AMELIORATION OF DIFFERENT SOIL TYPES CONTAMINATED WITH SPENT HYDROCARBON.
- Authors
-
-
Adeyemo A. J.
Federal University of Technology, Akure, Nigeria.
-
- Keywords:
- Biodegradation, hydrocarbon fractions, Polycyclic Aromatic Hydrocarbons,, Aliphatic hydrocarbons, soil types, used lubricating oil.
- Abstract
-
A simulated bioremediation study was carried out to evaluate the biodegradation of hydrocarbon fractions in soil contaminated with used lubricating oil using microbial consortium (Amnite P1300) under laboratory conditions for 90 days. Artificial contaminated soil types (clayey S1 and sandy S2) at a loading rate of 30,000 and 45,000 mg/kg in a 300 g modeled with used lubricating oil that was amended with commercially available hydrocarbon-degrading microbial consortium: contaminated soil samples were amended with commercially available hydrocarbon-degrading microbial consortium: Amnite P1300 as the bioaugmentation (T1), other treatments consist of nutrients amendments - (NH4)2SO4 and K2HPO4 (NPK) as biostimulation (T2), unamended soil - natural attenuation as (T3) and the control soil treated with sodium azide (NaN3) as (T4). These were evaluated on the microbial community and the degradation level of this used lubricating oil after contamination. Replicated three microcosms flasks per treatment were incubated, and the performance of each treatment was examined by monitoring the biodegradation of aliphatic and polycyclic hydrocarbons present in the used lubricating oil. After 90 days of incubation, Naphthalene, Acenaphthylene, and Acenaphthene were depleted in all the treatments. The control samples in both soils and the contamination levels were observed below the detection limit of 0.5 mg/kg, thus indicating abiotic removal, due to volatilization. It was observed that the shorter-chain aliphatic hydrocarbons are more degraded than the longer-chain aliphatic hydrocarbons in both soils.
Keywords: Biodegradation, hydrocarbon fractions, Polycyclic Aromatic Hydrocarbons, Aliphatic hydrocarbons, soil types, used lubricating oil.
- Author Biography
- References
-
Adeyemo, A. J. Mello, J.W.V., Silva, I. R. Fernandes, S. A. and Agele S. O. (2012). Bioremediation of spent motor oil polluted soils using commercial bacterial strains ´´Proceedings of the eight international conference on remediation of chlorinated and recalcitrant compounds´´. May 21–24. Monterey, California , USA.
Adeyemo, A. J. (2019). Dynamics of CO2 evolution during bioremediation of clayey and sandy soils contaminated with used lubricating oil. Asian Journal of Advances in Agricultural Research 9(2): 1-12.
Begoña M., Rafael A., Carlos G., Laura D., María G. J., Consuelo E., Enrique E.. (2024). Bioremediation of petroleum hydrocarbons polluted soil by spent mushroom substrates: Microbiological structure and functionality. Journal of Hazardous Materials, Volume 473, 134650. https://doi.org/10.1016/j.jhazmat.2024.134650.
Bekele G. K., Gebrie S.A., Mekonen E., Fida T.T., Woldesemayat A.A., Abda E.M., Tafesse M., Assefa F. (2022). Isolation and Characterization of Diesel-Degrading Bacteria from Hydrocarbon-Contaminated Sites, Flower Farms, and Soda Lakes. Int J Microbiol. 21;2022:5655767. doi: 10.1155/2022/5655767.
Bremner, J.M. (1996) Nitrogen Total. In: Sparks, D.L., Ed., Methods of Soil Analysis Part 3: Chemical Methods, SSSA Book Series 5, Soil Science Society of America, Madison, Wisconsin, 1085-1122.
Chang, W., Dyen, M., Spagnuolo, L., Simon, P., Whyte, L., Ghoshal, S. (2010) Biodegradation of semi and non-volatile petroleum hydrocarbons in aged, contaminated soils from sub-arctic site: Laboratory pilot-scale experiments at site temperatures. Chemosphere 80: 319 – 326.
Defelipo, B.V. Ribeiro, A.C. (1981). Análise química do solo: Metodologia.Viçosa, MG, Universidade Federal de Viçosa, 1981. 15p.
