Please wait a minute...
Acta Metall Sin  2026, Vol. 62 Issue (8): 1427-1442    DOI: 10.11900/0412.1961.2025.00157
Research paper Current Issue | Archive | Adv Search |
Hot Deformation Behavior and Hot Processing Map Construction of the Ti551 Alloy
YIN Jiannian1, MA Yingjie2, YANG Rui2, LEI Jiafeng2, QI Min2(), ZHOU Li1()
1 School of Electromechanical and Vehicle Engineering, Yantai University, Yantai 264005, China
2 Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
Cite this article: 

YIN Jiannian, MA Yingjie, YANG Rui, LEI Jiafeng, QI Min, ZHOU Li. Hot Deformation Behavior and Hot Processing Map Construction of the Ti551 Alloy. Acta Metall Sin, 2026, 62(8): 1427-1442.

Download:  HTML  PDF(7165KB) 
Export:  BibTeX | EndNote (RIS)      
Abstract  

The Ti551 alloy exhibits exceptional thermal stability, retaining over 80% of its room-temperature strength within 300-400 oC, outperforming most α-type Ti alloys. Consequently, it has emerged as the primary structural material for applications in extreme operating environments, such as deep-sea oil drilling pipes. Despite this advantage, the Ti551 alloy exhibits considerably complex thermal deformation behavior and microstructural evolution. Establishing the alloy's precise hot processing window is critical to broaden its engineering applications. Therefore, this study investigated the thermal deformation behavior of the Ti551 alloy using a Gleeble-3500 thermal simulation tester. Specifically, isothermal compression tests were conducted over the temperatures (T) of 800-1100 oC and a strain rate (ε˙) of 0.001-10 s-1. Considering friction and temperature corrections, strain-compensated Arrhenius (SCA) and back-propagation artificial neural network (BPANN) models were selected to establish a constitutive model of the Ti551 alloy. The accuracies of both models were evaluated using the correlation coefficient, average absolute relative error, and relative error. The results demonstrate that the BPANN model outperformed the SCA model, yielding superior accuracy in predicting the flow stress. Thereafter, a hot processing map was constructed based on the dynamic materials model, and the corresponding microstructural evolution during thermal compression was systematically analyzed. Analysis of the hot processing map identified the optimal processing window with the following parameters: ε˙ = 0.001-0.1 s-1 and T = 900-1050 oC. Additionally, the instability zone was primarily concentrated in the high-T, high-ε˙ region (T ≥ 1000 °C, ε˙ ≥ 1 s-1). These findings demonstrate that the deformation T and ε˙ substantially influenced the flow stress. Specifically, the flow stress markedly increased with the decrease in T or increase in ε˙. During hot compression, the microstructural evolution of the Ti551 alloy exhibited a close relationship with T and ε˙, and the dynamic recrystallized grain size notably decreased as T decreased or ε˙ increased. Furthermore, the dominant dynamic recrystallization (DRX) mechanisms during hot deformation comprised continuous and discontinuous DRX processes.

