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TEMPERATURE PREDICTION OF A TN-32 USED NUCLEAR FUEL CANISTER SUBJECTED TO VACUUM DRYING CONDITIONS

机译:经过真空干燥条件的TN-32使用核燃料罐的温度预测

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In this work, a geometrically-accurate two-dimensional (2D) computational fluid dynamic (CFD) model of a used nuclear fuel cask, that can contain up to 32 pressurized water reactor (PWR) used nuclear fuel (UNF) assemblies, is constructed. This model is similar to the TN-32 cask employed in the ongoing high-burnup (HBU) Spent Fuel Data Project lead by the Electric Power Research Institute (EPRI). This model is used to predict the peak cladding temperature under vacuum drying conditions. Due to the symmetry of the cask, only one-eighth of the cross-section is modeled. Steady-state simulations that include the temperature-jump boundary conditions at the gas-solid interfaces are performed for different heat generation rates in the fuel regions and a range of dry helium pressures, from ~10~5 to 100 Pa. These simulations include conduction within solid-gas regions and surface-to-surface radiation across all gas regions. The peak cladding temperatures are reported for various heat generation rates and rarefaction conditions, along with the maximum allowable heat generation that brings the cladding temperatures to the radial hydride formation limit. The results showed that the decrease of helium pressure significantly increased the temperature of the cladding material compared to the atmospheric pressure condition.
机译:在这项工作中,建造了一种几何准确的二维(2D)二维(2D)计算流体动力学(CFD)模型,其可以含有多达32个加压水反应堆(PWR)使用的核燃料(UND)组件。 。该模型类似于在持续的高燃烧(HBU)中采用的TN-32 Cask,由电力研究所(EPRI)提供燃料数据项目。该模型用于预测真空干燥条件下的峰值包层温度。由于桶的对称性,仅建模了横截面的第八。在燃料区域中的不同发热速率和一系列干燥氦气压力下,包括〜10〜5至100pa的不同热产生速率,包括稳态模拟。这些模拟包括导通在固体区域内和所有气体区域的表面到表面辐射。报告了各种发热速率和稀疏条件的峰包层温度以及将包层温度与径向氢化物形成极限带来的最大允许的发热。结果表明,与大气压条件相比,氦压力降低显着提高了包层材料的温度。

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