scholarly journals Lessons learned from emergency response during severe accident at Fukushima Daiichi nuclear power plant viewed in human resource development

2017 ◽  
Vol 83 (856) ◽  
pp. 17-00263-17-00263
Author(s):  
Atsufumi YOSHIZAWA ◽  
Kyoko OBA ◽  
Masaharu KITAMURA
2021 ◽  
pp. 014664532110068
Author(s):  
K. Tanigawa

Due to vigorous efforts to decontaminate the environment following the accident at Fukushima Daiichi nuclear power plant, the size of the difficult-to-return zone has reduced significantly and people have started returning to their homes. As the population has increased, medical needs have ensued. A marked increase in traffic as well as decontamination and reconstruction projects has led to an increase in the number of road traffic and occupational accidents. Acceleration of population aging has resulted in an increased number of elderly residents with multiple medical problems. Uncontrolled/untreated medical problems among middle-aged to older workers have made them susceptible to deterioration of health conditions. Insufficient social support for elderly people living alone has resulted in delayed access to medical care. Early intervention and the prevention of health deterioration are instrumental. When responding to medical needs, proactive approaches, including home visits for elderly patients and health promotion, have been implemented. Human resource development is crucial to ensure the sustainability of these activities.


Author(s):  
Atsuo Takahashi ◽  
Marco Pellegrini ◽  
Hideo Mizouchi ◽  
Hiroaki Suzuki ◽  
Masanori Naitoh

The transient process of the accident at the Fukushima Daiichi Nuclear Power Plant Unit 2 was analyzed by the severe accident analysis code, SAMPSON. One of the characteristic phenomena in Unit 2 is that the reactor core isolation cooling system (RCIC) worked for an unexpectedly long time (about 70 h) without batteries and consequently core damage was delayed when compared to Units 1 and 3. The mechanism of how the RCIC worked such a long time is thought to be due to balance between injected water from the RCIC pump and the supplied mixture of steam and water sent to the RCIC turbine. To confirm the RCIC working conditions and reproduce the measured plant properties, such as pressure and water level in the pressure vessel, we introduced a two-phase turbine driven pump model into SAMPSON. In the model, mass flow rate of water injected by the RCIC was calculated through turbine efficiency degradation the originated from the mixture of steam and water flowing to the RCIC turbine. To reproduce the drywell pressure, we assumed that the torus room was flooded by the tsunami and heat was removed from the suppression chamber to the sea water. Although uncertainties, mainly regarding behavior of debris, still remain because of unknown boundary conditions, such as alternative water injection by fire trucks, simulation results by SAMPSON agreed well with the measured values for several days after the scram.


Author(s):  
Tadashi Narabayashi

On March 11, 2011, Tokyo Electric Power Company’s Fukushima Daiichi Nuclear Power Plant (NPP) was hit by a tsunami caused by the Tohoku-Pacific Ocean Earthquake, resulting in nuclear accidents in Units #1 to #4. With the aim of improving the safety of NPPs worldwide, we summarize the lessons that have been learned following a thorough analysis of the event and make specific proposals for improving the safety of such facilities. The author has been involved in investigating the causes of the accidents and developing countermeasures for other NPPs in Japan as a member of the Committee for the Investigation of Nuclear Safety of the Atomic Energy Society of Japan [1], an advisory meeting member of NISA with regard to technical lessons learned from the Fukushima Daiichi NPP accidents, and a Safety Evaluation Member of NISA for the other NPPs in Japan [2].


2011 ◽  
Vol 22 (9) ◽  
pp. 782-791 ◽  
Author(s):  
Koichi Tanigawa ◽  
Yoshio Hosoi ◽  
Shuichi Terasawa ◽  
Hisayoshi Kondo ◽  
Yasushi Asari ◽  
...  

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