Hydrodynamic coarsening of bubbles in a dense liquid: A molecular dynamics perspective

We investigate the kinetics of bubble coarsening in a single-component Lennard-Jones fluid using large-scale molecular dynamics simulations. A homogeneous high-temperature system is quenched below the vapor–liquid critical temperature to induce nucleation and growth of vapor bubbles within a dense liquid matrix. The structural evolution is characterized through two-point correlation functions and the static structure factor, both of which exhibit dynamic scaling and sharp interfaces consistent with Porod’s law. The time-dependent characteristic length scale, extracted from the correlation function, displays a robust power-law growth ℓ(t) ∼ tα. Finite size scaling analysis across different system sizes yields α = 1.0, establishing that the coarsening is dominated by viscous hydrodynamic interactions rather than classical diffusion-limited Ostwald ripening predicted by the Lifshitz–Slyozov–Wagner theory. These results provide atomistic evidence for fluid flow-controlled coarsening in vapor–liquid systems and emphasize the need to go beyond diffusion-based theories to describe bubble dynamics in dense fluids.

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Publication Details

Journal
The Journal of Chemical Physics
Published
2026-09-22
DOI
https://doi.org/10.1063/5.0343314
Primary Topic
Solidification and crystal growth phenomena
Type
article
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article

Hydrodynamic coarsening of bubbles in a dense liquid: A molecular dynamics perspective

Bhaskar Sen Gupta, Parameshwaran A
The Journal of Chemical Physics
Solidification and crystal growth phenomena
article

Hydrodynamic coarsening of bubbles in a dense liquid: A molecular dynamics perspective

Bhaskar Sen Gupta, Parameshwaran A
article en

Abstract

We investigate the kinetics of bubble coarsening in a single-component Lennard-Jones fluid using large-scale molecular dynamics simulations. A homogeneous high-temperature system is quenched below the vapor–liquid critical temperature to induce nucleation and growth of vapor bubbles within a dense liquid matrix. The structural evolution is characterized through two-point correlation functions and the static structure factor, both of which exhibit dynamic scaling and sharp interfaces consistent with Porod’s law. The time-dependent characteristic length scale, extracted from the correlation function, displays a robust power-law growth ℓ(t) ∼ tα. Finite size scaling analysis across different system sizes yields α = 1.0, establishing that the coarsening is dominated by viscous hydrodynamic interactions rather than classical diffusion-limited Ostwald ripening predicted by the Lifshitz–Slyozov–Wagner theory. These results provide atomistic evidence for fluid flow-controlled coarsening in vapor–liquid systems and emphasize the need to go beyond diffusion-based theories to describe bubble dynamics in dense fluids.

The Journal of Chemical PhysicsVol. 165(12)
Indian Institute of Science Education and Research Berhampur (IN), Vellore Institute of Technology University (IN)
Openalex Percentile: Top 24%
Solidification and crystal growth phenomena
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