Environmental Geochemistry of some Heavy Metals and the Radioactivity in Urban Subsurface Soils, Southeast-Baghdad

Document Type : Original Research Paper

Authors

1 Department of Geology, College of Science, Wasit University, Wasit, Iraq

2 Department of Physics, College of Science, Wasit University, Wasit, Iraq

Abstract

A geochemical evaluation was performed to determine the occurrences of many heavy metals as well as their natural activities, in the southeast-Baghdad.  For this purpose, seventeen subsurface soil samples from the cited location were collected at a depth of 50-100 cm. Samples collection included many types of land uses such as open space, roadside, green land, industrial and commercial samples. The samples were characterized systematically using XRF and gamma-ray spectrometry with NaI (Tl) scintillation detector. The total average concentrations of heavy metals Ag, Sn, Sb, I, Hf, W, Th and U in the soil were 1.94, 3.13, 3.01, 2.82, 1.70, 72,5.66 and 0.85 ppm respectively. Heavy metals Sn, I and W appeared with high concentrations among the others as shown in total average, compared with the standard. The enrichment with Sn elements strictly appeared in green and commercial lands with an average 3.63 ppm, whereas I and W concentrated in industrial land 3.0 and 0.95 ppm respectively, indicating anthropogenic rather than autogenic. It was asserted that the observed elements can be used as pollution indicators to discover the state of the contamination. The EF values of the soils in some sites displayed enrichment with Sb and moderate with Ag reflected mild enrichment (EF > 2), confirming their level of pollution by the hazardous heavy metals. The contents of 238U, 232Th and 40K in the samples varied from 34.64-48.54, 47.22-67.73, and 323.27-585.11 Bq/kg, respectively. The mean activities of 238U, 232Th and 40K in the dry weight samples were correspondingly 41.25, 56.89, and 424.12 Bq/kg, which were higher than the global averages of 35, 30 and 400 Bq/kg, respectively. The radium equivalent levels in all samples were much lower than the global average (370 Bq/kg). In addition, all external and internal hazard indices were within the recommended limit. The average dose rate and gamma index levels were greater than the global average value.

