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Marmottant P, Hilgenfeldt S (2003) Controlled vesicle deformation and lysis by single oscillating bubbles. Shah YT, Pandit AB, Moholkar VS (1999) Cavitation reaction engineering. Thompson LH, Doraiswamy LK (1999) Sonochemistry: science and engineering. Giacomello A, Chinappi M, Meloni S, Casciola CM (2013) Geometry as a catalyst: how vapor cavities nucleate from defects. Zhang L, Belova V, Wang HQ, Dong WF, Möhwald H (2014) Controlled cavitation at nano/ microparticle surfaces. Parkar PA, Choudhary HA, Moholkar VS (2012) Mechanistic and kinetic investigations in ultrasound assisted acid catalyzed biodiesel synthesis.

The collapse of transient bubbles produces local hot spots with temperature and pressure that is much higher than that of the surrounding liquid. The huge temperature and pressure drop generates strong shockwaves towards bubble outsides [45]. 8 Schematic representations of secondary effects: a microjet, b radical formation and c shockwave and microturbulence in ultrasonic cavitation violent microturbulence in local liquid. Microjet refers to the unsymmetrical collapse of bubbles at a broad solid/solvent interface (>200 μm) that produces high speed impact (>100 m/s) oriented towards the solid surface [2].

Rezania S, Ye ZL, Berson RE (2009) Enzymatic saccharification and viscosity of sawdust slurries following ultrasonic particle size reduction. Kuijpers MWA, van Eck D, Kemmere MF, Keurentjes JTF (2002) Cavitation-induced reactions in high-pressure carbon dioxide. S. Moholkar, Hanif A. Choudhury, Shuchi Singh, Swati Khanna, Amrita Ranjan, Sankar Chakma and Jaykumar Bhasarkar Abstract Physical and chemical mechanisms ultrasound-assisted processes as related to the synthesis of biofuels are reviewed.

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