首页> 外文期刊>Frattura e Integrita Strutturale >Analysis of the Fatigue Damage Behavior of AW2099-T83 Al-Li Alloy under Strain-Controlled Fatigue
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Analysis of the Fatigue Damage Behavior of AW2099-T83 Al-Li Alloy under Strain-Controlled Fatigue

机译:应变控制疲劳下AW2099-T83 Al-Li合金的疲劳损伤行为分析

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Microstructural characteristics, monotonic and strain-controlled cyclic axial behaviors of AW2099-T83 Aluminum-Lithium alloy were investigated. Grain sizes and structures are not uniform in the different orientations studied. High strength and low ductility characterize the tensile behavior of the alloy under static loading. Strain-controlled fatigue testing was conducted at strain amplitudes ranging from 0.3% to 0.7%. Over this range, macro plastic deformation was only observed at 0.7%.? Cyclic stress evolution was found to be dependent on both the applied strain amplitude and the number of cycles. Limited strain hardening was observed at low number of cycles, followed by softening, due probably to damage initiation. With low plastic strain, analytical approach was adopted to profile the damaging mechanism for the different applied strain amplitude. Because of the absence of fatigue ductility parameters due to low plasticity, a three-parameter equation was used to correlate fatigue life. Fractured specimens were studied under SEM to characterize the fracture surface and determine the controlling fracture mechanisms. The fractography analysis revealed that fracture at low strain amplitudes was shear controlled while multiple secondary cracks were observed at high strain amplitude. Intergranular failure was found to be the dominant crack propagation mode.
机译:研究了AW2099-T83铝锂合金的微观结构特征,单调性和应变控制的循环轴向行为。在研究的不同方向上晶粒尺寸和结构不均匀。高强度和低延展性表征了合金在静态载荷下的拉伸行为。在0.3%至0.7%的应变幅度下进行了应变控制的疲劳测试。在此范围内,仅观察到0.7%的宏观塑性变形。发现循环应力的演变取决于所施加的应变幅度和循环次数。在较低的循环次数下观察到有限的应变硬化,然后软化,这可能是由于破坏的开始。在低塑性应变的情况下,采用分析方法来分析不同施加应变幅度的破坏机理。由于缺乏可塑性,因此缺乏疲劳延展性参数,因此使用了一个三参数方程来关联疲劳寿命。在SEM下对断裂的试样进行研究,以表征断裂表面并确定控制断裂的机理。形貌分析表明,在低应变幅度下的断裂受到剪切控制,而在高应变幅度下观察到多个次级裂纹。发现晶间破坏是主要的裂纹扩展模式。

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