Engineering

Engineering

ISSN Print: 1947-3931
ISSN Online: 1947-394X
www.scirp.org/journal/eng
E-mail: eng@scirp.org
"Turbulent Modulation in Particulate Flow: A Review of Critical Variables"
written by Ammar Saber, T. Staffan Lundström, J. Gunnar I. Hellström,
published by Engineering, Vol.7 No.10, 2015
has been cited by the following article(s):
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[8] Experimental investigation of the effects of particle near-wall motions on turbulence statistics in particle-laden flows
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[9] Two-Fluid RANS Modelling of Turbulence Created by a Vertically Falling/Moving Particle Cloud
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[13] Investigation of particle loading on the turbulent flow over a deep cavity
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[14] A Multiscale Approach for the Numerical Simulation of Turbulent Flows with Droplets
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[15] Experimental investigation on the effect of particles on large scale vortices of an isolated hemispherical roughness element
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[16] Progress in CFD Simulations of Fluidized Beds for Chemical and Energy Process Engineering
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[17] Large scale structures of turbulent flows in the atmospheric surface layer with and without sand
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[18] Effect of Neutrally Buoyant Particles on Horizontal Turbulent Flow Through a Tee-Junction
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[19] Particles-induced turbulence: A critical review of physical concepts, numerical modelings and experimental investigations
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[20] Direct numerical simulation of particle-laden turbulent boundary layers without and with combustion
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[21] Modélisation numérique d'écoulements turbulents avec entraînement d'air au sein d'ouvrages hydrauliques
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[22] Sand-turbulence interaction in a high-Reynolds-number turbulent boundary layer under net sedimentation conditions
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[23] Flame propagation characteristics and explosion behaviors of aluminum dust explosions in a horizontal pipeline
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[24] Numerical analysis of particulate flows with the finite element method
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[25] Turbulent burning velocity of methane–air–dust premixed flames
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[26] Influence of Dusts on Premixed Methane-Air Flames
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[27] Assessment of Non-Spherical Point-Particle Models in LES using Direct Particle-Fluid Simulations
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[28] Turbulent energy dissipation rate modification due to particle insertion: Effect of Reynolds number
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[29] Particle-turbulence interaction in High-Reynolds-number Sand-laden Turbulent Boundary Layer
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[30] A spatiotemporal tree model for turbulence in dispersed phase multiphase flows: Energy dissipation rate behavior in single particle and binary particles arrays
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[31] On the significance of two-way coupling in simulation of turbulent particle agglomeration
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[32] Unsteady numerical analysis of the liquid-solid two-phase flow around a step using Eulerian-Lagrangian and the filter-based RANS method
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[33] Dynamical tree models for high Reynolds number turbulence applied in fluid-solid systems of 1D-space and time
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[34] Characterization and Prediction of Water Droplet Size in Oil-Water Flow
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[35] Influence of Inertial Particles on Turbulence Characteristics in Outer and Near Wall Flow as Revealed With High Resolution Particle Image Velocimetry
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[36] О достаточных условиях устойчивости конвективного дисперсного течения
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[38] Effect of concave‐wall jets with circumferential multi‐inlet on liquid–solid separation
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