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A density-dependent endochronic plasticity for powder compaction processes

机译:粉末压实过程的密度依赖性内时塑性

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This paper is concerned with the numerical modeling of powder cold compaction process using a density-dependent endochronic plasticity model. Endochronic plasticity theory is developed based on a large strain plasticity to describe the nonlinear behavior of powder material. The elastic response is stated in terms of hypoelastic model and endochronic plasticity constitutive equations are stated in unrotated frame of reference. A trivially incrementally objective integration scheme for rate constitutive equations is established. Algorithmic modulus consistent with numerical integration algorithm of constitutive equations is extracted. It is shown how the endochronic plasticity describes the behavior of powder material from the initial stage of compaction to final stage, in which material behaves as solid metals. It is also shown that some commonly used plasticity models for powder material can be derived as special cases of the proposed endochronic theory. Finally, the numerical schemes are examined for efficiency in the modeling of a plain bush, a rotational-flanged and a shaped tablet powder compaction component.
机译:本文涉及使用密度依赖的内时塑性模型对粉末冷压实过程进行数值模拟。基于大应变可塑性发展了内时塑性理论,以描述粉末材料的非线性行为。弹性响应以次弹性模型表示,内时塑性本构方程以非旋转参考系表示。建立了速率本构方程的平凡增量目标积分方案。提取与本构方程数值积分算法一致的算法模量。它显示了内时可塑性如何描述粉末材料从压实初期到最终阶段的行为,其中粉末材料表现为固体金属。还表明,可以将某些常用的粉末材料可塑性模型作为所提出的内时理论的特例得出。最后,对数值方案进行了检查,以评估普通衬套,旋转法兰和成形片剂粉末压实组件的建模效率。

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