论文标题

在楔形区结构的演变中,楔形斜斜爆炸与水雾流

On the evolutions of induction zone structure in wedge-stabilized oblique detonation with water mist flows

论文作者

Guo, Hongbo, Xu, Yong, Li, Shuying, Zhang, Huangwei

论文摘要

使用Eulerian-Lagrangian方法研究了化学计量和燃料 - 叶子H2/O2/AR混合物中的二维楔形斜率爆炸。研究了水滴质量流量对感应区流量和化学结构的影响以及水蒸气的物理 /化学作用。结果表明,对于化学计量和燃料叶子混合物,倾斜爆炸波(ODW)都可以在一系列水量流量中。随着液滴质量流量的增加,感应区域中的幻影前线被扭曲并变成曲折,但是从斜冲击波(OSW)到ODW的过渡模式不会改变。此外,由于诱导区域的液滴蒸发和水蒸气稀释,引发和过渡位置单调增加,OSW和ODW角度下降。对于燃油液混合物,特征位置对液滴载荷变化的敏感性是温和的,这意味着更好的内在稳定性和对即将到来的水滴的弹性。通过化学爆炸方法分析,研究了铅冲击和反应前沿之间的气态混合物的化学爆炸性。平滑的转变是由紧邻弯曲冲击后面的气体的高度增强的反应性引起的,这是由压缩波加强的。尽管如此,突然的转变是由于感应区和OSW的事先产生的爆炸波之间的相交引起的。此外,通过蒸发液滴降低感应带中的气体化学反应性的程度通常低于化学计量气体的程度。同样,液滴的水蒸气的物理和化学作用会导致ODW启动和形态的显着差异。

Two-dimensional wedge-stabilized oblique detonations in stoichiometric and fuel-lean H2/O2/Ar mixtures with water mists are studied with Eulerian-Lagrangian method. The effects of water droplet mass flow rate on flow and chemical structures in the induction zone, as well as physical / chemical roles of water vapor, are investigated. The results show that the oblique detonation wave (ODW) can stand in a range of water mass flow rates for both stoichiometric and fuel-lean mixtures. With increased droplet mass flow rate, the deflagration front in the induction zone is distorted and becomes zigzagged, but the transition mode from oblique shock wave (OSW) to ODW does not change. Moreover, the initiation and transition locations monotonically increase, and the OSW and ODW angles decrease, due to droplet evaporation and water vapor dilution in the induction region. For fuel-lean mixtures, the sensitivity of characteristic locations to the droplet loading variations is mild, which signifies better intrinsic stability and resilience to the oncoming water droplets. The chemical explosiveness of the gaseous mixture between the lead shock and reaction front is studied with the chemical explosive method analysis. The smooth transition is caused by the highly enhanced reactivity of the gas immediately behind the curved shock, intensified by the compression waves. Nonetheless, the abrupt transition results from the intersection between the beforehand generated detonation wave in the induction zone and OSW. Besides, the degree to which the gas chemical reactivity in the induction zone for fuel-lean mixtures is reduced by evaporating droplets is generally lower than that for stoichiometric gas. Also, physical and chemical effects of water vapor from liquid droplets result in significant differences in ODW initiation and morphology.

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