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A condensed phase model of the initial Al/CuO reaction stage to interpret experimental findings

机译:Al / CuO反应初始阶段的凝聚相模型,用于解释实验结果

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摘要

A model based uniquely on condensed phase reactions coupled with the thermal equation is developed to study the initiation and early stage of the redox reaction in Al/CuO nanothermites. It considers the effect of a wetting contact angle between Al and CuO particles, which may be induced by sintering mechanisms and/or the synthesis method. In order to validate the model, two published experiments are reproduced in silico. Results provide the first quantification of: (i) how sintering affects the initiation of Al/CuO nanoparticle mixtures, depending on experimental conditions, (ii) the extent to which condensed phase mechanisms dominate gas-mediated reactions in the initiation process, two subjects that have been highly debated in the literature. It was found that initiation appears more strongly affected by sintering when particles are exposed to an ultra-short and intense heat pulse (similar to 10(11) K s(-1)) than those exposed to a lower heating rate (similar to 10(5) K s(-1)). Additionally, calculations show that sintering may cause a drastic decrease in the initiation delay (down to the ns regime) when using CuO nanoparticles below 50 nm in diameter that can be brought to melting temperature through optical absorption. Finally, the role of gas-surface versus condensed phase reactions in the Al/CuO initiation process is evaluated theoretically. Initiation through condensed phase reactions, while slightly faster and more efficient, exhibits a comparable timescale (similar to 1-2 ms) to initiation through gas-surface reactions, providing clear evidence for the contribution of both during the initiation phase.
机译:建立了一个独特的基于凝聚相反应和热方程的模型,以研究Al / CuO纳米体中氧化还原反应的起始和早期阶段。它考虑了Al和CuO颗粒之间的润湿接触角的影响,这可能是由烧结机理和/或合成方法引起的。为了验证模型,在计算机上复制了两个已发布的实验。结果首次量化:(i)烧结如何影响Al / CuO纳米颗粒混合物的引发,具体取决于实验条件;(ii)凝聚相机制在引发过程中主导气体介导反应的程度,这是两个主题在文献中受到了激烈的争论。已发现,当颗粒暴露于超短而强烈的热脉冲(类似于10(11)K s(-1))时,与暴露于较低加热速率的颗粒(类似于10)相比,引发似乎受烧结影响更大。 (5)K s(-1))。另外,计算表明,当使用直径小于50 nm的CuO纳米颗粒时,烧结可能会导致引发延迟(降至ns态)急剧下降,并且可以通过光吸收使其达到熔化温度。最后,从理论上评估了在Al / CuO引发过程中气体表面反应与凝聚相反应的作用。通过凝聚相反应引发的反应虽然速度更快,效率更高,但与通过气体表面反应引发的反应相比却具有可比的时间范围(约1-2毫秒),从而清楚地证明了两者在引发阶段的贡献。

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