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Effect of Phase Transformation Conditions on the Microstructure and Tensile Properties of Ti-3Al-15Mo-3Nb-0.2Si Alloy

机译:相变条件对Ti-3Al-15Mo-3Nb-0.2Si合金组织和拉伸性能的影响

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摘要

The influence of phase transformation conditions (alpha/beta solution treatment plus aging, beta solution treatment plus aging, and beta solution treatment plus duplex aging) on the microstructure and tensile properties of Ti-3Al-15Mo-3Nb-0.2Si alloy was studied. Microstructure observation indicates that the primary alpha phase, which formed during alpha/beta solution treatment, can effectively limit the growth of the beta grains. The alloy was heat treated in the alpha/beta solution, which together with aging, formed smaller grains and finer precipitates in the sample and showed good tensile ductility with a 15% elongation. Aging temperatures from 450 to 600 A degrees C were used to study the effects of aging treatment on the alloy's microstructure and tensile properties. Precipitation phases appeared in particular positions (alpha(GB), alpha(WGB), and alpha(WM)) during the aging process which depended on phase transformation conditions and caused variations in the alloy's tensile properties. The alloy treated by duplex aging after beta solution had a higher ultimate tensile strength at 1370 MPa than that of other samples, resulting from the finer alpha precipitates transformed from the omega phases. The relationship of tensile properties and phase transformation was investigated by observing the material fracture, and small and dense dimples were seen in the tensile specimen treated by alpha/beta solution plus aging treatment which led to excellent ductility. Deep dimples in the duplex aging specimen resulted in beneficial high strength.
机译:研究了相变条件(α/β溶液加时效,β溶液加时效,β溶液加双时效)对Ti-3Al-15Mo-3Nb-0.2Si合金的组织和拉伸性能的影响。显微组织观察表明,在α/β溶液处理过程中形成的初级α相可以有效地限制β晶粒的生长。合金在α/β溶液中进行了热处理,与时效一起,在样品中形成了较小的晶粒和较细的沉淀,并显示出良好的拉伸延展性,伸长率为15%。使用450至600 A的时效温度来研究时效处理对合金的显微组织和拉伸性能的影响。在时效过程中,析出相出现在特定的位置(α(GB),α(WGB)和α(WM)),这取决于相变条件并导致合金的拉伸性能发生变化。在β溶液中经过双时效处理的合金在1370 MPa时具有比其他样品更高的极限抗拉强度,这是由于从ω相转变而来的较细的α沉淀所致。通过观察材料的断裂来研究拉伸性能和相变的关系,并且在经α/β溶液加时效处理的拉伸试样中观察到小而密实的凹坑,这导致了极好的延展性。双相时效试样中的深凹痕导致有益的高强度。

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