Working Fluid Design for Organic Rankine Cycle

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78 Bibliography [38] P. Bombarda, C. M. Invernizzi, and C. Pietra, “Heat recovery from Diesel engines: A thermodynamic comparison between Kalina and ORC cycles,” Applied Thermal Engi- neering, vol. 30, no. 2, pp. 212–219, 2010. [39] V. K. I. for Fluid Dynamics, “Closed Cycle Gas Turbines: Lecture Series Held At Rhode Saint Genèse,” 1977. [40] E. Sauret and A. S. Rowlands, “Candidate radial-inflow turbines and high-density work- ing fluids for geothermal power systems,” Energy, vol. 36, no. 7, pp. 4460–4467, 2011. [41] B. F. Rafi, “Radial Turbine,” GRABCAD. Retrieved May, 2012. [42] C. Rodgers and R. Geiser, “Performance of a high-efficiency radial/axial turbine,” J. Turbomach.;(United States), vol. 109, no. 2, 1987. [43] J. P. van Buijtenen, J. Larjola, T. Turunen-Saaresti, E. H. Honkatukia, J., J. Backman, and A. Reunanen, “Design and Validation of a New High Expansion Ratio Radial Turbine for ORC Application,” in Proceedings of 5th European Conference on Turbomachinery, Prague, Czech Republic, March 17-22, 2003. [44] D. Fiaschi, G. Manfrida, and F. Maraschiello, “Thermo-fluid dynamics preliminary design of turbo-expanders for ORC cycles,” Applied Energy, vol. 97, pp. 601–608, 2012. [45] H. E. Rohlik, “Analytical determination of radial inflow turbine design geometry for maximum efficiency,” 1968. [46] O. Balje, Turbomachines - A Guide to Design Selection and Theory. Wiley-Interscience Publication, 1981. [47] R. S. Benson, “A review of methods for assessing loss coefficients in radial gas turbines,” International Journal of Mechanical Sciences, vol. 12, no. 10, pp. 905–932, 1970. [48] V. Maizza and A. Maizza, “Unconventional working fluids in Organic Rankine-cycles for waste energy recovery systems,” Applied Thermal Engineering, vol. 21, no. 3, pp. 381– 390, 2001. [49] T. Yamamoto, T. Furuhata, N. Arai, and K. Mori, “Design and testing of the Organic Rankine Cycle,” Energy, vol. 26, no. 3, pp. 239 – 251, 2001. [50] J. M. Calm and D. A. Didion, “Trade-offs in refrigerant selections: past, present, and future,” International Journal of Refrigeration, vol. 21, no. 4, pp. 308–321, 1998. [51] A. Kazakov, M. O. McLinden, and M. Frenkel, “Computational Design of New Re- frigerant Fluids Based on Environmental, Safety, and Thermodynamic Characteristics,” Industrial & Engineering Chemistry Research, vol. 51, no. 38, pp. 12537–12548, 2012. [52] M.Whelan,E.Estrada,andR.VanEgmond,“Amodellingassessmentoftheatmospheric fate of volatile methyl siloxanes and their reaction products,” Chemosphere, vol. 57, no. 10, pp. 1427–1437, 2004. [53] E. F. Griessbach and R. Lehmann, “Degradation of polydimethylsiloxane fluids in the environmentŮa review,” Chemosphere, vol. 38, no. 6, pp. 1461–1468, 1999. Akshay Hattiangadi Master of Science Thesis

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