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Improved method to demonstrate the structural integrity of high density fuel storage racks

机译:演示高密度燃料存储架结构完整性的改进方法

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Reracking of existing fuel pools to the maximum extent is desirable from an economical point of view. This goal can be achieved by minimizing the gaps between the spent fuel storage racks. Since the rack design is aimed at enabling consolidated fuel rod storage, additional requirements arise with respect to the design and the structural analysis. The loads resulting from seismic events are decisive for the structural analysis and require a specially detailed and in-depth analysis for high seismic loads. The verification of structural integrity and functionality is performed in two phases. In the first phase the motional behavior of single racks, rows of racks and, where required, of all racks in the pool is simulated by excitation with displacement time histories under consideration of the fluid--structure interaction (FSI). The displacements from these simulations are evaluated, while the loads are utilized as input data for the structural analysis of the racks and the pool floor. The structural analyses for the racks comprise substantially stress analyses for base material and welds as well as stability analyses for the support channels and the rack outside walls. The analyses are performed in accordance with the specified codes and standards.
机译:从经济的角度来看,最好是对现有燃料池进行最大程度的维修。该目标可以通过最小化乏燃料存储架之间的间隙来实现。由于齿条设计旨在实现燃料棒的统一存储,因此在设计和结构分析方面存在其他要求。地震事件产生的载荷对于结构分析至关重要,需要针对高地震载荷进行特别详细和深入的分析。结构完整性和功能性的验证分两个阶段进行。在第一阶段中,在考虑流固耦合(FSI)的情况下,通过利用位移时间历史激励来模拟池中单个机架,成排机架以及需要时所有机架的运动行为。评估这些模拟的位移,同时将载荷用作机架和泳池底板结构分析的输入数据。机架的结构分析主要包括对基础材料和焊缝的应力分析,以及对支撑通道和机架外壁的稳定性分析。根据指定的规范和标准执行分析。

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