Radiation protection using Martian surface materials in human exploration of Mars

被引:0
|
作者
Kim, MHY
Thibeault, SA
Wilson, JW
Heilbronn, L
Kiefer, RL
Weakley, JA
Dueber, JL
Fogarty, T
Wilkins, R
机构
[1] Coll William & Mary, Williamsburg, VA 23187 USA
[2] NASA, Langley Res Ctr, Hampton, VA 23681 USA
[3] Univ Calif Berkeley, Lawrence Berkeley Lab, Berkeley, CA 94720 USA
[4] Prairie View A&M Univ, Prairie View, TX 77446 USA
关键词
human exploration; galactic cosmic radiation; Martian regolith; polyimides;
D O I
暂无
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
To develop materials for shielding astronauts from the hazards of GCR, natural Martian surface materials are considered for their potential as radiation shielding for manned Mars missions. The modified radiation fluences behind various kinds of Martian rocks and regolith are determined by solving the Boltzmann equation using NASA Langley's HZETRN code along with the 1977 Solar Minimum galactic cosmic ray environmental model. To develop structural shielding composite materials for Martian surface habitats, theoretical predictions of the shielding properties of Martian regolith/polyimide composites has been computed to assess their shielding effectiveness. Adding high-performance polymer binders to Martian regolith to enhance structural properties also enhances the shielding properties of these composites because of the added hydrogenous constituents. Heavy ion beam testing of regolith simulant/polyimide composites is planned to validate this prediction. Characterization and proton beam tests are performed to measure structural properties and to compare the shielding effects on microelectronic devices, respectively.
引用
收藏
页码:81 / 83
页数:3
相关论文
共 50 条
  • [41] The Martian: Possible Scenarios for a Future Human Society on Mars
    Szocik, Konrad
    Wojtowicz, Tomasz
    Braddock, Martin
    SPACE POLICY, 2020, 54
  • [42] MARSNET - A PRECURSOR TO THE SURFACE EXPLORATION OF MARS
    SCOON, GEN
    WHITCOMB, GP
    ACTA ASTRONAUTICA, 1993, 29 (10-11) : 823 - 831
  • [43] The exploration of Mars: Crew surface activities
    Bhosri, W
    Cojanis, P
    Gupta, M
    Khopkar, M
    Kiely, A
    Myers, M
    Oxnevad, K
    Sengupta, A
    Sexton, A
    Shaw, D
    Tellez, J
    Tsuchiya, T
    Wolford, M
    SPACE 2000, PROCEEDINGS, 2000, : 890 - 918
  • [44] A Spectroscopic Study of Mars-analog Materials with Amorphous Sulfate and Chloride Phases: Implications for Detecting Amorphous Materials on the Martian Surface
    Hopkins, Reed J.
    Sklute, Elizabeth C.
    Dyar, M. Darby
    Rogers, A. Deanne
    Clark, Roger N.
    McKeegan, Rilla
    PLANETARY SCIENCE JOURNAL, 2023, 4 (09):
  • [45] DIGITAL PROCESSING OF MARTIAN SURFACE PHOTOGRAPHS FROM MARS 4 AND MARS 5.
    Belokova, T.P.
    Kronrod, M.A.
    Chochia, P.A.
    Yaroslavakii, L.P.
    1600, (13):
  • [46] Was the ancient Martian surface sterilized by radiation?
    Lammer, H
    Selsis, F
    Molina-Cuberos, GJ
    Stumptner, W
    Bérces, A
    Kerékgyártó, T
    Ronto, G
    EVOLVING SUN AND ITS INFLUENCE ON PLANETARY ENVIRONMENTS, PROCEEDINGS, 2002, 269 : 151 - 161
  • [47] Early views of the Martian surface from the Mars orbiter camera of Mars global surveyor
    Malin, MC
    Carr, MH
    Danielson, GE
    Davies, ME
    Hartmann, WK
    Ingersoll, AP
    James, PB
    Masursky, H
    McEwen, AS
    Soderblom, LA
    Thomas, P
    Veverka, J
    Caplinger, MA
    Ravine, MA
    Soulanille, TA
    SCIENCE, 1998, 279 (5357) : 1681 - 1685
  • [48] A calculation of the radiation environment on the Martian surface
    de Wet, Wouter C.
    Townsend, Lawrence W.
    LIFE SCIENCES IN SPACE RESEARCH, 2017, 14 : 51 - 56
  • [49] Sterilization of Martian surface by cosmic radiation
    Pavlov, AK
    Blinov, AV
    Konstantinov, AN
    PLANETARY AND SPACE SCIENCE, 2002, 50 (7-8) : 669 - 673
  • [50] Should We Invest in Martian Brine Research to Reduce Mars Exploration Costs?
    Martin-Torres, Javier
    Zorzano, Maria-Paz
    ASTROBIOLOGY, 2017, 17 (01) : 3 - 7