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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Ultrafine-grain formation and improved mechanical properties of novel extruded Ti-Fe-W alloys with complete solid solution of tungsten
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Ultrafine-grain formation and improved mechanical properties of novel extruded Ti-Fe-W alloys with complete solid solution of tungsten

机译:用钨完全固体溶液形成超细晶粒形成及改进的新型挤出Ti-Fe-W合金的机械性能

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Thermomechanical processing and solid-solution strengthening are effective ways to improve the mechanical properties of Ti alloys with elements such as W and Fe. In this study, we present a novel extruded Ti-Fe-W alloys with improved mechanical properties. To analyze the effect of W on the mechanical properties and microstructure of the alloys, Ti-4Fe-xW (x = 0-3 wt%) alloys were prepared by spark plasma sintering followed by homogenization heat treatment and hot extrusion. The microstructure of the assintered specimens included undissolved W particles distributed in the acicular alpha + beta matrix. However, heat treatment at 1300 degrees C for 1 h led to the complete dissolution of W. After hot extrusion at 850 degrees C, an ultrafine equiaxed (globular) microstructure was observed, in which Fe and W preferentially diffused into the beta phase. The main effect of W on the microstructure was a remarkable grain refinement by activation of dynamic recrystallization and impediment of the grain boundary mobility in Ti-4Fe-(1-3)W (similar to 1 mu m) when compared to Ti-4Fe (similar to 3 mu m). Additionally, W increment resulted in a gradual decrease of the average size of a grains. The tensile yield strength increased as W content increased so that the Ti-4Fe-3W alloy exhibited a remarkably high tensile strength, yielding at similar to 1123 MPa with an elongation of similar to 26%. Finally, theoretical and experimental analyses suggested that grain refinement and solid-solution strengthening were the main mechanisms contributing to the strengthening phenomenon in W-containing alloys. (C) 2021 Elsevier B.V. All rights reserved.
机译:热机械加工和固溶强化是改善含钨、铁等元素钛合金力学性能的有效途径。在这项研究中,我们提出了一种新的挤压Ti-Fe-W合金,其机械性能得到了改善。为了分析W对合金力学性能和微观结构的影响,采用放电等离子烧结、均匀化热处理和热挤压的方法制备了Ti-4Fe-xW(x=0-3 wt%)合金。共聚焦试样的微观结构包括分布在针状α+β基体中的未溶解W颗粒。然而,在1300℃下热处理1 h导致W完全溶解。在850℃下热挤压后,观察到超细等轴(球状)微观结构,其中Fe和W优先扩散到β相。与Ti-4Fe(类似于3μm)相比,W对微观结构的主要影响是通过激活动态再结晶和阻碍Ti-4Fe-(1-3)W(类似于1μm)中的晶界迁移率来显著细化晶粒。此外,W的增加导致a晶粒的平均尺寸逐渐减小。拉伸屈服强度随着W含量的增加而增加,因此Ti-4Fe-3W合金表现出非常高的拉伸强度,屈服强度接近1123MPa,伸长率接近26%。最后,理论和实验分析表明,晶粒细化和固溶强化是导致含钨合金强化的主要机制。(c)2021爱思唯尔B.V.保留所有权利。

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