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EFFECT OF REINFORCEMENT TYPE AND EXTRUSION ON THE MICROSTRUCTURE AND MECHANICAL BEHAVIOR OF AL ALLOY COMPOSITES

机译:补强类型和挤压对铝合金复合材料微观组织和力学行为的影响

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Aluminum based metal matrix composites offer greater potential for light weight, wear resistant and high temperature applications. Secondary processing like extrusion results in the improvement of strength and ductility of the as-cast composites. The objective of this research is to investigate the effect of reinforcement type and extrusion process on the microstructure and mechanical properties of the hot extruded A12014 aluminum alloy. Two different composites were made by reinforcing the alloy with 10 wt.% SiC and 10 wt.% Si_3N_4 particles using stir casting method. The particles were electroless Ni coated to improve the wettability of reinforcement by the matrix alloy. The composite ingots were further extruded at 475 °C with an extrusion ratio of 8:1. The microstructures and the mechanical properties of the base alloy and the composites were examined systematically. The extruded composites show more homogenous microstructure with uniform distribution of particles in the matrix alloy. Both the Al/SiC and Al/Si_3N_4 composites exhibited improved hardness compared to the base alloy in both as-cast and extruded conditions. It was also found from tension tests that the both the composites show higher yield strength, ductility and ultimate tensile strength (UTS) than the base alloy in the extruded condition. The reason for improvement in strength in the extruded conditions is explained in detail. Fracture surface analysis revealed the transition from brittle fracture mode in the as cast composites to the ductile fracture in the extruded condition.
机译:铝基金属基复合材料为轻质,耐磨和高温应用提供了更大的潜力。像挤压这样的二次加工可提高铸态复合材料的强度和延展性。本研究的目的是研究增强类型和挤压工艺对热挤压A12014铝合金的组织和力学性能的影响。通过使用搅拌铸造法用10 wt。%的SiC和10 wt。%的Si_3N_4颗粒增强合金,制成了两种不同的复合材料。颗粒经过化学镀镍处理,以提高基体合金对增强材料的润湿性。复合铸锭在475°C下以8:1的挤压比进一步挤压。系统地检查了基础合金和复合材料的微观结构和力学性能。挤出的复合材料显示出更均匀的微观结构,基体合金中颗粒均匀分布。与铸态和挤压条件下的基础合金相比,Al / SiC和Al / Si_3N_4复合材料均显示出更高的硬度。从拉伸试验还发现,两种复合材料在挤压条件下均比母材显示出更高的屈服强度,延展性和极限拉伸强度(UTS)。详细说明在挤出条件下强度提高的原因。断裂表面分析表明,铸态复合材料从脆性断裂模式转变为挤压状态下的韧性断裂。

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