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This book provides a thorough overview of transport phenomena in
complex fluids, based on the latest research results and the newest
methods for their analytical prediction and numerical simulation.
The respective chapters cover several topics, including: a
description of the structural features of the most common complex
fluids (polymer and surfactant solutions, colloidal suspensions);
an introduction to the most common non-Newtonian constitutive
models and their relationship with the fluid microstructure; a
detailed overview of the experimental methods used to characterise
the thermophysical properties, bulk rheology, and surface
properties of complex fluids; a comprehensive introduction to heat,
mass, and momentum transport, and to hydrodynamic instabilities in
complex fluids; and an introduction to state-of-the-art numerical
methods used to simulate complex fluid flows, with a focus on the
Smoothed Particle Hydrodynamics (SPH) and the Dissipative Particle
Dynamics (DPD) techniques. Subsequent chapters provide in-depth
descriptions of phenomena such as thermal convection, elastic
turbulence, mixing of complex fluids, thermophoresis,
sedimentation, and non-Newtonian drops and sprays. The book
addresses research scientists and professionals, engineers, R&D
managers and graduate students in the fields of engineering,
chemistry, biology, medicine, and the applied and fundamental
sciences.
This book provides a thorough overview of transport phenomena in
complex fluids, based on the latest research results and the newest
methods for their analytical prediction and numerical simulation.
The respective chapters cover several topics, including: a
description of the structural features of the most common complex
fluids (polymer and surfactant solutions, colloidal suspensions);
an introduction to the most common non-Newtonian constitutive
models and their relationship with the fluid microstructure; a
detailed overview of the experimental methods used to characterise
the thermophysical properties, bulk rheology, and surface
properties of complex fluids; a comprehensive introduction to heat,
mass, and momentum transport, and to hydrodynamic instabilities in
complex fluids; and an introduction to state-of-the-art numerical
methods used to simulate complex fluid flows, with a focus on the
Smoothed Particle Hydrodynamics (SPH) and the Dissipative Particle
Dynamics (DPD) techniques. Subsequent chapters provide in-depth
descriptions of phenomena such as thermal convection, elastic
turbulence, mixing of complex fluids, thermophoresis,
sedimentation, and non-Newtonian drops and sprays. The book
addresses research scientists and professionals, engineers, R&D
managers and graduate students in the fields of engineering,
chemistry, biology, medicine, and the applied and fundamental
sciences.
This is an up-to-date review of recent advances in the study of
two-phase flows, with focus on gas-liquid flows, liquid-liquid
flows, and particle transport in turbulent flows. The book is
divided into several chapters, which after introducing basic
concepts lead the reader through a more complex treatment of the
subjects. The reader will find an extensive review of both the
older and the more recent literature, with abundance of formulas,
correlations, graphs and tables. A comprehensive (though non
exhaustive) list of bibliographic references is provided at the end
of each chapter. The volume is especially indicated for researchers
who would like to carry out experimental, theoretical or
computational work on two-phase flows, as well as for professionals
who wish to learn more about this topic.
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