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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 >Microstructure and strengthening mechanism of ultrastrong and ductile Ti-xSn alloy processed by powder metallurgy
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Microstructure and strengthening mechanism of ultrastrong and ductile Ti-xSn alloy processed by powder metallurgy

机译:粉冶金加工超龙和韧性Ti-XSN合金的组织及强化机理

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Dynamic recrystallization, grain refinement and strengthening mechanism were investigated in the ultrastrong and ductile alpha Ti-xSn alloy processed by spark plasma sintering (SPS) and hot extrusion. Compared with pure Ti, the yielding and ultimate tensile strength of Ti-xSn alloy were greatly increased by 140% (993.88 MPa) and 92% (1086.76 MPa). The alloyed solutes dragged nucleation and grains growth of the recrystallization process. The bimodal microstructure was occurred and the average grain size was refined with increasing the alloyed contents. The fraction of deformed strips was increased but the fraction of the recrystallized grains was decreased. Brittle Ti3Sn compound (similar to 100 mu m) was formed in the high Sn content samples. The quantitative analysis of the relationship between the fraction of recrystallized grain, low angle grain boundary fraction, activation energy for grain growth and solid solute atoms indicated either a linear or parabolic relationship. Quantitative analysis of strengthening effects pointed out that solid-solution strengthening effect, strain hardening and boundary strengthening were the main contributors to the great strength enhancement. The toughening mechanism was discussed by the compatible uniform strain and postponed necking. Rapid cracks initiation and propagation after uniform strain led to gradual ductility sacrifice. The present work may provide a new understanding on the relationship among the mechanical properties, microstructure and processing of Ti alloy. (C) 2017 Elsevier B.V. All rights reserved.
机译:通过火花等离子体烧结(SPS)和热挤出处理的超微孔和韧性αTi-XSN合金中的动态再结晶,晶粒细化和强化机制。与纯Ti相比,Ti-Xsn合金的产量和最终拉伸强度大大增加了140%(993.88MPa)和92%(1086.76MPa)。合金化溶质拖动成核和谷物的重结晶过程的生长。发生了双峰组织,并通过增加合金含量来改进平均晶粒尺寸。变形条的级分增加,但重结晶晶粒的级分降低。在高Sn含量样品中形成脆性Ti3Sn化合物(类似于100μm)。重结晶晶粒级分,低角度晶界差异,晶粒生长和固体溶质原子的活化能的关系的定量分析表明了线性或抛物线关系。强化效果的定量分析指出,固溶强化效应,应变硬化和边界加强是对巨大强度增强的主要贡献者。通过相容的均匀应变和推迟缩颈,讨论了增韧机制。在均匀应变导致逐渐延展牺牲后的快速裂缝启动和传播。本作本作可以对Ti合金的机械性能,微观结构和加工之间的关系提供新的理解。 (c)2017年Elsevier B.V.保留所有权利。

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