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Acta Metall Sin  2025, Vol. 61 Issue (12): 1858-1872    DOI: 10.11900/0412.1961.2024.00145
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Effect of Deformation Spheroidization Treatment on the Corrosion Behavior and Mechanical Properties of Pearlite Steel in Simulated Cargo Oil Tank Inner Substrate Environment
GUO Jiaming1,2, CHEN Nan2, HE Xiaoyan2, WEI Jie2(), CHEN Huiqin1(), DONG Junhua2(), KE Wei2
1 School of Materials Science and Engineering, Taiyuan University of Science and Technology, Taiyuan 030024, China
2 Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
Cite this article: 

GUO Jiaming, CHEN Nan, HE Xiaoyan, WEI Jie, CHEN Huiqin, DONG Junhua, KE Wei. Effect of Deformation Spheroidization Treatment on the Corrosion Behavior and Mechanical Properties of Pearlite Steel in Simulated Cargo Oil Tank Inner Substrate Environment. Acta Metall Sin, 2025, 61(12): 1858-1872.

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Abstract  

With the rapid growth of the international crude oil shipping industry, ensuring the safety of oil tanker transportation has become a critical concern. The cargo oil tank (COT), the primary structure for storing crude oil, is particularly susceptible to corrosion, with the inner bottom plate being a key site for failure and potential oil leakage. Low-alloy corrosion-resistant steel, mandated by the International Maritime Organization as an alternative to traditional anticorrosion coatings, faces challenges in China due to insufficient corrosion resistance, limiting its long-term applicability in COTs. Enhancing the intrinsic properties of ship plate steel while minimizing costs is therefore crucial for improving its corrosion resistance and mechanical performance. In the simulated acidic Cl- environment of a COT bottom plate, a micro-galvanic couple forms between ferrite and cementite in pearlite, with ferrite acting as the anodic phase and cementite as the cathodic phase. Over time, accumulated cementite thickens on the surface, increasing the anode/cathode area ratio and accelerating the corrosion rate due to intensified micro-galvanic effects. To mitigate this, a deformation spheroidization process was employed to refine the microstructure without additional alloying elements. By optimizing forging and heat treatment parameters, a tempered sorbitic microstructure was achieved in T8 steel. Microstructural evolution was characterized using SEM and EBSD, while mechanical properties were assessed through microhardness testing, tensile experiments, and fracture morphology analysis. Corrosion behavior before and after optimization was examined via mass loss tests, electrochemical analysis, and corrosion product characterization. The results indicate that spheroidization heat treatment enhances the strength, plasticity, and toughness of T8 steel through grain refinement, dislocation strengthening, and dispersion strengthening. The transformation of bulk layered cementite into fine-grained cementite effectively suppresses its accumulation on the surface during corrosion, mitigating the accelerating effect of micro-galvanic corrosion. Consequently, the corrosion resistance of T8 steel in the simulated COT environment was significantly improved. This study demonstrates a cost-effective approach to enhancing both the mechanical properties and corrosion resistance of ship plate steel through microstructural control, offering new insights for the development of corrosion-resistant materials for cargo oil tanks.

Key words:  deformation spheroidization      pearlite steel      fine grain strengthening      micro-galvanic corrosion      mechanical property      corrosion resistance     
Received:  08 May 2024     
ZTFLH:  TG174.2  
Fund: National Natural Science Foundation of China(52373232)
Corresponding Authors:  WEI Jie, associate professor, Tel: 13478204310, E-mail: jwei@imr.ac.cn; CHEN Huiqin, professor, Tel: 18703417081, E-mail: chenhuiqin@tyust.edu.cn; DONG Junhua, professor, Tel: 13842056525, E-mail: jhdong@imr.ac.cn

URL: 

https://www.ams.org.cn/EN/10.11900/0412.1961.2024.00145     OR     https://www.ams.org.cn/EN/Y2025/V61/I12/1858

Fig.1  Schematic of deformation spheroidization process
Sample numberCooling method after forgingCooling method after spheroidization
T1#Water coolingWater cooling
T2#Air cooling
T3#Air coolingWater cooling
T4#Air cooling
Table 1  Sample numbers of deformation spheroidization
Fig.2  Dimensional drawing of tensile sample (unit: mm)
Fig.3  OM images of T8 steel (a) and its post forging water cooling (b) and air cooling (c)
Fig.4  SEM images of the original microstructure (a) and microstructures under different cooling conditions after deformation spheroidization (b-e) of T8 steel
(b) T1# (c) T2# (d) T3# (e) T4#
Fig.5  EBSD analyses of T8 steel (a1-a4) and T1# steel (b1-b4)
(a1, b1) inverse pole figures (IPFs) (a2, b2) image quality (IQ) + grain boundary (GB) overlap maps (The blue lines and red lines denote the high angle grain boundaries (HAGBs, misorientation angle > 15°) and low angle grain boundaries (LAGBs, misorientation angle 2°-15°), respectively) (a3, b3) grain size distribution diagrams (a4, b4) kernel average misorientation (KAM) maps
SteelfLAGBfHAGBd
%%μm
T812.387.734.18
T1#5.994.12.74
Table 2  Proportions of LAGB and HAGB (fLAGB and fHAGB) and average grain sizes (d) of T8 steel and T1# steel
Fig.6  Engineering stress-strain curves of T8 steel and T1# steel

