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NUMERICAL STUDIES OF MULTI-CYCLE DETONATION INDUCED BY SHOCK FOCUSING

机译:冲击波诱发多周期爆轰的数值研究

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Shock focusing ignition techniques can avoid deflagration-to-detonation transition (DDT), which make pulse detonation engine (PDE) more efficient. Numerical simulations of an idealized pulse detonation engine consisting of axial inlet and circumferential inlet are presented in this paper. Using detailed hydrogen-air mixture chemical kinetic model, investigation on detonation direct initiation by shock focusing is done. Studies indicate that in initial static flow field, the regions of high temperature and pressure created by shock focusing can produce detonation at the condition of circumferential inlet Mach 2.4. The temperature and pressure of the focusing region is nearly 3000K and 6.3MPa. But in dynamic flow field, the high temperature and pressure created by shock wave focusing for an incident Mach number of 2.4 decrease to 1027K and 4.5MPa which cannot produce detonation. When the incident Mach number increases to 3.5, the transient temperature and pressure of the focusing region is nearly 3000K and 30MPa, which capable of initiating a detonation wave.
机译:冲击聚焦点火技术可以避免爆燃-爆轰过渡(DDT),从而使脉冲爆震引擎(PDE)更加高效。提出了由轴向进气道和圆周进气道组成的理想脉冲爆震发动机的数值模拟。利用详细的氢-空气混合物化学动力学模型,进行了冲击聚焦直接引爆的研究。研究表明,在初始静态流场中,由于冲击聚焦而产生的高温和高压区域会在圆周入口马赫数为2.4的条件下产生爆炸。聚焦区域的温度和压力接近3000K和6.3MPa。但是在动态流场中,冲击波聚焦产生的马赫数为2.4的高温和高压降低到1027K和4.5MPa,无法产生爆炸。当入射马赫数增加到3.5时,聚焦区域的瞬态温度和压力接近3000K和30MPa,这能够引发爆轰波。

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