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首页> 外文期刊>JOM >Spark Plasma Sintering of Aluminum-Magnesium-Matrix Composites with Boron Carbide and Tungsten Nano-powder Inclusions: Modeling and Experimentation
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Spark Plasma Sintering of Aluminum-Magnesium-Matrix Composites with Boron Carbide and Tungsten Nano-powder Inclusions: Modeling and Experimentation

机译:碳化硼和钨纳米粉夹杂物的铝镁基复合材料的火花等离子体烧结:建模和实验

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摘要

Spark-plasma sintering (SPS) is used to fabricate fully-dense metal-matrix (Al/Mg) composites containing hard ceramic (boron carbide) and refractory metal (tungsten) inclusions. The study objectives include the modeling (and its experimental verification) of the process of the consolidation of the composites consisted of aluminum-magnesium alloy AMg6 (65 wt.%), B4C powder (15 wt.%), and W nano-powder (20 wt.%), as well as the optimization of the composite content and of the SPS conditions to achieve higher density. Discrete element modeling of the composite particles packing based on the particle size distribution functions of real powders is utilized for the determination of the powder compositions rendering maximum mixture packing densities. Two models: a power-law creep model of the high temperature deformation of powder materials, and an empirical logarithmic pressure-temperature-relative density relationship are successfully applied for the description of the densification of the aluminum-magnesium metal matrix powder composite subjected to spark-plasma sintering. The elastoplastic properties of the sintered composite samples are assessed by nanoindentation.
机译:放电等离子烧结(SPS)用于制造包含致密陶瓷(碳化硼)和难熔金属(钨)夹杂物的全致密金属基质(Al / Mg)复合材料。研究目标包括对由铝镁合金AMg6(65 wt。%),B4C粉末(15 wt。%)和W纳米粉末( 20 wt。%),以及优化复合材料含量和SPS条件以获得更高的密度。基于真实粉末的粒度分布函数对复合颗粒填料的离散元素建模用于确定具有最大混合物填料密度的粉末成分。两种模型:粉末材料高温变形的幂律蠕变模型和经验对数压力-温度-相对密度关系被成功地用于描述铝镁金属基粉末复合材料的电火花致密化。 -等离子体烧结。烧结的复合材料样品的弹塑性通过纳米压痕评估。

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