Abstract

Anderson, I. O., and Braun, J. (1963). “A neutron rem counter with uniform sensitivity from 0.25 eV to 10 MeV,” pp. 87–95 in Neutron Dosimetry, Proceedings of the Symposium on Neutron Detection Dosimetry Standards 2 87 (Harwell, England).
Armstrong, T. W., and Chandler, K. C. (1973). SPAR, a FORTRAN Program for Computing Stopping Powers and Ranges for Muons, Charged Pions, Protons and Heavy Ions, ORNL-4869 (Oak Ridge National Laboratory, Oak Ridge, TN).
Attix, F. H. (1979a). “The partition of kerma to account for Bremsstrahlung,” Health. Phys. 36, 347–354.
Attix, F. H. (1979b). “Addendum to The partition of kerma to account for Bremsstrahlung,” Health. Phys. 36, 536.
Bartlett, D. T., and Dietze, G. (2010). ICRU Operational Quantities. Radiat. Prot. Dosim. 139, 475–476.
Behrens, R. (2012). “On the operational quantity Hp(3) for eye lens dosimetry,” J. Radiol. Prot. 32, 455–464.
Behrens, R. (2017a). “Compilation of conversion coefficients for the dose to the lens of the eye,” Radiat. Prot. Dosim. 174, 348–370.
Behrens, R. (2017b). “Conversion coefficients for H’(3;Ω) for photons,” J. Radiol. Prot. 37, 354–378.
Behrens, R., and Dietze, G. (2011). “Dose conversion coefficients for photon exposure of the human eye lens,” Phys. Med. Biol. 56, 415–437.
Berger, M. J. (1963). “Monte carlo calculation of the penetration and diffusion of fast charged particles,” pp. 135–215 in Methods in Computational Physics, Alder, B., Fernbach, S., Rotenberg, M., Eds. (Academic Press, New York).
Böhlen, T. T., Cerutti, F., Chin, M. P. W., et al (2014). “The FLUKA code: Developments and challenges for high energy and medical applications,” Nucl. Data Sheets. 120, 211–214.
Boudard, A., Cugnon, J., David, J. C., Leray, S., Mancusi, D. (2013). “New potentialities of the Liege Intranuclear Cascade Model for reactions induced by nucleons and light charged particles,” Phys. Rev. C87, 014606.
Boutillon, M., and Allisy-Roberts, P. J. (1996). Measurement of Air Kerma and Ambient Dose Equivalent in a 137Cs Beam, Rapport BIPM-1996/07. http://www.bipm.org/utils/common/pdf/rapportBIPM/RapportBIPM-1996-07.pdf.
Burlin, T. E. (1981). “The relevance of fluence data to radiation protection,” pp. 33–46 in Radiation Protection Quantities for External Exposure, Proceedings of European Seminar Braunschweig, 1980. (Harwood/CEC, Brussels and Luxembourg).
Burlin, T. E., and Wheatley, B. M (1971). “A unified approach to dosimetry in radiological protection,” Phys. Med. Biol. 16, 47–56.
Burlin, T. E., Davies, M. L., and Wheatley, B. M. (1979). “Cavity ionisation theory applied to the design of a maximum permissible fluence instrument,” Phys. Med. Biol. 24(1), 44–56.
CEC (1983). Commission of the European Communities. Operational Quantities for Use in External Radiation Protection Measurements. An Investigation of Concepts and Principles, Radiological Protection-27, Report Eur 8346 EN (European Communities, Luxembourg).
Conlin, J. L. Ed. (2017). Listing of Available ACE Tables, Los Alamos National Laboratory, LA-UR-17-20709 (Los Alamos National Laboratory, Los Alamos, New Mexico).
Daures, J., Gouriou, J., and Bordy, J-M. (2011). “Monte Carlo determination of the conversion coefficients Hp(3)/Ka in a right cylinder phantom with PENELOPE code. Comparison with “MCNP” simulations,” Radiat. Prot. Dosim. 144(1–4), 37–42.
Dimbylow, P. J., and Francis, T. M. (1983). “The effect of photon scatter and consequent electron build-up in air on the calculation of dose equivalent quantities in the ICRU sphere for photon energies from 0.662 to 10 MeV,” Phys. Med. Biol. 28, 817–828.
