Guoquan Liu, Haibo Yu, Xiaoyan Song, Xangge Qin, and Chao Wang, Derivation of Hillert-type 3D grain growth rate model with topological considerations and discussion on its grain size parameter, J. Univ. Sci. Technol. Beijing, 11(2004), No. 3, pp. 212-215.
Cite this article as:
Guoquan Liu, Haibo Yu, Xiaoyan Song, Xangge Qin, and Chao Wang, Derivation of Hillert-type 3D grain growth rate model with topological considerations and discussion on its grain size parameter, J. Univ. Sci. Technol. Beijing, 11(2004), No. 3, pp. 212-215.
Guoquan Liu, Haibo Yu, Xiaoyan Song, Xangge Qin, and Chao Wang, Derivation of Hillert-type 3D grain growth rate model with topological considerations and discussion on its grain size parameter, J. Univ. Sci. Technol. Beijing, 11(2004), No. 3, pp. 212-215.
Citation:
Guoquan Liu, Haibo Yu, Xiaoyan Song, Xangge Qin, and Chao Wang, Derivation of Hillert-type 3D grain growth rate model with topological considerations and discussion on its grain size parameter, J. Univ. Sci. Technol. Beijing, 11(2004), No. 3, pp. 212-215.
A Hillert-type three-dimensional grain growth rate model was derived through the grain topology-size correlation model,combined with a topology-dependent grain growth rate equation in three dimensions. It shows clearly that the Hillert-type 3D grain growth rate model may also be described with topology considerations of microstructure. The size parameter bearing in the model is further discussed both according to the derived model and in another approach with the aid of quantitative relationship between the grain size and the integral mean curvature over grain surface. Both approaches successfully demonstrate that, if the concerned grains can be well approximated by a space-filling convex polyhedra in shape, the grain size parameter bearing in the Hillert-type 3D grain growth model should be a parameter proportional to the mean grain tangent radius.
A Hillert-type three-dimensional grain growth rate model was derived through the grain topology-size correlation model,combined with a topology-dependent grain growth rate equation in three dimensions. It shows clearly that the Hillert-type 3D grain growth rate model may also be described with topology considerations of microstructure. The size parameter bearing in the model is further discussed both according to the derived model and in another approach with the aid of quantitative relationship between the grain size and the integral mean curvature over grain surface. Both approaches successfully demonstrate that, if the concerned grains can be well approximated by a space-filling convex polyhedra in shape, the grain size parameter bearing in the Hillert-type 3D grain growth model should be a parameter proportional to the mean grain tangent radius.