...
首页> 外文期刊>The Journal of Chemical Physics >Linking molecular level chemistry to macroscopic combustion behavior for nano-energetic materials with halogen containing oxides
【24h】

Linking molecular level chemistry to macroscopic combustion behavior for nano-energetic materials with halogen containing oxides

机译:将分子级化学与具有卤素的氧化物的纳米高能材料的宏观燃烧行为联系起来

获取原文
获取原文并翻译 | 示例
           

摘要

Coupling molecular scale reaction kinetics with macroscopic combustion behavior is critical to understanding the influences of intermediate chemistry on energy propagation, yet bridging this multi-scale gap is challenging. This study integrates ab initio quantum chemical calculations and condensed phase density functional theory to elucidate factors contributing to experimentally measured high flame speeds (i.e., >900 m/s) associated with halogen based energetic composites, such as aluminum (Al) and iodine pentoxide (I _2O_5). Experiments show a direct correlation between apparent activation energy and flame speed suggesting that flame speed is directly influenced by chemical kinetics. Toward this end, the first principle simulations resolve key exothermic surface and intermediate chemistries contributing toward the kinetics that promote high flame speeds. Linking molecular level exothermicity to macroscopic experimental investigations provides insight into the unique role of the alumina oxide shell passivating aluminum particles. In the case of Al reacting with I_2O_5, the alumina shell promotes exothermic surface chemistries that reduce activation energy and increase flame speed. This finding is in contrast to Al reaction with metal oxides that show the alumina shell does not participate exothermically in the reaction.
机译:分子尺度的反应动力学与宏观燃烧行为的耦合对于理解中间化学对能量传播的影响至关重要,但是弥合这种多尺度的差距是具有挑战性的。这项研究整合了从头算量子化学计算和凝聚相密度泛函理论,阐明了与卤素基高能复合材料(如铝(Al)和五氧化二碘)相关的实验测量高火焰速度(即,> 900 m / s)的影响因素。我_2O_5)。实验表明,表观活化能与火焰速度之间存在直接关系,表明火焰速度直接受化学动力学影响。为此,第一原理模拟解决了关键的放热表面和中间化学物质,这些化学物质对促进高火焰速度的动力学有贡献。将分子水平的放热性与宏观实验研究联系起来,可以洞察氧化铝壳钝化铝颗粒的独特作用。在Al与I_2O_5反应的情况下,氧化铝壳会促进放热的表面化学作用,从而降低活化能并提高火焰速度。这一发现与铝与金属氧化物的反应相反,后者表明氧化铝壳没有放热地参与反应。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号