Review on the plastic instability of medium-Mn steels for identifying the formation mechanisms of Lüders and Portevin–Le Chatelier bands

Bin Hu, Han Sui, Qinghua Wen, Zheng Wang, Alexander Gramlich, Haiwen Luo

International Journal of Minerals, Metallurgy, and Materials ›› 2024, Vol. 31 ›› Issue (6) : 1285-1297. DOI: 10.1007/s12613-023-2751-1
Invited Review

Review on the plastic instability of medium-Mn steels for identifying the formation mechanisms of Lüders and Portevin–Le Chatelier bands

Author information +
History +

Abstract

Plastic instability, including both the discontinuous yielding and stress serrations, has been frequently observed during the tensile deformation of medium-Mn steels (MMnS) and has been intensively studied in recent years. Unfortunately, research results are controversial, and no consensus has been achieved regarding the topic. Here, we first summarize all the possible factors that affect the yielding and flow stress serrations in MMnS, including the morphology and stability of austenite, the feature of the phase interface, and the deformation parameters. Then, we propose a universal mechanism to explain the conflicting experimental results. We conclude that the discontinuous yielding can be attributed to the lack of mobile dislocation before deformation and the rapid dislocation multiplication at the beginning of plastic deformation. Meanwhile, the results show that the stress serrations are formed due to the pinning and depinning between dislocations and interstitial atoms in austenite. Strain-induced martensitic transformation, influenced by the mechanical stability of austenite grain and deformation parameters, should not be the intrinsic cause of plastic instability. However, it can intensify or weaken the discontinuous yielding and the stress serrations by affecting the mobility and density of dislocations, as well as the interaction between the interstitial atoms and dislocations in austenite grains.

Keywords

medium manganese steel / discontinuous yielding / stress serrations / retained austenite / dislocations

Cite this article

Download citation ▾
Bin Hu, Han Sui, Qinghua Wen, Zheng Wang, Alexander Gramlich, Haiwen Luo. Review on the plastic instability of medium-Mn steels for identifying the formation mechanisms of Lüders and Portevin–Le Chatelier bands. International Journal of Minerals, Metallurgy, and Materials, 2024, 31(6): 1285‒1297 https://doi.org/10.1007/s12613-023-2751-1

