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Journal of Chinese Society for Corrosion and protection  2026, Vol. 46 Issue (4): 1031-1044    DOI: 10.11902/1005.4537.2025.313
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Effect of Hydrostatic Pressure on Stress Corrosion Cracking of Cast and Forged Ti-6Al-4V Alloys
XU Qiufa1, GUO Yue1, LIU Jun2, YANG Dong3, CUI Yu3()
1.Beijing Institute of Astronautical Systems Engineering, Beijing 050024, China
2.State Key Laboratory of Digital Steel, Northeastern University, Shenyang 110819, China
3.Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
Cite this article: 

XU Qiufa, GUO Yue, LIU Jun, YANG Dong, CUI Yu. Effect of Hydrostatic Pressure on Stress Corrosion Cracking of Cast and Forged Ti-6Al-4V Alloys. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 1031-1044.

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Abstract  

The stress corrosion behavior of cast Ti-6Al-4V alloy, as an important engineering material of key structural components for deep-sea applications, in actual deep-sea conditions still remains unclear. In this study, the effect of hydrostatic pressure on the stress corrosion sensitivity and electrochemical behavior of the cast and forged Ti-6Al-4V alloys was comparatively studied by means of slow strain rate tensile testing and electrochemical testing techniques, scanning electron microscopy with electron backscatter diffraction (EBSD), etc. The results indicate that under the combined influence of high hydrostatic pressure and tensile stress, the transition of passivation films of both cast and forged Ti-alloys could occur from a dense structure gradually to a porous structure, thereby reducing their protectiveness. The coarse β-phase grain boundaries and defects in the cast Ti-alloy act as sites of weakness in the passivation film, which could significantly lower the compactness and corrosion resistance of the passivation film for the cast Ti-alloy. However, this effect was not observed in the forged Ti-alloy. The stress corrosion sensitivity of both types of Ti-6Al-4V alloys increases with hydrostatic pressure. In contrast, by the same hydrostatic pressure, the stress corrosion sensitivity of the cast Ti-6Al-4V alloy is higher than that of the forged Ti-6Al-4V alloy. Under high hydrostatic pressure, brittle fracture occurs for the cast Ti-6Al-4V alloy, and while ductile-brittle fracture for the forged Ti-6Al-4V alloy. Under high hydrostatic pressure, the applied tensile stress can induce dislocation motion, leading to stress concentration at the original β-phasegrain boundaries of the cast Ti-6Al-4V alloy. In fact, the existence of segregation defects can lead to the preferential damage of the passive film at those sites, and the cracks at the dendrites can initiate and propagate along the α/β phase interface in between the layers, and thus, the stress corrosion sensitivity is high. In contrast, the forged Ti-6Al-4V exhibits an equiaxed structure with a relatively dense passivation film, uniform deformation, and a strong ability of equiaxed crystals to resist crack propagation, thereby exhibiting relatively lower sensitivity to stress corrosion cracking.

Key words:  hydrostatic pressure      Ti-6Al-4V alloy      stress corrosion      casting     
Received:  10 October 2025      32134.14.1005.4537.2025.313
ZTFLH:  TG174  
Fund: Joint Fund of National Natural Science Foundation of China(U22A20111);Open Project of Key Laboratory of Marine Key Materials(2024K06)
Corresponding Authors:  CUI Yu, E-mail: ycui@imr.ac.cn

URL: 

https://www.jcscp.org/EN/10.11902/1005.4537.2025.313     OR     https://www.jcscp.org/EN/Y2026/V46/I4/1031

