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TA 4.R: Supercritical Carbon Dioxide Brayton Cycle 13 Ibid 14 Ibid 15 Pasch, Jim, “Pressure-Enthalpy Diagram for Recompression Closed Brayton Cycle Using SCO2”, Nuclear Energy Systems Laboratory/Brayton, Sandia National Laboratories, 2016, http://energy.sandia.gov/energy/renewable-energy/supercritical-co2/ 16 Ibid 17 White, C., “Analysis of Brayton Cycles Utilizing Supercritical Carbon Dioxide - Revision 1”, DOE/NETL-4001/070114, In Preparation. See also: https://www.netl.doe.gov/energy-analyses/temp/AnalysisofBraytonCyclesUtilizingSupercriticalCarbonDioxide_070114.pdf 18 Ibid 19 Ibid 20 Fleming, D., Conboy, T., Pasch, J., Rochau, G., Fuller, R., Holschuh, T., and Wright, S., “Scaling Considerations for a Multi-Megawatt Class Supercritical CO2 Brayton Cycle and Path Forward for Commercialization”, SAND2013-9106, November 2013, http://prod.sandia.gov/techlib/ access-control.cgi/2013/139106.pdf. 21 White, C., “Analysis of Brayton Cycles Utilizing Supercritical Carbon Dioxide - Revision 1”, DOE/NETL-4001/070114, In Preparation. See also: https://www.netl.doe.gov/energy-analyses/temp/AnalysisofBraytonCyclesUtilizingSupercriticalCarbonDioxide_070114.pdf 22 Ibid 23 EPRI, Performance and Economic Evaluation of Supercritical CO2 Power Cycle Coal Gasification Plant, 3002003734, Dec 014, http://www.epri. com/abstracts/Pages/ProductAbstract.aspx?ProductId=000000003002003734 24 EPRI, Regen-SCOT: Rocket Engine-Derived High Efficiency Turbomachinery for Electric Power Generation, 3002006513, Aug 2015, http:// www.epri.com/abstracts/Pages/ProductAbstract.aspx?ProductId=000000003002006513 25 Power Engineering web site, Mar 2016, http://www.power-eng.com/articles/2016/03/net-power-breaks-ground-on-zero-emission-gas-fired- demo-plant.html 26 Shelton, W.W., Weiland, N., White, C., Plunkett, J., and Gray, D., “Oxy-Coal-Fired Circulating Fluid Bed Combustion with a Commercial Utility-Size Supercritical CO2 Power Cycle”, The 5th International Symposium - Supercritical CO2 Power Cycles, San Antonio, TX, March 29- 31, 2016, http://www.swri.org/4org/d18/sco2/papers2015/104.pdf 27 Wright, S., Radel, R., Conboy, T., and Rochau, G., “Modeling and Experimental Results for Condensing Supercritical CO2 Power Cycles”, SAND2010-8840, January 2011, http://prod.sandia.gov/techlib/access-control.cgi/2010/108840.pdf 28 Kimzey, G., “Development of a Brayton Bottoming Cycle using Supercritical Carbon Dioxide as the Working Fluid”, EPRI, 2012, http://www. swri.org/utsr/presentations/kimzey-report.pdf 29 Invernizzi, C.M., “Closed Power Cycles – Thermodynamic Fundamentals and Applications”, DOI: 10.1007/ 978-1-4471-5140-1 © Springer- Verlag London, 2013. 30 Kimzey, G., “Development of a Brayton Bottoming Cycle using Supercritical Carbon Dioxide as the Working Fluid”, EPRI, 2012, http://www. swri.org/utsr/presentations/kimzey-report. 31 Ahn, Y., Baea, S.J., Kima, M., Choa, S.K., Baika, S., Lee, J.I., and Cha, J.E., Cycle layout studies of S-CO2 cycle for the next generation nuclear system application, Transactions of the Korean Nuclear Society Autumn Meeting, Pyeongchang, Korea, October 30-31, 2014. 32 Bae, S.J., Lee, J., Ahn, Y., and Lee, J.I., Preliminary studies of compact Brayton cycle performance for small modular high temperature gas- cooled reactor system, Ann. Nucl. Energy., 75, 2015, http://www.sciencedirect.com/science/article/pii/S0306454914003727 33 EPA web site, Carbon Pollution Standards for New, Modified and Reconstructed Power Plants, Aug 2015, https://www.epa.gov/cleanpowerplan/ carbon-pollution-standards-new-modified-and-reconstructed-power-plants#rule-summary 34 sCO2 Power Cycle Roadmapping Workshop, SwRI, San Antonio, TX, February 2013. 35 Conboy, T.M., Carlson, M.D., and Rochau, G.E., “Dry-Cooled Supercritical CO2 Power for Advanced Nuclear Reactors”, Journal of Engineering for Gas Turbines and Power, Vol 137, 012901, August 2014, https://www.researchgate.net/publication/270772560_Dry-Cooled_Supercritical_ CO_2_Power_for_Advanced_Nuclear_Reactors 36 Moisseytsev, A., and Sienicki, J.J., “Investigation of a Dry Air Cooling Option For an s-CO2 Cycle”, The 4th International Symposium - Supercritical CO2 Power Cycles, Pittsburgh, Pennsylvania, September 9-10, 2014, http://www.swri.org/4org/d18/sco2/papers2014/ systemModelingControl/44-Moisseytsev.pdf 37 Turchi, C., NREL Final Report “10 MW Supercritical CO2 Turbine Test”, NREL Nonproprietary Final Report, DE-EE0001589, January 2014, https://ay14-15.moodle.wisc.edu/prod/pluginfile.php/99692/mod_resource/content/1/Final%20Report%20EE0001589%20 NONPROPRIETARY%20draft%202013-12-26.pdf • Fleming, D., Holschuh, T., Conboy, T., Rochau, G., Fuller, R., “Scaling Considerations for a Multi-Megawatt Class Supercritical CO2 Brayton Cycle and Path Forward for Commercialization”, Proceedings of ASME Turbo Expo 2012, June 11-15, 2012, Copenhagen, Denmark, GT2012-68484, http://proceedings.asmedigitalcollection.asme.org/proceeding.aspx?articleid=1694663 • Fuller, R., Preuss, J., Noall, J, “Turbomachinery for Supercritical CO2 Power Cycles”, Proceedings of ASME Turbo Expo 2012, June 11-15, 2012, Copenhagen, Denmark, GT2012-68735, http://proceedings.asmedigitalcollection.asme.org/proceeding.aspx?articleid=1694664 21 QuadrennialTechnologyReview2015PDF Image | Advancing Clean Electric Power Technologies
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