GLOBAL JOURNAL OF EARTH AND ENVIRONMENTAL SCIENCE
Integrity Research Journals

ISSN: 2636-6002
Model: Open Access/Peer Reviewed
DOI: 10.31248/GJEES
Start Year: 2016
Email: gjees@integrityresjournals.org


Rapid estimation of heavy metals in crude oil contaminated soils by X-ray fluorescence (XRF) spectroscopy

https://doi.org/10.31248/GJEES2020.068   |   Article Number: 0F7BEDE63   |   Vol.5 (2) - June 2020

Received Date: 25 April 2020   |   Accepted Date: 15 June 2020  |   Published Date: 30 June 2020

Authors:  R. K. Douglas* , M. Obhuo and A. W. Opukumo

Keywords: Soil contamination, Heavy metal, Contamination factor, X-Ray fluorescence.

Crude oil exploration and exploitation activities in the Niger Delta, Nigeria have caused the contamination of numerous land sites. A total of 45 sub-surface soil samples were collected from three genuinely crude-oil spill sites and their heavy metal concentrations were measured using X-Ray fluorescence spectroscopy. The range of measured heavy metal concentrations (mg/kg) in the three study sites are as follows: chromium (Cr) 54-75, copper (Cu) 5.4-16.6, iron (Fe) 14841-23404, lead (Pb) 13.5-21.4, manganese (Mn) 158-555, zinc (Zn) 32.6-47.2 in Site 1; Cr (35-66), Cu (5-16.1), Fe (10166-20967), Pb (12-17.8), Mn (209-440), Zn (17.6-33.6) in Site 2; and in Site 3: Cr (32-115), Cu (6.5-20.8), Fe (7538-22800), Pb (12-135), Mn (98-338), Zn (19.9-177). The trend of heavy metals contamination in the three sites are as follows: Fe > Mn > Cr > Zn > Pb > Cu. Their mean concentrations were relatively higher than background concentrations of heavy metals in soils previously reported in same region. Using the contamination factor (CF), the intensity of heavy metal (Mn, Cr, Zn, Pb, and Cu) contamination in soils from the three oil spill sites were evaluated and compared. The index showed Cr > Mn across the three sites, which was highest in site 1 and least in site 2. The trend of CF varies for the other metals. The high values of CF for Mn and Cr show that Mn and Cr have extreme level of contamination while Cu, Pb, and Zn lie within the range of moderate level contamination. Furthermore, statistical analyses shows significant (p < 0.05) correlation between the concentrations of the metals, which indicates the link between the metals. Thus, crude-oil spill may be the common denominator for the heavy metal pollution in the study locations. Based on the contamination indicator parameter, the soils of the studied sites are threatened by contamination of Cr and Mn.

Agip (2000). Environmental impact assessment for drilling and development of Keenokpo ''A'' location. Nigeria Agip Oil Company, Port Harcout, Nigeria.
 
Ambituuni, A., Amezaga, J., & Emeseh, E. (2014). Analysis of safety and environmental regulations for downstream petroleum industry operations in Nigeria: Problems and prospects. Environmental Development, 9, 43-60.
Crossref
 
Davies, O. A., & Abolude, D. S. (2016). Polycyclic aromatic hydrocarbons (pahs) of surface water from Oburun Lake, Niger Delta, Nigeria. Applied Science Reports, 13(1), 20-24.
Crossref
 
Esmaeilzadeh, M., Jaafari, J., Mohammadi, A. A., Panahandeh, M., Javid, A., & Javan, S. (2018). Investigation of the extent of contamination of heavy metals in agricultural soil using statistical analyses and contamination indices. Human and Ecological Risk Assessment: An International Journal, 25(5), 1125-1136.
Crossref
 
Ite, A. E., Ibok, U. J., Ite, M. U., & Petters, S. W. (2013). Petroleum exploration and production: Past and present environmental issues in the Nigeria's Niger Delta. American Journal of Environmental Protection, 1(4), 78-90.
Crossref
 
Iwegbue, C. A., Isirimah, N. O., Igwe, C., & Williams, E. S. (2006a). Characteristic levels of heavy metals in soil profiles of automobile mechanic waste dumps in Nigeria. Environmentalist, 26(2), 123-128.
Crossref
 
Iwegbue, C. M. A., Egobueze, F. E., & Opuene, K. (2006b). Preliminary assessment of heavy metals levels of soils of an oil field in the Niger Delta, Nigeria. International Journal of Environmental Science Technology, 3(2), 167-172.
Crossref
 
Iwegbue, C. M. A., Williams, E. S., & Isirimah, N. O. (2009). Study of heavy metal distribution in soils impacted with crude oil in southern Nigeria. Soil & Sediment Contamination, 18(2), 136-143.
Crossref
 
Kogbe, C. A. (1989). The Cretaceous and Paleogene sediments of Southern Nigeria. In: C. A. Kogbe (Ed.), Geology of Nigeria, Elizabethan Press, Lagos. Pp. 311-334.
 
Nganje, T. N., Hursthouse, A. S., Edet, A., Stirling, D., & Adamu, C. I. (2017). Hydrochemistry of surface water and groundwater in the shale bedrock, Cross River Basin and Niger Delta Region, Nigeria. Applied Water Science, 7, 961-985.
Crossref
 
Nwilo, P. C., & Badejo, O. T. (2006). Impacts and management of oil spill pollution along the Nigerian coastal areas. Administering Marine Spaces: International Issues, 119, 1-15.
 
Ololade, I. A. (2014). Assessment of heavy metal contamination in soil within auto-mechanic workshops using Enrichment and contamination factors with geoaccumulation indexes. Journal of Environmental Protection, 5(11), 970-982.
Crossref
 
Ossai, E. K. (2014). Heavy metal distribution in the vicinity of automobile scrap sites in Agbor, Nigeria. Journal of Applied Sciences and Environmental Management, 18(2), 261-265.
Crossref
 
Soil Survey Staff (1999). Soil Taxonomy - A basic system of soil classification for making and interpreting soil surveys, second edition. Agricultural Handbook 436; Natural Resources Conservation Service, USDA. Washington DC, USA.
 
Udoh, B. T., Esu, I. E., Ibia, T. O., Onweremadu, E. U., & Unyienyin, S. E. (2013). Agricultural potential of the beach ridge soils of the Niger Delta, Nigeria. Malaysian Journal of Soil Science, 17, 17-37.
 
Ulmanu, M., Anger, I., Gament, E., Mihalache, M., Plopeanu, G., & Tlie, L. (2011). Rapid determination of some heavy metals in soil using an X-ray fluorescence portable instrument. Research Journal of Agricultural Science, 43(3), 235-241
 
United Nations Environment Program (2011). Environmental Assessment of Ogoniland. UNEP, Switzerland.
 
Weindorf, D. C., Bakr, N., & Zhu, Y. (2014). Advances in portable X-ray fluorescence (PXRF) for environmental, pedological, and agronomic applications. In Advances in agronomy (Vol. 128, pp. 1-45). Academic Press.
Crossref
 
World Health Organisation (1996). World Health Organisation Guidelines for drinking water quality. Health Criteria and Supporting Information, WHO, Geneva. 2nd Edition, Volume 2.
 
Wright, J. B., Hasting, D. A., Jones, W. B., & Williams, H. K. (1985). Geology and mineral resources of West Africa, Allen and Unwin Limited, UK, 107.