2019/09/11 by AJ Sojahrood, Hossein Haghi, Sojahrood, AJ +5
Engineering · Materials Science · #Applied Physics (physics.app-ph) #FOS: Physical sciences #Photoacoustic and Ultrasonic Imaging #Ultrasound and Cavitation Phenomena #Ultrasound and Hyperthermia Applications
paper · pdf · doi:10.48550/arxiv.1909.04864
openalex publication_date 2019/09/11 · openalex created_date 2019/09/19 · openalex updated_date 2026/07/28
Nonlinear oscillations of bubbles can significantly increase the attenuation of the host media. Optimization of bubble related applications needs a realistic estimation of the medium attenuation and bubble activity. A correct estimation of the wave attenuation in bubbly media requires an accurate estimation of the power dissipated by nonlinear oscillations of bubbles. Pioneering work of Louisnard \cite1 meticulously derived the nonlinear energy terms for viscous and thermal damping; however, radiation damping arising from the compressibility of the liquid was neglected. Jamshidi & Brenner \cite2 have considered the effects of the compressibility of the liquid and showed that damping due to radiation becomes the most significant factor at pressures above the blake threshold. Despite the improvement in their formulation; however, the radiation damping term estimates non-physical values for some frequency and pressure regions including near resonance oscillations. Thus, the new terms arising from the compressibility of the liquid needs critical assessment. In this work, we provide critical corrections to the present formulations. Importance of the new corrections are highlighted by the scattering to damping ratio (STDR). We then introduce a unifying parameter to assess the efficacy of applications; this parameter is defined as the multiplication of maximum scattered pressure by STDR.