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Cleavage fracture of RPV steel following warm pre-stressing: micromechanical analysis and interpretation through a new model

机译:预热后RPV钢的劈裂断裂:新模型的微力学分析和解释

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In this paper, the warm pre-stress (WPS) effect on the cleavage fracture of an 18MND5 (AS33B) RPV steel is investigated. This effect, which describes the effective enhancement of the cleavage fracture toughness at low temperature following a prior loading at high temperature, has received great interest in light of its significance in the integrity assessment of structures, such as nuclear pressure vessels, subjected to thermal transients. Several loading cycles between room temperature (RT) and -150 deg C are considered: Load-Unload-Cool-Fracture (LUCF), Load-Cool-Fracture (LCF) and Load-Cool with Increasing K-Fracture (LCIKF). All experiments complied with the conservative principle, which states that no fracture will occur if the applied stress intensity factor (SIF) decreases (or is held constant) while the temperature at the crack-tip decreases, even if the fracture toughness of the virgin material is exceeded. The experimental results indicate that an effective WPS effect is present even at small pre-load (K_(wps) = 40 MPa m~(1/2)), and that a minimum critical slope (- DELTA K/ DELTA T) in the LCIKF cycle has to be exceeded to induce cleavage fracture between RT and -150 deg C. Numerical modelling was performed using mixed isotropic and kinematic hardening laws identified on notched tensile (NT) specimens, tested in tension to large strains (up to 40 percent), followed by large compressive strains. Detailed microstructural investigations on compact tensile (CT) and NT fracture test specimens were performed so as to determine the nature of the cleavage initiation sites, as well as the local mechanical conditions at fracture. Based on this local information, a new cleavage model was calibrated and applied to predict the probability of cleavage fracture after WPS: it is shown that the predictions are in good agreement with the experimental results.
机译:本文研究了热预应力(WPS)对18MND5(AS33B)RPV钢的解理断裂的影响。考虑到其在经受热瞬变的结构(如核压力容器)的完整性评估中的重要性,这种效应描述了在事先施加高温后在低温下有效提高劈裂断裂韧性的功能,引起了人们极大的兴趣。 。考虑了在室温(RT)和-150摄氏度之间的几个加载循环:加载-卸载-冷却-断裂(LUCF),加载-冷却-断裂(LCF)和K-断裂增加的加载-冷却(LCIKF)。所有实验均符合保守原则,该原则规定,即使原始材料的断裂韧性降低,而施加的应力强度因子(SIF)降低(或保持恒定)而裂纹尖端温度降低,也不会发生断裂。被超过。实验结果表明,即使在较小的预载荷下(K_(wps)= 40 MPa m〜(1/2)),也存在有效的WPS效应,并且在最大预紧力下的最小临界斜率(-DELTA K / DELTA T)。必须超过LCIKF周期,才能在RT和-150℃之间引起劈裂断裂。使用在缺口拉伸(NT)样品上确定的各向同性和运动学混合硬化定律进行数值建模,并在大应变(最高40%)的拉伸下进行测试,然后是大的压缩应变。对致密拉伸(CT)和NT断裂测试样品进行了详细的微观结构研究,以确定断裂起始位点的性质以及断裂时的局部力学条件。基于该局部信息,校准了新的切割模型,并将其用于预测WPS后的切割断裂的可能性:表明该预测与实验结果良好吻合。

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