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首页> 外文期刊>Frattura e Integrita Strutturale >Effect of nano-clay addition and heat-treatment on tensile and stress-controlled low-cycle fatigue behaviors of aluminum-silicon alloy
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Effect of nano-clay addition and heat-treatment on tensile and stress-controlled low-cycle fatigue behaviors of aluminum-silicon alloy

机译:纳米粘土加成和热处理对铝 - 硅合金拉伸和应力控制的低循环疲劳行为的影响

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The objective of the present paper is to investigate the stress-controlled low-cycle fatigue behavior of piston aluminum-silicon (AlSi) alloy reinforced with nano-clay particles and T6 heat-treatment. The piston aluminum-silicon alloy strengthened by 1 wt.% nano-clay particles were prepared by the stir casting method and then subjected to the heat-treatment. The optical microscopy analysis demonstrates that heat-treatment changed the size, morphology, and distribution of silicon phases through the microstructure of the aluminum matrix. In addition to tensile tests, stress-controlled low-cycle fatigue experiments at different loading conditions including the variation of the mean stress, the stress rate, and the stress amplitude were conducted at room temperature. The obtained experimental results showed no clear improvement in either mechanical or fatigue properties of the material. Moreover, the density measurements using the Archimedes method reveal a higher content of the porosity in nano-composite. It was observed that the reinforcement (nano-particles and heat-treatment) can change the cyclic behavior of the AlSi alloy, significantly. The cyclic hardening feature of the AlSi alloy changed to cyclic softening and also the fatigue lifetime and the ratcheting resistance decreased after the nano-particles addition and heat-treatment. Through the microstructural analysis, it was indicated that the neglecting of higher kinematics of age hardening in nano-composite was the major source of mechanical properties reduction. In the end, it was shown that the fatigue lifetime of samples can be described adequately utilizing a modified plastic strain energy technique considering the mean stress effect.
机译:本文的目的是研究活塞铝 - 硅(AlSI)合金的应力控制的低循环疲劳行为,用纳米粘土颗粒和T6热处理增强。活塞铝 - 硅合金加强1重量%。通过搅拌浇铸方法制备%纳米粘土颗粒,然后进行热处理。光学显微镜分析表明,热处理通过铝基质的微观结构改变了硅相的尺寸,形貌和分布。除了拉伸试验之外,在室温下在室温下进行不同负载条件下的应激控制的低循环疲劳实验,包括平均应力,应力率和应力幅度。所获得的实验结果表明,材料的机械或疲劳性能没有明显改善。此外,使用Archimedes方法的密度测量揭示了纳米复合材料中孔隙率的更高含量。观察到增强(纳米颗粒和热处理)可以显着改变Alsi合金的环状行为。在纳米颗粒加成和热处理后,Alsi合金的循环硬化特征变为循环软化,并且疲劳寿命和棘轮电阻降低。通过微观结构分析,表示疏忽纳米复合材料中的高龄硬化的忽略是机械性能的主要来源。最后,显示了考虑到平均应力效应的改进的塑性应变能量技术,可以充分描述样品的疲劳寿命。

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