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Books > Science & Mathematics > Physics > Classical mechanics > Fluid mechanics
Plants offer some of the most elegant applications of soft matter
principles in Nature. Understanding the interplay between
chemistry, physics, biology, and fluid mechanics is critical to
forecast plant behaviour, which is necessary for agriculture and
disease management. It also provides inspiration for novel
engineering applications. Starting with fundamental concepts around
plant biology, physics of soft matter and viscous fluids, readers
of this book will be given a cross-disciplinary and expert
grounding to the field. The book covers local scale aspects, such
as cell and tissue mechanics, to regional scale matters covering
movement, tropism, roots, through to global scale topics around
fluid transport. Focussed chapters on water stress, networks, and
biomimetics provide the user with a concise and complete
introduction. Edited by internationally recognised leading experts
in this field with contributions from key investigators worldwide,
this book is the first introduction to the subject matter and will
be suitable for both physical and life science readers.
The second of two volumes concentrating on the dynamics of slender
bodies within or containing axial flow, Volume 2 covers
fluid-structure interactions relating to shells, cylinders and
plates containing or immersed in axial flow, as well as slender
structures subjected to annular and leakage flows. This volume has
been thoroughly updated to reference the latest developments in the
field, with a continued emphasis on the understanding of dynamical
behaviour and analytical methods needed to provide long-term
solutions and validate the latest computational methods and codes,
with increased coverage of computational techniques and numerical
methods, particularly for the solution of non-linear
three-dimensional problems.
Modelling and Simulation of Reactive Flows presents information on
modeling and how to numerically solve reactive flows. The book
offers a distinctive approach that combines diffusion flames and
geochemical flow problems, providing users with a comprehensive
resource that bridges the gap for scientists, engineers, and the
industry. Specifically, the book looks at the basic concepts
related to reaction rates, chemical kinetics, and the development
of reduced kinetic mechanisms. It considers the most common methods
used in practical situations, along with equations for reactive
flows, and various techniques-including flamelet, ILDM, and
Redim-for jet flames and plumes, with solutions for both. In
addition, the book includes techniques to accelerate the
convergence of numerical simulation, and a discussion on the
analysis of uncertainties with numerical results, making this a
useful reference for anyone who is interested in both combustion in
free flow and in porous media.
Fluvial-Tidal Sedimentology provides information on the
'Tidal-Fluvial Transition', the transition zone between river and
tidal environments, and includes contributions that address some of
the most fundamental research questions, including how the
morphology of the tidal-fluvial transition zone evolves over short
(days) and long (decadal) time periods and for different tidal and
fluvial regimes, the structure of the river flow as it varies in
its magnitude over tidal currents and how this changes at the
mixing interface between fresh and saline water and at the
turbidity maximum, the role of suspended sediment in controlling
bathymetric change and bar growth and the role of fine-grained
sediment (muds and flocs), whether it is possible to differentiate
between 'fluvial' and 'tidally' influenced bedforms as preserved in
bars and within the adjacent floodplain and what are the diagnostic
sedimentary facies of tidal-fluvial deposits and how are these
different from 'pure' fluvial and tidal deposits, amongst other
topics. The book presents the latest research on the processes and
deposits of the tidal-fluvial transition, documenting recent major
field programs that have quantified the flow, sediment transport,
and bed morphology in tidal-fluvial zones. It uses description of
contemporary environments and ancient outcrop analogues to
characterize the facies change through the tidal-fluvial
transition.
The book is an introduction to the subject of fluid mechanics,
essential for students and researchers in many branches of science.
It illustrates its fundamental principles with a variety of
examples drawn mainly from astrophysics and geophysics as well as
from everyday experience. Prior familiarity with basic
thermodynamics and vector calculus is assumed.
This book is a description of why and how to do Scientific
Computing for fundamental models of fluid flow. It contains
introduction, motivation, analysis, and algorithms and is closely
tied to freely available MATLAB codes that implement the methods
described. The focus is on finite element approximation methods and
fast iterative solution methods for the consequent linear(ized)
systems arising in important problems that model incompressible
fluid flow. The problems addressed are the Poisson equation,
Convection-Diffusion problem, Stokes problem and Navier-Stokes
problem, including new material on time-dependent problems and
models of multi-physics. The corresponding iterative algebra based
on preconditioned Krylov subspace and multigrid techniques is for
symmetric and positive definite, nonsymmetric positive definite,
symmetric indefinite and nonsymmetric indefinite matrix systems
respectively. For each problem and associated solvers there is a
description of how to compute together with theoretical analysis
that guides the choice of approaches and describes what happens in
practice in the many illustrative numerical results throughout the
book (computed with the freely downloadable IFISS software). All of
the numerical results should be reproducible by readers who have
access to MATLAB and there is considerable scope for
experimentation in the "computational laboratory " provided by the
software. Developments in the field since the first edition was
published have been represented in three new chapters covering
optimization with PDE constraints (Chapter 5); solution of unsteady
Navier-Stokes equations (Chapter 10); solution of models of
buoyancy-driven flow (Chapter 11). Each chapter has many
theoretical problems and practical computer exercises that involve
the use of the IFISS software. This book is suitable as an
introduction to iterative linear solvers or more generally as a
model of Scientific Computing at an advanced undergraduate or
beginning graduate level.
