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首页> 外文期刊>Journal of international management >Physics-Based Constitutive Model of Porous Materials for Die/Isostatic Compaction of Metallic Powders
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Physics-Based Constitutive Model of Porous Materials for Die/Isostatic Compaction of Metallic Powders

机译:金属粉末模具/等静脉压实的基于物理基础模型

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摘要

A physics-based constitutive model of porous materials is proposed to enhance the accuracy of numerical analysis in die/isostatic compaction. The correlation between the yield function and equivalent work equation was derived, and the numerical integration method was modified with the correlation. It is found that the apparent work of porous materials is lower than the product of relative density and equivalent work of solid materials at the beginning of compaction, implying the kinematic motion of powders and the resultant particle rearrangement. For verification of the proposed model, finite element analyses were performed for the die/isostatic compaction of three metal powders: Ti, SUS316L, and Al6061 powders. Compared with two conventional constitutive models, the proposed model improves the accuracy of the densification behaviors in all the stage during die/isostatic compaction. Furthermore, this study is a groundwork to link the densification behavior of porous materials at bulk scale to the particulate behavior of powders at microscale.
机译:提出了一种基于物理的多孔材料结构型模型,提高模具/等静压压实中数值分析的准确性。导出屈服函数和等效工作方程之间的相关性,并用相关性修改了数值积分法。结果发现,多孔材料的表观作品低于压实开始时固体材料的相对密度和等同工作的产物,暗示粉末的运动运动和所得颗粒重排。为了验证所提出的模型,对三种金属粉末的模具/等静脉压实进行有限元分析:Ti,SUS316L和Al6061粉末。与两个传统的本构型模型相比,所提出的模型在模具/等静压期间提高了所有阶段的致密化行为的准确性。此外,该研究是将多孔材料的致密性行为以散装量子连接到微尺寸的粉末的颗粒行为。

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