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Research Article

Assessment of the techno-economic viability of B10 synthesis from second-generation biodiesel feedstocks in Uganda

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Pages 351-373 | Received 11 Jul 2022, Accepted 07 Mar 2023, Published online: 22 Mar 2023

References

  • Ahmed Elgharbawy, A., Wagih Sadik, Olfat Sadek, and Mosaad Kasaby. 2021. “Transesterification Reaction Conditions and low-Quality Feedstock Treatment Processes for Biodiesel Production- A Review.” Journal of Petroleum and Mining Engineering 0 (0): 98–103. doi:10.21608/jpme.2021.67482.1076.
  • Al-Saadi, L. S., V. C. Eze, and A. P. Harvey. 2022. “Techno-economic Analysis of Processes for Biodiesel Production with Integrated co-Production of Higher Added Value Products from Glycerol.” Biofuels 13 (4): 489–496. doi:10.1080/17597269.2020.1767495.
  • Aldo Okullo, A. K. Temu, P. Ogwok, and J. W. Ntalikwa. 2017. “Physico-Chemical Properties of Biodiesel from Jatropha and Castor Oils.” International Journal of Renewable Energy Research 2 (1): 47–52.
  • Ali, E., A. Supervisor, P. I. Rashid, A. Co -Supervisor, P. Sharif, and M. Musameh. 2015. “Faculty of Graduate Studies, An-Najah National University-Nablus.” Physics.
  • Atabani, A. E., and S. César. 2014. “Calophyllum Inophyllum L . – A Prospective non-Edible Biodiesel Feedstock. Study of Biodiesel Production, Properties, Fatty Acid Composition, Blending and Engine Performance.” Renewable and Sustainable Energy Reviews 37: 644–655. doi:10.1016/j.rser.2014.05.037.
  • Bart, J. C. J., N. Palmeri, and S. Cavallaro. 2010. “Emerging new Energy Crops for Biodiesel Production.” Biodiesel Science and Technology, 226–284. doi:10.1533/9781845697761.226.
  • Bayisa, Y. M., and T. A. Bullo. 2021. “Optimization and Characterization of oil Extracted from Croton Macrostachyus Seed for Antimicrobial Activity Using Experimental Analysis of Variance.” Heliyon 7 (9), doi:10.1016/j.heliyon.2021.e08095.
  • Bhuiya, M. M. K., M. G. Rasul, M. M. K. Khan, N. Ashwath, and A. K. Azad. 2014. “Second Generation Biodiesel : Potential Alternative to- Edible Oil-Derived Biodiesel.” Energy Procedia 61: 1969–1972. doi:10.1016/j.egypro.2014.12.054.
  • Bhuiya, M. M. K., M. G. Rasul, M. M. K. Khan, N. Ashwath, and A. K. Azad. 2016. “Prospects of 2nd Generation Biodiesel as a Sustainable Fuel — Part : 1 Selection of Feedstocks, oil Extraction Techniques and Conversion Technologies.” Renewable and Sustainable Energy Reviews 55: 1109–1128. doi:10.1016/j.rser.2015.04.163.
  • Borhanipour, M., P. Karin, M. Tongroon, N. Chollacoop, and K. Hanamura. 2014. “Comparison Study on Fuel Properties of Biodiesel from Jatropha, Palm and Petroleum Based Diesel Fuel.” SAE Technical Paper Series 1 (August), doi:10.4271/2014-01-2017.
  • Canakci, M., and H. Sanli. 2008. “Biodiesel Production from Various Feedstocks and Their EVects on the Fuel Properties.” Journal of Industrial Microbiology & Biotechnology 35: 431–441. doi:10.1007/s10295-008-0337-6.
  • Chrysa, G. 2020. Analysis: EU Biofuels 2020 Policy Framework Headache for Blenders.
  • Chyuan, H., J. Milano, A. Susan, M. Haji, A. Halim, C. Wang, T. Meurah, et al. 2019. “Biodiesel Production from Calophyllum Inophyllum - Ceiba Pentandra oil Mixture : Optimization and Characterization.” Journal of Cleaner Production 219: 183–198. doi:10.1016/j.jclepro.2019.02.048.
  • Fattah, I. M. R., H. C. Ong, T. M. I. Mahlia, M. Mofijur, and A. S. Silitonga. 2020. State of the Art of Catalysts for Biodiesel Production 8 (June): 1–17. doi:10.3389/fenrg.2020.00101.
  • Garnayak, D. K., R. C. Pradhan, S. N. Naik, and N. Bhatnagar. 2008. “Moisture-dependent Physical Properties of Jatropha Seed (Jatropha Curcas L.” Industrial Crops and Products 27 (1): 123–129. doi:10.1016/J.INDCROP.2007.09.001.