This is the second volume in a four-part series on fluid dynamics:
Part 1. Classical Fluid Dynamics Part 2. Asymptotic Problems of
Fluid Dynamics Part 3. Boundary Layers Part 4. Hydrodynamic
Stability Theory The series is designed to give a comprehensive and
coherent description of fluid dynamics, starting with chapters on
classical theory suitable for an introductory undergraduate lecture
course, and then progressing through more advanced material up to
the level of modern research in the field. In Part 2 the reader is
introduced to asymptotic methods, and their applications to fluid
dynamics. Firstly, it discusses the mathematical aspects of the
asymptotic theory. This is followed by an exposition of the results
of inviscid flow theory, starting with subsonic flows past thin
aerofoils. This includes unsteady flow theory and the analysis of
separated flows. The authors then consider supersonic flow past a
thin aerofoil, where the linear approximation leads to the Ackeret
formula for the pressure. They also discuss the second order
Buzemann approximation, and the flow behaviour at large distances
from the aerofoil. Then the properties of transonic and hypersonic
flows are examined in detail. Part 2 concludes with a discussion of
viscous low-Reynolds-number flows. Two classical problems of the
low-Reynolds-number flow theory are considered, the flow past a
sphere and the flow past a circular cylinder. In both cases the
flow analysis leads to a difficulty, known as Stokes paradox. The
authors show that this paradox can be resolved using the formalism
of matched asymptotic expansions.
Externally tunable properties allow for new applications of
magnetic hybrid materials containing magnetic micro- and
nanoparticles in sensors and actuators in technical and medical
applications. By means of easy to generate and control magnetic
fields, changes of the internal particle arrangements and the
macroscopic properties can be achieved. This monograph delivers the
latest insights into multi-scale modelling, experimental
characterization, manufacturing and application of those magnetic
hybrid materials.
Fluid mechanics is the study of how fluids behave and interact
under various forces and in various applied situations, whether in
liquid or gas state or both. The author compiles pertinent
information that are introduced in the more advanced classes at the
senior level and at the graduate level. "Advanced Fluid Mechanics"
courses typically cover a variety of topics involving fluids in
various multiple states (phases), with both elastic and non-elastic
qualities, and flowing in complex ways. This new text will
integrate both the simple stages of fluid mechanics
("Fundamentals") with those involving more complex parameters,
including Inviscid Flow in multi-dimensions, Viscous Flow and
Turbulence, and a succinct introduction to Computational Fluid
Dynamics. It will offer exceptional pedagogy, for both classroom
use and self-instruction, including many worked-out examples,
end-of-chapter problems, and actual computer programs that can be
used to reinforce theory with real-world applications.
Professional engineers as well as Physicists and Chemists working
in the analysis of fluid behavior in complex systems will find the
contents of this book useful.All manufacturing companies involved
in any sort of systems that encompass fluids and fluid flow
analysis (e.g., heat exchangers, air conditioning and
refrigeration, chemical processes, etc.) or energy generation
(steam boilers, turbines and internal combustion engines, jet
propulsion systems, etc.), or fluid systems and fluid power (e.g.,
hydraulics, piping systems, and so on)will reap the benefits of
this text.
- Offers detailed derivation of fundamental equations for better
comprehension of more advanced mathematical analysis
-Provides groundwork for more advanced topics on boundary layer
analysis, unsteady flow, turbulent modeling, and computational
fluid dynamics
- Includes worked-out examples and end-of-chapter problems as well
as a companion web site with sample computational programs and
Solutions Manual
This volume collects the edited and reviewed contributions
presented in the 8th iTi Conference on Turbulence, held in
Bertinoro, Italy, in September 2018. In keeping with the spirit of
the conference, the book was produced afterwards, so that the
authors had the opportunity to incorporate comments and discussions
raised during the event. The respective contributions, which
address both fundamental and applied aspects of turbulence, have
been structured according to the following main topics: I TheoryII
Wall-bounded flowsIII Simulations and modellingIV ExperimentsV
Miscellaneous topicsVI Wind energy
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