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Technologically enhanced naturally occurring radioactive materials

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Pages 393-406 | Received 19 Apr 2009, Accepted 27 Apr 2009, Published online: 03 Jun 2009

References

  • World Health Organization. Cosmic Radiation and Air Travel, 2005http://www.who.int/ionizing_radiation/env/cosmic/WHO_Info_Sheet_ Cosmic_Radiation.pdf. Accessed 22 April 2009..
  • Natural occurring radioactive material (NORM V). Fifth International Symposium on Naturally Occurring Radioactive Material. Seville, Spain:International Atomic Energy Agency; 2007.
  • UNSCEAR. 2000 Report. Vol. 1. Annex B. New York:United Nations; 2000.
  • Betti M, Aldave de las Heras L, Janssens A, Henrich E, Hunter G, Gerchikov M, Dutton M, van Weers AW, Nielsen S, Simmonds J, Bexon A, Sazykina T. European Commission Marina II study. Results of the European Commission Marina II study: part II – effects of discharges of naturally occurring radioactive material. J Environ Radioact 2004; 74:255–277.
  • UNSCEAR 2000 Report. Vol. 1. Annex E. New York:United Nations; 2000.
  • Becker D-A. Stellungnahme der Strahlenschutzkommission [Radiation exposure at working places by natural radionuclides]. New York:Gustav Fischer Verlag; 1997.
  • Hughes JS, O'Riordan MC. Radiation exposure of the UK Population – 1993 review. National Radiological Protection Board 1993.
  • Ahmed JU, Viljoen J, Myers DK, Allen B, Laraia M. Report of the IAEA Technical Co-operation Mission to Namibia on the Assessment of Radiation Safety at the Rossing Uranium Mine 31. 31 August 1992–11 September 1992.
  • Quindos PL, Fernandez NP, Sainz FC, Gomez AJ, Bordonoba PM. Radon exposure in uranium mining industry vs. exposure in tourist caves. Radiat Prot Dosimetry 2004; 111:41–44.
  • Shawky S, Amer HA, Hussein MI, el-Mahdy Z, Mustafa M. Uranium bioassay and radioactive dust measurements at some uranium processing sites in Egypt – health effects. J Environ Monit 2002; 4:588–591.
  • Banzi FP, Msaki P, Makundi IN. A survey of background radiation dose rates and radioactivity in Tanzania. Health Phys 2002; 82:80–86.
  • Khater AE, Hussein MA, Hussein MI. Occupational exposure of phosphate mine workers: airborne radioactivity measurements and dose assessment. J Environ Radioact 2004; 75:47–57.
  • National Council on Radiation Protection and Measurements. Radiation Protection in the Mineral Extraction Industry. Bethesda, MD:National Council on Radiation Protection and Measurements; 1993.
  • Hipkin J, Shaw P. Working with ores containing naturally occurring radioactive materials. Proceedings of the 3rd European ALARA Network Workshop; 1999
  • Borrego E, Mas JL, Martin JE, Bolivar JP, Vaca F, Aguado JL. Radioactivity levels in aerosol particles surrounding a large TENORM waste repository after application of preliminary restoration work. Sci Total Environ 2007; 377:27–35.
  • Cooper JR, Randle K, Sokhi RS. Radioactive Releases in the Environment – Impact and Assessment. Hoboken, New Jersey. Wiley; 2003.
  • Abbady AGE, El-Arabi AM. Naturally occurring radioactive material from the aluminium industry – a case study: the Egyptian Aluminium Company, Nag Hammady, Egypt. J Radiol Prot 2006; 26:415–422.
  • Hipkin J, Paynter RA, Shaw PV. Exposures at work to ionising radiation due to the use of naturally occurring radioactive materials in industrial processes. Appl Radiat Isot 1998; 49:205–209.
  • Juliao LM, Melo DR, Sousa WO, Santos MS, Fernandes PC, Godoy ML. Exposure of workers in a mineral processing industry in Brazil. Radiat Prot Dosimetry 2007; 125:513–515.
