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Metal-based Reactive Nanomaterials

机译:金属基活性纳米材料

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Recent developments in materials processing and characterization resulted in the discovery of a new type of reactive materials containing nanoscaled metal components. The well-known high oxidation energies of metallic fuels can now be released very rapidly because of the very high reactive interface areas in such metal-based reactive nanomaterials. Consequently, these materials are currently being examined for an entire range of applications in energetic formulations inappropriate for conventional, micron-sized metal fuels having relatively low reaction rates. New application areas, such as reactive structural materials, are also being explored. Research remains active in manufacturing and characterization of metal-based reactive nanomaterials including elemental metal nanopowders and various nanocomposite material systems. Because of the nanometer scale of the individual particles, or phase domains, and because of the very high enthalpy of reaction between components of the nanocomposite materials, the final phase compositions, morphology, and thermodynamic properties of the reactive nanocomposite materials may be different from those of their micron-scaled counterparts. Ignition mechanisms in such materials can be governed by heterogeneous reactions that are insignificant for materials with less developed reactive interface areas. New combustion regimes are being observed that are affected by very short ignition delays combined with very high metal combustion temperatures. Current progress in this rapidly growing research area is reviewed and some potential directions for the future research are discussed.
机译:材料处理和表征方面的最新进展导致发现了一种新型的包含纳米级金属成分的反应性材料。由于这种基于金属的反应性纳米材料中非常高的反应性界面面积,现在可以非常迅速地释放出金属燃料众所周知的高氧化能。因此,目前正在针对不适合具有相对较低反应速率的常规微米级金属燃料的高能配方对这些材料的整个应用范围进行检查。还正在探索新的应用领域,例如反应性结构材料。在基于金属的反应性纳米材料(包括元素金属纳米粉和各种纳米复合材料系统)的制造和表征方面,研究仍然活跃。由于单个颗粒的纳米尺度或相域,并且由于纳米复合材料的组分之间的反应焓很高,因此反应性纳米复合材料的最终相组成,形态和热力学性质可能与那些不同。他们的微米级对应物。这类材料的点火机理可以通过异质反应来控制,这对于反应界面面积较小的材料而言并不重要。观察到新的燃烧方式会受到非常短的点火延迟和非常高的金属燃烧温度的影响。回顾了这个快速发展的研究领域中的当前进展,并讨论了未来研究的一些潜在方向。

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