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Modeling of the metal powder compaction process using the cap model. Part I. Experimental material characterization and validation

机译:使用盖模型对金属粉末压实过程进行建模。第一部分实验材料的表征和验证

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In order to produce crack free metal powder compacts that respect both the dimensional tolerances and the mechanical strength requirements, both tooling design and compaction sequence have to be adequately determined. The finite element method, through the use of an appropriate constitutive model of the powder medium, has recently been used as an efficient design tool. The accuracy of this method highly depends on the faithfulness of the constitutive model and the quality of the material parameter set. Furthermore, in order for the simulation results to be reliable, they should be experimentally validated on real parts featuring density variations. Hence, the main concerns of this paper are the development of a standard calibration procedure for the cap material model as well as the development of a reliable technique for the experimental validation of the powder compaction simulation results. The developed calibration procedure, applied for the case of 316L stainless steel powders, is based on a series of isostatic, triaxial and uniaxial compaction tests as well as resonant frequency tests. In addition, a sensitivity study was performed in order to determine the relative importance of each factor and basic simulations served to validate the parameter set extraction procedure. On the other hand, a local density measurement technique was developed for the experimental validation of the model results. This technique is based on correlation with Vickers macro-hardness. Finally, an application featuring the compaction of a 316L stainless steel cylindrical component is presented to illustrate the predictive capabilities of the cap material model as well as the accuracy of the acquired material parameter set. (C) 2002 Published by Elsevier Science Ltd. [References: 32]
机译:为了生产既符合尺寸公差又符合机械强度要求的无裂纹金属粉末压坯,必须充分确定模具设计和压实顺序。通过使用粉末介质的适当本构模型,有限元方法最近已被用作有效的设计工具。该方法的准确性很大程度上取决于本构模型的真实性和材料参数集的质量。此外,为了使仿真结果可靠,应该在具有密度变化的真实零件上进行实验验证。因此,本文的主要关注点是为瓶盖材料模型开发标准的校准程序,以及为粉末压实模拟结果的实验​​验证开发可靠的技术。针对316L不锈钢粉末的情况,开发出的校准程序基于一系列等静压,三轴和单轴压实测试以及共振频率测试。此外,进行了敏感性研究,以确定每个因素的相对重要性,并通过基本模拟来验证参数集提取过程。另一方面,开发了局部密度测量技术以对模型结果进行实验验证。该技术基于与维氏宏观硬度的相关性。最后,提出了一种以316L不锈钢圆柱组件的压实为特征的应用,以说明瓶盖材料模型的预测能力以及所获取材料参数集的准确性。 (C)2002由Elsevier Science Ltd.发布[参考:32]

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