{101ˉ2} twin,full martensite," /> {101ˉ2} twin,full martensite,"/> {101ˉ2} twin,full martensite,"/> <strong>TC4</strong>钛合金激光表面重熔层内拉伸变形$\{10\bar{1}2\}$孪晶形成机制及马氏体变体选择规律
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Acta Metall Sin  2026, Vol. 62 Issue (9): 1517-1527    DOI: 10.11900/0412.1961.2024.00286
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Formation Mechanism of $\{10\bar{1}2\}$ Twins and Selection Rule of Martensitic Variants During Tensile Deformation in TC4 Titanium Alloy Laser Surface Remelting Layer
YANG Pengfei1(), SUN Lei1, SUN Qi2, YANG Zhiyuan3, ZHAO Yuan1, GAO Ying1, ZHANG Jiazhen4
1 College of Engineering, Zhejiang Normal University, Jinhua 321004, China
2 Key Laboratory of Advanced Technologies of Materials (Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610036, China
3 Sinoma Advanced Nitride Ceramics Co. Ltd., Zibo 255000, China
4 Beijing Aeronautical Science and Technology Research Institute of COMAC, Beijing 102200, China
Cite this article: 

YANG Pengfei, SUN Lei, SUN Qi, YANG Zhiyuan, ZHAO Yuan, GAO Ying, ZHANG Jiazhen. Formation Mechanism of $\{10\bar{1}2\}$ Twins and Selection Rule of Martensitic Variants During Tensile Deformation in TC4 Titanium Alloy Laser Surface Remelting Layer. Acta Metall Sin, 2026, 62(9): 1517-1527.

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Abstract  

Laser surface remelting (LSR) technology significantly enhances the mechanical properties of the TC4 titanium alloy. A comprehensive investigation into the microstructural evolution of TC4 alloy during LSR and its effects on subsequent tensile deformation mechanism is essential for optimizing LSR. In this study, LSR treatment was applied to both the front and back of full martensitic TC4 specimens, followed by tensile testing. TEM and EBSD were used to analyze the microstructural evolution during tensile deformation, focusing on the formation and distribution characteristics of {101¯2} twins. The results show that rapid cooling during LSR induces significant residual stress. This in turn not only promotes the preferential formation of specific martensite variants but also lowers the critical shear stress required for twinning. In addition, the evaporation of aluminum during laser treatment decreases the c / a ratio of the TC4 alloy, weakens the anisotropy of the crystal lattice, and further promotes the formation of {101¯2} twins. These twins are primarily concentrated in several martensite variants with specific orientations, exhibiting a clear tendency for preferential formation under rapid cooling conditions.

Key words:  TC4 titanium alloy      laser surface remelting      heterostructure      {101ˉ2} twin')" href="#">{101ˉ2} twin      full martensite     
Received:  19 August 2024     
ZTFLH:  TG178  
Fund: National Natural Science Foundation of China(52475219);Fundamental Research Funds for the Central Universities(2682023ZTPY006);Fundamental Research Funds for the Central Universities(2682024GF00);Natural Science Foundation of Sichuan Province(2023NSFSC0411)
Corresponding Authors:  YANG Pengfei, Tel: 15608083713, E-mail: yangpf@zjnu.edu.cn
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YANG Pengfei
SUN Lei
SUN Qi
YANG Zhiyuan
ZHAO Yuan
GAO Ying
ZHANG Jiazhen

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https://www.ams.org.cn/EN/10.11900/0412.1961.2024.00286     OR     https://www.ams.org.cn/EN/Y2026/V62/I9/1517

