Original Article
2023, IAEA, Status of Molten Salt Reactor Technology, Technical Reports Series No. 489 (STI-DOC-010-489), International Atomic Energy Agency Vienna.
2024, Cui, D.Y., Li, X.X., Dai, Y., Zou, Y., Chen, J.G. and Cai, X.Z., "Accident scenario analysis and control scheme design for a micro Molten Salt Reactor," Prog. Nucl. Energy, Vol.172.
10.1016/j.pnucene.2024.1052082024, Clements, J., "Microreactor Technology," Homeland Defense & Security Information Analysis Center, Website: https://hdiac.org/technical-inquiries/notable/microreactor- technology/.
1990, Suid, L.H., "The Army's Nuclear Power Program: The Evolution of a Support Agency," Praeger, ISBN-13: 9780313272264.
2024, U.S. Army Corps of Engineers Headquarters, "Army Nuclear Power Program, 1954-1976," Website: https:// www.usace.army.mil/About/History/Exhibits/Nuclear-Power-Program/Orig%20ins-of-ANPP/.
2022, Passons, B. and Tsvetkov, P., "Design and performance analysis of a mobile, land-based micro-reactor," Ann. Nucl. Energy, Vol.165.
10.1016/j.anucene.2021.1086882023, Kramer, D., "Pentagon's microreactor program faces safety and nonproliferation concerns," Phys. Today, Doi: https://doi.org/10.1063/PT.6.2.20230822a.
10.1063/pt.6.2.20230822a2021, Kuperman, A.J., "Proposed U.S. Army Mobile Nuclear Reactors: Costs and Risks Outweigh Benefits," NPPP Working Paper #4.
2015, Mobaraki, B. and Vaghefi, M., "Numerical Study of the Depth and Crosssectional Shape of Tunnel Under Surface Explosion," Tunn. Undergr. Space Technol., Vol.47, pp.114-122.
10.1016/j.tust.2015.01.0031959, Sedov, I. (Editor: Holt, M.; Translated by Friedman, M.), Similarity and Dimensional Methods in Mechanics, Academic Press, New York.
2024, Kim, H.T. and Kim, S.I., "LS-DYNA Calculation of Blast Load on the Micro Molten Salt Reactor Designed to Fit on a Truck," Proceedings of the Korean Nuclear Society Autumn Meeting, Changwon, Korea, pp.24-25.
2017, Chang, S.M., Kim, S.Y. and Lee, B.D., "Analysis on the Model of Fire Extinguishing Bomb with the Theory of Similarity," J. Korean Soc. Hazard Mitig., Vol.17, No.6, pp.253-260.
10.9798/KOSHAM.2017.17.6.2532017, Rebelo, H.B. and Cismasiu, C., "A Comparison Between Three Air Blast Simulation Techniques in LSDYNA," 11th European LSDYNA Conference, Salzburg, Austria, May.
1977, Lucy, L.B., "A Numerical Approach to the Testing of the Fission Hypothesis," Astron. J., Vol.82, No.12, pp.1013-1024.
10.1086/1121641977, Gingold, R.A. and Monaghan, J.J., "Smoothed Particle Hydrodynamics: Theory and Application to Non- spherical Stars," Mon. Not. R. Astron. Soc., Vol.181, No.3, p.375.
10.1093/mnras/181.3.3752007, Bala, S., "Smooth Particles Hydrodynamics in LS-DYNA," Powerpoint presentation, Livermore Software Technology Corporation.
2000, Lacome, J.,L., "Smooth Particle Hydrodynamics (SPH): A New Feature in LS-DYNA," 6th International LS-DYNA Users Conference.
1973, Lee, E., Finger, M. and Collins, W., "JWL Equation of State Coefficients for High Explosives," Technical Report, No. UCID16189, Lawrence Livermore National Lab (LLNL), Livermore, CA, January.
2019, Castedo, R. et al., "Application of Grid Convergence Index to Shock Wave Validated with LS-DYNA and ProsAir," Ing. Investig., Vol,39, No.3, pp.20-26.
10.15446/ing.investig.v39n3.813802011, Flatten, T., Morin, A. and Mukejord, S.T., "On Solutions to Equilibrium Problems for Systems of Stiffened Gases," SIAM J. Appl. Math., Vol.71, No.1, pp.41-67.
10.1137/1007843212001, Saurel, R. and LeMetayer, O., "A Multiphase Model for Compressible with Interfaces, Shocks, Detonation Waves and Cavitation," J. Fluid Mech., Vol.431, pp.239-271.
10.1017/S0022112000003098- Publisher :Korean Society for Computational Fluids Engineering
- Publisher(Ko) :한국전산유체공학회
- Journal Title :Journal of Computational Fluids Engineering
- Journal Title(Ko) :한국전산유체공학회지
- Volume : 29
- No :4
- Pages :189-203
- Received Date : 2024-10-02
- Revised Date : 2024-11-05
- Accepted Date : 2024-11-07
- DOI :https://doi.org/10.6112/kscfe.2024.29.4.189


Journal of Computational Fluids Engineering








