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Lagrangian Oceanography

Large-scale Transport and Mixing in the Ocean

  • Sergey V. Prants
  • Michael Yu. Uleysky
  • Maxim V. Budyansky

Part of the Physics of Earth and Space Environments book series (EARTH)

Table of contents

  1. Front Matter
    Pages i-xiv
  2. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages 1-17
  3. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages 19-81
  4. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages 83-94
  5. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages 95-115
  6. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages 117-139
  7. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages 141-184
  8. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages 223-256
  9. Sergey V. Prants, Michael Yu. Uleysky, Maxim V. Budyansky
    Pages E1-E2
  10. Back Matter
    Pages 257-273

About this book

Introduction

This book uses the Lagrangian approach, especially useful and convenient for studying large-scale transport and mixing in the ocean, to present a detailed view of ocean circulation. This approach focuses on simulations and on monitoring the trajectories of fluid particles, which are governed by advection equations. The first chapter of the book is devoted to dynamical systems theory methods, which provide the framework, methodology and key concepts for the Lagrangian approach. The book then moves on to an analysis of chaotic mixing and cross-stream transport in idealized models of oceanic meandering currents like the Gulfstream in the Atlantic, the Kuroshio in the Pacific, and Antarctic Circumpolar Current, after which the current state of physical oceanography is reviewed. The latter half of the book applies the techniques and methods already described in order to study eddies, currents, fronts and large-scale mixing and transport in the Far-Eastern seas and the north-western part of the Pacific Ocean. Finally, the book concludes with a discussion of Lagrangian simulation and monitoring of water contamination after the Fukushima disaster of 2011. The propagation of Fukushima-derived radionuclides, surface transport across the Kuroshio Extension current, and the role of mesoscale eddies in the transport of Fukushima-derived cesium isotopes in the ocean are examined, and a comparison of simulation results with actual measurements are presented.
Written by some of the world leaders in the application of Lagrangian methods in oceanography, this title will be of benefit to the oceanographic community by presenting the necessary background of the Lagrangian approach in an accessible manner.

Keywords

lagrangian method oceanography lagrangian hydrodynamics lagrangian advection scheme lagrangian transport and mixing fluid particle trajectory simulation ocean mixing and transport synoptic lagrangian maps

Authors and affiliations

  • Sergey V. Prants
    • 1
  • Michael Yu. Uleysky
    • 2
  • Maxim V. Budyansky
    • 3
  1. 1.Pacific Oceanological Institute of the Russian Academy of SciencesLaboratory of Nonlinear Dynamical SystemsVladivostokRussia
  2. 2.Pacific Oceanological Institute of the Russian Academy of SciencesLaboratory of Nonlinear Dynamical SystemsVladivostokRussia
  3. 3.Pacific Oceanological Institute of the Russian Academy of SciencesLaboratory of Nonlinear Dynamical SystemsVladivostokRussia

Bibliographic information

  • DOI https://doi.org/10.1007/978-3-319-53022-2
  • Copyright Information Springer International Publishing AG 2017
  • Publisher Name Springer, Cham
  • eBook Packages Earth and Environmental Science
  • Print ISBN 978-3-319-53021-5
  • Online ISBN 978-3-319-53022-2
  • Series Print ISSN 1610-1677
  • Series Online ISSN 1865-0678
  • Buy this book on publisher's site