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Author's personal copy international journal of hydrogen energy 38 (2013) 1795e1805 1805 references [1] Tchanche BF, Lambrinos GR, 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;15:3963e79. [2] Faizal M, Rafiuddin Ahmed M. On the ocean heat budget and ocean thermal energy conversion. International Journal of Energy Research 2011;35:1119e44. [3] Meegahapola L, Udawatta L, Witharana S. The ocean thermal energy conversion strategies and analysis of current challenges. In: Proceeding of second international conference on industrial and information systems (ICIIS 2007), Sri Lanka; 2007. [4] Esteban M, Leary D. Current developments and future prospects of offshore wind and ocean energy. Applied Energy 2012;90:128e36. [5] Uehara H, Nakaoka T. OTEC using plate-type heat exchanger (using ammonia as working fluid). Transactions of JSME 1984;50(453):1325e33. 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[12] Uehara H, Ikegami Y, Parametric performance analysis of OTEC using Kalina cycle. ASME joint solar engineering conference; 1993. p. 203e7. [13] Uehara U, Ikegami Y, Nishida T. Performance analysis of OTEC system using a cycle with absorption and extraction processes. Transactions of JSME 1998;64(624):384e9. [14] Rabas TJ, Panchal CB, Stevens HC. Integration and optimization of the gas removal system for hybrid-cycle OTEC power plants. Journal of Solar Energy Engineering 1990; 112:19e28. [15] Kazim A. Hydrogen production through an ocean thermal energy conversion system operating at an optimum temperature drop. Applied Thermal Engineering 2005;25: 2236e46. [16] Ikegamia Y, Sasakib H, Goudab T, Uehara H. Experimental study on a spray flash desalination. Desalination 2006;194: 81e9. [17] Rosen MA, Dincer I. On exergy and environmental impact. International Journal of Energy Research 1997;21:643e54. [18] Kanoglu M, Dincer I, Rosen MA. 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Thermal design and optimization. New York: Wiley; 1996. [32] Ahmadi P, Rosen MA, Dincer I. Multi-objective exergy-based optimization of a polygeneration energy system using an evolutionary algorithm. Energy 2012;46:21e31. [33] Ahmadi P, Rosen MA, Dincer I. Greenhouse gas emission and exergo-environmental analyses of a trigeneration energy system. International Journal of Greenhouse Gas Control 2011;5:1540e9. [34] Nag PK, Gupta A. Exergy analysis of the Kalina cycle. Applied Thermal Engineering 1998;18(6):427e39. [35] Wang JF, Dai YP, Gao L. Exergy analyses and parametric optimizations for different cogeneration power plants in cement industry. Applied Thermal Engineering 2009;86(6): 941e8. [36] Ioroi T, Yasuda K, Siroma Z, Fujiwara N, Miyazaki Y. Thin film electrocatalyst layer for utilized regenerative polymer electrolyte fuel cells. Journal of Power Sources 2002;112(2): 583e7. [37] Millet P, Andolfatto F, Durand R. 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