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EXPERIMENTAL AND NUMERICAL INVESTIGATIONS ON THE FAILURE BEHAVIOR OF PRESSURIZED COMPONENTS CONTAINING CRACK FIELDS

机译:含裂纹场的受压元件破坏行为的实验和数值研究

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During the 2012 outage of the Belgian nuclear power plants (NPP) Doel 3 and Tihange 2 non-destructive testing (NDT) measurements revealed a high quantity of indications in the upper and lower core shells of the reactor pressure vessels (RPV). A root cause analysis leads to the most likely hypothesis that the indications are hydrogen flakes in segregated zones of the RPV ferritic base material. The laminar and quasi-laminar orientation (0° - 15° inclination to the pressure retaining surface) of the hydrogen flakes, the interaction of several adjacent flakes and the mechanical loading conditions lead to a mixed-mode behavior at the crack tips. In the framework of an ongoing research project, experimental and numerical investigations are conducted with the aim to describe the failure behavior of such complex crack configurations. The experiments are carried out using two ferritic materials. One is a non-irradiated representative RPV steel (SA 508 Class 2) and the second material is a special lower bound melt of a modified 22NiMoCr3-7 steel (FKS test melt KS 07 C) containing hydrogen flakes. A material characterization is done for both materials including tensile specimens, notched round bars, shear-, torsion- and compact-tension-shear (CTS) - specimens to investigate different stress states. Furthermore, flat tensile specimens with eroded artificial crack fields are used to investigate the interaction between the cracks in different arranged crack fields. Numerical simulations are carried out with extended micromechanical based damage mechanics models. For the description of ductile failure an enhanced Rousselier model is used and an enhanced Beremin model to calculate the probability of cleavage fracture. To account the sensitivity for low stress triaxiality damage by shear loading, the Rousselier model was enhanced with a term to account for damage evolution by shear. The Beremin model will be enhanced with a term to account for different levels of triaxiality. For the numerical simulations in the transition region of ductile-to-brittle failure a coupled damage mechanics model (enhanced Rousselier and Beremin) will be used. In this paper, the current status of the ongoing research project and first results are presented.
机译:在2012年比利时核电厂(NPP)停运期间,Doel 3和Tihange 2无损检测(NDT)的测量结果表明,反应堆压力容器(RPV)的上,下芯壳中有大量迹象。根本原因分析得出最可能的假设,即迹象表明RPV铁素体基体材料的隔离区中存在氢片。氢薄片的层流和准层取向(相对于保压面的倾斜度为0°-15°),几个相邻的薄片之间的相互作用以及机械载荷条件导致了裂纹尖端处的混合模式行为。在一个正在进行的研究项目的框架内,进行了实验和数值研究,目的是描述这种复杂裂纹形态的破坏行为。实验是使用两种铁素体材料进行的。一种是未经辐照的代表性RPV钢(SA 508 2类),第二种材料是含有氢片的改性22NiMoCr3-7钢的特殊下限熔体(FKS测试熔体KS 07 C)。对两种材料都进行了材料表征,包括拉伸试样,缺口圆棒,剪切,扭转和紧凑拉伸剪切(CTS)-试样,以研究不同的应力状态。此外,使用带有腐蚀的人工裂纹场的平面拉伸试样来研究不同排列裂纹场中裂纹之间的相互作用。使用基于扩展的微力学的损伤力学模型进行了数值模拟。为了描述延性破坏,使用了增强的Rousselier模型和增强的Beremin模型来计算乳沟破裂的可能性。为了说明剪切载荷对低应力三轴性损伤的敏感性,对Rousselier模型进行了增强,增加了一个术语来说明剪切引起的损伤演化。 Beremin模型将增加一个术语,以说明三轴性的不同水平。对于延性-脆性破坏过渡区域的数值模拟,将使用耦合损伤力学模型(增强的Rousselier和Beremin)。本文介绍了正在进行的研究项目的现状和初步结果。

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