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High Strain Rate Superplasticity in Al-Zn-Mg-Based Alloy: Microstructural Design Deformation Behavior and Modeling

机译:Al-Zn-Mg基合金的高应变速率超塑性:显微组织设计变形行为和建模

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摘要

Increasing the strain rate at superplastic forming is a challenging technical and economic task of aluminum forming manufacturing. New aluminum sheets exhibiting high strain rate superplasticity at strain rates above 0.01 s are required. This study describes the microstructure and the superplasticity properties of a new high-strength Al-Zn-Mg-based alloy processed by a simple thermomechanical treatment including hot and cold rolling. The new alloy contains Ni to form Al Ni coarse particles and minor additions of Zr (0.19 wt.%) and Sc (0.06 wt.%) to form nanoprecipitates of the L1 -Al (Sc,Zr) phase. The design of chemical and phase compositions of the alloy provides superplasticity with an elongation of 600–800% in a strain rate range of 0.01 to 0.6/s and residual cavitation less than 2%. A mean elongation-to-failure of 400% is observed at an extremely high constant strain rate of 1 s . The strain-induced evolution of the grain and dislocation structures as well as the L1 precipitates at superplastic deformation is studied. The dynamic recrystallization at superplastic deformation is confirmed. The superplastic flow behavior of the proposed alloy is modeled via a mathematical Arrhenius-type constitutive model and an artificial neural network model. Both models exhibit good predictability at low and high strain rates of superplastic deformation.
机译:在超塑性成形中增加应变率是铝成形制造中一项具有挑战性的技术和经济任务。需要新的在超过0.01 s的应变速率下表现出高应变速率超塑性的铝板。本研究描述了通过简单的热机械处理(包括热轧和冷轧)加工的新型高强度Al-Zn-Mg基合金的微观结构和超塑性。新合金包含Ni以形成Al Ni粗颗粒,并少量添加Zr(0.19 wt。%)和Sc(0.06 wt。%),以形成L1-Al(Sc,Zr)相的纳米沉淀。合金的化学和相组成设计可提供超塑性,在0.01至0.6 / s的应变速率范围内具有600-800%的伸长率,且残余空化率小于2%。在1 s的极高恒定应变速率下,观察到平均断裂伸长率为400%。研究了应变引起的晶粒和位错结构的演化以及L1在超塑性变形时的析出。证实了在超塑性变形下的动态再结晶。通过数学Arrhenius型本构模型和人工神经网络模型对拟议合金的超塑性流动行为进行建模。两种模型在超塑性变形的低应变率和高应变率下均显示出良好的可预测性。

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