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Effect of varying bilayer spacing distribution on reaction heat and velocity in reactive Al/Ni multilayers

机译:双层间距变化对反应性Al / Ni多层反应热和速度的影响

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摘要

Self-propagating reactions in Al/Ni nanostructured multilayer foils are examined both experimentally and computationally to determine the impact of variations in reactant spacing on reaction properties. Heats of reaction and reaction velocities have been characterized as a function of average bilayer spacing for sputter-deposited, single-bilayer foils (having a uniform bilayer spacing) and for dual-bilayer foils (having two different bilayer spacings that are labeled thick and thin). In the latter case, the spatial distribution of the thick and thin bilayers is found to have a significant effect on reaction velocity, with coarse distributions leading to much higher reaction velocities than fine distributions. Numerical simulations of reaction velocity match experimental data well for most spatial distributions, with the exception of very coarse distributions or distributions containing very small bilayer spacings. A simple model based on thermal diffusivities and reaction velocities is proposed to predict when the spatial distribution of thick and thin bilayers becomes coarse enough to affect reaction velocity. This combination of experiment and simulation will allow for more effective design and prediction of reaction velocities in both sputter-deposited and mechanically processed reactive materials with variable reactant spacings.
机译:通过实验和计算来检查Al / Ni纳米结构多层箔中的自蔓延反应,以确定反应物间距变化对反应性能的影响。反应热和反应速度已被表征为溅射沉积的单双层箔(具有均匀的双层间隔)和双层箔(具有两个不同的双层间隔,分别标记为厚和薄)的平均双层间隔的函数)。在后一种情况下,发现厚的双层和薄的双层的空间分布对反应速度有显着的影响,粗糙的分布导致比精细分布高得多的反应速度。对于大多数空间分布,反应速度的数值模拟与实验数据非常吻合,除了非常粗糙的分布或包含很小双层间距的分布。提出了一个基于热扩散率和反应速度的简单模型来预测厚双层和薄双层的空间分布何时变得足够粗糙以影响反应速度。实验和模拟的这种结合将允许在具有可变反应物间距的溅射沉积和机械加工的反应性材料中更有效地设计和预测反应速度。

著录项

  • 来源
    《Journal of Applied Physics》 |2009年第8期|205-213|共9页
  • 作者单位

    Department of Materials Science and Engineering, Johns Hopkins University, 3400 N. Charles St., Baltimore, Maryland 21218, USA;

    Department of Mechanical Engineering, United States Naval Academy, 121 Blake Rd., MS 11C, Annapolis, Maryland 21402, USA;

    Department of Materials Science and Engineering, Johns Hopkins University, 3400 N. Charles St., Baltimore, Maryland 21218, USA;

    Department of Materials Science and Engineering, Johns Hopkins University, 3400 N. Charles St., Baltimore, Maryland 21218, USA;

    Department of Mechanical Engineering, Johns Hopkins University, 3400 N. Charles St., Baltimore, Maryland 21218, USA;

    Department of Materials Science and Engineering, Johns Hopkins University, 3400 N. Charles St., Baltimore, Maryland 21218, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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