Effect of nitrogen-doped type on fracture toughness improvement and crack growth resistance of carbon nanotube/epoxy nanocomposites: Combined multiscale analysis approach

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초록

Recently, nitrogen-doped carbon nanotubes (N-doped CNTs) have received great attention in nanocomposite design. It has become highly necessary to develop predictive models to elucidate their toughning behavior. In this study, the effects of CNTs with three different types of N-doped functional groups (quaternary, pyrrolic, and pyridinic) on the fracture toughness (FT) and crack growth of polymer nanocomposites are predicted using a multiscale analysis approach. To scale up from the nanoscale to the macroscale, a multiscale analysis approach integrating molecular dynamics, micromechanics theory, linear fracture mechanics theory, and a phase-field fracture model (PFFM) is adopted. The toughness enhancement trends of the three different types of Ndoped functional groups were quantified by considering four toughening mechanisms (CNT debonding, plastic nanovoid growth, CNT pull-out, and CNT rupture), and compared with experimental result. The results show that the excellent interphase and interfacial properties of quaternary and pyridinic functional groups significantly improve the FT and crack growth resistance of N-doped CNT/epoxy nanocomposites. Our study provides high-performance solutions for experimental studies pertaining to the FT and crack growth of N-doped CNT/epoxy nanocomposites.

키워드

Polymer-matrix composites (PMCs)Fracture toughnessInterface/interphaseComputational modellingSTONE-WALES DEFECTSMECHANICAL-PROPERTIESELASTIC PROPERTIESNANOTUBE/POLYPROPYLENE COMPOSITESPOLYMER NANOCOMPOSITESFORCE-FIELDHOMOGENIZATIONMODELSIZE
제목
Effect of nitrogen-doped type on fracture toughness improvement and crack growth resistance of carbon nanotube/epoxy nanocomposites: Combined multiscale analysis approach
저자
Wang, HaolinKim, Jae HunLee, JihunShin, Hyunseong
DOI
10.1016/j.engfracmech.2024.110502
발행일
2024-11-08
유형
Article
저널명
Engineering Fracture Mechanics
310