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Role of Ignition Delay in Rotating Detonation Engine Performance and Operability

机译:点火延迟在旋转爆轰发动机性能和操纵性中的作用

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Rotating detonation engines (RDEs) represent a promising technology for improving the performance of existing aerospace combustors, but additional research is needed to characterize the operability limits and performance of these devices. In particular, contact surface burning and preignition of propellants can have a profound impact on both performance and limit-cycle detonation behavior, but the detailed mechanisms behind this behavior and the associated scaling with chamber pressure are not well understood. To this end, ignition delay times are computed using a constant pressure-enthalpy, homogeneous reactor model and compared with typical RDE cycle times and operating conditions. Results are presented for combustion in both oxygen and air at various pressures using hydrogen, methane, and natural gas fuels. Results suggest that preignition of propellants before wave arrival may dominate chamber behavior and prevent stable limit-cycle detonation from occurring with certain propellant combinations above certain pressures. The impact of liquid injection is also considered with respect to changes in mixed gas temperature and vaporization delay. Finally, a simplified assessment of the injector dynamic response and turbulent mixing environments are considered in an effort to demonstrate the significance of ignition delay relative to these other mechanisms. These results support observed high-pressure RDE operating behavior in tests conducted at Purdue University, and they provide insight into potential operability limits and scaling of RDEs to high operating pressures.
机译:旋转爆震发动机(RDE)代表着一种有前途的技术,可以改善现有航空航天燃烧器的性能,但是还需要进行其他研究来表征这些设备的可操作性极限和性能。特别是,接触表面的燃烧和推进剂的提前点火可能对性能和极限循环爆轰行为都有深远的影响,但是这种行为背后的详细机制以及与腔室压力相关的结垢尚未得到很好的理解。为此,使用恒定压力-焓,均质反应堆模型计算点火延迟时间,并将其与典型的RDE循环时间和运行条件进行比较。给出了使用氢气,甲烷和天然气燃料在不同压力下在氧气和空气中燃烧的结果。结果表明,在波到达之前,推进剂的提前点火可能会控制腔室行为,并防止在高于一定压力的某些推进剂组合下发生稳定的极限循环爆轰。相对于混合气体温度和汽化延迟的变化,还考虑了液体注入的影响。最后,考虑了对喷油器动态响应和湍流混合环境的简化评估,以证明点火延迟相对于其他机制的重要性。这些结果支持在普渡大学进行的测试中观察到的高压RDE操作行为,并且它们提供了对潜在的可操作性极限以及RDE缩放至高操作压力的见解。

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