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Combustion Characteristics of Physically Mixed 40 nm Aluminum/Copper Oxide Nanothermites Using Laser Ignition

机译:物理混合的40 nm铝/铜纳米氧化物的激光点火燃烧特性

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摘要

This paper reports on the ignition and flame propagation characteristics of aluminum/copper oxide (Al/CuO) nanothermite at different packing density, manufactured from 40 nm commercial Al and CuO nanopowders. A 3.5 W continuous wave laser was used to ignite the samples in argon at atmospheric pressure, and a high speed camera captured the flame propagation. The high speed images revealed that the fast laser heating creates significant material ablation, followed by heat transfer along the heated surface. The bulk ignition occurs near the edge of the top surface, followed by the self-sustained burning. Lightly pressed powders (90% porosity) ignited in ~0.1 ms and the burning front propagated at around 200 m/s, while the dense pellets (40–60% porosity) ignited in ~1 ms and the burning front propagated at around 10 m/s. These results indicate that the reaction mechanism changes from mass convection to heat diffusion with increasing the packing density. The ignition and burn speeds of these Al/CuO nanothermites at different equivalence ratios (ERs), along with SEM images of pre- and post-combustion, illustrate that the homogeneity of the mixture is a critical parameter for optimizing the performance. The Al rich mixtures show significantly lower ignition delays and higher burn speeds.
机译:本文报道了由40 nm工业Al和CuO纳米粉制得的不同堆积密度的铝/铜氧化物(Al / CuO)纳米铝粉的着火和火焰传播特性。使用3.5 W连续波激光在大气压下点燃氩气中的样品,并用高速相机捕获火焰传播。高速图像显示,快速的激光加热会产生明显的材料烧蚀,然后沿被加热的表面传热。大块点火发生在顶部表面的边缘附近,然后持续燃烧。轻压粉末(孔隙率90%)在约0.1毫秒内点燃,燃烧前沿以200 m / s的速度传播,而致密颗粒(孔隙率40-60%)在约1毫秒内点燃,燃烧的前沿在10 m左右传播。 / s。这些结果表明,随着堆积密度的增加,反应机理从质量对流转变为热扩散。这些Al / CuO纳米导热体在不同当量比(ER)下的着火和燃烧速度,以及燃烧前后的SEM图像表明,混合物的均匀性是优化性能的关键参数。富铝混合物显示出明显更低的点火延迟和更高的燃烧速度。

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