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首页> 外文期刊>Fatigue & Fracture of Engineering Materials & Structures >Low-cycle fatigue behavior of a newly developed cast aluminum alloy for automotive applications
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Low-cycle fatigue behavior of a newly developed cast aluminum alloy for automotive applications

机译:新开发的汽车用铸造铝合金的低周疲劳性能

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The drive for increasing fuel efficiency and decreasing anthropogenic greenhouse effect via lightweighting leads to the development of several new Al alloys. The effect of Mn and Fe addition on the microstructure of Al-Mg-Si alloy in as-cast condition was investigated. The mechanical properties including strain-controlled low-cycle fatigue characteristics were evaluated. The microstructure of the as-cast alloy consisted of globular primary alpha-Al phase and characteristic Mg2Si-containing eutectic structure, along with Al-8(Fe,Mn)(2)Si particles randomly distributed in the matrix. Relative to several commercial alloys including A319 cast alloy, the present alloy exhibited superior tensile properties without trade-off in elongation and improved fatigue life due to the unique microstructure with fine grains and random textures. The as-cast alloy possessed yield stress, ultimate tensile strength, and elongation of about 185 MPa, 304 MPa, and 6.3%, respectively. The stress-strain hysteresis loops were symmetrical and approximately followed Masing behavior. The fatigue life of the as-cast alloy was attained to be higher than that of several commercial cast and wrought Al alloys. Cyclic hardening occurred at higher strain amplitudes from 0.3% to 0.8%, while cyclic stabilization sustained at lower strain amplitudes of = 0.2%. Examination of fractured surfaces revealed that fatigue crack initiated from the specimen surfaceear-surface, and crack propagation occurred mainly in the formation of fatigue striations.
机译:通过轻量化提高燃料效率和减少人为温室效应的动力导致了几种新型铝合金的开发。研究了铸态条件下Mn和Fe的添加对Al-Mg-Si合金组织的影响。评价了包括应变控制的低周疲劳特性在内的机械性能。铸态合金的微观结构由球状初生α-Al相和特征性的含Mg2Si共晶结构,以及随机分布在基体中的Al-8(Fe,Mn)(2)Si颗粒组成。相对于包括A319铸造合金在内的几种商用合金,由于具有细晶粒和无规织构的独特微观结构,本合金显示出优异的拉伸性能,而没有在伸长率上进行权衡,并且改善了疲劳寿命。铸态合金的屈服应力,极限抗拉强度和伸长率分别约为185 MPa,304 MPa和6.3%。应力-应变磁滞回线是对称的,并且大致遵循Masing行为。铸态合金的疲劳寿命要比几种商业铸造和锻造铝合金的疲劳寿命高。循环硬化在0.3%至0.8%的较高应变幅度下发生,而循环稳定在<= 0.2%的较低应变幅度下保持。断裂表面的检查表明,疲劳裂纹是从试样表面/近表面开始的,并且裂纹扩展主要发生在疲劳条纹的形成中。

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