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Titlebook: Computational Fluid Dynamics for the Petrochemical Process Industry; R. V. A. Oliemans Book 1991 Springer Science+Business Media Dordrecht

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書目名稱Computational Fluid Dynamics for the Petrochemical Process Industry
編輯R. V. A. Oliemans
視頻videohttp://file.papertrans.cn/233/232309/232309.mp4
圖書封面Titlebook: Computational Fluid Dynamics for the Petrochemical Process Industry;  R. V. A. Oliemans Book 1991 Springer Science+Business Media Dordrecht
描述The second of the 1989 conferences in the Shell Conference Series, held from 10 to 12 December in the Netherlands and organized by Koninklijke/Shell-Laboratorium, Amsterdam, was on "Computational Fluid Dynamics for Petrochemical Process Equip- ment". The objective was to generate a shared perspective on the subject with respect to its role in the design of equipment involving complex flows. The conference was attended by scientists from four Shell laboratories and experts from universities in the USA, France, Great Britain, Germany and The Netherlands. R. V. A. Oliemans, G. Ooms and T. M. M. Verheggen formed the organizing committee. Complexities in fluid flow may arise from equipment geometry and/or the fluids themselves, which can be mUlti-component, single-phase or multiphase. Pressure and temperature gradients and any reactivity of components in the flow stream can be additional factors. Four themes were addressed: turbulent reacting and non-reacting flow, dispersed multiphase flow, separated two-phase flow and fluid flow simulation tools. The capabilities and limitations of a sequence of turbulence flow models, from the relatively simple k-£ model to direct numerical simulatio
出版日期Book 1991
關(guān)鍵詞Large Eddy Simulation; computational fluid dynamics; dynamics; fluid dynamics; stability; transport pheno
版次1
doihttps://doi.org/10.1007/978-94-011-3632-7
isbn_softcover978-94-010-5612-0
isbn_ebook978-94-011-3632-7
copyrightSpringer Science+Business Media Dordrecht 1991
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https://doi.org/10.1007/BFb0021732 paper also shows how the results of direct simulation can be used to improve current closure models of these flows. Particle dispersion in a decaying grid-turbulence is studied using DNS, and the results are compared with the measurements of Snyder and Lumley (1971).
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Laura Sacerdote,Maria Teresa Giraudod 2-. geometry is presented. In gas–liquid pipe flow different flow regimes occur. This is known to be related to the stability properties of the flow. We shall present a linear stability analysis of plane two-phase Poiseuille flow. Two different unstable modes can occur, corresponding to experiment
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One-Dimensional Homogeneous Diffusionslly caused by sequences of bifurcations in the solution space. Through the consideration of the configuration of highest symmetry compatible with the basic physical problem most bifurcations can be identified by their symmetry breaking properties. Because it can incorporate all available symmetries
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