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首页> 外文期刊>Scientific reports. >High-Performance Metal/Carbide Composites with Far-From-Equilibrium Compositions and Controlled Microstructures
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High-Performance Metal/Carbide Composites with Far-From-Equilibrium Compositions and Controlled Microstructures

机译:高性能金属/碳化物复合材料,具有远非平衡组合物和控制的微观结构

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The prospect of extending existing metal-ceramic composites to those with the compositions that are far from thermodynamic equilibrium is examined. A current and pressure-assisted, rapid infiltration is proposed to fabricate composites, consisting of reactive metallic and ceramic phases with controlled microstructure and tunable properties. An aluminum (Al) alloy/Ti2AlC composite is selected as an example of the far-from-equilibrium systems to fabricate, because Ti2AlC exists only in a narrow region of the Ti-Al-C phase diagram and readily reacts with Al. This kind of reactive systems challenges conventional methods for successfully processing corresponding metal-ceramic composites. Al alloy/Ti2AlC composites with controlled microstructures, various volume ratios of constituents (40/60 and 27/73) and metallic phase sizes (42-83?μm, 77-276?μm, and 167-545?μm), are obtained using the Ti2AlC foams with different pore structures as preforms for molten metal (Al alloy) infiltration. The resulting composites are lightweight and display exceptional mechanical properties at both ambient and elevated temperatures. These structures achieve a compressive strength that is 10 times higher than the yield strength of the corresponding peak-aged Al alloy at ambient temperature and 14 times higher at 400?°C. Possible strengthening mechanisms are described, and further strategies for improving properties of those composites are proposed.
机译:研究了将现有金属陶瓷复合材料延伸到远离热力学平衡的组合物的那些展望。提出了一种电流和压力,快速渗透以制造复合材料,由具有受控微观结构和可调性的反应性金属和陶瓷相组成。选择铝(Al)合金/ Ti2Alc复合材料作为富裕平衡系统的实例,因为Ti2Alc仅存在于Ti-Al-C相图的窄区域并且容易与Al反应。这种反应系统挑战成功处理相应的金属陶瓷复合材料的常规方法。获得了具有受控微观结构的Al合金/ Ti2Alc复合材料,获得了各种体积比(40/60和27/73)和金属相尺寸(42-83Ωμm,77-276Ωμm和167-545Ωμm)使用具有不同孔结构的Ti2ALC泡沫作为熔融金属(Al合金)浸润的预制件。所得到的复合材料是重量轻,在环境温度和升高的温度下显示出卓越的机械性能。这些结构实现了比环境温度在环境温度下相应的峰型Al合金的屈服强度高10倍的抗压强度,并且在400℃下较高14倍。描述了可能的强化机制,提出了提高这些复合材料性能的进一步策略。

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