Interaction des rayonnements ionisants dans les tissus
147
[22] Golovachik VT, Kustarjov VN, Savitskaya EN, Sannikov AV (1989) Absorbed
dose and dose equivalent depth distributions for protons with energies from 2 to 600
MeV. Radiat Prot Dosim Vol. 28, n°3, 189-199.
[23] Grosswendt B (1994) Determination of electron depth-dose curves for water, ICRU
tissue, and PMMA and their application to radiation protection dosimetry. Radiat Prot
Dosim Vol. 54, n°2, 85-97.
[24] Gunzert-Marx K, Iwase H, Schardt D, Simon RS (2008) Secondary beam fragments
produced by 200MeV.u
−1 12
C ions in water and their dose contributions in carbon ion
radiotherapy. New Journal of Physics 10, 075003 (21 p).
[25] Hanson AO, McKibben JL (1947) A Neutron Detector Having Uniform Sensitivity
from 10 KeV to 3 MeV. Phys Rev Vol. 72, n° 8, 673-677.
[26] Heimbach C (2006) NIST Calibration of a neutron spectrometer ROSPEC. J Res
Natl Inst Stand Technol 111, 419-428.
[27] Holt PD (1985) Passive detectors for neutron fluence measurement. Radiat Prot
Dosim Vol. 10, n°1-4, 251-264.
[28] Hubbell JH, Seltzer SM (1996) Tables of X–Ray Mass Attenuation Coefficients
and Mass Energy–Absorption Coefficients from 1 keV to 20 MeV for Elements
Z = 1 to 92 and 48 Additional Substances of Dosimetric Interest Ionizing Radiation
Division, Physics Laboratory, NIST.
Disponible sur le site http://physics.nist.gov/PhysRefData/XrayMassCoef/tab3.html et
http://physics.nist.gov/PhysRefData/XrayMassCoef/tab4.html.
[29] ICRU (1980) Radiation Quantities and Units. Publication 33.
[30] ICRU (1984) Stopping Powers for electrons and positrons. Publication 37.
[31] ICRU (1998) Conversion Coefficients for use in Radiological Protection against
External Radiation. Publication 57.
[32] ICRU (2000) Nuclear Data for Neutron and Proton Radiotherapy and for Radiation Protection. Publication 63
[33] ICRU (2001) Determination of Operational Dose Equivalent Quantities for Neutrons. Publication 66.
[34] ICRU (2011) Fundamental quantities and units for ionizing radiation (revised).
Publication 85a.
[35] Ing H, Clifford T, McLean T, Webb W, Cousin T, Dhermain J (1997) A simple
reliable high resolution neutron spectrometer. Radiat Prot Dosim Vol. 70, n°1-4, 273278.
[36] ICRU (1993) Stopping powers and ranges for protons and alpha particles. Publication 49.
[37] Katz L, Penfold AS (1952) Range energy relations for electrons and the determination on beta–ray end point energies by absorption. Rev Mod Phys vol. 24, n°1, 28-44.
[38] Klein O, Nishina Y (1929) Die Streuung von Strahlung durch freie Elektronen nach
der neuen relativistischen Quantendynamik von Dirac. Z F Phys 52 (11-12): 853-869.
[39] Knoll GF (1989) Radiation detection and measurement, 2nd ed. Wiley, New York,
1989.
[40] Lacoste V (2010) Design of a new long counter for the determination of the neutron
fluence reference values at the IRSN AMANDE facility. Radiat Meas 45, 1250-1253.
147
[22] Golovachik VT, Kustarjov VN, Savitskaya EN, Sannikov AV (1989) Absorbed
dose and dose equivalent depth distributions for protons with energies from 2 to 600
MeV. Radiat Prot Dosim Vol. 28, n°3, 189-199.
[23] Grosswendt B (1994) Determination of electron depth-dose curves for water, ICRU
tissue, and PMMA and their application to radiation protection dosimetry. Radiat Prot
Dosim Vol. 54, n°2, 85-97.
[24] Gunzert-Marx K, Iwase H, Schardt D, Simon RS (2008) Secondary beam fragments
produced by 200MeV.u
−1 12
C ions in water and their dose contributions in carbon ion
radiotherapy. New Journal of Physics 10, 075003 (21 p).
[25] Hanson AO, McKibben JL (1947) A Neutron Detector Having Uniform Sensitivity
from 10 KeV to 3 MeV. Phys Rev Vol. 72, n° 8, 673-677.
[26] Heimbach C (2006) NIST Calibration of a neutron spectrometer ROSPEC. J Res
Natl Inst Stand Technol 111, 419-428.
[27] Holt PD (1985) Passive detectors for neutron fluence measurement. Radiat Prot
Dosim Vol. 10, n°1-4, 251-264.
[28] Hubbell JH, Seltzer SM (1996) Tables of X–Ray Mass Attenuation Coefficients
and Mass Energy–Absorption Coefficients from 1 keV to 20 MeV for Elements
Z = 1 to 92 and 48 Additional Substances of Dosimetric Interest Ionizing Radiation
Division, Physics Laboratory, NIST.
Disponible sur le site http://physics.nist.gov/PhysRefData/XrayMassCoef/tab3.html et
http://physics.nist.gov/PhysRefData/XrayMassCoef/tab4.html.
[29] ICRU (1980) Radiation Quantities and Units. Publication 33.
[30] ICRU (1984) Stopping Powers for electrons and positrons. Publication 37.
[31] ICRU (1998) Conversion Coefficients for use in Radiological Protection against
External Radiation. Publication 57.
[32] ICRU (2000) Nuclear Data for Neutron and Proton Radiotherapy and for Radiation Protection. Publication 63
[33] ICRU (2001) Determination of Operational Dose Equivalent Quantities for Neutrons. Publication 66.
[34] ICRU (2011) Fundamental quantities and units for ionizing radiation (revised).
Publication 85a.
[35] Ing H, Clifford T, McLean T, Webb W, Cousin T, Dhermain J (1997) A simple
reliable high resolution neutron spectrometer. Radiat Prot Dosim Vol. 70, n°1-4, 273278.
[36] ICRU (1993) Stopping powers and ranges for protons and alpha particles. Publication 49.
[37] Katz L, Penfold AS (1952) Range energy relations for electrons and the determination on beta–ray end point energies by absorption. Rev Mod Phys vol. 24, n°1, 28-44.
[38] Klein O, Nishina Y (1929) Die Streuung von Strahlung durch freie Elektronen nach
der neuen relativistischen Quantendynamik von Dirac. Z F Phys 52 (11-12): 853-869.
[39] Knoll GF (1989) Radiation detection and measurement, 2nd ed. Wiley, New York,
1989.
[40] Lacoste V (2010) Design of a new long counter for the determination of the neutron
fluence reference values at the IRSN AMANDE facility. Radiat Meas 45, 1250-1253.
