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NUMERICAL RESEARCH ON THE TOROIDAL SHOCK WAVE FOCUSING DETONATION INITIATION

机译:环形激波聚焦起爆的数值研究

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Pressure gain combustion (PGC) is considered to be a potential technology to increase the cycle efficiency of gas turbine. As one viable candidate for PGC, rotating detonation engine (RDE) draws more attention due to its significant advances in continuous mode of operation. In practical, one of the basic challenges for RDE application is to reliably initiate detonation wave. For this purpose, both detonation initiation mechanism and enhancement approach are urgently needed to be understood. In this work, a toroidal shock wave focusing detonation initiator is presented. On this basis, the two-dimensional numerical simulations are carried out to investigate the detonation initiation characteristics by using the toroidal shock wave focusing. All of the flame acceleration, shock wave focusing, detonation wave forming and propagation are analyzed in detail. The numerical results show that the toroidal shock wave focusing initiator developed in this study can rapidly realize the detonation initiation over a short distance and performs significantly better than the traditional smooth or obstructed tube based imitators under different operating conditions. Under the same operating condition, the novel developed initiator decreases time of 59.2% and distance of 84.7% for the smooth tube based initiator, and time of 52% and distance of 78.9% for the obstructed one. Besides, the multifields analysis indicates that both the local explosion induced by shock wave focusing in concave cavity and the entrainment vortex generated by shock wave and jet flame in front of diaphragm are important mechanisms to initiate detonation wave. The present study is expected to enhance the understanding of the physical mechanism of shock wave focusing detonation initiation and contribute to the development of detonation propulsion technology.
机译:压力增益燃烧(PGC)被认为是提高燃气轮机循环效率的一项潜在技术。作为PGC的可行选择之一,旋转爆震发动机(RDE)由于其在连续操作模式下的显着进步而备受关注。在实践中,RDE应用的基本挑战之一是可靠地引发起爆波。为此,迫切需要了解起爆机理和增强方法。在这项工作中,提出了环形冲击波聚焦爆轰引发器。在此基础上,利用环形冲击波聚焦进行了二维数值模拟,研究了爆炸起爆特性。详细分析了所有的火焰加速度,冲击波聚焦,爆炸波的形成和传播。数值结果表明,本研究开发的环形激波聚焦起爆器可以在短距离内快速实现起爆起爆,并且在不同的工作条件下,其性能明显优于传统的光滑或受阻管模仿器。在相同的工作条件下,新开发的引爆器对光滑管型引爆器的时间减少了59.2%,距离减少了84.7%,对阻塞的引爆器的时间减少了52%,距离减少了78.9%。另外,多场分析表明,凹腔内冲击波聚焦引起的局部爆炸以及膜片前的冲击波和射流火焰产生的夹带涡旋都是引发爆炸波的重要机制。本研究有望增进对冲击波聚焦爆轰起爆物理机理的理解,并为爆轰推进技术的发展做出贡献。

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