Planar Double-Slip Model for Polycrystal Plasticity and Micro Tension Tests of Pure Nickel and Copper

Author:

Hong Hong-Ki1,Liu Chein-Shan2,Shiao Ya-Po3,Shih Bing-Chang1

Affiliation:

1. Department of Civil Engineering, Taiwan University, Taipei, Taiwan

2. Department of Mechanical and Marine Engineering, Taiwan Ocean University, Keelung, Taiwan

3. Science and Technology Information Center, National Science Council, Taipei, Taiwan

Abstract

Many natural minerals and manmade materials are aggregates of crystals or polycrystalline solids with a nonrandom distribution of grain orientations. Macroscopic behavior in such textured polycrystals depends on directions and is thus anisotropic. In this paper we develop experimental and theoretical procedures for investigating grain orientation evolution and its effect on the tensile stress-strain curve. The micro-tensile experiments were executed in a self-developed micro-forcing-heating device together with a micro-recorder-image analyzer system. In the experiments the 0.1 mm thin foil specimens of pure nickel and copper were gradually loaded toward final failure and the evolution of grain boundaries and slip bands inside grains was observed and recorded digitally via microscope and CCD camera throughout the whole time history. The texture image data were then used in a theoretical micro-macro transformation procedure to simulate the orientation evolutions and the stress-strain curves. The procedure was based on a double-slip model of polycrystal plasticity and on averaging of polycrystalline behavior over all grain orientations weighted by an orientation distribution function. The comparisons made between the simulated and experimental data of orientation evolutions and between the simulated curves and the macro-curves concurrently obtained in the experiments confirm the proposed procedures capable of simulating the considered micro-macro relations.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference19 articles.

1. Havner, K. S., 1992, Finite Plastic Deformation of Crystalline Solids, Cambridge University Press, Cambridge.

2. Kocks, U. F., Tome´, C. N., and Wenk, H.-R., 1998, Texture and Anisotropy: Preferred Orientations in Polycrystals and their Effect on Materials Properties, Cambridge University Press, Cambridge.

3. Meyers, M. A., Armstrong, R. W., and Kirchner, H. O. K., eds., 1999, Mechanics and Materials: Fundamentals and Linkages, Wiley, New York.

4. Asaro, R. J., 1983, “Micromechanics of crystals and polycrystals,” Advances in Applied Mechanics, Vol. 23, Hutchinson, J. W., and Wu, T. Y., eds., Academic Press, New York, pp. 1–115.

5. Harren, S. V. , 1997, “Theory of evolution of crystal lattice orientation density and state variables in Euler space,” Int. J. Plast., 13, pp. 59–74.

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