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Deformation Driven Precipitation in Binary Magnesium Alloys

机译:二元镁合金中的变形驱动沉淀

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Unlike Aluminum (Al) alloys, precipitation strengthening of Magnesium (Mg) alloys has proven challenging. Precipitate density is typically too low, and precipitate size is often too large and elongated to enhance the resistance to plastic deformation significantly. Mimicking recent work in Al alloys, we are exploring how low-temperature plastic deformation can enhance the density, size, and morphology of common intermetallic particles and thereby lead to significant hardening in Mg alloys. The low temperatures tend to favor nucleation overgrowth, while the deformation provides vacancies and dislocations that can assist nucleation. Using equal channel angular extrusion, and moderate temperatures, we explore the processing and thermodynamic factors controlling nucleation and growth of precipitates in Mg-Al and Mg-Zn binary alloys.
机译:与铝(Al)合金不同,镁(Mg)合金的沉淀强化已经证明挑战。沉淀密度通常太低,沉淀尺寸通常太大并且伸长,以显着提高塑性变形的抗性。模仿最近在Al合金中的工作,我们正在探索低温塑性变形可以提高普通金属间颗粒的密度,尺寸和形态,从而导致Mg合金中的显着硬化。低温倾向于有利于成核过度生长,而变形则提供可以促进成核的空位和脱位。使用等通道角挤出和中等温度,我们探讨了控制Mg-Al和Mg-Zn二元合金中沉淀物的核切种和生长的加工和热力学因素。

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