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Droplet burning rate enhancement of ethanol with the addition of graphite nanoparticles: Influence of radiation absorption

机译:石墨纳米粒子的加入提高乙醇的液滴燃烧速率:辐射吸收的影响

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A droplet stream flame was used to measure the burning rate of ethanol droplets with the addition of. graphite nanoparticles. Two particle sizes, 50 nm and 100 nm, were used for this study. Results indicate that as particle concentration is increased, the burning rate of the resulting nanofluid droplet also increases. The maximum enhancement of 62% was observed with the addition of 3 wt.% 50 nm graphite nanoparticles. To understand the burning-rate-enhancement phenomenon, a model was developed to estimate the radiation absorptivity by the hybrid droplet from the stream flame. The computational models determine the ratio of radiation retention by the entire depth of the fluid (volumetric absorptivity) using optical properties of both the particles and the fluid along with the penetration of radiation within the nanofluid using the well-known Monte Carlo algorithm that incorporates the aforementioned calculated optical properties of the nanofluid. Results indicate that radiation absorption by the hybrid droplet does play a role in the enhancement of burning rate. More importantly, the absorption is not uniform within the hybrid droplet. It is localized in the region near the droplet surface, promoting boiling at the droplet surface. This mechanism is believed to be responsible for the observed increased burning rate. (C) 2016 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:滴流火焰用于测量添加的乙醇滴的燃烧速率。石墨纳米粒子。本研究使用两种粒径,分别为50 nm和100 nm。结果表明,随着颗粒浓度的增加,所得纳米流体液滴的燃烧速率也增加。通过添加3重量%的50nm石墨纳米颗粒,观察到62%的最大增强。为了理解燃烧速率增强现象,开发了一个模型来估计来自流火焰的混合液滴的辐射吸收率。计算模型使用粒子和流体的光学特性以及辐射的渗透率(使用结合了纳米粒子的众所周知的蒙特卡洛算法)来确定粒子在整个流体深度(辐射吸收率)的辐射保留率。前述计算的纳米流体的光学性质。结果表明,混合液滴吸收的辐射确实在提高燃烧速率中起作用。更重要的是,混合液滴内的吸收不均匀。它位于液滴表面附近的区域,促进了液滴表面的沸腾。据信该机理是所观察到的燃烧速率增加的原因。 (C)2016年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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