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Detonation diffraction in mixtures with various degrees of instability.

机译:混合物具有不同程度的不稳定性时的爆轰衍射。

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摘要

Planar laser induced fluorescence (PLIF) is widely used in combustion diagnostics but has only recently been successfully applied to detonation. The strong spatial variations in temperature, pressure, and background composition under these conditions influence the quantitative link between OH-number density and fluorescence intensity seen on images. Up to now, this has lead to uncertainties in interpreting the features seen on PLIF images obtained in detonations. A one-dimensional fluorescence model has been developed, which takes into account light sheet attenuation by absorption, collisional quenching, and changing absorption line shape. The model predicts the fluorescence profile based on a one-dimensional distribution in pressure, temperature, and mixture composition. The fluorescence profiles based on a calculated ZND detonation profile were found to be in good agreement with experiments.; The PLIF technique is used to study the diffraction process of a self-sustained detonation wave into an unconfined space through an abrupt area change. Simultaneous schlieren images enable direct comparison of shock and reaction fronts. Two mixture types of different effective activation energy theta are studied in detail, these represent extreme cases in the classification of detonation front instability and cellular regularity. Striking differences are seen in the failure mechanisms for the very regular H2-O2-Ar mixture (theta ∼ 4.5) and the highly irregular H2-N2O mixture (theta ∼ 9.4). Detailed image analysis quantifies the observed differences. Stereoscopic imaging reveals the complex three-dimensional structure of the transverse detonation and its location with respect to the shock front. The study is concluded by using the experimentally-obtained shock and reaction front profiles in a simplified model to examine the decoupling of the shock from the chemical reaction. The rapid increase in activation energy for the H2-O 2-Ar mixtures with decreasing shock velocity is proposed as an important new element in the analysis of diffraction for these mixture.
机译:平面激光诱导荧光(PLIF)被广泛用于燃烧诊断,但直到最近才成功地应用于爆炸。在这些条件下,温度,压力和背景成分的强烈空间变化会影响图像上看到的OH数密度和荧光强度之间的定量联系。迄今为止,在解释以爆轰获得的PLIF图像上看到的特征方面,尚存在不确定性。已经开发出一维荧光模型,该模型考虑了由于吸收,碰撞猝灭和改变吸收线形状而引起的光片衰减。该模型基于压力,温度和混合物成分的一维分布来预测荧光分布。发现基于计算的ZND爆轰曲线的荧光曲线与实验良好吻合。 PLIF技术用于研究自持爆炸波通过面积突然变化到无侧限空间的衍射过程。同时使用石纹图像可以直接比较冲击和反作用前沿。详细研究了两种具有不同有效活化能θ的混合物类型,它们代表了爆炸前锋不稳定性和细胞规则性分类中的极端情况。在非常规则的H2-O2-Ar混合物(θ约为4.5)和高度不规则的H2-N2O混合物(θ约为9.4)的破坏机理中看到了惊人的差异。详细的图像分析可量化观察到的差异。立体成像显示了横向爆轰的复杂三维结构及其相对于激波前沿的位置。通过在简化模型中使用实验获得的冲击波和反应前沿轮廓来检查冲击波与化学反应的去耦关系,可以得出结论。 H2-O 2-Ar混合物的活化能随着激波速度的降低而迅速增加,被认为是这些混合物的衍射分析中的重要新元素。

著录项

  • 作者

    Pintgen, Florian.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Engineering Aerospace.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 492 p.
  • 总页数 492
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空、航天技术的研究与探索;光学;
  • 关键词

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