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首页> 外文期刊>Metallurgical and Materials Transactions A >Effect of initial microstructure on microstructural instability and creep resistance of XD TiAl alloys
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Effect of initial microstructure on microstructural instability and creep resistance of XD TiAl alloys

机译:初始显微组织对XD TiAl合金显微组织不稳定性和抗蠕变性的影响

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摘要

A number of lamellar structures were produced in XD TiAl alloys (Ti-45 at. pct and 47 at. pct Al-2 at. pct Nb-2 at. pct Mn+0.8 vol pct TiB2) by selected heat treatments. During creep deformation, microstructural degradation of the lamellar structure was characterized by coarsening and spheroidization, resulting in the formation of fine globular structures at the grain boundaries. Grain boundary sliding (GBS) was thought to occur in local grains with a fine grain size, further accelerating the microstructural degradation and increasing the creep rate. The initial microstructural features had a great effect on microstructural instability and creep resistance. Large amounts of equiaxed γ grains hastened dynamic recrystallization, and the presence of fine lamellae increased the susceptibility to deformation-induced spheroidization. However, the coarsening and spheroidization were suppressed by stabilization treatments, resulting in better creep resistance than the microstructures without these treatments. Furthermore, well-interlocked grain boundaries with lamellar incursions were effective in restraining the onset of GBS and microstructural degradation. In the microstructures with smooth grain boundaries, a fine lamellar spacing significantly lowered the minimum creep rate but rapidly increased the tertiary creep rate for the 45 XD alloy. For the 47 XD alloy, well-interlocked grain boundaries dramatically improved the creep resistance of nearly and fully lamellar (FL) structures, in spite of the presence of coarse lamellar spacing or equiaxed γ grains. However, it may not be feasible to produce a microstructure with both a fine lamellar spacing and well-interlocked grain boundaries. If that is the case, it is suggested that the latter feature is more beneficial for creep resistance in XD TiAl alloys with relatively fine grains.
机译:通过选择热处理,在XD TiAl合金中产生了许多层状结构(Ti-45 at。pct和47 at。pct Al-2 at。pct Nb-2 at。Mn + 0.8 vol.t TiB2 ) 。在蠕变变形过程中,层状组织的微观结构退化以粗化和球化为特征,导致在晶界处形成细小的球状结构。认为晶界滑动(GBS)发生在具有细晶粒尺寸的局部晶粒中,从而进一步加速了微观结构的退化并提高了蠕变速率。初始的微观结构特征对微观结构的不稳定性和抗蠕变性具有很大的影响。大量等轴γ晶粒加速了动态再结晶,并且细小薄片的存在增加了对形变诱导球化的敏感性。然而,通过稳定化处理抑制了粗化和球化,与未进行这些处理的微结构相比,具有更好的抗蠕变性。此外,与层状侵入的良好互锁的晶界有效地抑制了GBS的发生和微观结构的退化。在具有光滑晶界的微结构中,细小的层状间距显着降低了45 XD合金的最小蠕变速率,但迅速提高了第三蠕变速率。对于47 XD合金,尽管存在较粗的层状间距或等轴γ晶粒,但良好互锁的晶界可显着改善近乎完全层状(FL)结构的抗蠕变性。然而,产生具有良好的层状间距和良好互锁的晶界的微观结构可能是不可行的。如果是这种情况,则建议后者的特征对于具有相对细晶粒的XD TiAl合金的抗蠕变性更为有利。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2006年第10期|3149-3159|共11页
  • 作者单位

    the Graduate School of Environmental Studies Tohoku University 980-8579 Aobaku Sendai Japan;

    the Graduate School of Environmental Studies Tohoku University 980-8579 Aobaku Sendai Japan;

    the Structures and Materials Performance Laboratory Institute for Aerospace Research National Research Council Canada K1A 0R6 Ottawa ON Canada;

    the Structures and Materials Performance Laboratory Institute for Aerospace Research National Research Council Canada K1A 0R6 Ottawa ON Canada;

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