Effects of Residual Stress on the Hardness of Elastoplastic Material Under Spherical Indentation

Author:

Yuan Lingxiao1,Yuan Weike1,Wang Gangfeng1

Affiliation:

1. Department of Engineering Mechanics, SVL, Xi’an Jiaotong University, Xi’an 710049, China

Abstract

Abstract Residual stress can strongly affect the mechanical behaviors of engineering components. In this work, the authors revisit the role of equi-biaxial residual stress in the spherical indentation of elastoplastic solids by the finite element method. When specified residual stress remains in the body, the material hardness and the corresponding indentation depth at the inception of fully plastic deformation are examined for the first time. It is found that the hardness is remarkably dependent on the value of residual stress, especially for materials with a relatively small ratio of modulus to yield strength. Based on the dimensional analysis as well as numerical calculations, explicit expressions of the hardness and the critical indentation depth are generalized with respect to residual stress, indentation modulus, and yield strength. These results can be employed in the analysis and determination of residual stress by spherical indentation tests.

Funder

National Natural Science Foundation of China

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference25 articles.

1. On the Change in Hardness of a Plate Caused by Bending;Kokubo;Sci. Rep. Tohoku Imp. Univ.,1932

2. Hardness Measurements for the Determination of Residual Stresses;Sines;ASTM Bull.,1952

3. An Improved Technique for Determining Hardness and Elastic Modulus Using Load and Displacement Sensing Indentation Experiments;Oliver;J. Mater. Res.,1992

4. Measurement of Hardness and Elastic Modulus by Instrumented Indentation: Advances in Understanding and Refinements to Methodology;Oliver;J. Mater. Res.,2004

5. Influences of Stress on the Measurement of Mechanical Properties Using Nanoindentation: Part I. Experimental Studies in an Aluminum Alloy;Tsui;J. Mater. Res.,1996

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