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Detonation diffraction through an abrupt area expansion.

机译:通过突然的面积扩展进行爆轰衍射。

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The problem of a self-sustaining detonation wave diffracting from confinement into an unconfined space through an abrupt area change is characterized by the geometric scale of the confinement and the reaction scale of the detonation. Previous investigations have shown that this expansion associated with a detonation transitioning from planar to spherical geometry can result in two possible outcomes depending upon the combustible mixture composition, initial thermodynamic state, and confining geometry. Competition between the energy release rate and expansion rate behind the diffracting wave is crucial. The sub-critical case is characterized by the rate of expansion exceeding the energy release rate. As the chemical reactions are quenched, the shock wave decouples from the reaction zone and rapidly decays. The energy release rate dominates the expansion rate in the super-critical case, maintaining the coupling between the shock and reaction zone which permits successful transition across the area change. A critical diffraction model has been developed in the present research effort from which the initial conditions separating the sub-critical and super-critical cases can be analytically determined. Chemical equilibrium calculations and detonation simulations with validated detailed reaction mechanisms provide the model input parameters. Experiments over a wide range of initial conditions with single- and multi-sequence shadowgraphy and digital chemiluminescence imaging support the model derivation and numerical calculations. Good agreement has been obtained between the critical diffraction model and experimental results.
机译:通过约束的几何尺度和爆炸的反应尺度来表征自维持的爆炸波通过突然的面积变化而从约束衍射到无限空间的问题。先前的研究表明,这种爆炸与从平面几何形状过渡到球形几何形状的爆炸有关,可导致两种可能的结果,具体取决于可燃混合物的成分,初始热力学状态和约束几何形状。衍射波背后的能量释放率和膨胀率之间的竞争至关重要。亚临界情况的特征在于膨胀率超过能量释放率。随着化学反应的猝灭,冲击波从反应区解耦并迅速衰减。在超临界情况下,能量释放速率决定了膨胀速率,从而保持了冲击区与反应区之间的耦合,从而允许成功地在整个面积变化范围内过渡。在当前的研究工作中已经开发了临界衍射模型,从中可以解析地确定将亚临界和超临界情况分开的初始条件。具有已验证的详细反应机理的化学平衡计算和爆轰模拟提供了模型输入参数。使用单序列和多序列阴影摄影和数字化学发光成像在各种初始条件下进行的实验支持模型推导和数值计算。临界衍射模型与实验结果之间已经取得了很好的一致性。

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