Chaotic diffusion of particles with finite mass in oscillating convection flows

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    8 Citations (Scopus)

    Abstract

    Deterministic diffusion in temporally oscillating convection is studied for particles with finite mass. The particles are assumed to obey a simple dissipative dynamical system and the particle diffusion is induced by the strange attractor. The diffusion constants are numerically calculated for convection models with free and rigid boundary conditions.

    Original languageEnglish
    JournalPhysical Review E - Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics
    Volume65
    Issue number6
    DOIs
    Publication statusPublished - Jun 11 2002

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    Convection
    convection
    strange attractors
    particle diffusion
    free boundaries
    dynamical systems
    Dissipative Dynamical System
    Strange attractor
    boundary conditions
    Boundary conditions
    Model

    All Science Journal Classification (ASJC) codes

    • Statistical and Nonlinear Physics
    • Mathematical Physics
    • Condensed Matter Physics
    • Physics and Astronomy(all)

    Cite this

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    title = "Chaotic diffusion of particles with finite mass in oscillating convection flows",
    abstract = "Deterministic diffusion in temporally oscillating convection is studied for particles with finite mass. The particles are assumed to obey a simple dissipative dynamical system and the particle diffusion is induced by the strange attractor. The diffusion constants are numerically calculated for convection models with free and rigid boundary conditions.",
    author = "Hidetsugu Sakaguchi",
    year = "2002",
    month = "6",
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    doi = "10.1103/PhysRevE.65.067201",
    language = "English",
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    AB - Deterministic diffusion in temporally oscillating convection is studied for particles with finite mass. The particles are assumed to obey a simple dissipative dynamical system and the particle diffusion is induced by the strange attractor. The diffusion constants are numerically calculated for convection models with free and rigid boundary conditions.

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