  • Hamlat Djeffal S, Kadi H. Assessment of radiation exposures from naturally occurring radioactive materials in the oil and gas industry. Appl Radiat Isot 2001; 55:141–146.
  • Krieger K. NORM contamination – now you see it, now you don't. Health Phys 2005; 89:S20–S21.
  • El Afifi EM, Awwad NS. Characterization of the TE-NORM waste associated with oil and natural gas production in Abu Rudeis, Egypt. J Environ Radioact 2005; 82:7–19.
  • Wilson AJ, Scott LM. Characterization of radioactive petroleum piping scale with an evaluation of subsequent land contamination. Health Phys 1992; 63:681–685.
  • Recommendations for the implementation of Title VII of the European Basic Safety Standards Directive (BSS) concerning significant increase in exposure due to natural radiation sources. Directorate-General Environmental NS Civil ProtectionEuropean Commission; 1997.
  • Band PR, Le ND, Fang R, Deschamps M, Coldman AJ, Gallagher RP, Moody J. Cohort study of Air Canada pilots: mortality, cancer incidence, and leukemia risk. Am J Epidemiol 1996; 143:137–143.
  • Fisher RP, Easty DB. Results of surveys at United States pulp and paper mills for the presence of scales and precipitates containing naturally occurring radioactive material (NORM). Health Phys 2003; 84:518–525.
  • Spitz HB, Rajaretnam G. Analysis of coal slag for naturally occurring radioactive material. Am Ind Hyg Assoc J 1998; 59:471–477.
  • Roberts CJ, Quinby JB, Duggan WP, Yuan Y. Disposal options and case-study pathway analyses. Appl Radiat Isot 1998; 49:241–258.
  • Sources and Effects of Ionizing Radiation. New York:United Nations Scientific Committee on the Effects of Atomic Radiation; 2000 Report No. E.88.IX.7.
  • O'Brien RS, Cooper MB. Technologically enhanced naturally occurring radioactive material (NORM): pathway analysis and radiological impact. Appl Radiat Isot 1998; 49:227–239.
  • Sohrabi M. The state-of-the-art on worldwide studies in some environments with elevated naturally occurring radioactive materials (NORM). Appl Radiat Isot 1998; 49:169–188.
  • Leenhouts H, Stoop P, van Tuinen ST. Non-Nuclear Industries in the Netherlands and Radiological Risks. Bilthoven, Utrecht:National Institute of Public Health and the Environment; 1996.
  • Bhattacharyya DK. Issues in the disposal of waste containing naturally occurring radioactive material. Appl Radiat Isot 1998; 49:215–226.
  • Gooding TD, Smith KR, Sear LKA. A Radiological Study of Pulverised Fuel Ash (PFA) from UK Coal-Fired Power Stations. Wolverhampton:United Kingdom Quality Ash Association.
  • 19890126 Potential Health Hazards Associated with Handling Pipe used in Oil and Gas Production; 1989http://www.osha.gov/dts/hib/hib_data/hib19890126.html. 23 April 2009.
  • Mudd GM. Radon releases from Australian uranium mining and milling projects: assessing the UNSCEAR approach. J Environ Radioact 2008; 99:288–315.
  • Lubenau JO, Yusko JG. Radioactive materials in recycled metals – an update. Health Phys 1998; 74:293–299.
  • Turner R. Scrap metals industry perspective on radioactive materials. Health Phys 2006; 91:489–493.
  • Hwang JY, Chang JB, Chang WP. Spread of 60Co contaminated steel and its legal consequences in Taiwan. Health Phys 2001; 81:655–660.
  • Pires do Rio MA, Fernandes HM. Amaral EC, Rochedo ER. Considerations about TENORM: a study case on niobium facilities. Health Phys 2003; 84:147–154.
  • Beddow H, Black S, Read D. Naturally occurring radioactive material (NORM) from a former phosphoric acid processing plant. J Environ Radioact 2006; 86:289–312.
  • Paschoa AS. Potential environmental and regulatory implications of naturally occurring radioactive materials (NORM). Appl Radiat Isot 1998; 49:189–196.
