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首页> 外文期刊>Materials Science and Engineering >Evolution of microstructure, phases and mechanical properties in lean as-cast Mg-Al-Ca-Mn alloys under the influence of a wide range of Ca/ Al ratio
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Evolution of microstructure, phases and mechanical properties in lean as-cast Mg-Al-Ca-Mn alloys under the influence of a wide range of Ca/ Al ratio

机译:贫铸造Mg-Al-Ca-Ca-Ca-Mn合金中微观结构,阶段和机械性能的演变在宽范围的CA / Al比的影响下

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摘要

In the present investigation, the microstructure and phase evolution, and their implications on the mechanical properties for different Ca/Al ratios (within ~0.06-2.21, wt.%) in lean as-cast Mg-Al-Ca-Mn alloys are experimentally studied. Further, the evolution of the second phases and the matrix phase in different alloy compositions have been estimated through thermodynamic calculations using Scheil conditions. The primary phase in all these alloys is a solid solution of hcp Mg with the other elements like Al and Ca. Apart from the fine Al_gMn_5 particles present in all the compositions, the major eutectic second phase is γ-Mg_(17)Al_(12) in the specimen with Ca/ Al ratio -0.06, C36-(Mg,Al)2Ca in the specimen with Ca/Al ratio -0.28 and C14-Mg_2Ca in the specimens with Ca/Al ratio ~1.56 and ~2.21. The area fraction of the eutectic second phases increases from ~2.1 to -7.2% with the Ca/Al ratio, with a concomitant increase in its network connectivity as confirmed through fractal analysis. Contrarily, the lattice parameters (both a and c) and the elastic modulus € of the matrix phase decrease with increasing Ca/Al ratio, due to the decreasing concentration of solute atoms in the matrix. Therefore, the specimen with the minimum Ca/Al ratio (-0.06) attains maximum strength (YS ~130 Mpa, UTS ~183 Mpa), primarily owing to solid solution strengthening from higher solute content and precipitation strengthening from fine γ-Mg_(17)Al_(12) particles. The large fraction and strong networks of hard and brittle Mg_2Ca phase promote cracks during tensile deformation and deteriorates the ductility (≤1.6%) and work hardening response in the alloys with higher Ca/Al ratios (≥1.56).
机译:在本研究中,微观结构和相位演化以及它们对不同CA / Al比(〜0.06-2.21,WT.%)的机械性能的影响实验是在实验上的研究过。此外,通过使用Scheil条件的热力学计算估计了第二阶段和不同合金组合物中的基质相的演变。所有这些合金中的初级相是HCP Mg的固体溶液,其它元素如Al和Ca。除了在所有组合物中存在的精细Al_GmN_5颗粒外,主要共晶第二相是样品中的样品中的γ-Mg_(17)Al_(12) - 0.06,C36-(Mg,Al)2Ca在样本中在具有Ca / Al比率〜1.56和〜2.21的试样中的Ca / Al比-0.28和C14-Mg_2Ca。共晶第二相的面积分数随CA / Al比率从〜2.1〜-7.2%增加,随着通过分形分析的确认,其网络连接的伴随地增加。相反,由于基质中的溶质原子的浓度降低,晶格参数(A和C)和基质相的弹性模量随着CA / Al比而降低。因此,具有最小Ca / Al比(-0.06)的样品达到最大强度(Ys〜130MPa,UTS〜183MPa),主要是由于来自较高溶质含量和从细γ-Mg_的沉淀强化强化(17 )Al_(12)颗粒。硬质和脆性Mg_2CA相期间的大馏分和强网络促进拉伸变形期间的裂缝,延迟延展性(≤1.6%)和具有较高Ca / Al比率的合金中的硬化响应(≥1.56)。

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