KH-RT 模型在甲醇喷射雾化升腾火焰中的应用

Qinyin Wang, Wenyan Song, Zhengxin Lai, Yu Fu
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引用次数: 0

摘要

针对甲醇射流在同流气体升腾火焰中的雾化,利用 Saturne 程序,采用自主开发的 WAVE 模型和 KH-RT 模型模拟了射流柱的一次破裂和喷雾颗粒的雾化。此外,还利用非稳态小火焰模型模拟了燃烧过程。将计算出的火焰上升高度、液滴直径分布和速度分布与实验结果进行比较,证明雾化模型能够准确捕捉甲醇燃料的雾化过程。这种比较验证了雾化模型和燃烧模型的可靠性,表明它们具有很高的准确性。研究表明,甲醇燃料从喷嘴喷出后迅速扩散,形成锥形喷雾结构。高浓度的 OH 自由基位于 OH 自由基分布区域和甲醇分布区域的边界附近,并逐渐向甲醇射流的下游扩散。此外,燃料流速的增加导致火焰的升限高度降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of KH-RT model in lifting flame of methanol jet atomization
For the methanol jet atomization in a co-flow gas lifting flame, the self-developed WAVE model and KH-RT model were employed using the Saturne program to simulate the primary breakup of the jet column and the atomization of spray particles. Additionally, the unsteady flamelet model was utilized to simulate the combustion process. Comparing the calculated flame lifting height, droplet diameter distribution, and velocity distribution with experimental results demonstrates the atomization model’s ability to accurately capture the methanol fuel atomization process. This comparison verifies the reliability of both the atomization and combustion models, indicating their high accuracy. The study shows that upon injection from the nozzle, methanol fuel rapidly diffused, creating a cone-shaped spray structure. The high concentration of OH radicals is located close to the boundary between the regions of OH radical distribution and methanol distribution, gradually spreading downstream of the methanol jet. Furthermore, an increase in fuel flow rate resulted in a reduction in the flame’s lift height.
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