TL;DR
This paper introduces a novel fluctuating boundary integral method for simulating Brownian suspensions of complex-shaped particles in Stokes flow, ensuring accuracy, efficiency, and thermodynamic consistency.
Contribution
The paper develops a new boundary integral approach for Brownian dynamics that scales linearly, handles complex shapes, and is extendable to three dimensions, with proven fluctuation-dissipation balance.
Findings
Method obeys discrete fluctuation-dissipation balance
Achieves linear scaling with particle number
Handles complex particle geometries efficiently
Abstract
We present a fluctuating boundary integral method (FBIM) for overdamped Brownian Dynamics (BD) of two-dimensional periodic suspensions of rigid particles of complex shape immersed in a Stokes fluid. We develop a novel approach for generating Brownian displacements that arise in response to the thermal fluctuations in the fluid. Our approach relies on a first-kind boundary integral formulation of a mobility problem in which a random surface velocity is prescribed on the particle surface, with zero mean and covariance proportional to the Green's function for Stokes flow (Stokeslet). This approach yields an algorithm that scales linearly in the number of particles for both deterministic and stochastic dynamics, handles particles of complex shape, achieves high order of accuracy, and can be generalized to three dimensions and other boundary conditions. We show that Brownian displacements…
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