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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Influence of Interfacial Reaction on the Fluidity of A356 Al-SiC_p Composites--A Theoretical Approach
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Influence of Interfacial Reaction on the Fluidity of A356 Al-SiC_p Composites--A Theoretical Approach

机译:界面反应对A356 Al-SiC_p复合材料流动性的影响-理论方法

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Fluidity behavior of the A356 Al alloy and A356 Al-SiC_p composites has been theoretically predicted using the Flemings model after incorporating (1) the solidification behavior of the alloy; (2) the decrease in flow velocity due to surface tension and friction losses; and (3) the increase in viscosity of composite slurries due to size, shape, and volume fraction of the reinforcement. It is observed that the fluidity values of A356 Al alloy and A356 Al-10 vol pct SiC_p composite predicted by the modified Flemings model are in good agreement with the experimental values reported in the literature. On the other hand, the theoretically calculated fluidity length of A3 56 Al-15 and 20 vol pct SiC_p composites using the modified Flemings model agrees well with the experimental results only up to 750 deg C and 710 deg C, respectively. However, above these respective temperatures, the experimental spiral length decreases with pouring temperature, whereas the theoretically calculated spiral length increases linearly as a function of pouring temperature. Incorporation of experimentally calculated interfacial reaction terms in the modified Fleming model makes the predicted and experimental values of fluidity of A3 56 Al-15 and 20 vol pct SiC_p composites closer in the entire temperature range. Thus, the high dependence of the fluidity of A356 Al-SiC_p composites on the morphology of the interfacial reaction product is demonstrated.
机译:在结合(1)合金的凝固行为之后,使用弗莱明斯模型从理论上预测了A356铝合金和A356 Al-SiC_p复合材料的流动性。 (2)由于表面张力和摩擦损失导致流速降低; (3)由于增强材料的尺寸,形状和体积分数,复合浆料的粘度增加。可以看出,用改进的弗莱明斯模型预测的A356铝合金和A356 Al-10体积pct SiC_p复合材料的流动性值与文献报道的实验值非常吻合。另一方面,使用改进的弗莱明斯模型在理论上计算出的A3 56 Al-15和20 vol pct SiC_p复合材料的流动性长度分别仅在最高750℃和710℃时才与实验结果非常吻合。然而,在这些相应温度之上,实验螺旋长度随浇注温度而减小,而理论计算的螺旋长度随浇注温度而线性增加。在改良的弗莱明模型中结合实验计算的界面反应项,可以使A3 56 Al-15和20 vol pct SiC_p复合材料在整个温度范围内的流动性预测值和实验值更接近。因此,证明了A356 Al-SiC_p复合材料的流动性对界面反应产物的形态的高度依赖性。

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