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The first edition of Quantitative Feedback Theory gained enormous
popularity by successfully bridging the gap between theory and
real-world engineering practice. Avoiding mathematical theorems,
lemmas, proofs, and correlaries, it boiled down to the essential
elements of quantitative feedback theory (QFT) necessary to readily
analyze, develop, and implement robust control systems. Thoroughly
updated and expanded, Quantitative Feedback Theory: Fundamentals
and Applications, Second Edition continues to provide a platform
for intelligent decision making and design based on knowledge of
the characteristics and operating scenario of the plant. Beginning
with the fundamentals, the authors build a background in analog and
discrete-time multiple-input-single-output (MISO) and
multiple-input-multiple-output (MIMO) feedback control systems
along with the fundamentals of the QFT technique. The remainder of
the book links these concepts to practical applications. Among the
many enhancements to this edition are a new section on large wind
turbine control system, four new chapters, and five new appendices.
The new chapters cover non-diagonal compensator design for MIMO
systems, QFT design involving Smith predictors for time delay
systems with uncertainty, weighting matrices and control authority,
and QFT design techniques applied to real-world industrial systems.
Quantitative Feedback Theory: Fundamentals and Applications, Second
Edition includes new and revised examples and end-of-chapter
problems and offers a companion CD that supplies MIMO QFT
computer-aided design (CAD) software. It is the perfect guide to
effectively and intuitively implementing QFT control.
This book thoroughly covers the fundamentals of the QFT robust
control, as well as practical control solutions, for unstable,
time-delay, non-minimum phase or distributed parameter systems,
plants with large model uncertainty, high-performance
specifications, nonlinear components, multi-input multi-output
characteristics or asymmetric topologies. The reader will discover
practical applications through a collection of fifty successful,
real world case studies and projects, in which the author has been
involved during the last twenty-five years, including commercial
wind turbines, wastewater treatment plants, power systems,
satellites with flexible appendages, spacecraft, large radio
telescopes, and industrial manufacturing systems. Furthermore, the
book presents problems and projects with the popular QFT Control
Toolbox (QFTCT) for MATLAB, which was developed by the author.
Presenting the latest developments in the field, Wind Energy
Systems: Control Engineering Design offers a novel take on advanced
control engineering design techniques for wind turbine
applications. The book introduces concurrent quantitative
engineering techniques for the design of highly efficient and
reliable controllers, which can be used to solve the most critical
problems of multi-megawatt wind energy systems. This book is based
on the authors' experience during the last two decades designing
commercial multi-megawatt wind turbines and control systems for
industry leaders, including NASA and the European Space Agency.
This work is their response to the urgent need for a truly reliable
concurrent engineering methodology for the design of advanced
control systems. Outlining a roadmap for such a coordinated
architecture, the authors consider the links between all aspects of
a multi-megawatt wind energy project, in which the wind turbine and
the control system must be cooperatively designed to achieve an
optimized, reliable, and successful system. Look inside for
information about the QFT Control Toolbox for Matlab, the software
developed by the author to facilitate the QFT robust control design
(see also the link at codypower.com). The textbook's big-picture
insights can help students and practicing engineers control and
optimize a wind energy system, in which large, flexible,
aerodynamic structures are connected to a demanding variable
electrical grid and work automatically under very turbulent and
unpredictable environmental conditions. The book covers topics
including robust QFT control, aerodynamics, mechanical and
electrical dynamic modeling, economics, reliability, and
efficiency. It also addresses standards, certification,
implementation, grid integration, and power quality, as well as
environmental and maintenance issues.To reinforce understanding,
the authors present real examples of experimentation with
commercial multi-megawatt direct-drive wind turbines, as well as
on-shore, offshore, floating, and airborne wind turbine
applications. They also offer a unique in-depth exploration of the
quantitative feedback theory (QFT)-a proven, successful robust
control technique for real-world applications-as well as advanced
switching control techniques that help engineers exceed classical
linear limitations.
The first edition of Quantitative Feedback Theory gained enormous
popularity by successfully bridging the gap between theory and
real-world engineering practice. Avoiding mathematical theorems,
lemmas, proofs, and correlaries, it boiled down to the essential
elements of quantitative feedback theory (QFT) necessary to readily
analyze, develop, and implement robust control systems. Thoroughly
updated and expanded, Quantitative Feedback Theory: Fundamentals
and Applications, Second Edition continues to provide a platform
for intelligent decision making and design based on knowledge of
the characteristics and operating scenario of the plant. Beginning
with the fundamentals, the authors build a background in analog and
discrete-time multiple-input-single-output (MISO) and
multiple-input-multiple-output (MIMO) feedback control systems
along with the fundamentals of the QFT technique. The remainder of
the book links these concepts to practical applications. Among the
many enhancements to this edition are a new section on large wind
turbine control system, four new chapters, and five new appendices.
The new chapters cover non-diagonal compensator design for MIMO
systems, QFT design involving Smith predictors for time delay
systems with uncertainty, weighting matrices and control authority,
and QFT design techniques applied to real-world industrial systems.
Quantitative Feedback Theory: Fundamentals and Applications, Second
Edition includes new and revised examples and end-of-chapter
problems and offers a companion CD that supplies MIMO QFT
computer-aided design (CAD) software. It is the perfect guide to
effectively and intuitively implementing QFT control.
This book thoroughly covers the fundamentals of the QFT robust
control, as well as practical control solutions, for unstable,
time-delay, non-minimum phase or distributed parameter systems,
plants with large model uncertainty, high-performance
specifications, nonlinear components, multi-input multi-output
characteristics or asymmetric topologies. The reader will discover
practical applications through a collection of fifty successful,
real world case studies and projects, in which the author has been
involved during the last twenty-five years, including commercial
wind turbines, wastewater treatment plants, power systems,
satellites with flexible appendages, spacecraft, large radio
telescopes, and industrial manufacturing systems. Furthermore, the
book presents problems and projects with the popular QFT Control
Toolbox (QFTCT) for MATLAB, which was developed by the author.
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