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Research Article

Enhanced energy independence: converting animal fat into biodiesel

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References

  • Ardebili, S. and Khademalrasoul, A., 2018, An analysis of liquid-biofuel production potential from agricultural residues and animal fat (case study: Khuzestan Province). Journal of Cleaner Production 204, 819–831. doi: 10.1016/j.jclepro.2018.09.031
  • Srinivasan, G. and Jambulingam, R., 2018, Comprehensive study on biodiesel produced from waste animal fats -A review. Journal of Environmental Science and Technology 11(3), 157–166. doi: 10.3923/jest.2018.157.166
  • Petchsoongsakul, N., Ngaosuwan, K., Kiatkittipong, W., Wongsawaeng, D. and Assabumrungrat, S., 2020, Different water removal methods for facilitating biodiesel production from low-cost waste cooking oil containing high water content in hybridized reactive distillation. Renewable Energy 162, 1906–1918. doi: 10.1016/j.renene.2020.09.115
  • Kirubakaran, M. and Selvan, V., 2018, A comprehensive review of low-cost biodiesel production from waste chicken fat. Renewable and Sustainable Energy Reviews 82, 390–40. doi: 10.1016/j.rser.2017.09.039
  • Sander, A., Košćak, M., Kosir, D., Milosavljević, N., Parlov Vuković, J. and Magić, L., 2018, The influence of animal fat type and purification conditions on biodiesel quality. Renewable Energy 118, 752–760. doi: 10.1016/j.renene.2017.11.068
  • Khomina, V., Trach, I. and Semenyshyna, I., Koberniuk O., Mudryk K., Jewiarz M., Wróbel M., Styks J., 2019, Potential of soybean straw in Ukraine and solid biofuel production. Springer Proceedings in Energy, 163–170. doi: 10.1007/978-3-030-13888-2_15
  • Mushtruk, M., Bal-Prylypko, L. and Slobodyanyuk, N., Boyko Y., Nikolaienko M., 2022, Design of reactors with mechanical mixers in biodiesel production. Lecture Notes in Mechanical Engineering, 197–207. doi: 10.1007/978-3-031-06044-1_19
  • Brännström, H., Kumar, H. and Alén, R., 2018, Current and potential biofuel production from plant oils. BioEnergy Research 11(3), 592–613. doi: 10.1007/s12155-018-9923-2
  • Vasquez, M., Silva, E. and Castillo, E., 2017, Hydrotreatment of vegetable oils: A review of the technologies and its developments for jet biofuel production. Biomass and Bioenergy 105, 197–206. doi: 10.1016/j.biombioe.2017.07.008
  • Sani, S., Kaisan, M., Kulla, D.M., Obi, A.I., Jibrin, A. and Ashok, B., 2018, Determination of physical-chemical properties of biodiesel from Citrullus lanatus seeds oil and diesel blends. Industrial Crops and Products 122, 702–708. doi: 10.1016/j.indcrop.2018.06.002
  • Nielsen, P., Rancke-Madsen, A., Holm, H. and Burton, R., 2016, Production of biodiesel using liquid lipase formulations. Journal of the American Oil Chemists Society 93(7), 905–910. doi: 10.1007/s11746-016-2843-4
  • Ghosh, A., Chaudhary, D.R., Reddy, M.P., Rao, S.N., Chikara, J., Pandya, J.B., Patolia, J.S., Gandhi, M.R., Adimurthy, S., Vaghela, N., Mishra, S., Rathod, M.R., Prakash, A.R., Shethia, B.D., Upadhyay, S.C., Balakrishna, V., Prakash, R. and Ghosh, P.K., et al., 2007, Prospects for Jatropha methyl ester (biodiesel) in India. International Journal of Environmental Studies 64(6), 659–674. doi: 10.1080/00207230701766499
  • Mushtruk, M., Vasyliv, V. and Slobodaniuk, N., Mukoid R., Deviatko O., 2020, Improvement of the production technology of liquid biofuel from technical fats and oils. Advances in Design, Simulation and Manufacturing III, 377–386. doi: 10.1007/978-3-030-50491-5_36
  • Surendra, K., Olivier, R., Tomberlin, J., Jha, R. and Khanal, S.K., 2016, Bioconversion of organic wastes into biodiesel and animal feed via insect farming. Renewable Energy 98, 197–202. doi: 10.1016/j.renene.2016.03.022
  • Ghosh, P.K., 2004, U.S. Patent No. 7 666 234 (Washington DC, U.S. Patent and Trademark Office).
  • Mohadesi, M., Aghel, B., Maleki, M. and Ansari, A., 2019, Production of biodiesel from waste cooking oil using a homogeneous catalyst: Study of semi-industrial pilot of the microreactor. Renewable Energy 136, 677–682. doi: 10.1016/j.renene.2019.01.039
  • Mushtruk, M., Deviatko, O. and Ulianko, S., Kanivets N., Mushtruk N., 2020, An agro-industrial complex fat-containing wastes synthesis technology in ecological biofuel. Advances in Design, Simulation and Manufacturing IV, 361–370. doi: 10.1007/978-3-030-77823-1_36
  • EN 14214:2020, 2020, Liquid petroleum products - Fatty Acid Methyl Esters (FAME) for use in diesel engines and heating applications – Requirements and test methods. Quality Management Systems – Requirements.
  • DSTU 6081:2009, 2009, Motor Fuel. Methyl Esters of Fatty Acids of Oils and Fats for Diesel Engines. Technical Requirements. Quality Management Systems – Requirements.
  • Wang, C., Xie, S. and Zhong, M., 2017, Effect of hydrothermal pretreatment on kitchen waste for biodiesel production using alkaline catalyst. Waste and Biomass Valorization 8(2), 369–377. doi: 10.1007/s12649-016-9606-1
  • Balaji, M. and Niju, S., 2019, A novel biobased heterogeneous catalyst derived from Musa acuminata peduncle for biodiesel production–Process optimization using central composite design. Energy Conversion and Management 189, 118–131. doi: 10.1016/j.enconman.2019.03.085

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