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Mechanical properties of Mg-based materials fabricated by mechanical milling and spark plasma sintering

机译:机械研磨和火花等离子体烧结制备的镁基材料的机械性能

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In this work, magnesium powders of different grain sizes were synthesized by mechanical milling for periods ranging from 0.5 to 30 h. Subsequent to milling, powders were consolidated by spark plasma sintering at 550 celcius for 10 min. Before and after sintering, microstructural changes were investigated by analytical methods including X-ray diffraction (XRD), X-ray spectrometer, optical and electron microscopy. Analyses showed that nanocrystalline sizes were achieved by mechanical milling for milling times exceeding 5 h. Additionally, it was recognized that grain growth occurred during sintering, but to a limited extent. Mechanical test results displayed reasonable improvements in both compressive yield strength and hardness values with increasing milling times up to 5 h, where these reached their maximum values (245.5 MPa and 75.9 HV). The enhancement in these properties with increased milling time up to 5 h was attributed to both the extent of grain refinement and the formation of MgO together with incorporation of Fe particles, originating from the milling process, into the matrix. On the other hand, a substantial decrease in yield strength and hardness values in the samples milled in excess of 5 h were recorded, which in turn was related to the accompanying decline in bulk density of the samples. Microstructural analysis of the deformed samples revealed that grain size reduction suppressed twin formation, which elucidates the enhancement in ductility with decreasing grain size.
机译:在这项工作中,通过机械研磨在0.5至30 h的时间内合成了不同粒度的镁粉。研磨之后,通过火花等离子体在550℃下烧结10分钟来固结粉末。烧结前后,通过分析方法研究了微观结构的变化,包括X射线衍射(XRD),X射线光谱仪,光学和电子显微镜。分析表明,通过机械研磨获得超过5小时的研磨时间,可以达到纳米晶尺寸。另外,已经认识到晶粒生长在烧结期间发生,但是程度有限。机械测试结果显示,随着长达5小时的铣削时间的增加,压缩屈服强度和硬度值均得到了合理的改善,达到了最大值(245.5 MPa和75.9 HV)。这些特性随研磨时间延长至5小时而增强,这归因于晶粒细化程度和MgO的形成,以及源自研磨过程的Fe颗粒掺入基体中。另一方面,在碾磨超过5小时后,样品的屈服强度和硬度值显着下降,这又与样品的堆积密度的下降有关。变形样品的微观结构分析表明,晶粒尺寸的减小抑制了孪晶的形成,这说明了随着晶粒尺寸的减小延展性的增强。

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