  • Gonfa, Y., K. Jorge, and M. Marchetti. 2019. “Temperature and Pretreatment Effects on the Drying of Different Collections of Jatropha Curcas L. Seeds.” SN Applied Sciences 1(8): 1–11. doi:10.1007/s42452-019-0969-3.
  • Ibeto, C. N., A. U. Ofoefule, and H. C. Ezewgue. 2011. Fuel Quality Assessment of Biodiesel Produced from Groundnut Oil (Arachis hypogea) and its Blend with Petroleum Diesel (pp. 798–803). American Journal of Food Technology. doi:10.3923/ajft.2011.798.803.
  • IEA. 2021. Statistics report Key World Energy Statistics 2021.
  • IPCC. 2018. Emissions from the Transport Sector- : 599–670.
  • Isah, A. G. 2006. “Production of Detergent from Castor Oil.” Leonardo Electronic Journal of Practices and Technologies 9: 153–160.
  • Kafuku, G., and M. Mbarawa. 2010. “Biodiesel Production from Croton Megalocarpus oil and its Process Optimization.” Fuel 89 (9): 2556–2560. doi:10.1016/j.fuel.2010.03.039.
  • Lu, H., Y. Liu, H. Zhou, Y. Yang, M. Chen, and B. Liang. 2009. “Production of Biodiesel from Jatropha Curcas L. Oil.” Computers & Chemical Engineering 33 (5): 1091–1096. doi:10.1016/J.COMPCHEMENG.2008.09.012.
  • Maheshwari, P., M. B. Haider, M. Yusuf, J. J. Klemeš, A. Bokhari, M. Beg, A. Al-Othman, R. Kumar, and A. K. Jaiswal. 2022. A review on Latest Trends in Cleaner Biodiesel Production: Role of Feedstock, Production Methods, and Catalysts. In Journal of Cleaner Production (Vol. 355). Elsevier Ltd. doi:10.1016/j.jclepro.2022.131588.
  • MEMD. 2016. The Biofuels Bill.
  • MEMD. 2018a. The Biofuels Act, 2018.
  • MEMD. 2018b. The Biofuels Act, 2018.
  • MEMD. 2022. Petroleum Imports data- Uganda 2019 to 2022.
  • MEMD & NOVI Energy. 2011. Balancing Biofuels and Food Security. 224.
  • Mohammed, Danjuma H., D. Danjuma Muhammed, and B. Gutti. 2017. “Extraction and Characterization of Castor Seed Oil.” International Journal of Scientific & Engineering Research 8 (4).
  • Moser, B. R. 2009. “Biodiesel Production, Properties, and Feedstocks.” In Vitro Cellular & Developmental Biology - Plant 2009 45:3 45 (3): 229–266. doi:10.1007/S11627-009-9204-Z.
  • Moulana, R., Md Supardan, and W. Aina. 2013. Effect of Moisture Content and amount of Hexane on in-situ Transesterification of Jatropha Seeds for Biodiesel Production 1.
  • Mubiru, D. N., M. Radeny, F. B. Kyazze, A. Zziwa, J. Lwasa, J. Kinyangi, and C. Mungai. 2018. Climate Trends, Risks and Coping Strategies in Smallholder Farming Systems in Uganda. (pp. 22, 4–21). Climate Risk Management. doi:10.1016/J.CRM.2018.08.004.
  • Neupane, D. 2022. “Biofuels from Renewable Sources, a Potential Option for Biodiesel Production.” Bioengineering 10 (1): 29. doi:10.3390/bioengineering10010029.
  • Ntalikwa, J. W. 2021. “Solvent Extraction of Jatropha Oil for Biodiesel Production: Effects of Solvent-to-Solid Ratio, Particle Size, Type of Solvent, Extraction Time, and Temperature on Oil Yield.” Journal of Renewable Energy 2021: 1–8. doi:10.1155/2021/9221168.
  • Ong, H. C., T. M. I. Mahlia, H. H. Masjuki, and R. S. Norhasyima. 2011. “Comparison of Palm oil, Jatropha Curcas and Calophyllum Inophyllum for Biodiesel : A Review.” Renewable and Sustainable Energy Reviews 15 (8): 3501–3515. doi:10.1016/j.rser.2011.05.005.
  • Ong, H. C., A. S. Silitonga, H. H. Masjuki, T. M. I. Mahlia, W. T. Chong, and M. H. Boosroh. 2013. “Production and Comparative Fuel Properties of Biodiesel from non-Edible Oils : Jatropha Curcas, Sterculia Foetida and Ceiba Pentandra.” Energy Conversion and Management 73: 245–255. doi:10.1016/j.enconman.2013.04.011.