Key words:  Ti551 alloy      hot deformation behavior      constitutive equation      hot processing map      microstructure     
Received:  06 June 2025     
ZTFLH:  TG146.23  
Fund: National Key Research and Development Program of China(2024YFB3714201);Natural Science Foundation of Shandong Province(ZR2023ME097)
Corresponding Authors:  QI Min, Tel: 18742418386, E-mail: mqi17s@imr.ac.cn; ZHOU Li, professor, Tel: 13889124507, E-mail: lizhou@ytu.edu.cn

URL: 

https://www.ams.org.cn/EN/10.11900/0412.1961.2025.00157     OR     https://www.ams.org.cn/EN/Y2026/V62/I8/1427

Fig.1  Schematic of the hot compression experiment (Inset shows the shape change of the sample before and after the hot compression experiment)
Fig.2  SEM image (a), inverse pole figure (IPF) (b), phase map (c), and kernel average misorientation (KAM) map (d) of the initial microstructure of Ti551 alloy (αp—primary α, αs—secondary α)
Fig.3  True stress-strain curves at temperatures (T) of 800 oC (a), 900 oC (b), 1000 oC (c), and 1100 oC (d) under different strain rates (ε˙), as well as the true stress-strain curves after friction correction and temperature correction
Fig.4  Temperature changes (ΔT) of Ti551 alloy at ε˙ = 0.001 s-1 (a),0.01 s-1 (b),0.1 s-1 (c), 1 s-1 (d), and 10 s-1 (e) under different T
Fig.5  Linear fitting curves of lnε˙-lnσ (a),lnε˙-σ (b), lnε˙-ln[sinh(ασ)] (c), ln[sinh(ασ)]-T-1 (d), and lnZ-ln[sinh(ασ)] (e) (σ—true stress, α—material constant, Z—Zener-Hollomon parameter)
εQ / (J·mol-1)lnAnα / MPa-1
0.10155144.7412.06712.87800.01426
0.15151640.3711.81662.93790.01389
0.20145891.0411.41702.95330.01375
0.25143261.6311.04922.96860.01374
0.30140042.8510.73652.97040.01373
0.35138616.4310.66232.99570.01372
0.40135233.8810.32182.99920.01371
0.45132736.4510.09403.03690.01372
0.50129037.869.71583.07270.01375
0.55125617.229.38483.09670.01374
0.60121303.178.96103.12850.01372
0.65119952.938.85743.18010.01364
Table 1  Material constants at different true strains (ε)
Fig.6  Curves of Q (a), lnA (b), n (c), and α (d) with true strain (R2—square of the correlation coefficient R)
Fig.7  Structural diagram of back-propagation artificial neural network (BPANN) model
Fig.8  Effects of the number of neurons in the hidden layer on mean squared error (MSE)
Fig.9  Comparisons of predicted and experimental flow stresses under different ε˙ and T = 800 oC (a), 900 oC (b), 1000 oC (c), and 1100 oC (d) (SCA—strain-compensated Arrhenius)
Fig.10  Comparisons of predicted and experimental flow stresses (a, b) and distributions of relative error (c, d) in SCA model (a, c) and BPANN model (b, d) (AARE—average absolute relative error, δ—relative error, δmin—minimum relative error, δmax—maximum relative error)
Fig.11  Thermal compression finite element model (a) and load-stroke curves of upper die (b) of Ti551 alloy (v—moving speed of upper die)
Fig.12  Power dissipation maps of Ti551 alloy at true strains of 0.10 (a), 0.30 (b), 0.50 (c), and 0.69 (d) (The isoline values are power dissipation coefficients)
Fig.13  Instability maps of Ti551 alloy at true strains of 0.10 (a), 0.30 (b), 0.50 (c), and 0.69 (d) (The isoline values are instability coefficients)
Fig.14  Processing maps of Ti551 alloy at true strains of 0.10 (a), 0.30 (b), 0.50 (c), and 0.69 (d) (The isoline values are power dissipation coefficients. Region I—instability zone, region Ⅱ—safe processing region, region Ⅲ—optimal processing region)
Fig.15  OM images of Ti551 alloy under different T and ε˙ at strain of 0.69
