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Calculation of fatigue limits of case-hardened specimens with consideration of mean stresses and residual stresses

机译:考虑平均应力和残余应力的表面硬化样品疲劳极限的计算

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The strength of case-hardened parts under cyclic loading can be determined in an experimental manner, but this can produce a large amount of costs due to the expenditure of material and testing time. Therefore, a calculation method is developed, that strongly reduces the number of experiments. The presented model is based on Weibull's weakest-link concept and allows to compute the survival probability of a case-hardened part which is loaded close to the fatigue limit. The essential quantities in this model are the distribution of Vicker's hardness of the material, the exponents of the Weibull distribution of the volume and the surface, the residual stress state, the surface roughness and the surface oxidation depth. By integrating the survival probabilities of the surface and the volume, the survival probability of the entire specimen or part can be calculated, which allows to compute the fatigue limit. The necessary parameters have to be determined from reference specimens. The model is successfully examined by comparing experimental and calculated results of smooth and notched case-hardened specimens under alternating torsion, rotating bending, repeated tension and tension-compression.
机译:可以通过实验确定表面硬化零件在循环载荷下的强度,但是由于材料和测试时间的浪费,这会产生大量成本。因此,开发了一种大大减少实验次数的计算方法。提出的模型基于Weibull的最弱链接概念,并允许计算载荷接近疲劳极限的表面硬化零件的生存概率。该模型中的基本量是材料的维氏硬度分布,体积和表面的威布尔分布指数,残余应力状态,表面粗糙度和表面氧化深度。通过对表面和体积的生存概率进行积分,可以计算出整个样本或零件的生存概率,从而可以计算出疲劳极限。必须从参考样本中确定必要的参数。通过比较光滑和有缺口的表面硬化试样在交替扭转,旋转弯曲,反复拉伸和拉伸压缩下的实验和计算结果,成功地检验了该模型。

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