Dimbylow, P. J., and Francis, T. M. (1984). “The calculation of dose equivalent quantities in the ICRU sphere for photon energies from 0.01 to 10 MeV,” Radiat. Prot. Dosim. 9, 49–53.
Dunford, C. L. (1991). “Evaluated nuclear data file, ENDF/B-VI,” pp. 788–792 in Proceedings of an International Conference on Nuclear Data for Science and Technology (Jülich, Germany).
Eakins, J. S., and Tanner, R. J. (2019). “The effects of a revised operational dose quantity on the response characteristics of a β/γ personal dosemeter,” J. Radiol. Prot. 39, 399–421.
Eakins, J. S., Tanner, R. J., and Hager, L. H. (2018). “The effect of a revised operational dose quantity on the response characteristics of neutron survey instruments,” J. Radiol. Prot. 38, 688–701.
Endo, A. (2016). “Operational quantities and new approach by ICRU,” Ann. ICRP. 45 Supplement 1, 178–187.
Endo, A. (2017). “Calculation of fluence-to-effective dose conversion coefficients for the operational quantity proposed by ICRU RC 26,” Radiat. Prot. Dosim. 175, 378–387.
Ferrari, F., and Gualdrini, G. (2012). Eye Lens Dosimetry for Electrons. Hp(3) Per Unit Fluence Conversion Coefficients for Electrons from 800 keV to 10 MeV Based on MCNPX Simulations on a Cylindrical Phantom. ENEA Technical Report RT/2012/6/ENEA (Italian National Agency for New Technologies, Energy and Sustainable Economic Development, Rome).
Ferrari, A., and Pelliccioni, M. (1994). “On the conversion coefficients from fluence to ambient dose equivalent,” Radiat. Prot. Dosim. 51, 251–255.
Ferrari, A., and Pelliccioni, M. (1995). “The effect of air on the dose equivalent at 10 mm depth in the ICRU sphere,” Radiat. Prot. Dosim. 60, 243–247.
Ferrari, A., Sala, P. R., Fassò, A., and Ranft, J. (2005). FLUKA: A Multi-Particle Transport Code, CERN-2005-10, INFN/TC_05/11, SLAC-R-773 (Stanford Linear Accelerator Center, Stanford University, Stanford, CA).
Furihata, S. (2000). “Statistical analysis of light fragment production from medium energy proton-induced reactions,” Nucl. Instrum. Meth. B171, 251–258.
Geissel, H., Scheidenberger, C., Malzacher, P., Kunzendorf, J., and Weick, H. (2013, March 4). ATIMA (GSI Helmholtzzentrum für Schwerionenforschung GmbH, Darmstadt, Germany). https://web-docs.gsi.de/~weick/atima/.
Goorley, J. T., James, M. R., and Booth, T. E., et al (2013). Initial MCNP6 Release Overview, LA-UR-13-22934 (Los Alamos National Laboratories, Los Alamos, NM).
Grosswendt, B., and Chartier, J.-L. (1994). Fluence-to-Absorbed-Dose Conversion Coefficients and Angular-Dependence Factors for 4-Element ICRU Tissue, Water and PMMA Slab Phantoms Irradiated by Broad Electron Beams, PTB-Dos–24 (Physikalisch-Technische Bundesanstalt, Braunschweig, Germany).
Gualdrini, G., Mariotti, F., and Wach, S., et al (2011). “A new cylindrical phantom for eye lens dosimetry development,” Radiat. Meas. 46, 1231–1234.
Harrison, J. D., Balonov, M., and Martin, C. J., et al (2016). “Use of effective dose,” Ann. ICRP. 45 Supplement 1, 215–224.
Hirayama, H., Namito, Y., Bielajew, A. F., Wilderman, S. J., and Nelson, W. R. (2005). The EGS5 Code System, SLAC-R-730 and KEK Report 2005–8 (High Energy Accelerator Research Organization, Japan).
