A systematic approach to the synthesis and design of flexible site utility systems

被引:48
作者
Shang, ZG [1 ]
Kokossis, A
机构
[1] Cranfield Univ, Sch Engn, Dept Proc & Syst Engn, Cranfield MK43 0AL, Beds, England
[2] Univ Surrey, Dept Chem & Proc Engn, Surrey GU2 7XH, England
关键词
optimisation; modelling; process design; utility systems; thermodynamic analysis; operational variations;
D O I
10.1016/j.ces.2005.03.015
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The paper presents a systematic approach for the synthesis of flexible utility systems satisfying varying energy demands. The approach combines benefits of total site analysis, thermodynamic analysis and mathematical optimisation. A thermodynamic efficiency curve (TEC) is developed, which gives an overview of the maximum thermodynamic efficiencies of all possible design alternatives. TEC and hardware composites guide the selection of candidate structures in the superstructure, excluding uneconomic options from the synthesis model. The integration of thermodynamics yields significant reduction in the synthesis model, addresses the impact of variable loads on the unit efficiencies, and enables a compact formulation of the design problem over long horizons of operation. The optimisation is formulated as a multi-period MILP problem that relies on new target models to describe the performance of steam turbines, condensing turbines, gas turbines and boilers. Target models account for the variation of efficiency with unit size, load and operating conditions in a simple, yet accurate way. As a result, these models are capable of accounting for the efficiency trends of realistic units. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:4431 / 4451
页数:21
相关论文
共 18 条
[1]   A rigorous MINLP model for the optimal synthesis and operation of utility plants [J].
Bruno, JC ;
Fernandez, F ;
Castells, F ;
Grossmann, LE .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 1998, 76 (A3) :246-258
[2]   A THERMODYNAMIC APPROACH TO THE DESIGN AND SYNTHESIS OF PLANT UTILITY SYSTEMS [J].
CHOU, CC ;
SHIH, YS .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1987, 26 (06) :1100-1108
[3]  
CHURCH EF, 1950, STEAM TURBINES
[4]  
Cohen H., 1987, GAS TURBINE THEORY
[5]   TOTAL SITE TARGETS FOR FUEL, COGENERATION, EMISSIONS, AND COOLING [J].
DHOLE, VR ;
LINNHOFF, B .
COMPUTERS & CHEMICAL ENGINEERING, 1993, 17 :S101-S109
[6]  
Francisco APO, 2003, COMP AID CH, V14, P233
[7]   An industrial application using mixed-integer programming technique: A multi-period utility system model [J].
Hui, CW ;
Natori, Y .
COMPUTERS & CHEMICAL ENGINEERING, 1996, 20 :S1577-S1582
[8]   Synthesis and operational planning of utility systems for multiperiod operation [J].
Iyer, RR ;
Grossmann, IE .
COMPUTERS & CHEMICAL ENGINEERING, 1998, 22 (7-8) :979-993
[9]  
LINNHOFF B, 1981, CHEM ENG-NEW YORK, V88, P56
[10]   Synthesis of utility systems with variable demands using simulated annealing [J].
Maia, LOA ;
Qassim, RY .
COMPUTERS & CHEMICAL ENGINEERING, 1997, 21 (09) :947-950