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纳米铝及其含能复合材料的分子燃烧特性:简要综述

Molecular Combustion Properties of Nanoscale Aluminum and Its Energetic Composites: A Short Review.

作者信息

Patel Vinay Kumar, Joshi Amit, Kumar Sanjeev, Rathaur Anand Singh, Katiyar Jitendra Kumar

机构信息

Department of Mechanical Engineering, Govind Ballabh Pant Institute of Engineering and Technology, Ghurdauri, Pauri Garhwal, Uttarakhand-246194, India.

Department of Mechanical Engineering, SRM Institute of Science and Technology, Kanchipuram, Tamil Nadu-603203, India.

出版信息

ACS Omega. 2020 Dec 22;6(1):17-27. doi: 10.1021/acsomega.0c03387. eCollection 2021 Jan 12.

Abstract

Remarkable progress has been established in the field of nanoenergetic materials (mixture of nanoscale fuel and oxidizer) since the advent of nanotechnology. Combustion of nanoenergetic materials depends on many key factors like synthesis route, equivalence ratio, morphology of constituents, and arrangements and handling of materials. For tailoring and tuning of the combustion properties of nanoenergetics, sound knowledge of the reaction mechanism is needed; in this review article a schematic study on the reaction mechanism is presented. By employing various routes and strategies in synthesizing and nanoengineering of the fuel or/and oxidizer to realize a significant evolution from normal physical mixing of nanopowders to the formulation of core/shell nanostructures, the nanoenergetic materials achieved the best ever combustion properties in terms of combustion reactivity, ignition sensitivity, energy density, etc. Overall, in this article, a critical state-of-the-art review of the existing literatures has been conducted to feature the main developments in the molecular combustion modeling of melting, oxidation, and core-shell reaction/diffusion of nanoaluminum and the molecular modeling of combustion reactivity and ignition sensitivity of nanoenergetic materials.

摘要

自纳米技术问世以来,纳米含能材料领域(纳米级燃料与氧化剂的混合物)已取得显著进展。纳米含能材料的燃烧取决于许多关键因素,如合成路线、当量比、组分形态以及材料的排列和处理方式。为了定制和调整纳米含能材料的燃烧特性,需要深入了解反应机理;在这篇综述文章中,我们对反应机理进行了示意性研究。通过在燃料或/和氧化剂的合成及纳米工程中采用各种途径和策略,实现了从纳米粉末的常规物理混合到核壳纳米结构的构建的重大进展,纳米含能材料在燃烧反应活性、点火敏感性、能量密度等方面达到了前所未有的最佳燃烧性能。总体而言,本文对现有文献进行了批判性的最新综述,以突出纳米铝熔化、氧化及核壳反应/扩散的分子燃烧建模以及纳米含能材料燃烧反应活性和点火敏感性分子建模的主要进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ba1/7807476/1fe1f4fc09ce/ao0c03387_0006.jpg

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