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Al2O3 Nanoparticle Addition to Commercial Magnesium Alloys: Multiple Beneficial Effects

机译:Al2O3纳米颗粒添加到商业镁合金中:多种有益作用

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摘要

The multiple beneficial effects of Al2O3 nanoparticle addition to cast magnesium based systems (followed by extrusion) were investigated, constituting either: (a) enhanced strength; or (b) simultaneously enhanced strength and ductility of the corresponding magnesium alloys. AZ31 and ZK60A nanocomposites containing Al2O3 nanoparticle reinforcement were each fabricated using solidification processing followed by hot extrusion. Compared to monolithic AZ31 (tension levels), the corresponding nanocomposite exhibited higher yield strength (0.2% tensile yield strength (TYS)), ultimate strength (UTS), failure strain and work of fracture (WOF) (+19%, +21%, +113% and +162%, respectively). Compared to monolithic AZ31 (compression levels), the corresponding nanocomposite exhibited higher yield strength (0.2% compressive yield strength (CYS)) and ultimate strength (UCS), lower failure strain and higher WOF (+5%, +5%, −4% and +11%, respectively). Compared to monolithic ZK60A (tension levels), the corresponding nanocomposite exhibited lower 0.2% TYS and higher UTS, failure strain and WOF (−4%, +13%, +170% and +200%, respectively). Compared to monolithic ZK60A (compression levels), the corresponding nanocomposite exhibited lower 0.2% CYS and higher UCS, failure strain and WOF (−10%, +7%, +15% and +26%, respectively). The capability of Al2O3 nanoparticles to enhance the properties of cast magnesium alloys in a way never seen before with micron length scale reinforcements is clearly demonstrated.
机译:研究了将Al2O3纳米颗粒添加到铸造镁基体系中的多种有益效果(随后是挤压),从而构成:(a)增强强度; (b)同时提高相应镁合金的强度和延展性。包含Al2O3纳米颗粒增强材料的AZ31和ZK60A纳米复合材料均采用固化工艺,然后进行热挤压成型。与整体式AZ31相比(拉伸水平),相应的纳米复合材料表现出更高的屈服强度(0.2%拉伸屈服强度(TYS)),极限强度(UTS),破坏应变和断裂功(WOF)(+19%,+ 21% ,分别为+ 113%和+ 162%)。与整体式AZ31(压缩水平)相比,相应的纳米复合材料表现出更高的屈服强度(0.2%压缩屈服强度(CYS))和极限强度(UCS),更低的破坏应变和更高的WOF(+5%,+ 5%,-4) %和+ 11%)。与整体式ZK60A(张力水平)相比,相应的纳米复合材料的TYS较低,UTS,破坏应变和WOF较高(分别为-4%,+ 13%,+ 170%和+ 200%)。与整体式ZK60A(压缩水平)相比,相应的纳米复合材料的CYS较低,UCS,破坏应变和WOF较高(分别为-10%,+ 7%,+ 15%和+ 26%)。清楚地证明了Al2O3纳米颗粒以微米长度尺度的增强剂以前所未有的方式增强铸镁合金性能的能力。

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