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Electromechanical phase-field fracture modelling of piezoresistive CNT-based composites.

Authors :
Quinteros, Leonel
García-Macías, Enrique
Martínez-Pañeda, Emilio
Source :
Computer Methods in Applied Mechanics & Engineering. Mar2023, Vol. 407, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

We present a novel computational framework to simulate the electromechanical response of self-sensing carbon nanotube (CNT)-based composites experiencing fracture. The computational framework combines electrical-deformation-fracture finite element modelling with a mixed micromechanics formulation. The latter is used to estimate the constitutive properties of CNT-based composites, including the elastic tensor, fracture energy, electrical conductivity, and linear piezoresistive coefficients. These properties are inputted into a coupled electro-structural finite element model, which simulates the evolution of cracks based upon phase-field fracture. The coupled physical problem is solved in a monolithic manner, exploiting the robustness and efficiency of a quasi-Newton algorithm. 2D and 3D boundary value problems are simulated to illustrate the potential of the modelling framework in assessing the influence of defects on the electromechanical response of meso- and macro-scale smart structures. Case studies aim at shedding light into the interplay between fracture and the electromechanical material response and include parametric analyses, validation against experiments and the simulation of complex cracking conditions (multiple defects, crack merging). The presented numerical results showcase the efficiency and robustness of the computational framework, as well as its ability to model a large variety of structural configurations and damage patterns. The deformation-electrical-fracture finite element code developed is made freely available to download. • A phase field model for electro-mechanical fracture of CNT-based composites is presented. • Mean field homogenisation is combined with deformation-electrical-fracture modelling. • First phase field fracture modelling investigation on piezoresistive materials. • A BFGS-based monolithic solution scheme is used for robustness and efficiency. • 2D/3D case studies reveal the interplay between strains, electric fields and damage. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00457825
Volume :
407
Database :
Academic Search Index
Journal :
Computer Methods in Applied Mechanics & Engineering
Publication Type :
Academic Journal
Accession number :
162323852
Full Text :
https://doi.org/10.1016/j.cma.2023.115941