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Main Subjects


Abbady, A. (2005). Assessment of the natural radioactivity and its radiological hazards in some Egyptian rock phosphates. Indian J. of pure & applied physc., 43; 489-493.
Abed, M. F. Altawash, B. S., & Ali, S. M. (2015). Environmental Assessment of Trace Elements    Concentration and Distribution in Surface Soils at North Baiji City, Iraq. Iraqi J. of Sci., 56(4B); 3176-3187.
Ahmed, F. & Ishiga, H. (2006). Trace metal concentrations in street dusts of Dhaka city, Bangladesh. Atmos. Environ. 40:3835–3844. 
Alam, M. N., Miah, M. M. H., Chowdhury, M. I., Kamal, M., Ghose, S., Islam, M. N., & Miah, M. S. R. (1999). Radiation dose estimation from the radioactivity analysis of lime and cement used in Bangladesh. J. of Environ. Radioact., 42(1);77-85.‏
Al-Bassam, K. (1980). Pollution impact and Pollution sources in the Euphrates River Environment. Study on sources of pollution in the water of the Euphrates River. The national program for the optimal use of water resources in the Euphrates River basin.
Al-Gazaly, H. H. Al-Ulum, M. A. B. Al-Hamidawi, A. A.  & Al-Abbasi, A. M. (2014) Natural radioactivity in soil at regions around the uranium mine in Abu-Skhair Najaf Province, Iraq. Advan. in Appl. Sci. Res.,  5(1);13-17.
Ali, H. Khan, E. & Ilahi, I. (2019). Environmental chemistry and ecotoxicology of hazardous heavy metals: environmental persistence, toxicity, and bioaccumulation.  J. of Chem., vol, Article ID 6730305, 14pages. https://doi.org/https://doi.org/10.1155/2019/6730305
Al-Khashman, O. A. (2007). The investigation of metal concentrations in street dust samples in Aqaba city, Jordan. Environ. Geochem. Health., 29:197–207.
Al-Mayyahi, S. O. M., & Al-Zamili, H. A. A. (2019). Assessment of some heavy metals contamination in sediments of Tigris River in Kut City, Wasit Governorate, Iraq. J. of Phys. Conf. Seri.,  1234(1);012076. IOP Pub.
Amana,  M. S.  Jubier, N. J. Aldhuhaibat, M. J., & Salim, A. A. (2021). Assessment of radioactivity levels in some cement produced locally in Iraq. Radi. Detec. Tech. and Metho., 5(4); 633-640.
Amana, M. S .  Muslim, R. I.   Aldhuhaibat, M. J., &, Salim, A. A. (2021). Assessment of Radiation Levels and Geochemical Factors in Iraqi Soil.  NeuroQuant., 19(6);79.
Awadh, S.M. (2009). Atmospheric pollution of Baghdad city, Iraq. Proce. of 3rd sci. conf. of College of Sci.
Awadh, S.M.(2015). Cd, Ni, and Pb distribution and pollution assessment in roadside dust from Baghdad City and Western Iraqi Desert. Arab. J. of Geosci., 8(1); 315-323.
Banat, K. M.  Howari, F. M., & Al-Hamad, A. A. (2005). Heavy metals in urban soils of central Jordan: should we worry about their environmental risks?. Environ. Res.,  97(3); 258-273.
Banerjee, A. D. (2003). Heavy metal levels and solid phase speciation in street dusts of Delhi. India Environ. Pollut., 123:95–105
Bashir, I. M. Zakari, Y. I. Ibeanu, I. G. E., & Sadiq, U.(2014). Assessment of heavy metal pollution in flooded soil of kudenda, Kaduna state. Nigeria. Americ., J. of Eng. Res.,  vol 3, no3;197-204.
Damla, N. Cevik, U. Ğ. Kobya, A. I. Celik, A. Celik, A., & Yıldırım, I. (2011). Assessment of natural radioactivity and mass attenuation coefficients of brick and roofing tile used in Turkey. J. of  Radi. Measu.,46(8);701-708.
Diab, H. M., Nouh, S. A., Hamdy, A., & El-Fiki, S. A. (2008). Evaluation of natural radioactivity in a cultivated area around a fertilizer factory. J. of Nuclear and Radiation physics, 3 (1), 53-62.
Ene, A. Stihi, C. Popescu, I. V. Gheboianu, A. Bosneaga, A., & Bancuta, I. (2009). Comparative studies on heavy metal content of soils using AAS and EDXRF atomic spectrometric techniques. Ann. Dunarea de Jos Univ. Galati, Fasc., 32(2); 51.
Gerzabek, M. H. Muramatsu, Y.  Strebl, F.  & Yoshida, S. (1999). Iodine and bromine contents of some Austrian soils and relations to soil characteristics. J. of plant nutria. and soil sci., 162(4); 415-419.
Guidebook, A. (1989). Measurement of Radionuclides in Food and the Environment. Vienna: International Atomic Energy Agency. Retrieved from https://www. iaea. org/publications/1398/measurement-of-radionuclides-in-food-and-the-environment.
IAEA. (1989).Measurement of Radionuclides in Food and the Environment”. IAEA Technical Report Series No. 295, 1989. Vienna.
Kabata-Pendias, A., & Szteke, B. (2015) Trace Elements in Abiotic and Biotic Environments. CRC Press. Taylor & Francis Group; 458.
Kumar, S., Singh, J., P. Singh, & B. S. Bajwa. (2017). Assessment of natural radioactivity levels   and associated dose rates in soil samples from historical city Panipat, India. J. of radiat. Res. and applied sci., 10(3); 283-288.
Manta, D. S. Angelone, M. Bellanca, A. Neri, R., & Sprovieri, M. (2002). Heavy metals in urban soils: a case study from the city of Palermo (Sicily), Italy. Sci. of the total environ.,  300(1-3); 229-243.
Mehra, R. Singh, S., &  Singh, K. (2011). Assessment of the average effective dose from the analysis of   226Ra, 232Th and 40K in soil samples from Punjab, India. Geochem. J., 45 (6);497-503.
Morin,S. Duong, T.T. Dabrin, A. Coynel, A. Herlory, O. Baudrimont, M. Delmas, F. Durrieu,G. Schäfer, J.Winterton, P. Blanc, G., & Coste,M. (2008). Long-term survey of heavy-metal pollution, biofilm contamination and diatom community structure in the Riou Mort watershed South-West France. Environ. Poll., vol 151, no3; 532-542.
NEA - OECD (1979). Nuclear Energy Agency, Exposure to Radiation from Natural Radioactivity in Building Materials. Nuclear Energy Agency (NEA), Report by NEA Group of Experts, Organization for Economic Co-Operation and Development, OECD, Paris, France.
Orgun, Y. Altinsoy, N. Sahin, S. Y. Gungor, Y. Gultekin, A. H., & Karaham, G. (2007). Natural and anthropogenic radionuclides in rocks and beach sands from Ezine region (canakkale), Western Anatolia, Turkey. Appli. Radiat. and Isot., 65(739e);747.
Salama, S., & Hassan, N. (2019). Estimation of Radiation Hazards of Natural Radionuclides in Archaeological Site (Tanis), Egypt. Arab J. of Nucl. Sci. and Applic.,   52(2); 62-71.
Santos Junior, J. A. Amaral, R. S.  Silva, C. M., & Menezes, R. S. C. (2010). Radium Equivalent and Annual Effective Dose from  Geological Samples from Pedra-Pernambuco-Brazil, Radiat. Measur. 45;861-864.
Shams, I. S. S. Uosif, A.M., & Elsaman, R. (2013). Gamma radioactivity measurements in Nile River sediment samples. Turk., J. of Eng. and Environ. Sci.  37;109-122.
Sinex, S.A., & G. R. Helz, G. R. (1981).Regional geochemistry of heavy metals in Chesapeake Bay   sediments. Environ. Geo., 3(6); 315-323.
Sutherland, R. A. (2000). Bed sediment-associated trace metals in an urban stream, Oahu, Hawaii.   Environ. Geo., 39(6);611-627.
Swennen, H. H. R., & Van Damme, A. (2000). Distribution and contamination status of heavy metals in estuarine sediments near Cua Ong Harbor, Ha Long Bay, Vietnam. Geologica belgica. 13/1-2; 37-47
UNSCEAR 2000 Report to the General Assembly, with Scientific Annexes
Xia, X. Chen, X. Liu, R.&  Liu, H.(2011).Heavy metals in urban soils with various types of land use in Beijing, China. J. of Haz. Mat. 186 (2-3);2043-2050.
Zakaly, H. M., Uosif, M. A., Madkour, H., Tammam, M., Issa, S., Elsaman, R., & El-Taher, A. (2019). Assessment of natural radionuclides and heavy metal concentrations in marine sediments in view of tourism activities in Hurghada city, northern Red Sea, Egypt.‏