Fracture toughness of High-Manganese steels with TWIP/ TRIP effects

被引:21
作者
Bordone, M. [1 ]
Monsalve, A. [1 ]
Perez Ipina, J. [2 ,3 ,4 ]
机构
[1] Univ Santiago Chile, Fac Ingn, Dept Ingn Met, Santiago 9160000, Chile
[2] GMF CONICET, RA-8324 Cipolletti, Argentina
[3] LMF METALMAT UFRJ, BR-21941598 Rio De Janeiro, Brazil
[4] Consejo Nacl Invest Cient & Tecn, Buenos Aires, DF, Argentina
关键词
High-manganese steels; TWIP; HMn-TRIP; J-Integral; R curves; Unloading compliance; MICROSTRUCTURAL EVOLUTION; TEMPERATURE; PLASTICITY; BEHAVIOR; ENERGY;
D O I
10.1016/j.engfracmech.2022.108837
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Three high-manganese steels with different carbon contents were investigated in this work, aiming to explore their elastoplastic fracture toughness, fracture micro-mechanisms and micro -structural features. J-R curves were obtained according to ASTM E1820-20 by testing C(T) specimens, applying the unloading compliance method to measure crack extension. The TWIP effect (mechanical twinning + dislocation gliding) developed in Steel A and Steel B with carbon contents of 0.84 wt% and 0.54 wt% respectively. On the other hand, Steel C (carbon content of 0.28 wt%), showed strain-induced gamma FCC -> epsilon HCP transformation associated with the TRIP effect. The three steels presented smooth load (P) vs load-line displacement (v) records; i.e., no insta-bility was observed, which allowed the characterization of fracture toughness by means of J-R curves. Fully dimpled fracture surfaces were observed in Steel A and Steel B, whilst Steel C showed small cleavage facets in some sectors that had not indication in the P vs v records. Best performance in terms of fracture behavior was obtained in Steel B and the poorest in Steel C. In addition to the above, the microstructural analysis of the stable crack growth zones in the frac-tured specimens allowed the identification of several characteristics.
引用
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页数:15
相关论文
共 39 条
[1]  
a Dobrzanski L., 2012, J. Achiev. Mater. Manuf. Eng, V55, P230
[2]   The influence of the heat treatment on mechanical and microstructure properties of Fe-Mn-C high-manganese steel [J].
Akinay, Y. ;
Hayat, F. .
KOVOVE MATERIALY-METALLIC MATERIALS, 2016, 54 (02) :91-96
[3]  
[Anonymous], 2018, E182018A ASTM
[4]  
ASTM International, 2013, E11213 ASTM INT
[5]   Physical Metallurgy of High Manganese Steels [J].
Bleck, Wolfgang ;
Haase, Christian .
METALS, 2019, 9 (10)
[6]  
Bordone M, 2021, REMETALLICA, V35, P25, DOI [10.35588/remetallica.v35i23.4804, DOI 10.35588/REMETALLICA.V35I23.4804]
[7]  
Bordone M., THESIS U SANTIAGO CH
[8]   Mechanical Properties and Microstructural Aspects of Two High-Manganese Steels with TWIP/TRIP Effects: A Comparative Study [J].
Bordone, Matias ;
Perez-Ipina, Juan ;
Bolmaro, Raul ;
Artigas, Alfredo ;
Monsalve, Alberto .
METALS, 2021, 11 (01) :1-16
[9]   Microstructure and texture evolution during cold rolling and annealing of a high Mn TWIP steel [J].
Bracke, L. ;
Verbeken, K. ;
Kestens, L. ;
Penning, J. .
ACTA MATERIALIA, 2009, 57 (05) :1512-1524
[10]  
Campbell J, 2015, COMPLETE CASTING HANDBOOK: METAL CASTING PROCESSES, METALLURGY, TECHNIQUES AND DESIGN, 2ND EDITION, pCP3