AI Article Synopsis

  • The paper investigates how varying ultrasound power affects liquid behavior in a 24 kHz sono-reactor.
  • It uses three types of analyses: mechanical modeling of micro-bubbles, numerical simulations of fluid dynamics and turbulence, and practical measurements with Particle Image Velocimetry.
  • Key findings indicate that higher ultrasound power increases micro-bubble volume and acoustic streaming velocity, demonstrating significant impacts on bubble dynamics and fluid behavior.

Article Abstract

This paper aims at investigating the influence of ultrasound power amplitude on liquid behaviour in a low-frequency (24 kHz) sono-reactor. Three types of analysis were employed: (i) mechanical analysis of micro-bubbles formation and their activities/characteristics using mathematical modelling. (ii) Numerical analysis of acoustic streaming, fluid flow pattern, volume fraction of micro-bubbles and turbulence using 3D CFD simulation. (iii) Practical analysis of fluid flow pattern and acoustic streaming under ultrasound irradiation using Particle Image Velocimetry (PIV). In mathematical modelling, a lone micro bubble generated under power ultrasound irradiation was mechanistically analysed. Its characteristics were illustrated as a function of bubble radius, internal temperature and pressure (hot spot conditions) and oscillation (pulsation) velocity. The results showed that ultrasound power significantly affected the conditions of hotspots and bubbles oscillation velocity. From the CFD results, it was observed that the total volume of the micro-bubbles increased by about 4.95% with each 100 W-increase in power amplitude. Furthermore, velocity of acoustic streaming increased from 29 to 119 cm/s as power increased, which was in good agreement with the PIV analysis.

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Source
http://dx.doi.org/10.1016/j.ultsonch.2014.11.013DOI Listing

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