Collecting Particles in Confined Spaces by Active Filamentous Matter

Fuente: arXiv
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Main Authors: Sinaasappel, R., Prathyusha, K. R., Tuazon, H., Mirzahossein, E., Illien, P., Bhamla, S., Deblais, A.
Format: Preprint
Published: 2025
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author Sinaasappel, R.
Prathyusha, K. R.
Tuazon, H.
Mirzahossein, E.
Illien, P.
Bhamla, S.
Deblais, A.
author_facet Sinaasappel, R.
Prathyusha, K. R.
Tuazon, H.
Mirzahossein, E.
Illien, P.
Bhamla, S.
Deblais, A.
contents Biological and robotic systems often operate in confined environments where material must be gathered without centralized control. Inspired by the effective collection strategies of aquatic worms (Lumbriculus variegatus and Tubifex tubifex), we investigate how active filaments autonomously aggregate dispersed particles. We study this process across four platforms: living worms, a robotic chain, Brownian dynamics simulations of active polymers, and a coarse-grained toy model. We show that aggregation emerges from repeated contact and body deformation, and demonstrate that clustering dynamics are governed by filament length and bending stiffness. Across systems, particle gathering follows a shared aggregation-fragmentation process, with the steady-state average cluster size scaling as $\langle s\rangle_L\sim W/D^2$, where W is the effective width of the path cleared by the filament and D the domain size. We find that filament flexibility modulates W, enabling more flexible filaments to sweep larger areas and collect more particles. These results establish a unifying framework for understanding how shape and flexibility influence transport and organization in active filament systems and filamentous robots.
format Preprint
id arxiv_https___arxiv_org_abs_2503_15755
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Collecting Particles in Confined Spaces by Active Filamentous Matter
Sinaasappel, R.
Prathyusha, K. R.
Tuazon, H.
Mirzahossein, E.
Illien, P.
Bhamla, S.
Deblais, A.
Soft Condensed Matter
Biological and robotic systems often operate in confined environments where material must be gathered without centralized control. Inspired by the effective collection strategies of aquatic worms (Lumbriculus variegatus and Tubifex tubifex), we investigate how active filaments autonomously aggregate dispersed particles. We study this process across four platforms: living worms, a robotic chain, Brownian dynamics simulations of active polymers, and a coarse-grained toy model. We show that aggregation emerges from repeated contact and body deformation, and demonstrate that clustering dynamics are governed by filament length and bending stiffness. Across systems, particle gathering follows a shared aggregation-fragmentation process, with the steady-state average cluster size scaling as $\langle s\rangle_L\sim W/D^2$, where W is the effective width of the path cleared by the filament and D the domain size. We find that filament flexibility modulates W, enabling more flexible filaments to sweep larger areas and collect more particles. These results establish a unifying framework for understanding how shape and flexibility influence transport and organization in active filament systems and filamentous robots.
title Collecting Particles in Confined Spaces by Active Filamentous Matter
topic Soft Condensed Matter
url https://arxiv.org/abs/2503.15755