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The impact of oceanic circulation and phase transfer on the dispersion of radionuclides released from the Fukushima Dai-ichi Nuclear Power Plant

机译:海洋循环与相转移对福岛核电站释放的放射性核素分散的影响

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摘要

The mechanism behind the dispersion of radionuclides released from the Fukushima Dai-ichi Nuclear Power Plant on March 2011 is investigated using a numerical model. This model is a Lagrangian particle tracking–ocean circulation coupled model that is capable of solving the movement and migration of radionuclides between seawater, particulates, and bottom sediments. Model simulations show the radionuclides dispersing rapidly into the interior of the North Pacific once they enter a meso-scale eddy. However, some radionuclides also remain near the coast, with spatial distribution depending strongly on the oceanic circulation during the first month after the release. Major adsorption to bottom sediments occurs during this first month and many of these radionuclides remain on the sea floor once they are adsorbed. Model results suggest that weak offshore advection during the first month will increase the adsorption of radionuclides to bottom sediments and decelerate the dispersion to the open ocean. If vertical mixing is weak, however, fewer radionuclides reach the sea floor and adsorb to bottom sediments. More radionuclides will then quickly disperse to the open ocean.
机译:使用数值模型研究了2011年3月从福岛Dai-Ichi核电站释放的放射性核素分散后的机制。该模型是拉格朗日粒子跟踪 - 海洋循环耦合耦合模型,能够解决海水,颗粒和底部沉积物之间的放射性核素的运动和迁移。模型模拟显示放射性核素一旦进入中间级涡流,就会迅速分散到北太平洋内部。然而,一些放射性核素也靠近海岸,空间分布在释放后的第一个月内强烈对海洋循环。主要吸附到底沉积物在本第一个月内发生,并且在吸附后,许多这些放射性核素仍保留在海底上。模型结果表明,在第一个月内弱海岸平流将增加放射性核素对底部沉积物的吸附,并减速到开阔海洋的分散体。然而,如果垂直混合较弱,则放射性核素较少的放射性核素到达海底并吸附到底沉积物。然后将更多的放射性核素迅速分散到开阔的海洋。

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