Hubbell, J. H., and Seltzer, S. M. (1995). Tables of X-Ray Mass Attenuation Coefficients and Mass Energy-Absorption Coefficients 1 keV to 20 MeV for Elements Z = 1 to 92 and 48 Additional Substances of Dosimetric Interest, Report NISTIR 5632 (National Institute of Standards and Technology, Gaithersburg, MD).
ICRU (1971a). International Commission on Radiation Units and Measurements. Radiation Protection Instrumentation and Its Application, ICRU Report 20 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (1971b). International Commission on Radiation Units and Measurements. Radiation Quantities and Units, ICRU Report 19 (International Commission on Radiation Protection, Bethesda, MD).
ICRU (1980). International Commission on Radiation Units and Measurements. Radiation Quantities and Units, ICRU Report 33 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (1984). International Commission on Radiation Units and Measurements. Stopping Powers for Electrons and Positrons, ICRU Report 37 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (1985). International Commission on Radiation Units and Measurement. Determination of Dose Equivalents Resulting from External Radiation Sources, ICRU Report 39 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (1988). International Commission on Radiation Units and Measurements. Determination of Dose Equivalents from External Radiation Sources- Part 2, ICRU Report 43 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (1992). International Commission on Radiation Units and Measurement. Measurements of Dose Equivalents from External Photon and Electron Radiations, ICRU Report 47 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (1993). International Commission on Radiation Units and Measurements. Quantities and Units in Radiation Protection Dosimetry, ICRU Report 51 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (1998). International Commission on Radiation Units and Measurements. Conversion Coefficients for Use in Radiological Protection Against External Radiation, ICRU Report 57 (International Commission on Radiation Units and Measurements, Bethesda, MD).
ICRU (2001). International Commission on Radiation Units and Measurements. Determination of Operational Dose Equivalent Quantities for Neutrons, ICRU Report 66, J. ICRU 1(3) (Oxford University Press, Oxford).
ICRU (2006). International Commission on Radiation Units and Measurements (2006). Measurement Quality Assurance for Ionizing Radiation Dosimetry, ICRU Report 76, J. ICRU 6(2) (Oxford University Press, Oxford).
ICRU (2010). International Commission on Radiation Units and Measurements. Reference Data for the Validation of Doses from Cosmic-Radiation Exposure of Aircraft Crew, ICRU Report 84, J. ICRU 10(2) (Oxford University Press, Oxford).
ICRU (2011). International Commission on Radiation Units and Measurements. Fundamental Quantities and Units for Ionizing Radiation, ICRU Report 85a, J. ICRU 11(1a) (Oxford University Press, Oxford).
ICRU (2014). International Commission on Radiation Units and Measurements. Key Data for Ionizing-Radiation Dosimetry: Measurement Standards and Applications, ICRU Report 90, J. ICRU 14(1) (Oxford University Press, Oxford).
ICRP (1969). International Commission on Radiological Protection. Protection against Ionizing Radiation from External Sources, ICRP Publication 15 (Pergamon Press, Oxford).
ICRP (1971). International Commission on Radiological Protection. Protection against Ionizing Radiation from External Sources: Supplement to ICRP Publication 15, ICRP Publication 21 (Pergamon Press, Oxford).
ICRP (1991). International Commission on Radiological Protection. 1990 Recommendations of the International Commission on Radiological Protection, ICRP Publication 60 (Pergamon Press, Oxford).
ICRP (1996). International Commission on Radiological Protection. Conversion Coefficients for Use in Radiological Protection against External Radiation, ICRP Publication 74, Ann. ICRP 26(3–4). (Elsevier Science, Oxford).
ICRP (2002). International Commission on Radiological Protection. Basic Anatomical and Physiological Data for use in Radiological Protection, ICRP Publication 89, Ann. ICRP 32(3–4). (Elsevier Science, Oxford).
ICRP (2007). International Commission on Radiological Protection. The 2007 Recommendations of the International Commission on Radiological Protection, ICRP Publication 103, Ann. ICRP 37(2–4). (Elsevier Science, Oxford).
ICRP (2009). International Commission on Radiological Protection. Adult Reference Computational Phantoms, ICRP Publication 110, Ann. ICRP 38(2). (Elsevier Science, Oxford).
