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首页> 外文期刊>Journal of Materials Engineering and Performance >Mechanical Properties and Microstructure of AZ31 Magnesium Alloy Processed by Intermittent Ultrasonic-Assisted Equal Channel Angular Pressing
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Mechanical Properties and Microstructure of AZ31 Magnesium Alloy Processed by Intermittent Ultrasonic-Assisted Equal Channel Angular Pressing

机译:间歇超声波辅助等沟道角压加工AZ31镁合金的机械性能和微观结构

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摘要

An intermittent ultrasonic-assisted equal channel angular pressing (IU-ECAP) technique for grain refinement is proposed in this study. AZ31 Mg alloy samples were divided into two groups (IU-ECAP and ECAP) and processed using four passes along route B-C, and the effects of ultrasonic vibration on the mechanical properties and microstructure were examined. Mechanical testing revealed that IU-ECAP significantly reduced the extrusion force relative to that for ECAP, whereas the microhardness and ultimate tensile strength were strengthened. The maximum true ultimate tensile strength and microhardness of the IU-ECAPed specimens were achieved using ultrasonic vibration with an amplitude of 35 mu m and intermittent time of 2 s. In addition, the microstructures were the most homogeneous for the smallest grain sizes. The IU-ECAPed specimens also possessed less high-angle grain boundaries because of the lower temperature of the IU-ECAP die. Texture analysis revealed that after the 4th pass, the texture of the IU-ECAPed specimens along the (0001) crystal plane exhibited maximum reduction; furthermore, the textures along the (0001), (01 (1) over bar0), and ((1) over bar2 (1) over bar0) crystal planes were scattered homogeneously. These findings may be related to ultrasonic-induced grain boundary rotation.
机译:本研究提出了一种间歇超声辅助等通道角挤压(IU-ECAP)晶粒细化技术。将AZ31镁合金试样分为两组(IU-ECAP和ECAP),并沿B-C路线进行四道次加工,考察了超声波振动对力学性能和显微组织的影响。力学性能测试表明,与ECAP相比,IU-ECAP显著降低了挤压力,而显微硬度和极限拉伸强度得到了增强。采用振幅为35μm、间歇时间为2 s的超声振动,获得了IU-ECAPed试样的最大真极限抗拉强度和显微硬度。此外,对于最小的晶粒尺寸,显微结构最均匀。由于IU-ECAP模具的温度较低,IU-ECAP试样的高角度晶界也较少。织构分析表明,第4道次后,沿(0001)晶面的IU-ECAPed试样的织构出现最大程度的减少;此外,沿(0001)、(01(1)过bar0)和((1)过bar2(1)过bar0)晶面的织构均匀分散。这些发现可能与超声波诱导的晶界旋转有关。

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