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A New Insight into Energy Distribution of Electrons in Fuel-Rod Gap in VVER-1000 Nuclear Reactor

机译:VVER-1000核反应堆燃料棒间隙中电子能量分布的新见解

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In order to calculate the electron energy distribution in the fuel rod gap of a VVER-1000 nuclear reactor, the Fokker-Planck equation (FPE) governing the non-equilibrium behavior of electrons passing through the fuel-rod gap as an absorber has been solved in this paper. Besides, the Monte Carlo Geant4 code was employed to simulate the electron migration in the fuel-rod gap and the energy distribution of electrons was found. As for the results, the accuracy of the FPE was compared to the Geant4 code outcomes and a satisfactory agreement was found. Also, different percentage of the volatile and noble gas fission fragments produced in fission reactions in fuel rod, i.e. Krypton, Xenon, Iodine, Bromine, Rubidium and Cesium were employed so as to investigate their effects on the electrons' energy distribution. The present results show that most of the electrons in the fuel rod's gap were within the thermal energy limitation and the tail of the electron energy distribution was far from a Maxwellian distribution. The interesting outcome was that the electron energy distribution is slightly increased due to the accumulation of fission fragments in the gap. It should be noted that solving the FPE for the energy straggling electrons that are penetrating into the fuel-rod gap in the VVER-1000 nuclear reactor has been carried out for the first time using an analytical approach.
机译:为了计算VVER-1000核反应堆燃料棒间隙中的电子能量分布,已解决了控制通过燃料棒间隙作为吸收器的电子的非平衡行为的Fokker-Planck方程(FPE)在本文中。此外,利用蒙特卡洛·盖特4代码模拟了燃料在燃料棒间隙中的电子迁移,并发现了电子的能量分布。至于结果,将FPE的准确性与Geant4代码结果进行了比较,并找到了令人满意的协议。而且,采用了燃料棒的裂变反应中产生的挥发性和稀有气体裂变碎片的不同百分比,即K,氙,碘,溴,Rub和铯,以研究它们对电子能量分布的影响。目前的结果表明,燃料棒间隙中的大多数电子都在热能限制范围内,并且电子能级分布的尾部远非麦克斯韦分布。有趣的结果是,由于间隙中裂变碎片的积累,电子能量分布略有增加。应该注意的是,首次使用分析方法来解决FPE中渗透到VVER-1000核反应堆燃料棒间隙中的能量散逸电子。

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