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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Effects of large amounts of Mg (5-13 wt%) on hot compressive deformation behavior and processing maps of Al-Mg alloys
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Effects of large amounts of Mg (5-13 wt%) on hot compressive deformation behavior and processing maps of Al-Mg alloys

机译:大量Mg(5-13wt%)对Al-Mg合金热压缩变形行为及处理地图的影响

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摘要

The effects of the addition of large amounts of Mg (5-13 wt%) on the hot compressive behavior and processing maps of Al-Mg alloys were systematically examined in a wide strain rate range between 5 x 10(-4) s(-1) and 10 s(-1) in a temperature range between 598 and 698 K. As the Mg content in the Al-Mg alloy increased from 5 to 7 wt%, the fraction of dynamically recrystallized (DRXed) grains decreased and then increased, followed by the further increase of Mg content up to 13 wt%. The Al-13Mg alloy exhibited superior post-deformation microstructures compared to the Al-Mg alloys with the lower Mg Al-Mg alloys. For example, after compressive deformation at high strain rates of 1 and 10 s(-1) at 698 K, the Al-13Mg alloy had considerably higher fractions of DRXed grains (67-98%) and much smaller average grain sizes (13-19 mm) than the fractions of DRXed grains (5e43%) and the average grain sizes (63-485 mu m) of the Al-Mg alloys with the Mg contents <= 10 wt%. The decreased fraction of DRXed grains with an increase in Mg content from 5 to 7 wt% was attributed to the suppression of dynamic recovery, resulting in a decrease in the kinetics of continuous dynamic recrystallization (CDRX). The increased fraction of DRX grains with the increase in Mg from 7 to 13 wt% could be attributed to the transition from CDRX to discontinuous dynamic recrystallization by the significant reduction in stacking fault energy with the addition of large amounts of Mg. The Al-Mg alloys exhibited the solute drag creep at low strain rates and power law breakdown (PLB) at high strain rates. With the addition of large amounts of Mg, however, the onset of PLB was delayed to a higher strain rate and a lower temperature. As a result, the Al-13Mg alloy could exhibit higher power dissipation efficiency and smaller instability regions compared to that of the lower Mg content Al-Mg alloys in the processing maps. This outcome agreed with the observations on the microstructures after compressive deformation. (c) 2019 Elsevier B.V. All rights reserved.
机译:在宽应变率范围内,在5×10( - 4)( - )的宽应变速率范围内,在宽应变率范围内进行大量Mg(5-13wt%)对热压缩行为和处理图的影响。 1)和10 s(-1)在598和698k之间的温度范围内。随着Al-Mg合金中的Mg含量从5-7wt%增加,动态再结晶(Drxed)颗粒的分数降低,然后增加,然后将Mg含量的进一步增加至13wt%。与具有较低Mg Al-Mg合金的Al-Mg合金相比,Al-13mg合金显示出优异的后变形微观结构。例如,在698k的高应变率(-1)的高应变率下压缩变形后,Al-13mg合金具有相当高的Drxed谷物(67-98%)和更小的平均晶粒尺寸(13- 19mm)比镁含量<= 10wt%的Al-Mg合金的平均晶粒(5e43%)和平均晶粒尺寸(63-485μm)的馏分(63-485μm)。从5至7wt%的镁含量增加的Drxed颗粒的减少归因于抑制动态回收,导致连续动态重结晶(CDRX)的动力学降低。通过7至13wt%的Mg增加的DRX晶粒的增加率可能归因于从CDRX到不连续的动态再结晶,通过添加大量Mg的堆叠故障能量的显着降低。 Al-Mg合金在高应变率和功率法击穿(PLB)处,在高应变率下表现出溶质阻力蠕变。然而,随着大量Mg的添加,PLB的开始延迟到较高的应变速率和较低的温度。结果,与处理图中的低Mg含量Al-Mg合金相比,Al-13mg合金可以表现出更高的功率耗散效率和更小的不稳定性区域。这一结果与压缩变形后微观结构的观察结果同意。 (c)2019 Elsevier B.v.保留所有权利。

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