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Numerical Simulation and Experimental Study on Compound Casting of Layered Aluminum Matrix Composite Brake Drum

机译:分层铝基复合制动鼓复合铸造的数值模拟与实验研究

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摘要

The requirements of high-strength, wear-resistance and lightweight of brake drums have been continually increasing in recent years and any specific aluminum alloy or particle-reinforced aluminum matrix composites may not satisfy all the demands. Combining dissimilar materials to play their respective advantages is a solution to this problem. In this study, a compound casting method was used to combine solid SiCp/A357 composite and a liquid 7050 aluminum alloy to prepare an aluminum matrix composite with a layered structure. The ProCAST numerical simulation software was used to predict the heat transfer in compound casting process and guide the preheating temperature of the wear-resistant ring in the experiment. An Optical Microscope (OM) and Scanning Electron Microscope (SEM) were used to observe microstructures around the solid–liquid bonding interface, the element distribution and phase component of which were analyzed by Energy Dispersive Spectroscopy (EDS) and mechanical properties were evaluated by microhardness and shear tests. The results showed that the interface of the layered aluminum matrix composite prepared by this method achieved complete metallurgical bonding and a transition zone formed on the solid surface. After T6 heat treatment, the average shear strength of the interface increased from 19.8 MPa to 33.8 MPa.
机译:近年来,制动鼓的高强度,耐磨性和轻质的要求在近年来一直不断增加,并且任何特定的铝合金或粒子增强铝基复合材料可能不满足所有需求。相结合不同的材料来发挥各自的优势是解决这个问题的解决方案。在该研究中,使用复合铸造方法将固体SICP / A357复合材料和液体7050铝合金组合以制备具有层状结构的铝基基复合物。 PROCAST数值模拟软件用于预测复合铸造过程中的传热,并引导实验中耐磨环的预热温度。使用光学显微镜(OM)和扫描电子显微镜(SEM)观察固体液体键合界面周围的微观结构,通过能量分散光谱(EDS)分析的元件分布和相位分量和机械性能通过微硬度评估和剪切测试。结果表明,通过该方法制备的层状铝基基质复合物的界面实现了完整的冶金键合和形成在固体表面上的过渡区。在T6热处理之后,界面的平均剪切强度从19.8MPa增加到33.8MPa。

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