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Relationship between mechanical properties and microstructural response of 6061-T6 aluminum alloy impacted at elevated temperatures

机译:高温下6061-T6铝合金力学性能与显微组织响应的关系

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摘要

The high temperature impact properties and microstructural evolution of 6061-T6 aluminum alloy are investigated at temperatures ranging from 100 to 350 ℃ and strain rates ranging from 1 × 10~3 to 5 × 10~3 s~(-1) using a compressive split-Hopkinson pressure bar (SHPB) system. It is found that the flow response and microstructural characteristics of 6061-T6 aluminum alloy are significantly dependent on the strain rate and temperature. The flow stress and strain rate sensitivity increase with increasing strain rate or decreasing temperature. Moreover, the temperature sensitivity increases with both increasing strain rate and increasing temperature. The flow stress-strain response of the present 6061-T6 alloy specimens can be adequately described by the Zerilli-Armstrong fcc model. The grain size and dislocation cell size increase significantly with a decreasing strain rate or an increasing temperature. The higher flow stress is the result of a smaller grain size and smaller dislocation cell size. The stacking fault energy of the deformed specimens has a value of 145.78 mJ/m~2.
机译:利用压缩分裂研究了6061-T6铝合金在100至350℃的温度和1×10〜3至5×10〜3 s〜(-1)的应变速率下的高温冲击性能和组织演变。 -霍普金森压力杆(SHPB)系统。发现6061-T6铝合金的流动响应和显微组织特征与应变率和温度密切相关。流变应力和应变率敏感性随应变率增加或温度降低而增加。此外,温度敏感性随着应变率和温度的升高而增加。 Zerilli-Armstrong fcc模型可以充分描述当前6061-T6合金试样的流动应力-应变响应。随着应变率的降低或温度的升高,晶粒尺寸和位错晶胞尺寸显着增加。较高的流动应力是较小的晶粒尺寸和较小的位错晶胞尺寸的结果。变形试样的堆垛层错能值为145.78 mJ / m〜2。

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