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Crack Initiation, Propagation, and Arrest in 316L Model Pipe Components under Thermal Fatigue

机译:在热疲劳下316L模型管道部件中的裂纹启动,传播和停滞器

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There is a continuing need for reliable thermal fatigue analysis tools to ensure that high safety levels are maintained in the main coolant lines of light water reactors. As a contribution to this effort, a combined experimental and numerical investigation has been conducted on cylindrical components of 316L stainless steel subjected to cyclic thermal shocks of varying intensity. It exploits a dedicated rig in which the tubular test pieces are subjected to induction heating and water quenching. Under the applied loading, a network of cracks initiates at the inner surface; some of these propagate further through the wall thickness. The number of cycles to crack initiation is estimated from surface replicas taken during intermittent stops, whereas the crack depth of fatigue cracks is measured using an ultrasound time of flight diffraction technique (TOFD). The analysis is done by a sequentially coupled thermal-stress finite element analysis using a cyclic plasticity model. Predictions of the crack initiation life (based on crack initiation curves as well as crack propagation models for microstructurally short cracks) are in good agreement with the test results. Crack propagation for small fatigue cracks was estimated by plastic strain amplitude based propagation formulas, whereas long crack propagation is analyzed by Paris law type criteria using ΔK as well as ΔCTOD.
机译:继续需要可靠的热疲劳分析工具,以确保在光水反应器的主要冷却剂管线中保持高安全水平。作为对此努力的贡献,在316L不锈钢的圆柱形部件上进行了组合的实验和数值研究,该组件受到不同强度的循环热冲击的316L不锈钢。它利用了一种专用钻井件,其中管状试样经受感应加热和水淬火。在施加的装载下,裂缝网络在内表面引发;其中一些通过壁厚进一步传播。周期裂纹萌生的数目被从表面估计期间间歇停止副本所采取的,而疲劳裂纹的裂纹深度是使用飞行衍射技术(TOFD)的超声波的时间测量。通过使用循环可塑性模型通过序贯耦合的热应力有限元分析来完成分析。裂纹启动寿命的预测(基于裂纹启动曲线以及微观结构短裂缝的裂纹传播模型)与测试结果吻合良好。通过塑性应变幅度的传播公式估计小疲劳裂缝的裂纹传播,而使用ΔK以及ΔCOD的巴黎法律型标准分析了长裂纹传播。

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