This paper presents a computational technique for the prediction of fatigue-driven delamination growth in composite materials. The interface element, which has been extensively applied to predict delamination growth due to static loading, has been modified to incorporate the effects of cyclic loading. Using a damage mechanics formulation, the constitutive law for the interface element has been extended by incorporating a modified version of a continuum fatigue damage model. The paper presents details of the fatigue degradation strategy and examples of the predicted fatigue delamination growth in mode I, mode II and mixed mode I/II are presented to demonstrate that the numerical model mimics the Paris law behaviour usually observed in experimental testin
TUMINO D, ROBINSON P, GALVANETTO U, BELLUCCI G, VIOLEAU D (2005). Numerical simulation of fatigue-driven delamination using interface elements. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 63(13), 1824-1848 [10.1002/nme.1338].
Numerical simulation of fatigue-driven delamination using interface elements
TUMINO, Davide;
2005-01-01
Abstract
This paper presents a computational technique for the prediction of fatigue-driven delamination growth in composite materials. The interface element, which has been extensively applied to predict delamination growth due to static loading, has been modified to incorporate the effects of cyclic loading. Using a damage mechanics formulation, the constitutive law for the interface element has been extended by incorporating a modified version of a continuum fatigue damage model. The paper presents details of the fatigue degradation strategy and examples of the predicted fatigue delamination growth in mode I, mode II and mixed mode I/II are presented to demonstrate that the numerical model mimics the Paris law behaviour usually observed in experimental testinFile | Dimensione | Formato | |
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