首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Microstructures and mechanical properties of ultrafine-grained Ti/AZ31 magnesium matrix composite prepared by powder metallurgy
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Microstructures and mechanical properties of ultrafine-grained Ti/AZ31 magnesium matrix composite prepared by powder metallurgy

机译:粉末冶金制备超细晶粒Ti / AZ31镁基质复合材料的微观结构和力学性能

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摘要

The microstructure of ultrafine grain for magnesium alloys can result in drastic enhancement in their room temperature strength, but the issue of low strength at elevated temperature becomes more serious as well due to grain boundary slide. Here ultrafine-grained Ti/AZ31 magnesium matrix composites with high strength at both room and elevated temperature were prepared by vacuum hot pressing and subsequent hot extrusion. The microstructure of the composite samples before and after consolidation processing was characterized, and the mechanical properties of the as-consolidated bulk samples were measured at room and elevated temperatures. The results indicate that after extrusion ultrafine-grained magnesium alloys were obtained and Ti particulates with particulate size of ~310?nm disperse in Mg matrix. The magnesium grain of AZ31-15at.%Ti grows from 66?nm to 800?nm. Meanwhile, the relative densities of Ti/AZ31 composites are higher than 99%. The yield strength (YS) of extruded AZ31-15at.%Ti composite at room temperature is 341?MPa, being 2.4 times higher than original AZ31 alloy. Theoretical estimation shows that remarkably enhanced room-temperature mechanical strength attributes to grain boundary strengthening with the contribution ratio of 74%. In addition, the peak stress of extruded AZ31-15at.%Ti composite at 573?K is 82?MPa and ultrafine Ti dispersions are responsible for the enhanced strength.
机译:镁合金超细籽粒的微观结构可导致其室温强度的急剧增强,但由于晶界载玻片,升高温度下的低强度的问题变得更严重。这里通过真空热压和随后的热挤出制备具有高强度和升高温度高强度的超细颗粒Ti / AZ31镁基复合材料。结束处理之前和之后的复合样品的微观结构,并在室温下测量了各种堆积样品的机械性能并高温。结果表明,在挤出超细颗粒镁合金之后,获得颗粒尺寸的Ti颗粒,〜310Ω分散在Mg基质中。 AZ31-15AT的镁粒。%TI从66℃变为800℃。同时,Ti / Az31复合材料的相对密度高于99%。挤出的AZ31-15AT的屈服强度(ys)。室温下的Ti复合材料为341μm≤31μm,比原始AZ31合金高2.4倍。理论估计表明,具有74%的贡献比率显着增强了室温机械强度归因于晶界强化。此外,挤出的AZ31-15At的峰值应力。%Ti复合材料在573Ω·k处为82℃,超细Ti分散体负责增强的强度。

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