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arXiv · 1811.10832

Dynamical glass in weakly non-integrable Klein-Gordon chains

Abstract

Integrable many-body systems are characterized by a complete set of preserved actions. Close to an integrable limit, a {\it nonintegrable} perturbation creates a coupling network in action space which can be short- or long-ranged. We analyze the dynamics of observables which turn into the conserved actions in the integrable limit. We compute distributions of their finite-time averages and obtain the ergodization time scale $T_E$ on which these distributions converge to $δ$-distributions. We relate $T_E \sim (σ_τ^+)^2/μ_τ^+$ to the statistics of fluctuation times of the observables, which acquire fat-tailed distributions with standard deviations $σ_τ^+$ dominating the means $μ_τ^+$. The Lyapunov time $T_Λ$ (the inverse of the largest Lyapunov exponent) is then compared to the above time scales. We use a simple Klein-Gordon chain to emulate long- and short-range coupling networks by tuning its energy density. For long-range coupling networks $T_Λ\approx σ_τ^+$, which indicates that the Lyapunov time sets the ergodization time, with chaos quickly diffusing through the coupling network. For short-range coupling networks we observe a {\it dynamical glass}, where $T_E$ grows dramatically by many orders of magnitude and greatly exceeds the Lyapunov time, which $T_Λ \lesssim μ_τ^+$. This is due to the formation of a highly fragmented inhomogeneous distributions of chaotic groups of actions, separated by growing volumes of non-chaotic regions. These structures persist up to the ergodization time $T_E$.

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BibTeXRIS

Carlo Danieli, Thudiyangal Mithun, Yagmur Kati, David K. Campbell, Sergej Flach. 2019-08-20. Dynamical glass in weakly non-integrable Klein-Gordon chains. https://doi.org/10.1103/physreve.100.032217

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