THE ACTIVATION-ENERGY FOR DISLOCATION NUCLEATION AT A CRACK

被引:244
作者
RICE, JR
BELTZ, GE
机构
[1] HARVARD UNIV,DEPT EARTH & PLANETARY SCI,CAMBRIDGE,MA 02138
[2] UNIV CALIF SANTA BARBARA,DEPT MECH & ENVIRONM ENGN,SANTA BARBARA,CA 93106
关键词
D O I
10.1016/0022-5096(94)90013-2
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
THE ACTIVATION energy for dislocation nucleation from a stressed crack tip is calculated within the Peierls framework, in which a periodic shear stress vs displacement relation is assumed to hold on a slip plane emanating from the crack tip. Previous results have revealed that the critical G (energy release rate corresponding to the ''screened'' crack tip stress field) for dislocation nucleation scales with gamma(us) (the unstable slacking energy), in an analysis which neglects any coupling between tension and shear along the slip plane. That analysis represents instantaneous nucleation and takes thermal effects into account only via the weak temperature dependence of the elastic constants. In this work, the energy required to thermally activate a stable, incipient dislocation into its unstable ''saddle-point'' configuration is directly calculated for loads less than that critical value. We do so only with the simplest case, for which the slip plane is a prolongation of the crack plane. A first calculation reported is 2D in nature, and hence reveals an activation energy per unit length. A more realistic scheme for thermal activation involves the emission of a dislocation loop, an inherently 3D phenomenon. Asymptotic calculations of the activation energy for loads close to the critical load are performed in 2D and in 3D. It is found that the 3D activation energy generally corresponds to the 2D activation energy per unit length multiplied by about 5-10 Burgers vectors (but by as many as 17 very near to the critical loading). Implications for the emission of dislocations in copper, cc-iron, and silicon at elevated temperature are discussed. The effects of thermal activation are very significant in lowering the load for emission. Also, the appropriate activation energy to correspond to molecular dynamics simulations of crack tips is discussed. Such simulations, as typically carried out with only a few atomic planes in a periodic repeat direction parallel to the crack tip, are shown to greatly exaggerate the (already large) effects of temperature on dislocation nucleation.
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页码:333 / 360
页数:28
相关论文
共 40 条
[1]   DISLOCATION EMISSION FROM CRACKS IN CRYSTALS OR ALONG CRYSTAL INTERFACES [J].
ANDERSON, PM ;
RICE, JR .
SCRIPTA METALLURGICA, 1986, 20 (11) :1467-1472
[2]  
ANDERSON PM, 1986, THESIS HARV U CAMBRI
[3]   Brittle to ductile transition in cleavage fracture [J].
Argon, A. S. .
ACTA METALLURGICA, 1987, 35 (01) :185-196
[4]  
BELTZ GE, 1991, MODELING THE DEFORMATION OF CRYSTALLINE SOLIDS, P457
[5]   DISLOCATION NUCLEATION AT METAL CERAMIC INTERFACES [J].
BELTZ, GE ;
RICE, JR .
ACTA METALLURGICA ET MATERIALIA, 1992, 40 (SUPPL) :S321-S331
[6]  
BELTZ GE, 1994, ACTA METALL
[7]  
BELTZ GE, 1994, UNPUB ACTIVATION ENE
[8]  
BELTZ GE, 1992, THESIS HARVARD U CAM
[9]   THE BRITTLE-TO-DUCTILE TRANSITION IN DOPED SILICON AS A MODEL SUBSTANCE [J].
BREDE, M ;
HAASEN, P .
ACTA METALLURGICA, 1988, 36 (08) :2003-2018
[10]   DIRECT OBSERVATION OF DISLOCATION EMISSION FROM CRACK TIPS IN SILICON AT HIGH-TEMPERATURES [J].
CHIAO, YH ;
CLARKE, DR .
ACTA METALLURGICA, 1989, 37 (01) :203-219