Hybrid methods of radiation shielding against deep-space radiation

被引:13
作者
Chowdhury, Rajarshi Pal [1 ]
Stegeman, Luke A. [1 ]
Lund, Matthew L. [2 ]
Fry, Dan [3 ]
Madzunkov, Stojan [4 ]
Bahadori, Amir A. [1 ]
机构
[1] Kansas State Univ, Alan Levin Dept Mech & Nucl Engn, Manhattan, KS 66506 USA
[2] Univ Utah, Dept Civil & Environm Engn, Salt Lake City, UT USA
[3] NASA Lyndon B Johnson Space Ctr, Space Radiat Anal Grp, Houston, TX USA
[4] Jet Prop Lab, Earth & Planetary Sci, Pasadena, CA USA
基金
美国国家航空航天局;
关键词
Space radiation; Active shielding; Space Radiation Shielding; Hybrid Shielding; Solar Particle Event; Radiation risk; Galactic cosmic rays; DOSE CONVERSION COEFFICIENTS; SOLAR PARTICLE EVENT; STORM SHELTER; PHITS CODE; PROTECTION; MISSIONS; EXPLORATION; EXPOSURE; RISK;
D O I
10.1016/j.lssr.2023.04.004
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
In the last decade, NASA and other space exploration organizations have focused on making crewed missions to different locations in our solar system a priority. To ensure the crew members' safety in a harsh radiation environment outside the protection of the geomagnetic field and atmosphere, a robust radiation protection system needs to be in place. Passive shielding methods, which use mass shielding, are insufficient as a standalone means of radiation protection for long-term deep-space missions. Active shielding methods, which use electromagnetic fields to deflect charged particles, have the potential to be a solution that can be used along with passive shielding to make deep-space travel safer and more feasible. Past active shielding studies have demonstrated that substantial technological advances are required for active shielding to be a reality. However, active shielding has shown potential for near-future implementation when used to protect against solar energetic particles, which are less penetrating than galactic cosmic rays (GCRs). This study uses a novel approach to investigate the impacts of passive and active shielding for protection against extreme solar particle events (SPEs) and free-space GCR spectra under solar minimum and solar maximum conditions. Hybrid shielding configuration performance is assessed in terms of effective dose and radiobiological effectiveness (RBE)-weighted dose reduction. A novel electrostatic shielding configuration consisting of multiple charged planes and charged rods was chosen as the base active shielding configuration. After a rigorous optimization process, two hybrid shielding configurations were chosen based on their ability to reduce RBE-weighted dose and effective dose. For protection against the extreme SPE, a hybrid active-passive shielding configuration was chosen, where active shielding was placed outside of passive shielding. In the case of GCRs, to gain additional reduction compared to passive shielding, the passive shielding configuration was placed before the active shielding to intentionally fragment HZE ions to improve shielding performance.
引用
收藏
页码:67 / 78
页数:12
相关论文
共 75 条
[1]   Evaluation of Superconducting Magnet Shield Configurations for Long Duration Manned Space Missions [J].
Ambroglini, Filippo ;
Battiston, Roberto ;
Burger, William J. .
FRONTIERS IN ONCOLOGY, 2016, 6
[2]  
[Anonymous], 2022, NASA SPACE FLIGHT HUMAN-SYSTEM STANDARD VOLUME 2: HUMAN FACTORS, HABITABILITY, AND ENVIRONMENTAL HEALTH (NASA-STD-3001, VOLUME 2, REVISION C)
[3]   The interaction of a flowing plasma with a dipole magnetic field: measurements and modelling of a diamagnetic cavity relevant to spacecraft protection [J].
Bamford, R. ;
Gibson, K. J. ;
Thornton, A. J. ;
Bradford, J. ;
Bingham, R. ;
Gargate, L. ;
Silva, L. O. ;
Fonseca, R. A. ;
Hapgood, M. ;
Norberg, C. ;
Todd, T. ;
Stamper, R. .
PLASMA PHYSICS AND CONTROLLED FUSION, 2008, 50 (12)
[4]   An exploration of the effectiveness of artificial mini-magnetospheres as a potential solar storm shelter for long term human space missions [J].
Bamford, R. A. ;
Kellett, B. ;
Bradford, J. ;
Todd, T. N. ;
Benton, M. G., Sr. ;
Stafford-Allen, R. ;
Alves, E. P. ;
Silva, L. ;
Collingwood, C. ;
Crawford, I. A. ;
Bingham, R. .
ACTA ASTRONAUTICA, 2014, 105 (02) :385-394
[5]   Long term variations of galactic cosmic radiation on board the International Space Station, on the Moon and on the surface of Mars [J].
Berger, Thomas ;
Matthiae, Daniel ;
Burmeister, Soenke ;
Zeitlin, Cary ;
Rios, Ryan ;
Stoffle, Nicholas ;
Schwadron, Nathan A. ;
Spence, Harlan E. ;
Hassler, Donald M. ;
Ehresmann, Bent ;
Wimmer-Schweingruber, Robert F. .
JOURNAL OF SPACE WEATHER AND SPACE CLIMATE, 2020, 10
[6]  
Borak TB, 2014, LIFE SCI SPACE RES, V1, P96, DOI [10.1016/j.lssr.2014.02.005, 10.1016/j.issr.2014.02.005, 10.1016/j.lssr.2015.10.005]
[7]   Cryogenic design of a large superconducting magnet for astroparticle shielding on deep space travel missions [J].
Bruce, Romain ;
Baudouy, Bertrand .
PROCEEDINGS OF THE 25TH INTERNATIONAL CRYOGENIC ENGINEERING CONFERENCE AND INTERNATIONAL CRYOGENIC MATERIALS CONFERENCE 2014, 2015, 67 :264-269
[8]  
Chancellor Jeffery C., 2014, Life-Basel, V4, P491, DOI 10.3390/life4030491
[9]   Space radiation electrostatic shielding scaling laws: Beam-like and isotropic angular distributions [J].
Chowdhury, R. Pal ;
Stegeman, L. ;
Padilla, R. F. Santillana ;
Lund, M. L. ;
Madzunkov, S. ;
Fry, D. ;
Bahadori, A. A. .
JOURNAL OF APPLIED PHYSICS, 2021, 130 (03)
[10]   A novel, population-based approach to astronaut radiation risk assessment [J].
Chowdhury, Rajarshi Pal ;
Stoffle, Nicholas N. ;
Rios, Ryan R. ;
Stegeman, Luke A. ;
Bahadori, Amir A. .
RADIATION PHYSICS AND CHEMISTRY, 2020, 172