首页> 外文会议>ASME(American Society of Mechanical Engineers) Pressure Vessels and Piping Conference 2006 vol.7: Operations, Applications, and Components >USE OF FUEL ASSEMBLY/BACKFILL GAS EFFECTIVE THERMAL CONDUCTIVITY MODELS TO PREDICT BASKET AND FUEL CLADDING TEMPERATURES WITHIN A RAIL PACKAGE DURING NORMAL TRANSPORT
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USE OF FUEL ASSEMBLY/BACKFILL GAS EFFECTIVE THERMAL CONDUCTIVITY MODELS TO PREDICT BASKET AND FUEL CLADDING TEMPERATURES WITHIN A RAIL PACKAGE DURING NORMAL TRANSPORT

机译:在正常运输过程中使用燃料组件/回填气体的有效导热率模型预测铁包内的篮筐和燃料包壳温度

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Two-dimensional finite element thermal simulations of a generic rail package designed to transport twenty-one spent PWR assemblies were performed for normal transport conditions. Effective thermal conductivity models were employed within the fuel assembly/backfill gas region. Those conductivity models were developed by other investigators assuming the basket wall temperature is uniform. They are typically used to predict the maximum fuel cladding temperature near the package center. The cladding temperature must not exceed specified limits during normal transport. This condition limits the number and heat generation rate of fuel assembles that can transported. The current work shows the support basket wall temperatures in the periphery of the package are highly non-uniform. Moreover the thermal resistance of those regions significantly affects the maximum fuel clad temperature near the package center. This brings the validity of the fuel/backfill gas thermal conductivity models into question. The non-uniform basket wall temperature profiles quantified in this work will be used in future numerical and experimental studies to develop new thermal models of the fuel assembly/backfill gas regions. This will be an iterative process, since the assembly/backfill model affects the predicted basket wall temperature profiles.
机译:在正常运输条件下,对设计用于运输二十一个用过的PWR组件的通用轨道组件进行了二维有限元热仿真。在燃料组件/回填气区域内采用了有效的热导率模型。那些电导率模型是由其他研究人员在假定篮壁温度均匀的情况下开发的。它们通常用于预测包装中心附近的最高燃料包壳温度。在正常运输过程中,包层温度不得超过规定的极限。这种情况限制了可以运输的燃料组件的数量和发热量。当前的工作表明,包装盒外围的支撑篮壁温度高度不均匀。此外,这些区域的热阻会显着影响包装中心附近的最高燃料包覆温度。这使燃料/回填气热导率模型的有效性受到质疑。在这项工作中量化的非均匀篮壁温度曲线将用于未来的数值和实验研究中,以开发燃料组件/回填气体区域的新热模型。这将是一个迭代过程,因为组装/回填模型会影响预测的篮壁温度曲线。

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