Fig.1  All-Euler-angle image (a) and inverse pole figure (IPF) (b) of laser remelted layer close to fracture surface of the WQ-LSR sample (RD—rolling direction, TD—transverse direction, ND—normal direction, WQ—water quenching, LSR—laser surface remelting)
Fig.2  TEM image of the {101¯2} twin on the fracture surface of the WQ-LSR sample and corresponding SAED patterns (Inset shows the orientation of the hexagonal prism corresponds to matrix A, and the highlighted plane represents the {101¯2} twin plane. EB—electron beam)
Fig.3  EBSD orientation analyses of tensile fracture surface of WQ-LSR sample
(a) EBSD orientation maps
(b) grain boundary maps corresponding to Fig.3a
(c) crystal orientation maps of twins and the matrix corresponding to Fig.3a
Matrix orientation in Euler angle / (°)Twin typeTwin orientation in Euler angle / (°)Twin variant
(93.7, 91.4, 45.0)T1(9.2, 74.2, 55.8)(1¯102)[11¯01]
T2(178.6, 105.1, 0.0)(11¯02)[1¯101]
T4(9.8, 134.9, 3.4)(1¯012)[101¯1]
T5(168.5,164.6, 45.7)(01¯12)[011¯1]
T6(32.7, 16.0, 30.6)(011¯2)[01¯11]
Table 1  Analyses of twin variants in Fig.3a
Fig.4  Schmid factor (SF) distribution images and corresponding statistical histograms (insets) of prismatic slip (a) and basal slip (b) in WQ-LSR sample
Fig.5  SF distribution images and statistical histograms (insets) of prismatic slip (a) and basal slip (b) in WQ sample
SampleAlTiV
WQ6.7289.763.52
WQ-LSR5.74 (-14.58%)90.63 (+0.96%)3.63 (+3.13%)
Table 2  STEM-EDS elemental analyses of WQ and WQ-LSR samples
VariantPlane parallelDirection parallelRotation angle/axis from V1
V111¯0β//0001α111β//112¯0α-
V211¯0β//0001α111¯β//112¯0α10.53°/0001
V3110β//0001α11¯1β//112¯0α90°/1 2.38¯ 1.38 0
V4110β//0001α1¯11β//112¯0α90°/1 2.38¯ 1.38 0
V5101¯β//0001α11¯1β//112¯0α60.83°/1.377¯ 1 2.377 0.359
V6101¯β//0001α111β//112¯0α60°/112¯0
V7011¯β//0001α1¯11β//112¯0α60.83°/1.377¯ 1 2.377 0.359
V8011¯β//0001α111β//112¯0α60°/112¯0
V9011β//0001α11¯1β//112¯0α63.26°/10¯ 5 5 3¯
V10011β//0001α111¯β//112¯0α60.83°/1.377¯ 1 2.377 0.359
V11101β//0001α1¯11β//112¯0α63.26°/10¯ 5 5 3¯
V12101β//0001α111¯β//112¯0α60.83°/1.377¯ 1 2.377 0.359
Table 3  Twelve α variants in TC4 titanium alloy resulting from the β→α phase transition calculated by Burgers orientation relationship[9,23,24]
Fig.6  Prior β grains and α variant orientations reconstructed from WQ (a) and WQ-LSR (b) samples
Grain/variantEuler angleArea fraction / %
WQWQ-LSRWQWQ-LSR
Prior β grain(319.7°, 177.7°, 95.1°)(55.2°, 85.3°, 272.0°)100.00100.00
V1(269.6°, 88.5°, 176.5°)(190.2°, 91.9°, 170.0°)5.888.70
V2(89.6°, 91.5°, 352.9°)(10.2°, 88.1°, 359.5°)5.9028.50
V3(179.6°, 91.8°, 356.2°)(100.4°, 85.2°, 352.8°)8.261.75
V4(359.6°, 88.2°, 173.2°)(280.4°, 94.8°, 176.7°)6.430.75
V5(314.4°, 42.7°, 85.0°)(237.1°, 49.8°, 82.1°)7.1025.49
V6(134.4°, 137.3°, 84.4°)(57.1°, 130.2°, 87.3°)11.742.46
V7(227.0°, 135.2°,268.0°)(140.8°, 132.8°,258.3°)7.1512.61
V8(47.0°, 44.8°, 261.4°)(320.8°, 47.2°, 271.2°)12.821.23
V9(42.3°, 134.7°, 81.5°)(330.3°, 136.8°, 91.7°)7.526.32
V10(222.3°, 45.3°, 88.0°)(150.3°, 43.2°, 77.8°)8.581.74
V11(134.8°, 47.3°, 264.5°)(53.0°, 40.3°, 267.8°)8.768.22
V12(314.8°, 132.7°, 265.0°)(233.0°, 139.7°, 261.7°)9.862.23
Table 4  Euler angles and area fractions of the prior β grain and twelve α variants in WQ and WQ-LSR samples
Fig.7  Misorientation histograms of WQ (a) and WQ-LSR (b) samples
α/α boundaryRotation angle / (°)Frequency / %
WQWQ-LSR
Type 110.531.91.3
Type 26033.621.6
Type 360.836.84.6
Type 463.2647.065.1
Type 59010.67.4
Table 5  α/α grain boundary length fractions of variants in WQ and WQ-LSR samples
