Dynamic-Kinetic Duality of Particulate and Multiphase Systems

Fuente: arXiv
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Main Author: Colosqui, Carlos E.
Format: Preprint
Published: 2025
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author Colosqui, Carlos E.
author_facet Colosqui, Carlos E.
contents The evolution of particulate and multiphase systems can transition from dynamic regimes, governed by classical transport equations with well-defined damping coefficients, to anomalously slow relaxation described by rate equations when the system is critically close to equilibrium. This regime crossover has been both theoretically predicted and experimentally observed in diverse multiphase systems relevant to numerous technological applications, including nanoparticle adhesion at interfaces and liquid imbibition under microscale confinement, and it is attributed to the presence of small nanoscale features of physical or chemical nature at liquid-solid interfaces. This article presents a theoretical framework to more accurately predict and control, advancing or delaying, the dynamic-to-kinetic regime crossover, and highlights strategies for harnessing this phenomenon to enhance or suppress different transport processes in confined multiphase systems.
format Preprint
id arxiv_https___arxiv_org_abs_2508_12088
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dynamic-Kinetic Duality of Particulate and Multiphase Systems
Colosqui, Carlos E.
Soft Condensed Matter
The evolution of particulate and multiphase systems can transition from dynamic regimes, governed by classical transport equations with well-defined damping coefficients, to anomalously slow relaxation described by rate equations when the system is critically close to equilibrium. This regime crossover has been both theoretically predicted and experimentally observed in diverse multiphase systems relevant to numerous technological applications, including nanoparticle adhesion at interfaces and liquid imbibition under microscale confinement, and it is attributed to the presence of small nanoscale features of physical or chemical nature at liquid-solid interfaces. This article presents a theoretical framework to more accurately predict and control, advancing or delaying, the dynamic-to-kinetic regime crossover, and highlights strategies for harnessing this phenomenon to enhance or suppress different transport processes in confined multiphase systems.
title Dynamic-Kinetic Duality of Particulate and Multiphase Systems
topic Soft Condensed Matter
url https://arxiv.org/abs/2508.12088