Near-Perfect Elastoplasticity in Pure Nanocrystalline Copper

Author:

Champion Yannick1,Langlois Cyril1,Guérin-Mailly Sandrine1,Langlois Patrick2,Bonnentien Jean-Louis1,Hÿtch Martin J.1

Affiliation:

1. Centre d'Etudes de Chimie Métallurgique–CNRS, 15 rue Georges Urbain, 94407 Vitry-sur-Seine, France.

2. Laboratoire d'Ingénierie des Matériaux et des Hautes Pressions–CNRS, Université Paris XIII, 99 avenue J.-B. Clément, 93430 Villetaneuse, France.

Abstract

Ductile metals and alloys undergo plastic yielding at room temperature, during which they exhibit work-hardening and the generation of surface instabilities that lead to necking and failure. We show that pure nanocrystalline copper behaves differently, displaying near-perfect elastoplastic behavior characterized by Newtonian flow and the absence of both work-hardening and neck formation. We observed this behavior in tensile tests on fully dense large-scale bulk nanocrystalline samples. The experimental results further our understanding of the unique mechanical properties of nanocrystalline materials and also provide a basis for commercial technologies for the plastic (and superplastic) formation of such materials.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

Reference22 articles.

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2. Low-temperature superplasticity in nanostructured nickel and metal alloys

3. Superplastic Extensibility of Nanocrystalline Copper at Room Temperature

4. Arzt E., Acta Mater. 46, 5611 (1998).

5. A. H. Cottrell Dislocations and Plastic Flow in Crystals (Oxford Univ. Press Oxford 1953).

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