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Large-scale nonlinear programming using IPOPT: An integrating framework for enterprise-wide dynamic optimization

delete2009-03-01
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Lorenz T. Biegler *
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Ví­ctor M. Zavala
DOI:10.1016/j.compchemeng.2008.08.006delete
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Abstract

Abstract

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Integration of real-time optimization and control with higher level decision-making (scheduling and planning) is an essential goal for profitable operation in a highly competitive environment. While integrated large-scale optimization models have been formulated for this task, their size and complexity remains a challenge to many available optimization solvers. On the other hand, recent development of powerful, large-scale solvers leads to a reconsideration of these formulations, in particular, through development of efficient large-scale barrier methods for nonlinear programming (NLP). As a result, it is now realistic to solve NLPs on the order of a million variables, for instance, with the IPOPT algorithm. Moreover, the recent NLP sensitivity extension to IPOPT quickly computes approximate solutions of perturbed NLPs. This allows on-line computations to be drastically reduced, even when large nonlinear optimization models are considered. These developments are demonstrated on dynamic real-time optimization strategies that can be used to merge and replace the tasks of (steady-state) real-time optimization and (linear) model predictive control. We consider a recent case study of a low density polyethylene (LDPE) process to illustrate these concepts. (C) 2008 Elsevier Ltd. All rights reserved.
Keywords:
Real-time optimization
Model predictive control
Moving horizon estimation
Nonlinear programming
Sensitivity
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Computers and Chemical Engineering
IF:
3.9
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Carnegie Mellon University
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Papers: 1.4W
Citations: 2.7W
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