Startseite Hot compression deformation of an Mg–2.54Nd–0.26Zn–0.32Zr alloy
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Hot compression deformation of an Mg–2.54Nd–0.26Zn–0.32Zr alloy

  • H. H. Liu , Z. L. Ning , F. Y. Cao , J. F. Du und J. F. Sun
Veröffentlicht/Copyright: 18. Oktober 2013
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Abstract

The hot compression deformation of an Mg–2.54Nd–0.26Zn–0.32Zr cast alloy was investigated in the 25–400°C temperature range at initial strain rates from 10−4 s−1 to 10−2 s−1. It was found that strain rate has little effect on true stress when the material was compressed below 250°C. Above this temperature, high strain rates resulted in an increased true stress. The average strain rate sensitivity exponent at higher temperature (300–400°C) was determined to be 0.24 and the calculated activation energy was 185 kJ · mol−1, which is higher than that of lattice self diffusion of pure Mg. The constitutive equation was established and the Zener-Hollomon parameter was calculated as a function of peak stress. The microstructure of a sample tested at 300°C was analyzed by optical microscopy.


* Correspondence address, Prof. Dr. J. F. Sun, School of Materials Science and Engineering, Harbin Institute of Technology, Harbin, China, Tel.: +86-451-86418317, Fax: +86-451-86418317, E-mail:

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Received: 2012-12-22
Accepted: 2013-5-4
Published Online: 2013-10-18
Published in Print: 2013-10-10

© 2013, Carl Hanser Verlag, München

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