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Consistent Transport Transient Solvers of the High-Fidelity Transport Code PROTEUS-MOC

机译:高保真运输代码Proteus-MoC的一致运输瞬态溶剂

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This paper presents the three new pin-resolved transient solvers of PROTEUS-MOC developed in a consistent way to the latest steady-state solver. A new transient fixed source problem (TFSP) solver was developed without relying on the isotropic approximation of the angular flux time derivative. A moving axial mesh scheme was also implemented to model the control rod movement accurately with coarse axial meshes. In addition, in order to reduce the computational time further, an improved quasi-static method (IQM) solver and a predictor-corrector quasi-static method (PCQM) solver were developed in a consistent way to the TFSP solver. Initial verification tests were performed using the C5G7-TD benchmark problems. The results of the direct TFSP solver agreed very well with the MPACT and NECP-X solutions within ~2.5%. Additional analyses suggested that the observed differences are mainly due to the coarse time steps used in the MAPCT and NECP-X calculations. These results indicate that the direct TFSP solver of PROTEUS-MOC was correctly implemented and the moving axial mesh scheme is working properly. Numerical tests of IQM and PCQM against the direct TFSP solver showed that the IQM and PCQM solvers can reduce the computational time about 10 to 100 times without any significant loss of accuracy by allowing larger time steps. The PCQM calculation with the quadratic interpolation of kinetics parameters (KPs) showed the best performance among the four combinations of the IQM and PCQM solvers and the linear and quadratic interpolation schemes of KPs. This study also showed that the different delayed neutron precursor models of six and eight families can cause larger power differences than the different high-fidelity transient codes and that the adjoint scalar flux weighting can cause significant errors in KPs and subsequently in power evolution. In addition, the transient analyses of a modified C5G7 benchmark problem containing a void channel similar to the hodoscope channel of the Transient Reactor Test (TREAT) facility showed that the isotropic approximation of the angular flux time derivative can cause nonnegligible errors in the time-dependent power distribution. This study also demonstrated that PROTEUS-MOC can be used for transient analyses of reactors with internal void regions.
机译:本文以一致的方式介绍了普雷斯 - MOC的三个新的PIN分辨瞬态溶剂,以一致的稳态求解器开发。开发了新的瞬态固定源问题(TFSP)解器,而不依赖于角通量时间衍生物的各向同性近似。还实现了移动的轴向网格方案以用粗轴啮合物精确地模拟控制杆运动。另外,为了进一步降低计算时间,以一种改进的准静态方法(IQM)求解器和预测校正器准静态方法(PCQM)求解器以一致的方式开发到TFSP求解器。使用C5G7-TD基准问题进行初始验证测试。直接TFSP求解器的结果非常良好地同意MPACT和NECP-X溶液在〜2.5%内。另外的分析表明,观察到的差异主要是由于MAPCT和NECP-X计算中使用的粗略时间步骤。这些结果表明,正确实现了Proteus-MoC的直接TFSP求解器,并且移动的轴向网格方案正常工作。 IQM和PCQM对直接TFSP解算器的数值测试表明,IQM和PCQM求解器可以通过允许较大的时间阶段来将计算时间减少约10至100倍,而无需任何显着的精度损失。使用动力学参数(KPS)的二次插值的PCQM计算显示了IQM和PCQM求解器的四种组合中的最佳性能以及KPS的线性和二次插值方案。本研究还表明,六个和八个家庭的不同延迟中子前体模型可能导致比不同的高保真瞬态码更大的功率差异,并且伴随标量磁通量加权可能导致KPS中的显着误差,随后在功率演进中。此外,包含与瞬态反应器测试(治疗)设施的Hodoscope通道类似的空隙通道的修改的C5G7基准问题的瞬态分析表明,角通量时间衍生物的各向同性近似可能导致时间依赖的非阻值误差电力调配。本研究还证明了蛋白质-MOC可用于具有内部空隙区域的反应器的瞬态分析。

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