  • Owolabi, Rasheed Uthman, M. A. Usman, and E. N. Onoh. 2017. “Ricinoleic Acid Methyl Ester (Rame): Synthesis, Characterization and Determination of Optimum Process Parameters.” Anadolu University Journal of Science and Technology A - Applied Sciences and Engineering 18 (1): 262–262. doi:10.18038/aubtda.300437.
  • Pandey, V. C., K. Singh, J. S. Singh, A. Kumar, B. Singh, and R. P. Singh. 2012. “Jatropha Curcas: A Potential Biofuel Plant for Sustainable Environmental Development.” Renewable and Sustainable Energy Reviews 16 (5): 2870–2883. doi:10.1016/j.rser.2012.02.004.
  • Romano, S. D., and P. A. Sorichetti. 2011. “Dielectric Spectroscopy in Biodiesel Production and Characterization.” Green Energy and Technology 29, doi:10.1007/978-1-84996-519-4.
  • Sabapathy, S. P., A. M. Ammasi, E. Khalife, M. Kaveh, M. Szymanek, G. K. Reghu, and P. Sabapathy. 2021. “Comprehensive Assessment from Optimum Biodiesel Yield to Combustion Characteristics of Light Duty Diesel Engine Fueled with Palm Kernel oil Biodiesel and Fuel Additives.” Materials 14 (15), doi:10.3390/ma14154274.
  • Salaheldeen, M., A. A. Mariod, M. K. Aroua, S. M. A. Rahman, M. E. M. Soudagar, and I. M. R. Fattah. 2021. Current State and Perspectives on Transesterification of Triglycerides for Biodiesel Production. In Catalysts (Vol. 11, Issue 9). MDPI. doi:10.3390/catal11091121.
  • Silitonga, A. S., H. H. Masjuki, T. M. I. Mahlia, H. C. Ong, W. T. Chong, and M. H. Boosroh. 2013. “Overview Properties of Biodiesel Diesel Blends from Edible and non-Edible Feedstock.” Renewable and Sustainable Energy Reviews 22 (October 2017): 346–360. doi:10.1016/j.rser.2013.01.055.
  • Sims, R. E. H., W. Mabee, J. N. Saddler, and M. Taylor. 2010. “An Overview of Second Generation Biofuel Technologies.” Bioresource Technology 101 (6): 1570–1580. doi:10.1016/j.biortech.2009.11.046.
  • Teixeira da Silva de La Salles, K., S. M. P. Meneghetti, W. Ferreira de La Salles, M. R. Meneghetti, I. C. F. dos Santos, J. P. V. da Silva, S. H. V. de Carvalho, and J. I. Soletti. 2010. “Characterization of Syagrus Coronata (Mart.) Becc. oil and Properties of Methyl Esters for use as Biodiesel.” Industrial Crops and Products 32 (3): 518–521. doi:10.1016/J.INDCROP.2010.06.026.
  • Tibesigwa, T., P. W. Olupot, and J. B. Kirabira. 2021. “The Critical Techno-Economic Aspects for Production of B10 Biodiesel from Second Generation Feedstocks: A Review.” International Journal of Sustainable Energy, 1–21. doi:10.1080/14786451.2021.1976181.
  • UNEP. 2012. Biofuels and Biodiversity. 65.
  • Vignesh, P., A. Remigious, P. Kumar, S. Ganesh, V. Jayaseelan, K. Sudhakar, and N. S. Ganesh. 2021. “Biodiesel and Green Diesel Generation: An Overview.” Oil & Gas Science and Technology 76 (6), doi:10.2516/ogst/2020088ï.
  • Wakil, M. A., M. A. Kalam, H. H. Masjuki, A. E. Atabani, and I. M. Rizwanul Fattah. 2015. “Influence of Biodiesel Blending on Physicochemical Properties and Importance of Mathematical Model for Predicting the Properties of Biodiesel Blend.” Energy Conversion and Management 94: 51–67. doi:10.1016/j.enconman.2015.01.043.
  • Williams, A., J. Luecke, R. L. Mccormick, A. Geisselmann, K. Voss, K. Hallstrom, M. Leustek, J. Parsons, and H. Abi-Akar. 2011. Impact of Biodiesel Impurities on the Performance and Durability of DOC, DPF and SCR Technologies Preprint Rasto Brezny Manufacturers of Emission Controls Association.
  • Yang, L., M. Takase, M. Zhang, T. Zhao, and X. Wu. 2014. “Potential non-Edible oil Feedstock for Biodiesel Production in Africa: A Survey.” Renewable and Sustainable Energy Reviews 38: 461–477. doi:10.1016/j.rser.2014.06.002.
  • Zhang, Y., et al. 2003. “Biodiesel Production from Waste Cooking oil : 1.” Process Design and Technological Assessment 89: 1–16. doi:10.1016/S0960-8524(03)00040-3.