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Design method for s-CO2 gas turbine power plants

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Design method for s-CO2 gas turbine power plants ( design-method-s-co2-gas-turbine-power-plants )

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98 Bibliography [13] M. Tarbell and D. Schechter, The History of the Standard Oil Company. Cosimo, Inc., 2009. [14] I. Dincer, “Renewable Energy and Sustainable Development: a Crucial Review,” Renew- able and Sustainable Energy Reviews, vol. 4, pp. 157 – 175, 2000. [15] J. Harinck, Super- and Transcritical Fluid Expansions for Next-Generation Energy Con- version Systems. PhD thesis, Delft University of Technology, 2010. [16] V. Dostal, M. Driscoll, and P. Hejzlar, A Supercritical Carbon Dioxide Cycle for Next Generation Nuclear Reactors. PhD thesis, Massachusetts Institute of Technology, 2004. [17] G. Angelino, “Carbon Dioxide Condensation Cycles for Power Production,” Journal of Engineering for Power Transactions of the ASME, pp. 287–295, 1968. [18] V. Petr and M. Kolovratnik, “A Study on Application of a Closed Cycle CO2 Gas Turbine in Power Engineering,” tech. rep., Czech Technical University, 1997. [19] V. Petr, M. Kolovratnik, and V. Hanzal, “On the Use Of CO2 Gas Turbine in Power Engineering,” tech. rep., Czech Technical University in Prague, 1999. [20] V. Dostal, N. Todreas, P. Hejzlar, and M. Kazimi, “Power Conversion Cycle Selection for the LBE Cooled Reactor with Forced Circulation,” tech. rep., Massachusetts Institute of Technology, 2001. [21] V. Dostal, N. Todreas, P. Hejzlar, and N. Todreas, “CO2 Brayton Cycle Design and Optimization,” tech. rep., Massachusetts Institute of Technology, 2002. [22] N. Carstens, P. Hejzlar, and M. Driscoll, “Control System Strategies and Dynamic Re- sponse for Supercritical CO2 Power Conversion Cycles,” tech. rep., Massachusetts Insti- tute of Technology, 2006. [23] A. Moisseytsev and S. Sienicki, “Performance Improvement Options for the Supercritical Carbon Dioxide Brayton Cycle,” tech. rep., Argonne National Laboratory, 2007. [24] S. Wright, R. Radel, M. Vernon, G. Rochau, and P. Pickard, “Operation and Analysis of a Supercritical CO2 Brayton Cycle,” tech. rep., Sandia National Laboratories, 2010. [25] E. Parma, S. Wright, M. Vernon, D. Fleming, D. Rochau, A. Suo-Anttila, and A. R. P. Tsvetkov, “Supercritical CO2 Direct Cycle Gas Fast Reactor (SC-GFR) Concept,” tech. rep., Sandia National Laboratories, 2011. [26] S. Wright, “Summary of the Sandia Supercritical CO2 Development Program,” tech. rep., Sandia National Laboratories, 2011. [27] J. Cha, T. Lee, J. Eoh, S. Seong, S. Kim, D. Kim, M. Kim, T. Kim, and K. Suh, “Development of a Supercritical CO2 Brayton Energy Conversion System Coupled with a Sodium Cooled Fast Reactor,” Nuclear Engineering and Technology, vol. 41, pp. 1025– 1044, 2009. [28] C. Oh, T. Lillo, W. Windes, T. Totemeier, and R. Moore, “Development of a Super- critical Carbon Dioxide Brayton Cycle: Improving PBR Efficiency and Testing Material Compatibility,” tech. rep., Idaho National Engineering and Environmental Laboratory, 2004. J.S. Bahamonde Noriega Master of Science Thesis

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