X. Chen
A combined inverse finite element – elastoplastic modelling method to simulate the size-effect in nanoindentation and characterise materials from the nano to micro-scale
Chen, X.; Ashcroft, Ian; Wildman, Ricky D.; Tuck, Christopher
Authors
Professor Ian Ashcroft IAN.ASHCROFT@NOTTINGHAM.AC.UK
PROFESSOR OF MECHANICS OF SOLIDS
Professor RICKY WILDMAN RICKY.WILDMAN@NOTTINGHAM.AC.UK
PROFESSOR OF MULTIPHASE FLOW AND MECHANICS
Professor CHRISTOPHER TUCK CHRISTOPHER.TUCK@NOTTINGHAM.AC.UK
PRO-VICE CHANCELLOR FACULTY OF ENGINEERING
Abstract
Material properties such as hardness can be dependent on the size of the indentation load when that load is small, a phenomenon known as the indentation size effect (ISE). In this work an inverse finite element method (IFEM) is used to investigate the ISE, with reference to experiments with a Berkovich indenter and an aluminium test material. It was found that the yield stress is highly dependent on indentation depth and in order to simulate this, an elastoplastic constitutive relation in which yielding varies with indentation depth/load was developed. It is shown that whereas Young's modulus and Poisson's ratio are not influenced by the length scale over the range tested, the amplitude portion of yield stress, which is independent of hardening and corresponds to the initial stress for a bulk material, changes radically at small indentation depths. Using the proposed material model and material parameters extracted using IFEM, the indentation depth-time and load-depth plots can be predicted at different loads with excellent agreement to experiment; the relative residual achieved between FE modelling displacement and experiment being less than 0.32%. An improved method of determining hardness from nanoindentation test data is also presented, which shows goof agreement with that determined using the IFEM.
Citation
Chen, X., Ashcroft, I., Wildman, R. D., & Tuck, C. (2017). A combined inverse finite element – elastoplastic modelling method to simulate the size-effect in nanoindentation and characterise materials from the nano to micro-scale. International Journal of Solids and Structures, 104-105, 25-34. https://doi.org/10.1016/j.ijsolstr.2016.11.004
Journal Article Type | Article |
---|---|
Acceptance Date | Nov 4, 2016 |
Online Publication Date | Nov 5, 2016 |
Publication Date | Jan 1, 2017 |
Deposit Date | Jan 10, 2017 |
Publicly Available Date | Jan 10, 2017 |
Journal | International Journal of Solids and Structures |
Print ISSN | 0020-7683 |
Electronic ISSN | 0020-7683 |
Publisher | Elsevier |
Peer Reviewed | Peer Reviewed |
Volume | 104-105 |
Pages | 25-34 |
DOI | https://doi.org/10.1016/j.ijsolstr.2016.11.004 |
Keywords | Indentation; Optimization; Inverse problem; Finite element; Elastoplasticity |
Public URL | https://nottingham-repository.worktribe.com/output/830580 |
Publisher URL | http://dx.doi.org/10.1016/j.ijsolstr.2016.11.004 |
Additional Information | This article is maintained by: Elsevier; Article Title: A combined inverse finite element – elastoplastic modelling method to simulate the size-effect in nanoindentation and characterise materials from the nano to micro-scale; Journal Title: International Journal of Solids and Structures; CrossRef DOI link to publisher maintained version: https://doi.org/10.1016/j.ijsolstr.2016.11.004; Content Type: article; Copyright: © 2017 The Authors. Published by Elsevier Ltd. |
Contract Date | Jan 10, 2017 |
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Copyright Statement
Copyright information regarding this work can be found at the following address: http://creativecommons.org/licenses/by/4.0
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