An expanding cavity model for indentation analysis of shape memory alloys

The mechanical and functional responses of shape memory alloys (SMAs), which are often used in small volume applications, can be evaluated using instrumented indentation tests. However, deciphering the indentation test results in SMAs can be complicated due to the combined effects of the non-uniform...

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Main Authors: Anuja J., Narasimhan R., Ramamurty, Upadrasta
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/154537
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1545372021-12-28T00:36:58Z An expanding cavity model for indentation analysis of shape memory alloys Anuja J. Narasimhan R. Ramamurty, Upadrasta School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Expanding Cavity Model Spherical Indentation The mechanical and functional responses of shape memory alloys (SMAs), which are often used in small volume applications, can be evaluated using instrumented indentation tests. However, deciphering the indentation test results in SMAs can be complicated due to the combined effects of the non-uniform state of stress underneath the indenter and stress-induced phase transformation. To address this issue, an expanding cavity model (ECM) applicable to spherical indentation of SMAs is developed in this work based on an analytical solution for an internally pressurized hollow sphere. Analytical expressions for key indentation parameters such as the mean contact pressure and size of the transforming zone are obtained, whose validity is evaluated by recourse to finite element simulations and published experimental data for a Ni-Ti alloy. It is shown that the ECM predicts the above parameters reasonably well for indentation strains varying from 0.01 to 0.04. Also, a method is proposed to determine the critical stress required to initiate phase transformation under uniaxial compression based on the application of the ECM to interpret the indentation stress-strain response. R. Narasimhan would like to gratefully acknowledge the Science and Engineering Research Board (Government of India) for financial support under the JC Bose Fellowship scheme. 2021-12-28T00:36:58Z 2021-12-28T00:36:58Z 2020 Journal Article Anuja J., Narasimhan R. & Ramamurty, U. (2020). An expanding cavity model for indentation analysis of shape memory alloys. Journal of Applied Mechanics, 87(3), 031003-. https://dx.doi.org/10.1115/1.4045397 0021-8936 https://hdl.handle.net/10356/154537 10.1115/1.4045397 2-s2.0-85090723787 3 87 031003 en Journal of Applied Mechanics © 2019 by ASME. 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
Expanding Cavity Model
Spherical Indentation
spellingShingle Engineering::Mechanical engineering
Expanding Cavity Model
Spherical Indentation
Anuja J.
Narasimhan R.
Ramamurty, Upadrasta
An expanding cavity model for indentation analysis of shape memory alloys
description The mechanical and functional responses of shape memory alloys (SMAs), which are often used in small volume applications, can be evaluated using instrumented indentation tests. However, deciphering the indentation test results in SMAs can be complicated due to the combined effects of the non-uniform state of stress underneath the indenter and stress-induced phase transformation. To address this issue, an expanding cavity model (ECM) applicable to spherical indentation of SMAs is developed in this work based on an analytical solution for an internally pressurized hollow sphere. Analytical expressions for key indentation parameters such as the mean contact pressure and size of the transforming zone are obtained, whose validity is evaluated by recourse to finite element simulations and published experimental data for a Ni-Ti alloy. It is shown that the ECM predicts the above parameters reasonably well for indentation strains varying from 0.01 to 0.04. Also, a method is proposed to determine the critical stress required to initiate phase transformation under uniaxial compression based on the application of the ECM to interpret the indentation stress-strain response.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Anuja J.
Narasimhan R.
Ramamurty, Upadrasta
format Article
author Anuja J.
Narasimhan R.
Ramamurty, Upadrasta
author_sort Anuja J.
title An expanding cavity model for indentation analysis of shape memory alloys
title_short An expanding cavity model for indentation analysis of shape memory alloys
title_full An expanding cavity model for indentation analysis of shape memory alloys
title_fullStr An expanding cavity model for indentation analysis of shape memory alloys
title_full_unstemmed An expanding cavity model for indentation analysis of shape memory alloys
title_sort expanding cavity model for indentation analysis of shape memory alloys
publishDate 2021
url https://hdl.handle.net/10356/154537
_version_ 1720447166191763456