Mechanical Behavior and Microstructure Evolution during Tensile Deformation of Twinning Induced Plasticity Steel Processed by Warm Forgings

Wen Wang , Modi Zhao , Xingfu Wang , Dan Wang , Fusheng Han

Journal of Wuhan University of Technology Materials Science Edition ›› 2024, Vol. 39 ›› Issue (2) : 417 -424.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2024, Vol. 39 ›› Issue (2) : 417 -424. DOI: 10.1007/s11595-024-2897-3
Metallic Materials

Mechanical Behavior and Microstructure Evolution during Tensile Deformation of Twinning Induced Plasticity Steel Processed by Warm Forgings

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Abstract

The mechanical behavior and microstructural evolution of an Fe-30Mn-3Al-3Si twinning-induced plasticity (TWIP) steel processed using warm forging was investigated. It is found that steel processed via warm forging improves comprehensive mechanical properties compared to the TWIP steel processed via cold rolling, with a high tensile strength (R m) of 793 MPa, a yield strength (R P) of 682 MPa, an extremely large R P/R m ratio as high as 0.86 as well as an excellent elongation rate of 46.8%. The microstructure observation demonstrates that steel processed by warm forging consists of large and elongated grains together with fine, equiaxed grains. Complicated micro-defect configurations were also observed within the steel, including dense dislocation networks and a few coarse deformation twins. As the plastic deformation proceeds, the densities of dislocations and deformation twins significantly increase. Moreover, a great number of slip lines could be observed in the elongated grains. These findings reveal that a much more dramatic interaction between microstructural defect and dislocations glide takes place in the forging sample, wherein the fine and equiaxed grains propagated dislocations more rapidly, together with initial defect configurations, are responsible for enhanced strength properties. Meanwhile, larger, elongated grains with more prevalently activated deformation twins result in high plasticity.

Keywords

TWIP steel / twinning / mechanical property / deformation mechanism / microstructure

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Wen Wang, Modi Zhao, Xingfu Wang, Dan Wang, Fusheng Han. Mechanical Behavior and Microstructure Evolution during Tensile Deformation of Twinning Induced Plasticity Steel Processed by Warm Forgings. Journal of Wuhan University of Technology Materials Science Edition, 2024, 39(2): 417-424 DOI:10.1007/s11595-024-2897-3

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References

[1]

Pierce DT, Jiménez JA, Bentley J, et al. The Influence of Manganese Content on the Stacking Fault and Austenite/ε-martensite Interfacial Energies in Fe-Mn-(Al-Si) Steels Investigated by Experiment and Theory. Acta Mater., 2014, 68(2): 238-253. J]

[2]

Shterner V, Molotnikov A, Timokhina I, et al. Aconstitutive Model of the Deformation Behavior of Twinning Induced Plasticity (TWIP) Steel at Different Temperatures. Mater. Sci. Eng. A, 2014, 613: 224-231. J]

[3]

Kim JK, Kwon MH, Cooman BCD. On the Deformation Twinning Mechanisms in Twinning-Induced Plasticity Steel. Acta Mater., 2017, 141: 444-455. J]

[4]

Wang D, Wang K, Li Z, et al. Improved Mechanical Properties of a Twinning-Induced Plasticity Steel Prepared by Directional Solidification. Mater. Sci. Eng. A., 2015, 636: 396-406. J]

[5]

Bouaziz O, Allain S, Scott CP, et al. High Manganese Austenitic Twinning Induced Plasticity Steels: a Review of the Microstructure Properties Relationships. Curr. Opin. Solid State Mater. Sci., 2011, 15: 141-168. J]

[6]

Etemad A, Dini G, Schwarz S. Accumulative Roll Bonding (ARB)-Processed high-manganese twinning induced plasticity (TWIP) steel with extraordinary strength and reasonable ductility. Mater. Sci. Eng. A., 2019, 742: 27-32. J]

[7]

Wang L, Benito JA, Calvo J, et al. Twin-Induced Plasticity of an ECAP-Processed TWIP Steel. J. Mater. Eng. Perform., 2017, 26: 554-562. J]

[8]

Wang L, Benito JA, Calvo J, et al. Equal Channel Angular Pressing of a TWIP Steel: Microstructure and Mechanical Response. J. Mater Sci., 2017, 52: 6 291-6 309. J]

[9]

Wei Y, Li Y, Zhu L, et al. Evading the Strength-Ductility Trade-off Dilemma in Steel through Gradient Hierarchical Nanotwins[J]. Nature Commun., 2014, 3 580. https://doi.org/10.1038/ncomms4580

[10]