  • Smith KP, Arnish JJ, Williams GP, Blunt DL. Assessment of the disposal of radioactive petroleum industry waste in nonhazardous landfills using risk-based modeling. Environ Sci Technol 2003; 37:2060–2066.
  • Rajaretnam G, Spitz HB. Effect of leachability on environmental risk assessment for naturally occurring radioactive materials in petroleum oil fields. Health Phys 2000; 78:191–198.
  • Dowdall M, Vicat K, Frearson I, Gerland S, Lind B, Shaw G. Assessment of the radiological impacts of historical coal mining operations on the environment of Ny-Alesund, Svalbard. J Environ Radioact 2004; 71:101–114.
  • Schmitz J. Investigation of mine and industry dumps in the FRG in relation to a possible release of natural radioactive elements. Sci Total Environ 1985; 45:85–91.
  • Shawky S, Amer H, Nada AA, El-Maksoud TM, Ibrahiem NM. Characteristics of NORM in the oil industry from eastern and western deserts of Egypt. Appl Radiat Isot 2001; 55:135–139.
  • Bahari I, Mohsen N, Abdullah P. Radioactivity and radiological risk associated with effluent sediment containing technologically enhanced naturally occurring radioactive materials in amang (tin tailings) processing industry. J Environ Radioact 2007; 95:161–170.
  • Radiation: Find an Answerhttp://radiation.custhelp.com/cgi-bin/radiation.cfg/php/enduser/std_adp.php?p_faqid=1151&p_created=1098473772&p_sid=PVSUdobj&p_accessibility=0&p_redirect=&p_lva=&p_sp=cF9zcmNoPTEmcF9zb3J0X2J5PSZwX2dyaWRzb3J0PSZwX3Jvd19jbnQ9MTMsMTMmcF9wcm9kcz0xNDcsMTU2JnBfY2F0cz0mcF9wdj0yLjE1NiZwX2N2PSZwX3BhZ2U9MQ**&p_li=&p_topview=1. Accessed 23 April 2009.
  • About Phosphogypsum. US EPA, 2008. http://www.epa.gov/radiation/neshaps/subpartr/about.html. 21 November 2008.
  • Winkelmann I, Thomas M, Vogl K. Aerial measurements on uranium ore mining, milling and processing areas in Germany. J Environ Radioact 2001; 53:301–311.
  • Carvalho FP, Madruga MJ, Reis MC, Alves JG, Oliveira JM, Gouveia J, Silva L. Radioactivity in the environment around past radium and uranium mining sites of Portugal. J Environ Radioact 2007; 96:39–46.
  • Tripathi RM, Sahoo SK, Jha VN, Khan AH, Puranik VD. Assessment of environmental radioactivity at uranium mining, processing and tailings management facility at Jaduguda, India. Appl Radiat Isot 2008; 66:1666–1670.
  • Carvalho FP, Oliveira JM, Lopes I, Batista A. Radionuclides from past uranium mining in rivers of Portugal. J Environ Radioact 2007; 98:298–314.
  • Vandenhove H, Sweeck L, Mallants D, Vanmarcke H, Aitkulov A, Sadyrov O, Savosin M, Tolongutov B, Mirzachev M, Clerc JJ, Quarch H, Aitaliev A. Assessment of radiation exposure in the uranium mining and milling area of Mailuu Suu, Kyrgyzstan. J Environ Radioact 2006; 88:118–139.
  • International Commission on Radiological Protection, Publication 60 – 1990. Recommendations of the International Commission on Radiological Protection. 1990.
  • Preston DL, Pierce DA, Shimizu Y, Ron E, Mabuchi K. Dose response and temporal patterns of radiation-associated solid cancer risks. Health Phys 2003; 85:43–46.
  • BEIR V. Committee on the Biological Effects of Ionizing Radiation. In: Sciences NAo eds. Health effects of exposure to low levels of ionizing radiation. Washington, DC; 1990.
  • Direct estimates of cancer mortality due to low doses of ionising radiation: an international study. IARC Study Group on Cancer Risk among Nuclear Industry Workers. Lancet 1994; 344:1039–1043.
