AbstractTwo expanding cavity models (ECMs) are developed for describing indentation deformations of elastic power-law hardening and elastic linear-hardening materials. The derivations are based on two elastic–plastic solutions for internally pressurized thick-walled spherical shells of strain-hardening materials. Closed-form formulas are provided for both conical and spherical indentations, which explicitly show that for a given indenter geometry indentation hardness depends on Young’s modulus, yield stress and strain-hardening index of the indented material. The two new models reduce to Johnson’s ECM for elastic-perfectly plastic materials when the strain-hardening effect is not considered. The sample numerical results obtained using the t...
Herein, we present a self-similar cavity expansion model that follows from the work of Cohen and Dur...
International audienceA new expanding cavity model (ECM) for describing conical indentation of elast...
The effect of soft elasticity, i.e., a relatively small value of the ratio of Young's modulus to yie...
Two expanding cavity models (ECMs) are developed for describing indentation deformations of elastic ...
AbstractAn expanding cavity model (ECM) for determining indentation hardness of elastic strain-harde...
In our previous paper, the expanding cavity model (ECM) and Lame solution were used to obtain an ana...
A continuum theory for elastic-plastic solids that accounts for the size-dependence of strain harden...
A continuum theory for elastic–plastic solids that accounts for the size-dependence of strain harden...
The objective of this paper is to apply the expanding cavity model to study the conical or spherical...
AbstractThis paper provides in-depth examinations of the well-known analogy between indentation expe...
An analytical solution is presented for an internally pressurized thick-walled spherical shell of an...
The relationship between hardness (H), reduced modulus (E-r), unloading work (W-u), and total work (...
The size effect in conical indentation of an elasto-plastic solid is predicted via the Fleck and Wil...
We propose an extended expanding cavity model (ECM) in instrumented spherical indentation to evaluat...
The aim of this paper is to investigate the possibilities of getting information on the initial yiel...
Herein, we present a self-similar cavity expansion model that follows from the work of Cohen and Dur...
International audienceA new expanding cavity model (ECM) for describing conical indentation of elast...
The effect of soft elasticity, i.e., a relatively small value of the ratio of Young's modulus to yie...
Two expanding cavity models (ECMs) are developed for describing indentation deformations of elastic ...
AbstractAn expanding cavity model (ECM) for determining indentation hardness of elastic strain-harde...
In our previous paper, the expanding cavity model (ECM) and Lame solution were used to obtain an ana...
A continuum theory for elastic-plastic solids that accounts for the size-dependence of strain harden...
A continuum theory for elastic–plastic solids that accounts for the size-dependence of strain harden...
The objective of this paper is to apply the expanding cavity model to study the conical or spherical...
AbstractThis paper provides in-depth examinations of the well-known analogy between indentation expe...
An analytical solution is presented for an internally pressurized thick-walled spherical shell of an...
The relationship between hardness (H), reduced modulus (E-r), unloading work (W-u), and total work (...
The size effect in conical indentation of an elasto-plastic solid is predicted via the Fleck and Wil...
We propose an extended expanding cavity model (ECM) in instrumented spherical indentation to evaluat...
The aim of this paper is to investigate the possibilities of getting information on the initial yiel...
Herein, we present a self-similar cavity expansion model that follows from the work of Cohen and Dur...
International audienceA new expanding cavity model (ECM) for describing conical indentation of elast...
The effect of soft elasticity, i.e., a relatively small value of the ratio of Young's modulus to yie...