Vercammen S, Blanpain B, Cooman BCD, et al. Cold Rolling Behaviour of an Austenitic Fe-30Mn-3Al-3Si TWIP-Steel: the Importance of Deformation Twinning. Acta Mater., 2004, 52: 2 005-2 012. J]

[11]

Haase C, Barralesmora LA, Molodov DA, et al. Tailoring the Mechanical Properties of a Twinning-Induced Plasticity Steel by Retention of Deformation Twins During Heat Treatment. Metall. Mater. Trans. A., 2013, 44: 4 445-4 449. J]

[12]

Kusakin P, Belyakov A, Haase C, et al. Microstructure Evolution and Strengthening Mechanisms of Fe-23Mn-0.3C-1.5Al TWIP Steel during Cold Rolling. Mater. Sci. Eng. A., 2014, 617: 52-60. J]

[13]

Yang Y, Li CF, Song KH. Effect of Strain Rate on the Microstructures and Properties of Hot-Rolled TWIP Steel in the Solution Condition. Adv. Mater. Res., 2012, 430–432: 256-259. J]

[14]

Wei-Fa YI, Zhu DY, Zhen-Ming HU, et al. Effect of Hot Rolling Deformation on Microstructure Defects and Mechanical Properties of High Carbon TWIP Steel. Mater. Sci. Technol., 2011, 19: 45-49. [J]

[15]

Fu X, Wu X, Yu Q. Dislocation Plasticity Reigns in a Traditional Twinning-Induced Plasticity Steel by in Situ Observation. Mater. Today Nano., 2018, 3: 48-53. J]

[16]

Li Y, Li W, Li S, et al. Ensuring the Strength and Ductility Synergy in an Austenitic Stainless Steel: Single-or Multi-Phase hetero-Structures Design. Scripta Mater., 2021, 193: 81-85. J]

[17]

Wang K, Wang D, Han FS. Effect of Crystalline Grain Structures on the Mechanical Properties of Twinning-Induced Plasticity Steel. Acta Mech. Sinica-prc., 2016, 32: 181-187. J]

[18]

Ding H, Ding H, Song D, et al. Strain Hardening Behavior of a TRIP/TWIP Steel with 18.8% Mn. Mater. Sci. Eng. A., 2011, 528: 868873. J]

[19]

Mohsenzadeh MS, Mazinani M. On the Yield Point Phenomenon in Low-Carbon Steels with Ferrite-cementite Microstructure. Mater. Sci. Eng. A., 2016, 673: 193-203. J]

[20]

Dini G, Najafizadeh A, Ueji R, et al. Improved Tensile Properties of Partially Recrystallized Submicron Grained TWIP Steel. Mater. Lett., 2010, 64: 15-18. J]

[21]

Fang TH, Li WL, Tao DR, et al. Revealing Extraordinary Intrinsic Tensile Plasticity in Gradient Nano-Grained Copper. Science, 2011, 331: 1 587-1 590. J]

[22]

Mi ZL, Tang D, Jiang HT, et al. Effects of Annealing Temperature on the Microstructure and Properties of the 25Mn-3Si-3Al TWIP Steel. Inter. J. Min. Metall. Mater., 2009, 16: 154-158. J]

[23]

Cooman BCD, Estrin Y, Kim SK. Twinning-Induced Plasticity (TWIP) Steels. Acta Mater., 2018, 142: 283-362. J]

[24]

Fu L, Shan M, Zhang D, et al. Microstructure Evolution and Mechanical Behavior of a Hot-Rolled High-Manganese Dual-Phase Transformation-Induced Plasticity/Twinning-Induced Plasticity Steel. Metall. Mater. Trans. A., 2017, 48: 2 179-2 192. J]

[25]

Rahman K, Vorontsov V, Dye D. The Effect of Grain Size on the Twin Initiation Stress in a TWIP Steel. Acta Mater., 2015, 89: 247-257. J]

[26]

Yu L, Lu Y, Li W, et al. Hierarchical Microstructure Design of a Bimodal Grained Twinning-Induced Plasticity Steel with Excellent Cryogenic Mechanical Properties. Acta Mater., 2018, 158: 79-94. J]

[27]

Tian YZ, Bai Y, Zhao LJ, et al. A Novel Ultrafine-Grained Fe 22Mn 0.6C TWIP Steel with Superior Strength and Ductility. Mater. Char., 2017, 126: 74-80. J]

[28]

Gutierrez-Urrutia I, Raabe D. Multistage Strain Hardening through Dislocation Substructure and Twinning in a High Strength and Ductile Weight-Reduced Fe-Mn-Al-C Steel. Acta Mater., 2012, 60: 5 791-5 802. J]

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