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  • A dynamical-systems interpretation of the dissipation function, T-mixing and their relation to thermodynamic relaxation

    Author(s)
    Jepps, Owen
    Rondoni, Lamberto
    Griffith University Author(s)
    Jepps, Owen
    Year published
    2016
    Metadata
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    Abstract
    We review the notions of the dissipation function and T-mixing for non-invariant measures, recently introduced for nonequilibrium molecular dynamics models. We provide a dynamical-systems interpretation for the dissipation function and related results, providing new perspectives into results such as the second-law inequality. We then consider the problem of relaxation within this framework—the convergence of time averages along single phase–space trajectories, as opposed to the convergence of ensemble averages. As a first step in this direction, we observe that T-mixing implies convergence to a unique asymptotic ensemble, ...
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    We review the notions of the dissipation function and T-mixing for non-invariant measures, recently introduced for nonequilibrium molecular dynamics models. We provide a dynamical-systems interpretation for the dissipation function and related results, providing new perspectives into results such as the second-law inequality. We then consider the problem of relaxation within this framework—the convergence of time averages along single phase–space trajectories, as opposed to the convergence of ensemble averages. As a first step in this direction, we observe that T-mixing implies convergence to a unique asymptotic ensemble, independent on the initial ensemble. In particular, the initial ensemble can be concentrated arbitrarily closely to any point in phase–space.
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    Journal Title
    Journal of Physics A: Mathematical and Theoretical
    Volume
    49
    Issue
    15
    DOI
    https://doi.org/10.1088/1751-8113/49/15/154002
    Subject
    Statistical Mechanics, Physical Combinatorics and Mathematical Aspects of Condensed Matter
    Mathematical Sciences
    Physical Sciences
    Dynamical-systems
    Dissipation function
    T-mixing
    Thermodynamic relaxation
    Publication URI
    http://hdl.handle.net/10072/142768
    Collection
    • Journal articles

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