Eulerian-Lagrangian method for simulation of cloud cavitation
Kazuki Maeda, Tim Colonius

TL;DR
This paper introduces a coupled Eulerian-Lagrangian simulation method for cloud cavitation in compressible liquids, capturing bubble dynamics and acoustics with high accuracy and computational efficiency.
Contribution
The paper develops a novel coupled Eulerian-Lagrangian approach with a regularization kernel and sub-grid pressure modeling for simulating cloud cavitation.
Findings
Accurately simulates bubble oscillations and acoustics.
Validates method with ultrasound-induced cavitation cases.
Reduces computational cost using symmetry-based averaging.
Abstract
We present a coupled Eulerian-Lagrangian method to simulate cloud cavitation in a compressible liquid. The method is designed to capture the strong, volumetric oscillations of each bubble and the bubble-scattered acoustics. The dynamics of the bubbly mixture is formulated using volume-averaged equations of motion. The continuous phase is discretized on an Eulerian grid and integrated using a high-order, finite-volume weighted essentially non-oscillatory (WENO) scheme, while the gas phase is modeled as spherical, Lagrangian point-bubbles at the sub-grid scale, each of whose radial evolution is tracked by solving the Keller-Miksis equation. The volume of bubbles is mapped onto the Eulerian grid as the void fraction by using a regularization (smearing) kernel. In the most general case, where the bubble distribution is arbitrary, three-dimensional Cartesian grids are used for spatial…
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