Fig.1  Metallographic structure of cast (a) and forged (b) Ti-6Al-4V alloy
Fig.2  Slow strain rate tensile of Ti-6Al-4V alloy: (a) stress-strain curves, (b) casting mechanical properties, (c) forging mechanical properties
Fig.3  Stress corrosion sensitivity of Ti-6Al-4V alloy: (a) ISCC, (b) ISSRT
Fig.4  Tensile fracture morphologies of cast Ti-6Al-4V alloy in different environments, macroscopic and local magnification: (a) in air, (b) 0.1 MPa, (c) 10 MPa, (d) 20 MPa
Fig.5  Tensile fracture morphologies of forged Ti-6Al-4V alloy in different environments, macroscopic and local magnifications: (a) in air, (b) 0.1 MPa, (c) 20 MPa
Fig.6  Fractal dimension of fracture dimples of Ti-6Al-4V alloy under different water pressures
Fig.7  Open circuit potential of Ti-6Al-4V alloy (U-bend specimen) under different hydrostatic pressures: (a) OCP, (b) local enlarged diagram of cast, (c) local enlarged diagram of forged
Fig.8  Potentiostatic polarization curves at 0.25 V of cast (a) and forged (b) Ti-6Al-4V alloy (U-shaped bending specimens) under different hydrostatic pressures
Fig.9  Nyquist (a1-e1) and Bode (a2-e2) of cast (a-c) and forged (d, e) Ti-6Al-4V alloy (U-bend specimens) under hydrostatic pressures of 0.1 MPa (a, d), 10 MPa (b) and 20 MPa (c, e), and fitting circuit (f)
Pressure / MPat / minRs / Ω·cm2Ceff, dl / μF·cm-2ndlRct / Ω·cm2Ceff, f / μF·cm-2nfRf / Ω·cm2Σχ2
0.151.5251.70.75138870.50.901.85 × 1054.06 × 10-3
251.4941.90.77125472.60.893.75 × 1054.16 × 10-3
451.4938.10.78267575.40.885.08 × 1051.74 × 10-3
651.5035.50.79267576.00.886.20 × 1052.76 × 10-3
851.4332.70.78357867.10.905.62 × 1056.40 × 10-3
1051.6141.30.94107465.10.889.50 × 1046.56 × 10-3
251.6332.60.99129367.00.872.74 × 1054.71 × 10-3
451.6332.00.95113270.60.873.61 × 1058.33 × 10-3
651.6032.30.95127873.10.863.85 × 1058.41 × 10-3
851.6128.60.93150274.00.883.98 × 1059.05 × 10-3
2051.6623.40.8910624.80.855.54 × 1044.18 × 10-3
251.5735.80.955223.30.835.58 × 1048.49 × 10-3
451.6120.40.986720.10.853.51 × 1042.87 × 10-3
651.5820.10.987219.90.853.48 × 1046.62 × 10-3
851.6115.90.9112518.70.873.32 × 1047.71 × 10-3
Table 1  Fitting results of EIS of U-bend cast Ti-6Al-4V alloy samples under different hydrostatic pressures
Pressure / MPat / minRs / Ω·cm2Ceff, dl / μF·cm-2ndlRct / Ω·cm2Ceff, f / μF·cm-2nfRf / Ω·cm2Σχ2
0.152.9411.70.92332030.40.966.85 × 1053.74 × 10 -3
252.8534.90.91265420.70.939.18 × 1057.13 × 10 -3
452.1211.30.92305511.70.929.78 × 1052.35 × 10 -3
652.1111.30.9238249.70.921.03 × 1062.23 × 10 -3
852.868.30.92630249.30.951.15 × 1062.32 × 10 -3
2051.3423.30.87222737.80.706.88 × 1046.30 × 10 -3
251.3518.80.89181349.60.761.05 × 1051.50 × 10 -3
451.3814.40.91148571.60.791.18 × 1051.63 × 10 -3
651.3616.40.90245760.90.781.49 × 1053.87 × 10 -3
851.3616.00.90252374.10.802.05 × 1051.49 × 10 -3
Table 2  Fitting results of EIS of U-bend forged Ti-6Al-4V alloy samples under different hydrostatic pressures
Fig.10  Potentiodynamic polarization curves of Ti-6Al-4V alloy (U-bend specimen) under different hydrostatic pressures
Fig.11  Results of EBSD inverse pole figure of Ti-6Al-4V alloy slow tensile fracture under 20 MPa hydrostatic pressure: (a) IPF diagram of tensile direction of the cast sample, (b) IPF of the forged sample, (c) reverse pole figure of cast sample, (d) reverse pole figure of forged sample
Fig.12  EBSD results of Ti-6Al-4V alloys slow tensile fracture under 20 MPa hydrostatic pressure: (a) kernel average misorientation (KAM) and (b) grain boundary (GB)
Fig.13  EIS analysis of Ti-6Al-4V alloy (U-bend specimens) under different hydrostatic pressures: (a) Rf change curves, (b) Rf ratio results under different hydrostatic pressures, (c) the curves of 1/Ceff changing with time
