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Effects of nano-Ag on the combustion process of Al-CuO metastable intermolecular composite

机译:纳米银对Al-CuO亚稳分子间复合材料燃烧过程的影响

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Effects of nano-Ag with high thermal conductivity on the combustion wave behavior of Al-CuO MIC (metastable intermolecular composite) are studied in this paper by incorporating Al-CuO MIC with nano-Ag particles in different weight proportions. The physical and chemical characteristics of Al-CuO MIC are determined using scanning electron microscope (SEM), X-ray diffraction (XRD) and differential scanning calorimeter (DSC). The combustion wave behavior is identified by high-speed video recording (HSVR). The experimental observations confirm that the presence of nano-Ag particles improves the heat transfer efficiency. With nano-Ag increasing from 1 wt% to 10 wt%, the first exothermic peak temperature decreases from 607.8℃ to 567.6℃, and average combustion speed (ACS) increases at first and then reduces. The most suitable amount of nano-Ag is 2 wt% with the ACS and instantaneous combustion velocity on the order of 954.0 m/s, 1562.5 m/s. Moreover, heat transfer mechanisms in the combustion process of Al-CuO MIC are better understood, especially by distinguishing conduction from convection during the combustion propagation. Furthermore, three stages (ignition, acceleration and steady combustion) of reactive propagation are observed in the combustion process. And the corresponding dominative heat transfer mechanisms in the three stages are conduction, conduction to convection transition, and convection, respectively.
机译:本文通过将Al-CuO MIC与不同重量比的纳米Ag颗粒掺合,研究了具有高导热率的纳米Ag对Al-CuO MIC(可转移分子间复合材料)的燃烧波行为的影响。使用扫描电子显微镜(SEM),X射线衍射(XRD)和差示扫描量热仪(DSC)确定Al-CuO MIC的物理和化学特性。通过高速视频记录(HSVR)识别燃烧波的行为。实验观察证实,纳米银颗粒的存在改善了热传递效率。随着纳米银从1 wt%增加到10 wt%,第一个放热峰温度从607.8℃下降到567.6℃,平均燃烧速度(ACS)先增加然后降低。纳米银的最合适量为2 wt%,ACS和瞬时燃烧速度分别为954.0 m / s,1562.5 m / s。此外,通过在燃烧传播过程中将传导与对流区分开来,可以更好地理解Al-CuO MIC燃烧过程中的传热机理。此外,在燃烧过程中观察到反应传播的三个阶段(点火,加速和稳定燃烧)。在这三个阶段中,相应的主导传热机制分别是传导,传导至对流过渡和对流。

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