Have a personal or library account? Click to login
Radiological and health hazards resulting from radioactivity and elemental composition of some soil samples Cover

Radiological and health hazards resulting from radioactivity and elemental composition of some soil samples

Open Access
|Jun 2020

References

  1. [1] UNSCEAR. United Nations Scientific Committee on the Effects of Atomic Radiation. In: Sources and Effects of Ionizing Radiation, Vol. I. United Nations, New York. 2000.
  2. [2] Al-khawlany AH, Khan AR, Pathan JM, et al. Measurement of activity concentration levels of radionuclides and associated hazard indices in soil samples collected from Aurangabad, Maharashtra-India. Int J Sci Eng Res. 2017; 8(7):1586-1593.
  3. [3] Al-Khawlany AH, Khan AR, Pathan JM. Review on studies in natural background radiation. Radiat Prot Environ. 2018; 41(4):215-222.10.4103/rpe.RPE_55_18
  4. [4] Trachenko K, Dove MT, Geisler T, et al. Radiation damage effects and percolation theory. J Phys Condens Matter. 2004;16(27):S2623-S2627.10.1088/0953-8984/16/27/002
  5. [5] Baca TE, Florkowski T. The environmental challenges of nuclear disarmament. Springer Science & Business Media. Vol. 29; 2000.10.1007/978-94-011-4104-8
  6. [6] EPA. Edition of the Drinking Water Standards and Health Advisories. Environmental Protection Agency: Washington; 2006.
  7. [7] Al-Khawlany AH, Khan AR, Pathan JM. Assessment of natural radioactivity levels and associated radiological hazards for some environmental soil and rock samples from outskirts of Aurangabad, India using gamma-ray spectrometry. Int J Innovative Res Sci Eng Technol. 2017; 6(8):16592-16604.
  8. [8] Malanca A, Pessina V, Dallara G. Assessment of natural radioactivity in the Brazilian state of Rio Grande. Health Phys. 1993; 65(3):298-302.10.1097/00004032-199309000-000088244700
  9. [9] Patil VD, Ismail S, Kausadikar HK. Practical Manual-Soil Quality Indicators. 1st ed. Published on behalf of Department of Soil Science & Agricultural Chemistry, Marathwada Krishi Vidyapeeth Parbhani-431402, India; 2012. pp. 9-80.
  10. [10] Sanjay K, Ketterings QM. Laboratory Manual Soil, Plant and Water Analysis. Department of Animal Science, College of Agriculture and Life Sciences, Cornell University; 2017. pp.1-50.
  11. [11] Walkley AJ, Black IA. Estimation of soil organic carbon by the chromic acid titration method. Soil Sci. 1934;37:29-38.10.1097/00010694-193401000-00003
  12. [12] Jankovic M, Todorovic D, Savanovic M. Radioactivity measurements in rock samples collected in the Republic of Srpska. Radiat Meas. 2008;43:1448-1452.10.1016/j.radmeas.2008.03.004
  13. [13] Veiga RGN, Sanche SR, Anjos M, et al. Measurement of natural radioactivity in Brazillian beach sands. Radiat Meas. 2006;41:189-196.10.1016/j.radmeas.2005.05.001
  14. [14] Powell BA, Hughes LD, Soreefan AM, et al. Elevated concentrations of primordial radionuclides in sediments from the Reedy River and surrounding creeks in Simpsonville, South Carolina. J Environ Radioact. 2007;94:121-128.10.1016/j.jenvrad.2006.12.01317350148
  15. [15] Beretka J, Mathew PJ. Natural radioactivity of Australian building materials, industrial wastes and by-products. Health Phys. 1985;48:87-95.10.1097/00004032-198501000-000073967976
  16. [16] NEA-OECD. Nuclear Energy Agency. Exposure to Radiation from Natural Radioactivity in Building Materials. Report by NEA Group of Experts OECD, Paris; 1979.
  17. [17] Mostafa AMA, Mahmoud Uosif MA, Elsaman R, et al. Transmission of natural radiation from soil to maize plants and radiological hazards resulting from consumption in Upper Egypt. J Phys Sci. 2016; 27(3):25-49.10.21315/jps2016.27.3.3
