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Crack Propagation Life Prediction of a Perforated Plate on the Basis of the Macroscopic Inelastic Behavior under Thermal Fatigue

机译:基于热疲劳下宏观非弹性行为的多孔板裂纹扩展寿命预测

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Crack propagation behavior of a perforated plate of normalized and tempered 21/4Cr-1Mo steel modeling ligament regions of boiler headers was examined under out-of-phase thermal fatigue at a maximum temperature of 600 deg C in the air. Inelastic analysis of the perforated plate under the thermal fatigue was carried out, and the nonlinear fracture mechanics parameters such as the J and C integral were obtained by the line integral method for observed crack distributions. A prediction method for these parameters was proposed, which is applicable to the displacement-controlled condition such as thermal fatigue. In this method, the change of the macroscopic stress-strain relation of the perforated plate with propagating cracks was combined with the reference stress concept under the displacement-controlled condition. The predicted fracture mechanics parameters from this method coincided well with those from the inelastic analysis. The prediction of the crack propagation life on the basis of the proposed method provided a good correspondence with the test results of the perforated plate under thermal fatigue.
机译:在空气中最高温度为600℃的异相热疲劳条件下,研究了锅炉集管的正火和回火21 / 4Cr-1Mo钢建模韧带区域的多孔板的裂纹扩展行为。对多孔板在热疲劳条件下进行了非弹性分析,并通过线积分法获得了J,C积分等非线性断裂力学参数,用于观察裂纹的分布。提出了这些参数的预测方法,适用于热疲劳等位移控制条件。在这种方法中,在位移受控的情况下,将带有扩展裂纹的多孔板的宏观应力-应变关系的变化与参考应力概念相结合。该方法预测的断裂力学参数与非弹性分析的预测力学参数非常吻合。基于所提出的方法对裂纹扩展寿命的预测与多孔板在热疲劳条件下的测试结果吻合良好。

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