References

[1]
Suh DW, Kim SJ. Medium Mn transformation-induced plasticity steels: Recent progress and challenges. Scripta Mater., 2017, 126: 63,
CrossRef Google scholar
[2]
Hu B, Luo HW, Yang F, Dong H. Recent progress in medium-Mn steels made with new designing strategies, a review. J. Mater. Sci. Technol., 2017, 33(12): 1457,
CrossRef Google scholar
[3]
Hu B, He BB, Cheng GJ, Yen H, Huang MX, Luo HW. Super-high-strength and formable medium Mn steel manufactured by warm rolling process. Acta Mater., 2019, 174: 131,
CrossRef Google scholar
[4]
Hu B, Luo HW. A strong and ductile 7Mn steel manufactured by warm rolling and exhibiting both transformation and twinning induced plasticity. J. Alloys Compd., 2017, 725: 684,
CrossRef Google scholar
[5]
He BB, Hu B, Yen HW, et al.. High dislocation density-induced large ductility in deformed and partitioned steels. Science, 2017, 357(6355): 1029,
CrossRef Google scholar
[6]
Liu L, Yu Q, Wang Z, Ell J, Huang MX, Ritchie RO. Making ultrastrong steel tough by grain-boundary delamination. Science, 2020, 368(6497): 1347,
CrossRef Google scholar
[7]
. Sci. Adv., 2020, 6(13) art. No. eaay1430
[8]
Li YJ, Yuan G, Li LL, et al.. Ductile 2-GPa steels with hierarchical substructure. Science, 2023, 379(6628): 168,
CrossRef Google scholar
[9]
. Adv. Eng. Mater., 2022, 24(9) art. No. 2200022
[10]
Hu B, Tu X, Wang Y, Luo HW, Mao XP. Recent progress and future research prospects on the plastic instability of medium-Mn steels: A review. Chin. J. Eng., 2020, 42(1): 48
[11]
Pink E, Grinberg A. Serrated flow in a ferritic stainless steel. Mater. Sci. Eng., 1981, 51(1): 1,
CrossRef Google scholar
[12]
Akama D, Nakada N, Tsuchiyama T, Takaki S, Hironaka A. Discontinuous yielding induced by the addition of nickel to interstitial-free steel. Scripta Mater., 2014, 82: 13,
CrossRef Google scholar
[13]
Lee YK, Han J. Current opinion in medium manganese steel. Mater. Sci. Technol., 2015, 31(7): 843,
CrossRef Google scholar
[14]
Luo HW, Dong H, Huang MX. Effect of intercritical annealing on the Lüders strains of medium Mn transformation-induced plasticity steels. Mater. Des., 2015, 83: 42,
CrossRef Google scholar
[15]
Sun BH, Fazeli F, Scott C, Brodusch N, Gauvin R, Yue S. The influence of silicon additions on the deformation behavior of austenite–ferrite duplex medium manganese steels. Acta Mater., 2018, 148: 249,
CrossRef Google scholar
[16]
Han J, Kang SH, Lee SJ, Lee YK. Fabrication of bimodal-grained Al-free medium Mn steel by double intercritical annealing and its tensile properties. J. Alloys Compd., 2016, 681: 580,
CrossRef Google scholar
[17]
Sun BH, Fazeli F, Scott C, et al.. Microstructural characteristics and tensile behavior of medium manganese steels with different manganese additions. Mater. Sci. Eng. A, 2018, 729: 496,
CrossRef Google scholar
[18]
Ryu JH, Kim JI, Kim HS, Oh CS, Bhadeshia HKDH, Suh DW. Austenite stability and heterogeneous deformation in fine-grained transformation-induced plasticity-assisted steel. Scripta Mater., 2013, 68(12): 933,
CrossRef Google scholar
[19]
Ma JW, Lu Q, Sun L, Shen Y. Two-step intercritical annealing to eliminate Lüders band in a strong and ductile medium Mn steel. Metall. Mater. Trans. A, 2018, 49(10): 4404,
CrossRef Google scholar
[20]
Zhang Y, Ding H. Ultrafine also can be ductile: On the essence of Lüders band elongation in ultrafine-grained medium manganese steel. Mater. Sci. Eng. A, 2018, 733: 220,
CrossRef Google scholar
[21]
Li ZC, Ding H, Misra RDK, Cai ZH. Deformation behavior in cold-rolled medium-manganese TRIP steel and effect of pre-strain on the Lüders bands. Mater. Sci. Eng. A, 2017, 679: 230,
