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Cost-Effective Production of High-Property Titanium Alloy from Powder

机译:从粉末的高性能钛合金生产经济高效生产

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摘要

Blended Elemental Powder Metallurgy is a very attractive method for producing titanium alloys, which can be formed near net shape and have freedom in composition selection. However applications are still limited due to affordability. In this paper, we will discuss a possible cost-effective route, combining vacuum sintering, extrusion, and heat treatment, to produce titanium alloys with similar or better mechanical properties than that of ingot metallurgy titanium alloys. The as-processed material with an oxygen content of 0.34 ± 0.005 wt.% was subjected to heat treatments such as β annealing plus ageing and α+β annealing without ageing to attain a typical lamellar/Widmanstätten/basketweave type structure with a large variation in terms of the microstructural features such as grain size, colony size, inter-lamellar spacing, thickness of grain boundary α, and size of individual lamellar. From mechanical property data attained here, it was apparent that annealing in high α-β region gave a much better combination of mechanical properties: yield strength (860-902 MPa), ultimate tensile strength (1060-1084 MPa) and ductility/plastic strain (11.5-13.6%). The hardness values of heat treated material varied between 346-376 Vickers hardness (36.8-44.5 Rockwell hardness).
机译:混纺元素粉末冶金是一种非常有吸引力的生产钛合金的方法,可以在净形状附近形成并在组成选择中具有自由度。然而,由于可负担性仍然有限。在本文中,我们将讨论一种可能的经济效率途径,将真空烧结,挤出和热处理结合,生产具有与铸锭冶金钛合金相似或更好的机械性能的钛合金。氧含量为0.34±0.005重量%的氧含量的材料进行热处理,例如β退火加老化和α+β退火,而无老化以获得具有大变化的典型层状层/瓦姆曼特茨/篮网织物结构微观结构特征的术语,如晶粒尺寸,菌落尺寸,层间间距,晶界厚度α,以及单个层状的尺寸。从这里获得的机械性质数据来看,显而易见的是,高α-β区域的退火产生了更好的机械性能组合:屈服强度(860-902MPa),最终拉伸强度(1060-1084MPa)和延展性/塑料应变(11.5-13.6%)。热处理材料的硬度值变化在346-376维氏硬度之间(罗克韦尔硬度36.8-44.5)。

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