Steel

Ultimate tensile strength

MPa

Yield strength

MPa

Elongation

%

T8977 ± 2-1 ± 2
T1#838 ± 4653 ± 421 ± 2
Table 3  Tensile mechanical properties of T8 steel and T1# steel
Fig.7  Tensile morphologies (a1, b1) and SEM images of fracture morphologies (a2, b2) of T8 steel (a1, a2) and T1# steel (b1, b2)
Fig.8  Macroscopic surface corrosion morphologies of T8 steel (a1, a2) and T1# steel (b1, b2) after immersion for 216 h before (a1, b1) and after (a2, b2) rust removal
Fig.9  XRD spectra of T8 steel (a) and T1# steel (b) before and after immersion for 216 h in simulated solution
Fig.10  SEM surface corrosion images of T8 steel after immersion for 120 h (a1, a2) and 216 h (b1, b2) before (a1, b1) and after (a2, b2) rust removal
Fig.11  SEM surface corrosion images of T1# steel after immersion for 120 h (a1, a2) and 216 h (b1, b2) before (a1, b1) and after (a2, b2) rust removal
Fig.12  SEM cross-sectional corrosion images of T8 steel (a1, a2) and T1# steel (b1, b2) after immersion for 120 h (a1, b1) and 216 h (a2, b2)
Fig.13  Annual corrosion rate (v) as a function of immersion time (t) of T8 steel and T1# steel in simulated solution
Fig.14  Potentiodynamic polarization curves of T8 steel (a) and T1# steel (b) after immersion for different time (E—potential, i—current density, SCE—saturated calomel electrode)
Fig.15  Corrosion current density (icorr) as a function of t of T8 steel and T1# steel
Fig.16  Electrochemical impedance spectroscopy (EIS) results for T8 steel (a-c) and T1# steel (d-f) after immersion for different time
(a, d) Nyquist plots (Z'—real part of impedance, Z"—imaginary part of impedance) (b, e) Bode-impedance modulus plots (|Z|—impedance modulus) (c, f) Bode-phase angle plots
Fig.17  Equivalent circuit for EIS fitting of T8 steel and T1# steel(L—high frequency inductance, Rs—solution resistance, Ra—anodic reaction resistance, Rc—cathodic reaction resistance, Qa—constant phase element of anodic reaction, Qc—constant phase element of cathodic reaction)

t

h

L

10-7 Ω·m2

Rs

Ω·cm2

Qc-Y0 × 103

Ω-1·cm-2·S-nc

nc

Rc

Ω·cm2

Qa-Y0 × 103

Ω-1·cm-2·S-na

na

Ra

Ω·cm2

χ2
243.8621.6403.1350.396810.222.3430.803012.371.823 × 10-3
481.9661.8962.2270.93836.555.1250.53678.621.416 × 10-4
723.1501.9951.9440.99674.527.1030.46955.891.886 × 10-4
1202.9751.9221.6050.75633.508.6120.50074.592.380 × 10-4
Table 4  Fitting parameters of T8 steel after immersion for different time
Fig.18  Rc (a) and Ra (b) of T8 steel and T1# steel after immersion for different time

t

h

L

10-7 Ω·m2

Rs

Ω·cm2

Qc-Y0 × 103

Ω-1·cm-2·S-nc

nc

Rc

Ω·cm2

Qa-Y0 × 103

Ω-1·cm-2·S-na

na

Ra

Ω·cm2

χ2
243.3091.8102.8380.651511.962.4100.486012.668.610 × 10-4
483.5121.7954.6190.710610.105.6780.389611.401.050 × 10-3
723.3031.7762.2810.86699.202.4760.564410.342.406 × 10-4
1204.6541.8233.7500.78687.531.9070.89527.374.262 × 10-4
Table 5  Fitting parameters of T1# steel after immersion for different time
Fig.19  Schematics of corrosion mechanism for T8 steel (a) and T1# steel (b)
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