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Modeling the Strain Hardening of Porous and Powder Materials During Pressing

机译:模压过程中多孔和粉末材料的应变硬化模型

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摘要

Strain hardening during pressing of powder compacts is commonly described by evaluating the average strain rate intensity. Such data allow predicting the evolution of the average yield stress of powder particles considering the strain hardening of compact material. The accuracy of this approach is assessed by comparing the values of compacting pressure determined by evaluating the average yield stress and by numerically modeling the deformation of representative cells of a porous material. Determining strain hardening from the average strain rate intensity gives a qualitatively correct description of the variation in the compacting pressure. Quantitative differences are observed only at the beginning and at the end of the pressing process, when the strain rate distribution over powder particles becomes sharply nonuniform. Evaluation of the strain hardening of a porous sample is hardly effective without detailed data on the macroscopic yield behavior of powder during pressing. This shortcoming can be avoided by evaluating strain hardening using direct multiscale modeling, which does not require macroscopic constitutive equations in analytical form. The effect of strain hardening on the residual tensile stresses in a synchronizer ring is considered as an example. It is shown that high tensile stresses are responsible for cracks in the blank.
机译:通常通过评估平均应变率强度来描述压制粉末压块期间的应变硬化。考虑到致密材料的应变硬化,这些数据可以预测粉末颗粒的平均屈服应力的演变。通过比较通过评估平均屈服应力确定的压实压力值,并通过对多孔材料的典型孔变形进行数值模拟,可以评估这种方法的准确性。从平均应变速率强度确定应变硬化,可以对压制压力的变化进行定性的正确描述。仅在压制过程的开始和结束时才观察到数量上的差异,这时粉末颗粒上的应变率分布会急剧地变得不均匀。没有关于压制过程中粉末的宏观屈服行为的详细数据,对多孔样品的应变硬化进行评估几乎是无效的。通过使用直接多尺度建模来评估应变硬化可以避免此缺点,该建模不需要解析形式的宏观本构方程。举例来说,应变硬化对同步环中残余拉应力的影响。结果表明,高拉应力是造成毛坯中裂纹的原因。

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