Fig.16  IPFs of Ti551 alloy under different T and ε˙ at strain of 0.69
Fig.17  KAM maps of Ti551 alloy under different T and ε˙ at strain of 0.69
Fig.18  Strain distribution of Ti551 alloy at T = 1000 oC and ε˙ = 1 s-1 (a) and OM images of regions I (b), II (c), and III (d) in Fig.18a machining region
[1] Zhang M C, Xu Q S, Liu Y, et al. Effect of hot-pressing temperature on the microstructure and properties of the diffusion-bonded region of TC4 alloy [J]. Acta Metall. Sin., 2025, 61: 1183
张洺川, 徐勤思, 刘 意 等. 热压温度对TC4合金扩散连接区组织与性能的影响 [J]. 金属学报, 2025, 61: 1183
[2] Yang L, Yu S M, Zhan C, et al. Dynamic recrystallization and texture evolution of a novel near-α Ti-6Al-1Mo-2Zr-0.55Fe-0.1B alloy during hot compression [J]. J. Mater. Res. Technol., 2025, 36: 4803
[3] Zhan J W, Ma C H, Liu J L, et al. Improved dynamic impact behavior of TC4 alloy coated with Ti-SiC [J]. Mater. Lett., 2025, 395: 138727
[4] Deng Y C, An Y X, Xiao Y Z H, et al. Deformation mechanism diagram and deformation instability of a Ti-5Al-5Mo-5V-1Cr-1Fe titanium alloy during the hot compression [J]. J. Alloys Compd., 2023, 966: 171446
[5] Zhang H B, Peng H A, Zhou H P, et al. Hot compression behavior and dynamic recrystallization mechanisms of Ti-5Mo-5V-8Cr-3Al alloy [J]. J. Alloys Compd., 2025, 1014: 178727
[6] Liu C C, Li Y H Z, Gu J, et al. Effect of high-strain-rate hot compression on the microstructural evolution and flow behaviors of Ti-55511 alloy [J]. Mater. Sci. Eng., 2025, A937: 148436
[7] Mao Y C, Liu X H, Wang Y, et al. Mechanical behaviour and microstructural evolution of Ti-6Al-1Mo-1V-2Zr-2Cr-1Fe alloy subjected to hot compression deformation [J]. J. Mater. Res. Technol., 2023, 27: 2548
[8] Sun T L, Cao J, Guo Z C, et al. Thermomechanical behaviour of Ti-42.5Al-4Nb-0.5Mo-0.1B-(C, W, Y) alloy during hot compression [J]. Mater. Today Commun., 2023, 34: 105186
[9] Wang Y Q, Shen Y F, Jia N, et al. Dynamic recrystallization and constitutive equation of 15Cr-10Mn-Ni-N steel under hot deformation [J]. Mater. Today Commun., 2023, 35: 105648
[10] Liu Q Q, Lu Y, Zhang Y F, et al. Thermal deformation behavior of Al19.3Co15Cr15Ni50.7 high entropy alloy [J]. Acta Metall. Sin., 2021, 57: 1299
刘庆琦, 卢 晔, 张翼飞 等. Al19.3Co15Cr15Ni50.7高熵合金的热变形行为 [J]. 金属学报, 2021, 57: 1299
[11] Zhao X J, Cao S G, Fan C L, et al. Hot deformation behavior of a 4Al alumina-forming austenitic heat-resistant steel: Constitutive equation, prediction model, processing map and dynamic recrystallization mechanism [J]. J. Mater. Res. Technol., 2025, 35: 7084
[12] Zhu P, Yang S, Gao Z J, et al. Optimization of hot deformation parameters for multi-directional forging of Ti65 alloy based on the integration of processing maps and finite element method [J]. J. Mater. Res. Technol., 2024, 29: 5271
[13] Wang T, Chen Y Z, Ouyang B, et al. Artificial neural network modified constitutive descriptions for hot deformation and kinetic models for dynamic recrystallization of novel AZE311 and AZX311 alloys [J]. Mater. Sci. Eng., 2021, A816: 141259
[14] Shi S X, Liu X S, Zhang X Y, et al. Comparison of flow behaviors of near beta Ti-55511 alloy during hot compression based on SCA and BPANN models [J]. Trans. Nonferrous Met. Soc. China, 2021, 31: 1665
[15] Peng W W, Zeng W D, Wang Q J, et al. Comparative study on constitutive relationship of as-cast Ti60 titanium alloy during hot deformation based on Arrhenius-type and artificial neural network models [J]. Mater. Des., 2013, 51: 95