Fig.14  A schematic diagram of stress corrosion cracking mechanism of cast Ti-6Al-4V alloy under 20 MPa hydrostatic pressure
[1] Li M, Hu L Y, Hu K F, et al. Crevice corrosion behavior of 316L stainless steel in deep-sea environment [J]. J. Chin. Soc. Corros. Prot., 2023, 43: 1375
李 敏, 胡凌越, 胡科峰 等. 316L不锈钢在深海环境中的缝隙腐蚀行为研究 [J]. 中国腐蚀与防护学报, 2023, 43: 1375
[2] Liu H C, Fan L, Zhang H B, et al. Research progress of stress corrosion cracking of Ti-alloy in deep sea environments [J]. J. Chin. Soc. Corros. Prot., 2022, 42: 175
柳皓晨, 范 林, 张海兵 等. 钛合金深海应力腐蚀研究进展 [J]. 中国腐蚀与防护学报, 2022, 42: 175
doi: 10.11902/1005.4537.2021.050
[3] Ma H Y, Yang N, Cui Y, et al. Investigation of the passive film of nanocrystalline 304 stainless steel in 3.5wt%NaCl solution under hydrostatic pressure [J]. Electrochim. Acta, 2024, 481: 143981
doi: 10.1016/j.electacta.2024.143981
[4] Zhao R R, Xu L K, Xin Y L, et al. Influence of cathodic polarization on stress corrosion cracking susceptibility of 35CrMo steel for high strength bolt in simulated deep-sea environment [J]. Corros. Sci., 2024, 233: 112079
doi: 10.1016/j.corsci.2024.112079
[5] Liu H Y, Liang X F, Shao Y W, et al. Effect of hydrostatic pressure of 3.5%NaCl solution on the corrosion behavior of epoxy coating [J]. J. Chin. Soc. Corros. Prot., 2010, 30: 374
刘浩宇, 梁小峰, 邵亚薇 等. 静水压力下Q235钢环氧涂层在3.5%NaCl溶液中的失效过程 [J]. 中国腐蚀与防护学报, 2010, 30: 374
[6] Duan T G, Li Z, Peng W S, et al. Corrosion characteristics of 5A06 Al-alloy exposed in natural deep-sea environment [J]. J. Chin. Soc. Corros. Prot., 2023, 43: 352
段体岗, 李 祯, 彭文山 等. 深海环境5A06铝合金腐蚀行为与表面特性 [J]. 中国腐蚀与防护学报, 2023, 43: 352
doi: 10.11902/1005.4537.2022.102
[7] Pustode M D, Raja V S, Paulose N. The stress-corrosion cracking susceptibility of near-α titanium alloy IMI 834 in presence of hot salt [J]. Corros. Sci., 2014, 82: 191
doi: 10.1016/j.corsci.2014.01.013
[8] Lu J W, Ge P, Li Q, et al. Effect of microstructure characteristic on mechanical properties and corrosion behavior of new high strength Ti-1300 beta titanium alloy [J]. J. Alloy. Compd., 2017, 727: 1126
doi: 10.1016/j.jallcom.2017.08.239
[9] Martin É, Azzi M, Salishchev G A, et al. Influence of microstructure and texture on the corrosion and tribocorrosion behavior of Ti-6Al-4V [J]. Tribol. Int., 2010, 43: 918
doi: 10.1016/j.triboint.2009.12.055
[10] Dong Y C, Huang S, Wang Y Y, et al. Stress corrosion cracking of TC4 ELI alloy with different microstructure in 3.5%NaCl solution [J]. Mater. Charact., 2022, 194: 112357
doi: 10.1016/j.matchar.2022.112357
[11] Zhang H X, Zhang F, Hao F Y, et al. Stress corrosion behavior and mechanism of Ti6321 alloy with different microstructures in stimulated deep-sea environment [J]. Corros. Sci., 2024, 233: 112059
doi: 10.1016/j.corsci.2024.112059
[12] Yu Z Q, Dong Y C, Li X, et al. Study on corrosion behavior of ultrafine-grained Ti-6Al-7Nb fabricated by equal channel angular pressing [J]. Metals, 2020, 10: 950
doi: 10.3390/met10070950
[13] Beccaria A M, Poggi G, Gingaud D, et al. Effect of hydrostatic pressure on passivating power of corrosion layers formed on 6061 T6 aluminium alloy in sea water [J]. Br. Corros. J., 1994, 29: 65
doi: 10.1179/000705994798267962
[14] Liu R, Cui Y, Zhang B, et al. Unveiling the effect of hydrostatic pressure on the passive films of the deformed titanium alloy [J]. Corros. Sci., 2021, 190: 109705
doi: 10.1016/j.corsci.2021.109705
[15] Min X H, Bai P F, Emura S, et al. Effect of oxygen content on deformation mode and corrosion behavior in β-type Ti-Mo alloy [J]. Mater. Sci. Eng., 2017, 684A: 534
[16] Zhang Y X, Yan T T, Fan L, et al. Effect of pH on the corrosion and repassivation behavior of TA2 in simulated seawater [J]. Materials, 2021, 14: 6764
doi: 10.3390/ma14226764
