Effect of retained austenite on the fatigue performance of novel high carbon quenching-partitioning-tempering steel

Sheng-wei Qin , Zhi-min Zhu , Hai-yang Ma , Guang-rui Wang , Yang Zhou

Journal of Central South University ›› 2023, Vol. 30 ›› Issue (7) : 2107 -2119.

PDF
Journal of Central South University ›› 2023, Vol. 30 ›› Issue (7) : 2107 -2119. DOI: 10.1007/s11771-023-5375-8
Article

Effect of retained austenite on the fatigue performance of novel high carbon quenching-partitioning-tempering steel

Author information +
History +
PDF

Abstract

The effect of retained austenite on the fatigue property of a novel Fe-0.65C-1.5Mn-1.5Si-0.6Cr-0.05Nb (wt.%) quenching-partitioning-tempering (Q-P-T) steel was investigated. X-ray diffraction, scanning electron microscopy, and transmission electron microscopy were performed to characterize the evolution of microstructure including retained austenite fraction and average dislocation densities in both martensite and retained austenite. Compared with traditional quenching and tempering (Q&T) steel, Q-P-T steel contains much more retained austenite by partitioning of carbon from supersaturated martensite to retained austenite. After Q-P-T, the tensile strength decreases slightly, while the elongation and the product of strength and elongation (PSE) improved 287% and 234%, respectively. The fatigue limit of Q-P-T steel (650 MPa) is increased by 100 MPa (18.2%) compared with Q&T steel (550 MPa). The mechanism of high fatigue performance for high-carbon Q-P-T steel is mainly stemmed from two aspects: one is the dislocation absorption of the retained austenite (DARA) effect existing in the fatigue test, which significantly enhances the deformation ability of martensite matrix; the other is the deformation-induced martensitic transformation effect which can effectively arrest crack to against fatigue. This work verifies the existence of DARA effect in high carbon Q-P-T steel under cyclic tension and compression loading and makes the third-generation advanced high-strength steels extend to the field of cyclic variable loads from static loads.

Keywords

Q-P-T process / DARA effect / retained austenite / fatigue behavior

Cite this article

Download citation ▾
Sheng-wei Qin, Zhi-min Zhu, Hai-yang Ma, Guang-rui Wang, Yang Zhou. Effect of retained austenite on the fatigue performance of novel high carbon quenching-partitioning-tempering steel. Journal of Central South University, 2023, 30(7): 2107-2119 DOI:10.1007/s11771-023-5375-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

TangAoStudy on mesoscopic characteristic of deformation and its connection with damage nucleation in advanced high strength steels [D], 2020, Shanghai, Shanghai Jiao Tong University(in Chinese)

[2]

FengY, WanX M, ZhouJ, et al. . Research progress on fracture properties of advanced high-strength steel sheet for automobiles [J]. Chinese Journal of Automotive Engineering, 2023, 3(5): 273-297(in Chinese)

[3]

CaoJ-g, RuanK, WangX-s, et al. . Numerical simulation of special-shaped tube roll forming process based on precise control of adjacent angles [J]. Journal of Harbin Institute of Technology, 2023, 55(1): 98-105

[4]

XuZ-kuanHigh-cycle fatigue behaviors of martensitic ultra-high strength steel [D], 2022, Hefei, University of Science and Technology of China(in Chinese)

[5]

TóthL, YaremaS Y. Formation of the science of fatigue of metals. Part 1.1 825–1870 [J]. Materials Science, 2006, 42(5): 673-680

[6]

TóthL, YaremaS Y. Formation of the science of fatigue of metals. Part 2. 1870–1940 [J]. Materials Science, 2007, 43(11): 869-885

[7]

BASQUIN O. The exponential law of endurance tests [C]//Proc Am Soc Test Mater. 1910: 625–630.

