7. Damanik, N., Ong, H.C., Tong, C.W., Mahlia, T.M.I., Silitonga, A.S., A review on the engine performance and exhaust emission characteristics of diesel engines fueled with biodiesel blends. Environ. Sci. Pollut. Res. , 25(16), 15307–15325, 2018.
8. Knothe, G., and Razon, L.F., Biodiesel fuel. Prog. Energy Combust. Sci. , 58, 36–59, 2017.
9. Malani, R.S., Sardar, H., Malviya, Y., Goyal, A., Moholkar, V.S., Ultrasound-Intensified Biodiesel Production from Mixed Nonedible Oil Feedstock Using Heterogeneous Acid Catalyst Supported on Rubber De-oiled Cake. Ind. Eng. Chem. Res. , 57(44), 14926–14938, 2018.
10. Malani, R.S., Choudhury, H.A., Moholkar, V.S., Waste biorefinery based on waste carbon sources: case study of biodiesel production using carbon based catalysts and mixed feedstocks of nonedible and waste oils, in Waste Biorefinery Volume-II (eds. Bhaskar, T., Pandey, A., Rene, E.R., and Tsang, D.C.W.), Elsevier B.V., pp. 337–378, 2020.
11. Badday, A.S., Abdullah, A.Z., Lee, K.T., Khayoon, M.S., Intensification of biodiesel production via ultrasonic-assisted process: A critical review on fundamentals and recent development. Renew. Sustain. Energy Rev. , 16(7), 4574–4587, 2012.
12. Wang, T., Global biodiesel production by country 2018. https://www.statista.com/statistics/271472/biodiesel-production-in-selected-countries/ , 2019.
13. IEA, Biofuel Production Growth by Country. IEA Paris , https://www.iea.org/data-and-statistics/charts/bio, 2019.
14. Renewable energy policy Network 21st Century steering committee. Renewables 2014: global status report. REN 21 , https://www.ren21.net/wp-content/uploads/2019/05/, 2014.
15. Abbaszaadeh, A., Ghobadian, B., Omidkhah, M.R., Najafi, G., Current biodiesel production technologies: A comparative review. Energy Convers. Manag. , 63, 138–148, 2012.
16. Aransiola, E.F., Ojumu, T. V., Oyekola, O.O., Madzimbamuto, T.F., Ikhu–Omoregbe, D.I.O., A review of current technology for biodiesel production: State of the art. Biomass and Bioenergy , 61, 276–297, 2014.
17. Tabatabaei, M., Aghbashlo, M., Dehhaghi, M., Panahi, H.K.S., Mollahosseini, A., Hosseini, M., Soufiyan, M.M., Reactor technologies for biodiesel production and processing: a review. Prog. Energy Combust. Sci. , 74, 239–303, 2019.
18. Choudhury, H.A., Malani, R.S., Moholkar, V.S., Acid catalyzed biodiesel synthesis from Jatropha oil: Mechanistic aspects of ultrasonic intensification. Chem. Eng. J. , 231, 262–272, 2013.
19. Choudhury, H.A., Srivastava, P., Moholkar, V.S.,Single-step ultrasonic synthesis of biodiesel from crude Jatropha curcas oil. AIChE J. , 60(5), 1572–1581, 2014.
20. Choudhury, H.A., Goswami, P.P., Malani, R.S., Moholkar, V.S., Ultrasonic biodiesel synthesis from crude Jatropha curcas oil with heterogeneous base catalyst: Mechanistic insight and statistical optimization. Ultrason. Sonochem. , 21(3), 1050–1064, 2014.
21. Malani, R.S., Patil, S., Roy, K., Chakma, S., Goyal, A., Moholkar, V.S., Mechanistic analysis of ultrasound-assisted biodiesel synthesis with Cu 2O catalyst and mixed oil feedstock using continuous (packed bed) and batch (slurry) reactors. Chem. Eng. Sci. , 170, 743–755, 2017.
22. Malani, R.S., Shinde, V., Ayachit, S., Goyal, A., Moholkar, V.S., Ultrasound-assisted biodiesel production using heterogeneous base catalyst and mixed non-edible oils. Ultrason. Sonochem. , 52, 232–243, 2019.
23. Maddikeri, G.L., Pandit, A.B., Gogate, P.R., Intensification approaches for biodiesel synthesis from waste cooking oil: A review. Ind. Eng. Chem. Res. , 51(45), 14610–14628, 2012.