  • Cardis E, Gilbert ES, Carpenter L, Howe G, Kato I, Armstrong BK, Beral V, Cowper G, Douglas A, Fix J, Fry SA, Kaldor J, Lave C, Salmon L, Smith PG, Voelz GL, Wiggs LD. Effects of low doses and low dose rates of external ionizing radiation: cancer mortality among nuclear industry workers in three countries. Radiat Res 1995; 142:117–132.
  • Muirhead CR, O'Hagan JA, Haylock RG, Phillipson MA, Willcock T, Berridge GL, Zhang W. Mortality and cancer incidence following occupational radiation exposure: third analysis of the National Registry for Radiation Workers. Br J Cancer 2009; 100:206–212.
  • Preston DL, Ron E, Tokuoka S, Funamoto S, Nishi N, Soda M, Mabuchi K, Kodama K. Solid cancer incidence in atomic bomb survivors: 1958–1998. Radiat Res 2007; 168:1–64.
  • Preston DL, Shimizu Y, Pierce DA, Suyama A, Mabuchi K. Studies of mortality of atomic bomb survivors. Report 13: solid cancer and noncancer disease mortality: 1950–1997. Radiat Res 2003; 160:381–407.
  • Kreuzer M, Kreisheimer M, Kandel M, Schnelzer M, Tschense A, Grosche B. Mortality from cardiovascular diseases in the German uranium miners cohort study, 1946–1998 [see comment]. Radiat Environ Biophys 2006; 45:159–166.
  • Feinendegen LE. Evidence for beneficial low level radiation effects and radiation hormesis. Br J Radiol 2005; 78:3–7.
  • Redpath JL. Radiation-induced neoplastic transformation in vitro: evidence for a protective effect at low doses of low LET radiation. Cancer Metastasis Rev 2004; 23:333–339.
  • Elmore E, Lao XY, Kapadia R, Giedzinski E, Limoli C, Redpath JL. Low doses of very low-dose-rate low-LET radiation suppress radiation-induced neoplastic transformation in vitro and induce an adaptive response. Radiat Res 2008; 169:311–318.
  • Ina Y, Tanooka H, Yamada T, Sakai K. Suppression of thymic lymphoma induction by life-long low-dose-rate irradiation accompanied by immune activation in C57BL/6 mice. Radiat Res 2005; 163:153–158.
  • Tanaka IB3rd, Tanaka S, Ichinohe K, Matsushita S, Matsumoto T, Otsu H, Oghiso Y, Sato F. Cause of death and neoplasia in mice continuously exposed to very low dose rates of gamma rays. Radiat Res 2007; 167:417–437.
  • Scott BR. Low-dose radiation risk extrapolation fallacy associated with the linear-no-threshold model. Hum Exp Toxicol 2008; 27:163–168.
  • Boice JDJr., Lubin JH. Occupational and environmental radiation and cancer. Cancer Causes Control 1997; 8:309–22.
  • Villeneuve PJ, Morrison HI, Lane R. Radon and lung cancer risk: an extension of the mortality follow-up of the Newfoundland fluorspar cohort. Health Phys 2007; 92:157–169.
  • Domanski T, Kluszczynski D, Chruscielewski W, Olszewski J. Computer-aided methods for evaluating cancer risk in miners due to radiation exposure. Pol J Occup Med Environ Health 1993; 6:369–381.
  • Taeger D, Krahn U, Wiethege T, Ickstadt K, Johnen G, Eisenmenger A, Wesch H, Pesch B, Bruning T. A study on lung cancer mortality related to radon, quartz, and arsenic exposures in German uranium miners. J Toxicol Environ Health A 2008; 71:859–865.
  • Leuraud K, Billon S, Bergot D, Tirmarche M, Caër S, Quesne B, Laurier D. Lung cancer risk associated to exposure to radon and smoking in a case-control study of French uranium miners. Health Phys 2007; 92:371–378.
  • Vacquier B, Caer S, Rogel A, Feurprier M, Tirmarche M, Luccioni C, Quesne B, Acker A, Laurier D. Mortality risk in the French cohort of uranium miners: extended follow-up 1946–1999. Occup Environ Med 2008; 65:597–604.
