Detailed source term estimation of the atmospheric release for the Fukushima Daiichi Nuclear Power Station accident by coupling simulations of an atmospheric dispersion model with an improved deposition scheme and oceanic dispersion model

被引:248
作者
Katata, G. [1 ]
Chino, M. [1 ]
Kobayashi, T. [1 ]
Terada, H. [1 ]
Ota, M. [1 ]
Nagai, H. [1 ]
Kajino, M. [2 ]
Draxler, R. [3 ]
Hort, M. C. [4 ]
Malo, A. [5 ]
Torii, T. [6 ]
Sanada, Y. [7 ]
机构
[1] Japan Atom Energy Agcy, Naka, Ibaraki 3191195, Japan
[2] Japan Meteorol Agcy JMA, Meteorol Res Inst, Tsukuba, Ibaraki 3050052, Japan
[3] Univ Res Court, Air Resources Lab, NOAA, College Pk, MD 20740 USA
[4] Met Off, Exeter EX1 3PB, Devon, England
[5] CMC, Dorval, PQ H9P 1J3, Canada
[6] JAEA, Chiyoda Ku, Tokyo 1008577, Japan
[7] JAEA, Fukushima Ku, Fukushima 9601296, Japan
基金
日本学术振兴会;
关键词
WET SCAVENGING COEFFICIENT; GASEOUS DRY DEPOSITION; CLOUD-WATER DEPOSITION; PLANT ACCIDENT; AEROSOL-PARTICLES; NORTH PACIFIC; AIRBORNE RADIONUCLIDES; UNCERTAINTY ASSESSMENT; NUMERICAL-SIMULATION; FIELD-MEASUREMENTS;
D O I
10.5194/acp-15-1029-2015
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Temporal variations in the amount of radionuclides released into the atmosphere during the Fukushima Daiichi Nuclear Power Station (FNPS1) accident and their atmospheric and marine dispersion are essential to evaluate the environmental impacts and resultant radiological doses to the public. In this paper, we estimate the detailed atmospheric releases during the accident using a reverse estimation method which calculates the release rates of radionuclides by comparing measurements of air concentration of a radionuclide or its dose rate in the environment with the ones calculated by atmospheric and oceanic transport, dispersion and deposition models. The atmospheric and oceanic models used are WSPEEDI-II (Worldwide version of System for Prediction of Environmental Emergency Dose Information) and SEA-GEARN-FDM (Finite difference oceanic dispersion model), both developed by the authors. A sophisticated deposition scheme, which deals with dry and fog-water depositions, cloud condensation nuclei (CCN) activation, and subsequent wet scavenging due to mixed-phase cloud microphysics (in-cloud scavenging) for radioactive iodine gas (I-2 and CH3I) and other particles (CsI, Cs, and Te), was incorporated into WSPEEDI-II to improve the surface deposition calculations. The results revealed that the major releases of radionuclides due to the FNPS1 accident occurred in the following periods during March 2011: the afternoon of 12 March due to the wet venting and hydrogen explosion at Unit 1, midnight of 14 March when the SRV (safety relief valve) was opened three times at Unit 2, the morning and night of 15 March, and the morning of 16 March. According to the simulation results, the highest radioactive contamination areas around FNPS1 were created from 15 to 16 March by complicated interactions among rainfall, plume movements, and the temporal variation of release rates. The simulation by WSPEEDI-II using the new source term reproduced the local and regional patterns of cumulative surface deposition of total I-131 and Cs-137 and air dose rate obtained by airborne surveys. The new source term was also tested using three atmospheric dispersion models (Modele Lagrangien de Dispersion de Particules d'ordre zero: MLDP0, Hybrid Single Particle Lagrangian Integrated Trajectory Model: HYSPLIT, and Met Office's Numerical Atmospheric-dispersion Modelling Environment: NAME) for regional and global calculations, and the calculated results showed good agreement with observed air concentration and surface deposition of Cs-137 in eastern Japan.
引用
收藏
页码:1029 / 1070
页数:42
相关论文
共 148 条
[91]  
NRA (Nuclear Regulation Authority), 2012, AIRB MON RES EACH PR
[92]  
Ohfuchi W., 2004, Journal of the Earth Simulator, V1, P8, DOI DOI 10.1029/2004GL019895
[93]   Measurements of atmospheric SO2 and SO42-, and determination of the wet scavenging coefficient of sulfate aerosols for the winter monsoon season over the Sea of Japan [J].
Okita, T ;
Hara, H ;
Fukuzaki, N .
ATMOSPHERIC ENVIRONMENT, 1996, 30 (22) :3733-3739
[94]   Vertical transport mechanisms of black carbon over East Asia in spring during the A-FORCE aircraft campaign [J].
Oshima, N. ;
Koike, M. ;
Kondo, Y. ;
Nakamura, H. ;
Moteki, N. ;
Matsui, H. ;
Takegawa, N. ;
Kita, K. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2013, 118 (23) :13175-13198
[95]  
Paramonov M, 2011, BOREAL ENVIRON RES, V16, P304
[96]   MODELING THE DRY DEPOSITION VELOCITY OF AEROSOL-PARTICLES TO A SPRUCE FOREST [J].
PETERS, K ;
EIDEN, R .
ATMOSPHERIC ENVIRONMENT PART A-GENERAL TOPICS, 1992, 26 (14) :2555-2564
[97]   Development and validation of a size-resolved particle dry deposition scheme for application in aerosol transport models [J].
Petroff, A. ;
Zhang, L. .
GEOSCIENTIFIC MODEL DEVELOPMENT, 2010, 3 (02) :753-769
[98]   An extended dry deposition model for aerosols onto broadleaf canopies [J].
Petroff, Alexandre ;
Zhang, Leiming ;
Pryor, S. C. ;
Belot, Yves .
JOURNAL OF AEROSOL SCIENCE, 2009, 40 (03) :218-240
[99]   A single parameter representation of hygroscopic growth and cloud condensation nucleus activity [J].
Petters, M. D. ;
Kreidenweis, S. M. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2007, 7 (08) :1961-1971
[100]  
Prime Minister of Japan and His Cabinet, 2011, REP JAP GOVT IAFA MI