2017 Annual Meeting
(188k) Optimal Operation of Heat Exchanger Networks through Heat Duty Redistribution Using Energy Flow Graphs
Author
In this talk, a hierarchical framework for optimal operation of HENs is presented. At the heart of the framework is a graphical representation of a HEN in which each of the exchangers (PPX as well as auxiliary heaters/coolers) are considered as nodes and energy flows connecting them constitute the edges. Similar representation has been previously used to reduce a maximum recovery network [2]. Elementary cycles (closed loops) are identified in these graphs and each loop is given an additional flexible load which allows for redistribution of heat duty across exchangers. One of the loop loads is related to the external utility and the optimization problem is set up for its minimization. The resulting problem is a constrained LP optimization which can be solved within few seconds. The output of the optimization (loop load values) are then converted into intermediate temperature setpoints and downloaded to the lower regulatory PID control layer. The graphical representation can incorporate feed disturbances as well as performance deterioration across a set of exchangers. The graphical representation allows scalability to large networks as the size of the optimization problem scales linearly with the number of exchangers. The effectiveness of the proposed scheme is demonstrated through closed loop simulations of a 4 stream, 8 exchanger HEN under various operating scenarios.
References:
[1] Furman, K.C. and Sahinidis, N.V. A critical review and annotated bibliography for heat exchanger network synthesis in the 20th century. Ind. Eng. Chem. Res., 41(10), 2335-2370, 2002.
[2] Mehta, R.K. and Devalkar, S.K. and Narasimhan, S. An optimization approach for evolutionary synthesis of heat exchanger networks. Trans. IChemE, 77A, 143-150.