Thermodynamic Vapor Cycles for Converting Low- to Medium-grade Heat to Power: A State-of-the- art Review and Future Research Pathways

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Thermodynamic Vapor Cycles for Converting Low- to Medium-grade Heat to Power: A State-of-the- art Review and Future Research Pathways ( thermodynamic-vapor-cycles-converting-low--medium-grade-heat )

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Bahram Saadatfar, Reza Fakhrai and Torsten Fransson, JMES Vol 2 Issue 1 2014 [53] Zhang HG, Wang EH, Fan BY. A performance analysis of a novel system of a dual loop bottoming organic Rankine cycle (ORC) with a light-duty diesel engine. Appl Energy 2013;102:1504–13. [54] Yang K, Zhang H, Wang Z, Zhang J, Yang F, Wang E, et al. Study of zeotropic mixtures of ORC (organic Rankine cycle) under engine various operating conditions. Energy 2013;58:494–510. [55] Wu W, Zhao L, Ho T. Experimental investigation on pinch points and maximum temperature differences in a horizontal tube-in-tube evaporator using zeotropic refrigerants. Energy Convers Manag 2012;56:22–31. [56] Mulroy WJ, Domanski PA, Didion DA. Glide matching with binary and ternary zeotropic refrigerant mixtures Part 1. An experimental study. Int J Refrig 1994;17:220–5. [57] Carey VP. Liquid-Vapor Phase-Change Phenomena: An Introduction to the Thermophysics of Vaporization and Condensation Processes in Heat Transfer Equipment. 2008. [58] Demuth OJ, Kochan RJ. Analyses of mixed-hydrocarbon binary thermodynamic cycles for moderate- temperature geothermal resources using regeneration techniques. Idaho Falls, ID: 1981. [59] Wang XD, Zhao L. Analysis of zeotropic mixtures used in low-temperature solar Rankine cycles for power generation. Sol Energy 2009;83:605–13. [60] Wang JL, Zhao L, Wang XD. A comparative study of pure and zeotropic mixtures in low-temperature solar Rankine cycle. Appl Energy 2010;87:3366–73. [61] Chys M, van den Broek M, Vanslambrouck B, De Paepe M. Potential of zeotropic mixtures as working fluids in organic Rankine cycles. Energy 2012;44:623–32. [62] Kalina AI. Combined-Cycle System With Novel Bottoming Cycle. J Eng Gas Turbines Power 1984;106:737. [63] Jurgen RK. The promise of the Kalina cycle: Using an ammonia-water mixture, the Kalina steam cycle may permit thermal-mechanical-electrical energy conversion efficiencies of 45 percent. IEEE Spectr 1986;23:68–70. [64] Valdimarsson PP. Factors influencing the economics of the Kalina power cycle and situations of superior performance, 2003, p. 32–40. [65] Guzović Z, Lončar D, Ferdelji N. Possibilities of electricity generation in the Republic of Croatia by means of geothermal energy. Energy 2010;35:3429–40. [66] Madhawa Hettiarachchi HD, Golubovic M, Worek WM, Ikegami Y. The Performance of the Kalina Cycle System 11(KCS-11) With Low-Temperature Heat Sources. J Energy Resour Technol 2007;129:243. [67] H Hjartarson, R Maack SJ. Húsavik energy multiple use of geothermal energy. 2005. [68] Bertani R. Geothermal power generation in the world 2005–2010 update report. Geothermics 2012;41:1– 29. [69] Zhang X, He M, Zhang Y. A review of research on the Kalina cycle. Renew Sustain Energy Rev 2012;16:5309–18. [70] Murugan RS, Subbarao PM V. Thermodynamic analysis of Rankine-Kalina combined cycle. Int J Thermodyn 2008;11:133–41. [71] Whittaker P. Corrosion in the Kalina cycle An investigation into corrosion problems at the Kalina cycle geothermal power plant in Húsavík , Iceland. the School for Renewable Energy Science in affiliation with University of Iceland & the University of Akureyri, 2009. [72] Ogriseck S. Integration of Kalina cycle in a combined heat and power plant, a case study. Appl Therm Eng 2009;29:2843–8. [73] Maloney JD. Thermodynamic Study of Ammonia-Water Heat Power Cycles 1953. [74] Ibrahim OM, Klein SA. Absorption power cycles. Energy 1996;21:21–7. [75] Park YM, Sonntag RE. A preliminary study of the kalina power cycle in connection with a combined cycle system. Int J Energy Res 1990;14:153–62. [76] YOGI GOSWAMI D. Solar Thermal Power Technology: Present Status and Ideas for the Future. Energy Sources 1998;20:137–45. [77] Fontalvo A, Pinzon H, Duarte J, Bula A, Quiroga AG, Padilla RV. Exergy analysis of a combined power and cooling cycle. Appl Therm Eng 2013;60:164–71. [78] Vijayaraghavan S, Goswami DY. On Evaluating Efficiency of a Combined Power and Cooling Cycle. J Energy Resour Technol 2003;125:221. [79] Martin C, Goswami DY. Effectiveness of cooling production with a combined power and cooling thermodynamic cycle. Appl Therm Eng 2006;26:576–82. 18

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