Energy Systems for Multigeneration Purposes

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

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71. Hosseini M, Dincer I, Ahmadi P, Avval HB, Ziaasharhagh M: Thermodynamic modelling of an integrated solid oxide fuel cell and micro gas turbine system for desalination purposes. International Journal of Energy Research 2011. 72. Ratlamwala T, Gadalla M, Dincer I: Performance assessment of an integrated PV/T and triple effect cooling system for hydrogen and cooling production. International Journal of Hydrogen Energy 2011, 36:11282-11291. 73. Ratlamwala T, Dincer I, Gadalla M: Performance analysis of a novel integrated geothermal-based system for multi-generation applications. Applied Thermal Engineering 2012, 40:71-79. 74. Ozturk M, Dincer I: Thermodynamic analysis of a solar-based multi-generation system with hydrogen production. Applied Thermal Engineering 2012. 75. Ahmadi P, Dincer I, Rosen MA: Exergo-environmental analysis of an integrated organic Rankine cycle for trigeneration. Energy Conversion and Management 2012, 64:447-453. 76. Ahmadi P, Dincer I, Rosen MA: Development and assessment of an integrated biomass- based multi-generation energy system. Energy 2013. 77. Cohce M, Dincer I, Rosen M: Energy and exergy analyses of a biomass-based hydrogen production system. Bioresource technology 2011, 102:8466-8474. 78. Hughes EE, Tillman DA: Biomass cofiring: status and prospects 1996. Fuel processing technology 1998, 54:127-142. 79. Lian Z, Chua K, Chou S: A thermoeconomic analysis of biomass energy for trigeneration. Applied Energy 2010, 87:84-95. 80. Mujeebu M, Jayaraj S, Ashok S, Abdullah M, Khalil M: Feasibility study of cogeneration in a plywood industry with power export to grid. Applied Energy 2009, 86:657-662. 81. Tchanche BF, Lambrinos G, Frangoudakis A, Papadakis G: Low-grade heat conversion into power using organic Rankine cycles–A review of various applications. Renewable and Sustainable Energy Reviews 2011, 15:3963-3979. 82. Faizal M, Rafiuddin Ahmed M: On the ocean heat budget and ocean thermal energy conversion. International Journal of Energy Research 2011, 35:1119-1144. 83. Meegahapola L, Udawatta L, Witharana S: The Ocean Thermal Energy Conversion strategies and analysis of current challenges. In Industrial and Information Systems, 2007 ICIIS 2007 International Conference on. IEEE; 2007: 123-128. 84. Esteban M, Leary D: Current developments and future prospects of offshore wind and ocean energy. Applied Energy 2012, 90:128-136. 85. Uehara H, Nakaoka T: OTEC using plate-type heat exchanger (using ammonia as working fluid). Transactions of JSME 1984, 50:1325-1333. 86. Uehara H, Ikegami Y: Optimization of a closed-cycle OTEC system. Journal of Solar Energy Engineering;(USA) 1990, 112. 87. Uehara H, Miyara A, Ikegami Y, Nakaoka T: Performance analysis of an OTEC plant and a desalination plant using an integrated hybrid cycle. Journal of solar energy engineering 1996, 118. 88. Yamada N, Hoshi A, Ikegami Y: Performance simulation of solar-boosted ocean thermal energy conversion plant. Renewable Energy 2009, 34:1752-1758. 89. Cengel YA, Boles MA, Kanoğlu M: Thermodynamics: an engineering approach. McGraw-Hill New York; 2011. 90. Bejan A, Tsatsaronis G, Moran M: Thermal design and optimization. Wiley-Interscience; 1995. 226

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