[8]

CoffinL FJr. A study of the effects of cyclic thermal stresses on a ductile metal [J]. Transactions of the American Society of Mechanical Engineers, 1954, 76: 931-950

[9]

MansonB S SBehavior of materials under conditions of thermal stress [M], 1953, Washington, D. C., National Advisory Committee for Aeronautics

[10]

SpeerJ, MatlockD K, De CoomanB C, et al. . Carbon partitioning into austenite after martensite transformation [J]. Acta Materialia, 2003, 51(9): 2611-2622

[11]

HsuT Y, XuZ-yao. Design of structure, composition and heat treatment process for high strength steel [C]. Materials Science Forum, 2007, Stafa, Trans Tech Publications Ltd.: 22832286

[12]

HaoQ-g, QinS-w, LiuY, et al. . Effect of retained austenite on the dynamic tensile behavior of a novel quenching-partitioning-tempering martensitic steel [J]. Materials Science and Engineering A, 2016, 662: 16-25

[13]

HaoQ-g, QinS-w, LiuY, et al. . Relation between microstructure and formability of quenching-partitioning-tempering martensitic steel [J]. Materials Science and Engineering A, 2016, 671: 135-146

[14]

HuangF, YangJ-l, GuoZ-h, et al. . Dynamic compression property of a low-carbon quenching and partitioning steel [J]. Materials Science and Engineering A, 2016, 651: 224-232

[15]

QinS-w, LiuY, HaoQ-g, et al. . Ultrahigh ductility, high-carbon martensitic steel [J]. Metallurgical and Materials Transactions A, 2016, 47(10): 4853-4861

[16]

ZhangK, ZhangM-h, GuoZ-h, et al. . A new effect of retained austenite on ductility enhancement in high-strength quenching-partitioning-tempering martensitic steel [J]. Materials Science and Engineering A, 2011, 528(29–30): 8486-8491

[17]

BaudryG, PineauA. Influence of strain-induced martensitic transformation on the low-cycle fatigue behavior of a stainless steel [J]. Materials Science and Engineering, 1977, 28(2): 229-242

[18]

ChengX, PetrovR, ZhaoL, et al. . Fatigue crack growth in TRIP steel under positive R-ratios [J]. Engineering Fracture Mechanics, 2008, 75(3–4): 739-749

[19]

PineauA G, PellouxR M. Influence of strain-induced martensitic transformations on fatigue crack growth rates in stainless steels [J]. Metallurgical Transactions, 1974, 5(5): 1103-1112

[20]

AbareshiM, EmadoddinE. Effect of retained austenite characteristics on fatigue behavior and tensile properties of transformation induced plasticity steel [J]. Materials & Design, 2011, 32(10): 5099-5105

[21]

ELBER W. The significance of fatigue crack closure [M]. ASTM International, 1971.

[22]

HornbogenE. Martensitic transformation at a propagating crack [J]. Acta Metallurgica, 1978, 26(1): 147-152

[23]

WebsterD. Increasing the toughness of the martensitic stainless steel AFC 77 by control of retained austenite content, ausforming and strain aging (Retained austenite content control, strain aging and ausforming to improve toughness of high strength martensitic stainless steel without strength loss) [J]. ASM Transactions Quarterly, 1968, 61: 816-828

[24]

MeiZ, MorrisJ W. Influence of deformation-induced martensite on fatigue crack propagation in 304-type steels [J]. Metallurgical Transactions A, 1990, 21(12): 3137-3152

[25]

SongM, HeS Y, DuK, et al. . Transformation induced crack deflection in a metastable titanium alloy and implications on transformation toughening [J]. Acta Materialia, 2016, 118: 120-128

[26]

SureshS. Crack deflection: Implications for the growth of long and short fatigue cracks [J]. Metallurgical Transactions A, 1983, 14(11): 2375-2385

[27]

AntolovichS D, SinghB. On the toughness increment associated with the austenite to martensite phase transformation in TRIP steels [J]. Metallurgical Transactions, 1971, 2(8): 2135-2141

[28]

WangX-g, LiuC-h, SunB-h, et al. . The dual role of martensitic transformation in fatigue crack growth [J]. Proceedings of the National Academy of Sciences of the United States of America, 2022, 119(9): e2110139119

[29]

HilditchT, BeladiH, HodgsonP, et al. . Role of microstructure in the low cycle fatigue of multi-phase steels [J]. Materials Science and Engineering A, 2012, 534: 288-296

[30]

WangY, ZhangK, GuoZ-h, et al. . A new effect of retained austenite on ductility enhancement of low carbon Q-P-T steel [J]. Acta Metallurgica Sinica, 2012, 48(6): 641

[31]

WangY, ZhangK, GuoZ-h, et al. . A new effect of retained austenite on ductility enhancement in high strength bainitic steel [J]. Materials Science and Engineering A, 2012, 552288-294

[32]

ZhangJ-z, CuiY-g, ZuoX-w, et al. . Dislocations across interphase enable plain steel with high strength-ductility [J]. Science Bulletin, 2021, 66(11): 1058-1062

[33]

GB/T 3075—2008. Metallic materials Fatigue test axial force control method [S]. (in Chinese)

[34]

GB/T 228.1—2010. Metallic materials tensile tests. Part 1: Test method at room temperature [S]. (in Chinese)

[35]

BS EN 15305. Non-destructive testing-test method for residual stress analysis by X-ray diffraction: [S]. BSI, 2008.

