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A phenomenological stress-strain model for wrought magnesium alloys under elastoplastic strain-controlled variable amplitude loading

机译:变形应变控制的变幅载荷作用下变形镁合金的现象学应力-应变模型

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摘要

Wrought magnesium alloys typically reveal strong basal textures and thus, non-symmetric sigmoidal shaped hysteresis loops within the elastoplastic load range. A detailed description of those hysteresis loops is necessary for numerical fatigue analyses. Therefore, a one-dimensional phenomenological model was developed for elastoplastic strain-controlled constant and variable amplitude loading. The phenomenological model consists of a three-component equation, which considers elastic, plastic, and pseudoelastic strain components with a set of eight material constants. Experimentally and numerically determined hysteresis loops of four different magnesium alloys were compared by means of different examples with constant and variable amplitude. Good correlation is reached and the relevant fatigue parameters like strain energy density were estimated with good accuracy. Applying an energy based fatigue parameter on modelled hysteresis loops, the fatigue life is predicted adequately for constant and variable amplitude loading including mean strain and mean stress effects.
机译:锻造镁合金通常会表现出强烈的基础纹理,因此在弹塑性载荷范围内会出现非对称的S形滞后回线。这些滞后回线的详细描述对于数值疲劳分析是必要的。因此,为弹塑性应变控制的恒定和可变振幅载荷开发了一维现象学模型。现象模型由一个三分量方程组成,该方程考虑了具有八个材料常数的弹性,塑性和拟弹性应变分量。通过不同的示例以恒定和可变幅度比较了四种不同镁合金的实验和数值确定的磁滞回线。达到了良好的相关性,并且以良好的准确性估算了相关的疲劳参数(如应变能密度)。在模型化的磁滞回线上应用基于能量的疲劳参数,可以针对恒定和可变振幅负载(包括平均应变和平均应力影响)充分预测疲劳寿命。

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