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Globally, the petroleum industry plays a very significant role in producing oil to fulfil the demand of the growing population. The improper management of abandoned quantity of petroleum sludge that is one of the byproducts of petroleum industry has posed many environmental as well as socio-economic issues in most of the developing countries. The petroleum sludge contains various toxic substances, like minerals, oil, and other chemicals which are very harmful for biotic as well as abiotic environment. Meanwhile, a huge quantity of livestock manure, especially buffalo dung, is produced in villages and burned as fuel after drying in open atmosphere for domestic application without any treatment which generates indoor air pollution. This study was formulated to analyze the biochemical methane potential of buffalo dung with petroleum sludge at different mixing ratios (i.e., 1:1, 1.5:0.5 and 0.5:1.5) through batch digestion system. The substrates were prepared and characterized before and after batch digestion by using standard methodology. The maximum methane was obtained as 268 Nml/gVS, followed by 326 Nml/gVS and 191 Nml/gVS at mixing ratios of 1:1, 1.5:0.5 and 0.5:1.5, respectively. The results and findings of the study indicated that the co-digestion of buffalo dung with petroleum sludge at mixing ratio of 1.5:0.5 through continuous batch digestion would be the best option to enhance methane production.
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120--127
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Bibliogr. 29 poz., rys., tab.
Twórcy
autor
- Institute of Environmental Engineering and Management, Mehran University of Engineering and Technology, Jamshoro, Sindh, Pakistan
autor
- Mining Engineering Department, Mehran University of Engineering and Technology, Jamshoro, Sindh, Pakistan
autor
- Chemical Engineering Department, Mehran UET, Jamshoro, Sindh, Pakistan
- Mechanical Engineering Department, Ronggolawe College of Technology, Jl. Campus Ronggolawe Blok B No 1 Mentul Cepu, Blora Central, Java, Indonesia
autor
- Environment Solution Specialist, Schumberger at Kingdom Saudi Arabia
autor
- Department of Mechanical & Energy Systems Engineering, Faculty of Engineering and Informatics, University of Bradford, Bradford BD71DP, United Kingdom
autor
- Department of Physics and Astronomy, College of Science, King Saud University, Riyadh 11451, Saudi Arabia
Bibliografia
- 1. Asha N. 2019. The dynamics of Household labor allocation to biogas production, farm and non-farm activities in central Uganda. Renewable Energy, 142, 461–467.
- 2. Aldemar A.E. 2019. Hydrogen production from oil sludge gasification/biomass mixtures and potential use in hydrotreatment processes. International Journal o f Hydrogen Energy, 1–15.
- 3. Aldemar E.E. 2018. Syngas production from oil sludge gasification and its potential use in power generation system: an energy and exergy analysis. Energy.
- 4. Ali M., Zhang J., Raga R., Lavagnolo M.C., Pivato A., Wang X., Zhang Y., Cossu R., Yue D. 2018. Effectiveness of aerobic pretreatment of municipal solid waste for accelerating biogas generation during simulated landfilling. Frontiers of Environmental Science & Engineering, 12(5), https://doi. org/10.1007/s11783-018-1031-1
- 5. Ali Koolivanda H. 2019. Biodegradation of high concentrations of petroleum compounds by using indigenous bacteria isolated from petroleum hydrocarbons-rich sludge: efective scale-up from liquid medium to composting process. Journal of Environmental Management.
- 6. Calabrò P.S., Fazzino F., Limonti C., Siciliano A. 2021. Enhancement of Anaerobic Digestion of Waste-Activated Sludge by Conductive Materials under High Volatile Fatty Acids-to-Alkalinity Ratios. Water, 13(4), 391. https://doi.org/10.3390/ w13040391
- 7. Ciotola R.J., Martin J.F., Tamkin A., Castańo J.M., Rosenblum J., Bisesi M.S., Lee J. 2014. The influence of loading rate and variable temperatures on microbial communities in anaerobic digesters. Energies, 785–803. https://doi.org/10.3390/en7020785
- 8. Guanghuan L.H.M. 2016. Harmless treatment technology of oily cuttings. abu dhabi international petroleum Exhibition & Conference held in Abu Dhabi. UAE: SPE
- 9. Gabriel Sabadell D.T., Grant Scholes C.M. 2018. Treatment of oil-impacted soil and oily waste: overview of two field demonstration projects. SPE.
- 10. Hamed M. El-Mashad R. 2019. Biogas production from co-digestion of dairy manure and food waste. Bioresource Technology, 101, 421–428.