[36]

QinS-w, LiuY, HaoQ-g, et al. . High carbon microalloyed martensitic steel with ultrahigh strength-ductility [J]. Materials Science and Engineering A, 2016, 663151-156

[37]

QinS-w, LiuY, HaoQ-g, et al. . The mechanism of high ductility for novel high-carbon quenching-partitioning-tempering martensitic steel [J]. Metallurgical and Materials Transactions A, 2015, 46(9): 4047-4055

[38]

KuziakR, KawallaR, WaenglerS. Advanced high strength steels for automotive industry [J]. Archives of Civil and Mechanical Engineering, 2008, 8(2): 103-117

[39]

SerbinoE M, TschiptschinA P. Fatigue behavior of bainitic and martensitic super clean Cr-Si high strength steels [J]. International Journal of Fatigue, 2014, 61: 87-92

[40]

GaoG-h, ZhangB-x, ChengC, et al. . Very high cycle fatigue behaviors of bainite/martensite multiphase steel treated by quenching-partitioning-tempering process [J]. International Journal of Fatigue, 2016, 92: 203-210

[41]

VinogradovA, HashimotoS. Multiscale phenomena in fatigue of ultra-fine grain materials—An overview [J]. Materials Transactions, 2001, 42(1): 74-84

[42]

MatlockD K, AlogabK A, RichardsM D, et al. . Surface processing to improve the fatigue resistance of advanced bar steels for automotive applications [J]. Materials Research, 2005, 8(4): 453-459

[43]

YangJ, WangT, ZhangB, et al. . High-cycle bending alloy produced by surface mechanical attrition treatment [J]. Journal of Alloys and Compounds, 2009, 474(1–2): 546-550

[44]

GenelK, DemirkolM. Effect of case depth on fatigue performance of AISI 8620 carburized steel [J]. International Journal of Fatigue, 1999, 21(2): 207-212

[45]

HaidemenopoulosG N, KermanidisA T, MalliarosC, et al. . On the effect of austenite stability on high cycle fatigue of TRIP 700 steel [J]. Materials Science and Engineering A, 2013, 573: 7-11

[46]

JeddiD, LieuradeH P. Effect of retained austenite on high cycle fatigue behavior of carburized 14NiCr11 steel [J]. Procedia Engineering, 2010, 2(1): 1927-1936

[47]

SugimotoK I, IidaT, SakaguchiJ, et al. . Retained austenite characteristics and tensile properties in a TRIP type bainitic sheet steel [J]. ISIJ International, 2000, 40(9): 902-908

[48]

SugimotoK I, KobayashiM, NagasakaA, et al. . Warm stretch-formability of TRIP-aided dual-phase sheet steels [J]. ISIJ International, 1995, 35(11): 1407-1414

[49]

LiW, XuW-z, WangX-d, et al. . Measurement of microstructural parameters of nanocrystalline Fe-30 wt.% Ni alloy produced by surface mechanical attrition treatment [J]. Journal of Alloys and Compounds, 2009, 474(1–2): 546-550

[50]

WooW, BaloghL, UngárT, et al. . Grain structure and dislocation density measurements in a friction-stir welded aluminum alloy using X-ray peak profile analysis [J]. Materials Science and Engineering A, 2008, 498(1–2): 308-313

[51]

XuW, HuangM, WangJ, et al. . Relations between metastable austenite and fatigue behavior of steels [J]. Acta Metallurgica Sinica, 2020, 56(4): 459-475

[52]

BiermannH, GlageA, DrosteM. Influence of temperature on fatigue-induced martensitic phase transformation in a metastable CrMnNi-steel [J]. Metallurgical and Materials Transactions A, 2016, 47(1): 84-94

[53]

MeladoA C, NishikawaA S, GoldensteinH, et al. . Effect of microstructure on fatigue behaviour of advanced high strength ductile cast iron produced by quenching and partitioning process [J]. International Journal of Fatigue, 2017, 104: 397-407

AI Summary AI Mindmap
PDF

214

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/