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Supercritical Carbon Dioxide Cycle Analysis

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Supercritical Carbon Dioxide Cycle Analysis ( supercritical-carbon-dioxide-cycle-analysis )

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Table 4.6: Benchmarking of SoSaT code** Reference Design SoSaT Results Reactor Design Number of Tubes 19173 S-CO2 heat transfer coeff. (W/m2K) 6812 Lead Heat transfer coeff. (W/m2K) 22500 Tube length (m) 5.64 Reactor Design Number of Tubes 4500 Primary heat transfer coeff. (W/m2K) N/A Secondary heat transfer coeff. (W/m2K) N/A Tube length (m) 4.78 Reactor Design Number of Tubes 7200 Sodium heat transfer coeff. (W/m2K) N/A Water heat transfer coeff. (W/m2K) N/A Heat transfer area (m2) 12500 *Including a 20% margin on the heat transfer area, as is common practice in steam generator design would yield a value closer to the reference JSFR design. **[Grandy and Seidensticker, 2007], [IAEA, 2006], [Todreas and Hejzlar, 2008] For the benchmark designs, tube dimensions and pitch were identical to the reference design. The number of tubes for each design is a result of the shell geometry, so it does not match the reference designs perfectly, but it comes close for each design. Heat transfer coefficients are averages that where given in the FCR reports or calculated in SoSaT and are not available for the ABR-1000 or JSFR reference designs. The FCR IHX includes enhanced tubes which were replicated in the SoSaT design. The improvements over smooth tubes are similar for the FCR design and the SoSaT model of the same heat exchanger. The results of SoSaT are in very good agreement with reference designs. 4.6 S-CO2, Traditional Rankine, or Supercritical Steam PCS Commercial power SFRs have used the traditional Rankine cycle, though at temperatures and pressures higher than those of LWRs. Supercritical steam cycles have been operated in some coal fired power plants [MIT, 2007] with pressures up to 24.3 MPa and temperatures of 565 oC. Achievable generating efficiency of these plants is about 38 %. Target steam conditions FCR IHX 19181 6524 25100 5.70 ABR-1000 P-IHX 4550 30219 41266 4.90 JSFR Steam Generator 7220 32765 variable 10140* 101

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