Grain boundary sliding during ambient-temperature creep in hexagonal close-packed metals

被引:33
作者
Matsunaga, Tetsuya [1 ]
Kameyama, Tatsuya [1 ]
Ueda, Shouji [1 ]
Sato, Eiichi [1 ]
机构
[1] Japan Aerosp Explorat Agcy, Inst Space & Astronaut Sci, Kanagawa, Japan
关键词
grain boundary sliding; ambient temperature creep; hexagonal close-packed structure; ROOM-TEMPERATURE; ZINC BICRYSTALS; TITANIUM-ALLOYS; DEFORMATION; TI; MECHANISM; STRESSES; FLOW;
D O I
10.1080/14786435.2010.502883
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Even at ambient temperature or less, below their 0.2% proof stresses all hexagonal close-packed metals and alloys show creep behaviour because they have dislocation arrays lying on a single slip system with no tangled dislocation inside each grain. In this case, lattice dislocations move without obstacles and pile-up in front of a grain boundary. Then these dislocations must be accommodated at the grain boundary to continue creep deformation. Atomic force microscopy revealed the occurrence of grain boundary sliding (GBS) in the ambient-temperature creep region. Lattice rotation of 5 degrees was observed near grain boundaries by electron backscatter diffraction pattern analyses. Because of an extra low apparent activation energy of 20 kJ/mol, conventional diffusion processes are not activated. To accommodate these piled-up dislocations without diffusion processes, lattice dislocations must be absorbed by grain boundaries through a slip-induced GBS mechanism.
引用
收藏
页码:4041 / 4054
页数:14
相关论文
共 50 条
[31]   Anisotropic rheology during grain boundary diffusion creep and its relation to grain rotation, grain boundary sliding and superplasticity [J].
Wheeler, J. .
PHILOSOPHICAL MAGAZINE, 2010, 90 (21) :2841-2864
[32]   STRUCTURAL ORIGIN OF REVERSIBLE TWINNING, NON-SCHMID EFFECT, INCOHERENT TWIN BOUNDARIES AND TEXTURE IN HEXAGONAL CLOSE-PACKED METALS [J].
Li, B. ;
El Kadiri, H. ;
Zhang, X. Y. ;
Mathaudhu, S. N. ;
Ma, Q. .
MAGNESIUM TECHNOLOGY 2012, 2012, :105-110
[33]   A new mechanism for nucleation of {1122}(1123) twinning via interaction of {1121}(1126) twin variants in hexagonal close-packed metals [J].
Wang, Yuyang ;
Li, Bin ;
Liao, Yiliang .
ACTA MATERIALIA, 2025, 282
[34]   A strain rate and temperature-dependent crystal plasticity model for hexagonal close-packed (HCP) materials: Application α-titanium [J].
Dai, Liansong ;
Song, Weidong .
INTERNATIONAL JOURNAL OF PLASTICITY, 2022, 154
[35]   Grain boundary sliding in copper and its relation to cavity formation during creep [J].
Sandstrom, Rolf ;
Wu, Rui ;
Hagstrom, Joacim .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2016, 651 :259-268
[36]   Hard-sphere displacive model of deformation twinning in hexagonal close-packed metals. Revisiting the case of the (56°, a) contraction twins in magnesium [J].
Cayron, Cyril .
ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2017, 73 :346-356
[37]   GRAIN-BOUNDARY SLIDING AND SURFACE CRACKING DURING CREEP OF 321 STAINLESS-STEEL [J].
KISHIMOTO, S ;
SHINYA, N ;
TANAKA, H .
TRANSACTIONS OF NATIONAL RESEARCH INSTITUTE FOR METALS, 1990, 32 (04) :15-19
[38]   Atomistic Simulation of Grain Boundary Sliding in Mg during High Temperature Deformation [J].
Zhang, Hao .
MAGNESIUM TECHNOLOGY 2010, 2010, :207-207
[39]   Cavitation and grain boundary sliding during creep of Mg-Y-Nd-Zn-Mn alloy [J].
Janik, V. ;
Hnilica, F. ;
Zuna, P. ;
Ocenasek, V. ;
Stulikova, I. .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2008, 18 :S64-S68
[40]   Cavitation and grain boundary sliding during creep of Mg-Y-Nd-Zn-Mn alloy [J].
VJANK ;
FHNILICA ;
PZUNA ;
VOENEK ;
ISTULKOV .
TransactionsofNonferrousMetalsSocietyofChina, 2008, 18(S1) (S1) :64-68