CrossRef Google scholar
[22]
X.G. Wang, B.B. He, C.H. Liu, C. Jiang, and M.X. Huang, Extraordinary Lüders-strain-rate in medium Mn steels, Materialia, 6(2019), art. No. 100288.
[23]
X.G. Wang, C.H. Liu, B.B. He, C. Jiang, and M.X. Huang, Microscopic strain partitioning in Lüders band of an ultrafine-grained medium Mn steel, Mater. Sci. Eng. A, 761(2019), art. No. 138050.
[24]
. Steel Res. Int., 2022, 93(11) art. No. 2200400
[25]
J.Y. Zhang, Y.B. Xu, D.T. Han, and Z.L. Tong, Improving yield strength and elongation combination by tailoring austenite characteristics and deformation mechanism in medium Mn steel, Scripta Mater., 218(2022), art. No. 114790.
[26]
Gibbs PJ, De Moor E, Merwin MJ, Clausen B, Speer JG, Matlock DK. Austenite stability effects on tensile behavior of manganese-enriched-austenite transformation-induced plasticity steel. Metall. Mater. Trans. A, 2011, 42(12): 3691,
CrossRef Google scholar
[27]
Miyazaki I, Furuta T, Oh-ishi K, et al.. Overcoming the strength-ductility trade-off via the formation of a thermally stable and plastically unstable austenitic phase in cold-worked steel. Mater. Sci. Eng. A, 2018, 721: 74,
CrossRef Google scholar
[28]
Han J, Lee SJ, Jung JG, Lee YK. The effects of the initial martensite microstructure on the microstructure and tensile properties of intercritically annealed Fe-9Mn-0.05C steel. Acta Mater., 2014, 78: 369,
CrossRef Google scholar
[29]
A. Dutta, D. Ponge, S. Sandlöbes, and D. Raabe, Strain partitioning and strain localization in medium manganese steels measured by in situ microscopic digital image correlation, Materialia, 5(2019), art. No. 100252.
[30]
Steineder K, Krizan D, Schneider R, Béal C, Sommitsch C. On the microstructural characteristics influencing the yielding behavior of ultra-fine grained medium-Mn steels. Acta Mater., 2017, 139: 39,
CrossRef Google scholar
[31]
Sun BH, Ma Y, Vanderesse N, et al.. Macroscopic to nano-scopic in situ investigation on yielding mechanisms in ultrafine grained medium Mn steels: Role of the austenite-ferrite interface. Acta Mater., 2019, 178: 10,
CrossRef Google scholar
[32]
Jeong MS, Park TM, Choi S, Lee SJ, Han J. Recovering the ductility of medium-Mn steel by restoring the original microstructure. Scripta Mater., 2021, 190: 16,
CrossRef Google scholar
[33]
Kwok TWJ, Dye D. A review of the processing, microstructure and property relationships in medium Mn steels. Mater. Rev., 2023, 68(8): 1058,
CrossRef Google scholar
[34]
B. Hu, F.L. Ding, X. Tu, et al., Influence of lamellar and equiaxed microstructural morphologies on yielding behaviour of a medium Mn steel, Materialia, 20(2021), art. No. 101252.
[35]
Ma Y, Sun BH, Schökel A, et al.. Phase boundary segregation-induced strengthening and discontinuous yielding in ultrafine-grained duplex medium-Mn steels. Acta Mater., 2020, 200: 389,
CrossRef Google scholar
[36]
Hu B, Shen X, Guo QY, et al.. Yielding behavior of triplex medium Mn steel alternated with cooling strategies altering martensite/ferrite interfacial feature. J. Mater. Sci. Technol., 2022, 126: 60,
CrossRef Google scholar
[37]
Y. Wang, M. Zhang, Q.Y. Cen, W.J. Wang, and X.Y. Sun, A novel process combining thermal deformation and intercritical annealing to enhance mechanical properties and avoid Lüders strain of Fe–0.2C–7Mn TRIP steel, Mater. Sci. Eng. A, 839(2022), art. No. 142849.
[38]
Zhang MH, Li LF, Ding J, et al.. Temperature-dependent micromechanical behavior of medium-Mn transformation-induced-plasticity steel studied by in situ synchrotron X-ray diffraction. Acta Mater., 2017, 141: 294,
CrossRef Google scholar
[39]
