Direct observation of dislocation plasticity in high-Mn lightweight steel by in-situ TEM

被引:67
|
作者
Kim, Sung-Dae [1 ]
Park, Jun Young [1 ]
Park, Seong-Jun [1 ]
Jang, Jae Hoon [1 ]
Moon, Joonoh [1 ]
Ha, Heon-Young [1 ]
Lee, Chang-Hoon [1 ]
Kang, Jun-Yun [1 ]
Shin, Jong-Ho [2 ]
Lee, Tae-Ho [1 ]
机构
[1] Korea Inst Mat Sci, Adv Met Div, 797 Changwondaero, Chang Won 51508, South Korea
[2] Doosan Heavy Ind & Construct Co LTD, Corp Res & Dev Inst, Mat & Mfg Technol Dev Ctr, 22 Doosanvolvo Ro, Chang Won 51711, Gyeongnam, South Korea
关键词
SPINODAL DECOMPOSITION; MECHANICAL-PROPERTIES; FRICTION STRESSES; KAPPA-CARBIDE; HIGH-STRENGTH; GAMMA-PHASE; DEFORMATION; SLIP; MICROSTRUCTURE; BEHAVIOR;
D O I
10.1038/s41598-019-51586-y
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
To gain the fundamental understanding of deformation mechanisms in an aluminum-containing austenitic high-Mn steel (Fe-32Mn-8.9Al-0.78 C (wt.%)), in-situ straining transmission electron microscopy (TEM) analysis is conducted. The in-situ observation during the deformation demonstrates that the plastic deformation is accommodated by the pronounced planar dislocation gliding followed by the formation of slip bands (SBs) and highly dense dislocation walls (HDDWs). Experimental evidences of the glide plane softening can be obtained from the interaction between the gliding perfect dislocations and the L'1(2) ordered precipitates in the austenite matrix. Furthermore, the observation of the localized cross-slip of dislocations at the slip band intersections enables to understand why slip bands are extensively developed without mutual obstructions between the slip bands. The enhanced strain hardening rate of the aluminum-containing austenitic high-Mn steels can be attributed to the pronounced planar dislocation glides followed by formation of extensive slip band which prevent premature failure by suppressing strain localization.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Dislocation driven nanosample plasticity: new insights from quantitative in-situ TEM tensile testing
    Samaee, Vahid
    Gatti, Riccardo
    Devincre, Benoit
    Pardoen, Thomas
    Schryvers, Dominique
    Idrissi, Hosni
    SCIENTIFIC REPORTS, 2018, 8
  • [33] Dynamic observations on TEM in-situ tensile deformation of Mn8 steel
    Zhu, RF
    Li, ST
    Wei, T
    Lu, YP
    Chen, CZ
    Wang, SQ
    CHINESE SCIENCE BULLETIN, 1996, 41 (23): : 2011 - 2015
  • [34] In-situ observation of dislocation motion in icosahedral Al-Pd-Mn quasicrystals
    Mompiou, F
    Caillard, D
    Feuerbacher, M
    PHILOSOPHICAL MAGAZINE, 2004, 84 (25-26) : 2777 - 2792
  • [35] Dislocation driven nanosample plasticity: new insights from quantitative in-situ TEM tensile testing
    Vahid Samaee
    Riccardo Gatti
    Benoit Devincre
    Thomas Pardoen
    Dominique Schryvers
    Hosni Idrissi
    Scientific Reports, 8
  • [36] Dynamic observations on TEM in-situ tensile deformationof Mn8 steel
    朱瑞富
    李士同
    魏涛
    吕宇鹏
    陈传忠
    王世清
    Chinese Science Bulletin, 1996, (23) : 2011 - 2015
  • [37] In-situ TEM observation of dynamic interaction between dislocation and cavity in BCC metals in tensile deformation
    Tougou, Kouichi
    Shikata, Akihito
    Kawase, Uchu
    Onitsuka, Takashi
    Fukumoto, Ken-ichi
    JOURNAL OF NUCLEAR MATERIALS, 2015, 465 : 843 - 848
  • [38] IN-SITU TEM OBSERVATION OF NANOSILICON FIBRE GROWTH
    F.C.Zhang 1)
    ActaMetallurgicaSinica(EnglishLetters), 1999, (05) : 1069 - 1072
  • [39] In-situ TEM Observation of Brittle Microcrack Nucleation
    张跃
    王燕斌
    褚武扬
    肖纪美
    Chinese Science Bulletin, 1994, (12) : 980 - 982
  • [40] IN-SITU TEM OBSERVATION OF BRITTLE MICROCRACK NUCLEATION
    ZHANG, Y
    WANG, YB
    CHU, WY
    XIAO, JM
    CHINESE SCIENCE BULLETIN, 1994, 39 (12): : 980 - 982