Continuum and molecular-level modeling of fatigue crack retardation in self-healing polymers
Document Type
Article
Publication Date
10-1-2006
Abstract
A numerical model to study the fatigue crack retardation in a self-healing material (White et al., 2001, Nature, 409, pp. 794-797) is presented. The approach relies on a combination of cohesive modeling for fatigue crack propagation and a contact algorithm to enforce crack closure due to an artificial wedge in the wake of the crack. The healing kinetics of the self-healing material is captured by introducing along the fracture plane a state variable representing the evolving degree of cure of the healing agent. The atomic-scale processes during the cure of the healing agent are modeled using a coarse-grain molecular dynamics model specifically developed for this purpose. This approach yields the cure kinetics and the mechanical properties as a function of the degree of cure, information that is transmitted to the continuum-scale models. The incorporation of healing kinetics in the model enables us to study the competition between fatigue crack growth and crack retardation mechanisms in this new class of materials. A systematic study of the effect of different loading and healing parameters shows a good qualitative agreement between experimental observations and simulation results. Copyright © 2006 by ASME.
Publication Title
Journal of Engineering Materials and Technology, Transactions of the ASME
Recommended Citation
Maiti, S.,
Shankar, C.,
Geubelle, P.,
&
Kieffer, J.
(2006).
Continuum and molecular-level modeling of fatigue crack retardation in self-healing polymers.
Journal of Engineering Materials and Technology, Transactions of the ASME,
128(4), 595-602.
http://doi.org/10.1115/1.2345452
Retrieved from: https://digitalcommons.mtu.edu/michigantech-p/11541