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Nuclear Power02:36

Nuclear Power

9.8K
Controlled nuclear fission reactions are used to generate electricity. Any nuclear reactor that produces power via the fission of uranium or plutonium by bombardment with neutrons has six components: nuclear fuel consisting of fissionable material, a nuclear moderator, a neutron source, control rods, reactor coolant, and a shield and containment system.
Nuclear Fuels
Nuclear fuel consists of a fissile isotope, such as uranium-235, which must be present in sufficient quantity to provide a...
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Nuclear Fission02:50

Nuclear Fission

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Many heavier elements with smaller binding energies per nucleon can decompose into more stable elements that have intermediate mass numbers and larger binding energies per nucleon—that is, mass numbers and binding energies per nucleon that are closer to the “peak” of the binding energy graph near 56. Sometimes neutrons are also produced. This decomposition of a large nucleus into smaller pieces is called fission. The breaking is rather random with the formation of a large...
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Nuclear Fusion02:45

Nuclear Fusion

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The process of converting very light nuclei into heavier nuclei is also accompanied by the conversion of mass into large amounts of energy, a process called fusion. The principal source of energy in the sun is a net fusion reaction in which four hydrogen nuclei fuse and ultimately produce one helium nucleus and two positrons.
A helium nucleus has a mass that is 0.7% less than that of four hydrogen nuclei; this lost mass is converted into energy during the fusion. This reaction produces about...
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Pharmaceutical Poisoning: Potential Scenarios01:26

Pharmaceutical Poisoning: Potential Scenarios

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Pharmaceutical poisoning can occur through various channels, impacting an estimated 2 million hospitalized patients in the U.S. annually with serious adverse drug responses. These scenarios encompass both therapeutic uses, such as drug toxicity, where even standard dosages can lead to severe central nervous system depression, and non-therapeutic exposures, including accidental ingestion by children, and environmental and occupational exposures.Unintentional poisonings often involve exploratory...
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Prevention of Further Absorption of Poison01:14

Prevention of Further Absorption of Poison

1.4K
In cases of acute poisoning, the primary objective is to prevent further absorption of the toxic substance into the body. Immediate interventions using various decontamination techniques targeting the gastrointestinal (GI) tract can achieve this. Decontamination is crucial to prevent poison from entering the systemic circulation, which involves washing affected areas with water and mild soap and removing contaminated clothing. Once external decontamination is done, attention must be turned to...
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Nuclear Transmutation03:20

Nuclear Transmutation

21.0K
Nuclear transmutation is the conversion of one nuclide into another. It can occur by the radioactive decay of a nucleus, or the reaction of a nucleus with another particle. The first manmade nucleus was produced in Ernest Rutherford’s laboratory in 1919 by a transmutation reaction, the bombardment of one type of nuclei with other nuclei or with neutrons. Rutherford bombarded nitrogen-14 atoms with high-speed α particles from a natural radioactive isotope of radium and observed...
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Related Experiment Video

Updated: Apr 3, 2026

Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident
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Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident

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The Fukushima accident was preventable.

Costas Synolakis1, Utku Kânoğlu2

  • 1Viterbi School of Engineering, University of Southern California, Los Angeles, CA, USA School of Environmental Engineering, Technical University of Crete, Chania, Greece costas@usc.edu.

Philosophical Transactions. Series A, Mathematical, Physical, and Engineering Sciences
|September 23, 2015
PubMed
Summary

The 2011 Fukushima nuclear disaster resulted from underestimated tsunami risks and a cascade of engineering and regulatory failures. Implementing international best practices and formal standards could have prevented this preventable accident.

Keywords:
Fukushimanuclear accidenttsunamitsunami hazard

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Area of Science:

  • Geophysics
  • Nuclear Engineering
  • Risk Assessment

Background:

  • The 2011 Tohoku earthquake and subsequent tsunami caused catastrophic damage, including the Fukushima Dai-ichi nuclear power plant (NPP) accident.
  • The tsunami's height and impact were underestimated, leading to inadequate safety measures at the Fukushima Dai-ichi NPP.
  • The Onagawa NPP, despite similar tsunami exposure, sustained minimal damage, highlighting design and safety discrepancies.

Purpose of the Study:

  • To analyze the cascade of engineering and regulatory failures leading to the Fukushima Dai-ichi nuclear disaster.
  • To identify specific shortcomings in hazard assessment, design standards, and regulatory oversight.
  • To propose recommendations for preventing future nuclear accidents caused by natural disasters.

Main Methods:

  • Review of historical tsunami data and geological evidence of past inundations.
  • Analysis of seismic and tsunami research, including mega-thrust earthquake studies.
  • Examination of design criteria, hazard analysis methodologies, and regulatory frameworks for Japanese nuclear power plants.

Main Results:

  • Insufficient attention was paid to historical tsunami evidence and advancing research on subduction zone earthquakes.
  • Significant discrepancies existed in the design conditions and tsunami hazard assessments for NPPs in close proximity.
  • The Japanese nuclear regulatory structure exhibited substantial inadequacies, contributing to the accident's severity.

Conclusions:

  • The Fukushima Dai-ichi nuclear accident was preventable through adherence to international best practices, standards, and common-sense interpretation of scientific data.
  • Formal standards are crucial for evaluating NPP tsunami vulnerability, training personnel in tsunami analysis, and enhancing regulatory review processes.
  • Implementing robust, evidence-based safety protocols is essential for ensuring nuclear power plant safety against extreme natural events.