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Multiaxial Fatigue of Welded Structures ―Problems and Present Solutions ―

机译:焊接结构的多轴疲劳―问题与解决方案―

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The assessment of multiaxial fatigue in design codes for welded steel structures is based on the use of nominal- or- hot-spot stresses, or by conventional hypotheses like von Mises, Tresca, principal stress or critical plane approaches. However, these fail, for non proportional loading which, compared with proportional loading, reduces fatigue strength and increases the scatter in fatigue lives. The use of lower design curves may cover current results, but could still be unsafe for cases not yet investigated. In contrast, the plane oriented hypothesis of equivalent effective stress (EESH) for ductile structural steels, which considers the interaction of damaging shear stresses, successfully correlates fatigue data obtained under uniaxial and multiaxial loading, including non-proportional and variable amplitude loading. However, in the case of combined spectrum loading, it proves necessary to assume a damage sum of D_(real) = 0.35 instead of unity, as proposed in design codes. The present situation should be improved by further development of hypotheses based on local parameters, including fracture mechanics. However, the assessment of multiaxial fatigue cannot be achieved using a general hypothesis, only by different ones taking into account particular ductility-dependent damaging mechanisms.
机译:焊接钢结构设计规范中对多轴疲劳的评估是基于使用名义应力或热点应力,或通过诸如von Mises,Tresca,主应力或临界面方法的常规假设进行的。但是,对于非比例载荷,这些失效,而与比例载荷相比,非比例载荷会降低疲劳强度并增加疲劳寿命中的分散性。使用较低的设计曲线可能会覆盖当前的结果,但对于尚未调查的情况仍然可能是不安全的。相比之下,对于延性结构钢,当面有效等效应力(EESH)的平面定向假设考虑了破坏性剪应力的相互作用,可以成功地关联单轴和多轴载荷(包括非比例和可变振幅载荷)下获得的疲劳数据。但是,在组合频谱负载的情况下,证明有必要假设D_(real)= 0.35的损害总和,而不是如设计规范中所建议的统一。目前的状况应通过进一步发展基于局部参数(包括断裂力学)的假设来改善。但是,仅通过不同的考虑特定延展性相关破坏机制的假设,才能使用一般假设无法评估多轴疲劳。

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