Effects of Homogeneous Geometry Models in Simulating the Fuel Balls in HTR-10
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概要
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In this study, the core geometry of HTR-10 was simulated using four different models including: (1) model 1 - an explicit double heterogeneous geometry, (2) model 2 - a mixing of UO<SUB>2</SUB> kernel and four layers in each TRISO particle into one, (3) model 3 - a mixing of 8,335 TRISO particles and the inner graphite matrix in each fuel ball into one, and (4) model 4 - a mixing of the outer graphite shell, 8,335 TRISO particles, and the inner graphite matrix in each fuel ball into one. The associated initial core computations were performed using the MCNP version 1.51 computer code. The experimental fuel loading height of 123 cm was employed for each model. The results revealed that the multiplication factors ranged from largest to smallest with model 1, model 2, model 3, and model 4. The neutron spectrum in the fuel region of each models varied from the hardest to the softest are model 1, model 2, model 3, and model 4 while the averaged neutron spectrum in fuel ball from hardest to softest are model 4, model 3, model 2, and model 1. In addition, the CPU execution times extended from longest to shortest with model 1, model 2, model 3, and model 4.
著者
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WANG Meng-Jen
Institute of Nuclear Engineering and Science, National Tsing Hua University
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PEIR Jinn-Jer
Nuclear Science and Technology Development Center, National Tsing Hua University
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CHAO Der-Sheng
Nuclear Science and Technology Development Center, National Tsing Hua University
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LIANG Jenq-Horng
Institute of Nuclear Engineering and Science, National Tsing Hua University