低温变形铝合金的室温恢复

B. Gruber, F. Grabner, G. Falkinger, A. Schökel, F. Spieckermann, P. Uggowitzer, S. Pogatscher
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引用次数: 23

摘要

低温变形提高了铝合金的成形性。在以往的研究中,对低温变形后的试样进行再加热至室温(RT)和储存后的显微组织分析。然而,加热后变形材料的位错结构和密度不能反映低温情况。在这项工作中,我们研究了Al-Mg和Al-Mg- si合金在恢复过程中流动应力的演变。我们研究了不同应变水平下77 K预应变样品的RT恢复行为,并评估了随后变形后的结构稳定性。我们还通过原位同步加速器x射线衍射研究了微观结构的演变,从低温初始条件到长期rt恢复。低温变形样品在室温下的恢复导致流动应力的降低,这取决于室温下的储存。恢复过程可以分为三个不同的部分,每个部分都基于不同的机制,其特征要么是排列错位,要么是消除错位。低温成型后,在室温下进一步拉伸也会产生塑性不稳定和过早断裂,这是由于不利的硬化和恢复辅助软化相互作用造成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Room Temperature Recovery of Cryogenically Deformed Aluminium Alloys
Abstract Increased formability of aluminium alloys has been demonstrated via cryogenic deformation. In previous studies, the microstructures of samples deformed at low temperatures were analysed after reheating to room temperature (RT) and storage. However, after heating the dislocation structure and density of the deformed material do not reflect the cryogenic situation. In this work, we investigate the evolution of flow stress during recovery in Al-Mg and Al-Mg-Si alloys. We examine the RT recovery behaviour of samples pre-strained at 77 K to different strain levels, and evaluate the structural stability upon subsequent deformation. We also study microstructural evolution via in-situ synchrotron X-ray diffraction, starting from initial conditions at cryogenic temperatures to long-term RT-recovery. Recovery of cryogenically deformed samples at RT results in reduction of the flow stress, in dependence on RT storage. The recovery process can be divided into three distinct sections, each based on a different mechanism characterized by either the arranging or the annihilation of dislocations. Subsequent further straining at room temperature after cryogenic forming also generates plastic instabilities and premature fracture due to unfavourable hardening and recovery assisted softening interplay.
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