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Coupled Mechanisms of Precipitation and Atomization in Burning Nanofluid Fuel Droplets

机译:燃烧纳米流体燃料液滴的沉淀和雾化耦合机理

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摘要

Understanding the combustion characteristics of fuel droplets laden with energetic nanoparticles (NP) is pivotal for lowering ignition delay, reducing pollutant emissions and increasing the combustion efficiency in next generation combustors. In this study, first we elucidate the feedback coupling between two key interacting mechanisms, namely, secondary atomization and particle agglomeration; that govern the effective mass fraction of NPs within the droplet. Second, we show how the initial NP concentration modulates their relative dominance leading to a master-slave configuration. Secondary atomization of novel nanofuels is a crucial process since it enables an effective transport of dispersed NPs to the flame (a pre-requisite condition for NPs to burn). Contrarily, NP agglomeration at the droplet surface leads to shell formation thereby retaining NPs inside the droplet. In particular, we show that at dense concentrations shell formation (master process) dominates over secondary atomization (slave) while at dilute particle loading it is the high frequency bubble ejections (master) that disrupt shell formation (slave) through its rupture and continuous outflux of NPs. This results in distinct combustion residues at dilute and dense concentrations, thereby providing a method of manufacturing flame synthesized microstructures with distinct morphologies.
机译:了解载有高能纳米颗粒(NP)的燃料滴的燃烧特性对于降低点火延迟,减少污染物排放并提高下一代燃烧器的燃烧效率至关重要。在这项研究中,首先我们阐明了两个关键相互作用机制之间的反馈耦合,即二次雾化和粒子团聚。控制液滴内NP的有效质量分数。其次,我们展示了初始NP浓度如何调节它们的相对优势,从而形成主从配置。新型纳米燃料的二次雾化是至关重要的过程,因为它可以将分散的NP有效地运输到火焰(NP燃烧的前提条件)。相反,液滴表面的NP团聚导致形成壳,从而将NP保留在液滴内部。特别是,我们表明,在高浓度下,壳形成(主过程)在二次雾化(从动)中占主导地位,而在稀颗粒装载时,高频气泡喷射(主)通过其破裂和连续流出破坏了壳形成(从动)。 NP。这导致在稀浓度和浓浓度下截然不同的燃烧残余物,从而提供一种制造具有截然不同形态的火焰合成微观结构的方法。

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