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Additional resources for Ceramic Materials for Energy Applications II
5 xlO"7 Accelerated irradiation experiments HFR-K5 and HFR-K6 were Proof Tests for the HTR Modul concept. Each test contained four 60-mm diameter spherical fuel elements in three independent swept gas capsules. For HFR-K5 and -K6, a typical HTR Modul reactor temperature history was simulated during irradiation with 17 temperature cycles, corresponding to 17 fuel element passes through the core. For one third of a cycle, the center temperature of the fuel spheres was held at 800°C, and for the remaining two thirds, the center temperature was maintained at 1000°C.
The spheres center Ceramic Materials for Energy Applications II -45 SiC-Coated HTR Fuel Particle Performance temperatures were increased to 1200°C and held for five hours. These temperature transients were performed at BOL, middle-of-life and EOL in both experiments. Measured 85mKr release rates for HFR-K5 and -K6 over the entire irradiation period are shown in Figure 9 for all six capsules in the two tests. At BOL, the lower set of curves indicate no manufacture defective fuel particles present in Capsules 1,2, & 3 for each of HFR-K5 and -K6.
3 R. , 64, 155170(2004). 4 A. Kohyama, S. M. Dong and Y. Katoh, "Development of SiC/SiC Composites by Nano-Infiltration and Transient Eutectic (NITE) Process," Ceramic Engineering and Science Proceedings. ,311-318 (2000). 5 S. M. Dong, Y. Katoh and A. ,23, 1223-1231 (2003). 6 J. A. DiCarlo, "Microstructural Optimization of High Temperature SiC/SiC Composites," Proceedings of the 5lh International Conference on High Temperature Ceramic Matrix Composites (HTCMC5), p. 187-192, The American Ceramics Society, Ohio (2004).