铸钢裂纹闭合机制广义数据集的建立

M. Horvath, M. Oberreiter, M. Stoschka, M. Leitner
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引用次数: 2

摘要

在构件中,裂纹扩展受到裂纹闭合机制的影响,该机制影响循环加载期间相关阈值应力强度因子范围的建立。当结构件受到不同载荷比的使用载荷时,长裂纹阈值会发生显著变化,导致裂纹闭合机制具有严重的应力比依赖性。因此,需要大量的裂纹扩展实验来获得经统计证明的断裂力学参数,这些参数描述了裂纹扩展阻力曲线中闭合效应的累积。本文提出了一个通用数据集来评估G21Mn5+N铸钢裂纹闭合机制的形成。利用单边缘缺口弯曲(SENB)试样几何形状进行了大量裂纹扩展实验,包括交替应力比和膨胀应力比。统计导出的广义裂纹扩展阻力曲线统一表征了闭合效应对裂纹扩展速率的影响。为了将数据集扩展到任意载荷比,根据Newman调用了长裂纹阈值方法。通过senb试样几何形状的断裂力学分析计算,验证了G21Mn5+N铸钢广义数据集的有效性。结合修正的NASGRO方程,观察到分析和实验裂纹扩展速率的良好相关性。此外,导出的主裂纹扩展阻力曲线作为用户自定义脚本实现到数值裂纹扩展计算工具中,并支持基于节点的局部数值裂纹扩展研究,如代表性senb样本所示。综上所述,导出的数据集便于计算任意应力比下受裂纹影响的铸钢构件的疲劳寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Set-up of a Generalized Dataset for Crack-Closure-Mechanisms of Cast Steel
In components, crack propagation is subjected to crack-closure-mechanisms which affect the build-up of the relevant threshold stress intensity factor range during cyclic loading. As structural parts are exposed to service loads incorporating a variety of load ratios, a significant change of the long-crack threshold value occurs, leading to a severe stress ratio dependency of crack-closure-mechanisms. Thus, an extensive number of crack propagation experiments is required to gain statistically proven fracture mechanical parameters describing the build-up of closure effects as crack growth resistance curves.The article presents a generalized dataset to assess the formation of crack-closure-mechanisms of cast steel G21Mn5+N. Numerous crack propagation experiments utilizing single edge notched bending (SENB) sample geometries are conducted, incorporating alternate to tumescent stress ratios. The statistically derived, generalized crack growth resistance curve features the impact of closure effects on the crack propagation rate in a uniform manner. To extend the dataset to arbitrary load ratios, the long-crack threshold approach according to Newman is invoked. The generalized dataset for the cast steel G21Mn5+N is validated by analytical fracture mechanical calculations for the utilized SENB-sample geometries. Incorporating a modified NASGRO equation, a sound correlation of analytical and experimental crack propagation rates is observed. Moreover, the derived master crack propagation resistance curve is implemented as a user-defined script into a numerical crack growth calculation tool and supports a local, node--based numerical crack propagation study as demonstrated for a representative SENB-sample. Concluding, the derived dataset facilitates the calculation of fatigue life of crack-affected cast steel components subjected to arbitrary stress ratios.
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