Experimental Study on the Influence of Microwave Energy Pulse Width and Duty Cycle on Evaporation and Ignition Characteristics of ADN-Based Liquid Propellant Droplets

Dezhao Yu, Jiale Yao, Jiafu Ma, Yangyang Hou, Shaoyun Zhang, Yusong Yu
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Abstract

This study investigates the evaporation and ignition characteristics of a single droplet of ammonium dinitramide (ADN)-based liquid propellant utilizing a waveguide resonant cavity device, in conjunction with a high-speed photographic imaging system and testing system. Experimental methods are employed to analyze the impact of microwave pulse width and duty cycle on the puffing and meicro-explosion phenomena of the droplet, as well as the delay time and duration of ignition. The experimental findings reveal that increasing the duty cycle enhances the ignition success rate and diminishes flame development time. Specifically, elevating the microwave duty cycle from 60% to 80% reduces the ignition delay time of the droplet from 132.8 ms to 88.1 ms, and the ignition duration from 23.1 ms to 19.9 ms. Furthermore, an increase in microwave energy pulse width expedites the combustion process of the flame and influences plasma generation. Increasing the pulse width of microwave energy from 20 µs to 40 µs prolongs the ignition delay time from 140.3 ms to 200.5 ms and extends the ignition duration from 56.7 ms to 77.8 ms. Additionally, it is observed that a higher duty cycle leads to a more pronounced puffing phenomenon that initiates earlier. In contrast, a higher pulse width results in a more pronounced puffing phenomenon that commences later. This study provides a thorough investigation into the microwave ignition mechanism of ADN-based liquid propellants, offering theoretical insights into the ignition and combustion stability of such propellants in microwave-assisted ignition systems.
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微波能量脉冲宽度和占空比对基于 ADN 的液体推进剂液滴的蒸发和点火特性的影响实验研究
本研究利用波导谐振腔装置,结合高速摄影成像系统和测试系统,研究了以二硝基胺(ADN)为基础的液体推进剂单个液滴的蒸发和点火特性。实验方法分析了微波脉冲宽度和占空比对液滴膨化和微爆现象以及点火延迟时间和持续时间的影响。实验结果表明,提高占空比可以提高点火成功率,缩短火焰发展时间。具体来说,将微波占空比从 60% 提高到 80%,可将液滴的点火延迟时间从 132.8 毫秒缩短到 88.1 毫秒,点火持续时间从 23.1 毫秒缩短到 19.9 毫秒。此外,微波能量脉宽的增加会加快火焰的燃烧过程,并影响等离子体的生成。微波能量脉冲宽度从 20 微秒增加到 40 微秒,点火延迟时间从 140.3 毫秒延长到 200.5 毫秒,点火持续时间从 56.7 毫秒延长到 77.8 毫秒。此外,我们还观察到,较高的占空比会导致更明显的膨化现象,并提前启动。与此相反,脉冲宽度越大,膨化现象越明显,开始时间越晚。这项研究深入探讨了基于 ADN 的液体推进剂的微波点火机制,为此类推进剂在微波辅助点火系统中的点火和燃烧稳定性提供了理论依据。
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