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首页> 外文期刊>MATEC Web of Conferences >Investigation of Mechanical Properties of Al7Si/ SiC and Al7SiMg/SiC Composites Produced by Semi Solid Stir Casting Technique
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Investigation of Mechanical Properties of Al7Si/ SiC and Al7SiMg/SiC Composites Produced by Semi Solid Stir Casting Technique

机译:半固态搅拌铸造Al7Si / SiC和Al7SiMg / SiC复合材料的力学性能研究

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Mechanical characteristic of silicon carbide particle reinforced aluminum matrix composites produced by semi solid stir casting technique was investigated. Al7Si and Al7SiMg were used as metal matrix. High purity silicon carbida with average particle size mesh 400 was used as reinforcement particle. Aluminum matrix composites with variation of SiC: 5 %, 7.5 % and 10 % wt were manufactured by the semi solid stir casting technique. Stiring process was performed by 45 ° degree carbide impeller at rotation of 600 rpm and temperature of 570 °C for 15 minutes. Characteritation of composites speciment were: microscopic examination, density, hardness, tensile and impact test. Hardness and density were tested randomly at top, midlle and bottom of composites product. Based on distribution of density, distribution of hardness and SEM photomicrograph, it can be concluded that semisolid stir casting produces the uniform distribution of particles in the matrix alloy. The results also indicate that introducing SiC reinforcement in aluminum matrix increases the hardness of Al7Si composite and Al7SiMg composite. Calculated porosities increases with increasing wt % of SiC reinforcements in composite. The addition of 1 % Mg also increases the hardness of composites, reduces porosities of composite and enhances the mechanical properties of composites.
机译:研究了半固态搅拌铸造法制备的碳化硅颗粒增强铝基复合材料的力学性能。 Al7Si和Al7SiMg被用作金属基质。具有平均粒度的筛孔400的高纯度碳化硅碳化硅被用作增强颗粒。通过半固态搅拌铸造技术制造出SiC含量分别为5%,7.5%和10%的铝基复合材料。通过45度碳化物叶轮在600rpm的旋转和570℃的温度下搅拌15分钟。复合材料试样的特征是:显微镜检查,密度,硬度,拉伸和冲击试验。在复合材料产品的顶部,底部和底部随机测试硬度和密度。根据密度分布,硬度分布和SEM显微照片,可以得出结论,半固态搅拌铸造使基体合金中的颗粒分布均匀。结果还表明,在铝基体中引入SiC增强材料可以提高Al7Si复合材料和Al7SiMg复合材料的硬度。计算出的孔隙率随复合材料中SiC增强材料的重量百分比的增加而增加。添加1%的Mg还可以提高复合材料的硬度,降低复合材料的孔隙率,并增强复合材料的机械性能。

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