论文标题

关于液滴蒸发和繁殖稳定性的数值研究正常两相旋转爆炸系统

Numerical Study on Droplet Evaporation and Propagation Stability in Normal-temperature Two-phase Rotating Detonation System

论文作者

Wen, Haocheng, Fan, Wenqi, Xu, Sheng, Wang, Bing

论文摘要

在正常温度下,煤油/富含氧气的空气的液滴两相旋转爆炸波(RDW)进行了数值研究。构建了两种没有入口混合部分(IMS)的燃烧器,以说明IMS对两相RDW的燃烧特性的影响。分析了在液滴蒸发上的后传播冲击后,预热区在IMS中的重要作用。进一步讨论了RDW传播稳定性对平均液滴直径D0的参数灵敏度。结果表明,液滴主要在燃烧器没有IMS的爆炸前后蒸发,并且反应热释放在很短的距离内完成,从而推动了爆炸波的连续传播。当D0逐渐增加时,液滴蒸发距离会增加,并且入射冲击与反应之间的耦合不断减弱,最终导致爆炸猝灭。在带有IMS的燃烧器中,通过RDW的后传播冲击,预热区接近接触表面。大量液滴在该区域蒸发,并在爆炸波前产生足够的燃料蒸气和氧化剂的混合物,以保持爆炸的繁殖。优先于没有IMS的燃烧器,液滴蒸发较少依赖于入口的高温气流,借助预热区,因此可以增强波传播稳定性,RDW可以维持较宽的D0范围。目前的分析提供了对两相旋转爆炸系统的新理解。

A numerical study is carried out on the droplet-laden two-phase rotating detonation wave (RDW) of kerosene/oxygen-enriched air at normal temperature. Two types of combustors without and with the inlet mixing section (IMS) are constructed to illustrate the effect of IMS on the combustion characteristics of two-phase RDW. The important role of the preheating zone in the IMS after the back-propagation shock on the droplet evaporation is analyzed. The parameter sensitivity of RDW propagation stability to the average droplet diameter d0 is further discussed. Results show that the droplets mainly evaporate after the detonation front in the combustor without IMS, and the reaction heat release is completed in a short distance, which propels continuous propagation of the detonation wave. When d0 gradually increases, the droplet evaporation distance increases, and the coupling between the incident shock and reaction is continuously weakened, finally resulting in the detonation quenching. In the combustor with IMS, a preheating zone is induced close to the contact surface by the back-propagation shock of the RDW. A large number of droplets evaporate in this zone, and generate sufficient mixture of fuel vapor and oxidizer in front of detonation wave to maintain the detonation propagation. Priority to the combustor without IMS, the droplet evaporation relies less on the inlet high-temperature airflow with the assistance of preheating zone, and thus the wave propagation stability can be enhanced and the RDW can sustain for a wider range of d0. The present analysis provides a new understanding of two-phase rotating detonation systems.

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