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This book is a simple and didactic account of the developments and
practical applications of predictive, adaptive predictive, and
optimized adaptive control from a perspective of stability,
including the latest methodology of adaptive predictive expert
(ADEX) control. ADEX Optimized Adaptive Control Systems is divided
into six parts, with exercises and real-time simulations provided
for the reader as appropriate. The text begins with the conceptual
and intuitive knowledge of the technology and derives the stability
conditions to be verified by the driver block and the adaptive
mechanism of the optimized adaptive controller to guaranty the
desired control performance. The second and third parts present
strategic considerations of predictive control and related adaptive
systems necessary for the proper design of driver block and
adaptive mechanism and thence their technical realization. The
authors then proceed to detail the stability theory that supports
predictive, adaptive predictive and optimized adaptive control
methodologies. Benchmark applications of these methodologies
(distillation column and pulp-factory bleaching plant) are treated
next with a focus on practical implementation issues. The final
part of the book describes ADEX platforms and illustrates their use
in the design and implementation of optimized adaptive control
systems to three different challenging-to-control industrial
processes: * waste-water treatment;* sulfur recovery; and*
temperature control of superheated steam in coal-fired power
generation. The presentation is completed by a number of appendices
containing technical background associated with the main text
including a manual for the ADEX COP platform developed by the first
author to exploit the capabilities of adaptive predictive control
in real plants. ADEX Optimized Adaptive Control Systems provides
practicing process control engineers with a multivariable optimal
control solution which is adaptive and resistant to perturbation
and the effects of noise. Its pedagogical features also facilitate
its use as a teaching tool for formal university and Internet-based
open-education-type graduate courses in practical optimal adaptive
control and for self-study.
Structural health monitoring is an exciting new field on the
frontier of applied engineering. With the purpose of examining the
health of standing buildings, aircrafts, and other complex
structures using pre-installed sensors that provide stress and
pressure data in real-time, this field allows structural-health
experts to act as engineering "doctors." These specialists diagnose
potential problems in advance using complex algorithms and
statistical modeling so that steps may be taken to prevent
structural damage-or worse, loss of life. Emerging Design Solutions
in Structural Health Monitoring Systems seeks to advance
cutting-edge research in the field, with a special focus on
cross-disciplinary work involving recent advances in IT. This
research has enabled structural-health experts to wield
groundbreaking new models of artificial intelligence as a
diagnostic tool capable of identifying future problems before they
even appear. This publication serves as a broad overview of
structural management science, as well as an on-ramp for a general
engineering audience, including students, educators, and
researchers.
This book is a simple and didactic account of the developments and
practical applications of predictive, adaptive predictive, and
optimized adaptive control from a perspective of stability,
including the latest methodology of adaptive predictive expert
(ADEX) control. ADEX Optimized Adaptive Control Systems is divided
into six parts, with exercises and real-time simulations provided
for the reader as appropriate. The text begins with the conceptual
and intuitive knowledge of the technology and derives the stability
conditions to be verified by the driver block and the adaptive
mechanism of the optimized adaptive controller to guaranty the
desired control performance. The second and third parts present
strategic considerations of predictive control and related adaptive
systems necessary for the proper design of driver block and
adaptive mechanism and thence their technical realization. The
authors then proceed to detail the stability theory that supports
predictive, adaptive predictive and optimized adaptive control
methodologies. Benchmark applications of these methodologies
(distillation column and pulp-factory bleaching plant) are treated
next with a focus on practical implementation issues. The final
part of the book describes ADEX platforms and illustrates their use
in the design and implementation of optimized adaptive control
systems to three different challenging-to-control industrial
processes: waste-water treatment; sulfur recovery; and temperature
control of superheated steam in coal-fired power generation. The
presentation is completed by a number of appendices containing
technical background associated with the main text including a
manual for the ADEX COP platform developed by the first author to
exploit the capabilities of adaptive predictive control in real
plants. ADEX Optimized Adaptive Control Systems provides practicing
process control engineers with a multivariable optimal control
solution which is adaptive and resistant to perturbation and the
effects of noise. Its pedagogical features also facilitate its use
as a teaching tool for formal university and Internet-based
open-education-type graduate courses in practical optimal adaptive
control and for self-study.
Smart (intelligent) structures have been the focus of a great deal
of recent research interest. In this book, leading researchers
report the state of the art and discuss new ideas, results and
trends in 43 contributions, covering fundamental research issues,
the role of intelligent monitoring in structural identification and
damage assessment, the potential of automatic control systems in
achieving a desired structural behaviour, and a number of practical
issues in the analysis and design of smart structures in mechanical
and civil engineering applications. Audience: A multidisciplinary
reference for materials scientists and engineers in such areas as
mechanical, civil, aeronautical, electrical, control, and computer
engineering.
This book is a simple and didactic account of the developments and
practical applications of predictive, adaptive predictive, and
optimized adaptive control from a perspective of stability,
including the latest methodology of adaptive predictive expert
(ADEX) control. ADEX Optimized Adaptive Control Systems is divided
into six parts, with exercises and real-time simulations provided
for the reader as appropriate. The text begins with the conceptual
and intuitive knowledge of the technology and derives the stability
conditions to be verified by the driver block and the adaptive
mechanism of the optimized adaptive controller to guaranty the
desired control performance. The second and third parts present
strategic considerations of predictive control and related adaptive
systems necessary for the proper design of driver block and
adaptive mechanism and thence their technical realization. The
authors then proceed to detail the stability theory that supports
predictive, adaptive predictive and optimized adaptive control
methodologies. Benchmark applications of these methodologies
(distillation column and pulp-factory bleaching plant) are treated
next with a focus on practical implementation issues. The final
part of the book describes ADEX platforms and illustrates their use
in the design and implementation of optimized adaptive control
systems to three different challenging-to-control industrial
processes: waste-water treatment; sulfur recovery; and temperature
control of superheated steam in coal-fired power generation. The
presentation is completed by a number of appendices containing
technical background associated with the main text including a
manual for the ADEX COP platform developed by the first author to
exploit the capabilities of adaptive predictive control in real
plants. ADEX Optimized Adaptive Control Systems provides practicing
process control engineers with a multivariable optimal control
solution which is adaptive and resistant to perturbation and the
effects of noise. Its pedagogical features also facilitate its use
as a teaching tool for formal university and Internet-based
open-education-type graduate courses in practical optimal adaptive
control and for self-study.
Smart (intelligent) structures have been the focus of a great deal
of recent research interest. In this book, leading researchers
report the state of the art and discuss new ideas, results and
trends in 43 contributions, covering fundamental research issues,
the role of intelligent monitoring in structural identification and
damage assessment, the potential of automatic control systems in
achieving a desired structural behaviour, and a number of practical
issues in the analysis and design of smart structures in mechanical
and civil engineering applications. Audience: A multidisciplinary
reference for materials scientists and engineers in such areas as
mechanical, civil, aeronautical, electrical, control, and computer
engineering.
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