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首页> 外文期刊>Scientific reports. >Pre-Stressing Micron-Scale Aluminum Core-Shell Particles to Improve Reactivity
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Pre-Stressing Micron-Scale Aluminum Core-Shell Particles to Improve Reactivity

机译:预应力微米级铝核-壳颗粒以提高反应性

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The main direction in increasing reactivity of aluminum (Al) particles for energetic applications is reduction in their size down to nanoscale. However, Al nanoparticles are 30–50 times more expensive than micron scale particles and possess safety and environmental issues. Here, we improved reactivity of Al micron scale particles by synthesizing pre-stressed core-shell structures. Al particles were annealed and quenched to induce compressive stresses in the alumina passivation shell surrounding Al core. This thermal treatment was designed based on predictions of the melt-dispersion mechanism (MDM); a theory describing Al particle reaction under high heating rate. For all anneal treatment temperatures, experimental flame propagation rates for Al combined with nanoscale copper oxide (CuO) are in quantitative agreement with the theoretical predictions based on the MDM. The best treatment increases flame rate by 36% and achieves 68% of that for the best Al nanoparticles.
机译:提高用于能量应用的铝(Al)颗粒的反应性的主要方向是将其尺寸减小至纳米级。然而,铝纳米粒子比微米级粒子贵30–50倍,并且存在安全和环境问题。在这里,我们通过合成预应力核-壳结构提高了Al微米级颗粒的反应性。将铝颗粒退火并淬火以在围绕铝芯的氧化铝钝化壳中引起压缩应力。该热处理是基于对熔体分散机理(MDM)的预测而设计的;描述高加热速率下铝颗粒反应的理论。在所有退火处理温度下,Al与纳米级氧化铜(CuO)结合的实验火焰传播速率与基于MDM的理论预测在数量上吻合。最佳处理可将火焰率提高36%,并达到最佳Al纳米颗粒的68%。

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