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Showing 1 to 3 of 3 for “"dispersed flows"”.

  1. Use of Lagrangian methods to describe particle deposition and distribution in dispersed flows

    Experimental studies of the interchange processes in vertical gas-liquid annular flow by Leman (1985) and Schadel (1988) in this laboratory have been completed. This work defines the effect of pipe diameter, gas and liquid flow rates on deposition rates in air-water annular flow. An estimate of the …

    uiuc Repository record for Use of Lagrangian methods to describe particle deposition and distribution in dispersed flows (opens in a new tab)

  2. A high-order Legendre-WENO numerical scheme for the non-conservative kernel density equations modeling particle-laden flows

    … equations for the particle phase of disperse flows. The kernel density equations arise from least squares minimization of the approximation of the position-velocity phase-space particle distribution by a sum of kernel density functions. For concreteness in this work, Gaussian kernel density …

    uiuc Repository record for A high-order Legendre-WENO numerical scheme for the non-conservative kernel density equations modeling particle-laden flows (opens in a new tab)

  3. Mean-Field Free-Energy Lattice Boltzmann Method for Liquid-Vapor Interfacial Flows

    … numerical development to simulate liquid-vapor flows and the applications to microchannels. First, we obtain a consistent non-local pressure equation for simulating liquid-vapor interfacial flows using mean-field free-energy theory. This new pressure equation is shown to be the general form of …

    vt Repository record for Mean-Field Free-Energy Lattice Boltzmann Method for Liquid-Vapor Interfacial Flows (opens in a new tab)