Wang XG, Huang MX. Temperature dependence of Lüders strain and its correlation with martensitic transformation in a medium Mn transformation-induced plasticity steel. J. Iron Steel Res. Int., 2017, 24(11): 1073,
CrossRef Google scholar
[40]
C.P. Tong, Q. Rong, V.A. Yardley, et al., Investigation of deformation behaviour with yield point phenomenon in cold-rolled medium-Mn steel under hot stamping conditions, J. Mater. Process. Technol., 306(2022), art. No. 117623.
[41]
Hull D, Bacon DJ. . Introduction to Dislocations, 2001 4th ed. Oxford Butterworth-Heinemann 214
[42]
Gao S, Bai Y, Zheng RX, et al.. Mechanism of huge Lüders-type deformation in ultrafine grained austenitic stainless steel. Scripta Mater., 2019, 159: 28,
CrossRef Google scholar
[43]
Ma JW, Liu HT, Lu Q, Zhong Y, Wang L, Shen Y. Transformation kinetics of retained austenite in the tensile Lüders strain range in medium Mn steel. Scripta Mater, 2019, 169: 1,
CrossRef Google scholar
[44]
W.Q. Mao, S. Gao, W. Gong, S. Harjo, T. Kawasaki, and N. Tsuji, Quantitatively evaluating the huge Lüders band deformation in an ultrafine grain stainless steel by combining in situ neutron diffraction and digital image correlation analysis, Scripta Mater., 235(2023), art. No. 115642.
[45]
W.J. Yin, F. Briffod, H.Y. Hu, K. Yamazaki, T. Shiraiwa, and M. Enoki, Quantitative investigation of strain partitioning and failure mechanism in ultrafine grained medium Mn steel through high resolution digital image correlation, Scripta Mater., 229(2023), art. No. 115386.
[46]
Çobanoğlu M, Ertan RK, Şimşir C, Efe M. Excessive damage increase in dual phase steels under high strain rates and temperatures. Int. J. Damage Mech., 2021, 30(2): 283,
CrossRef Google scholar
[47]
Calcagnotto M, Ponge D, Demir E, Raabe D. Orientation gradients and geometrically necessary dislocations in ultrafine grained dual-phase steels studied by 2D and 3D EBSD. Mater. Sci. Eng. A, 2010, 527(10–11): 2738,
CrossRef Google scholar
[48]
Korzekwa DA, Matlock DK, Krauss G. Dislocation substructure as a function of strain in a dual-phase steel. Metall. Trans. A, 1984, 15(6): 1221,
CrossRef Google scholar
[49]
Kadkhodapour J, Schmauder S, Raabe D, Ziaei-Rad S, Weber U, Calcagnotto M. Experimental and numerical study on geometrically necessary dislocations and non-homogeneous mechanical properties of the ferrite phase in dual phase steels. Acta Mater., 2011, 59(11): 4387,
CrossRef Google scholar
[50]
Pan HJ, Li XY, Qiao B, et al.. A medium-Mn steel stamped parts overcoming lüders deformation by increasing dislocation density. J. Mater. Eng. Perform., 2022, 31(2): 1,
CrossRef Google scholar
[51]
. Steel Res. Int., 2022, 93(5) art. No. 2100524
[52]
Cai ZH, Ding H, Misra RDK, Ying ZY. Austenite stability and deformation behavior in a cold-rolled transformation-induced plasticity steel with medium manganese content. Acta Mater., 2015, 84: 229,
CrossRef Google scholar
[53]
M.H. Barati Rizi, M. Ghiasabadi Farahani, M. Aghaahmadi, J.H. Kim, L.P. Karjalainen, and P. Sahu, Analysis of strain hardening behavior of a high-Mn TWIP steel using electron microscopy and cyclic stress relaxation, Acta Mater., 240(2022), art. No. 118309.
[54]
Sun BH, Vanderesse N, Fazeli F, et al.. Discontinuous strain-induced martensite transformation related to the Portevin–Le Chatelier effect in a medium manganese steel. Scripta Mater., 2017, 133: 9,
CrossRef Google scholar
[55]
Müller A, Segel C, Linderov M, Vinogradov A, Weidner A, Biermann H. The Portevin–Le Châtelier effect in a meta-stable austenitic stainless steel. Metall. Mater. Trans. A, 2016, 47(1): 59,
CrossRef Google scholar
[56]
