1932

Abstract

The accident at the Fukushima Daiichi Nuclear Power Station (FDNPS) following the Great East Japan Earthquake and the subsequent tsunami in March 2011 changed people's perceptions regarding nuclear power generation in Japan and worldwide. The failure to prevent the accident and the response to it had an enormous impact specifically on the communities close to the site but also across Japan and globally. In this review, I discuss radiation detection technologies, their use and limits in the immediate assessment and response, and improvements since then. In particular, I examine recent developments in radiation detection and imaging systems that, in combination with the enormous advances in computer vision, provide new means to detect, map, and visualize radiation using manned and unmanned deployment platforms. In addition to smarter and more adaptable technologies to prevent and minimize the impact of such events, an important outcome of this accident is the need for informed and resilient citizens who are empowered by knowledge and technologies to make rational decisions. The accident at FDNPS leaves a legacy concerning the importance of historical information, technologies, and resilience as well as challenges regarding powerful technologies that can provide substantial benefits to human society but that are also associated with risks of which we must be aware.

[Erratum, Closure]

An erratum has been published for this article:
Erratum: The Nuclear Legacy Today of Fukushima
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2020-10-19
2024-04-23
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Literature Cited

  1. 1. 
    Natl. Res. Counc. Lessons Learned from the Fukushima Nuclear Accident for Improving Safety of U.S. Nuclear Plants. Washington, DC: Natl. Acad. Press https://doi.org/10.17226/18294 ( 2014.)
    [Crossref]
  2. 2. 
    WHO (World Health Organ.). Health Risk Assessment from the Nuclear Accident After the 2011 Great East Japan Earthquake and Tsunami Based on a Preliminary Dose Estimation Geneva: WHO( 2013.)
  3. 3. 
    UNSCEAR (UN Sci. Comm. Eff. At. Radiat.). Sources, effects, and risks of ionizing radiation. Scientific annex A: levels and effects of radiation exposure due to the nuclear accident after the 2011 great east-Japan earthquake and tsunami. UNSCEAR 2013 Rep., Vol. 1, United Nations New York: http://www.unscear.org/docs/reports/2013/13-85418_Report_2013_Annex_A.pdf ( 2013.)
  4. 4. 
    Yasumura S et al. Public Health 127:186( 2013.)
  5. 5. 
    Nomura SS et al. PLOS ONE 8:e60192( 2013.)
  6. 6. 
    Hasegawa A. Lancet 386:479( 1992.)
  7. 7. 
    González AJ. J. Radiol. Prot. 32:N1( 2012.)
  8. 8. 
    Kai M. J. Radiol. Prot. 32:N101( 2012.)
  9. 9. 
    UNSCEAR (UN Sci. Comm. Eff. At. Radiat.). Sources, effects and risks of ionizing radiation. Scientific annex B: effects of radiation exposure of children. UNSCEAR 2013 Rep., Vol. 2, United Nations New York: https://www.unscear.org/docs/publications/2013/UNSCEAR_2013_Report_Vol.II.pdf ( 2013.)
  10. 10. 
    WHO (World Health Organ.). Heath Effects of the Chernobyl Accident and Special Health Care Programmes Geneva: WHO( 2006.)
  11. 11. 
    World Nucl. Assoc. Fukushima Daiichi accident Rep., World Nucl. Assoc. London: https://www.world-nuclear.org/information-library/safety-and-security/safety-of-plants/fukushima-daiichi-accident.aspx ( 2020.)
    [Google Scholar]
  12. 12. 
    Blumenthal DJ. Health Phys 102:482( 2012.)
  13. 13. 
    United Nations. Kyoto Protocol to the United Nations Framework Convention on Climate Change New York: United Nations https://unfccc.int/resource/docs/convkp/kpeng.pdf ( 1998.)
  14. 14. 
    UNSCEAR (UN Sci. Comm. Eff. At. Radiat.). Evaluation of data on thyroid cancer in regions affected by the Chernobyl accident White Pap., United Nations New York: https://www.unscear.org/docs/publications/2017/Chernobyl_WP_2017.pdf ( 2018.)
  15. 15. 
    Neumaier S et al. Health Phys 111:100( 2016.)
  16. 16. 
    Kokaji L, Shinohara N. J. Nucl. Radiochem. Sci. 14:R1( 2014.)
  17. 17. 
    Imai K et al. SPEEDI: a computer code system for the real-time prediction of radiation dose to the public due to an accidental release Rep. JAERI-1297, Jpn. At. Energy Res. Inst. Tokyo: https://inis.iaea.org/collection/NCLCollectionStore/_Public/17/074/17074290.pdf?r=1&r=1 ( 1985.)
  18. 18. 
    Satake K et al. Annu. Rep. Act. Fault Paleoearthquake Res. 8:71( 2008.)
  19. 19. 
