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Numerical study of three-dimensional detonation structure transformations in a narrow square tube: from rectangular and diagonal modes into spinning modes

机译:狭窄方管中三维爆轰结构转变的数值研究:从矩形和对角线模式到旋转模式

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Three-dimensional (3-D) detonation structure transformations from rectangular and diagonal modes into spinning modes in a narrow square tube are investigated by high-resolution simulation. Numerical simulations are performed with a Riemann solver of the HLLC-type, new cell-based structured adaptive mesh refinement data structure, high-order, parallel adaptive mesh refinement reactive flow code. A simplified one-step kinetic reaction model is used to reveal the 3-D detonation structure. The four different types of initial disturbances applied in the ZND profiles lead to the structures of rectangular in phase, rectangular out of phase, rectangular partial out of phase and diagonal, respectively, during the initial stages of detonation propagation. Eventually, all these detonation structures evolve into the self-sustained spinning detonations. The asymmetric disturbance leads to a stable spinning detonation much faster than the rest. The important features in the formation of spinning detonation are revealed using a 3-D visualization, and a remarkable qualitative agreement with experimental and numerical results is obtained with respect to the transverse wave dynamics and detonation front structures. The transverse wave collisions produce the unburnt gas pockets and the energy to sustain the detonation front propagation and distortion. The periodic pressure oscillation of front plays a complex role as it shifts the reaction zone structure with an accompanying change in the driving energy of transition and the detonation parameters which result in the more distorted front and the unstable detonation. Eventually, the unstable distorted detonation evolves into a spinning detonation.
机译:通过高分辨率模拟研究了在窄方管中从矩形和对角线模式到自旋模式的三维(3-D)爆轰结构转换。使用HLLC型的Riemann求解器进行数值模拟,这种新的基于单元的结构化自适应网格细化数据结构是高阶并行自适应网格细化反应流代码。简化的一步动力学反应模型用于揭示3D爆轰结构。在爆轰传播的初始阶段,在ZND剖面中施加的四种不同类型的初始扰动分别导致矩形同相,矩形异相,矩形部分异相和对角线的结构。最终,所有这些爆炸结构都演变成自持的旋转爆炸。不对称的扰动导致稳定的纺丝起爆比其他情况快得多。使用3-D可视化显示了旋转爆轰形成中的重要特征,并且在横向波动力学和爆轰前部结构方面获得了与实验和数值结果明显的定性一致性。横向波碰撞产生未燃烧的气穴和能量,以维持爆轰波前传播和变形。锋面的周期性压力振荡起着复杂的作用,因为它改变了反应区的结构,同时伴随着转变的驱动能量和爆轰参数的变化,从而导致了锋面更加扭曲和不稳定的爆轰。最终,不稳定的扭曲爆轰演变成旋转爆轰。

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