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Fluid mechanics of planets and stars / edited by Michael Le Bars, Daniel Lecoanet

Contributor(s): Le Bars, Michael, editor | Lecoanet, Daniel, editor
Series: (CISM International Centre for Mechanical Sciences Courses and Lectures, 0254-1971; 595); (Engineering (Springer-11647)).Publisher: Cham : Springer International Publishing, 2020Edition: First edition.Description: 1 recurso en línea (VII, 241 páginas) : 79 ilustraciones, 54 ilustraciones a color.ISBN: 9783030220747.Subject: Mecánica de fluidos | Dinámica de fluidos | AstrofísicaOnline resources: Acceso a este recurso digital (usuarios Universidad Europea de Madrid)Digital Resources
Contents:
Internal Waves and Tides in Stars and Giant Planets -- Waves & Convection in Stellar Astrophysics -- Internal Waves in the Atmosphere and Ocean: Instability Mechanisms -- Rotational Dynamics of Planetary Cores: Instabilities Driven by Precession, Libration and Tides -- Fluid Dynamics of Earth's Core: Geodynamo, Inner Core Dynamics, Core Formation -- A Brief Introduction to Turbulence in Rotating and Stratified Fluids.
Abstract: This book explores the dynamics of planetary and stellar fluid layers, including atmospheres, oceans, iron cores, and convective and radiative zones in stars, describing the different theoretical, computational and experimental methods used to study these problems in fluid mechanics, including the advantages and limitations of each method for different problems. This scientific domain is by nature interdisciplinary and multi-method, but while much effort has been devoted to solving open questions within the various fields of mechanics, applied mathematics, physics, earth sciences and astrophysics, and while much progress has been made within each domain using theoretical, numerical and experimental approaches, cross-fertilizations have remained marginal. Going beyond the state of the art, the book provides readers with a global introduction and an up-to-date overview of relevant studies, fully addressing the wide range of disciplines and methods involved. The content builds on the CISM course "Fluid mechanics of planets and stars", held in April 2018, which was part of the research project FLUDYCO, supported by the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation program.
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Holdings
Item type Current library Collection Call number Status Date due Barcode Item holds
LIBRO-E NO PRÉSTAMO LIBRO-E NO PRÉSTAMO Madrid Digital Acceso Electrónico (UEM) Ciencias e Ingeniería QB466.F58 2020 EB (Browse shelf(Opens below)) Acceso electrónico eBook06112162
Total holds: 0

Internal Waves and Tides in Stars and Giant Planets -- Waves & Convection in Stellar Astrophysics -- Internal Waves in the Atmosphere and Ocean: Instability Mechanisms -- Rotational Dynamics of Planetary Cores: Instabilities Driven by Precession, Libration and Tides -- Fluid Dynamics of Earth's Core: Geodynamo, Inner Core Dynamics, Core Formation -- A Brief Introduction to Turbulence in Rotating and Stratified Fluids.

This book explores the dynamics of planetary and stellar fluid layers, including atmospheres, oceans, iron cores, and convective and radiative zones in stars, describing the different theoretical, computational and experimental methods used to study these problems in fluid mechanics, including the advantages and limitations of each method for different problems. This scientific domain is by nature interdisciplinary and multi-method, but while much effort has been devoted to solving open questions within the various fields of mechanics, applied mathematics, physics, earth sciences and astrophysics, and while much progress has been made within each domain using theoretical, numerical and experimental approaches, cross-fertilizations have remained marginal. Going beyond the state of the art, the book provides readers with a global introduction and an up-to-date overview of relevant studies, fully addressing the wide range of disciplines and methods involved. The content builds on the CISM course "Fluid mechanics of planets and stars", held in April 2018, which was part of the research project FLUDYCO, supported by the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation program.

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