Description of Transport Codes for Space Radiation Shielding
暂无分享,去创建一个
F. Cucinotta | John W. Wilson | Myung‐Hee Y. Kim | Myung-Hee Y. Kim | John W. Wilson | Francis A. Cucinotta
[1] S. Forbush. On the Effects in Cosmic-Ray Intensity Observed During the Recent Magnetic Storm , 1937 .
[2] Francis A. Cucinotta,et al. Physical and Biological Organ Dosimetry Analysis for International Space Station Astronauts , 2008, Radiation research.
[3] J. Wilson,et al. Nuclear absorption cross sections using medium modified nucleon-nucleon amplitudes. , 1998, Nuclear instruments & methods in physics research. Section B, Beam interactions with materials and atoms.
[4] J. Wilson,et al. Validation of the HZETRN code for laboratory exposures with 1A GeV iron ions in several targets. , 2005, Advances in space research : the official journal of the Committee on Space Research.
[5] Steve R. Blattnig,et al. Comparison of the transport codes HZETRN, HETC and FLUKA for a solar particle event , 2011 .
[6] Aric R. Aumann,et al. Comparison of the transport codes HZETRN, HETC and FLUKA for galactic cosmic rays , 2011 .
[7] T M Miller,et al. HETC radiation transport code development for cosmic ray shielding applications in space. , 2005, Radiation protection dosimetry.
[8] S. McKeever,et al. Astronaut's Organ Doses Inferred from Measurements in a Human Phantom Outside the International Space Station , 2009, Radiation research.
[9] J. Wilson,et al. Transport of light ions in matter. , 1998, Advances in space research : the official journal of the Committee on Space Research.
[10] Francis A. Cucinotta,et al. Probabilistic assessment of radiation risk for astronauts in space missions , 2011 .
[11] T. Slaba,et al. Variation in Lunar Neutron Dose Estimates , 2011, Radiation research.
[12] P. M. O'Neill,et al. An improved model of galactic cosmic radiation for space exploration missions , 1991 .
[13] Maria Zankl,et al. Fluence-to-dose conversion coefficients for neutrons and protons calculated using the PHITS code and ICRP/ICRU adult reference computational phantoms , 2009, Physics in medicine and biology.
[14] Icrp. 1990 Recommendations of the International Commission on Radiological Protection , 1991 .
[15] D. Hassler,et al. Description of light ion production cross sections and fluxes on the Mars surface using the QMSFRG model , 2007, Radiation and environmental biophysics.
[16] Martha S. Clowdsley,et al. Verification and Validation: High Charge and Energy (Hze) Transport Codes and Future Development , 2013 .
[17] James H. Adams,et al. The ionizing radiation environment on the moon , 2007 .
[18] Ram K. Tripathi,et al. Isotopic dependence of GCR fluence behind shielding , 2006 .
[19] W. Feldman,et al. MCNPX benchmark for cosmic ray interactions with the Moon , 2006 .
[20] Ianik Plante,et al. Nuclear interactions in heavy ion transport and event-based risk models. , 2011, Radiation protection dosimetry.
[21] Joseph H. King,et al. Solar Proton Fluences for 1977-1983 Space Missions , 1974 .
[22] D. Palmer,et al. BATSE observations of gamma-ray burst spectra. I: Spectral diversity , 1993 .
[23] M. Shea,et al. A summary of major solar proton events , 1990 .
[24] M. Wiedenbeck. The Isotopic Composition of Cosmic Ray Chlorine , 1985 .
[25] W. John,et al. Extension of the BRYNTRN Code to Monoenergetic Light Ion Beams , 2003 .
[26] G D Badhwar,et al. Effective Dose Equivalent on the Ninth Shuttle–Mir Mission (STS-91) , 2000, Radiation research.
[27] Joan Feynman,et al. New interplanetary proton fluence model , 1990 .
[28] G. Horneck,et al. NATURAL TRANSFER OF VIABLE MICROBES IN SPACE FROM PLANETS IN EXTRA-SOLAR SYSTEMS TO A PLANET IN OUR SOLAR SYSTEM AND VICE VERSA , 2008, 0809.0378.
