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Effect of Heat Treatment on Microstructure and Thermal Fatigue Properties of Al-Si-Cu-Mg Alloys

机译:热处理对Al-Si-Cu-Mg合金组织和热疲劳性能的影响

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The effect of heat treatment on the microstructure and thermal fatigue properties were studied by means of optical microscope (OM) and scanning electron microscope (SEM). Energy dispersive X-ray detector (EDX) was used to analyze the role of phase composition in fatigue crack propagation. The results show that after heat treatment, the ultimate tensile strength increased from 285?MPa to 368?MPa and the elongation increased from 5.8?% to 6.5?%. During the initiation of fatigue crack, the crack was mainly propagated through eutectic Si area. With the long needles of eutectic Si particles spherodized after heat treatment, the split action from brittle Si particles to α-Al matrix was reduced and prolonged the fatigue crack initiation period. After aging for 6?h, the dispersed precipitation of secondary phases (Al_(2)Cu, Mg_(2)Si) elevated the driving force of crack propagation, blocked the spread of crack in the grain boundary, decreased the rate of fatigue crack growth and improved the fatigue resistance of alloy at the same time. In the process of crack initiation, the surplus-phase around the grain boundary fell off from α-Al matrix under thermal cycling stresses. The combination of interfaces was weaken by cycling stress and the fatigue crack was finally grown up in the weakness area between matrix and secondary phase.
机译:通过光学显微镜(OM)和扫描电子显微镜(SEM)研究了热处理对组织和热疲劳性能的影响。能量色散X射线检测器(EDX)用于分析相成分在疲劳裂纹扩展中的作用。结果表明,热处理后,极限抗拉强度从285?MPa增加到368?MPa,伸长率从5.8?%增加到6.5?%。在疲劳裂纹萌生期间,裂纹主要通过共晶硅区域扩展。随着热处理后球状共晶硅颗粒的长针状化,减少了脆性硅颗粒向α-Al基体的分裂作用,延长了疲劳裂纹萌生的时间。时效6?h后,次生相(Al_(2)Cu,Mg_(2)Si)的分散沉淀提高了裂纹扩展的驱动力,阻止了裂纹在晶界的扩展,降低了疲劳裂纹率同时增加合金的疲劳强度。在裂纹萌生过程中,在热循环应力作用下,晶界周围的剩余相从α-Al基体上脱落。界面应力由于循环应力而减弱,疲劳裂纹最终在基体和第二相之间的薄弱区域长大。

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