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首页> 外文期刊>International Journal for Numerical Methods in Fluids >Low dissipative high-order numerical simulations of supersonic reactive flows
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Low dissipative high-order numerical simulations of supersonic reactive flows

机译:超音速反应流的低耗散高阶数值模拟

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摘要

We report the performance of a newly developed low dissipative sixth-order spatial and fourth-order temporal scheme (J. Comput. Phys. 1999; 150:199; RIACS Report 01.01, NASA Ames Research Centre, October 2000) for multiscale supersonic reactive flows that contain shock waves. The accuracy and efficiency of the scheme are compared with a low-dissipative fifth-order weighted ENO (WENO) scheme (ICASE Report No. 95-73, 1995). This paper confirms and complements the grid convergence study of Sjogreen and Yee where a complex shock/shear/boundary-layer interactions model was also included. A 2D viscous flow consisting of a planar Mach 2 in air interacting with a circular zone of hydrogen bubbles in two different initial configurations is considered. The two initial configurations are a single bubble and two non-aligned bubbles. The gradient in pressure across the shock in conjunction with the gradient in fluid density between the air and hydrogen produce a large increase in vorticity as the shock passes through the hydrogen fuel. As can be seen in the study of Don and Quillen (J. Comput. Phys. 1995; 122:244), Don and Gottlieb (SIAM J. Numer. Anal. 1998; 35:2370) and the present grid convergence study, the size, spacing and velocity of the fine-scale vortical structures are very difficult to accurately simulate numerically. The difficulty in obtaining well-resolved multiscale combustion flows by all methods considered will be illustrated.
机译:我们报告了新开发的低耗散六阶空间和四阶时间方案(J. Comput。Phys。1999; 150:199; RIACS报告01.01,NASA Ames研究中心,2000年10月)的性能,用于多尺度超音速反应流包含冲击波。将该方案的准确性和效率与低耗散五阶加权ENO(WENO)方案进行了比较(ICASE报告第95-73号,1995年)。本文证实并补充了Sjogreen和Yee的网格收敛性研究,其中还包括复杂的冲击/剪切/边界层相互作用模型。考虑了二维粘性流,该粘性流由空气中的平面马赫数2与两个不同初始配置中的氢气泡的圆形区域相互作用组成。两种初始配置是一个气泡和两个不对齐的气泡。随着冲击通过氢燃料,冲击中的压力梯度与空气和氢气之间的流体密度梯度共同导致涡度大大增加。从Don和Quillen(J. Comput。Phys。1995; 122:244),Don和Gottlieb(SIAM J. Numer。Anal。1998; 35:2370)的研究以及当前的网格收敛研究中可以看出精细尺度旋涡结构的尺寸,间距和速度很难精确地数值模拟。将说明通过所有考虑的方法获得良好解析的多尺度燃烧流的困难。

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