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Full Length Article | Open Access

Novel method for measuring surface residual stress using flat-ended cylindrical indentation

Guangzhao HANa,Lixun CAIa( )Xiaokun LIUb
Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province, School of Mechanics and Aerospace Engineering, Southwest Jiaotong University, Chengdu 610031, China
Zhengzhou Machinery Research Institute Transmission Technology Co., Ltd, Zhengzhou 518115, China

Peer review under responsibility of Editorial Committee of CJA.

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Abstract

Instrumented indentation is a promising technique for estimating surface residual stresses and mechanical properties in engineering components. The relative difference between the indentation loads for unstressed and stressed specimens was selected as the key parameter for measuring surface residual stresses in flat-ended cylindrical indentations. Based on the equivalent material method and finite element simulations, a dimensionless mapping model with six constants was established between the relative load difference, constitutive model parameters, and normalized residual stress. A novel method for measuring the surface residual stress and constitutive model parameters of metallic material through flat-ended cylindrical indentations was proposed using this model and a mechanical properties determination method. Numerical simulations were conducted using numerous elastoplastic materials with different residual stresses to verify the proposed model; good agreements were observed between the predicted residual stresses and those previously applied in finite element analysis. Flat-ended cylindrical indentation tests were performed on four metallic materials using cruciform specimens subjected to various equibiaxial stresses. The results exhibited good conformance between the stress–strain curves obtained using the proposed method and those from traditional tensile tests, and the absolute differences between the predicted residual stresses and applied stresses were within 40 MPa in most cases.

References

1

Rossini NS, Dassisti M, Benyounis KY, et al. Methods of measuring residual stresses in components. Mater Des 2012;35:572–88.

2

Guo J, Fu HY, Pan B, et al. Recent progress of residual stress measurement methods: A review. Chin J Aeronaut 2021;34(2):54–78.

3

Tsui TY, Oliver WC, Pharr GM. Influences of stress on the measurement of mechanical properties using nanoindentation: Part Ⅰ. Experimental studies in an aluminum alloy. J Mater Res 1996;11(3):752–9.

4

Bolshakov A, Oliver WC, Pharr GM. Influences of stress on the measurement of mechanical properties using nanoindentation: Part Ⅱ. Finite element simulations. J Mater Res 1996;11(3):760–8.

5

Lu ZK, Feng YH, Peng GJ, et al. Estimation of surface equi-biaxial residual stress by using instrumented sharp indentation. Mater Sci Eng A 2014;614:264–72.

6

Pham TH, Kim SE. Determination of equi-biaxial residual stress and plastic properties in structural steel using instrumented indentation. Mater Sci Eng A 2017;688:352–63.

7

Peng GJ, Lu ZK, Ma Y, et al. Spherical indentation method for estimating equibiaxial residual stress and elastic–plastic properties of metals simultaneously. J Mater Res 2018;33(8):884–97.

8

Wang ZY, Deng LX, Zhao JP. A novel method to extract the equi-biaxial residual stress and mechanical properties of metal materials by continuous spherical indentation test. Mater Res Express 2018;6(3):036512.

9

Wang ZY, Deng LX, Zhao JP. Estimation of residual stress of metal material without plastic plateau by using continuous spherical indentation. Int J Press Vessels Pip 2019;172:373–8.

10

Rickhey F, Lee JH, Lee H. A contact size-independent approach to the estimation of biaxial residual stresses by Knoop indentation. Mater Des 2015;84:300–12.

11

Kim YC, Ahn HJ, Kwon D, et al. Modeling and experimental verification for non-equibiaxial residual stress evaluated by Knoop indentations. Met Mater Int 2016;22(1):12–9.

12

Peng W, Jiang WC, Sun GH, et al. Biaxial residual stress measurement by indentation energy difference method: Theoretical and experimental study. Int J Press Vessels Pip 2022;195:104573.

13

Peng GJ, Xu FL, Chen JF, et al. Evaluation of non-equibiaxial residual stresses in metallic materials via instrumented spherical indentation. Metals 2020;10(4):440.

14

Suresh S, Giannakopoulos AE. A new method for estimating residual stresses by instrumented sharp indentation. Acta Mater 1998;46(16):5755–67.

15

Carlsson S, Larsson PL. On the determination of residual stress and strain fields by sharp indentation testing. Acta Mater 2001;49(12):2193–203.

16

Lee YH, Kwon D. Measurement of residual-stress effect by nanoindentation on elastically strained (100) W. Scr Mater 2003;49(5):459–65.

17

Lee YH, Kwon D. Estimation of biaxial surface stress by instrumented indentation with sharp indenters. Acta Mater 2004;52(6):1555–63.

18

Xu ZH, Li XD. Influence of equi-biaxial residual stress on unloading behaviour of nanoindentation. Acta Mater 2005;53(7):1913–9.

19

Xu ZH, Li X. Estimation of residual stresses from elastic recovery of nanoindentation. Philos Mag 2006;86(19):2835–46.

20

Liu XK, Cai LX, Chen H. Residual stress indentation model based on material equivalence. Chin J Aeronaut 2022;35(8):304–13.

21

Sakharova NA, Prates PA, Oliveira MC, et al. A simple method for estimation of residual stresses by depth-sensing indentation. Strain 2012;48(1):75–87.

22

Hu Z, Lynne K, Delfanian F. Characterization of materials’ elasticity and yield strength through micro-/ nano-indentation testing with a cylindrical flat-tip indenter. J Mater Res 2015;30(4):578–91.

23

Midawi ARH, Simha CHM, Gesing MA, et al. Elastic-plastic property evaluation using a nearly flat instrumented indenter. Int J Solids Struct 2017;104–105:81–91.

24

Liu XK, Cai LX, Chen H, et al. Semi-analytical model for flat indentation of metal materials and its applications. Chin J Aeronaut 2020;33(12):3266–77.

25

Han GZ, Cai LX, Xiao HR, et al. A novel flat indentation test method for obtaining stress–strain relationships of metallic materials based on energy density equivalence. Int J Solids Struct 2023;269:112195.

26

Chen H, Cai LX. Theoretical model for predicting uniaxial stress-strain relation by dual conical indentation based on equivalent energy principle. Acta Mater 2016;121:181–9.

Chinese Journal of Aeronautics
Pages 486-495
Cite this article:
HAN G, CAI L, LIU X. Novel method for measuring surface residual stress using flat-ended cylindrical indentation. Chinese Journal of Aeronautics, 2024, 37(8): 486-495. https://doi.org/10.1016/j.cja.2024.05.039

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Received: 31 August 2023
Revised: 07 October 2023
Accepted: 04 December 2023
Published: 01 June 2024
© 2024 Chinese Society of Aeronautics and Astronautics.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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