References
[1]. Ahmadi, P., Dincer, I., & Rosen, M. A. (2011). Exergy,
exergoeconomic and environmental analyses and
evolutionary algorithm based multi-objective optimization
of combined cycle power plants. Energy, 36(10), 5886-
5898. https://doi.org/10.1016/j.energy.2011.08.034
[2]. Ahmadi, P., Dincer, I., & Rosen, M. A. (2012). Exergoenvironmental
analysis of an integrated organic Rankine
cycle for trigeneration. Energy Conversion and
Management, 64, 447-453. https://doi.org/10.1016/j.enc
onman.2012.06.001
[3]. Bejan, A., Tsatsaronis, G., & Moran, M. J. (1995).
Thermal design and optimization. John Wiley & Sons.
[4]. Elmzughi, M. F., Dekam, E. I., Radwan, E. M., & Bahoor,
M. A. (2020). Exergoeconomic and optimization analyses
of cogeneration steam power plants based on the
thermoeconomic approach. i-manager's Journal on
Future Engineering and Technology, 16(2), 22-31. https://
doi.org/10.26634/jfet.16.2.17706
[5]. Elmzughi, M. F., Radwan, E. M., Bahoor, M. A., &
Dekam, E. I. (2020). Part load 2nd law analyses of, 3-pressure
stage turbines with 6 heaters, 350 MW power plants. Journal
of Research in Mechanical Engineering, 6(1), 25-33.
[6]. El-Sayed, Y. M., & Gaggioli, R. A. (1989). A critical review
of second law costing methods—I: Background and
algebraic procedures. Journal of Energy Resources
Technology, 111(1), 1–7. https://doi.org/10.1115/1.3231396
[7]. Fudholi, A., Sopian, K., Othman, M. Y., Ruslan, M. H., &
Bakhtyar, B. (2013). Energy analysis and improvement
potential of finned double-pass solar collector. Energy
Conversion and Management, 75, 234-240. https://doi.
org/10.1016/j.enconman.2013.06.021
[8]. Huguet, J., Woodbury, K., & Taylor, R. (2008, June).
Development of excel add in modules for use in
thermodynamics curriculum: steam and ideal gas
properties. In 2008, Annual Conference & Exposition (pp.
13-431). https://doi.org/10.18260/1-2--4023
[9]. Lazzaretto, A., & Andreatta, R. (1995). Algebraic
formulation of a process-based exergy-costing method. In
Symposium on thermodynamics and the design, analysis,
and improvement of energy systems (Vol. 35, pp. 395-403).
New York: ASME.
[10]. Lozano, M. A., & Valero, A. (1993). Theory of the
exergetic cost. Energy, 18(9), 939-960. https://doi.org/10.
1016/0360-5442(93)90006-Y
[11]. Mahan, K., Huguet, J., Chappell, J., Woodbury, K., &
Taylor, R. (2009, June). Excel in ME: Extending and refining
ubiquitous software tools. In 2009, Annual Conference &
Exposition (pp. 1-21). https://doi.org/10.18260/1-2—5780
[12]. Manesh, M. K., Navid, P., Baghestani, M., Abadi, S. K.,
Rosen, M. A., Blanco, A. M., & Amidpour, M. (2014).
Exergoeconomic and exergoenvironmental evaluation of
the coupling of a gas fired steam power plant with a total
site utility system. Energy Conversion and Management,
77, 469-483. https://doi.org/10.1016/j.enconman.2013.
09.053
[13]. Radwan, E. M., Bahoor, M. A., Dekam, E. I., &
Elmzughi, M. F. (2020). Advanced exergoeconomic and
exergy cost sensitivity analyses of steam power plants.
International Journal of Scientific Engineering and Applied
Science, 6(8), 16-32.
[14]. Rashad, A., & El Maihy, A. (2009, May). Energy and
exergy analysis of a steam power plant in Egypt. In 13th
International Conference on Aerospace Sciences &
Aviation Technology (pp. 1-12).
[15]. Szargut, J., Morris, D. R., & Steward, F. R. (1987). Exergy
analysis of thermal, chemical, and metallurgical
processes. New York, USA: Hemisphere Publishing Co.
[16]. Tsatsaronis, G., & Winhold, M. (1985).
Exergoeconomic analysis and evaluation of energyconversion
plants—I: A new general methodology. Energy,
10(1), 69-80. https://doi.org/10.1016/0360-5442(85)90
020-9
[17]. Tsatsaronis, G. (1993). Thermoeconomic analysis and
optimization of energy systems. Progress in Energy and
Combustion Science, 19(3), 227–257. https://doi.org/10.
1016/0360-1285(93)90016-8
[18]. Uche, J., Serra, L., & Valero, A. (2001).
Thermoeconomic optimization of a dual-purpose power
and desalination plant. Desalination, 136(1-3), 147-158.
https://doi.org/10.1016/S0011-9164(01)00177-1
[19]. Xiong, J., Zhao, H., Zhang, C., Zheng, C., & Luh, P. B.
(2012). Thermoeconomic operation optimization of a
coal-fired power plant. Energy, 42(1), 486-496. https://doi.
org/10.1016/j.energy.2012.03.020