Article ID Journal Published Year Pages File Type
242831 Applied Energy 2014 18 Pages PDF
Abstract

•A hybrid modular–equation based approach for complex process using different robust models.•We can deal with models with different numerical behavior in a unified framework.•The methodology is applied to the synthesis of a utility system power plant.•Different instances of a case study are presented to illustrate their capabilities.

With advances in the synthesis and design of chemical processes there is an increasing need for more complex mathematical models with which to screen the alternatives that constitute accurate and reliable process models. Despite the wide availability of sophisticated tools for simulation, optimization and synthesis of chemical processes, the user is frequently interested in using the ‘best available model’. However, in practice, these models are usually little more than a black box with a rigid input–output structure. In this paper we propose to tackle all these models using generalized disjunctive programming to capture the numerical characteristics of each model (in equation form, modular, noisy, etc.) and to deal with each of them according to their individual characteristics. The result is a hybrid modular–equation based approach that allows synthesizing complex processes using different models in a robust and reliable way. The capabilities of the proposed approach are discussed with a case study: the design of a utility system power plant that has been decomposed into its constitutive elements, each treated differently numerically. And finally, numerical results and conclusions are presented.

Related Topics
Physical Sciences and Engineering Energy Energy Engineering and Power Technology
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