George M., David W., Paola M., Chukwuma C. O. (2020). Microbial community responses to different volatile petroleum hydrocarbon class mixtures in an aerobic sandy soil. Environmental Pollution, Volume 264, 2020, 114738.
https://doi.org/10.1016/j.envpol.2020.114738.
Gopinath V., Nelli G., Priyadarshini S. M., Barathan M., Venkat K. G., Mani A., Puteri S. A. R., Saiful A. K. (2024). Environmental impact and human health effects of polycyclic aromatic hydrocarbons and remedial strategies: A detailed review, Chemosphere, Volume 351, 141227.
Haneen I. E., Nabil Z., Suhur S., Mohammad A. A (2022). Recent advances in the treatment of PAHs in the environment: Application of nanomaterial-based technologies. Arabian Journal of Chemistry, Volume 15, Issue 7, 103918,
https://doi.org/10.1016/j.arabjc.2022.103918.
Hussein I. A., Mona S.M. M. (2016). A review on polycyclic aromatic hydrocarbons: Source, environmental impact, effect on human health and remediation. Egyptian Journal of Petroleum, Volume 25, Issue 1. 107-123.
https://doi.org/10.1016/j.ejpe.2015.03.011.
Lukas A, Julian S., Ellen I. R., Marco S., Robert I., Seongho J., Uwe K., Thomas G., Jan B., Mohammad R. S., Thomas A., Uwe E., Hendryk C., Bert B., Thorsten S., Johannes P., Ralf Z., (2024). Polycyclic aromatic hydrocarbons as fuel-dependent markers in ship engine emissions using single-particle mass spectrometry. Environmental Science: Atmospheres, Volume 4, Issue 7, 708-717. https://doi.org/10.1039/d4ea00035h.
Masterson, W. D., Dzou, L. I. P., Holba, A. G., Fincannon, A. L. and Ellis, L. (2001). Evidence for biodegradation and evaporative fractionation in West Sak, Kuparuk and Prudhoe Bay field areas, North Slope, Alaska. Organic geochemistry 32:411 – 441.
Mohamed T., Esmaeil S., Arturo A., Mohamed F. F., Bradley C., Felicity R., Andrew S. B. (2018). Bioremediation of biosolids with Phanerochaete chrysosporium culture filtrates enhances the degradation of polycyclic aromatic hydrocarbons (PAHs). Applied Soil Ecology, Volume 124, 163-170,
https://doi.org/10.1016/j.apsoil.2017.11.002.
Opinath V., Nelli G., Priyadarshini S. M., Barathan M., Venkat K. G., Mani A., Puteri S. A. R., Saiful A.K. (2024). Environmental impact and human health effects of polycyclic aromatic hydrocarbons and remedial strategies: A detailed review, Chemosphere, Volume 351, 141227. https://doi.org/10.1016/j.chemosphere.2024.141227.
Palmer, S.E. (1993). Effect of biodegradation and water washing on crude oil composition. In: S.A. Macko and M.H. Engel (ed.), Organic Geochemistry. Plenum Press, New York, pp. 511-534.
Pandolfo, E., Anna B. C., Ludovica R. (2023). "Recent Advances in Bacterial Degradation of Hydrocarbons" Water 15, no. 2: 375. https://doi.org/10.3390/w15020375
Pietro T., Sergio B., Daniela C., Fortunato P. E., Donatella de Pascale, R. D. (2024). Bioremediation for the recovery of oil-polluted marine environment, opportunities and challenges approaching the Blue Growth. Marine Pollution Bulletin, Volume 200,116157. https://doi.org/10.1016/j.marpolbul.2024.116157
Saikat M., Arka J. C., Abu M. T., Talha B. E., Firzan N., Ameer K., Abubakr M. I., Mayeen U. K., Hamid O., Fahad A. A., Jesus S. (2022). Impact of heavy metals on the environment and human health: Novel therapeutic insights to counter the toxicity. Journal of King Saud University - Science, Volume 34, Issue 3.https://doi.org/10.1016/j.jksus.2022.101865.
StatSoft, Inc. (2007). STATISTICA (data analysis software system), version 8.0.
Walkley, A. & Black, C. A. (1934). An examination of the Detjareff method for determining soil organic matter, and a proposed modification of the chromic acid titration method. SoilSci., 37, 29-38.
Xiaohua Ma, Hongbin Wan, Juan Zhou, Duan Luo, Tao Huang, Hao Yang, Changchun Huang. (2020). Sediment record of polycyclic aromatic hydrocarbons in Dianchi lake, southwest China: Influence of energy structure changes and economic development.
