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Assessment of thermal fatigue life for 316L and P91 pipe components at elevated temperatures

机译:评估316L和P91管道在高温下的热疲劳寿命

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This paper presents an analysis of thermal fatigue tests of pipe components with 14 mm wall thickness made of 316L austenitic steel or P91 ferritic-martensitic steels. The tests are done by heating the pipes to 550 degrees C by induction heating and then cyclic cooling by water cooling resulting in secondary thermal stresses and an axial constant with a constant primary stress between 0 and 100 MPa. The damage evolution and crack depth is measured by X-ray tomography and time-of-flight-diffraction. A very complex cracking is observed for the cases with no axial primary load, and with increasing primary load dominant circumferential cracks are observed. The test are analysed by an engineering approach that included a thermal analysis, a cyclic-plasticity analysis and crack propagation. The formation of a 1 mm crack is estimated by fatigue curves. The propagation from a stipulated 1 mm axial or circumferential crack is done by plasticity corrected stress intensity factors in conjunction with Paris law. The fatigue life predictions are compared with the experimental observations and in general very good agreement is reached, in particular for the cases with a large primary load. The proposed approach can be used in an engineering analysis to predict the thermal fatigue life of a component. (C) 2016 European Commission. Published by Elsevier Ltd.
机译:本文对由316L奥氏体钢或P91铁素体-马氏体钢制成的壁厚14 mm的管道部件的热疲劳试验进行了分析。通过感应加热将管道加热到550摄氏度,然后通过水冷进行循环冷却,从而产生次级热应力和轴向常数,且初级应力在0到100 MPa之间,从而完成了测试。损伤演变和裂纹深度通过X射线断层扫描和飞行时间衍射测量。对于没有轴向主要载荷的情况,观察到非常复杂的裂纹,随着主要载荷的增加,观察到主要的圆周裂纹。通过工程方法对测试进行分析,包括热分析,循环塑性分析和裂纹扩展。通过疲劳曲线可以估算出1 mm裂纹的形成。规定的1毫米轴向或圆周裂纹的扩展是通过可塑性校正应力强度因子结合巴黎定律进行的。疲劳寿命的预测值与实验观察值进行了比较,并且总体上取得了很好的一致性,特别是对于主载荷较大的情况。所提出的方法可用于工程分析中以预测部件的热疲劳寿命。 (C)2016欧洲委员会。由Elsevier Ltd.发布

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