首页> 外文期刊>Journal of Materials Engineering and Performance >Microstructure Characterization, Mechanical, and Tribological Properties of Slow-Cooled Sb-Treated Al-20Mg(2)Si-Cu In Situ Composites
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Microstructure Characterization, Mechanical, and Tribological Properties of Slow-Cooled Sb-Treated Al-20Mg(2)Si-Cu In Situ Composites

机译:慢冷的SB处理的S1-20mg(2)Si-Cu的微观结构表征,机械和摩擦学性质原位复合材料

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Role of Sb addition on structural characteristics, mechanical properties, and wear behavior of Al-20Mg(2)Si-Cu in situ composite under slow cooling condition was thoroughly investigated in this study using stereomicroscopy, optical and scanning electron microscopy, thermal analysis, tensile, impact, hardness tests, and wear tester. Results show that addition of 0.8 wt.% Sb was found to produce a change in the morphology of primary Mg2Si from dendrite to fine polygonal shape. At this Sb addition, the primary Mg2Si phase also exhibited a reduction in size from 179.4 to 128.6 mu m, an increase in density of Mg2Si per area from 12.5 to 32.2 particle/mm(2), and a decrease in the aspect ratio from 1.24 to 1.11. Increasing the amount of Sb added up to 1 wt.% also resulted in a decrease in both nucleation and growth temperatures of the eutectic Mg2Si by 2.6 and 1.7 A degrees C respectively, which is most likely due to change of eutectic Mg2Si morphology from flake to fibrous structure. Thermal analysis technique showed that distribution of Mg2Si particles influences the heat conductivity during the solidification process of Al-Mg2Si composite. The results also showed that improvements in mechanical properties of composite were obtained with increasing Sb content due to modification of both primary and eutectic Mg2Si and due to intermetallic compound transformation from beta-Al5FeSi to alpha-Al-15(Fe,Mn)(3)Si-2. Examination of fracture surfaces from tensile and impact samples showed that the base composite failed in a brittle manner with decohered or debonded Mg2Si particles, whereas the 0.8 wt.% Sb-treated composite showed more cracked Mg2Si and ductile fracture in the matrix. Wear properties improved significantly with addition of Sb due to modification and better dispersion of fine Mg2Si particles in matrix.
机译:通过立体镜检查,光学和扫描电子显微镜,热分析,拉伸,在慢冷却条件下,在慢冷却条件下进行SB的结构特征,机械性能和耐磨行为的作用,在慢冷却条件下进行慢冷却条件。 ,冲击,硬度测试和磨损测试仪。结果表明,添加0.8重量%。发现%Sb产生从树突到细微的多边形形状的原发性mg2si的形态变化。在该SB添加中,初级Mg2Si期也表现出大小的约179.4至128.6μm的降低,每面积的Mg2Si的密度增加,从12.5至32.2粒/ mm(2)的增加,并且宽高比为1.24 1.11。增加了高达1重量%的Sb的量。%也导致共晶Mg2Si的成核和生长温度分别降低2.6和1.7℃,最有可能因来自剥落的共晶Mg2SI形态的变化而导致纤维结构。热分析技术表明,Mg2SI颗粒的分布在Al-Mg2Si复合材料的凝固过程中影响了导热率。结果还表明,由于初级和共晶Mg2Si的改性,通过增加了Sb含量,并且由于从β-Al5Fesi的金属间化合物转化为α-Al-15(Fe,Mn)(3),获得了通过增加的Sb含量而增加了复合材料的力学性能的改进。 SI-2。从拉伸和冲击样品检查骨折表面的检查表明,基础复合材料以脆性或脱粘的Mg2Si颗粒以脆性的方式失效,而0.8重量%。%SB处理的复合物在基质中显示出更裂化的Mg2Si和延展性裂缝。由于在基质中的细胞mg2SI颗粒的修饰和更好地分散,因此磨损性能显着提高了Sb。

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