AmiroB.D., 1997. Radiological dose conversion
factors for generic non-human biota used for screening potential ecological
impacts. J. Environ. Radioact.
35, 37–51.
2.
Beaugelin-SeillerK.JasserandF.Garnier-LaplaceJ.GarielJ.C., 2006. Modeling radiological dose in
non-human species: Principles, computerization, and application.
Health Phys. 90,
485–493.
3.
BergerM.J., 1999. ESTAR, PSTAR, and ASTAR: Computer
Programmes for Calculating Stopping-power and Range Tables for Electrons, Protons,
and Helium Atoms. National Institute of Standards and Technology Report
NISTIR 4999. NIST, Gaithersburg,
MD. Available at: http://physics.nist.gov/Star.
4.
BitarA.LisbonaA.ThedrezP.MaurelC.S.ForestierD.L.BarbetJ.BardiesM., 2007. A voxel-based mouse for internal
dose calculations using Monte Carlo simulations (MCNP).
Phys. Med. Biol. 52,
1013–1025.
5.
BriesmeisterJ.F., 2000. MCNP4C — a General Monte Carlo N-particle
Transport Code. Los Alamos National
Laboratory, Los Alamos,
NM.
6.
BørretzenP.BrownJ.StrandP., 2005. The ERICA assessment tool. In:
StrandP.BørretzenP.JølleT. (Eds.), Proceedings of the Second International Conference on
Radioactivity in the Environment, 2–6 October 2005, Nice. Norwegian
Radiation Protection Authority,
Østerås, pp.
43–46.
7.
CopplestoneD.BeilbyS.JonesS.R.PattonD.DanielP.GizeI., 2001. Impact Assessment of Ionising Radiation
on Wildlife. R&D Publication 128. Environment
Agency, Bristol.
8.
Department of Energy, 2002.
A Graded Approach for Evaluating Radiation Doses to Aquatic and
Terrestrial Biota. DOE-STD-1153-2002, Dept.
Energy, Washington, D.C.
9.
DogdasB.StoutD.ChatziioannouA.F.LeahyR.M., 2007. Digimouse: A 3D whole body mouse
atlas from CT and cryosection data. Phys. Med.
Biol. 52,
577–587.
10.
EckermanK.F.WestfallR.J.RymanJ.C.CristyM., 1994. Availability of nuclear decay data
in electronic form, including beta spectra not previously
published. Health Phys. 67,
338–345.
11.
GolikovV.BrownJ., 2003. Internal and External Dose Models — a
Deliverable Report for EPIC (Environmental Protection from Ionizing Contaminants
in the Arctic). Contract EU: ICA2-CT-2000-10032,
NRPA, Oslo,
Norway.
12.
HigleyK.DomotorS.AntonioE.KocherD., 2003. Derivation of screening
methodology for evaluating radiation dose to aquatic and terrestrial
biota. J. Environ. Radioact. 66,
41–59.
13.
HubbelJ.H.SeltzerS.M., 1995. 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.
National Institute of Standards and Technology Report NISTIR 5632.
NIST,
Gaithersburg. Available at: http://physics.nist.gov/PhysRefData/XrayMassCoef/cover.html.
14.
IAEA, 1976. Effects of
Ionising Radiation on Aquatic Organisms and Ecosystems. Technical Reports
Series No. 172. International Atomic Energy Agency,
Vienna.
15.
IAEA, 1979. Methodology for
Assessing Impacts of Radioactivity on Aquatic Organisms. Technical
Reports Series No. 190. International Atomic Energy
Agency, Vienna.
16.
IAEA, 1988. Assessing the
Impact of Deep Sea Disposal of Low Level Radioactive Waste on Living Marine
Resources. Technical Reports Series No. 288.
International Atomic Energy Agency,
Vienna.
17.
IAEA, 1992. Effects of
Ionizing Radiation on Plants and Animals at Levels Implied by Current Radiation
Protection Standards. Technical Reports Series No. 332.
IAEA,
Vienna.
18.
ICRP, 1983.
Radionuclide transformations. Energy and intensity of
emissions. ICRP Publication 38. Ann. ICRP11–13.
19.
ICRU, 1989. Tissue
Substitutes in Radiation Dosimetry and Measurement.
International Commission on Radiation Units and
Measurements, Bethesda,
MD.
20.
JacobP.RosenbaumH.PetoussiN.ZanklM., 1990. Calculation of Organ Doses from
Environmental Gamma Rays Using Human Phantoms and Monte Carlo Methods.
Part II: Radionuclides Distributed in the Air or Deposited on the Ground. GSF-Bericht
12/90. Gesellschaft für Strahlen- und
Umweltforschung,
Neuherberg.
21.
KinaseS.TakahashiM.SaitoK., 2008. Evaluation of self-absorbed doses
for kidneys in a voxel mouse. J. Nucl. Sci. Tecnol.
Suppl. 5,
268–270.
22.
LoevingerR.BermanM., 1976. A Revised Schema for Calculating the
Absorbed Dose from Biologically Distributed Radionuclides. NM/MIRD
Pamphlet No. 1. Society of Nuclear Medicine,
New York.
23.
NCRP, 1991. Effects of
Ionising Radiation on Aquatic Organisms. Report. No. 109.
National Council on Radiation Protection and
Measurements, Bethesda,
MD.
24.
PentreathR.J.WoodheadD.S., 1988. Towards the development of criteria for
the protection of marine fauna in relation to the disposal of radioactive wastes
into the seaRadiation Protection in Nuclear Energy, Vol.
2. International Atomic Energy Agency,
Vienna, pp.
213–243.
25.
PröhlG.BrownJ.Gomez-RosJ.M., 2003. Dosimetric Models and Data for Assessing
Exposures to Biota. FIGE-CT-2000-00102,
SRPI, Stockholm,
Sweden.
26.
StabinM.G.PetersonT.E.HolburnG.E.EmmonsM.A., 2006. Voxel-based mouse and rat models
for internal dose calculations. J. Nucl. Med.
47, 655–659.
27.
TaranenkoV.PröhlG.Gómez-RosJ.M., 2004. Absorbed dose rate conversion
coefficients for reference biota for external photon and internal
exposures. J. Radiol. Prot. 24,
A35–A62.
28.
TaschereauR.ChatziioannouA.F., 2007. Monte Carlo simulations of
absorbed dose in a mouse phantom from 18-flurine compounds.
Med. Phys. 34,
1026–1036.
29.
UlanovskyA.PröhlG., 2006. A practical method for assessment
of dose conversion coefficients for aquatic biota. J.
Environ. Biophys. 45,
203–214.
30.
Vives i BattleJ.JonesS.R.Gomez-RosJ.M., 2004. A method for calculating dose per
unit concentration values for aquatic biota, J. Radiol.
Prot. 24,
A13–A34.
31.
WoodheadD.S., 1970. Assessment of the radiation dose
to developing fish embryos due to the accumulation of radioactivity by the
egg. Radiat. Res. 43,
582–597.
32.
WoodheadD.S., 1979. Methods of Dosimetry for Aquatic
Organisms. IAEA Technical Report Series 190.
International Atomic Energy Agency,
Vienna, pp.
43–96.