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Constitutive modelling and mechanical characterization of aluminium-based metal matrix composites produced by spark plasma sintering

机译:火花等离子体烧结铝基金属基复合材料的本构模型和力学表征

摘要

Spark plasma sintering has been applied to the production of aluminium-based functionally graded material systems to be used in abrasive and high temperature conditions. The overall mechanical properties of these metal matrix composites were determined during the optimization phases of the production process by a fast and reliable identification procedure based on instrumented indentation, which can be easily performed on small specimens. The experimental information gathered from conical (Rockwell) indentation was used as input data for the calibration of the material parameters entering the elastic–plastic Drucker–Prager constitutive model. Eventually, the so identified material parameters were used to predict the result of pyramidal (Vickers) indentation, in order to validate the model selection and the output of the identification procedure. The good matching between modelling and experimental results for the different test configurations confirmed the soundness of the considered approach, especially evidenced on the light of the strong influence on the overall mechanical characteristics of the material microstructure and defectiveness resulting from the production process, which prevent the use of classical homogenization rules to evaluate the macroscopic material properties.
机译:火花等离子体烧结已应用于生产铝基功能梯度材料系统,该系统可用于磨蚀性和高温条件。这些金属基复合材料的总体机械性能是在生产过程的优化阶段通过基于仪器压痕的快速可靠的识别程序确定的,该过程可以在小样品上轻松实现。从圆锥形(Rockwell)压痕中收集的实验信息被用作输入数据的输入数据,用于校准进入弹塑性Drucker-Prager本构模型的材料参数。最终,如此确定的材料参数被用来预测金字塔状(维氏)压痕的结果,以验证模型的选择和识别过程的输出。对于不同的测试配置,建模和实验结果之间的良好匹配证明了所考虑方法的合理性,尤其是从对材料微观结构的整体机械特性的强烈影响以及生产过程中产生的缺陷方面得到了证明。使用经典的均质化规则评估宏观材料性能。

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