Abstract
Herein, temperature-dependent long-term behavior of polypropylene and its transversely loaded unidirectional glass fiber reinforced composite is investigated and a lifetime prediction method is proposed, which is based on the observed long-term failure mechanisms. Furthermore, the effect of cooling rate during processing on the time-dependent behavior is addressed. The composite is revealed to exhibit multiple molecular deformation mechanisms, similar to neat polypropylene, which is modeled using the Ree–Eyring approach. Failure kinetics under constant-strain-rate and creep tests are found to be identical and switching from creep to cyclic loading decelerates the failure, which are signs of plasticity-controlled failure. Hence, lifetime is predicted well by using a lifetime prediction methodology for the plasticity-controlled failure which combines the Ree–Eyring approach and the concept of critical strain. A change in the cooling rate alters the deformation and failure kinetics: lower cooling rates promote embrittlement.
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CITATION STYLE
Erartsın, O., Arntz, S. A. J. J., Troisi, E. M., Pastukhov, L. V., van Drongelen, M., Warnet, L., & Govaert, L. E. (2021). Long-term failure of transversely loaded glass/iPP. Journal of Applied Polymer Science, 138(35). https://doi.org/10.1002/app.50878
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