An effective correction method for droplet volume conservation in direct numerical simulation of droplet-laden turbulence

Fuente: arXiv
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Main Authors: Peng, Cheng, Li, Xuming, Zhang, Chunhua, Wang, Lian-Ping, Wu, Xinnan
Format: Preprint
Published: 2026
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_version_ 1866912871664844800
author Peng, Cheng
Li, Xuming
Zhang, Chunhua
Wang, Lian-Ping
Wu, Xinnan
Peng, Cheng
Li, Xuming
Zhang, Chunhua
Wang, Lian-Ping
Wu, Xinnan
author_facet Peng, Cheng
Li, Xuming
Zhang, Chunhua
Wang, Lian-Ping
Wu, Xinnan
Peng, Cheng
Li, Xuming
Zhang, Chunhua
Wang, Lian-Ping
Wu, Xinnan
contents Accurately preserving the volume of the dispersed droplets remains a significant challenge in phase-field simulations of droplet-laden turbulence, especially under conditions that feature strong interfacial deformation and breakup. While modified phase-field equations have been developed to mitigate volume loss, their effectiveness has not been systematically assessed in the context of fully developed turbulent flows. In this work, we first evaluate the performance of several representative volume-corrected phase-field models in direct numerical simulations of droplet-laden homogeneous isotropic turbulence. Our results reveal that, at sufficiently high Weber numbers, none of the existing models provides satisfactory droplet-volume preservation. To address this limitation, we then propose a simple yet effective modification of the conservataive Allen-Cahn equation by incorporating a curvature-dependent counter-diffusion correction. Direct numerical simulations in turbulent regimes demonstrate that the proposed model achieves conservation of droplet volume in a statistical sense, while avoiding common adverse effects, such as numerical instability, violation of global mass conservation, increased computational cost, artificial coarsening, or enhanced spurious velocities.
format Preprint
id arxiv_https___arxiv_org_abs_2602_03065
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle An effective correction method for droplet volume conservation in direct numerical simulation of droplet-laden turbulence
Peng, Cheng
Li, Xuming
Zhang, Chunhua
Wang, Lian-Ping
Wu, Xinnan
Peng, Cheng
Li, Xuming
Zhang, Chunhua
Wang, Lian-Ping
Wu, Xinnan
Fluid Dynamics
76T06, 76T10
Accurately preserving the volume of the dispersed droplets remains a significant challenge in phase-field simulations of droplet-laden turbulence, especially under conditions that feature strong interfacial deformation and breakup. While modified phase-field equations have been developed to mitigate volume loss, their effectiveness has not been systematically assessed in the context of fully developed turbulent flows. In this work, we first evaluate the performance of several representative volume-corrected phase-field models in direct numerical simulations of droplet-laden homogeneous isotropic turbulence. Our results reveal that, at sufficiently high Weber numbers, none of the existing models provides satisfactory droplet-volume preservation. To address this limitation, we then propose a simple yet effective modification of the conservataive Allen-Cahn equation by incorporating a curvature-dependent counter-diffusion correction. Direct numerical simulations in turbulent regimes demonstrate that the proposed model achieves conservation of droplet volume in a statistical sense, while avoiding common adverse effects, such as numerical instability, violation of global mass conservation, increased computational cost, artificial coarsening, or enhanced spurious velocities.
title An effective correction method for droplet volume conservation in direct numerical simulation of droplet-laden turbulence
topic Fluid Dynamics
76T06, 76T10
url https://arxiv.org/abs/2602.03065