ICRP (2010). International Commission on Radiological Protection. Conversion Coefficients for Radiological Protection for External Radiation Exposures, ICRP Publication 116, Ann. ICRP 40(2–5) (Elsevier Science, Oxford).
ICRP (2012). International Commission on Radiological Protection. ICRP Statement on Tissue Reactions and Early and Late Effects of Radiation in Normal Tissues and Organs—Theshold Doses fir Tissue Reactions in a Radiation Protrection Context, ICRP Publication 118, Ann. ICRP 41(1–2) (Elsevier Science, Oxford).
ICRP (2016). International Commission on Radiological Protection. Radiological Protection from Cosmic Radiation in Aviation, ICRP Publication 132, Ann. ICRP 45 (1) (Elsevier Science, Oxford).
IEC (2009). International Electrotechnical Commission. Radiation Protection Instrumentation—Ambient and/or Directional Dose Equivalent (Rate) Meters and/or Monitors for Beta, X and Gamma Radiation—Part 1: Portable Workplace and Environmental Meters and Monitors, IEC 60846-1:2009 (International Electrotechnical Commission, Geneva).
IEC (2010). International Electrotechnical Commission. Radiation Protection Instrumentation -Measurement of Personal Dose Equivalents Hp (10) and Hp (0,07) for X, Gamma, Neutron and Beta Radiations—Direct Reading Personal Dose Equivalent Meters and Monitors, IEC 61526 Ed.3 (International Electrotechnical Commission, Geneva).
IEC (2012). International Electrotechnical Commission. Radiation Protection Instrumentation—Passive Integrating Dosimetry Systems for Environmental and Personal Monitoring of Photon and Beta Radiation, IEC 62387 (International Electrotechnical Commission, Geneva).
IEC (2014). International Electrotechnical Commission. Radiation Protection Instrumentation—Neutron Ambient Dose Equivalent (Rate) Meters; IEC 61005 (International Electrotechnical Commission, Geneva).
ISO (1998). International Organization for Standardization. Reference Neutron Radiations –Part 3: Calibration of Area and Personal Dosimeters and Dtermination of Response as a Function of Energy and Angle of Incidence, ISO 8529-3:1998 (International Organization for Standardization, Geneva).
ISO (2006). International Organization for Standardization., Nuclear Energy—Reference Beta—particle Radiation—Part 3: Calibration of Area and Personal Dosemeters and the Determination of Their Response as a Function of Beta Radiation Energy and Angle of Incidence, ISO 6980-3:2006 (International Organization for Standardization, Geneva).
ISO (2012). International Organization for Standardization. Reference Radiation Fields for Radiation Protection — Definitions and Fundamental Concepts, ISO 29661:2012 (International Organizaton of Standards, Geneva).
ISO (2015). International Organization for Standardization. Passive Neutron Dosimetry Systems—Part 1: Performance and Test Requirements for Personal Dosimetry, ISO 21909-1:2015 (International Organization of Standards, Geneva)
ISO (2019). International Organization for Standardization. Radiological Protection—X and Gamma Reference Radiation for Calibrating Dosemeters and Doserate Meters and for Determining Their Response as a Function of Photon Energy — Part 3: Calibration of Area and Personal Dosemeters and the Measurement of Their Response as a Function of Energy and Angle of Incidence, ISO 4037-3:2019 (International Organization for Standardization, Geneva).
Jahr, R., Hollnagel, R. A., and Siebert, B. R. L. (1981). “A conceptual physical basis for monitoring external radiation,” Radiat. Prot. Dosim. 1, 299–304.
Kawrakow, I. (2002). “Electron impact ionization cross sections for EGSnrc,” Med. Phys. 29, 1230.
Kawrakow, I., Mainegra-Hing, E., Rogers, D. W. O., Tessier, F., and Walters, B. R. B. (2013). The EGSnrc Code System: Monte Carlo Simulation of Electron and Photon Transport, PIRS Report 701 (National Research Council, Ottawa).
Kim, J. O., and Kim, J. K. (1999). “Dose equivalent per unit fluence near the surface of the ICRU phantom by including the secondary electron transport for photons,” Radiat. Prot. Dosim. 83(3), 211–219.