[29] E. V. Benton,et al. Summary of radiation dosimetry results on U.S. and Soviet manned spacecraft. , 1986, Advances in space research : the official journal of the Committee on Space Research.
[30] A. González. The 12th Congress of the International Radiation Protection Association: Strengthening Radiation Protection Worldwide. , 2009, Health Physics.
[31] J. A. Simpson,et al. Introduction to the Galactic Cosmic Radiation , 1983 .
[32] Webber,et al. Individual charge changing fragmentation cross sections of relativistic nuclei in hydrogen, helium, and carbon targets. , 1990, Physical review. C, Nuclear physics.
[33] D. Greiner,et al. High-resolution observations of the isotopic composition of carbon and silicon in the galactic cosmic rays , 1981 .
[34] Eugene N. Parker,et al. THE PASSAGE OF ENERGETIC CHARGED PARTICLES THROUGH INTERPLANETARY SPACE , 1965 .
[35] R. Reedy,et al. Solar flare protons and alpha particles during the last three solar cycles , 1988 .
[36] Jack Miller,et al. Comparisons of fragmentation spectra using 1 GeV/amu 56Fe data and the PHITS model , 2008 .
[37] C Zeitlin,et al. Overview of the Martian radiation environment experiment. , 2004, Advances in space research : the official journal of the Committee on Space Research.
[38] N. Kuznetsov,et al. Assessment of the radiation environment on the Moon , 2011 .
[39] W. Webber,et al. Voyager Measurements of the Isotopic Composition of Sc, Ti, V, Cr Mn and Fe Nuclei , 1995 .
[40] K. G. McCracken,et al. Solar cosmic ray events for the period 1561–1994: 1. Identification in polar ice, 1561–1950 , 2001 .
[41] A. Ferrari,et al. FLUKA: A Multi-Particle Transport Code , 2005 .
[42] William Atwell,et al. Improvement of Risk Assessment from Space Radiation Exposure for Future Space Exploration Missions , 2007 .
[43] John W. Norbury,et al. Transport Methods and Inter-actions for Space Radiations , 2003 .
[44] F F Badavi,et al. Space Radiation Absorbed Dose Distribution in a Human Phantom , 2002, Radiation research.
[45] W. Webber,et al. Cosmic ray isotope measurements with a new Cerenkov X total energy telescope , 1985 .
[46] J. Wilson,et al. Measurements of the secondary particle energy spectra in the Space Shuttle. , 1995, Radiation measurements.
[47] G. Badhwar,et al. Shuttle measurements of galactic cosmic radiation let spectra , 1996 .
[48] A. Mairani,et al. The physics of the FLUKA code: Recent developments , 2007 .
[49] Marco Durante,et al. Cancer risk from exposure to galactic cosmic rays: implications for space exploration by human beings. , 2006, The Lancet. Oncology.
[50] F A Cucinotta,et al. Analysis of MIR-18 results for physical and biological dosimetry: radiation shielding effectiveness in LEO. , 2000, Radiation measurements.
[51] W. T. Lawrence,et al. HZETRN: Description of a Free-Space Ion and Nucleon Transport and Shielding Computer Program , 1995 .
[52] A. Correspondent. Cosmic rays from the Galaxy , 1975, Nature.
[53] J. Jeans. Origin of Cosmic Radiation. , 1931, Nature.
[54] P. O'Neill. Badhwar–O’Neill galactic cosmic ray model update based on advanced composition explorer (ACE) energy spectra from 1997 to present , 2004 .
[55] H. W. Babcock. The Topology of the Sun's Magnetic Field and the 22-YEAR Cycle. , 1961 .
[56] M. Hayat,et al. PREDICTION OF FREQUENCY AND EXPOSURE LEVEL OF SOLAR PARTICLE EVENTS , 2009, Health physics.
[57] B. Acharya,et al. The Isotopic Composition of Silicon and Iron In The Cosmic Radiation as Measured with the ALICE Experiment , 1991 .
[58] T. Jones,et al. Shielding from solar particle event exposures in deep space. , 1999, Radiation measurements.
[59] M. P. Billings,et al. The Computerized Anatomical Man (CAM) model , 1973 .
[60] P. Kam,et al. : 4 , 1898, You Can Cross the Massacre on Foot.