Inferring Surface Slip in Active Colloids from Flow Fields Using Physics-Informed Neural Networks

Fuente: arXiv
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Hauptverfasser: Bayati, Parvin, Mallory, Stewart A.
Format: Preprint
Veröffentlicht: 2025
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author Bayati, Parvin
Mallory, Stewart A.
author_facet Bayati, Parvin
Mallory, Stewart A.
contents The directed motion of active colloids is governed by spatial variations in surface chemistry and interfacial stress, yet these properties remain extremely difficult to measure directly. We introduce a physics-informed neural network framework that infers the slip distribution driving propulsion from partial observations of the surrounding flow. By combining sparse fluid velocity measurements with the Stokes equations and boundary constraints, the method reconstructs both the near-surface slip and the full velocity and pressure fields. Validation against analytical solutions and Boundary Element Method calculations for canonical active colloid models shows quantitative agreement in both unbounded and confined geometries. Crucially, the framework recovers the surface slip even when no flow data are available near the particle, demonstrating that accessible bulk measurements encode the interfacial stresses responsible for active motion. These results establish physics-informed inference as a powerful tool for characterizing and ultimately controlling interfacially driven transport in colloidal active matter.
format Preprint
id arxiv_https___arxiv_org_abs_2511_22723
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Inferring Surface Slip in Active Colloids from Flow Fields Using Physics-Informed Neural Networks
Bayati, Parvin
Mallory, Stewart A.
Soft Condensed Matter
Statistical Mechanics
Fluid Dynamics
The directed motion of active colloids is governed by spatial variations in surface chemistry and interfacial stress, yet these properties remain extremely difficult to measure directly. We introduce a physics-informed neural network framework that infers the slip distribution driving propulsion from partial observations of the surrounding flow. By combining sparse fluid velocity measurements with the Stokes equations and boundary constraints, the method reconstructs both the near-surface slip and the full velocity and pressure fields. Validation against analytical solutions and Boundary Element Method calculations for canonical active colloid models shows quantitative agreement in both unbounded and confined geometries. Crucially, the framework recovers the surface slip even when no flow data are available near the particle, demonstrating that accessible bulk measurements encode the interfacial stresses responsible for active motion. These results establish physics-informed inference as a powerful tool for characterizing and ultimately controlling interfacially driven transport in colloidal active matter.
title Inferring Surface Slip in Active Colloids from Flow Fields Using Physics-Informed Neural Networks
topic Soft Condensed Matter
Statistical Mechanics
Fluid Dynamics
url https://arxiv.org/abs/2511.22723