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The Effect of Density Difference on the Sedimentation Dynamics of Two Spherical Particles in Side-by-Side and Tandem Configurations

Da Hui; Xiang Ji; Baizhuang Chen; Mingfu Tang; Lixin Xu
Journal of Marine Science and Engineering · Vol. 14, Issue 1 · pp. 47 · 2025

Abstract

Complex fluid–particle interactions are ubiquitous in natural environments and engineering applications, with their underlying mechanisms often attributed to interparticle attraction and repulsion. To understand the interaction mechanism between the dual particles, this study examines the setting process of dual particles using the Immersed Boundary-Lattice Boltzmann Method (IB-LBM), with a focus on the effect of the density difference between particles. Two typical configurations—tandem and side-by-side—are considered in the analysis. In the tandem configuration, when ρLP/ρTP 1, kissing between two particles is mainly determined by the density of LP. Whether kissing occurs between the two particles depends on a critical value ρLP/ρTP=1.2:1.14. Although the LP’s attraction to the TP strengthens with increasing LP density, beyond this certain threshold, this attraction becomes insufficient for the TP to catch up with the LP. In a side-by-side configuration with two particles of different densities, their interaction evolves from initial attraction to subsequent repulsion. This phenomenon is not observed in pairs of particles with identical density. Moreover, with increasing density difference between the particles, the attractive effect from the higher-density particle on the lower-density one strengthens, whereas the repulsive interaction between them gradually weakens. When the particle density ratio reaches 1.4:1.14, the lateral migration of the particles becomes very small; although they still interact with each other, the effect becomes extremely weak. This work systematically elucidates the influence of density disparity on particle interaction, providing insights into understanding more complex multiparticle system dynamics.

Bibliographic Information

JournalJournal of Marine Science and Engineering
PublisherMDPI
Publication Date2025-12-26
Publication Year2025
Volume14
Issue1
Pages47
Document TypeJournal Article
eISSN2077-1312
DOI10.3390/jmse14010047
SubjectMarine science; oceanography; marine engineering; coastal science; marine environment

Access Information

NARA Access CoverageOA / free full text
Journal Homepagehttps://www.mdpi.com/journal/jmse
Publisher PageOpen Publisher Page
This article is openly available from the publisher.