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Ultrasound Effect on the Microstructure and Hardness of AlMg3 Alloy under Upsetting

机译:超声波对镦粗Almg3合金微观结构和硬度的影响

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摘要

To date, numerous investigations have shown the beneficial effect of ultrasonic vibration-assisted forming technology due to its influence on the forming load, flow stress, friction condition reduction and the increase of the metal forming limit. Although the immediate occurring force and mean stress reduction are known phenomena, the underlying effects of ultrasonic-based material softening remain an object of current research. Therefore, in this article, we investigate the effect of upsetting with and without the ultrasonic vibrations (USV) on the evolution of the microstructure, stress relaxation and hardness of the AlMg3 aluminum alloy. To understand the process physics, after the UAC (ultrasonic assisted compression), the microstructures of the samples were analyzed by light and electron microscopy, including the orientation imaging via electron backscatter diffraction. According to the test result, it is found that ultrasonic vibration can reduce flow stress during the ultrasonic-assisted compression (UAC) process for the investigated aluminum–magnesium alloy due to the acoustic softening effect. By comparing the microstructures of samples compressed with and without simultaneous application of ultrasonic vibrations, the enhanced shear banding and grain rotation were found to be responsible for grain refinement enhancement. The coupled action of the ultrasonic vibrations and plastic deformation decreased the grains of AlMg3 alloy from ~270 μm to ~1.52 μm, which has resulted in a hardness enhancement of UAC processed sample to about 117 HV.
机译:迄今为止,由于其对成型负荷,流量应力,摩擦条件降低和金属形成极限的增加,许多研究表明了超声波振动辅助成型技术的有益效果。尽管立即发生的力和平均应力降低是已知的现象,但超声基材料软化的潜在影响仍然是目前研究的对象。因此,在本文中,我们研究了镦粗和没有超声振动(USV)对Almg3铝合金的微观结构,应力弛豫和硬度的进化的影响。为了理解过程物理,在UAC(超声波辅助压缩)之后,通过光和电子显微镜分析样品的微观结构,包括通过电子反向散射衍射的取向成像。根据试验结果,发现由于声柔软效果,超声波振动可以减少所研究的铝 - 镁合金的超声波辅助压缩(UAC)工艺。通过比较用且不同时施加超声振动的样品的微观结构,发现增强的剪切带和晶粒旋转负责晶粒细化增强。超声波振动和塑性变形的耦合作用降低了Almg3合金的颗粒从〜270μm至〜1.52μm,导致UAC加工样品的硬度增强至约117HV。

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