The Synergistic Role of Mn and Zr/Ti in Producing Θ'/L12 Co-Precipitates in Al-Cu Alloys

J. Poplawsky, A. Shyam, L. Allard, Dongwon Shin, P. Shower, M. Chisholm
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Abstract

Microstructural stability is a critical factor to consider when designing new alloys for high-temperature applications. An Al-Cu alloy with Mn and Zr additions has recently been developed to withstand extended exposures of up to 350 °C. The addition of Mn in combination with Zr and their segregation to precipitate interfaces play a significant role in stabilizing the metastable θ' precipitates responsible for the alloy's hardness; however, adding Zr and Mn separately only improves the stability to 200 °C and 300 °C, respectively. To this end, the effect of the synergistic additions on interfacial structure and chemistry was studied in detail using atom probe tomography and scanning transmission electron microscopy for Al-Cu-Mn-Zr/Ti-containing alloys subjected to long-term annealing (up to 2,100 h) in the critical temperature range, 300 °C and 350 °C, to investigate the role of Zr/Ti in increasing the θ'-precipitate stability. The results reveal how the addition of Mn allows Zr to segregate to θ' interfaces and eventually create a θ'/Al3(Zrx,Ti1-x) L12 co-precipitate structure along the interface. The co-precipitate is highly stable, as shown by density functional theory calculations, and is a key factor that governs microstructural stability beyond 300 °C. This study reveals how solute additions with different stabilization mechanisms can work in concert to stabilize a desired microstructure, the results provide insights that can be applied to other high-temperature alloy systems.
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Mn和Zr/Ti在Al-Cu合金中产生Θ′/L12共析出相中的协同作用
显微组织稳定性是设计用于高温应用的新合金时要考虑的一个关键因素。最近开发了一种添加Mn和Zr的Al-Cu合金,可以承受高达350°C的长时间暴露。Mn与Zr的结合及其析出界面的偏析对稳定合金的亚稳θ′析出起重要作用;而单独添加Zr和Mn只能分别提高200°C和300°C的稳定性。为此,利用原子探针层析成像和扫描透射电镜对Al-Cu-Mn-Zr/Ti合金在300℃和350℃的临界温度范围内长期退火(长达2100 h)的界面结构和化学性质进行了详细研究,以探讨Zr/Ti在提高θ′-析出稳定性中的作用。结果揭示了Mn的加入如何使Zr向θ′界面偏析,并最终沿界面形成θ′/Al3(Zrx,Ti1-x) L12共析出结构。密度泛函理论计算表明,共析出物高度稳定,是300°C以上微观结构稳定性的关键因素。该研究揭示了溶质添加与不同稳定机制如何协同工作以稳定所需的微观结构,结果提供了可应用于其他高温合金体系的见解。
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