    Sugawara D et al. Pure Appl. Geophys. 170:831( 2013.)
  20. 20. 
    NAIIC (Nucl. Accid. Indep. Investig. Comm.). The Official Report of the Fukushima Nuclear Accident Independent Investigation Commission Tokyo: Natl. Diet Jpn 2012.)
  21. 21. 
    Steinhauser G et al. Sci. Total Environ. 470–471:800( 2014.)
  22. 22. 
    Investig. Comm. Accid. Fukushima Nucl. Power Stations Tokyo Electr. Power Co. Final report on the accident at Fukushima nuclear power stations of Tokyo Electric Power Company Rep., Gov. Jpn. Tokyo:( 2012.)
    [Google Scholar]
  23. 23. 
    TEPCO (Tokyo Electr. Power Co.). Fukushima nuclear accident analysis report Rep., TEPCO Tokyo: https://www.tepco.co.jp/en/press/corp-com/release/betu12_e/images/120620e0104.pdf ( 2012.).
  24. 24. 
    Am. Nucl. Soc. Spec. Comm. Fukushima. Fukushima Daiichi: ANS committee report Rep., Am. Nucl. Soc., LaGrange Park, IL http://fukushima.ans.org/report/Fukushima_report.pdf ( 2012.)
    [Google Scholar]
  25. 25. 
    Nucl. Energy Agency. The Fukushima Daiichi Nuclear Power Plant accident: OECD/NEA nuclear safety response and lessons learnt NEA Rep. 7161, Nucl. Energy Agency, Organ. Econ. Co-op. Dev. Paris: http://www.oecd-nea.org/pub/2013/7161-fukushima2013.pdf ( 2013.)
  26. 26. 
    Baba M. Radiat. Meas. 55:17( 2013.)
  27. 27. 
    Minist. Environ. Gov. Jpn. Situation concerning the accident. Booklet to Provide Basic Information Regarding Health Effects of Radiation Chapter 6 Tokyo: Minist. Environ. Gov. Jpn https://www.env.go.jp/en/chemi/rhm/basic-info/1st/06.html ( 2012.)
    [Google Scholar]
  28. 28. 
    Sugawara S et al. Post-Fukushima controversy on SPEEDI system: contested imaginary of real-time simulation technology for emergency radiation protection. The Sociotechnical Constitution of Resilience S Amir 197–224 https://doi.org/10.1007/978-981-10-8509-3_9 Singapore: Palgrave Macmillan( 2018.)
    [Crossref] [Google Scholar]
  29. 29. 
    Lyons C, Colton D. Health Phys 102:509( 2012.)
  30. 30. 
    Yasumura S. J. Epidemiol. 22:375( 2012.)
  31. 31. 
    Ohtsuru A et al. JAMA Otolaryngol. Head Neck Surg. 145:4( 2019.)
  32. 32. 
    TEPCO (Tokyo Electr. Power Co.). Land-side impermeable wall (frozen soil wall). https://www4.tepco.co.jp/en/decommision/planaction/landwardwall/index-e.html ( 2020.)
  33. 33. 
    IAEA (Intl. At. Energy Agency). The Fukushima Daiichi Accident, Tech. Vol. 1: Description and Context of the Accident Vienna: IAEA( 2015.)
    [Google Scholar]
  34. 34. 
    TEPCO (Tokyo Electr. Power Co.). Major initiatives for water management. https://www.tepco.co.jp/en/decommision/planaction/waterprocessing-e.html ( 2020.)
  35. 35. 
    McCurry J. Fukushima fishermen concerned for future over release of radioactive water. The Guardian Sept. 15. https://www.theguardian.com/environment/2019/sep/16/fukushima-fisherman-fear-for-future-over-release-of-radioactive-water ( 2019.)
    [Google Scholar]
  36. 36. 
    Rich M, Inoue M. Japan wants to dump nuclear plant's tainted water. Fishermen fear the worst. New York Times Dec. 23. https://www.nytimes.com/2019/12/23/world/asia/japan-fukushima-nuclear-water.html ( 2019.)
    [Google Scholar]
  37. 37. 
    Conca J. Japan's expert panel agrees that dumping radioactive water into the ocean is best. Forbes Feb. 1. https://www.forbes.com/sites/jamesconca/2020/02/01/japans-expert-panel-agrees-that-dumping-radioactive-water-into-the-ocean-is-best/#1208448e200c ( 2020.)
    [Google Scholar]
  38. 38. 
    GSI (Geospat. Inf. Auth. Jpn.). Extension site of distribution map of radiation dose, etc./GSI maps. Map Data, GSI, Tsukuba Japan: https://ramap.jmc.or.jp/map/eng ( 2011.)
  39. 39. 
    Baba M. J. Radiol. Prot. 41:133( 2016.)
  40. 40. 
