TY - GEN
T1 - MINLP Model for the synthesis of heat exchanger networks with handling pressure of process streams
AU - Onishi, Viviani C.
AU - Ravagnani, Mauro A. S. S.
AU - Caballero, José A.
PY - 2014
Y1 - 2014
N2 - This paper introduces a new mathematical model for the simultaneous synthesis of heat exchanger networks (HENs), wherein the handling pressure of process streams is used to enhance the heat integration. The proposed approach combines generalized disjunctive programming (GDP) and mixed-integer nonlinear programming (MINLP) formulation, in order to minimize the total annualized cost composed by operational and capital expenses. A multi-stage superstructure is developed for the HEN synthesis, assuming constant heat capacity flow rates and isothermal mixing, and allowing for streams splits. In this model, the pressure and temperature of streams must be treated as optimization variables, increasing further the complexity and difficulty to solve the problem. In addition, the model allows for coupling of compressors and turbines to save energy. A case study is performed to verify the accuracy of the proposed model. In this example, the optimal integration between the heat and work decreases the need for thermal utilities in the HEN design. As a result, the total annualized cost is also reduced due to the decrease in the operational expenses related to the heating and cooling of the streams.
AB - This paper introduces a new mathematical model for the simultaneous synthesis of heat exchanger networks (HENs), wherein the handling pressure of process streams is used to enhance the heat integration. The proposed approach combines generalized disjunctive programming (GDP) and mixed-integer nonlinear programming (MINLP) formulation, in order to minimize the total annualized cost composed by operational and capital expenses. A multi-stage superstructure is developed for the HEN synthesis, assuming constant heat capacity flow rates and isothermal mixing, and allowing for streams splits. In this model, the pressure and temperature of streams must be treated as optimization variables, increasing further the complexity and difficulty to solve the problem. In addition, the model allows for coupling of compressors and turbines to save energy. A case study is performed to verify the accuracy of the proposed model. In this example, the optimal integration between the heat and work decreases the need for thermal utilities in the HEN design. As a result, the total annualized cost is also reduced due to the decrease in the operational expenses related to the heating and cooling of the streams.
KW - Handling pressure
KW - Heat exchanger network (HEN)
KW - Heat integration
KW - Mixed-integer nonlinear programming (MINLP)
KW - Optimization
UR - https://www.scopus.com/pages/publications/84902988857
U2 - 10.1016/B978-0-444-63456-6.50028-4
DO - 10.1016/B978-0-444-63456-6.50028-4
M3 - Conference contribution
AN - SCOPUS:84902988857
SN - 9780444634566
T3 - Computer Aided Chemical Engineering
SP - 163
EP - 168
BT - 24th European Symposium on Computer Aided Process Engineering
PB - Elsevier B.V.
T2 - 24th European Symposium on Computer Aided Process Engineering 2014
Y2 - 16 June 2014 through 18 June 2014
ER -