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Energy Systems for Multigeneration Purposes

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Energy Systems for Multigeneration Purposes ( energy-systems-multigeneration-purposes )

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91. Barzegar Avval H, Ahmadi P, Ghaffarizadeh A, Saidi M: Thermo‐economic‐ environmental multiobjective optimization of a gas turbine power plant with preheater using evolutionary algorithm. International Journal of Energy Research 2011, 35:389- 403. 92. Gulder OL: Flame temperature estimation of conventional and future jet fuels. Journal of engineering for gas turbines and power 1986, 108:376-380. 93. Ghaffarizadeh A, Ahmadi K, Flann NS: Sorting unsigned permutations by reversals using multi-objective evolutionary algorithms with variable size individuals. In Evolutionary Computation (CEC), 2011 IEEE Congress on. IEEE; 2011: 292-295. 94. Goldberg DE: Genetic algorithms in search, optimization, and machine learning. 1989. 95. Schaffer JD: Multiple objective optimization with vector evaluated genetic algorithms. In Proceedings of the 1st international Conference on Genetic Algorithms. L. Erlbaum Associates Inc.; 1985: 93-100. 96. Farshi LG, Mahmoudi SS, Rosen MA, Yari M: Use of low grade heat sources in combined ejector–double effect absorption refrigeration systems. Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy 2012, 226:607-622. 97. Palacios‐Bereche R, Gonzales R, Nebra SA: Exergy calculation of lithium bromide– water solution and its application in the exergetic evaluation of absorption refrigeration systems LiBr‐H2O. International Journal of Energy Research 2012, 36:166-181. 98. Wang J, Dai Y, Sun Z: A theoretical study on a novel combined power and ejector refrigeration cycle. International Journal of Refrigeration 2009, 32:1186-1194. 99. Ahmadi P, Dincer I, Rosen MA: Energy and exergy analyses of hydrogen production via solar-boosted ocean thermal energy conversion and PEM electrolysis. International Journal of Hydrogen Energy 2012. 100. Ni M, Leung MK, Leung DY: Energy and exergy analysis of hydrogen production by a proton exchange membrane (PEM) electrolyzer plant. Energy conversion and management 2008, 49:2748-2756. 101. Kotas TJ: The exergy method of thermal plant analysis. 1985. 102. Roosen P, Uhlenbruck S, Lucas K: Pareto optimization of a combined cycle power system as a decision support tool for trading off investment vs. operating costs. International Journal of Thermal Sciences 2003, 42:553-560. 103. Peters MS, Timmerhaus KD, West RE, Timmerhaus K, West R: Plant design and economics for chemical engineers. McGraw-Hill New York; 1968. 104. Mabrouk AA, Nafey A, Fath H: Thermoeconomic analysis of some existing desalination processes. Desalination 2007, 205:354-373. 105. Genç G, Çelik M, Serdar Genç M: Cost analysis of wind-electrolyzer-fuel cell system for energy demand in Pınarbaşı-Kayseri. International Journal of Hydrogen Energy 2012. 106. Basu P: Combustion and gasification in fluidized beds. CRC press; 2006. 107. Salcedo R, Antipova E, Boer D, Jiménez L, Guillén-Gosálbez G: Multi-objective optimization of solar Rankine cycles coupled with reverse osmosis desalination considering economic and life cycle environmental concerns. Desalination 2012, 286:358-371. 108. Bruno JC, Lopez-Villada J, Letelier E, Romera S, Coronas A: Modelling and optimisation of solar organic rankine cycle engines for reverse osmosis desalination. Applied Thermal Engineering 2008, 28:2212-2226. 227

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