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Phase transformation strengthening of high-temperature superalloys

机译:高温合金的相变强化

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摘要

Decades of research has been focused on improving the high-temperature properties of nickel-based superalloys, an essential class of materials used in the hot section of jet turbine engines, allowing increased engine efficiency and reduced CO2 emissions. Here we introduce a new ‘phase-transformation strengthening' mechanism that resists high-temperature creep deformation in nickel-based superalloys, where specific alloying elements inhibit the deleterious deformation mode of nanotwinning at temperatures above 700 °C. Ultra-high-resolution structure and composition analysis via scanning transmission electron microscopy, combined with density functional theory calculations, reveals that a superalloy with higher concentrations of the elements titanium, tantalum and niobium encourage a shear-induced solid-state transformation from the γ′ to η phase along stacking faults in γ′ precipitates, which would normally be the precursors of deformation twins. This nanoscale η phase creates a low-energy structure that inhibits thickening of stacking faults into twins, leading to significant improvement in creep properties.
机译:数十年来的研究一直集中在改善镍基高温合金的高温性能上,镍基高温合金是喷气涡轮发动机热段中必不可少的材料,可提高发动机效率并减少CO2排放。在这里,我们介绍了一种新的“相变强化”机制,该机制可抵抗镍基高温合金中的高温蠕变变形,其中特定的合金元素抑制了700 C以上温度下纳米孪晶的有害变形模式。通过扫描透射电子显微镜进行超高分辨率的结构和成分分析,并结合密度泛函理论计算,结果表明,具有更高浓度的钛,钽和铌元素的超合金促进了γ'引起的剪切诱导的固态转变沿γ'相中的堆积断层向η相转变,这通常是形变孪晶的前兆。这种纳米级η相产生了一种低能结构,该结构抑制了将叠层断层加厚为双晶,从而显着改善了蠕变性能。

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