Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites

This paper implements an adaptive phase-field model to investigate the interfacial fracture in transversely isotropic piezoelectric composites under different electromechanical loadings using an isogeometric framework based on polynomial splines over hierarchical T-meshes (PHT-splines). The model in...

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Main Authors: Kiran, Raj, Nguyen-Thanh, Nhon, Yu, Hualong, Zhou, Kun
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/169923
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1699232023-08-15T02:55:30Z Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites Kiran, Raj Nguyen-Thanh, Nhon Yu, Hualong Zhou, Kun School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Crack Propagation Debonding This paper implements an adaptive phase-field model to investigate the interfacial fracture in transversely isotropic piezoelectric composites under different electromechanical loadings using an isogeometric framework based on polynomial splines over hierarchical T-meshes (PHT-splines). The model introduces the interface and crack phase-field parameters to regularize the sharp interface and crack topologies, respectively and the regularized energy terms are incorporated corresponding to crack and interface evading the need for line integration along them. It also modifies the energy functional to scrutinize the interaction between interfacial damage and crack propagation in piezocomposites and thus is capable of capturing the fracture patterns including interfacial debonding, matrix cracking and their interactions under different electric fields. An adaptive mesh refinement scheme using PHT-splines is implemented to efficiently resolve for interface and crack phase-fields and track the complex crack propagation paths without any ad hoc criteria. The efficacy and robustness of the proposed model are demonstrated using a set of examples simulating the electromechanical fracture in piezoelectric composites. Moreover, different fracture mechanisms in composite materials including the crack nucleation, interfacial debonding, matrix cracking, crack propagation and coalescence are found to be precisely captured using the present modeling technique. Nanyang Technological University Raj Kiran appreciates the financial support extended by Nanyang Technological University, Singapore. 2023-08-15T02:55:30Z 2023-08-15T02:55:30Z 2023 Journal Article Kiran, R., Nguyen-Thanh, N., Yu, H. & Zhou, K. (2023). Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites. Engineering Fracture Mechanics, 288, 109181-. https://dx.doi.org/10.1016/j.engfracmech.2023.109181 0013-7944 https://hdl.handle.net/10356/169923 10.1016/j.engfracmech.2023.109181 2-s2.0-85161327357 288 109181 en Engineering Fracture Mechanics © 2023 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Crack Propagation
Debonding
spellingShingle Engineering::Mechanical engineering
Crack Propagation
Debonding
Kiran, Raj
Nguyen-Thanh, Nhon
Yu, Hualong
Zhou, Kun
Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites
description This paper implements an adaptive phase-field model to investigate the interfacial fracture in transversely isotropic piezoelectric composites under different electromechanical loadings using an isogeometric framework based on polynomial splines over hierarchical T-meshes (PHT-splines). The model introduces the interface and crack phase-field parameters to regularize the sharp interface and crack topologies, respectively and the regularized energy terms are incorporated corresponding to crack and interface evading the need for line integration along them. It also modifies the energy functional to scrutinize the interaction between interfacial damage and crack propagation in piezocomposites and thus is capable of capturing the fracture patterns including interfacial debonding, matrix cracking and their interactions under different electric fields. An adaptive mesh refinement scheme using PHT-splines is implemented to efficiently resolve for interface and crack phase-fields and track the complex crack propagation paths without any ad hoc criteria. The efficacy and robustness of the proposed model are demonstrated using a set of examples simulating the electromechanical fracture in piezoelectric composites. Moreover, different fracture mechanisms in composite materials including the crack nucleation, interfacial debonding, matrix cracking, crack propagation and coalescence are found to be precisely captured using the present modeling technique.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Kiran, Raj
Nguyen-Thanh, Nhon
Yu, Hualong
Zhou, Kun
format Article
author Kiran, Raj
Nguyen-Thanh, Nhon
Yu, Hualong
Zhou, Kun
author_sort Kiran, Raj
title Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites
title_short Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites
title_full Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites
title_fullStr Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites
title_full_unstemmed Adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites
title_sort adaptive isogeometric analysis–based phase-field modeling of interfacial fracture in piezoelectric composites
publishDate 2023
url https://hdl.handle.net/10356/169923
_version_ 1779156386595209216