Development and verification of a three-dimensional spatial dynamics code for molten salt reactors
暂无分享,去创建一个
[1] Xiangzhou Cai,et al. Analysis of producing 238Pu as a byproduct in an MSFR , 2021 .
[2] Y. Cui,et al. Development of a steady state analysis code for molten salt reactor based on nodal expansion method , 2021 .
[3] Xiangzhou Cai,et al. Core and blanket thermal–hydraulic analysis of a molten salt fast reactor based on coupling of OpenMC and OpenFOAM , 2020, Nuclear Science and Techniques.
[4] Shaopeng Xia,et al. Dynamic analysis for a 2 MW liquid-fueled molten salt reactor , 2020 .
[5] Muhammad Imron. Development and verification of open reactor simulator ADPRES , 2019, Annals of Nuclear Energy.
[6] Guifeng Zhu,et al. Application of Monte Carlo method to calculate the effective delayed neutron fraction in molten salt reactor , 2019, Nuclear Science and Techniques.
[7] Xiangzhou Cai,et al. Development of a dynamics model for graphite-moderated channel-type molten salt reactor , 2019, Nuclear Science and Techniques.
[8] Jiejin Cai,et al. Dynamics analysis of the graphite-moderated channel-type molten salt reactors based on Serpent/NTH3D-MSR , 2018, Annals of Nuclear Energy.
[9] Liangzhi Cao,et al. Numerical analysis on the dynamic behaviors of a graphite-moderated molten salt reactor based on MOREL2.0 code , 2018, Annals of Nuclear Energy.
[10] Xiangzhou Cai,et al. Minor actinide incineration and Th-U breeding in a small FLiNaK Molten Salt Fast Reactor , 2017 .
[11] I. Pázsit,et al. Kinetics, dynamics, and neutron noise in stationary MSRs , 2017 .
[12] O. Geoffroy,et al. Calculating the effective delayed neutron fraction in the Molten Salt Fast Reactor: Analytical, deterministic and Monte Carlo approaches , 2014 .
[13] Dalin Zhang,et al. Coupled Neutronics/Thermal-Hydraulics for Analysis of Molten Salt Reactor , 2013 .
[14] Tomohiro Endo,et al. A unified approach for numerical calculation of space-dependent kinetic equation , 2012 .
[15] Dalin Zhang,et al. Development of a safety analysis code for molten salt reactors , 2009 .
[16] J. L. Kloosterman,et al. Development of a Three-Dimensional Time-Dependent Calculation Scheme for Molten Salt Reactors and Validation of the Measurement Data of the Molten Salt Reactor Experiment , 2009 .
[17] Z. Dalin,et al. Steady state investigation on neutronics of a molten salt reactor considering the flow effect of fuel salt , 2008 .
[18] Frank-Peter Weiss,et al. DYN3D-MSR spatial dynamics code for molten salt reactors , 2007 .
[19] P. Ravetto,et al. Interactions between Fluid-Dynamics and Neutronic Phenomena in the Physics of Molten-Salt Systems , 2007 .
[20] Werner Maschek,et al. Molten salt related extensions of the SIMMER-III code and its application for a burner reactor , 2006 .
[21] Frank-Peter Weiss,et al. DYN1D-MSR dynamics code for molten salt reactors , 2005 .
[22] Nam Zin Cho,et al. FUNDAMENTALS AND RECENT DEVELOPMENTS OF REACTOR PHYSICS METHODS , 2005 .
[23] David Lecarpentier,et al. A Neutronic Program for Critical and Nonequilibrium Study of Mobile Fuel Reactors: The Cinsf1D Code , 2003 .
[24] W. M. Schikorr,et al. Assessments of the kinetic and dynamic transient behavior of sub-critical systems (ADS) in comparison to critical reactor systems , 2001 .
[25] H. Ninokata,et al. Nodal neutron kinetics model based on nonlinear iteration procedure for LWR analysis , 1998 .
[26] R. Barker,et al. Rapid least-squared inversion of apparent resisitivity pseudosections by a quasi-Newton method , 1996 .
[27] Kambiz Vafai,et al. Numerical heat transfer , 1990 .
[28] E. Brega,et al. Computation accuracy and efficiency of a coarse-mesh analytic nodal method for LWR transient problems, in comparison with a space-time synthesis method , 1981 .