24. Ranjan, A., Singh, S., Malani, R.S., Moholkar, V.S., Ultrasound-assisted bioalcohol synthesis: Review and analysis. RSC Adv. , 6(70), 65541–65562, 2016.
25. Malani, R.S., Goyal, A., Moholkar, V.S., Ultrasound-Assisted Biodiesel Synthesis: A Mechanistic Insight, in Biofuels (eds. Agrawal, A.K., Agarwal, R.A., Gupta, T., Gurjar, B.R., Springer, Singapore, pp. 103–135, 2017.
26. Ghayal, D., Pandit, A.B., Rathod, V.K., Optimization of biodiesel production in a hydrodynamic cavitation reactor using used frying oil. Ultrason. Sonochem. , 20(1), 322–328, 2013.
27. Moholkar, V.S., Sable, S.P., Pandit, A.B., Mapping the cavitation intensity in an ultrasonic bath using the acoustic emission. AIChE J. , 46(4), 684–694, 2000.
28. Moholkar, V.S., and Pandit, A.B., Modeling of hydrodynamic cavitation reactors: A unified approach. Chem. Eng. Sci. , 56(21–22), 6295–6302, 2001.
29. Shah, Y.T., Pandit, A.B., Moholkar, V.S., Cavitation Reaction Engineering , Plenum Press, New York, 1999.
30. Suslick, K.S. Sonochemistry. Science (80-. ) , 247(4949), 1439–1445, 1990.
31. Leighton, T.G. The acoustic bubble , Academic Press, San Diego, 1994.
32. Mason, T.J., and Lorimer, J.P. Applied sonochemistry: The uses of power ultrasound in chemistry and processing , Wiley–VCH, Coventry, 2002.
33. Lam, M.K., Lee, K.T., Mohamed, A.R., Homogeneous, heterogeneous and enzymatic catalysis for transesterification of high free fatty acid oil (waste cooking oil) to biodiesel: a review. Biotechnol. Adv. , 28(4), 500–518, 2010.
34. Ramachandran, K., Suganya, T., Gandhi, N.N., Renganathan, S., Recent developments for biodiesel production by ultrasonic assist transesterification using different heterogeneous catalyst: a review. Renew. Sustain. Energy Rev. , 22, 410–418, 2013.
35. Lerin, L.A., Loss, R.A., Remonatto, D., Zenevicz, M.C., Balen, M., Netto, V.O., Ninow, J.L., Trentin, C.M., Oliveira, J. V., de Oliveira, D., A review on lipase–catalyzed reactions in ultrasound-assisted systems. Bioprocess Biosyst. Eng. , 37(12), 2381–2394, 2014.
36. Islam, A., Taufiq-Yap, Y.H., Chan, E.S., Moniruzzaman, M., Islam, S., Nabi, M.N., Advances in solid-catalytic and non-catalytic technologies for biodiesel production. Energy Convers. Manag. , 88, 1200–1218, 2014.
37. Lourinho, G., and Brito, P. Advanced biodiesel production technologies: novel developments. Rev. Environ. Sci. Bio/Technology , 14(2), 287–316, 2015.
38. Ho, W.W.S., Ng, H.K., Gan, S., Advances in ultrasound-assisted transesterification for biodiesel production. Appl. Therm. Eng. , 100, 553–563, 2016.
39. Gude, V.G., and Martinez-Guerra, E., Green chemistry with process intensification for sustainable biodiesel production. Environ. Chem. Lett. , 16(2), 327–341, 2018.
40. Moghzi, F., and Soleimannejad, J. Sonochemical synthesis of a new nano–sized barium coordination polymer and its application as a heterogeneous catalyst towards sono-synthesis of biodiesel. Ultrason. Sonochem. , 42, 193–200, 2018.
41. Varghese, R., Henry, J.P., Irudayaraj, J., Ultrasonication-assisted transesterification for biodiesel production by using heterogeneous ZnO nanocatalyst. Environ. Prog. Sustain. Energy , 37(3), 1176–1182, 2018.
42. Korkut, I., and Bayramoglu, M., Selection of catalyst and reaction conditions for ultrasound assisted biodiesel production from canola oil. Renew. Energy , 116, 543–551, 2018.
43. Yadav, A..K., Khan, M.E., Pal, A., Singh, B., Ultrasonic-assisted optimization of biodiesel production from Karabi oil using heterogeneous catalyst. Biofuels , 9(1), 101–112, 2018.
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