Numerical and Experimental Analyses of the Effect of Water Injection on Combustion of Mg-Based Hydroreactive Fuels

Shiyao Shao, Songchen Yue, Hong Qiao, Peijin Liu, Wen Ao
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Abstract

The energy release process of the Mg-based hydroreactive fuels directly affects the performance of water ramjet engines, and the burning rate is one of the key parameters of the Mg-based hydroreactive fuels. However, there is not enough in-depth understanding of the combustion process of Mg-based hydroreactive fuels within the chamber of water ramjet engines, and there is a lack of effective means of prediction of the burning rate. Therefore, this paper aims to examine the flame structure of Mg-based hydroreactive fuels with a high metal content and analyze the impact of the water injection velocity and droplet diameter on the combustion property. A combustion experiment system was designed to replicate the combustion of Mg-based hydroreactive fuels within water ramjet engines, and the average linear burning rate was calculated through the target line method. On the basis of the experiment, a combustion–flow coupling solution model of Mg-based hydroreactive fuels was formulated, including the reaction mechanism between Mg/H2O and the decomposition products from an oxidizer and binder. The model was validated through experimental results with Mg-based hydroreactive fuels at various pressures and water injection velocities. The mean absolute percentage error (MAPE) in the experimental results was less than 5%, proving the accuracy and validity of the model. The resulting model was employed for simulating the combustion of Mg-based hydroreactive fuels under different water injection parameters. The addition of water injection resulted in the creation of a new high-temperature region, namely the Mg/H2O non-premixed combustion region in addition to improving the radial diffusion of the flame. With the increasing water injection velocity, the characteristic distance of Mg/H2O non-premixed combustion region is decreased, which enhances the heat transfer to burning surface and accelerates the fuel combustion. The impact of droplet parameters was investigated, revealing that larger droplets enhance the penetration of the fuel-rich gas, which is similar to the effect of injection velocity. However, when the droplet size becomes too large, the aqueous droplets do not fully evaporate, resulting in a slight decrease in the burning rate. These findings enhance the understanding of the mechanisms behind the burning rate variation in Mg-based hydroreactive fuels and offer theoretical guidance for the optimal selection of the engine operating parameters.
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注水对镁基水反应燃料燃烧影响的数值和实验分析
镁基水反应燃料的能量释放过程直接影响水冲压发动机的性能,而燃烧速率是镁基水反应燃料的关键参数之一。然而,目前对镁基水反应燃料在水上冲压发动机舱内的燃烧过程还没有足够深入的了解,也缺乏有效的燃烧速率预测手段。因此,本文旨在研究高金属含量镁基水反应燃料的火焰结构,分析喷水速度和水滴直径对燃烧特性的影响。本文设计了一套燃烧实验系统来模拟镁基水活性燃料在水冲压喷气发动机内的燃烧,并通过目标线法计算了平均线性燃烧速率。在实验的基础上,建立了镁基水反应燃料的燃烧-流动耦合解模型,包括 Mg/H2O 与氧化剂和粘结剂分解产物之间的反应机理。该模型通过不同压力和注水速度下镁基水反应燃料的实验结果进行了验证。实验结果的平均绝对百分比误差 (MAPE) 小于 5%,证明了模型的准确性和有效性。所建立的模型被用于模拟不同注水参数下镁基氢活性燃料的燃烧。除了改善火焰的径向扩散外,增加注水还产生了一个新的高温区,即 Mg/H2O 非预混合燃烧区。随着注水速度的增加,Mg/H2O 非预混燃烧区的特征距离减小,从而增强了向燃烧表面的传热,加速了燃料的燃烧。研究了水滴参数的影响,发现较大的水滴会增强富燃料气体的穿透力,这与喷射速度的影响类似。然而,当液滴尺寸过大时,水液滴不能完全蒸发,导致燃烧速率略有下降。这些发现加深了人们对镁基水反应燃料燃烧速率变化背后机理的理解,并为发动机运行参数的优化选择提供了理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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