Prediction of the Crack Front Shape of the Corner Interface Crack

Author:

Djoković Jelena M.1,Nikolić Ružica R.2ORCID,Pastorková Jana2,Ulewicz Robert3ORCID

Affiliation:

1. Technical Faculty of Bor, University of Belgrade, 11000 Belgrade, Serbia

2. Research Centre, University of Žilina, 01026 Žilina, Slovakia

3. Department of Production Engineering and Safety, Czestochowa University of Technology, 42-201 Częstochowa, Poland

Abstract

This study delves into the analysis of interface crack propagation originating from a right-angle corner along the bonding plane between the two plates composed of dissimilar materials. The research explores three distinct crack front shapes: concave, triangular, and convex (quarter-circle). The obtained results, meticulously presented in this paper, offer valuable insights into the nature of the crack propagation along these geometries. The findings elucidate that in the case of a convex crack front, the edges demonstrate a significantly accelerated propagation compared to the rest of the crack front. Conversely, for the triangular and concave crack fronts, the central region experiences faster propagation compared to the edges. These revelations lead to a generalized conclusion regarding the stability of different crack front shapes, highlighting the triangular crack front as the most stable configuration in this context. The implications of these observations provide essential knowledge for understanding and managing crack propagation in composite structures, offering potential applications in various engineering domains.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference34 articles.

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4. Kubair, D. (2011). Crack Growth: Rates, Prediction and Prevention, Nova Publishers, Inc.

5. Interfacial Fracture Mechanics for Anisotropic Bimaterials;Qu;ASME J. Appl. Mech.,1993

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