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Cyclic Stress-Strain Behavior and Low Cycle Fatigue Life of AA6061 Aluminum Alloy

机译:AA6061铝合金的循环应力应变行为和低循环疲劳寿命

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AA6061 alloy is one of the most widely used aluminum alloy in modern aerospace and automotive industries due to low cost, good formability and high specific strength. Most of aluminum structural components experience dynamic loading, which leads to fatigue failure. Since studies on the strain-controlled fatigue behavior of these alloys are very limited, this study was aimed to evaluate the strain-controlled cyclic deformation behavior of an extruded 6061 aluminum alloy and determine the fatigue life under varying higher strain amplitudes. The stress-strain responses exhibited essentially symmetric responses with slight Bauschinger effect. A slight cyclic hardening occurred at high strain amplitudes (0.8-1.2%) within the first ten cycles, and then cyclic stabilization follows until failure. It had longer fatigue life which can also be described by the Coffin-Manson law and Basquin's equation. Crack initiated from the specimen surface and crack propagation was characterized by fatigue striation-like features at lower strain amplitudes.
机译:AA6061合金具有低成本,良好的可成型性和较高的比强度,是现代航空航天和汽车工业中使用最广泛的铝合金之一。大多数铝结构部件承受动态载荷,这会导致疲劳破坏。由于对这些合金的应变控制疲劳行为的研究非常有限,因此本研究旨在评估挤压的6061铝合金的应变控制循环变形行为,并确定在不同较高应变幅度下的疲劳寿命。应力应变响应表现出基本对称的响应,并具有轻微的鲍辛格效应。在最初的十个循环内,在高应变幅度(0.8-1.2%)下会发生轻微的循环硬化,然后进行循环稳定直至失效。它具有更长的疲劳寿命,这也可以通过科芬曼森定律和巴斯金方程来描述。从试样表面开始的裂纹和裂纹扩展的特征是在较低的应变幅度下具有类似疲劳条纹的特征。

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