Wang XG, Wang L, Huang MX. Kinematic and thermal characteristics of Lüders and Portevin–Le Châtelier bands in a medium Mn transformation-induced plasticity steel. Acta Mater., 2017, 124: 17,
CrossRef Google scholar
[57]
Yang F, Luo HW, Pu EX, Zhang SL, Dong H. On the characteristics of Portevin–Le Chatelier bands in cold-rolled 7Mn steel showing transformation-induced plasticity. Int. J. Plast., 2018, 103: 188,
CrossRef Google scholar
[58]
Min JY, Hector LG Jr, Zhang L, Sun L, Carsley JE, Lin JP. Plastic instability at elevated temperatures in a TRIP-assisted steel. Mater. Des., 2016, 95: 370,
CrossRef Google scholar
[59]
. Metals, 2018, 9(1) art. No. 2
[60]
Lan P, Zhang JQ. Serrated flow and dynamic strain aging in Fe–Mn–C TWIP steel. Metall. Mater. Trans. A, 2018, 49(1): 147,
CrossRef Google scholar
[61]
A. Kipelova, R. Kaibyshev, V. Skorobogatykh, and I. Schenkova, Portevin–Le Chatelier effect in an E911 creep resistant steel with 3%Co additives, J. Phys. Conf. Ser., 240(2010), art. No. 012100.
[62]
Rusinek A, Klepaczko JR. Experiments on heat generated during plastic deformation and stored energy for TRIP steels. Mater. Des., 2009, 30(1): 35,
CrossRef Google scholar
[63]
. Metals, 2019, 9(3) art. No. 344
[64]
Rodriguez P. Serrated plastic flow. Bull. Mater. Sci, 1984, 6(4): 653,
CrossRef Google scholar
[65]
Gonzalez B M, Marchi L, Fonseca E J, Modenesi P J, Buono V. Measurement of dynamic strain aging in pearlitic steels by tensile test. ISIJ Int., 2003, 43: 428,
CrossRef Google scholar
[66]
Bayramin B, Şimşir C, Efe M. Dynamic strain aging in DP steels at forming relevant strain rates and temperatures. Mater. Sci. Eng. A, 2017, 704: 164,
CrossRef Google scholar
[67]
Molaei MJ, Ekrami A. The effect of dynamic strain aging on subsequent mechanical properties of dual-phase steels. J. Mater. Eng. Perform., 2010, 19(4): 607,
CrossRef Google scholar
[68]
Cottrell AH, Bilby BA. Dislocation theory of yielding and strain ageing of iron. Proc. Phys. Soc. A, 1949, 62(1): 49,
CrossRef Google scholar
[69]
Zhou HW, Fang JF, Chen Y, et al.. Internal friction studies on dynamic strain aging in P91 ferritic steel. Mater. Sci. Eng. A, 2016, 676: 361,
CrossRef Google scholar
[70]
Choudhary BK, Bhanu Sankara Rao K, Mannan SL, Kashyap BP. Serrated yielding in 9Cr–1Mo ferritic steel. Mater. Sci. Technol., 1999, 15(7): 791,
CrossRef Google scholar
[71]
S. Chandran, W.Q. Liu, J.H. Lian, S. Münstermann, and P. Verleysen, Dynamic strain aging in DP1000: Effect of temperature and strain rate, Mater. Sci. Eng. A, 832(2022), art. No. 142509.
[72]
Queiroz RRU, Cunha FGG, Gonzalez BM. Study of dynamic strain aging in dual phase steel. Mater. Sci. Eng. A, 2012, 543: 84,
CrossRef Google scholar
[73]
D.D. Li, L.H. Qian, C.Z. Wei, S. Liu, F.C. Zhang, and J.Y. Meng, The tensile properties and microstructure evolution of cold-rolled Fe–Mn–C TWIP steels with different carbon contents, Mater. Sci. Eng. A, 839(2022), art. No. 142862.
[74]
Bleck W. New insights into the properties of high-manganese steel. Int. J. Miner. Metall. Mater., 2021, 28(5): 782,
CrossRef Google scholar
[75]
Hu B, Luo HW. A novel two-step intercritical annealing process to improve mechanical properties of medium Mn steel. Acta Mater., 2019, 176: 250,
CrossRef Google scholar
[76]
Lee SJ, Kim J, Kane SN, De Cooman BC. On the origin of dynamic strain aging in twinning-induced plasticity steels. Acta Mater., 2011, 59(17): 6809,
CrossRef Google scholar
[77]
Lee S, Kim J, Lee SJ, De Cooman BC. Effect of nitrogen on the critical strain for dynamic strain aging in high-manganese twinning-induced plasticity steel. Scripta Mater., 2011, 65(6): 528,
CrossRef Google scholar
[78]