[1] Li Y, Zhao Y Q, Zeng W D. Application and development of aerial titanium alloys [J]. Mater. Rep., 2020, 34(suppl.1) : 280
李 毅, 赵永庆, 曾卫东. 航空钛合金的应用及发展趋势 [J]. 材料导报, 2020, 34(): 280
[2] Liu Y, Qu Z D, Wang B X. Research development and application of Ti6Al4V alloy [J]. Ordnance Mater. Sci. Eng., 2005, 28(1): 47
刘 莹, 曲周德, 王本贤. 钛合金TC4的研究开发与应用 [J]. 兵器材料科学与工程, 2005, 28(1): 47
[3] Yang Z Y, Wen F M, Sun Q, et al. Strength-ductility improvement achieved by introducing heterostructured martensite in a Ti-6Al-4V alloy [J]. Mater. Charact., 2022, 192: 112230
doi: 10.1016/j.matchar.2022.112230
[4] Pantawane M V, Sharma S, Sharma A, et al. Coarsening of martensite with multiple generations of twins in laser additively manufactured Ti6Al4V [J]. Acta Mater., 2021, 213: 116954
doi: 10.1016/j.actamat.2021.116954
[5] Karimi J, Xie M S, Wang Z, et al. Influence of substructures on the selective laser melted Ti-6Al-4V alloy as a function of laser re-melting [J]. J. Manuf. Processes, 2021, 68: 1387
doi: 10.1016/j.jmapro.2021.06.059
[6] Akhtar A. Basal slip and twinning in α-titanium single crystals [J]. Metall. Trans. A, 1975, 6: 1105
doi: 10.1007/BF02661366
[7] Ishiyama S, Hanada S, Izumi O. Orientation dependence of twinning in commercially pure titanium [J]. J. Jpn. Inst. Met. Mater., 1990, 54: 976
[8] Dai J H, Wang T T, Chai L J, et al. Characterization and correlation of microstructure and hardness of Ti-6Al-4V sheet surface-treated by pulsed laser [J]. J. Alloys Compd., 2020, 826: 154243
doi: 10.1016/j.jallcom.2020.154243
[9] Ma J K, Zhang Y S, Li J J, et al. Variant selection within one β grain in laser solid formed Ti-6Al-4V alloys [J]. Mater. Charact., 2022, 185: 111744
doi: 10.1016/j.matchar.2022.111744
[10] Vrancken B, Thijs L, Kruth J P, et al. Heat treatment of Ti6Al4V produced by Selective Laser Melting: Microstructure and mechanical properties [J]. J. Alloys Compd., 2012, 541: 177
doi: 10.1016/j.jallcom.2012.07.022
[11] Chai L J, Wu H, Zheng Z Y, et al. Microstructural characterization and hardness variation of pure Ti surface-treated by pulsed laser [J]. J. Alloys Compd., 2018, 741: 116
doi: 10.1016/j.jallcom.2018.01.113
[12] Yang J J, Yu H C, Yin J, et al. Formation and control of martensite in Ti-6Al-4V alloy produced by selective laser melting [J]. Mater. Des., 2016, 108: 308
doi: 10.1016/j.matdes.2016.06.117
[13] Wei S L, Zhu G M, Tasan C C. Slip-twinning interdependent activation across phase boundaries: An in-situ investigation of a Ti-Al-V-Fe (α + β) alloy [J]. Acta Mater., 2021, 206: 116520
doi: 10.1016/j.actamat.2020.116520
[14] Deng X G, Zhang D L, Jiao Q Y, et al. Schmid factor analysis of twinning behavior in Ti-2Al alloy [J]. Mater. Sci. Eng., 2022, A844: 143201
[15] Zhang H, Wei B Q, Ou X Q, et al. Enhancing { 10 1 ¯ 2 }   twin boundary migration capability in Ti-Al solid solution alloys with increasing Al content [J]. J. Mater. Sci. Technol., 2023, 147: 217
doi: 10.1016/j.jmst.2022.10.080
[16] Williams J C, Baggerly R G, Paton N E. Deformation behavior of HCP Ti-Al alloy single crystals [J]. Metall. Mater. Trans., 2002, 33A: 837
[17] Prakash D G L, Ding R, Moat R J, et al. Deformation twinning in Ti-6Al-4V during low strain rate deformation to moderate strains at room temperature [J]. Mater. Sci. Eng., 2010, A527: 5734
[18] Paton N E, Baggerly R G, Williams J C. Deformation and solid solution strengthening of titanium-aluminum single crystals [R]. Thousand Oaks, CA: Rockwell International Science Center, 1976