[16] Zamani M R, Mirzadeh H, Malekan M. Artificial neural network applicability in studying hot deformation behaviour of high-entropy alloys [J]. Mater. Sci. Technol., 2023, 39: 3351
[17] Ebrahimi R, Najafizadeh A. A new method for evaluation of friction in bulk metal forming [J]. J. Mater. Process. Technol., 2004, 152: 136
[18] Han Y, Qiao G J, Sun J P, et al. A comparative study on constitutive relationship of as-cast 904L austenitic stainless steel during hot deformation based on Arrhenius-type and artificial neural network models [J]. Comput. Mater. Sci., 2013, 67: 93
[19] Han Y Z, Zhu H C, Qu J L, et al. Flow stress and dynamic recrystallization behavior and modeling of GH4738 superalloy during hot compression [J]. J. Mater. Res. Technol., 2023, 26: 4957
[20] Sellars C M, McTegart W J. On the mechanism of hot deformation [J]. Acta Metall., 1966, 14: 1136
[21] Ni K, Yang Y H, Cao J C, et al. Softening behavior of 18.7Cr-1.0Ni-5.8Mn-0.2N low nickel-type duplex stainless steel during hot compression deformation under large strain [J]. Acta Metall. Sin., 2021, 57: 224
倪 珂, 杨银辉, 曹建春 等. 18.7Cr-1.0Ni-5.8Mn-0.2N节Ni型双相不锈钢的大变形热压缩软化行为 [J]. 金属学报, 2021, 57: 224
[22] Dong X M, Xu J, Feng Z X, et al. Exploring hot deformation behavior of the solutionized Cu-15Ni-8Sn alloy through constitutive equations and processing maps [J]. J. Mater. Res. Technol., 2024, 29: 2142
[23] Kareem S A, Anaele J U, Aikulola E O, et al. Hot deformation behavior of aluminum alloys: A comprehensive review on deformation mechanism, processing maps analysis and constitutive model description [J]. Mater. Today Commun., 2025, 44: 112004
[24] Huang B, Yu Y, Ye W J, et al. Hot deformation behavior and constitutive equation of TA15N titanium alloy [J]. Materials, 2025, 18: 2067
[25] Li Q Q, Wen J, Wang G S, et al. Strain-compensated constitutive model and hot processing map for extruded Al-Mg-Mn-Ti alloy based on reheating deformation behavior [J]. Mater. Today Commun., 2025, 42: 111492
[26] Wei Z X, Gao Q, Su X X, et al. Flow characteristics, ANN-based prediction, 3D processing map, and interface microstructure of titanium/stainless steel bimetallic composite [J]. J. Mater. Res. Technol., 2024, 29: 2918
[27] Asghari E, Hayati R, Momeni A, et al. Predicting the flow stress of Inconel 617 superalloy using constitutive equation and artificial neural network approach [J]. Mater. Today Commun., 2025, 43: 111690
[28] Chai Y P, Zhu Y C, Qin L, et al. High-temperature hot deformation behavior and processing map of Ti-22Al-25Nb alloy [J]. Mater. Today Commun., 2024, 41: 110599
[29] Bao C L, LI H, Hu L, et al. Construction of hot processing map of solutionized Mg-10Gd-6Y-1.5Zn-0.5Zr alloy and microstructure evolution [J]. Acta Metall. Sin., 2025, 61: 632
包成利, 李 豪, 胡 励 等. 固溶态Mg-10Gd-6Y-1.5Zn-0.5Zr合金热加工图构建及微观组织演变 [J]. 金属学报, 2025, 61: 632
[30] Zarghani F, Ebrahimi G R, Taheri J, et al. Hot compressive deformation behavior of Ti-8Al-1Mo-1V titanium alloy at elevated temperatures: Focus on flow behavior, constitutive modeling, and processing maps [J]. Mater. Today Commun., 2023, 37: 107235
[1] YANG Kun, GUO Qingwei, LI Chao, ZHANG Gaolong, ZHAO Yuhong, HOU Hua. Dynamic Mechanical Response and Spallation Behavior of 60 Steel Under Shock Loading[J]. 金属学报, 2026, 62(8): 1405-1416.
[2] YANG He, HOU Ziyong, HU Xingyi, CHENG Jinjun, WANG Yaru, FAN Guohua, HUANG Xiaoxu. Research Progress and Trends in Characterization Techniques for Ultra-High-Strength and Ultra-Fine Stainless Steel Wires: A Perspective Review[J]. 金属学报, 2026, 62(7): 1189-1206.
