO. The mass of traditionally used aluminum radiation shield, required to attenuate the radiation to a level below a certain threshold that is safe for the satellite bus and payload, scales with the level of radiation. It has been shown (Emmanuel et al., 2014) that materials with low atomic number (Z) such as polyethylene (PE) can result in a lighter shield than aluminum (Al) in HEO. However, PE has to be reinforced with relatively high Z fibers such as graphite (G) to improve its mechanical properties. The effect of introduction of G and the resulting composite structure (that meets the requirements on mechanical properties, manufacturing and service) on the radiation shielding effectiveness of PE was studied through simulation using a layered PE-G composite. The Total Ionization Dose (TID), deposited in a silicon detector behind the composite shield, has been found to be function of layer volume fraction, layer thickness and stacking sequence of the PE and G layers. One composite configuration has resulted in a TID lower than that for PE, demonstrating the possibility of tailoring the mechanical properties of PE-based composite radiation shield with minimal negative impact on its radiation shielding effectiveness. (C) 2015 COSPAR. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:1288 / 1296
页数:9
相关论文
共 12 条
[1]  
Adams Jr J. H., 2005, NASA TECHNICAL PUBLI
[2]   A comparison of radiation shielding effectiveness of materials for highly elliptical orbits [J].
Emmanuel, A. ;
Raghavan, J. ;
Harris, R. ;
Ferguson, P. .
ADVANCES IN SPACE RESEARCH, 2014, 53 (07) :1143-1152
[3]   INTERPLANETARY PROTON FLUENCE MODEL - JPL 1991 [J].
FEYNMAN, J ;
SPITALE, G ;
WANG, J ;
GABRIEL, S .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1993, 98 (A8) :13281-13294
[4]   New radiation environment and effects models in the European Space Agency's Space Environment Information System (SPENVIS) [J].
Heynderickx, D ;
Quaghebeur, B ;
Wera, J ;
Daly, EJ ;
Evans, HDR .
SPACE WEATHER-THE INTERNATIONAL JOURNAL OF RESEARCH AND APPLICATIONS, 2004, 2 (10)
[5]  
Heynderickx D., 1998, P ESA WORKSH SPAC WE, P245
[6]  
ISO, 2004, ISO 15390 GCR Model
[7]   Effects of material and/or structure on shielding of electronic devices [J].
Mangeret, R ;
Carriere, T ;
Beaucour, J ;
Jordan, TM .
IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1996, 43 (06) :2665-2670
[8]  
Sawyer D. M., 1976, NSSDC/WDC-A-R&S, 76-06
[9]   The Development of a Multifunctional Composite Material for Use in Human Space Exploration Beyond Low-Earth Orbit [J].
Sen, S. ;
Schofield, E. ;
O'Dell, J. S. ;
Deka, L. ;
Pillay, S. .
JOM, 2009, 61 (01) :23-31
[10]   Highly Elliptical Orbits for Arctic observations: Assessment of ionizing radiation [J].
Trichtchenko, L. D. ;
Nikitina, L. V. ;
Trishchenko, A. P. ;
Garand, L. .
ADVANCES IN SPACE RESEARCH, 2014, 54 (11) :2398-2414