[19] Zhang G W. Effect of Al content on microstructure and properties of TC4 fabricated by laser additive manufacturing [D]. Dalian: Dalian University of Technology, 2018
张桂伟. Al含量对激光增材制造TC4组织及性能的影响 [D]. 大连: 大连理工大学, 2018
[20] Juechter V, Scharowsky T, Singer R F, et al. Processing window and evaporation phenomena for Ti-6Al-4V produced by selective electron beam melting [J]. Acta Mater., 2014, 76: 252
doi: 10.1016/j.actamat.2014.05.037
[21] Yu H, Cao S, Youssef S S, et al. Generalized stacking fault energies and critical resolved shear stresses of random α-Ti-Al alloys from first-principles calculations [J]. J. Alloy. Compd., 2021, 850: 156314
doi: 10.1016/j.jallcom.2020.156314
[22] Kishida K, Kim J G, Nagae T, et al. Experimental evaluation of critical resolved shear stress for the first-order pyramidal c  +  a slip in commercially pure Ti by micropillar compression method [J]. Acta Mater., 2020, 196: 168
doi: 10.1016/j.actamat.2020.06.043
[23] Beladi H, Chao Q, Rohrer G S. Variant selection and intervariant crystallographic planes distribution in martensite in a Ti-6Al-4V alloy [J]. Acta Mater., 2014, 80: 478
doi: 10.1016/j.actamat.2014.06.064
[24] Yang Y, Liu Y J, Chen J, et al. Crystallographic features of α variants and β phase for Ti-6Al-4V alloy fabricated by selective laser melting [J]. Mater. Sci. Eng., 2017, A707: 548
[25] Wang S C, Aindow M, Starink M J. Effect of self-accommodation on α/α boundary populations in pure titanium [J]. Acta Mater., 2003, 51: 2485
doi: 10.1016/S1359-6454(03)00035-1
[26] Jeong S G, Karthik G M, Kim E S, et al. Architectured heterogeneous alloys with selective laser melting [J]. Scr. Mater., 2022, 208: 114332
doi: 10.1016/j.scriptamat.2021.114332
[27] Simonelli M, Tse Y Y, Tuck C. On the texture formation of selective laser melted Ti-6Al-4V [J]. Metall. Mater. Trans., 2014, 45A: 2863
[28] Ahmed T, Rack H J. Phase transformations during cooling in α + β titanium alloys [J]. Mater. Sci. Eng., 1998, A243: 206
[29] Zhang Q, Xie J W, Gao Z Y, et al. A metallurgical phase transformation framework applied to SLM additive manufacturing processes [J]. Mater. Des., 2019, 166: 107618
doi: 10.1016/j.matdes.2019.107618
[30] Stephenson P L, Haghdadi N, DeMott R, et al. Effect of scanning strategy on variant selection in additively manufactured Ti-6Al-4V [J]. Addit. Manuf., 2020, 36: 101581
[31] Zhang J H, Xu D S, Wang Y Z, et al. Influences of dislocations on nucleation and micro-texture formation of α phase in Ti-6Al-4V alloy [J]. Acta Metall. Sin., 2016, 52: 905
张金虎, 徐东生, 王云志 等. 位错对Ti-6Al-4V合金α相形核及微织构形成的影响 [J]. 金属学报, 2016, 52: 905
doi: 10.11900/0412.1961.2016.00053
[32] Shi R, Wang Y. Variant selection during α precipitation in Ti-6Al-4V under the influence of local stress—A simulation study [J]. Acta Mater., 2013, 61: 6006
doi: 10.1016/j.actamat.2013.06.042
[33] Qiu D, Shi R, Zhang D, et al. Variant selection by dislocations during α precipitation in α/β titanium alloys [J]. Acta Mater., 2015, 88: 218
doi: 10.1016/j.actamat.2014.12.044
[34] Iracheta O, Bennett C J, Sun W. A sensitivity study of parameters affecting residual stress predictions in finite element modelling of the inertia friction welding process [J]. Int. J. Solids Struct., 2015, 71: 180
doi: 10.1016/j.ijsolstr.2015.06.018
[35] Payares-Asprino M C, Katsumoto H, Liu S. Effect of martensite start and finish temperature on residual stress development in structural steel welds [J]. Weld. J., 2008, 87: 279
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