Intermittency of Bubble Deformation in Turbulence.

Phys Rev Lett

Department of Mechanical Engineering, Johns Hopkins University, 3400 North Charles Street, Baltimore, Maryland 21218, USA.

Published: November 2024

AI Article Synopsis

  • - The study explores how finite-sized bubbles deform in intense turbulence, revealing complex shapes as they interact with surrounding eddies, focusing on the velocity of the most stretched tip of the bubble.
  • - Findings indicate that the power spectrum related to tip velocity mirrors Lagrangian fluid statistics but varies significantly based on bubble size, suggesting that energy from eddies of similar size primarily influences the bubble's deformation.
  • - The research highlights that the tip velocity is more variable than the average velocity increment and establishes a model explaining how small, energetic eddies contribute to extreme bubble deformation, enhancing understanding of energy transfer in turbulent flows.

Article Abstract

The deformation of finite-sized bubbles in intense turbulence exhibits complex geometries beyond simple spheroids as the bubbles exchange energy with the surrounding eddies across a wide range of scales. This study investigates deformation via the velocity of the most stretched tip of the deformed bubble in three dimensions, as the tip extension results from the compression of the rest of the interface by surrounding eddies. The results show that the power spectrum based on the tip velocity exhibits a scaling akin to that of the Lagrangian statistics of fluid elements, but decays with a distinct timescale and magnitude modulated by the Weber number based on the bubble size. This indicates that the interfacial energy is primarily siphoned from eddies of similar sizes as the bubble. Moreover, the tip velocity appears much more intermittent than the velocity increment, and its distribution near the extreme tails can be explained by the proposed model that accounts for the fact that small eddies with sufficient energy can contribute to extreme deformation. These findings provide a framework for understanding the energy transfer between deformable objects and multiscale eddies in intense turbulence.

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Source
http://dx.doi.org/10.1103/PhysRevLett.133.214001DOI Listing

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