Numerical investigation of dense gas flows through transcritical multistage axial Organic Rankine Cycle turbines

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Numerical investigation of dense gas flows through transcritical multistage axial Organic Rankine Cycle turbines ( numerical-investigation-dense-gas-flows-through-transcritica )

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21`eme Congr`es Fran ̧cais de M ́ecanique Bordeaux, 26 au 30 aouˆt 2013 (a) Speed of sound. (b) Mach number. (c) Fundamental Derivative of Gas Dynamics. Figure 3 – Mach, sound speed and Γ contours for case SUPCO2. [4] Drescher, U., Bru ̈uggemann, D. 2007 Fluid Selection for the organic Rankine Cycle (ORC) in biomass power and heat plants.. Applied Thermal Engineering 27 (1) pp. 223-228 [5] Invernizzi, C., Iora, P., Silva, P. 2007 Bottoming micro-Rankine cycles for micro-gas turbines. Applied Thermal Engineering 27(1) pp. 100-110 [6] Karellas, S., Schuster, A. 2010 Supercritical fluid parameters in organic Rankine cycle applications. Internation Journal of Thermodynamics 11(3) pp. 101-108 [7] Lemmon, E.W., Span, R. 2006 Short Fundamental equations of state for 20 industrial fluids. Journal of Chemical & Engineering Data 51(3) pp. 785-850 [8] Liu, B., Chien, K., Wang, S.K. 2004 Effect of working fluids on organic Rankine cycle for waste heat recovery. Energy 29(8) pp. 1207-1217 [9] Schuster, A., Karellas, S., Karakas, E., Spliethoff, H. 2009 Energetic and economic investigation of Organic Rankine Cycle applications. Appl. Therm. Eng. 29 pp. 1809-1817 [10] Setzmann, U., and Wagner, W. 1989 A new method for optimizing the structure of thermody- namic correlation equations. International Journal of Thermophysics 10 pp. 1103-1126 [11] Shegjun, Z., Huaixin, W., Tao, G. 2011 Performance comparison and parametric optimization of subcritical Organic Rankine Cycle (ORC) and transcritical power cycle system for low-temperature geothermal power generation. Applied Energy 88(8) pp. 2740-2754 [12] Span, R., Wagner, W. 1996 A new equation of state for carbon dioxide covering the fluid region from the triple-point temperature to 1100 K at pressures up to 800 MPa. Journal of Physical and Chemical Reference Data 25(6) pp. 1509-1596 [13] Thompson, P.A. 1971 A Fundamental Derivative in Gas Dynamics. Physics of Fluids 14 pp. 1843-1849 [14] Tillner-Roth, R., Baher, H.D. 1994 An international standard formulation for the thermodynamic properties of 1,1,1,2-tetrafluoroehtane (HFC-134a) for temperatures from 170 K to 455 K and pressures up to 70 MPa. Journal of Physical and Chemical Reference Data 23(5) pp. 657-730 6

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