Chemosphere, Volume 248, 126015.
https://doi.org/10.1016/j.chemosphere.2020.126015.
Xiaohui W., Bo Y., Yi S., Qi W., Qifei H., Qunhui W., Hongying C. (2017). Pollution characteristics of polycyclic aromatic hydrocarbons in common used mineral oils and their transformation during oil regeneration. Journal of Environmental Sciences, Volume 56, 247-253. https://doi.org/10.1016/j.jes.2016.06.036.
Zhang, W.; Wu, J.; Li, S.; Zhang, Y.; Zhao, S.; Shi, Q. (2024). Classification Method of Heavy Oil Based on Chemical Composition and Bulk Properties. Energies 17, 3733. https://doi.org/10.3390/en17153733
- Downloads
- Published
- 2024-11-29
- Section
- Articles
- License
-
Copyright (c) 2024 FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
Copyright
With the submission of a manuscript, the corresponding author confirms that the manuscript is not under consideration by another journal. With the acceptance of a manuscript, the Journal reserves the exclusive right of publication and dissemination of the information contained in the article. The veracity of the paper and all the claims therein is solely the opinion of the authors not the journal.
How to Cite
Similar Articles
- Adeyanju, Olusiji Ayoade , Adeosun, Tunde Adamson, PRODUCTION ANALYSIS OF FIVE-SPOT MISCIBLE DISPLACEMENT SCHEMES IN GAS CONDENSATE RESERVOIRS. , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 19 No. 1 (2025): FUTA Journal of Engineering and Engineering Technology
- Olufemi Adeyemi Adetola, M. J. Odu, THE DEVELOPMENT OF A HAND-PUSH WEEDER FOR CUTTING WEEDS , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 15 No. 2 (2021): FUTA Journal of Engineering and Engineering Technology
- J. A. Afelumo, O. A. Ademeso, Investigation of the Integrity of Subsoil as Foundation Support for a new Hostel Building, FUT, Akure, Southwestern Nigeria , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 13 No. 2 (2019): FUTA Journal of Engineering and Engineering Technology
- H. A. Owolabi, B. V. Omidiji, O. C. Falade, Optimization of Poultry Feeds Production Using Linear Programming Technique , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 9 No. 1 (2015): FUTA Journal of Engineering and Engineering Technology
- T A EWEMOJE, S D FAGBAYIDE, K O OLUWASEMIRE, LYSIMETER DETERMINATION OF CROP COEFFICIENT OF DRIP IRRIGATED JATROPHA CURCAS , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 12 No. 1 (2018): FUTA Journal of Engineering and Engineering Technology
- S. S. Yaru, I. K. Adegun, Analyses of Biogas and Digestate from Cattle Dung Anaerobic Digestion , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 11 No. 2 (2017): FUTA Journal of Engineering and Engineering Technology
- O. Olayemi Simo-Oke, Alaba Ogunbameru, J. Imisi, Bridging Public Infrastructure-Finance Gap in Ondo State, Nigeria: Does Pension Fund Matter? , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 10 No. 2 (2016): FUTA Journal of Engineering and Engineering Technology
- O. O. Daramola, I. O. Oladele, O. S. AKINTAYO, MECHANICAL PROPERTIES OF EPOXY MATRIX COMPOSITES REINFORCED WITH GARLIC PARTICLES , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 15 No. 2 (2021): FUTA Journal of Engineering and Engineering Technology
- Olabinjo, O. O., , Olusola, G. T. , Sama, M. O., EVALUATION OF PHYSICAL, CHEMICAL AND MICROBIAL PROPERTIES OF DATE FRUIT SEEDS , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 18 No. 1 (2024): FUTA Journal of Engineering and Engineering Technology
- LADI OGUNWOLU, Adeyanju Sosimi, Toheeb Salahudeen, A MULTI-OBJECTIVE RESOURCE-CONSTRAINED PROJECT SCHEDULING PROBLEM USING GENETIC ALGORITHM , FUTA JOURNAL OF ENGINEERING AND ENGINEERING TECHNOLOGY: Vol. 12 No. 1 (2018): FUTA Journal of Engineering and Engineering Technology
You may also start an advanced similarity search for this article.
