Dissipative response of driven bead-spring-dashpot chains

Fuente: arXiv
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Main Author: Kailasham, R.
Format: Preprint
Published: 2025
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author Kailasham, R.
author_facet Kailasham, R.
contents The work dissipated in pulling a polymer chain with internal friction is numerically calculated by considering a sequence of $N$ bead-spring-dashpots tethered at one end and being pulled at the other using a harmonic trap via linear and symmetric protocols. The variation of the dissipation with the chain length, pulling trap stiffness, and the internal friction parameter are examined in detail for both the protocols. In the limit of high trap stiffness: (i) the dissipation $decreases$ with $N$ for chains with internal friction, keeping all other parameters constant, and (ii) the relationship between the dissipation and internal friction parameter deviates from linearity as $N$ is increased. Consequently, a closed-form expression between the dissipated work in driving a chain of spring-dashpots and the damping coefficient of a single dashpot can be written only for the case of $N = 1$ [as shown in Phys. Rev. Res. $\mathbf{2}$, 013331 (2020)] and not for the general case of $N > 1$.
format Preprint
id arxiv_https___arxiv_org_abs_2507_05692
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dissipative response of driven bead-spring-dashpot chains
Kailasham, R.
Soft Condensed Matter
Statistical Mechanics
The work dissipated in pulling a polymer chain with internal friction is numerically calculated by considering a sequence of $N$ bead-spring-dashpots tethered at one end and being pulled at the other using a harmonic trap via linear and symmetric protocols. The variation of the dissipation with the chain length, pulling trap stiffness, and the internal friction parameter are examined in detail for both the protocols. In the limit of high trap stiffness: (i) the dissipation $decreases$ with $N$ for chains with internal friction, keeping all other parameters constant, and (ii) the relationship between the dissipation and internal friction parameter deviates from linearity as $N$ is increased. Consequently, a closed-form expression between the dissipated work in driving a chain of spring-dashpots and the damping coefficient of a single dashpot can be written only for the case of $N = 1$ [as shown in Phys. Rev. Res. $\mathbf{2}$, 013331 (2020)] and not for the general case of $N > 1$.
title Dissipative response of driven bead-spring-dashpot chains
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2507.05692