Scientific Library of Tomsk State University

   E-catalog        

Normal view MARC view

Investigation of failure mechanism of Al2O3 specimens subjected to three-point bending test M. Eremin, A. Kulkov, I. Smolin, V. Mikushina

Contributor(s): Eremin, Mikhail V | Smolin, Igor Yu | Mikushina, Valentina A | Kulkov, Aleksey SMaterial type: ArticleArticleSubject(s): пористая керамика | микроструктура | разрушение | численное моделированиеGenre/Form: статьи в журналах Online resources: Click here to access online In: Frattura ed integrita strutturale Vol. 13, № 50. P. 38-45Abstract: Experimental loading and FEM simulation-based approach at macroscale are utilized to investigate the failure mechanisms of Al2O3 ceramics. Experimental characterization of the microstructure is carried out using SEM. Recently the mesoscale models of a representative volume of porous alumina ceramics were built on the basis of grain and pore distribution patterns and subjected to uniaxial loading in order to determine effective mechanical characteristics which are utilized for macroscopic simulation in this work. Pre-fracture behavior of specimens undergoes the Drucker-Prager model with non-associated plastic flow rule. Experimental and numerical simulation fracture patterns show that material exhibits predominantly mode I, sometimes passing to mixed mode I+II of crack propagation. Comparison of experimental data and numerical simulation data gives a good agreement.
Tags from this library: No tags from this library for this title. Log in to add tags.
No physical items for this record

Библиогр.: 8 назв.

Experimental loading and FEM simulation-based approach at macroscale are utilized to investigate the failure mechanisms of Al2O3 ceramics. Experimental characterization of the microstructure is carried out using SEM. Recently the mesoscale models of a representative volume of porous alumina ceramics were built on the basis of grain and pore distribution patterns and subjected to uniaxial loading in order to determine effective mechanical characteristics which are utilized for macroscopic simulation in this work. Pre-fracture behavior of specimens undergoes the Drucker-Prager model with non-associated plastic flow rule. Experimental and numerical simulation fracture patterns show that material exhibits predominantly mode I, sometimes passing to mixed mode I+II of crack propagation. Comparison of experimental data and numerical simulation data gives a good agreement.

There are no comments on this title.

to post a comment.
Share