Koch, H. W., and Motz, J. W. (1959). “Bremsstrahlung cross-section formulas and related data,” Rev. Mod. Phys. 31, 920–955.
Nara, Y., Otuka, H., Ohnishi, A., Niita, K., and Chiba, S. (1999). “Relativistic nuclear collisions at 10 A GeV energies from p+Be to Au+Au with the hadronic cascade model,” Phys. Rev. C61, 024901.
NCRP (1971). National Council on Radiation Protection and Measurements. Protection Against Neutron Radiation, NCRP Report No. 38 (National Council on Radiation Protection and Measurements, Bethesda, MD).
Nelson, W. R., Hirayama, H., and Rogers, D. W. O. (1985). The EGS4 Code System. SLAC Report 265 (Stanford Linear Accelerator Center, Stanford, CA).
Niita, K., Chiba, S., and Maruyama, T., et al (1995). “Analysis of the (N, Xn’) reactions by quantum molecular dynamics plus statistical decay model,” Phys. Rev. C52, 2620–2635.
Otto, T. (2019). “Response of Photon Dosimeters and Survey Instruments to New Operational Quantities, Proposed by ICRU RC 26,” J. Instrum. 14 P01010.Papiez, L., and Battista, J. J. (1994). “Radiance and particle fluence,” Phys. Med. Biol. 39, 1053–1062.
Pelliccioni, M. (1998). “Fluence to dose equivalent conversion data and radiation weighting factors for high energy radiation,” Radiat. Prot. Dosim. 77, 159–170.
Pelliccioni, M. (2000). “Overview of fluenceto-effective dose and fluence-to-ambient dose equivalent conversion coefficients for high energy radiation calculated using the FLUKA Code,” Radiat. Prot. Dosim. 88, 279–297.
Perroche, A-M., and Boutillon, M. (1989). “Measurement of ambient dose equivalent and directional dose equivalent in a 60Co beam,” Radiat. Prot. Dosim. 27, 139–148.
Sato, T., Niita, K., and Matsuda, N., et al (2013). “Particle and heavy ion transport code system PHITS, version 2.52,” J. Nucl. Sci. Technol. 50, 913–923.
Schuhmacher, H., Bartlett, D. T., and Bolognese-Milsztajn, T., et al (2006). Evaluation of Individual Dosimetry in Mixed Neutron and Photon Radiation Fields, Report PTB-N-49 (Physikalisch-Technische Bundesanstalt, Braunschweig, Germany).
Seltzer, S. M. (1993). “Calculation of photon mass energy-transfer and mass energy-absorption coefficients,” Radiat. Res. 136, 147–170.
Sidwell, J. M., Burlin, T. E., and Wheatley, B. M. (1969). “Calculations of the absorbed dose in a phantom from photon fluence and some applications to radiological protection,” Br. J. Radiol. 42, 522–529.
Tanner, R. J., Hager, L., and Eakins, J. (2018). “The response of the PHE neutron personal dosemeter in terms of the proposed ICRU personal dose equivalent,” Radiat. Prot. Dosim. 180(1–4), 17–20.
Vanhavere, F., Carinou, E., and Gualdrini, G., et al (2012). ORAMED: Optimization of Radiation Protection of Medical Staff, EURADOS Report 2012-02 (European Radiation Dosimetry Group, Neuherberg).
Veinot, K. G., and Hertel, N. E. (2011). “Personal dose equivalent conversion coefficients for photons to 1 GeV,” Radiat. Prot. Dosim. 145(1), 28–35.
Veinot, K. G., Hertel, N. E., Hiller, M. M., and Eckerman, K. F. (2020). “Neutron dose coefficients for the local skin,” J. Radiol. Prot. 20(2), 554–582.
Werner, C. J., Ed. (2017). MCNP User Manual Code Version 6.2, LA-UR-17-2pp81 (Los Alamos National Laboratory, Los Alamos, NM).
Werner, C. J., Bull, J. S., and Solomon, C. J., et al (2018). MCNP Release Notes, LA-UR-18-20808 (Los Alamos National Laboratory, Los Alamos, NM).