[17] Cao P, Zhou T T, Bai X Q, et al. Research progress on corrosion and protection in deep-sea environment [J]. J. Chin. Soc. Corros. Prot., 2015, 35: 12
曹 攀, 周婷婷, 白秀琴 等. 深海环境中的材料腐蚀与防护研究进展 [J]. 中国腐蚀与防护学报, 2015, 35: 12
[18] Zhao Q Y, Sun Q Y, Xin S W, et al. High-strength titanium alloys for aerospace engineering applications: A review on melting-forging process [J]. Mater. Sci. Eng., 2022, 845A: 143260
[19] Jia L M, Xu D M, Li M, et al. Casting defects of Ti-6Al-4V alloy in vertical centrifugal casting processes with graphite molds [J]. Met. Mater. Int., 2012, 18: 55
doi: 10.1007/s12540-012-0007-0
[20] Braga D P, Magalhães D C C, Kliauga A M, et al. Microstructure, mechanical behavior and stress corrosion cracking susceptibility in ultrafine-grained Al-Cu alloy [J]. Mater. Sci. Eng., 2020, 773A: 138865
[21] Manogar B, Yang F, Bolzoni L. Effect of Nb addition on the phase stability, microstructure, and mechanical properties of powder metallurgy Ti-5Fe-xNb alloys [J]. Metals, 2022, 12: 1528
doi: 10.3390/met12091528
[22] Shamir M, Junaid M, Khan F N, et al. A comparative study of electrochemical corrosion behavior in Laser and TIG welded Ti-5Al-2.5Sn alloy [J]. J. Mater. Res. Technol., 2019, 8: 87
doi: 10.1016/j.jmrt.2017.09.006
[23] ASTM. Standard practice for slow strain rate testing to evaluate the susceptibility of metallic materials to environmentally assisted cracking [S]. Philadelphia: ASTM, 2013
[24] ASTM. Standard practice for making and using U-bend stress-corrosion test specimens [S]. Philadelphia: ASTM, 2009
[25] Li J, Zhang T, Li Z M, et al. Effect of hydrogen on the corrosion and stress corrosion cracking behavior of additively manufactured Ti-6Al-4V compared with traditional process [J]. J. Mater. Res. Technol., 2025, 37: 4417
doi: 10.1016/j.jmrt.2025.07.117
[26] Wang G F‚ Zhang K F‚ Wu W. Diffusion welding of TB2 titanium alloy and fractal dimension [J]. Chin. J. Nonferr. Met., 2002, 12: 982
王国峰, 张凯锋, 吴 为. TB2钛合金扩散连接与分形维数 [J]. 中国有色金属学报, 2002, 12: 982
[27] Liu R, Cui Y, Liu L, et al. A primary study of the effect of hydrostatic pressure on stress corrosion cracking of Ti-6Al-4V alloy in 3.5%NaCl solution [J]. Corros. Sci., 2020, 165: 108402
doi: 10.1016/j.corsci.2019.108402
[28] Pan C, Liu L, Li Y, et al. The electrochemical corrosion behavior of nanocrystalline 304 stainless steel prepared by magnetron sputtering [J]. J. Electrochem. Soc., 2012, 159: C453
doi: 10.1149/2.034211jes
[29] Hu S B, Liu L, Cui Y, et al. Influence of hydrostatic pressure on the corrosion behavior of 90/10 copper-nickel alloy tube under alternating dry and wet condition [J]. Corros Sci., 2019, 146: 202
doi: 10.1016/j.corsci.2018.10.036
[30] Zhang J F, Zhang W, Yan C W, et al. Corrosion behaviors of Zn/Al-Mn alloy composite coatings deposited on magnesium alloy AZ31B (Mg-Al-Zn) [J]. Electrochim. Acta, 2009, 55: 560
doi: 10.1016/j.electacta.2009.09.026
[31] Hirschorn B, Orazem M E, Tribollet B, et al. Determination of effective capacitance and film thickness from constant-phase-element parameters [J]. Electrochim. Acta, 2010, 55: 6218
doi: 10.1016/j.electacta.2009.10.065
[32] Lu H R, Ji P F, Li B, et al. Mechanical properties and deformation mechanism of a novel metastable β-type Ti-4V-2Mo-2Fe alloy [J]. Mater. Sci. Eng., 2022, 848A: 143376
[33] Roh B, Macdonald D D. Passivity of titanium: Part II, the defect structure of the anodic oxide film [J]. J. Solid State Electrochem., 2019, 23: 1967
doi: 10.1007/s10008-019-04254-0
[34] Li Y, Liu J X, Zhong G, et al. Analysis of a diesel engine cylinder head failure caused by casting porosity defects [J]. Eng. Fail. Anal., 2021, 127: 105498
doi: 10.1016/j.engfailanal.2021.105498
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