Advanced geometry navigation methods without cavity representation for fusion reactors
Autor: | Shengpeng Yu, Lijuan Hao, Jing Song, Longfeng Shen, Pengcheng Long, Bin Wu |
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Rok vydání: | 2017 |
Předmět: |
Physics
Neutron transport 020209 energy Mechanical Engineering Computation Nuclear engineering Monte Carlo method 02 engineering and technology Fusion power Radiation Space (mathematics) 01 natural sciences 010305 fluids & plasmas Nuclear Energy and Engineering 0103 physical sciences 0202 electrical engineering electronic engineering information engineering Benchmark (computing) General Materials Science Representation (mathematics) Civil and Structural Engineering |
Zdroj: | Fusion Engineering and Design. 122:232-237 |
ISSN: | 0920-3796 |
DOI: | 10.1016/j.fusengdes.2017.08.008 |
Popis: | Particle transport simulations of models comprising large numbers of complex and irregular geometrical shapes is a great challenge in neutronics design and analysis of fusion reactors. All the space in the particle transport universe should be described including cavity in MCNP which is the most common deployed tool in fusion reactors. The quality of the cavity directly affects the calculation accuracy and efficiency. In view of the difficulty in describing the cavity and the instability of calculation efficiency, a new geometry representation method without cavity description was formed in Super Monte Carlo Program for Nuclear and Radiation Simulation (SuperMC). Advanced geometry navigation was developed in SuperMC to get high performance for particle transport in fusion reactors. The ITER benchmark model, a validation model released by ITER International Organization, was used to verify the accuracy and efficiency of geometry representation and navigation methods in SuperMC. The results in SuperMC showed consistency with MCNP. Besides, the computation speed was 10% faster than MCNP, while it brought more convenience without cavity representation for fusion reactors. |
Databáze: | OpenAIRE |
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