Design, Fabrication, and Assessment of a Hydrodynamic Reactor for Biodiesel Production
Subject Areas :Kimia Taki 1 , Bahram Hosseinzadeh Samani 2
1 - Department of Mechanical Engineering of Biosystem, Shahrekord University, Shahrekord, Iran
2 - Department of Mechanical Engineering of Biosystem, Shahrekord University, Shahrekord, Iran
Keywords:
Abstract :
[1] Manojkumar, N., Muthukumaran, C. and Sharmila, G. 2022. A comprehensive review on the application of response surface methodology for optimization of biodiesel production using different oil sources. Journal of King Saud University-Engineering Sciences. 34(3):198-208.
[2] Samani, B.H., Zareiforoush, H., Lorigooini, Z., Ghobadian, B., Rostami, S. and Fayyazi, E. 2016. Ultrasonic-assisted production of biodiesel from pistacia atlantica desf. Oil. Fuel. 168: 22-26.
[3] Oo, Y.M., Prateepchaikul, G. and Somnuk, K. 2021. Continuous acid-catalyzed esterification using a 3d printed rotor–stator hydrodynamic cavitation reactor reduces free fatty acid content in mixed crude palm oil. Ultrasonics Sonochemistry. 72: 105419.
[4] Nylund, N.-O., Aakko-Saksa, P. and Sipilä, K. 2008. Status and outlook for biofuels, other alternative fuels and new vehicles. Research Notes 2426, ESPOO 2008.
[5] Ghayal, D., Pandit, A.B. and Rathod, V.K. 2013. Optimization of biodiesel production in a hydrodynamic cavitation reactor using used frying oil. Ultrasonics sonochemistry. 20(1): 322-328.
[6] Maddikeri, G.L., Gogate, P.R. and Pandit, A.B. 2014. Intensified synthesis of biodiesel using hydrodynamic cavitation reactors based on the interesterification of waste cooking oil. Fuel. 137: 285-292.
[7] Liu, S.-H., Lin, Y.-C. and Hsu, K.-H. 2012. Emissions of regulated pollutants and pahs from waste-cooking-oil biodiesel-fuelled heavy-duty diesel engine with catalyzer. Aerosol and Air Quality Research. 12(2): 218-227.
[8] Math, M., Kumar, S.P. and Chetty, S.V. 2010. Technologies for biodiesel production from used cooking oil—a review. Energy for sustainable Development. 14(4): 339-345.
[9] Ogunkunle, O. and Ahmed, N. 2019. A review of global current scenario of biodiesel adoption and combustion in vehicular diesel engines. Energy rep 5: 1560–1579.
[10] Demirbas, A. 2009. Progress and recent trends in biodiesel fuels. Energy conversion and management. 50(1): 14-34.
[11] Singh, S. and Singh, D. 2010. Biodiesel production through the use of different sources and characterization of oils and their esters as the substitute of diesel: A review. Renewable and sustainable energy reviews. 14(1): 200-216.
[12] Fayyazi, E., Ghobadian, B., Najafi, G. and Hosseinzadeh, B. 2014. Genetic algorithm approach to optimize biodiesel production by ultrasonic system. Chemical Product and Process Modeling. 9(1): 59-70.
[13] Vicevic, M., Jachuck, R. and Scott, K. 2001. Process intensification for green chemistry: Rearrangement of α-pinene oxide using a catalyzed spinning disc reactor. Proc. Proceedings of the 4th International Conference on Process Intensification for the Chemical Industry.
[14] Cravotto, G. and Cintas, P. 2006. Power ultrasound in organic synthesis: Moving cavitational chemistry from academia to innovative and large-scale applications. Chemical Society Reviews. 35(2): 180-196.
[15] Chitsaz, H., Omidkhah, M., Ghobadian, B. and Ardjmand, M. 2018. Optimization of hydrodynamic cavitation process of biodiesel production by response surface methodology. Journal of Environmental Chemical Engineering. 6(2): 2262-2268.
[16] Maddikeri, G.L., Pandit, A.B. and Gogate, P.R. 2012. Intensification approaches for biodiesel synthesis from waste cooking oil: A review. Industrial & Engineering Chemistry Research. 51(45): 14610-14628.
[17] Worapun, I., Pianthong, K. and Thaiyasuit, P. 2012. Optimization of biodiesel production from crude palm oil using ultrasonic irradiation assistance and response surface methodology. Journal of Chemical Technology & Biotechnology. 87(2): 189-197.
[18] Jian-Xun, W., Huang, Q.-D., Huang, F.-H. and Huang, Q.-j. 2007. Lipase-catalyzed production of biodiesel from high acid value waste oil using ultrasonic assistant. Chinese Journal of Biotechnology. 23(6): 1121-1128.
[19] Chuah, L.F., Aziz, A.R.A., Yusup, S., Bokhari, A., Klemeš, J.J. and Abdullah, M.Z. 2015. Performance and emission of diesel engine fuelled by waste cooking oil methyl ester derived from palm olein using hydrodynamic cavitation. Clean Technologies and Environmental Policy. 17(8): 2229-2241.
[20] Gole, V.L. and Gogate, P.R. 2012. A review on intensification of synthesis of biodiesel from sustainable feed stock using sonochemical reactors. Chemical Engineering and Processing: Process Intensification. 53: 1-9.
[21] Issariyakul, T. and Dalai, A.K. 2014. Biodiesel from vegetable oils. Renewable and Sustainable Energy Reviews. 31: 446-471.
[22] Capocelli, M., Musmarra, D., Prisciandaro, M. and Lancia, A. 2014. Chemical effect of hydrodynamic cavitation: Simulation and experimental comparison. AIChE Journal. 60(7): 2566-2572.
[23] Samani, B.H., Behruzian, M., Najafi, G., Fayyazi, E., Ghobadian, B., Behruzian, A., Mofijur, M., Mazlan, M. and Yue, J. 2021. The rotor-stator type hydrodynamic cavitation reactor approach for enhanced biodiesel fuel production. Fuel. 283: 118821.
[24] Kolhe, N.S., Gupta, A.R. and Rathod, V.K. 2017. Production and purification of biodiesel produced from used frying oil using hydrodynamic cavitation. Resource-Efficient Technologies. 3(2): 198-203.