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High strength Mg-Zn-Y alloys reinforced synergistically by Nano-SiCp and long period stacking ordered structure

机译:纳米SiCp协同长时程堆积有序结构协同增强高强度Mg-Zn-Y合金

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In present study, high strength nano-SiCp/Mg98Zn0.8Y1.2 composites with low SiCp content reinforced synergistically by nano-SiCp and long period stacking order (LPSO) phase have been successfully fabricated. The magnesium matrix composites (MMCs) were designed with four nano-SiCp contents (0.5, 1.0, 1.5 and 2.0 vol%). The microstructures of MMCs were significantly refined by the stimulating dynamic recrystallization effect of nano-SiCp. TEM observations indicated that numerous nano-SiCps were dispersed inside alpha-Mg and LPSO grains, showing a relationship with dislocations, while some were distributed along grain boundaries. The micro hardness and strength of MMC increased as the SiCp content increased from 0 vol% to 1.0 vol%, but they decreased when the SiCp content increased from 1.0 vol% to 2.0 vol%. The plasticity of the MMC decreased as the SiCp content increased. The 1.0 vol% nano-SiCp MMC extruded at 330 degrees C exhibited excellent mechanical properties with a tensile yield strength (TYS) of 441 MPa, an ultimate tensile strength (UTS) of 464 MPa and a plastic elongation (PE) of 3.2%. Besides traditional enhanced factors, including the coefficients of thermal expansion mismatch, Orowan strengthening and grain refinement, novel synergistically strengthening of nano-SiCp and LPSO structure was the other important strengthening mechanism. During MMCs deformation, the LPSO strengthening phases were strengthened by nano-SiCps which would work as obstacles by hindering the motion of LPSO structures.
机译:本研究成功地制备了低SiCp含量的高强度纳米SiCp / Mg98Zn0.8Y1.2复合材料,该复合材料通过纳米SiCp协同增效并具有长期堆积顺序(LPSO)相。设计了具有四种纳米SiCp含量(0.5、1.0、1.5和2.0体积%)的镁基复合材料(MMC)。通过激发纳米SiCp的动态再结晶作用,可显着改善MMC的微观结构。 TEM观察表明,大量的纳米SiCps分散在α-Mg和LPSO晶粒内,显示出与位错的关系,而有些则沿晶界分布。 MMC的显微硬度和强度随着SiCp含量从0体积%增加到1.0体积%而增加,但是当SiCp含量从1.0体积%增加到2.0体积%时降低。 MMC的可塑性随着SiCp含量的增加而降低。在330摄氏度下挤出的1.0体积%纳米SiCp MMC表现出优异的机械性能,拉伸屈服强度(TYS)为441 MPa,极限拉伸强度(UTS)为464 MPa,塑性伸长率(PE)为3.2%。除了传统的增强因素,包括热膨胀系数不匹配,Orowan强化和晶粒细化之外,纳米SiCp和LPSO结构的新型协同强化也是另一个重要的强化机制。在MMCs变形过程中,纳米SiCps增强了LPSO的强化阶段,纳米SiCps会通过阻碍LPSO结构的运动而成为障碍。

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