EFFECT OF PARTICLE CONCENTRATION AND REYNOLDS NUMBER ON HEAT TRANSFER IN PARTICLE-LADEN FLOWS.

EFFECT OF PARTICLE CONCENTRATION AND REYNOLDS NUMBER ON HEAT TRANSFER IN PARTICLE-LADEN FLOWS.
Title EFFECT OF PARTICLE CONCENTRATION AND REYNOLDS NUMBER ON HEAT TRANSFER IN PARTICLE-LADEN FLOWS. PDF eBook
Author Sarah Masters
Publisher
Pages
Release 2018
Genre
ISBN

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The goal of this research is to understand heat transfer in particle-laden flows. Particle-laden flows are prevalent in multiple industries, including chemical, pharmaceutical, plastics, food, and agriculture. In many applications, it is necessary to heat or cool the particle-laden flow to achieve desired process conditions. It is therefore important to understand the heat transfer characteristics of particle-laden flows under varying process conditions. This research seeks to experimentally investigate how the concentration of particles in turbulent, particle-laden flow effect the heat transfer properties of the flow. An experimental setup to observe the heat transfer properties of particle-laden flows was designed and built in house. A MARK XV-HP powder feeder system was used to entrain copper particles (-325 mesh) into a flow of nitrogen gas. The particle-laden flow then traveled through a horizontal pipe with a constant heat flux applied to the wall. Surface and fluid temperatures along the test section were measured and used to calculate the heat transfer coefficient and Nusselt number of the flow. A range of Reynolds numbers from 30,000 to 65,000 as well as a range of solids loadings from 0.0 to 1.0 were tested. For solids loadings of 0.5, the Nusselt number increased at lower Reynolds numbers and then decreased at higher Reynolds numbers. For solids loadings of 1.0, the Nusselt number was lower at low Reynolds numbers and then increased at higher Reynolds numbers. A transition in Nusselt number occurred for both solids loadings, but they occurred at different Reynolds numbers. The Nusselt number for particle-laden flows did show a variance from the Nusselt number for gas only flows. The direction and quantity of this difference was dependent on solids loading and Reynolds number. These trends are proposed to be a result of different turbulence modulation effects, which are discussed herein.

Multiphase Flows with Droplets and Particles, Third Edition

Multiphase Flows with Droplets and Particles, Third Edition
Title Multiphase Flows with Droplets and Particles, Third Edition PDF eBook
Author Efstathios E. Michaelides
Publisher CRC Press
Pages 478
Release 2022-12-30
Genre Technology & Engineering
ISBN 1000790576

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Multiphase Flows with Droplets and Particles provides an organized, pedagogical study of multiphase flows with particles and droplets. This revised edition presents new information on particle interactions, particle collisions, thermophoresis and Brownian movement, computational techniques and codes, and the treatment of irregularly shaped particles. An entire chapter is devoted to the flow of nanoparticles and applications of nanofluids. Features Discusses the modelling and analysis of nanoparticles. Covers all fundamental aspects of particle and droplet flows. Includes heat and mass transfer processes. Features new and updated sections throughout the text. Includes chapter exercises and a Solutions Manual for adopting instructors. Designed to complement a graduate course in multiphase flows, the book can also serve as a supplement in short courses for engineers or as a stand-alone reference for engineers and scientists who work in this area.

Impact of Saltation on the Modeling of Heat Transfer for High Reynolds Number Particle-Laden Flows

Impact of Saltation on the Modeling of Heat Transfer for High Reynolds Number Particle-Laden Flows
Title Impact of Saltation on the Modeling of Heat Transfer for High Reynolds Number Particle-Laden Flows PDF eBook
Author Zachary Vickerson
Publisher
Pages
Release 2021
Genre
ISBN

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The heat transfer performance of a particle-laden flow has design implications for a wide range of industries. The objective of this thesis is to improve a previously proposed Eulerian CFD model for the heat transfer of a highly mass loaded high Reynolds number particle-laden flow. Experimentation had shown that a layer of copper particles accumulated on the bottom of the flow channel. The previous two field (gas + dispersed particle) model was extended to include a third field to represent this particle layer. Mass transfer models were developed to account for the deposition of particles from dispersed to particle layer and from particle layer back to dispersed. New drag and heat transfer models were developed to account for the interaction of the particle layer field with the core gas flow. The model is tested and implemented using NPHASE, an Eulerian Multiphase flow CFD solver, and suggestions for improvement are proposed.

