Theoretical estimation of the temperature and pressure within collapsing acoustical bubbles

•The aim of this work is to correlate the production of OH radicals to the temperature and pressure achieved in the bubble during the strong collapse.•The employed model combines the dynamic of bubble collapse in acoustical field with the chemical kinetics of single bubble.•The computer simulations...

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Veröffentlicht in:Ultrasonics sonochemistry 2014-01, Vol.21 (1), p.53-59
Hauptverfasser: Merouani, Slimane, Hamdaoui, Oualid, Rezgui, Yacine, Guemini, Miloud
Format: Artikel
Sprache:eng
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Zusammenfassung:•The aim of this work is to correlate the production of OH radicals to the temperature and pressure achieved in the bubble during the strong collapse.•The employed model combines the dynamic of bubble collapse in acoustical field with the chemical kinetics of single bubble.•The computer simulations showed the existence of an optimum bubble temperature of about 5200±200K and pressure of about 250±20MPa.•The results of the numerical simulations revealed that the main oxidant created in an O2 bubble is OH radical. Formation of highly reactive species such as OH, H, HO2 and H2O2 due to transient collapse of cavitation bubbles is the primary mechanism of sonochemical reaction. The crucial parameters influencing the formation of radicals are the temperature and pressure achieved in the bubble during the strong collapse. Experimental determinations estimated a temperature of about 5000K and pressure of several hundreds of MPa within the collapsing bubble. In this theoretical investigation, computer simulations of chemical reactions occurring in an O2-bubble oscillating in water irradiated by an ultrasonic wave have been performed for diverse combinations of various parameters such as ultrasound frequency (20–1000kHz), acoustic amplitude (up to 0.3MPa), static pressure (0.03–0.3MPa) and liquid temperature (283–333K). The aim of this series of computations is to correlate the production of OH radicals to the temperature and pressure achieved in the bubble during the strong collapse. The employed model combines the dynamic of bubble collapse in acoustical field with the chemical kinetics of single bubble. The results of the numerical simulations revealed that the main oxidant created in an O2 bubble is OH radical. The computer simulations clearly showed the existence of an optimum bubble temperature of about 5200±200K and pressure of about 250±20MPa. The predicted value of the bubble temperature for the production of OH radicals is in excellent agreement with that furnished by the experiments. The existence of an optimum bubble temperature and pressure in collapsing bubbles results from the competitions between the reactions of production and those of consumption of OH radicals at high temperatures.
ISSN:1350-4177
1873-2828
DOI:10.1016/j.ultsonch.2013.05.008