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Simulation of Scaled Vessel Failure Experiments and Investigation of a Possible Vessel Support against Failure

机译:划分血管衰竭实验的仿真及可能船舶对失败的研究

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Scaled coupled melt pool convection and vessel creep failure experiments are being performed in the FOREVER program at the Royal Institute of Technology, Stockholm. These experiments are simulating the lower head of a pressurized reactor vessel under the thermal load of a melt pool with internal heat sources. Due to the multi axial creep deformation of the three-dimensional vessel with a highly non-uniform temperature field these experiments offer an excellent opportunity to validate numerical creep models. A Finite Element model is developed and using the Computational Fluid Dynamic module, the melt pool convection is simulated and the temperature field within the vessel wall is evaluated. The transient structural mechanical calculations are then performed applying a new creep modelling procedure. Additionally, the material damage is evaluated considering the creep deformation as well as the prompt plasticity. After post-test calculations for the FOREVER-C2 experiment, pre-test calculations for the forthcoming experiments are performed. Taking into account both - experimental and numerical results - gives a good opportunity to improve the simulation and understanding of real accident scenarios. After analysing the calculations, it seems to be advantageous to introduce a vessel support which can unburden the vessel from a part of the mechanical load and, therefore, avoid the vessel failure or at least prolong the time to failure. This can be a possible accident mitigation strategy. Additionally, it is possible to install an absolutely passive automatic control device to initiate the flooding of the reactor pit to ensure external vessel cooling in the event of a core melt down.
机译:缩放的耦合熔池对流和船舶蠕变失效实验正在斯德哥尔摩皇家理工学院的永恒计划中进行。这些实验在具有内部热源的熔体池的热负荷下模拟加压反应器容器的下部头部。由于三维容器的多轴向蠕变变形,具有高度不均匀的温度场,这些实验提供了验证数值蠕变模型的绝佳机会。开发和使用计算流体动力模块的有限元模型,模拟熔池池对流,并评估容器壁内的温度场。然后执行瞬态结构机械计算应用新的蠕变建模程序。另外,考虑到蠕变变形以及迅速的可塑性来评估材料损坏。在Forever-C2实验后测试后计算后,进行即将到来的实验的预测试计算。考虑到实验性和数值结果 - 为改善对实际事故情景的模拟和理解提供了良好的机会。在分析计算之后,引入血管支撑似乎是有利的,该容器支撑件可以从机械负载的一部分中取出容器,因此避免血管发生故障或至少延长失效时间。这可能是可能的发生减缓策略。另外,可以安装绝对被动的自动控制装置,以启动反应器坑的洪水,以确保在核心熔化的情况下确保外部容器冷却。

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