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3) and at ISO°C in Mg-Gd (Fig. 4). Figure 5 compares the alloys' behaviour at room temperature and Figure 6 at lSO°C. Figure 4. 8Gd. At room temperature all three alloys exhibited an extended linear hardening regime, which reached saturation at about 10 % strain. The saturation stress was largest in the Mg-Zn alloy. At ISO°C the loss of strength was very limited in the Mg-Gd alloy, whereas it was extensive in the Mg-Al alloy. The Mg-Zn alloy exhibited a short linear hardening regime, saturating at a strength level which was matched by the Mg-Al alloy at large strains.

5* 1O-5s-I). Table 1. Chemical composition olthe alloys studied determined by inductively coupled plasma atomic emission spectroscopy (ICP-AES), and the respective grain sizes and solution he at treatment schedule. 5%Al - 129 10 413 Figure 3. 2Zn. 3. SGd, respectively, at room and high temperature. Serrated flow was observed in Mg-Zn at room temperature (Fig. 3) and at ISO°C in Mg-Gd (Fig. 4). Figure 5 compares the alloys' behaviour at room temperature and Figure 6 at lSO°C. Figure 4. 8Gd. At room temperature all three alloys exhibited an extended linear hardening regime, which reached saturation at about 10 % strain.

S. Stone Broadband nanoindentation of glassy polymers: Part TI. T. Mater. Res. 27 (2012) 475-484. 21. J. B. Puthoff, J. E. Jakes, H. Cao, D. S. T. Mater. Res. 24 (2009) 1279-1290. 22. R. Wilson, C. T. Bettles, B. C. T. F. Nie, "Precipitation hardening in Mg-3wt%Nd(-Zn) casting alloys" Mater. Sei. Forum 419-422 (2003) 267-272. 23. J. F. Nie, K. Oh-ishi, X. Gao, K. Hono, "Solute segregation and precipitation in a creep-resistant Mg-Gd-Zn alloy" Acta Mater. 56 (2008) 6061-6076. 24. C. Weili, P. S S, T.

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