An intergranular creep crack growth model based on grain boundary sliding

被引:0
|
作者
S. Xu
X. -J. Wu
A. K. Koul
J. I. Dickson
机构
[1] Materials Technology Laboratory,the Structures, Materials and Propulsion Laboratory
[2] CANMET,the Department of Metallurgy and Materials Engineering
[3] Natural Resources Canada,undefined
[4] Institute for Aerospace Research,undefined
[5] National Research Council of Canada,undefined
[6] Ecole Polytechnique de Montreal,undefined
关键词
Material Transaction; Intergranular Fracture; Intergranular Crack; Grain Boundary Slide; Creep Crack Growth;
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中图分类号
学科分类号
摘要
An intergranular crack growth model is developed to describe the effect of microstructural features such as grain size, grain boundary precipitates, and serrated grain boundaries on creep crack growth under grain boundary sliding (GBS) conditions. The model considers quantitatively that several deformation mechanisms contribute to the stress redistribution ahead of the crack tip through a stress relaxation process. The crack tip region is divided into three zones: (a) the intragranular-deformation-controlled stress relaxation zone, (b) the GBS-controlled stress relaxation zone, and (c) the elastic region. Intergranular creep crack growth is considered to occur as a result of the GBS-controlled process in all cases. The derived creep crack growth model shows a complex dependence of the creep crack growth rate (CCGR) on fracture mechanics quantities, such as C(t) (the path-independent energy integral with its steady-state value as C*) and K (the stress intensity factor). For creep-brittle materials, the model predicts that the CCGR depends on K to the power of 2 and this is verified experimentally; however, when environmental effects contribute to the crack growth process, the power exponent will increase. A semiempirical factor is introduced to account for the effects of oxidation on CCGR.
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页码:1039 / 1045
页数:6
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