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首页> 外文期刊>Intermetallics >(106817)Rolling parameters, microstructure control, and mechanical properties of powder metallurgy Ti-44Al-3Nb-(Mo, V, Y) alloy: The impact of rolling temperatures
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(106817)Rolling parameters, microstructure control, and mechanical properties of powder metallurgy Ti-44Al-3Nb-(Mo, V, Y) alloy: The impact of rolling temperatures

机译:(106817)滚动参数,微观结构控制和粉末冶金Ti-44al-3NB-(Mo,V,Y)合金的机械性能:轧制温度的影响

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Flow softening behavior, microstructure evolution and hot working parameters of powder metallurgy Ti-44Al-3Nb-(Mo, V, Y) alloy were systematically studied by isothermal hot compression. Based on the analysis of processing maps and the corresponding microstructure, power dissipation efficiency peak occurred at two domains, which were associated with dynamic recrystallization (DRX) and super-plasticity. Pile-up of high density dislocation and a large number of twins were the primary deformation mechanisms at low temperature and high strain rate. As the temperature increases, fine DRX grains promote the movement and rotation of grain boundary, the softening of p phase and the transformation of β→α/α2+γ above 1200 ' C improve the deformation capacity of the alloy significantly. Crack-free TiAl sheets were successfully obtained by direct hot rolling process at 1080 °C and 1220 °C. The corresponding microstructure and mechanical properties were analyzed. The sheets rolled at 1080 °C was characterized by near y (NG)+β_0 microstructure with a streamline along the rolling direction, while duplex (DP)+Po microstructure appeared to be the main microstructure at rolling temperature of 1220°C. The as-rolled sheet exhibits excellent mechanical properties at 800 °C. The sheet rolled at 1080 C exhibits 320 MPa yield strength and 468 MPa ultimate tensile strength with 142% elongation. The yield strength, ultimate tensile strength, and elongation of the as-rolled sheet are 446 MPa, 586 MPa, and 3.0%, respectively, when rolled at 1220 °C. The excellent ductility of the sample rolled at 1080 C is attributed to formation of fine DRX grains due to consumption of twins and substructure under tensile stress, which promote grain boundary slip. Lamellar colonies with fine interlamellar spacing and α_2 laths formed at 1220°C can effectively prevent dislocation motion, resulting in a significant increase in the strength of the alloy.
机译:通过等温热压缩系​​统地研究了流动软化行为,粉末冶金Ti-44Al-3NB-(Mo,V,Y)合金的微观结构演化和热工作参数。基于处理地图的分析和相应的微观结构,功率耗散效率峰值发生在两个结构域,其与动态再结晶(DRX)和超塑性相关。高密度位错堆积和大量双胞胎的堆积是低温和高应变率的主要变形机制。随着温度升高,精细的DRX晶粒促进晶界的运动和旋转,P相的软化和β→α/α2+γ以上的β→α2+γ显着提高了合金的变形能力。通过在1080℃和1220℃下直接热轧工艺成功获得无裂缝的Tial片材。分析了相应的微观结构和机械性能。在1080℃下轧制的片材的特征在于沿滚动方向的流线附近Y(ng)+β_0微观结构,而双链体(DP)+ PO微观结构似乎是轧制温度为1220℃的主要微观结构。轧制板在800℃下表现出优异的机械性能。在1080℃下轧制的片材表现出320MPa屈服强度和468MPa的抗拉强度,伸长率为142%。当在1220℃下轧制时,屈服强度,最终拉伸强度和钢板的伸长率分别为446MPa,586MPa和3.0%。在1080c下轧制的样品的优异延展性归因于由于双胞胎和抗拉伸应力下的孪晶和子结构的消耗而形成细D DRX颗粒,这促进了晶界滑动。具有精细层间间距的层状菌落和在1220℃下形成的α_2板条可以有效地防止位错运动,导致合金强度的显着增加。

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