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Fabrication of Metal Matrix Composites under Intensive Shearing

机译:强剪切作用下金属基复合材料的制备

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Current processing methods for metal matrix composites (MMC) often produces agglomerated reinforced particles in the ductile matrix and also form unwanted brittle secondary phases due to chemical reaction between matrix and the reinforcement. As a result they exhibit extremely low ductility. In addition to the low ductility, the current processing methods are not economical for producing engineering components. In this paper we demonstrate that these problems can be solved to a certain extent by a novel rheo-process. The key step in this process is application of sufficient shear stress on particulate clusters embedded in liquid metal to overcome the average cohesive force of the clusters. Very high shear stress can be achieved by using the specially designed twin-screw machine, developed at Brunei University, in which the liquid undergoes high shear stress and high intensity of turbulence. Experiments with Al alloys and SiC reinforcement reveal that, under high shear stress and turbulence conditions Al liquid penetrates into the clusters and disperse the individual particle within the cluster, thus leading to a uniform microstructure.
机译:金属基质复合材料(MMC)的当前加工方法通常在易延展的基质中产生附聚的增强颗粒,并且由于基质与增强剂之间的化学反应,还会形成有害的脆性第二相。结果,它们表现出极低的延展性。除了延展性低之外,当前的加工方法对于生产工程部件也不经济。在本文中,我们证明了通过新颖的流变工艺可以在一定程度上解决这些问题。此过程的关键步骤是对嵌入液态金属中的颗粒团簇施加足够的剪切应力,以克服团簇的平均内聚力。通过使用文莱大学开发的专门设计的双螺杆机,可以实现非常高的剪切应力,其中液体会经受高剪切应力和高湍流强度。铝合金和SiC增强材料的实验表明,在高剪切应力和湍流条件下,Al液体会渗透到团簇中并将单个颗粒分散在团簇内,从而导致均匀的微观结构。

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