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Effect of Mg Addition on the Mechanical Properties of Rapidly Solidified Al-Mn Alloys at Elevated Temperatures

机译:镁对高温下快速凝固Al-Mn合金力学性能的影响

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With an aim of clarifying the strength of rapidly solidified P/M materials strengthened by solid solution of Mg and dispersion of transition metal compounds at elevated temperature, Al-2mass%Mn, Al-4mass%Mn and Al-6mass%Mn alloys with varied Mg additions of 0, 1 and 3 mass% were prepared by rapid solidification techniques. Rapidly solidified (RS) flakes were produced by remelting alloy ingots in a graphite crucible, atomizing the alloy melt and subsequent splat-quenching on a rotating water-cooled copper roll under argon atmosphere. The RS flakes were consolidated to the P/M materials by hot extrusion after vacuum degassing. Cast ingots of these alloys were also hot-extruded under the same conditions to the I/M as reference materials. Metallographic structures and constituent phases were studied for the P/M and I/M materials by optical microscope and X-ray diffraction. Mechanical properties of as-extruded and annealed P/M materials and as-extruded I/M materials were examined by tensile test at room and elevated temperatures under various strain rates.Uniform dispersion of fine intermetallic compounds (Al_6Mn) was observed in all the as-extruded P/M materials. Added Mg was present as the solute in I/M and P/M materials alloy even after annealing. The P/M materials containing Mg exhibited higher hardness and strength at room temperature, than those without Mg. It was considered that both solid solution of Mg and dispersion of intermetallic compounds were contributing the hardness and strength increase in the rapidly solidified Al-Mn-Mg alloys. Tensile strength increases with increasing amount of Mg in I/M materials at all testing temperatures. However, strength of as-extruded P/M materials decreases with addition of Mg at 573K and 673K. Thus the positive effects of Mg additions on tensile strength of as-extruded P/M materials disappeared at higher testing temperature. Tensile strength of annealed P/M materials in which dislocation density decreased and compound particle coarsened increased with addition of Mg at elevated temperatures.
机译:为了阐明在高温下固溶的Mg和过渡金属化合物的分散所增强的快速固化P / M材料的强度,Al-2mass%Mn,Al-4mass%Mn和Al-6mass%Mn合金通过快速凝固技术制备的Mg的添加量为0、1和3质量%。通过在石墨坩埚中重熔合金锭,雾化合金熔体并随后在氩气气氛下在旋转的水冷铜辊上进行骤冷(splat-quench),来生产快速固化的(RS)薄片。在真空脱气后,通过热挤压将RS薄片固结为P / M材料。在相同条件下,将这些合金的铸锭热挤压到I / M作为参考材料。通过光学显微镜和X射线衍射研究了P / M和I / M材料的金相结构和组成相。通过在室温和高温下在不同应变率下的拉伸试验,对经挤压和退火的P / M材料和经挤压的I / M材料的力学性能进行了测试,观察到所有金属间化合物(Al_6Mn)的均匀分散-挤压的P / M材料。即使在退火后,添加的Mg也作为溶质存在于I / M和P / M材料合金中。与不含镁的P / M材料相比,含镁的P / M材料在室温下具有更高的硬度和强度。据认为,Mg的固溶体和金属间化合物的分散都有助于快速凝固的Al-Mn-Mg合金的硬度和强度的增加。在所有测试温度下,拉伸强度都随着I / M材料中Mg含量的增加而增加。但是,当在573K和673K处添加Mg时,刚挤出的P / M材料的强度会降低。因此,在较高的测试温度下,添加Mg对挤出的P / M材料的拉伸强度的积极影响消失了。在高温下,随着Mg的增加,位错密度降低且复合颗粒变粗的退火P / M材料的拉伸强度。

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