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Experimental research on a rotary-valved air-breathing pulse detonation engine

机译:旋转阀式呼吸脉冲爆震发动机的实验研究

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An experimental research on flame acceleration and deflagration-to-detonation transition (DDT) in an air-breathing pulse detonation engine was performed. The inner diameter of the detonation tube and pulse detonation engine overall length were 8.6 cm and 155 cm, respectively. A rotary-valve configuration was developed to control air-filling process. The stability and effectiveness of the rotary valve was investigated. Also, a control system was employed to support valve rotating, fuel supply and ignition timing accurately. Utilizing air as oxidizer as well as purge gas and kerosene as fuel, multi-cycle detonations in pulse detonation engine were conducted. Three DDT enhancement devices were used to examine their impacts on transition to detonation. Pressure transducers and ionization probes were used to measure pressures and flame velocities, respectively. This rotary-valved pulse detonation engine was capable of detonating fuel-air mixtures that successive detonations at 15 and 20 Hz were observed. By utilizing three DDT enhancement devices, the detonability of kerosene-air mixtures is remarkably promoted. The effectiveness of geometry shape of DDT enhancement approaches is investigated. The results represent that when DDT enhancement devices geometry shape as well as ignition frequency vary, the pressure and flame velocity, overpressure value and flame regime are different.
机译:进行了空气呼吸脉冲爆震发动机火焰加速和爆燃-爆轰过渡(DDT)的实验研究。爆震管的内径和脉冲爆震发动机的总长度分别为8.6 cm和155 cm。开发了旋转阀配置来控制充气过程。研究了旋转阀的稳定性和有效性。另外,采用了一个控制系统来精确地支持气门旋转,燃料供应和点火正时。以空气为氧化剂,以吹扫气和煤油为燃料,在脉冲爆震发动机中进行了多循环爆轰。使用三个DDT增强设备来检查它们对爆炸过渡的影响。压力传感器和电离探针分别用于测量压力和火焰速度。该旋转阀脉冲爆震发动机能够起爆燃料-空气混合物,观察到在15和20 Hz处连续爆震。通过使用三种DDT增强装置,可显着提高煤油与空气混合物的爆炸性。研究了滴滴涕增强方法的几何形状的有效性。结果表明,当滴滴涕增强装置的几何形状以及点火频率发生变化时,压力和火焰速度,超压值和火焰状态都不同。

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