Mechanical behavior and microstructure characterization of sinter-forged SiC particle reinforced aluminum matrix composites

N Chawla, J.J Williams, R Saha
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引用次数: 84

Abstract

A novel, low-cost sinter-forging approach to processing particle reinforced metal matrix composites for high-performance applications was examined. The microstructure of the sinter-forged composites exhibited relatively uniform distribution of SiC particles, which appeared to be somewhat aligned perpendicular to the forging direction. The degree of alignment and interparticle bond strength was not as high as that observed for the extruded composite. The sinter-forged composite exhibited higher Young’s modulus and ultimate tensile strength than the extruded material, but lower strain-to-failure. The higher modulus and strength were attributed to the absence of any significant processing-induced particle fracture, while the lower strain-to-failure was caused by poorer matrix interparticle bonding compared to the extruded material. Fatigue behavior of sinter-forged composites was similar to that of the extruded material. Fe-rich inclusions were extremely detrimental to fatigue life. Cleaner processing, which eliminated the inclusions, enhanced the fatigue life of the sinter-forged composites to levels similar to that of the extruded material.

烧结锻造SiC颗粒增强铝基复合材料的力学行为和微观结构表征
研究了一种新的、低成本的烧结锻造方法,用于加工颗粒增强金属基复合材料,以实现高性能应用。烧结-锻造复合材料的微观结构表现出相对均匀的SiC颗粒分布,其似乎在一定程度上垂直于锻造方向排列。取向度和颗粒间结合强度不如在挤出复合材料中观察到的那么高。烧结-锻造复合材料表现出比挤压材料更高的杨氏模量和极限抗拉强度,但破坏应变更低。较高的模量和强度归因于没有任何显著的加工引起的颗粒断裂,而较低的失效应变是由于与挤压材料相比基体颗粒间结合较差所致。烧结-锻造复合材料的疲劳行为与挤压材料相似。富铁夹杂物对疲劳寿命极为不利。更清洁的加工消除了夹杂物,将烧结锻造复合材料的疲劳寿命提高到与挤压材料相似的水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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