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Impinging Atomization Enhanced by Microjet Injection: effect, mechanism and optimization

机译:通过微射精注射抗雾化增强:效果,机制和优化

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Impinging atomization, which has been widely utilized in liquid rocket propulsion systems, is able to produce fine drops at a rated operation. In contrast, the atomization characteristics deteriorate under off design conditions when injection velocity comes to be slower. In the present study, for improving atomization characteristics at off design conditions, an effective technique is verified utilizing small amount of gas (microjet) injection. The microjet is supplied from a pressurized reservoir and is injected from the center of the liquid nozzles toward the impingement point. To clarify the flow field and the mechanism of the effect, experimental visualizations, drop size measurements and corresponding numerical analyses are carried out. It is elucidated that Sauter Mean Diameter (SMD) becomes one-tenth of the original SMD by the microjet injection with the amount of only 1% of liquid mass flow rate. The dominant non-dimensional number is found to be the ratio of the dynamic pressure (microjet/liquid jet) at the impingement point. The optimized atomization efficiency is achieved when the dynamic pressure ratio is approximately two.
机译:在液体火箭推进系统中被广泛用于抗雾化,能够在额定操作处产生微小的液滴。相比之下,当注射速度较慢时,雾化特性在偏离设计条件下恶化。在本研究中,为了改善偏离设计条件的雾化特性,利用少量气体(微射精)注射验证有效技术。微射精由加压贮存器供应,并从液体喷嘴的中心朝向撞击点注入。为了阐明流场和效果的机制,进行实验性可视化,跌落尺寸测量和相应的数值分析。阐明的是,通过微目亡喷射喷射,燃烧器平均直径(SMD)成为原始SMD的十分之一,其量仅为液体质量流速的1%。发现主导的非尺寸数是撞击点处​​的动态压力(微喷射/液体喷射)的比率。当动态压力比约为两个时,实现了优化的雾化效率。

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