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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Influence of yield surface curvature on the macroscopic yielding and ductile failure of isotropic porous plastic materials
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Influence of yield surface curvature on the macroscopic yielding and ductile failure of isotropic porous plastic materials

机译:屈服面曲率对各向同性多孔塑料材料宏观屈服和塑性破坏的影响

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Numerical unit cell models of an approximative representative volume element for a porous ductile solid are utilized to investigate differences in the mechanical response between a quadratic and a non-quadratic matrix yield surface. A Hershey equivalent stress measure with two distinct values of the yield surface exponent is employed as the matrix description. Results from the unit cell calculations are further used to calibrate a heuristic extension of the Gurson model which incorporates effects of the third deviatoric stress invariant. An assessment of the porous plasticity model reveals its ability to describe the unit cell response to some extent, however underestimating the effect of the Lode parameter for the lower triaxiality ratios imposed in this study when compared to unit cell simulations. Ductile failure predictions by means of finite element simulations using a unit cell model that resembles an imperfection band are then conducted to examine how the non-quadratic matrix yield surface influences the failure strain as compared to the quadratic matrix yield surface. Further, strain localization predictions based on bifurcation analyses and imperfection band analyses are undertaken using the calibrated porous plasticity model. These simulations are then compared to the unit cell calculations in order to elucidate the differences between the various modelling strategies. The current study reveals that strain localization analyses using an imperfection band model and a spatially discretized unit cell are in reasonable agreement, while the bifurcation analyses predict higher strain levels at localization. Imperfection band analyses are finally used to calculate failure loci for the quadratic and the non-quadratic matrix yield surface under a wide range of loading conditions. The underlying matrix yield surface is demonstrated to have a pronounced influence on the onset of strain localization.
机译:利用多孔延性固体的近似代表性体积元素的数值晶胞模型来研究二次和非二次基体屈服面之间的机械响应差异。具有屈服面指数的两个不同值的好时等效应力量度用作矩阵描述。晶胞计算的结果进一步用于校准Gurson模型的启发式扩展,该扩展结合了第三偏向应力不变量的影响。对多孔可塑性模型的评估揭示了它在一定程度上描述晶胞响应的能力,但是与晶胞模拟相比,低估了Lode参数对本研究中施加的较低三轴比的影响。然后进行有限元模拟,通过使用类似于缺陷带的晶胞模型进行延性失效预测,以检查与二次矩阵屈服面相比,非二次矩阵屈服面如何影响失效应变。此外,使用分叉的可塑性模型对基于分叉分析和缺陷带分析的应变定位进行了预测。然后将这些模拟与单位单元计算进行比较,以阐明各种建模策略之间的差异。当前的研究表明,使用缺陷带模型和空间离散的晶胞进行应变本地化分析是合理的,而分叉分析预测了局部较高的应变水平。缺陷带分析最终用于计算在各种载荷条件下二次和非二次基体屈服面的失效轨迹。底层的基体屈服面被证明对应变局部化的开始有显着影响。

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