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A novel engineering method based on the critical plane concept to estimate the lifetime of weldments subjected to variable amplitude multiaxial fatigue loading

机译:一种基于临界面概念的工程新方法,用于估算变幅多轴疲劳载荷下的焊件寿命

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This paper summarizes an attempt at proposing a new engineering method suitable for estimating the fatigue lifetime of steel- and aluminium-welded connections subjected to variable amplitude multiaxial fatigue loading. In particular, the proposed approach is based on the use of the so-called Modified Wohler Curve Method (MWCM), I.e. a bi-parametrical critical plane approach, whose accuracy has been checked so far solely in addressing the constant amplitude multiaxial fatigue problem. In order to extend the use of our criterion to variable amplitude situations, the critical plane is suggested here as being determined by taking full advantage of the maximum variance concept, that is, such a plane is assumed to be the one containing the direction along which the variance of the resolved shear stress reaches its maximum value. The main advantage of such a strategy is that the cycle counting can directly be performed by considering the shear stress resolved along the maximum variance direction: by so doing, the problem is greatly simplified, allowing those well-established cycle counting methods specifically devised to address the uniaxial variable amplitude problem to be extended to those situations involving multiaxial fatigue loading. The validity of the proposed methodology was checked by using two different datasets taken from the literature and generated by testing both steel and aluminium tube-to-plate welded connections subjected to in-phase and 90° out-of-phase variable amplitude bending and torsion. This new fatigue life assessment technique was seen to be highly accurate allowing the estimates to fall within the calibration scatter bands not only when the constants in the governing equations were calculated by using the experimental uniaxial and torsional fully reversed fatigue curves, but also when they were determined by using the reference curves supplied, for the investigated geometry, by the available standard codes. These results seem to strongly support the idea that, thanks to its peculiar features, our method can be considered as an effective engineering approach capable of performing multiaxial fatigue assessment under variable amplitude loading which fully complies with the recommendations of the available standard codes.
机译:本文总结了提出一种新的工程方法的尝试,该方法适用于估算在可变振幅多轴疲劳载荷下钢和铝焊接接头的疲劳寿命。特别地,所提出的方法是基于所谓的改进的Wohler曲线方法(MWCM)的使用,即。一种双参数临界面方法,到目前为止,仅在解决恒定振幅多轴疲劳问题时才检查了其准确性。为了将我们的标准的使用扩展到可变幅度的情况,此处建议临界平面是通过充分利用最大方差概念确定的,即,假定该平面为包含沿其方向的平面解析剪切应力的方差达到最大值。这种策略的主要优点是,可以通过考虑沿最大方差方向解析的切应力直接执行周期计数:这样,问题得到了极大的简化,从而允许那些专门设计用于解决问题的完善的周期计数方法单轴可变振幅问题将扩展到涉及多轴疲劳载荷的情况。通过使用两个来自文献的不同数据集来检验所提出方法的有效性,该数据集是通过测试钢和铝管对板焊接连接经受同相和90°异相可变振幅弯曲和扭转而生成的。这种新的疲劳寿命评估技术被认为是高度精确的,不仅在使用单轴和扭转完全反向的疲劳曲线来计算控制方程中的常数时,而且在将控制方程式中的常数计算在内时,估计值都落在校准散射带内。通过使用提供的参考曲线(对于所研究的几何形状)通过可用的标准代码确定。这些结果似乎强烈支持以下想法:由于其独特的功能,我们的方法可以被视为一种有效的工程方法,能够在可变振幅载荷下执行多轴疲劳评估,完全符合可用标准规范的建议。

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