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Titlebook: Mathematics of Large Eddy Simulation of Turbulent Flows; Luigi C. Berselli,Traian Iliescu,William J. Layton Book 20061st edition Springer-

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書目名稱Mathematics of Large Eddy Simulation of Turbulent Flows
編輯Luigi C. Berselli,Traian Iliescu,William J. Layton
視頻videohttp://file.papertrans.cn/627/626945/626945.mp4
概述The LES-method is rapidly developing in many practical applications in engineering.The mathematical background is presented here for the first time in book form by one of the leaders in the field.Incl
叢書名稱Scientific Computation
圖書封面Titlebook: Mathematics of Large Eddy Simulation of Turbulent Flows;  Luigi C. Berselli,Traian Iliescu,William J. Layton Book 20061st edition Springer-
描述.Large eddy simulation (LES) is a method of scientific computation seeking to predict the dynamics of organized structures in turbulent flows by approximating local, spatial averages of the flow. Since its birth in 1970, LES has undergone an explosive development and has matured into a highly-developed computational technology. It uses the tools of turbulence theory and the experience gained from practical computation...This book focuses on the mathematical foundations of LES and its models and provides a connection between the powerful tools of applied mathematics, partial differential equations and LES. Thus, it is concerned with fundamental aspects not treated so deeply in the other books in the field, aspects such as well-posedness of the models, their energy balance and the connection to the Leray theory of weak solutions of the Navier-Stokes equations. The authors give a mathematically informed and detailed treatment of an interesting selection of models, focusing on issues connected with understanding and expanding the correctness and universality of LES...This volume offers a useful entry point into the field for PhD students in applied mathematics, computational mathematic
出版日期Book 20061st edition
關(guān)鍵詞Computational Fluid Dynamics; Large Eddy Simulation; Navier-Stokes equation; Scientific Computing; Simul
版次1
doihttps://doi.org/10.1007/b137408
isbn_softcover978-3-642-06579-8
isbn_ebook978-3-540-26317-3Series ISSN 1434-8322 Series E-ISSN 2198-2589
issn_series 1434-8322
copyrightSpringer-Verlag Berlin Heidelberg 2006
The information of publication is updating

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ons. They range from being almost entirely mathematical, through mixed approaches, based upon linear stability analysis, to being entirely variational [2–5]. The problems already addressed in this group have used generic coupled Schr?dinger equations to yield soliton dynamics, expressed in terms of
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out the distortion and energy loss of this pulse [1–4]. This phenomenon is characterised by the continuous absorption and re-emission of electromagnetic radiation by resonant atoms of medium in such a manner that steady-state optical pulse propagates. In the ideal case the energy dissipation of the
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sics, optics and field theory, chemistry reaction kinetics and population dynamics, nuclear physics and gravity. All non-linear waves can be divided into two parts: dispersive waves and dissipative ones. The history of investigation of these waves has been lasting about two centuries. In 1834 J. S.
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