Model Predictive Control

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Springer Science & Business Media, 10 ene 2013 - 405 páginas

From power plants to sugar refining, model predictive control (MPC) schemes have established themselves as the preferred control strategies for a wide variety of processes.

The second edition of Model Predictive Control provides a thorough introduction to theoretical and practical aspects of the most commonly used MPC strategies. It bridges the gap between the powerful but often abstract techniques of control researchers and the more empirical approach of practitioners. Model Predictive Control demonstrates that a powerful technique does not always require complex control algorithms.

The text features material on the following subjects:

• general MPC elements and algorithms;

• commercial MPC schemes;

• generalized predictive control

• multivariable, robust, constrained nonlinear and hybrid MPC;

• fast methods for MPC implementation;

• applications.

All of the material is thoroughly updated for the second edition with the chapters on nonlinear MPC, MPC and hybrid systems and MPC implementation being entirely new. Many new exercises and examples have also have also been added throughout and MATLAB® programs to aid in their solution can be downloaded from the authors' website. The text is an excellent aid for graduate and advanced undergraduate students and will also be of use to researchers and industrial practitioners wishing to keep abreast of a fast-moving field.

 

Índice

Model Predictive Controllers
13
Commercial Model Predictive Control Schemes
31
Generalized Predictive Control
47
Simple Implementation of GPC for Industrial Processes 81
80
Multivariable Model Predictive Control
127
Constrained Model Predictive Control
177
Robust Model Predictive Control
217
Nonlinear Model Predictive Control
249
A Revision of the Simplex Method
381
References
389
Index
401
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