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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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54. Ehyaei M, Mozafari A: Energy, economic and environmental (3E) analysis of a micro gas turbine employed for on-site combined heat and power production. Energy and Buildings 2010, 42:259-264. 55. Ozgener O, Hepbasli A: Exergoeconomic analysis of a solar assisted ground-source heat pump greenhouse heating system. Applied Thermal Engineering 2005, 25:1459-1471. 56. Ozgener O, Hepbasli A, Ozgener L: A parametric study on the exergoeconomic assessment of a vertical ground-coupled (geothermal) heat pump system. Building and environment 2007, 42:1503-1509. 57. Dincer I: Environmental and sustainability aspects of hydrogen and fuel cell systems. International Journal of Energy Research 2007, 31:29-55. 58. Amrollahi Z, Ertesvåg IS, Bolland O: Thermodynamic analysis on post-combustion CO< sub> 2 capture of natural-gas-fired power plant. International Journal of Greenhouse Gas Control 2011, 5:422-426. 59. Petrakopoulou F, Boyano A, Cabrera M, Tsatsaronis G: Exergoeconomic and exergoenvironmental analyses of a combined cycle power plant with chemical looping technology. International Journal of Greenhouse Gas Control 2011, 5:475-482. 60. Sahoo P: Exergoeconomic analysis and optimization of a cogeneration system using evolutionary programming. Applied thermal engineering 2008, 28:1580-1588. 61. Sayyaadi H, Sabzaligol T: Exergoeconomic optimization of a 1000 MW light water reactor power generation system. International Journal of Energy Research 2009, 33:378-395. 62. Haseli Y, Dincer I, Naterer G: Optimum temperatures in a shell and tube condenser with respect to exergy. International Journal of Heat and Mass Transfer 2008, 51:2462-2470. 63. Sayyaadi H, Nejatolahi M: Multi-objective optimization of a cooling tower assisted vapor compression refrigeration system. International Journal of Refrigeration 2011, 34:243- 256. 64. Ahmadi P, Dincer I, Rosen MA: Exergy, exergoeconomic and environmental analyses and evolutionary algorithm based multi-objective optimization of combined cycle power plants. Energy 2011, 36:5886-5898. 65. Sayyaadi H, Babaelahi M: Multi-objective optimization of a joule cycle for re- liquefaction of the Liquefied Natural Gas. Applied Energy 2011, 88:3012-3021. 66. Ghaebi H, Saidi M, Ahmadi P: Exergoeconomic optimization of a trigeneration system for heating, cooling and power production purpose based on TRR method and using evolutionary algorithm. Applied Thermal Engineering 2012, 36:113-125. 67. Kavvadias K, Maroulis Z: Multi-objective optimization of a trigeneration plant. Energy Policy 2010, 38:945-954. 68. Al-Sulaiman FA, Dincer I, Hamdullahpur F: Thermoeconomic optimization of three trigeneration systems using organic Rankine cycles: Part I–Formulations. Energy Conversion and Management 2013. 69. Wang J, Yan Z, Wang M, Li M, Dai Y: Multi-objective optimization of an organic Rankine cycle (ORC) for low grade waste heat recovery using evolutionary algorithm. Energy Conversion and Management 2013, 71:146-158. 70. Shirazi A, Aminyavari M, Najafi B, Rinaldi F, Razaghi M: Thermal–economic– environmental analysis and multi-objective optimization of an internal-reforming solid oxide fuel cell–gas turbine hybrid system. International Journal of Hydrogen Energy 2012. 225

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