[3] LI Ruixue, ZHOU Chenxi, YANG Huimin, YONG Xingyue, LIU Jingjun. Microstructural Evolution and Dynamic Failure Mechanism of B10 Cu-Ni Alloy Under Multiple Stress Coupling in Flowing Seawater[J]. 金属学报, 2026, 62(7): 1273-1287.
[4] WANG Wei, ZHANG Yubo, ZHAO Yan, WANG Tongmin, LI Tingju. Influences of High-Entropy Alloy Particles on the Microstructure and Mechanical Properties of Selective Laser Melted Al12Si Alloy During Solution Treatment[J]. 金属学报, 2026, 62(6): 1009-1020.
[5] WANG Bin, ZHAO Peng, LIU Jiawei, ZHANG Chunbo, QIN Zhiwei, DONG Honggang, LI Peng. Effect of Heat Treatment on Microstructural Evolution and Mechanical Properties of Inertial Friction Welded Joints for FGH96 Superalloy[J]. 金属学报, 2026, 62(6): 1043-1058.
[6] WANG Mingfei, TAO Meiyue, GONG Chen, PENG Bo, LI Tingju, JIE Jinchuan. Microstructural Evolution and Strengthening Mechanisms of Cu-Ni-Si/1010 Steel Bimetallic Composites via Direct Annealing and Cold Rolling + Annealing[J]. 金属学报, 2026, 62(6): 1091-1104.
[7] ZHU Siying, YI Min, GUO Wanlin. Topological Properties and Characteristics of Grain Boundary Structure in Metallic Materials[J]. 金属学报, 2026, 62(5): 705-720.
[8] XIE Hongji, LI Jiarong, LUO Yushi, ZHENG Sujie, LUO Kailun. Effect of Solidification Conditions on Microstructure Evolution in DD6 Single-Crystal Superalloy[J]. 金属学报, 2026, 62(4): 550-560.
[9] WANG Jianfeng, XU Zhenmu, LIU Zhan, GAO Zhuanni, ZHAN Xiaohong. Effect of Ultrasonic Vibration on the Microstructure and Strengthening Mechanism of Narrow Gap Laser Welding of TC4 Titanium Alloy[J]. 金属学报, 2026, 62(3): 406-420.
[10] CUI Tianliang, XIE Xingfei, WEN Xiaocan, LYU Shaomin, QU Jinglong, DU Jinhui. Tensile Behavior and Fracture Mechanism of Hard-to-Deform GH4151 Superalloy[J]. 金属学报, 2026, 62(3): 445-457.
[11] WEI Zhen, LI Xin, JIANG He, WANG Chuan, DONG Jianxin. Microstructure Models Adaptability and Its Application in Ring Rolling Process of GH4169 Superalloy[J]. 金属学报, 2026, 62(3): 497-508.
[12] JIANG Yihui, ZHANG Xingde, SHI Hao, CAO Fei, MA Wenjun, WANG Yanfang, LIANG Shuhua. Research Progress in the Design and Preparation of Advanced Conductive Copper Matrix Composites[J]. 金属学报, 2026, 62(2): 289-308.
[13] LU Shanping, SUN Jian. Research Progress on Microstructural Design and Strengthening-Toughening Mechanisms of Weld Metal in High-Strength Steels[J]. 金属学报, 2026, 62(1): 1-16.
[14] MA Chengyong, HOU Xuru, ZHAO Lin, KAN Chengling, CAO Yang, PENG Yun, TIAN Zhiling. Research Progress on High-Strength Al-Mg-Sc Alloys Fabricated by Wire Arc Additive Manufacturing: Metallurgical Defects, Microstructure, and Performance[J]. 金属学报, 2026, 62(1): 29-46.
[15] YIN Jialin, SHI Lei, WU Chuansong. Effect of Ultrasonic Vibration on Microstructure Evolution at the Mg/Al Dissimilar Alloy Friction Stir Welded Lap Joint Interface[J]. 金属学报, 2026, 62(1): 133-147.
No Suggested Reading articles found!