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This book is based on the authors' research on the stabilization
and fault-tolerant control of batch processes, which are
flourishing topics in the field of control system engineering. It
introduces iterative learning control for linear/nonlinear
single/multi-phase batch processes; iterative learning optimal
guaranteed cost control; delay-dependent iterative learning
control; and iterative learning fault-tolerant control for
linear/nonlinear single/multi-phase batch processes. Providing
important insights and useful methods and practical algorithms that
can potentially be applied in batch process control and
optimization, it is a valuable resource for researchers,
scientists, and engineers in the field of process system
engineering and control engineering.
Industrial Process Identification and Control Design is devoted to
advanced identification and control methods for the operation of
continuous-time processes both with and without time delay, in
industrial and chemical engineering practice. The simple and
practical step- or relay-feedback test is employed when applying
the proposed identification techniques, which are classified in
terms of common industrial process type: open-loop stable;
integrating; and unstable, respectively. Correspondingly, control
system design and tuning models that follow are presented for
single-input-single-output processes. Furthermore, new
two-degree-of-freedom control strategies and cascade control system
design methods are explored with reference to
independently-improving, set-point tracking and load disturbance
rejection. Decoupling, multi-loop, and decentralized control
techniques for the operation of multiple-input-multiple-output
processes are also detailed. Perfect tracking of a desire output
trajectory is realized using iterative learning control in
uncertain industrial batch processes. All the proposed methods are
presented in an easy-to-follow style, illustrated by examples and
practical applications. This book will be valuable for researchers
in system identification and control theory, and will also be of
interest to graduate control students from process, chemical, and
electrical engineering backgrounds and to practising control
engineers in the process industry.
Industrial Process Identification and Control Design is devoted to
advanced identification and control methods for the operation of
continuous-time processes both with and without time delay, in
industrial and chemical engineering practice. The simple and
practical step- or relay-feedback test is employed when applying
the proposed identification techniques, which are classified in
terms of common industrial process type: open-loop stable;
integrating; and unstable, respectively. Correspondingly, control
system design and tuning models that follow are presented for
single-input-single-output processes. Furthermore, new
two-degree-of-freedom control strategies and cascade control system
design methods are explored with reference to
independently-improving, set-point tracking and load disturbance
rejection. Decoupling, multi-loop, and decentralized control
techniques for the operation of multiple-input-multiple-output
processes are also detailed. Perfect tracking of a desire output
trajectory is realized using iterative learning control in
uncertain industrial batch processes. All the proposed methods are
presented in an easy-to-follow style, illustrated by examples and
practical applications. This book will be valuable for researchers
in system identification and control theory, and will also be of
interest to graduate control students from process, chemical, and
electrical engineering backgrounds and to practising control
engineers in the process industry.
This two volume set contains papers which describe the recent
developments in advanced control of chemical processes and related
industries. New adaptive, statistical, model-based control and
artificial intelligence techniques and their applications are
detailed in several papers. The problem of implementation of
control algorithms on a digital computer is also considered.
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