A Mechanism of Carbon-Cluster Strengthening through Atomic Simulations

被引:13
作者
Shimokawa, Tomotsugu [1 ]
Yasui, Kiichiro [2 ,4 ,5 ]
Niiyama, Tomoaki [1 ]
Kinoshita, Keisuke [3 ]
Sawada, Hideaki [3 ]
机构
[1] Kanazawa Univ, Fac Mech Engn, Inst Sci & Engn, Kanazawa, Ishikawa 9201192, Japan
[2] Kanazawa Univ, Grad Sch Nat Sci & Technol, Div Mech Sci & Engn, Kanazawa, Ishikawa 9201192, Japan
[3] Nippon Steel Corp Ltd, Adv Technol Res Lab, Amagasaki, Hyogo 6600891, Japan
[4] Kanazawa Univ, Kanazawa, Ishikawa, Japan
[5] Komatsu Ltd, Komatsu 9230392, Japan
关键词
carbon cluster; dislocation; mechanical property; molecular dynamics; precipitation hardening; solid-solution hardening; DISLOCATIONS; ALGORITHMS; IRON;
D O I
10.2320/matertrans.MT-M2020136
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
To investigate the reason why low-carbon steels with carbon-clusters shows the maximum strength during low-temperature aging, interactions between an edge dislocation and carbon clusters are performed through molecular dynamics (MD) simulations. Carbon clusters are modeled based on atom probe tomography (APT) observations. To express a transition process of carbon configurations from solid solution state to carbon cluster state to precipitation state during aging process, we reduce a carbon presence area with a fixed number of carbon atoms, i.e., the carbon concentration can be continuously increased. The MD simulations can represent the age hardening/softening tendency observed in the experiment and the carbon cluster state shows the maximum strength where the dislocation passes through the carbon cluster not by the Orowan but by the cutting mechanism. The MD analysis found that partial clusters in the carbon cluster act as the main resistance to dislocation passage; the biased distribution of carbon atoms is also confirmed in the actual observed carbon clusters by APT. A new interaction mechanism between dislocation and carbon clusters is developed based on the phenomena in the MD simulations and the availability is discussed.
引用
收藏
页码:2139 / 2148
页数:10
相关论文
共 32 条
[1]  
de Koning M, 2002, PHILOS MAG A, V82, P2511, DOI [10.1080/01418610210144421, 10.1080/01418610208240050]
[2]   Plastic anisotropy and dislocation trajectory in BCC metals [J].
Dezerald, Lucile ;
Rodney, David ;
Clouet, Emmanuel ;
Ventelon, Lisa ;
Willaime, Francois .
NATURE COMMUNICATIONS, 2016, 7
[3]   BOWING OF A DISLOCATION SEGMENT [J].
FOREMAN, AJE .
PHILOSOPHICAL MAGAZINE, 1967, 15 (137) :1011-&
[4]   Dynamics of a dislocation bypassing an impenetrable precipitate: The Hirsch mechanism revisited [J].
Hatano, Takahiro .
PHYSICAL REVIEW B, 2006, 74 (02)
[5]   Metallic-covalent interatomic potential for carbon in iron [J].
Hepburn, Derek J. ;
Ackland, Graeme J. .
PHYSICAL REVIEW B, 2008, 78 (16)
[6]  
Hull D., 2011, Introduction to dislocations, DOI DOI 10.1016/B978-075064681-9/50003-1
[7]   First-principles study on the mobility of screw dislocations in bcc iron [J].
Itakura, M. ;
Kaburaki, H. ;
Yamaguchi, M. .
ACTA MATERIALIA, 2012, 60 (09) :3698-3710
[8]   The displacement, and strain-stress fields of a general circular Volterra dislocation loop [J].
Khraishi, TA ;
Hirth, JP ;
Zbib, HM ;
Khaleel, MA .
INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2000, 38 (03) :251-266
[9]   2 ALGORITHMS FOR CONSTRUCTING A DELAUNAY TRIANGULATION [J].
LEE, DT ;
SCHACHTER, BJ .
INTERNATIONAL JOURNAL OF COMPUTER & INFORMATION SCIENCES, 1980, 9 (03) :219-242
[10]   Atom probe tomography [J].
Miller, M. K. ;
Forbes, R. G. .
MATERIALS CHARACTERIZATION, 2009, 60 (06) :461-469