    Sangiori M et al. Earth Syst. Sci. Data 11:589( 2019.)
  41. 41. 
    Bandstra MS et al. Measurements of Fukushima fallout by the Berkeley Radiological Air and Water Monitoring project. 2011 IEEE Nuclear Science Symposium and Medical Imaging Conference Record18–24 Piscataway, NJ: IEEE( 2011.)
    [Google Scholar]
  42. 42. 
    Natl. Res. Counc. Health Risks from Exposure to Low Levels of Ionizing Radiation: BEIR VII Phase 2 Washington, DC: Natl. Acad. Press https://doi.org/10.17226/11340 ( 2006.)
    [Crossref]
  43. 43. 
    UNSCEAR (UN Sci. Comm. Eff. At. Radiat.). Sources and effects of ionizing radiation, Vol. 2: Scientific annexes C, D, and E UNSCEAR 2008 Rep., United Nations New York: http://www.unscear.org/docs/reports/2008/11-80076_Report_2008_Annex_D.pdf ( 2008.)
    [Google Scholar]
  44. 44. 
    Adachi N et al. J. Radiol. Prot. 36:49( 2016.)
  45. 45. 
    DARPA (Def. Adv. Res. Proj. Agency). Ushering in a new generation of low-cost, networked, nuclear-radiation detectors Press Release, Aug. 23. https://www.darpa.mil/news-events/2016-08-23 ( 2016.)
  46. 46. 
    Gibney E. Fukushima data show rise and fall in food radioactivity. Nature News Feb. 27. https://doi.org/10.1038/nature.2015.17016 ( 2015.)
    [Crossref] [Google Scholar]
  47. 47. 
    Mizuta T et al. Shimadzu Hyoron 69:39( 2012.)
  48. 48. 
    Merz S et al. Environ. Sci. Technol. 49:2875( 2015.)
  49. 49. 
    Baba M. J. Radiol. Prot. 41:133( 2016.)
  50. 50. 
    Miyazaki M et al. J. Med. Sci. 60:95( 2014.)
  51. 51. 
    Hayano RS. Ann. IRCP 45:2 Suppl.14( 2016.)
  52. 52. 
    Uchiyama M et al. Health Phys 71:320( 1996.)
  53. 53. 
    Hayano RS et al. J. Radiol. Prot. 34:645( 2014.)
  54. 54. 
    Kaiser R. Philos. Trans. R. Soc. A 377:20180049( 2019.)
  55. 55. 
    Alvarez LW et al. Science 167:832( 1970.)
  56. 56. 
    Moroshima K et al. Nature 552:386( 2017.)
  57. 57. 
    D'Alessandro R et al. Philos. Trans. R. Soc. A 377:20180050( 2019.)
  58. 58. 
    Guardincerri E et al. Philos. Trans. R. Soc. A 377:20180136( 2019.)
  59. 59. 
    Borozdin K et al. Nature 422:277( 2003.)
  60. 60. 
    Fujii H et al. Prog. Theor. Exp. Phys. 2013. 073C01 ( 2013.)
  61. 61. 
    Miyadera H et al. AIP Adv 3:052133( 2013.)
  62. 62. 
    Blahd WH. Semin. Nucl. Med. 26:165( 1996.)
  63. 63. 
    Gottschalk A. Semin. Nucl. Med. 26:171( 1996.)
  64. 64. 
    Todd RW, Nightingale JM, Everett DB Nature 251:132( 1974.)
  65. 65. 
    Schönfelder V et al. Nucl. Instr. Methods 107:385( 1973.)
  66. 66. 
    Schönfelder V et al. Astrophys. J. Suppl. Ser. 86:657( 1993.)
  67. 67. 
    Phlips BF et al. IEEE Trans. Nucl. Sci. 43:1472( 1996.)
  68. 68. 
    Schmid GJ et al. Nucl. Instr. Methods A 459:565( 2001.)
  69. 69. 
    Takahashi T et al. Proc. SPIE 4851:1228( 2003.)
  70. 70. 
    Vetter K et al. Nucl. Instr. Methods A 322:525( 2004.)
  71. 71. 
    Boggs SE et al. New Astron. Rev. 48:251( 2004.)
  72. 72. 
    Xu D et al. Proc. SPIE 5540:114( 2004.)
  73. 73. 
    Vetter K et al. Nucl. Instr. Methods A 579:363( 2007.)
  74. 74. 
    Gmar M et al. Nucl. Instr. Methods A 652:638( 2011.)
  75. 75. 
    Takeda S et al. Phys. Proc. 37:859( 2012.)
  76. 76. 
    Kataoka J et al. Nucl. Instr. Methods A 732:403( 2013.)
  77. 77. 
    Wahl CG et al. Nucl. Instr. Methods A 784:377( 2015.)
  78. 78. 
    Jiang J et al. J. Nucl. Sci. Technol. 53:1067( 2016.)
