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首页> 外文期刊>Journal of Materials Engineering and Performance >Microstructure and Mechanical Properties of Powder Metallurgical TiAl-Based Alloy Made by Micron Bimodal-Sized Powders
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Microstructure and Mechanical Properties of Powder Metallurgical TiAl-Based Alloy Made by Micron Bimodal-Sized Powders

机译:微米双峰粉末粉末冶金TiAL基合金的组织和力学性能

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摘要

Three powder metallurgical Ti-48Al-2Cr-2Nb compacts were prepared using spherical pre-alloyed powders, mechanically milled powders, and a mixture of the spherical pre-alloyed powders and the mechanical milled powders in a weight ratio of 1:4. Different microstructures corresponding to coarse grains, ultrafine grains, and bimodal-size grains, respectively, were obtained. The compact with a bimodal grain structure exhibits a good combination of high-yield compressive strength (similar to 1393 MPa) and improved compression ratio to fracture (similar to 13.9%) at room temperature due to the effects of back-stress and ductile gamma-TiAl single-phase layer generated near the ultrafine/coarse grain interface. At high temperatures, the compressive properties of the compact with the bimodal grain size distribution are sensitive to the temperature. A relatively high deformation resistance is achieved at 750 degrees C. At this temperature, the coarse grain region of the bimodal grain-sized microstructure undergoes more strain, and the dynamic recrystallization is promoted with increasing strain, improving the ductility. By contrast, the ultrafine grains in the bimodal grain size microstructure dominate the dynamic softening when the temperature is higher than 850 degrees C due to their accelerated dynamic recrystallization and easy grain boundary slip that are responsible for the good formability and the sharp decrease in deformation resistance of this alloy.
机译:使用球形预合金粉末、机械研磨粉末以及球形预合金粉末与机械研磨粉末的混合物(重量比为1:4),制备了三种粉末冶金Ti-48Al-2Cr-2Nb压坯。获得了分别对应于粗晶粒、超细晶粒和双峰尺寸晶粒的不同微观结构。由于背应力和在超细/粗晶界面附近生成的韧性γ-TiAl单相层的影响,具有双峰晶粒结构的压坯在室温下表现出高屈服抗压强度(类似于1393 MPa)和改善的压缩比(类似于13.9%)。在高温下,具有双峰粒度分布的压实体的压缩性能对温度敏感。750℃时可获得相对较高的变形抗力。在此温度下,双峰晶粒尺寸微观结构的粗晶区承受更多应变,并且随着应变的增加,动态再结晶得到促进,从而提高了塑性。相比之下,当温度高于850℃时,双峰晶粒尺寸微观结构中的超细晶粒主导了动态软化,因为它们加速了动态再结晶,易于晶界滑移,这是该合金良好成形性和变形抗力急剧降低的原因。

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