材料科学技术(英文版)2021,Vol.71Issue(12) :138-151.

Deformation mechanism of bimodal microstructure in Ti-6Al-4V alloy: The effects of intercritical annealing temperature and constituent hardness

Yan Chong Tilak Bhattacharjee Yanzhong Tian Akinobu Shibata Nobuhiro Tsuji
材料科学技术(英文版)2021,Vol.71Issue(12) :138-151.

Deformation mechanism of bimodal microstructure in Ti-6Al-4V alloy: The effects of intercritical annealing temperature and constituent hardness

Yan Chong 1Tilak Bhattacharjee 2Yanzhong Tian 3Akinobu Shibata 2Nobuhiro Tsuji2
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作者信息

  • 1. Department of Materials Science and Engineering, Kyoto University, Kyoto, Japan;Department of Materials Science and Engineering, University of California, Berkeley, CA, USA
  • 2. Department of Materials Science and Engineering, Kyoto University, Kyoto, Japan;Elements Strategy Initiative for Structural Materials (ESISM), Kyoto University, Kyoto, Japan
  • 3. Key Laboratory for Anisotropy and Texture of Materials, School of Materials Science and Engineering, Northeastern University, Shenyang 110819, China;Research Center for Metallic Wires, Northeastern University, Shenyang 110819, China
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Abstract

The so-called bimodal microstructure of Ti-6Al-4V alloy,composed of primary α grains (αp) and transformed β areas (βtrans),can be regarded as a "dual-phase" structure to some extent,the mechanical properties of which are closely related to the sizes,volume fractions,distributions as well as nano-hardness of the two constituents.In this study,the volume fractions of primary α grains (vol.%(αp)) were systematically modified in three series of bimodal microstructures with fixed primary α grain sizes (0.8 μm,2.4 μm and 5.0μm),by changing the intercritical annealing temperature (Tint).By evaluating the tensile properties at room temperature,it was found that with increasing Tint (decreasing vol.%(αp)),the yield strength of bimodal microstructures monotonically increased,while the uniform elongation firstly increased with Tint until 910 ℃ and then drastically decreased afterwards,thereby dividing the Tint into two regions,namely region Ⅰ (830-910 ℃) and region Ⅱ (910-970 ℃).The detailed deformation behaviors within the two regions were studied and compared,from the perspectives of strain distribution analysis,slip system analysis as well as dislocation analysis.For bimodal microstructures in region Ⅰ,due to the much lower nano-hardness of βtrans than αp,there was a clear strain partitioning between the two constituents as well as a strain gradient from the αp/βtrans interface to the grain interior of αp.This activated a large number of geometrically necessary dislocations (GNDs) near the interface,mostly with <c+a> components,which contributed greatly to the extraordinary work-hardening abilities of bimodal microstructures in region Ⅰ.With increasing Tint,the αp/βtrans interface length density gradually increased and so was the density of GNDs with <c+a> components,which explained the continuous increase of uniform elongation with Tint in this region.For bimodal microstructures in region Ⅱ,where the nano-hardness ofβtrans and αp were comparable,neither a clear strain-partitioning tendency nor a strain gradient across the αp/βtrans interface was observed.Consequently,only statistically stored dislocations (SSDs) with <a>component were activated inside αp.The absence of <c+a> dislocations together with a decreased volume fraction of αp resulted into a dramatic loss of uniform elongation for bimodal microstructures in region Ⅱ.

Key words

Ti-6Al-4V/Bimodal microstructure/Intercritical annealing temperature/Strain distribution/<c+a> dislocation

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基金项目

Japan.Y.Z.Tian would like to acknowledge the support by the Fundamental Research Funds for the Central Universities under(N180204015)

出版年

2021
材料科学技术(英文版)
中国金属学会 中国材料研究学会 中国科学院金属研究所

材料科学技术(英文版)

CSTPCDCSCDSCI
影响因子:0.657
ISSN:1005-0302
参考文献量44
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