Turbulent Particle-Laden Gas Flows

Turbulent Particle-Laden Gas Flows
Title Turbulent Particle-Laden Gas Flows PDF eBook
Author Aleksei Y. Varaksin
Publisher Springer Science & Business Media
Pages 204
Release 2007-07-05
Genre Science
ISBN 3540680543

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This book presents results of experimental and theoretical studies of "gas-solid particles" turbulent two-phase flows. It analyzes the characteristics of heterogeneous flows in channels (pipes), as well as those in the vicinity of the critical points of bodies subjected to flow and in the boundary layer developing on their surface. Coverage also treats in detail problems of physical simulation of turbulent gas flows which carry solid particles.

Temperature Coupling Effects in Radiatively Heated Particle-laden Flows

Temperature Coupling Effects in Radiatively Heated Particle-laden Flows
Title Temperature Coupling Effects in Radiatively Heated Particle-laden Flows PDF eBook
Author Ji Hoon Kim
Publisher
Pages
Release 2022
Genre
ISBN

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Turbulent particle-laden flows are common in many natural phenomena and engineering applications. While particle-laden turbulence is a relatively well-studied subject, not many studies address the concurrent effect of an radiative heat transfer on the multiphase system. Understanding such an interaction can be key to designing effective spray combustors, fire suppression systems, and particle solar receivers. Using the particle solar receiver as a test bed for investigation, this work aims to experimentally investigate the coupling between radiation, turbulence, and particles in such a system using two different flow configurations of a duct flow and an isokinetic co-flowing jet. The goals of the work are to examine the effects of preferential concentration on the behavior of the radiation transport through the disperse medium and the convective heat transfer between the carrier and disperse phase. In addition, it also aims to study the converse effect of how the radiative heating can effect the clustering behavior of the particles by examining measures of preferential concentration of particles in the flow in the presence of radiative heating. The study finds that the preferential concentration of particles can cause the radiation transmission to deviate from a classical Beer's Law extinction behavior, due to increased line of sight distances in the medium. Measurements of the carrier phase temperature statistics show that large coherent particles clusters dominate the modulation of the gas phase temperature, especially in the boundary layer in wall-bounded flows. Measurements of the radial distribution function, clustering index, and Voronoi cell area PDFs all indicated a reduction of preferential concentration within clusters, particularly in denser clusters with smaller associated separation length scales, which correspond to the most intensely heated regions of the flow. Particle velocity statistics showed evidence of bulk turbulence modification by radiative heating, as particle velocity fluctuations were dampened. This was likely caused by variable property effects from temperature-dependent properties, specifically from the increase in fluid kinematic viscosity. Buoyancy and dilatation effects were identified as possible mechanisms for turbulence modification at the smaller cluster scales, supported by scaling analyses and directional measures of preferential concentration.

Multiphase Flow Handbook, Second Edition

Multiphase Flow Handbook, Second Edition
Title Multiphase Flow Handbook, Second Edition PDF eBook
Author Efstathios Michaelides
Publisher CRC Press
Pages 1559
Release 2016-10-26
Genre Science
ISBN 1315354624

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The Multiphase Flow Handbook, Second Edition is a thoroughly updated and reorganized revision of the late Clayton Crowe’s work, and provides a detailed look at the basic concepts and the wide range of applications in this important area of thermal/fluids engineering. Revised by the new editors, Efstathios E. (Stathis) Michaelides and John D. Schwarzkopf, the new Second Edition begins with two chapters covering fundamental concepts and methods that pertain to all the types and applications of multiphase flow. The remaining chapters cover the applications and engineering systems that are relevant to all the types of multiphase flow and heat transfer. The twenty-one chapters and several sections of the book include the basic science as well as the contemporary engineering and technological applications of multiphase flow in a comprehensive way that is easy to follow and be understood. The editors created a common set of nomenclature that is used throughout the book, allowing readers to easily compare fundamental theory with currently developing concepts and applications. With contributed chapters from sixty-two leading experts around the world, the Multiphase Flow Handbook, Second Edition is an essential reference for all researchers, academics and engineers working with complex thermal and fluid systems.

Transient Heat Transfer to Particles in a Low Velocity Flow Field

Transient Heat Transfer to Particles in a Low Velocity Flow Field
Title Transient Heat Transfer to Particles in a Low Velocity Flow Field PDF eBook
Author Ki-Hwan Park
Publisher
Pages 436
Release 1993
Genre
ISBN

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