Kang JH, Ingendahl T, von Appen J, Dronskowski R, Bleck W. Impact of short-range ordering on yield strength of high manganese austenitic steels. Mater. Sci. Eng. A, 2014, 614: 122,
CrossRef Google scholar
[79]
Bracke L, Penning J, Akdut N. The influence of Cr and N additions on the mechanical properties of FeMnC steels. Metall. Mater. Trans. A, 2007, 38(3): 520,
CrossRef Google scholar
[80]
Grajcar A, Skrzypczyk P, Wozniak D. Thermomechanically rolled medium-Mn steels containing retained austenite/walcowane termomechanicznie stale średniomanganowe zawierające austenit szczątkowy. Arch. Metall. Mater., 2014, 59(4): 1691,
CrossRef Google scholar
[81]
Field DM, Van Aken DC. Dynamic strain aging phenomena and tensile response of medium-Mn TRIP steel. Metall. Mater. Trans. A, 2018, 49(4): 1152,
CrossRef Google scholar
[82]
Liu HY, Liu S, Wei CZ, Qian LH, Feng YL, Zhang FC. Effect of grain size on dynamic strain aging behavior of C-bearing high Mn twinning-induced plasticity steel. J. Mater. Res. Technol., 2021, 15: 6387,
CrossRef Google scholar
[83]
Sun BH, Kwiatkowski da Silva A, Wu YX, et al.. Physical metallurgy of medium-Mn advanced high-strength steels. Int. Mater. Rev., 2023, 68(7): 786,
CrossRef Google scholar
[84]
J.H. Nam, S.K. Oh, M.H. Park, and Y.K. Lee, The mechanism of dynamic strain aging for type A serrations in tensile curves of a medium-Mn steel, Acta Mater., 206(2021), art. No. 116613.
[85]
Li SS, Luo HW. Medium-Mn steels for hot forming application in the automotive industry. Int. J. Miner. Metall. Mater., 2021, 28(5): 741,
CrossRef Google scholar
[86]
Wen PY, Han JS, Luo HW, Mao XP. Effect of flash processing on recrystallization behavior and mechanical performance of cold-rolled IF steel. Int. J. Miner. Metall. Mater., 2020, 27(9): 1234,
CrossRef Google scholar
[87]
Wang YJ, Zhao S, Song RB, Hu B. Hot ductility behavior of a Fe–0.3C–9Mn–2Al medium Mn steel. Int. J. Miner. Metall. Mater., 2021, 28(3): 422,
CrossRef Google scholar
[88]
Xu H, Liu XB, Zhang D, Zhang XF. Minimizing serrated flow in Al–Mg alloys by electroplasticity. J. Mater. Sci. Technol., 2019, 35(6): 1108,
CrossRef Google scholar
[89]
K. Yi, S. Zhou, and X.F. Zhang, Suppression of serrated flow in medium Mn steel under pulsed electric current, Mater. Sci. Eng. A, 846(2022), art. No. 143271.
[90]
B. Hu, Q.H. Wen, Q.Y. Guo, Y.J. Wang, H. Sui, and H.W. Luo, A novel electric pulse pathway to suppress plastic localization and enhance strain hardening of medium Mn steel, Scripta Mater., 221(2022), art. No. 114991.
[91]
B. Hu and H.W. Luo, A Method and Process of Inhibiting the Local Plastic Instability of High/Medium Mn Steel, Chinese Patent, Appl. 202011497048.X, 2022.
[92]
A. Gramlich, T. Schmiedl, S. Schönborn, T. Melz, and W. Bleck, Development of air-hardening martensitic forging steels, Mater. Sci. Eng. A, 784(2020), art. No. 139321.
[93]
. Adv. Eng. Mater., 2023, 25(15) art. No. 2201931
[94]
Xie ZJ, Shang CJ, Wang XL, Wang XM, Han G, Misra RDK. Recent progress in third-generation low alloy steels developed under M3 microstructure control. Int. J. Miner. Metall. Mater., 2020, 27(1): 1,
CrossRef Google scholar
[95]
Sun BH, Krieger W, Rohwerder M, Ponge D, Raabe D. Dependence of hydrogen embrittlement mechanisms on microstructure-driven hydrogen distribution in medium Mn steels. Acta Mater., 2020, 183: 313,
CrossRef Google scholar
[96]
Han J, Nam JH, Lee YK. The mechanism of hydrogen embrittlement in intercritically annealed medium Mn TRIP steel. Acta Mater., 2016, 113: 1,
CrossRef Google scholar
[97]
. Metals, 2021, 11(2) art. No. 358

Accesses

Citations

Detail

Sections
Recommended

/