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DECART DEPLETION CALCULATION FOR PMR200 TWO-DIMENSIONAL CORE

机译:PMR200二维核心的十进制损耗计算

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This paper is to evaluate the depletion capability of the DeCART code for PMR200 two-dimensional core. DeCART solves the burnup equation by the matrix exponential based on the Krylov Subspace method. The depletion calculation is performed up to 270 EFPD by using total 14 burnup steps. The double heterogeneity effect is resolved by introducing the RPT method. The DeCART solutions by using a 47-G PWR neutron library are compared with the McCARD Monte Carlo solution which uses ENDF/B-VII. DeCART shows about maximum 1200 pcm eigenvalue, about maximum 2.5 % block and 6.0 % pin power differences near 180 EFPDs. The differences are mainly due to the library and the geometrical model discrepancy. While the reference calculation is performed by imposing the vacuum condition for the vessel outside, DeCART uses a zigzag-type boundary model. The use of the VHTR neutron library that is scheduled to develop reduces the eigenvalue differences. In the computing time, DeCART requires about 2 and half hours for 14 depletion steps. Therefore, it is concluded that the DeCART code produces a reasonable result for the VHTR core depletion calculation within an affordable computing time.
机译:本文旨在评估PMR200二维磁芯的DeCART代码的消耗能力。 DeCART基于Krylov子空间方法通过矩阵指数求解燃耗方程。通过使用总共14个燃尽步骤,可进行多达270 EFPD的耗竭计算。通过引入RPT方法可以解决双重异质性效应。将使用47 G PWR中子库的DeCART解决方案与使用ENDF / B-VII的McCARD蒙特卡洛解决方案进行了比较。 DeCART显示大约1200 pcm的本征值,大约180 EFPD时最大的2.5%阻滞和6.0%的引脚功率差。差异主要是由于库和几何模型差异造成的。通过对外部容器施加真空条件来执行参考计算时,DeCART使用锯齿形边界模型。计划开发的VHTR中子库的使用减少了特征值差异。在计算时间上,DeCART需要大约2个半小时的时间进行14个耗竭步骤。因此,可以得出结论,DeCART代码可以在可承受的计算时间内为VHTR核心损耗计算产生合理的结果。

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