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Characterization crack growth behavior in creep-fatigue loading conditions through different specimen geometries

机译:通过不同标本几何形状蠕变疲劳负载条件下的裂纹生长行为

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Creep-fatigue interaction would accelerate crack growth behavior and change crack growth mode, which is different from that presenting in pure creep or fatigue regimes. In addition, the constraint ahead of crack tip affects the relationship between crack growth rate and fracture mechanics parameter and thus influences the accuracy of the life prediction for defected high-temperature components. For the aim of revealing the role of various specimen geometries in the creep-fatigue regimes, crack growth behaviors were investigated using five different types of cracked specimens (including C-ring in tension CST, compact tension CT, single notch tension SENT, single notch bend SENB, middle tension MT). The crack growth and damage evolution were simulated using finite element method coupled with a non-linear creep-fatigue interaction damage model. Moreover, the solutions of (C-t)(avg) for different specimen geometries were given to expand the range of testing specimens. By analysing crack growth behavior with various specimen geometries under creep-fatigue conditions, CT and CST showed the highest crack growth rates, which were eight times as the lowest crack growth rates in MT. This revealed that distinctions in specimen geometry influenced the in-plane constraint level ahead of crack tip. Furthermore, a load-independent constraint parameter Q* was introduced to correlate the crack growth rate. The sequence of crack growth rate at a given value of (C-t)(avg) was same to the reduction of Q*. A normalized constraint level was employed to correlate with the normalized crack growth rate for the aim of transferring lab results into engineering issues.
机译:蠕变 - 疲劳相互作用将加速裂纹生长行为和改变裂纹生长模式,这与纯蠕变或疲劳制度的呈现不同。此外,裂缝尖端前的约束会影响裂纹生长速率和断裂力学参数之间的关系,从而影响缺陷的高温成分的寿命预测的准确性。为了揭示各种样本几何形状在蠕变 - 疲劳制度中的作用,使用五种不同类型的裂纹样品研究了裂纹生长行为(包括张力CS中的C形环,紧凑的张力CT,单个凹口张力,单个凹口弯曲SeNB,中间张力MT)。利用与非线性蠕变 - 疲劳相互作用损伤模型耦合的有限元法模拟裂缝生长和损伤进化。此外,给出了不同样品几何形状的(C-T)(AVG)的溶液扩大了测试标本的范围。通过在蠕变 - 疲劳条件下用各种样品几何形状分析裂纹生长行为,CT和CST显示出最高的裂纹生长率,这是MT中最低裂纹生长速率的八倍。这表明样品几何形状的区别影响了裂缝尖端前面内的约束水平。此外,引入了负载无关的约束参数Q *以相关的裂缝生长速率。给定值(C-T)(AVG)的裂纹生长速率序列与Q *的减少相同。采用归一化约束水平与归一化裂纹增长率相关,以便将实验室结果转移到工程问题中。

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