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Finite Element Simulations and Empirical Correlation for Charpy-V and Subsize Charpy Tests on an Unirradiated Low-Alloy RPV Ferritic Steel

机译:Charpy-V的有限元模拟和亚柴氧化尼亚柴油机对非辐射低合金RPV铁素体钢的实证相关性

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Charpy-V test results are widely used for the surveillance program of RPV (Reactor Pressure Vessel) embrittlement by neutron irradiation. Service life extension of nuclear power plants and more stringent safety requirements are increasing the request for small test specimens such as subsize Charpy. Furthermore, the empirical correlation formulas between conventional Charpy-V and fracture toughness are often questionable. Therefore, prior to use of reduced size specimens, different hypotheses have to be validated and this can only be achieved by combining tests and finite element simulations. The material of interest is a nuclear RPV low alloy ferritic steel 16MND5 (eq. A508 Cl3). Instrumented impact tests were performed on Charpy-V and subsize Charpy over a wide range of temperatures. The hyperbolic tangent curve from W. Oldfield was fitted to the results. Then, correlation formulas are evaluated and commented. In a first step, the aim of the finite element simulations is to get a clear description of the global mechanical behavior of the specimens. A complete description of dynamic impact tests is not required for fracture mechanics purposes. A quasi-static simulation taking into account strain rate effect on the material response is sufficient. However, a 3D analysis is required even for cleavage failure mode. The second step is related to the transferability of fracture criteria. This task has been initiated at low temperatures using the Beremin cleavage model and in the ductile regime using the Rousselier porous model, The finite element results are compared to the experimental one. These results show good transferability potential.
机译:Charpy-V测试结果广泛用于RPV(反应器压力容器)脆化的监测程序通过中子辐射。核电站的使用寿命延长以及更严格的安全要求正在增加对小型测试标本的要求,例如亚夏季化。此外,常规夏比和断裂韧性之间的经验相关公式通常是可疑的。因此,在使用减少尺寸样本之前,必须验证不同的假设,并且这只能通过组合测试和有限元模拟来实现。感兴趣的材料是核RPV低合金铁素体钢16MND5(EQ。A508 CL3)。仪表型冲击试验是在Charpy-V上进行的,并在各种温度范围内占夏纸。来自W. Oldfield的双曲线切线曲线适合结果。然后,评估和评论相关公式。在第一步中,有限元模拟的目的是清楚地描述标本的全局机械行为。裂缝力学目的不需要完整描述动态冲击试验。考虑到物料响应的应变速率效应的准静态模拟足够了。然而,即使为切割失效模式也需要3D分析。第二步与骨折标准的可转移性有关。该任务已经在使用鼠霉素裂解模型和使用ROUSSELIER多孔模型中的延展性制度在低温下启动,将有限元结果与实验结果进行比较。这些结果显示出良好的可转移性潜力。

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