- 11. Hasan A.M.A., Kamal R.S., Farag R.K., Raouf M.E.A. 2024. Petroleum sludge formation and its treatment methodologies: a review. Environmental Science and Pollution Research, 31, 8369–8386.
- 12. Islam B. 2015. Petroleum sludge, its treatment and disposal: A review. International Journal Chemical Science, 1584–1602.
- 13. Ismail Z.Z., Jasim H.S. 2022. Biogas recovery from refinery oily sludge by co-digestion followed by sustainable approach for recycling the residual digestate in concrete mixes. Advances in Science and Technology Research Journal, 16, 178–191.
- 14. Issah A.A., Kabera T. 2020. Impact of volatile fatty acids to alkalinity ratio and volatile solids on biogas production under thermophilic conditions. Waste Management & Research, 39, 871–878. https://doi. org/10.1177/0734242X20957395
- 15. Korai M.S., Mahar R.B., Uqail M.A. 2018a. The feasibility of putrescible components of municipal solid waste for biomethane production at Hyderabad, Pakistan. Waste Management & Research, 1–14.
- 16. Kondaveeti S., Govindarajan D., Mohanakrishna G., Thatikayala D., AbuReesh I.M., Min B., Nambi I.M., Al-Raoush R.I., Aminabhavi T.M. 2023. Sustainable bio electrochemical systems for bioenergy generation via waste treatment from petroleum industries. Fuel, 331.
- 17. Korai M.S., Mahar R.B., Uqaili M.A. 2018b. Waste to energy: power generation potential of putrescible wastes by anaerobic digestion process at Hyderabad, Pakistan. Journal of Material Cycles and Waste Management, 1239–1247.
- 18. Korai M.S., Mahar. R.B., Uqaili M.A. 2016. Optimization of waste to energy routes through biochemical and thermochemical treatment options of municipal solid waste in Hyderabad, Pakistan. Energy Conversion and Management, 124, 333–343.
- 19. Mona Dehhaghia B.T. 2019. A state-of-the-art review on the application of nanomaterials for enhancing biogas production. Journal of Environmental Management, 251.
- 20. Oran N.S.Z. 2011. Optimization of C:N ratio for codigested processed industrial food waste and sewage sludge using the BMP test. International Journal of Chemical Reactor Engineering, 9, 1–12.
- 21. Pilarska A.A., Kulupa T., Kubiak A., Wolna-Maruwka A., Pilarski K., Niewiadomska A. 2023. Anaerobic digestion of food waste – a short review. Energies, 16, 5742. https://doi.org/10.3390/en16155742
- 22. Sampson. 2019. Optimisation of anaerobic digestion treatment of petroleum sludge. Journal of the Nigerian Society of Chemical Engineers, 34(1).
- 23. Sahito A.R., Mahar R.B., Brohi K.M. 2013. Anaerobic biodegradability and methane potential of crop residue co-digested with buffalo dung. Mehran University Research Journal of Engineering and Technology, 32(3), 509–518.
- 24. Silva A.S., Silva A.A., Melo C.F., Marques M.R.C. 2017. Production of oil with potential energetic use by catalytic co-pyrolysis of oil sludge from offshore petroleum industry. Journal Analytical and Applied Pyrolysis, 124, 290–297.
- 25. Soomro A.F., Abbasi I.A., Ni Z., Ying L., Liu J. 2020. Influence of temperature on enhancement of volatile fatty acids fermentation from organic fraction of municipal solid waste: Synergism between food and paper components. Bioresource Technology, 304, 122980. https://doi.org/10.1016/j. biortech.2020.122980
- 26. Slopiecka K., Liberti F., Massoli S., Bartocci P., Fantozzi F. 2022. Chemical and physical characterization of food waste to improve its use in anaerobic digestion plants. Energy Nexus, 5. https://doi.org/10.1016/j.nexus.2022.100049
- 27. Safar K.M., Bux M.R., Aslam U.M., Muhammad B.K., Ahmed M.S. 2019. Analysis of the feasibility of fruit and vegetable wastes for methane yield using different substrate to inoculum ratios at Hyderabad, Sindh, Pakistan. Journal of Material Cycles and Waste Management, 21(2), 365–374.
- 28. Sahito A.R., Mahar R.B., Ahmed F. 2016. Optimization of organic loading rate and hydraulic retention time for maximum production of methane through anaerobic co-digestion of canola straw and buffalo dung. JAPS: Journal of Animal & Plant Sciences, 26(2).
- 29. Zhang Y.B.C. 2013. Impact of different particle size distri- butions on anaerobic digestion of the organic fraction of municipal solid waste. Waste Management, 33, 297–307.
Typ dokumentu
Bibliografia
Identyfikator YADDA
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