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[26] Wang, C., Rusak, Z., , “Numerical Studies of transonic BZT gas flows around thin airfoils”, Journal of Fluid Mechanics, Vol. 396, 1999, pp. 109-141. [27] Cramer, M.S., and Park, S., “On the suppression of shock-induced separation in Bethe-Zel’dovich-Thompson fluids”, Journal of Fluid Mechanics, Vol. 393, 1999, pp. 1-21. [28] Brown, B.P., and Argrow, B.M., “Application of Bethe-Zel’dovich- Thompson Fluids in Organic Rankine Cycles,” Journal of Propulsion and Power, Vol. 16, No. 6, 2000, pp. 1118-1124. [29] Rusak, Z., and Wang, C.W., “Low-Drag Airfoils in Transonic Flows of Dense Gases”, Zeitschrift für angewandte Mathematik und Physik (ZAMP), vol. 51, 2000, pp. 467-480. [30] G. Angelino and P. Colonna, ``Organic Rankine cycles for energy recovery from molten carbonate fuel cells,'' in 35th Intersociety Energy Conversion Engineering (IECEC),, (Las Vegas, NV), pp. 1-11, AIAA, July 2000 [31] Kluwick, A., “Marginally separated flows in dilute and dense gases”, Phil. Trans. R. Soc. Lond., Vol. 358, 2000, pp. 3169-3192. [32] Fergason, S., Argrow, B., “Construction and operation of a dense gas shock tube”, AIAA-2001-2747 , AIAA Thermophysics Conference, 35th, Anaheim, CA, June 11-14, 2001 [33] S. H. Fergason, T. L. Ho, B. M. Argrow, and G. Emanuel. Theory for producing a single-phase rarefaction shock wave in a shock tube. J. Fluid Mech., 445:37–54, 2001. [34] P. Colonna and P. Silva, ``Dense gas thermodynamic properties of single and multi-component fluids for fluid dynamics simulations,'' J. Fluids Eng., vol. 125, pp. 414-427, May 2003. [35] S. H. Fergason, A. Guardone, and B. M. Argrow. Construction and validation of a dense gas shock tube. J. Thermophys. Heat Tr., 17(3):326–333, 2003. [36] Kluwick, A., Wrabel, M., “Shock boundary layer interactions in dense gases”, PAMM, Vol. 4, 2004, pp. 444-445. 122PDF Image | ANALYSIS AND OPTIMIZATION OF DENSE GAS FLOWS: APPLICATION TO ORGANIC RANKINE CYCLES TURBINES
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