  18. [18] Elham B, Masoud VM, Nasrin F. Natural radionuclide and radiological assessment of building materials in high background radiation areas of Ramsar, Iran. J Med Phys. 2013; 38(2):93-97.10.4103/0971-6203.111325368330723776313
  19. [19] Awad A, El-Taher IA, Alruwaili HM. Assessment of natural radioactivity levels and radiation hazard indices for soil samples from Abha, Saudi Arabia. Results Phys. 2018;11:325-30.10.1016/j.rinp.2018.09.013
  20. [20] Muller G. Index of geo-accumulation in sediments of the Rhine River. GeoJournal 1969; 2:109-18.
  21. [21] Hakanson L. An ecological risk index for aquatic pollution control: A sedimentological approach. Water Res. 1980;14:975-1001.10.1016/0043-1354(80)90143-8
  22. [22] Tomlinson DL, Wilson JG, Harris CR, et al. Problems in the Assessment of Heavy Metal Levels in Estuaries and the Formation of a Pollution Index. Helgol Wiss Meeresunters. 1980;33:566-75.10.1007/BF02414780
  23. [23] ICRP. International Commission on Radiation Protection against Radon-222 at home and at work, Pergamon Press, Oxford; 1994.
  24. [24] El-Taher A, Najam LA, Oraibi AH, et al. Effect of cement factory exhaust on radiological contents of surrounding soil samples in Assuit province-Egypt. J Phys Sci. 2017; 28(3):137-50.10.21315/jps2017.28.3.9
  25. [25] Santos JAS, Amaral RS, Nascimento JM. Radioactive disequilibrium and dynamic of natural radionuclides in soils in the state of pernambuco Brazil. Radia Prot Dosim. 2018: pp.1-11. doi:10.1093/rpd/ncy101.10.1093/rpd/ncy101
  26. [26] Johnson CK, Eigenberg RA, Doran JW, et al. Status of soil electrical conductivity studies by central states researchers. Trans Am Soc Agric Eng. 2005; 48(3):979-89.10.13031/2013.18510
  27. [27] Bednar AJ, Jones WT, Boyd RE, et al. Geochemical parameters influencing tungsten mobility in soils. J Environ Qual. 2008; 37(1):229-33.10.2134/jeq2007.0305
  28. [28] USDA-United States Department of Agriculture, Soil Taxonomy, USDA-NRCS, Washington, DC, USA; 2012.
  29. [29] Tsai TL, Liu C, Chuang CY, et al. The effects of physico-chemical properties on natural radioactivity levels, associated dose rate and evaluation of radiation hazard in the soil of Taiwan using statistical analysis. J Radioanal Nucl Chem. 2011; 288:927-36. doi 10.1007/s10967-011-1032-z.10.1007/s10967-011-1032-z
  30. [30] Rajalakshmi A, Chandrasekaran A, Ravisankar R. Soil pollution assessment in salt field area of Kelambakkam, Tamilnadu using different analytical techniques. Acta Ecologica Sinica 2017;37:373-78.10.1016/j.chnaes.2017.04.003
  31. [31] Hans Wedepohl K. The composition of the continental crust. Geochim Cosmochim Acta 1995; 59(7):1217-32.10.1016/0016-7037(95)00038-2
  32. [32] Kabata-Pendias A, Pendias H. Trace Elements in Soils and Plants, CRC Press, New York, NY, USA; 2001.10.1201/9781420039900
  33. [33] Turekian KK, Wedepohl KH. Distribution of the elements in some major units of the Earth’s crust. Geol Soc Am Bull. 1961;72:175-92.10.1130/0016-7606(1961)72[175:DOTEIS]2.0.CO;2
DOI: https://doi.org/10.2478/pjmpe-2020-0011 | Journal eISSN: 1898-0309 | Journal ISSN: 1425-4689
Language: English
Page range: 97 - 110
Submitted on: Nov 23, 2019
Accepted on: May 4, 2020
Published on: Jun 25, 2020
Published by: Polish Society of Medical Physics
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2020 Abdu Hamoud Al-Khawlany, A. R. Khan, J. M. Pathan, published by Polish Society of Medical Physics
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.