Bending characteristics of carbon nanotubes: Micropolar elasticity models and molecular dynamics simulations

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Date

2021

Authors

Razie Izadi
Meral Tuna
Patrizia Trovalusci
Nicholas Fantuzzi

Journal Title

Journal ISSN

Volume Title

Publisher

TAYLOR & FRANCIS INC

Open Access Color

Green Open Access

Yes

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No
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Top 10%
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Average
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Top 10%

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Abstract

The present paper aims at evaluating non-classical continuum parameters for each class of armchair and zigzag single-walled CNTs focusing on the scale effect in their flexural behavior observed in molecular dynamics (MD) simulations. Through a non-linear optimization approach the bending rigidities obtained from atomistic simulations are compared to those derived from non-classical continua. For MD simulations a novel method ensuring pure bending is introduced and for continuum modeling micropolar constrained micropolar and modified couple stress theories are employed. The results reveal that adopted non-classical theories notably micropolar theory provide reasonable outcomes with an obvious failure of classical Cauchy theory.

Description

Keywords

Micropolar continua, molecular dynamics simulation, size effect in bending modulus, SWCNTs parameters identification, optimization, MODIFIED COUPLE STRESS, PARTICLE RANDOM COMPOSITES, NONLOCAL SHELL-MODEL, MECHANICAL-PROPERTIES, YOUNGS MODULUS, GRADIENT ELASTICITY, LENGTH SCALE, SINGLE, EQUIVALENT, MICROSTRUCTURE, Size Effect in Bending Modulus, SWCNTs Parameters Identification, Optimization, Micropolar Continua, Molecular Dynamics Simulation, Micropolar continua; molecular dynamics simulation; optimization; size effect in bending modulus; SWCNTs parameters identification

Fields of Science

0203 mechanical engineering, 02 engineering and technology, 0210 nano-technology

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OpenCitations Citation Count
17

Source

Mechanics of Advanced Materials and Structures

Volume

30

Issue

1

Start Page

189

End Page

206
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Citations

CrossRef : 2

Scopus : 21

Captures

Mendeley Readers : 18

SCOPUS™ Citations

21

checked on Apr 09, 2026

Web of Science™ Citations

23

checked on Apr 09, 2026

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1.2724

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