A Framework of Nonequilibrium Statistical Mechanics. I. Role and Types of Fluctuations

Author:

Öttinger Hans Christian1,Peletier Mark A.2,Montefusco Alberto3

Affiliation:

1. 27219 ETH Zürich , Department of Materials, Polymer Physics , Zürich , Switzerland

2. 3169 Technische Universiteit Eindhoven , Centre for Analysis, Scientific Computing and Applications, Institute for Complex Molecular Systems , Eindhoven , The Netherlands

3. 39043 Zuse-Institut Berlin , Mathematics for Life and Materials Sciences , Berlin , Germany

Abstract

Abstract Understanding the fluctuations by which phenomenological evolution equations with thermodynamic structure can be enhanced is the key to a general framework of nonequilibrium statistical mechanics. These fluctuations provide an idealized representation of microscopic details. We consider fluctuation-enhanced equations associated with Markov processes and elaborate the general recipes for evaluating dynamic material properties, which characterize force-flux constitutive laws, by statistical mechanics. Markov processes with continuous trajectories are conveniently characterized by stochastic differential equations and lead to Green–Kubo-type formulas for dynamic material properties. Markov processes with discontinuous jumps include transitions over energy barriers with the rates calculated by Kramers. We describe a unified approach to Markovian fluctuations and demonstrate how the appropriate type of fluctuations (continuous versus discontinuous) is reflected in the mathematical structure of the phenomenological equations.

Publisher

Walter de Gruyter GmbH

Subject

General Physics and Astronomy,General Chemistry

Reference66 articles.

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3. J. M. Ortiz de Zárate and J. V. Sengers, Hydrodynamic Fluctuations in Fluids and Fluid Mixtures. Amsterdam, Elsevier, 2006.

4. L. D. Landau and E. M. Lifshitz, Statistical Physics, Part 2. 2nd ed. Vol. 9. Course of Theoretical Physics, Pergamon, Oxford, 1992.

5. L. E. Reichl, A Modern Course in Statistical Physics, University of Texas Press, Austin, 1980.

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