  • Park RM, Bailer AJ, Stayner LT, Halperin W, Gilbert SJ. An alternate characterization of hazard in occupational epidemiology: years of life lost per years worked. Am J Ind Med 2002; 42:1–10.
  • Kreuzer M, Müller KM, Brachner A, Gerken M, Grosche B, Wiethege T, Wichmann HE. Histopathologic findings of lung carcinoma in German uranium miners. Cancer 2000; 89:2613–2621.
  • Wolf G, Arndt D, Kotschy-Lang N, Obe G. Chromosomal aberrations in uranium and coal miners. Int J Radiat Biol 2004; 80:147–153.
  • Martin F, Earl R, Tawn EJ. A cytogenetic study of men occupationally exposed to uranium. Br J Ind Med 1991; 48:98–102.
  • Zaire R, Notter M, Riedel W, Thiel E. Unexpected rates of chromosomal instabilities and alterations of hormone levels in Namibian uranium miners. Radiat Res 1997; 147:579–584.
  • Kandar MZ, Bhari IB. Radiation-induced chromosomal aberrations among TENORM workers: amang- and ilmenite-processing workers of Malaysia. Mutat Res 1996; 351:157–161.
  • Band PR, Spinelli JJ, Ng VT, Moody J, Gallagher RP. Mortality and cancer incidence in a cohort of commercial airline pilots. Aviat Space Environ Med 1990; 61:299–302.
  • Pukkala E, Auvinen A, Wahlberg G. Incidence of cancer among Finnish airline cabin attendants, 1967–92. BMJ 1995; 311:649–652.
  • Lynge E. Risk of breast cancer is also increased among Danish female airline cabin attendants. BMJ 1996; 312:253.
  • Wartenberg D, Stapleton CP. Risk of breast cancer is also increased among retired US female airline cabin attendants. BMJ 1998; 316:1902.
  • Rafnsson V, Sulem P, Tulinius H, Hrafnkelsson J. Breast cancer risk in airline cabin attendants: a nested case-control study in Iceland. Occup Environ Med 2003; 60:807–809.
  • Rafnsson V, Tulinius H, Jonasson JG, Hrafnkelsson J. Risk of breast cancer in female flight attendants: a population-based study (Iceland). Cancer Causes Control 2001; 12:95–101.
  • Shakhawat C, Tahir H, Neil B. Fuzzy rule-based modelling for human health risk from naturally occurring radioactive materials in produced water. J Environ Radioact 2006; 89:1–17.
  • Scott BR. It's time for a new low-dose-radiation risk assessment paradigm-one that acknowledges hormesis. Dose Response 2008; 6:333–351.
  • International Basic Safety Standards for Protection against Ionizing Radiation and for the Safety of Radiation Sources. Vienna:International Atomic Energy Agency; 1996.
  • Regulations for the Safe Transport of Radioactive Materials. Vienna:International Atomic Energy Agency; 2005.
  • Zielinski RA, Otton JK. Naturally Occurring Radioactive Materials (NORM) in Produced Water and Oil-Field Equipment. An Issue for the Energy Industry.
  • National Council on Radiation ProtectionReport No. 116 – Limitation of Exposure to Ionizing Radiation (Supersedes NCRP Report No. 91): 1993
  • Radionuclides in Drinking Water Safewater Water US EPAhttp://www.epa.gov/safewater/radionuclides/index.html. Accessed 1 May 2009.
  • Waggitt PW. Uranium mine rehabilitation: the story of the South Alligator Valley intervention. J Environ Radioact 2004; 76:51–66.
  • Archer VE, Coons T, Saccomanno G, Hong D-Y. Latency and the lung cancer epidemic among United States uranium miners. Health Phys 2004; 87:480–489.
  • Madsen GE, Dawson SE. Unfinished business: Radiation Exposure Compensation Act (RECA) for post-1971 U.S. uranium underground miners. J Health Soc Policy 2004; 19:45–59.

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