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Working Fluids for Organic Rankine Cycle (ORC) Applications

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ICESW IOP Publishing IOP Conf. Series: Materials Science and Enginee1ri2n3g44516378(920‘1’8“)” 012019 doi:10.1088/1757-899X/413/1/012019 [19] Hettiarachchi, M. H. D., Golubovic, M., Worek, W. M., & Ikegami, Y. Optimum design criteria for an Organic Rankine cycle using low-temperature geothermal heat sources. Energy, 2007, 32(9), 1698–1706. https://doi.org/10.1016/j.energy.2007.01.005 [20] Saadatfar, B., Fakhrai, R., & Fransson, T. The Journal of MacroTrends in Energy and Sustainability Waste heat recovery Organic Rankine cycles in sustainable energy conversion: A state-of-the-art review. Jmes, 2013, 1(1), 161–188. [21] Andreasen, J. G., Pierobon, L., Larsen, U., Haglind, F., & Author, C. Multi-Objective Optimization of Organic Rankine Cycle Power Plants Using Pure and Mixed Working Fluids. Proceedings of the 3rd International Seminar on ORC Power Systems, 2015, 1–11. https://doi.org/10.3390/en9050322 [22] Liu, C., Gao, T., Xu, J., Zhu, J., & Xu, X. Analysis of Pure Fluid and Zeotropic Mixtures Uesd in Low- Temperrature Reheating Organic Rankine Cycles. Proceedings of the 3rd International Seminar on ORC Power Systems, 2015, 1–10. [23] Nouman, J. Comparative studies and analyses of working fluids for Organic Rankine Cycles -ORC. 2012, Retrieved from https://www.diva-portal.org/smash/get/diva2:555314/FULLTEXT01.pdf [24] Habibzadeh, A., & Rashidi, M. M. Thermodynamic analysis of different working fluids used in organic rankine cycle for recovering waste heat from GT-MHR. Journal of Engineering Science and Technology, 11(1), 2016, 121–135 [25] Zhang, X. Thermodynamic Study of Inflection Point of Saturated Vapor Curve for Dry and Isentropic Working Fluids. Proceedings of the 3rd International Seminar on ORC Power Systems, 2015, 1–10. [26] Kandathil, A. K. A Guide to working fluid selection for Organic Rankine Cycle ORC generators. Genixx, HEATCATCHER. Retrieved from http://www.heatcatcher.com/guide-working-fluid-selection-organic- rankine-cycle-orc-generators/, 2016. [27] Liu, B. T., Chien, K. H., & Wang, C. C. Effect of working fluids on organic Rankine cycle for waste heat recovery. Energy, 2004, 29(8), 1207–1217. https://doi.org/10.1016/j.energy.2004.01.004 [28] Dhar, H., Kumar, S., & Kumar, R. A review on organic waste to energy systems in India. Bioresource Technology, (August), 2017, https://doi.org/10.1016/j.biortech.2017.08.159 [29] Patrick L, Athanasios I. P & Panos S. Systematic Methods for Working Fluid Selection and the Design, Integration and Control of Organic Rankine Cycles—A Review, Energies 2015, 8, 4755 - 4801 [30] Shu, G, Liu, L, Tian, H, Wei, H & Yu, G. Parametric and working fluid analysis of a dual-loop organic Rankine cycle (DORC) used in engine waste heat recovery, Applied Energy 113: 2014: 1188 – 1198 [31] Bahrami, M., Hamidi, A. A., & Porkhial, S. Investigation of the effect of organic working fluids on thermodynamic performance of combined cycle Stirling-ORC. International Journal of Energy and Environmental Engineering, 2013, 4(12), 1–9. https://doi.org/10.1186/2251-6832-4-12 [32] Galloni, E, Fontana, G & Staccone, S. Design and experimental analysis of a mini ORC (organic Rankine cycle) power plant based on R245fa working fluid, Energy 90: 2015: 768 – 775 [33] Richard L, Adam H & David R. A knowledge-based system for low-grade waste heat recovery in the process industries, Applied Thermal Engineering 94: 2016: 590–599 [34] Borsukiewicz-gozdur, A., & Nowak, W. Desirable Thermophysical Properties of Working Fluids in Organic Rankine Cycle. European Geothermal Congress 2007, (June), 1–5. [35] Bao, J., & Zhao, L. A review of working fluid and expander selections for organic Rankine cycle. Renewable and Sustainable Energy Reviews, 2013, 24, 325–342. https://doi.org/10.1016/j.rser.2013.03.040 [36] He, M., Zhang, X., Zeng, K., & Gao, K. A combined thermodynamic cycle used for waste heat recovery of internal combustion engine. Energy, 2011, 36(12), 6821–6829. https://doi.org/10.1016/j.energy.2011.10.014 [37] Mikielewicz, D., & Mikielewicz, J. A thermodynamic criterion for selection of working fluid for subcritical and supercritical domestic micro CHP. Applied Thermal Engineering, 2010, 30(16), 2357–2362. https://doi.org/10.1016/j.applthermaleng.2010.05.035 [38] Singh, D.V & Pedersen, E. A review of waste heat recovery technologies for maritime applications, Energy Conversion and Management 111, 2016: 315–328 [39] Mikielewicz, D. M.. A thermodynamic criterion for selection of working fluid for subcritical and supercritical domestic micro CHP. Applied Thermal Engineering, Elsevier, 105(10.1016/j.applthermaleng.2010.05.035), 2356. https://doi.org/10.1016/j.egypro.2017.03.330 [40] Wang, H., Xu, J., Yang, X., Miao, Z., & Yu, C. (2015). Organic Rankine cycle saves energy and reduces gas emissions for cement production. Energy, 86, 59–73. https://doi.org/10.1016/j.energy.2015.03.112 11

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