Application of advanced thermodynamics, thermoeconomics and exergy costing to a Multiple Effect Distillation plant: In-depth analysis of cost formation process

被引:61
作者
Piacentino, Antonio [1 ]
机构
[1] Univ Palermo, Dpt Energy ICT & Math Models, I-90128 Palermo, Italy
关键词
Exergy costing; Thermoeconomics; Multiple effect evaporation; Cost formation process; Chemical exergy; Thermal exergy; SEAWATER DESALINATION PLANTS; GAS-TURBINE; ENERGY; SYSTEM; MODEL; SIMULATION; ALLOCATION; DIAGNOSIS; DESIGN; SOLAR;
D O I
10.1016/j.desal.2015.06.008
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The high thermal energy consumption per m(3) fresh water is one of the main barriers to the spread of thermally driven desalination processes and has limited their use to applications in countries with high reserves of fossil fuels or to specific technological solutions like dual purpose cogeneration plants and solar desalination systems. Being energy conversion efficiency a major issue to improve the performance of thermally driven desalination plants, thermoeconomic analysis has been attracting the efforts of researchers for the identification of margins for process improvement. In this paper a rigorous exergy and thermoeconomic analysis is presented for an 8 effect forward feed Multiple Effect Distillation plant, based on models developed in Engineering Equation Solver. The innovative contribution lies in the detailed methodological formulation with explicative notes on the main assumptions and in the high level of disaggregation used, which allows us to follow each specific subprocess and thus to acquire an in-depth understanding of the whole cost formation process. The results indicate that the monetary value associated with the physical and chemical exergy flows highly vary throughout the plant and that the contribution to the final cost of fresh water is higher for the distillate produced in the last effects. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:88 / 103
页数:16
相关论文
共 34 条
[1]   Allocation of waste cost in thermoeconomic analysis [J].
Agudelo, Andres ;
Valero, Antonio ;
Torres, Cesar .
ENERGY, 2012, 45 (01) :634-643
[2]   Development of a steady-state mathematical model for MEE-TVC desalination plants [J].
Al-Mutaz, Ibrahim S. ;
Wazeer, Irfan .
DESALINATION, 2014, 351 :9-18
[3]   Developments in thermal desalination processes: Design, energy, and costing aspects [J].
Al-Sahali, Mohammad ;
Ettouney, Hisham .
DESALINATION, 2007, 214 (1-3) :227-240
[4]   Seawater desalination in Saudi Arabia: economic review and demand projections [J].
Al-Sahlawi, MA .
DESALINATION, 1999, 123 (2-3) :143-147
[5]  
Bejan A, 1995, THERMAL DESIGN OPTIM
[6]   A novel renewable polygeneration system for a small Mediterranean volcanic island for the combined production of energy and water: Dynamic simulation and economic assessment [J].
Calise, Francesco ;
Cipollina, Andrea ;
d'Accadia, Massimo Dentice ;
Piacentino, Antonio .
APPLIED ENERGY, 2014, 135 :675-693
[7]   A novel solar trigeneration system integrating PVT (photovoltaic/ thermal collectors) and SW (seawater) desalination: Dynamic simulation and economic assessment [J].
Calise, Francesco ;
d'Accadia, Massimo Dentice ;
Piacentino, Antonio .
ENERGY, 2014, 67 :129-148
[8]   Performance evaluation of CHP hybrid seawater desalination plants [J].
Cardona, E. ;
Placentino, A. ;
Marchese, F. .
DESALINATION, 2007, 205 (1-3) :1-14
[9]   Minimizing the total cost of multi effect evaporation systems for seawater desalination [J].
Druetta, Paula ;
Aguirre, Pio ;
Mussati, Sergio .
DESALINATION, 2014, 344 :431-445
[10]   The economic feasibility of small solar MED seawater desalination plants for remote arid areas [J].
El-Nashar, AM .
DESALINATION, 2001, 134 (1-3) :173-186