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Investigation of cellular detonation structure formation via linear stability theory and 2D and 3D numerical simulations

机译:线性稳定性理论和2D和3D数值模拟对细胞爆炸结构形成的研究

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Linear and nonlinear stages of the instability of a plane detonation wave (DW) and the subsequent process of formation of cellular detonation structure are investigated. A simple model with one-step irreversible chemical reaction is used. The linear analysis is employed to predict the DW front structure at the early stages of its formation. An emerging eigenvalue problem is solved with a global method using a Chebyshev pseudospectral method and the LAPACK software library. A local iterative shooting procedure is used for eigenvalue refinement. Numerical simulations of a propagation of a DW in plane and rectangular channels are performed with a shock capturing WENO scheme of 5th order. A special method of a computational domain shift is implemented in order to maintain the DW in the domain. It is shown that the linear analysis gives certain predictions about the DW structure that are in agreement with the numerical simulations of early stages of DW propagation. However, at later stages, a merger of detonation cells occurs so that their number is approximately halved. Computations of DW propagation in a square channel reveal two different types of spatial structure of the DW front, "rectangular" and "diagonal" types. A spontaneous transition from the rectangular to diagonal type of structure is observed during propagation of the DW.
机译:研究了平面爆震波(DW)的不稳定性的线性和非线性阶段和随后形成细胞爆炸结构的过程。使用具有一步不可逆化学反应的简单模型。采用线性分析来预测其形成的早期阶段的DW正面结构。使用Chebyshev Pseudtepectran方法和Lapack软件库的全局方法解决了新兴的特征值问题。本地迭代拍摄程序用于特征值改进。用5个顺序的冲击捕获Weno方案进行平面和矩形通道中DW的传播的数值模拟。实现了计算域移位的特殊方法,以便在域中维护DW。结果表明,线性分析给出了关于DW结构的某些预测,这些结构与DW传播的早期阶段的数值模拟一致。然而,在以后的阶段,发生爆炸细胞的合并,使得它们的数量大致减半。方频中DW传播的计算显示了DW前面,“矩形”和“对角线”类型的两种不同类型的空间结构。在DW的传播期间观察到从矩形到对角线类型的结构的自发过渡。

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