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Residue Cost Formation of a High Bypass Turbofan Engine

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Residue Cost Formation of a High Bypass Turbofan Engine ( residue-cost-formation-high-bypass-turbofan-engine )

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Appl. Sci. 2020, 10, 9060 24 of 25 14. Seyyedi, S.; Ajam, H.; Farahat, S. A new approach for optimization of thermal power plant based on the exergoeconomic analysis and structural optimization method: Application to the CGAM problem. Energy Convers. Manag. 2010, 51, 2202–2211. [CrossRef] 15. Agudelo, A.; Valero, A.; Torres, C. Allocation of waste cost in thermoeconomic analysis. Energy 2012, 45, 634–643. [CrossRef] 16. Lugo-Méndez, H.D.; Torres-González, E.V.; Castro-Hernández, S.; Salazar-Pereyra, M.; López-Arenas, T.; Lugo-Leyte, R. An Irreversibility-Based Criterion to Determine the Cost Formation of Residues in a Three-Pressure-Level Combined Cycle. Entropy 2020, 22, 299. 17. Torres, C.; Valero, A. Curso de doctorado (termoeconomía); Departamento de Ingeniería Mecánica, Universidad de Zaragoza: Zaragoza, Spain, 2000. 18. Picallo, A.; Escudero, C.; Flores, I.; Sala, J. Symbolic thermoeconomics in building energy supply systems. Energy Build. 2016, 127, 561–570. [CrossRef] 19. Torres, C.; Valero, A.; Serra, L.; Royo, J. Structural theory and thermoeconomic diagnosis: Part I. On malfunction and dysfunction analysis. Energy Convers. Manag. 2002, 43, 1503–1518. [CrossRef] 20. Sala, L.; Picallo, A. Operational diagnosis of thermal installations in buildings. In Exergy Analysis and Thermoeconomics of Buildings; Butterworth-Heinemann: Oxford, UK, 2020; pp. 721–788. [CrossRef] 21. Mattingly, J.D. Elements of Propulsion: Gas Turbines and Rockets; American Institute of Aeronautics and Astronautics: Reston, VA, USA, 2006. 22. Turan, O. An exergy way to quantify sustainability metrics for a high bypass turbofan engine. Energy 2015, 86, 722–736. [CrossRef] 23. Szargut, J. International progress in second law analysis. Energy 1980, 5, 709–718. [CrossRef] 24. Pal, R. Chemical exergy of ideal and non-ideal gas mixtures and liquid solutions with applications. Int. J. Mech. Eng. Educ. 2019, 47, 44–72. [CrossRef] 25. Turan, Ö. Mach number effect on the thermodynamic efficiencies of a turbojet engines: An UAV application. Ömer Halisdemir Üniversitesi Mühendislik Bilimleri Dergisi 2018, 7, 848–863. 26. McGovern, J. Exergy analysis? A different perspective on energy part 1: The concept of exergy. Proc. Inst. Mech. Eng. Part A J. Power Energy 1990, 204, 253–262. [CrossRef] 27. Valero, A.; Usón, S.; Torres, C.; Valero, A. Application of thermoeconomics to industrial ecology. Entropy 2010, 12, 591–612. [CrossRef] 28. Keshavarzian, S.; Gardumi, F.; Rocco, M.; Colombo, E. Off-Design modeling of natural gas combined cycle power plants: An order reduction by means of thermoeconomic input–output analysis. Entropy 2016, 18, 71. [CrossRef] 29. Piacentino, A. Application of advanced thermodynamics, thermoeconomics and exergy costing to a Multiple Effect Distillation plant: In-depth analysis of cost formation process. Desalination 2015, 371, 88–103. [CrossRef] 30. Usón, S.; Valero, A.; Agudelo, A. Thermoeconomics and industrial symbiosis. Effect of by-product integration in cost assessment. Energy 2012, 45, 43–51. [CrossRef] 31. Villalón, J.; Torrent, J.; Aragón, E. Termoeconomía y Optimización Energética; Fundación Gómez Pardo: Madrid, Spain, 2009. 32. Frangopoulos, C.A. Thermo-economic functional analysis and optimization. Energy 1987, 12, 563–571. [CrossRef] 33. Lozano, M.; Valero, A. Thermoeconomic analysis of gas turbine cogeneration systems. In Proceedings of the 1993 ASME Winter Annual Meeting, New Orleans, LA, USA, 28 November–3 December 1993; pp. 311–320. [CrossRef] 34. Stanek, W. (Ed.) Thermodynamics for Sustainable Management of Natural Resources; Springer: Berlin/Heidelberg, Germany, 2017. 35. Dogonchi, A.; Seyyedi, S. Two New Alternative Options for Residues Cost Distribution Ratio. J. Appl. Dyn. Syst. Control 2018, 1, 28–36. 36. Hernández, V.; Capilla, A.; Carlos, L.; Uson, C. Thermoeconomic Diagnosis of Large Industrial Boilers: Microscopic Representation of the Exergy Cost Theory. Ph.D. Thesis, Department of Mechanical Engineering, University of Zaragoza, Zaragoza, Spain, 2005.

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