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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Effect of metal oxide nanostructures on the explosive property of metastable intermolecular composite particles
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Effect of metal oxide nanostructures on the explosive property of metastable intermolecular composite particles

机译:金属氧化物纳米结构对亚稳态分子间复合颗粒炸药性能的影响

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摘要

The fineness of reactants, degree of intermixing and interfacial contact area between fuel and oxidizer comprising of metastable intermolecular composite (MIC) particles are important factors to determine their overall kinetics of bμming process. Here, we demonstrate a viable method for enhancing the explosive property of MICs by tailoring the nanostructures of oxidizer located in close proximity to fuel nanoparticles. The measured pressurization rate for a specific sample of solid Al nanoparticle (fuel)-porous CuO nanowire (oxidizer) MICs exploded in a closed vessel was found to be increased by a factor of -10 compared with that for solid Al nanoparticle-solid CuO nanoparticle MICs. In addition, with the assistance of intensive sonication energy, the fabricated porous oxidizer nanowires were disintegrated into oxidizer nanoparticles, which considerably reduced the pressurization rate when they were ignited with fuel nanoparticles. This suggests that the morphology of oxidizer nanostructures from solid nanoparticles (i.e. 0-D) to porous nanowires (i.e. 1-D) play a key role in significantly changing the interfacial contact area with fuel nanoparticles so that nascent oxygen can be produced effectively for promoting the explosive property of the fuel nanoparticles.
机译:反应物的细度,混合程度以及燃料与氧化剂之间的界面接触面积(由亚稳态分子间复合材料(MIC)颗粒组成)是决定其烧结过程整体动力学的重要因素。在这里,我们展示了一种可行的方法,可通过定制靠近燃料纳米颗粒的氧化剂纳米结构来增强MIC的爆炸性。发现在密闭容器中爆炸的固体Al纳米颗粒(燃料)-CuO纳米线(氧化剂)MIC的特定样品的测得的加压速率与固体Al纳米颗粒-固体CuO纳米颗粒相比增加了-10倍MIC。另外,借助于高强度的超声能,将制造的多孔氧化剂纳米线分解成氧化剂纳米粒子,这在用燃料纳米粒子点火时大大降低了加压速率。这表明从固体纳米颗粒(即0-D)到多孔纳米线(即1-D)的氧化剂纳米结构的形态在显着改变与燃料纳米颗粒的界面接触面积方面起着关键作用,从而可以有效地产生新生的氧气以促进燃料纳米颗粒的爆炸性。

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