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Titlebook: Boundary Layer Structure; Modeling and Applica Hadassah Kaplan,Nathan Dinar Book 1984 D. Reidel Publishing Company, Dordrecht, Holland 1984

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Duccio Demetrio,Chiara Borgonovihe vertical velocity at the top of the PBL and the total energy dissipation in the PBL are also discussed. Experimental and/or theoretical bases for the various parametric relation are given. Some of the suggested parameterizations should be considered as tentative, until they are properly validated.
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https://doi.org/10.1007/978-3-8350-9527-4ering, are derived and compared with atmospheric observations. The characteristic time-scale of atmospheric diffusion is shown to be governed by the Coriolis effect, a result in good agreement with meso- and large-scale observations.
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Some Aspects of the Turbulent Stable Boundary Layernalized with measurements taken at the same height, can be expressed as a function of a single parameter z/Λ, where z is the height and Λ a local Obukhov length. One of the consequences is that locally scaled variables become constant above the surface layer. This behavior is illustrated with observ
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Second Order Modeling of Turbulent Transport in the Surface Mixed Layerversion base, models are constructed so as to satisfy realizability as far as possible. Density anomaly and water vapor mixture fraction (specific humidity) are taken as the basic variables. Algebraic expressions for the third moments are derived from first principles, and contain no adjustable cons
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Solutions of the Integral Equation of Diffusion and the Random Walk Model for Continuous Plumes and ng simple probability techniques, avoids the inefficient determination of thousands of trajectories in order to build up concentration profiles. In fact it is so simple and efficient it can be run on a conventional programmable calculator. The method is applied to passive material being released fro
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The Random Force Theory: Application to Meso- and Large-Scale Atmospheric Diffusionan atmospheric analogy to Brownian motion. Here it is derived by assuming a type of Rayleigh friction in the Lagrangian equations of atmospheric motion. Consequences, including the Lagrangian correlation and spectrum, the particle-particle intercorrelation, and cluster and plume dispersion and meand
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