Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method

The determination of mechanical properties at the nanoscale is of such importance today that researchers pay special attention to it. Discovering the mechanical properties of biological composite structures in the nanoscale is much interesting today. Top neck mollusk shells are among biomaterial nan...

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Main Authors: Amin Nouroozi Masir, Abolfazl Darvizeh, Asghar Zajkani
Format: Article
Language:English
Published: SAGE Publishing 2019-07-01
Series:Advanced Composites Letters
Online Access:https://doi.org/10.1177/0963693519860162
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spelling doaj-5d9ec8262cac4890b75097783a530a6a2020-11-25T04:09:00ZengSAGE PublishingAdvanced Composites Letters0963-69352019-07-012810.1177/0963693519860162Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics methodAmin Nouroozi Masir0Abolfazl Darvizeh1Asghar Zajkani2 Department of Mechanical Engineering, University Campus 2, University of Guilan, Rasht, Iran Department of Mechanical Engineering, University of Guilan, Rasht, Iran Department of Mechanical Engineering, Imam Khomeini International University, Qazvin, IranThe determination of mechanical properties at the nanoscale is of such importance today that researchers pay special attention to it. Discovering the mechanical properties of biological composite structures in the nanoscale is much interesting today. Top neck mollusk shells are among biomaterial nanocomposites that their layered structures are composed of organic and inorganic materials. Since the nanoindentation process is known as an efficient method to determine mechanical properties like elastic modulus and hardness in small scale, therefore, due to some limitations of considering all peripheral parameters, particular simulations of temperature effect in the atomic scale are considerable. The present article provides a molecular dynamics approach for modeling the nanoindentation mechanism with three types of pyramidal, cubic, and spherical indenters at different temperatures of 173, 273, 300, and 373°K. Based on load-indentation depth diagrams and Oliver–Pharr equations, research findings indicate that the temperature has weakened the power between the biological atoms; this leads to reduced mechanical properties. An increase in temperature causes a reduction in elastic modulus and hardness. There was correspondence between the results obtained from the spherical indenter and experimental data. This study can be regarded as a novel benchmark study for further research studies which tend to consider structural responses of the various bio-inspired nanocomposites.https://doi.org/10.1177/0963693519860162
collection DOAJ
language English
format Article
sources DOAJ
author Amin Nouroozi Masir
Abolfazl Darvizeh
Asghar Zajkani
spellingShingle Amin Nouroozi Masir
Abolfazl Darvizeh
Asghar Zajkani
Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method
Advanced Composites Letters
author_facet Amin Nouroozi Masir
Abolfazl Darvizeh
Asghar Zajkani
author_sort Amin Nouroozi Masir
title Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method
title_short Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method
title_full Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method
title_fullStr Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method
title_full_unstemmed Nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method
title_sort nanoindentation on the bio-inspired high-performance nature composite by molecular dynamics method
publisher SAGE Publishing
series Advanced Composites Letters
issn 0963-6935
publishDate 2019-07-01
description The determination of mechanical properties at the nanoscale is of such importance today that researchers pay special attention to it. Discovering the mechanical properties of biological composite structures in the nanoscale is much interesting today. Top neck mollusk shells are among biomaterial nanocomposites that their layered structures are composed of organic and inorganic materials. Since the nanoindentation process is known as an efficient method to determine mechanical properties like elastic modulus and hardness in small scale, therefore, due to some limitations of considering all peripheral parameters, particular simulations of temperature effect in the atomic scale are considerable. The present article provides a molecular dynamics approach for modeling the nanoindentation mechanism with three types of pyramidal, cubic, and spherical indenters at different temperatures of 173, 273, 300, and 373°K. Based on load-indentation depth diagrams and Oliver–Pharr equations, research findings indicate that the temperature has weakened the power between the biological atoms; this leads to reduced mechanical properties. An increase in temperature causes a reduction in elastic modulus and hardness. There was correspondence between the results obtained from the spherical indenter and experimental data. This study can be regarded as a novel benchmark study for further research studies which tend to consider structural responses of the various bio-inspired nanocomposites.
url https://doi.org/10.1177/0963693519860162
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