  79. 79. 
    Sato Y et al. J. Nucl. Sci. Technol. 12:C11007( 2017.)
  80. 80. 
    Tomsick JA et al. arXiv:1908.04334 [astro-ph.IM] (2019)
  81. 81. 
    Matsuura D et al. Mitsubishi Heavy Ind. Tech. Rev. 51:168( 2014.)
  82. 82. 
    Iwanowska J et al. Nucl. Instr. Methods A 712:34( 2013.)
  83. 83. 
    Galloway M et al. Nucl. Instr. Methods A 652:641( 2011.)
  84. 84. 
    Galloway M et al. Astron. Astrophys. 614:A93( 2018.)
  85. 85. 
    Luke P. IEEE Trans. Nucl. Sci. 42:207( 1995.)
  86. 86. 
    Hellfeld D et al. IEEE Trans. Nucl. Sci. 64:2837( 2017.)
  87. 87. 
    Hellfeld D et al. IEEE Trans. Nucl. Sci. 66:2252( 2019.)
  88. 88. 
    Vetter K. Nucl. Instr. Methods A 805:127( 2016.)
  89. 89. 
    Vetter K et al. Nucl. Instr. Methods A 878:159( 2018.)
  90. 90. 
    Vetter K et al. Sensors 19:2541( 2019.)
  91. 91. 
    Hasegawa BH et al. Nucl. Instr. Methods A 471:140( 2001.)
  92. 92. 
    Cherry SR. Annu. Rev. Biomed. Eng. 8:35( 2006.)
  93. 93. 
    Endres F et al. IEEE Int. Conf. Robot. Autom. 2012.1691( 2012.)
  94. 94. 
    Cadena C et al. IEEE Trans. Robot. 32:1309( 2016.)
  95. 95. 
    Pavlovsky R et al. arXiv:1901.05038 [physics.app-ph] ( 2018.)
  96. 96. 
    Mihailescu L et al. Nucl. Instr. Methods A 570:89( 2007.)
  97. 97. 
    Mihailescu L et al. IEEE Trans. Nucl. Sci. 56:479( 2009.)
  98. 98. 
    Parra L, Barrett HH. IEEE Trans. Med. Imaging 17:228( 1998.)
  99. 99. 
    Barnowski R et al. Nucl. Instr. Methods A 800:65( 2015.)
  100. 100. 
    Haefner A et al. IEEE Trans. Nucl. Sci. 62:1911( 2015.)
  101. 101. 
    Vetter K et al. JPS Conf. Proc. 11:070001( 2016.)
  102. 102. 
    Haefner A et al. Nucl. Instr. Methods A 857:42( 2017.)
  103. 103. 
    Pavlovsky R et al. arXiv:1908.06114 ( 2019.)
  104. 104. 
    Martin PG et al. J. Environ. Radioact. 143:135( 2015.)
  105. 105. 
    Bandstra M et al. Nucl. Instr. Methods A 840:59( 2016.)
  106. 106. 
    Aucott T et al. Nucl. Instr. Methods A 789:128( 2015.)
  107. 107. 
    Curtis JC et al. Nucl. Instr. Methods A 954:161128( 2020.)
  108. 108. 
    Sanada Y et al. Prog. Nucl. Sci. Technol. 4:76( 2014.)
  109. 109. 
    Joshi HY et al. IEEE Trans. Nucl. Sci. 64:1754( 2017.)
  110. 110. 
    Sato Y et al. J. Nucl. Sci. Technol. 56:801( 2019.)
  111. 111. 
    Sanada Y, Torii T. J. Environ. Radioact. 139:294( 2015.)
  112. 112. 
    Sanada Y et al. Appl. Radiat. Isot. 118:308( 2016.)
  113. 113. 
    Sanada Y et al. J. Environ. Radioact. 192:417( 2018.)
  114. 114. 
    Glodo J et al. Phys. Proc. 90:285( 2017.)
  115. 115. 
    Sato Y et al. J. Nucl. Sci. Technol. 55:90( 2018.)
  116. 116. 
    Bandstra MS et al. Nucl. Instr. Methods A 954:161126( 2020.)
  117. 117. 
    Bilton KJ et al. IEEE Trans. Nucl. Sci. 66:827( 2019.)
  118. 118. 
    Kuhn A. A year on, Japan is still looking for the road ahead. NPR Radio Broadcast Mar. 9. https://www.npr.org/2012/03/09/148231452/a-year-on-japan-is-still-looking-for-the-road-ahead ( 2012.)
    [Google Scholar]
  119. 119. 
    González AJ et al. J. Radiol. Prot. 33:497( 2013.)
  120. 120. 
    Bromet EJ. Health Phys 106:206( 2014.)
  121. 121. 
    Tanigawa K et al. Lancet 379:889( 2012.)
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