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Nucleation and Precipitation Strengthening in Dilute Al-Ti and Al-Zr Alloys

机译:稀Al-Ti和Al-Zr合金的形核和沉淀强化

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摘要

Two conventionally solidified Al-0.2Ti alloys (with 0.18 and 0.22 at. pct Ti) exhibit no hardening after aging up to 3200 hours at 375 °C or 425 °C. This is due to the absence of Al3Ti precipitation, as confirmed by electron microscopy and electrical conductivity measurements. By contrast, an Al-0.2Zr alloy (with 0.19 at. pct Zr) displays strong age hardening at both temperatures due to precipitation of Al3Zr (L12) within Zr-enriched dendritic regions. This discrepancy between the two alloys is explained within the context of the equilibrium phase diagrams: (1) the disparity in solid and liquid solubilities of Ti in α-Al is much greater than that of Zr in α-Al; and (2) the relatively small liquid solubility of Ti in α-Al limits the amount of solute retained in solid solution during solidification, while the comparatively high solid solubility reduces the supersaturation effecting precipitation during post-solidification aging. The lattice parameter mismatch of Al3Ti (L12) with α-Al is also larger than that of Al3Zr (L12), further hindering nucleation of Al3Ti. Classical nucleation theory indicates that the minimum solute supersaturation required to overcome the elastic strain energy of Al3Ti nuclei cannot be obtained during conventional solidification of Al-Ti alloys (unlike for Al-Zr alloys), thus explaining the absence of Al3Ti precipitation and the presence of Al3Zr precipitation.
机译:两种常规固化的Al-0.2Ti合金(Ti为0.18和0.22 at。pct)在375°C或425°C时效长达3200小时后没有硬化。如电子显微镜和电导率测量所证实,这是由于不存在Al3 Ti沉淀。相比之下,Al-0.2Zr合金(具有0.19 at。pct的Zr)在这两个温度下均表现出较强的时效硬化,这是由于Al3 Zr(L12 )在富含Zr的树枝状区域内的析出。两种合金之间的这种差异在平衡相图的背景下得以解释:(1)Ti在α-Al中的固液溶解度差异远大于Zr在α-Al中的固溶度差异; (2)Ti在α-Al中的相对较小的液体溶解度限制了固化过程中固溶体中保留的溶质数量,而相对较高的固溶度则降低了在后固化时效中产生沉淀的过饱和度。 Al3 Ti(L12 )与α-Al的晶格参数失配也大于Al3 Zr(L12 )的晶格参数失配,进一步阻碍了Al3 钛。经典的成核理论表明,在常规的Al-Ti合金凝固过程中(与Al-Zr合金不同)无法获得克服Al3 Ti核的弹性应变能所需的最小溶质过饱和度,从而解释了Al3的缺失 Ti沉淀和Al3 Zr沉淀的存在。

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