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Journal ArticleDOI

Indentation size effects in crystalline materials: A law for strain gradient plasticity

William D. Nix, +1 more
- 01 Mar 1998 - 
- Vol. 46, Iss: 3, pp 411-425
TLDR
In this article, the indentation size effect for crystalline materials can be accurately modeled using the concept of geometrically necessary dislocations, which leads to the following characteristic form for the depth dependence of the hardness: H H 0 1+ h ∗ h where H is the hardness for a given depth of indentation, h, H 0 is a characteristic length that depends on the shape of the indenter, the shear modulus and H 0.
Abstract
We show that the indentation size effect for crystalline materials can be accurately modeled using the concept of geometrically necessary dislocations. The model leads to the following characteristic form for the depth dependence of the hardness: H H 0 1+ h ∗ h where H is the hardness for a given depth of indentation, h, H0 is the hardness in the limit of infinite depth and h ∗ is a characteristic length that depends on the shape of the indenter, the shear modulus and H0. Indentation experiments on annealed (111) copper single crystals and cold worked polycrystalline copper show that this relation is well-obeyed. We also show that this relation describes the indentation size effect observed for single crystals of silver. We use this model to derive the following law for strain gradient plasticity: ( σ σ 0 ) 2 = 1 + l χ , where σ is the effective flow stress in the presence of a gradient, σ0 is the flow stress in the absence of a gradient, χ is the effective strain gradient and l a characteristic material length scale, which is, in turn, related to the flow stress of the material in the absence of a strain gradient, l ≈ b( μ σ 0 ) 2 . For materials characterized by the power law σ 0 = σ ref e 1 n , the above law can be recast in a form with a strain-independent material length scale l. ( builtσ σ ref ) 2 = e 2 n + l χ l = b( μ σ ref ) 2 = l ( σ 0 σ ref ) 2 . This law resembles the phenomenological law developed by Fleck and Hutchinson, with their phenomenological length scale interpreted in terms of measurable material parametersbl].

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Citations
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Journal ArticleDOI

Mechanical properties of ion-implanted tungsten–5 wt% tantalum

TL;DR: In this paper, the authors used nanoindentation to simulate neutron damage in W-5wt%Ta alloy manufactured by arc melting and found that the hardness increases rapidly from 7.3 GPa in the unimplanted condition to 8.8 GPa at 0.07 dpa.
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Serrated flow of CuZr-based bulk metallic glasses probed by nanoindentation: Role of the activation barrier, size and distribution of shear transformation zones

TL;DR: In this paper, the effect of Al and Co alloying in vitreous Cu50Zr50 on local deformation and serrated flow as a model for relating the size and localization of shear transformation zones (STZ) to Poisson ratio and strain-rate sensitivity of metallic glasses was reported.
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Influence of stress state and strain rate on structural amorphization in boron carbide

TL;DR: The role of strain rate and pressure on amorphization of B4C armor plate is investigated in this article, where the authors show that high strain rate deformation alone alone (without concurrent high pressure) cannot trigger localized amorphisation in B4Cs.
Journal ArticleDOI

Indentation size effect of hardness of metallic glasses

TL;DR: In this article, it has been found that the hardness decreases as indentation depth increases and the pile-up ratio increases with the depth of the indentation, i.e., the number of pile-ups at different indentation depths.
References
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Journal ArticleDOI

The deformation of plastically non-homogeneous materials

TL;DR: The geometrically necessary dislocations as discussed by the authors were introduced to distinguish them from the statistically storages in pure crystals during straining and are responsible for the normal 3-stage hardening.
Journal ArticleDOI

Strain gradient plasticity: Theory and experiment

TL;DR: In this paper, a deformation theory of plasticity is introduced to represent in a phenomenological manner the relative roles of strain hardening and strain gradient hardening, which is a non-linear generalization of Cosserat couple stress theory.
Journal ArticleDOI

A phenomenological theory for strain gradient effects in plasticity

TL;DR: In this paper, a strain gradient theory of plasticity is introduced, based on the notion of statistically stored and geometrically necessary dislocations, which fits within the general framework of couple stress theory and involves a single material length scale l.
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