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Simultaneous deterministic global flowsheet optimization and heat integration: Comparison of formulations

Computers & Chemical Engineering, vol. 162, pp. 107790

Abstract

Heat integration can be considered in flowsheet optimization by including the minimum utility demand from pinch analysis in the objective and constraints. This often results in better process performance than conducting these steps separately. However, it comes with increased computational cost, especially for global optimization. This cost depends both on the problem formulation and on the solver. In this work, we compare several existing and new smooth, nonsmooth, and mixed-integer formulations. Furthermore, we test different choices of optimization variables and constraints reaching from full- to reduced-space formulations. In the reduced-space formulations, heat integration can be included with few, one, or even zero additional variables beyond the pure flowsheet optimization problem. For the considered case studies, this can significantly reduce the solution time of various global solvers, in particular for our open-source solver MAiNGO. Depending on the case study and solver, either nonsmooth or mixed-integer formulations are the fastest to solve.

Authors 3

  1. Technical University of Munich

    Affiliation as printed

    Chair of Plant and Process Technology, Technical University of Munich, Boltzmannstr. 15, Garching 85748, Germany

  2. RWTH Aachen University · Forschungszentrum Jülich · Jülich Aachen Research Alliance

    Affiliation as printed

    Institute of Energy and Climate Research: Energy Systems Engineering (IEK-10), Forschungszentrum Jülich GmbH, Jülich 52425, Germany

    JARA-CSD, Aachen 52056, Germany

    Process Systems Engineering (AVT.SVT), RWTH Aachen University, Forckenbeckstraße 51, Aachen 52074, Germany

  3. RWTH Aachen University

    Affiliation as printed

    Process Systems Engineering (AVT.SVT), RWTH Aachen University, Forckenbeckstraße 51, Aachen 52074, Germany

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References 40