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Fractal structures of hydrodynamically unstable and diffusive-thermally unstable flames

机译:水动力不稳定和扩散热不稳定火焰的分形结构

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This paper discusses the fractal structure of a hydrodynamically unstable flame with the background of the risk assessment of an explosion hazard. An accidental gas explosion usually occurs in a large-scale quiescent combustible mixture. A spherical flame outwardly propagates from the ignition point, and the flame accelerates owing to hydrodynamic instability. From the viewpoint of risk assessment, it is essential to consider such an increase in flame speed because the damage of an explosion is significantly influenced by the flame speed. Because hydrodynamically unstable flames have fractal structures and the flame area (and hence the flame speed) can be estimated using the fractal dimension, it is important to know the fractal dimension of the flame under the condition of a potential accidental explosion. Three methods (a box-counting method, a Fourier analysis, and a method based on the scale dependence of the flame speed) are tested to calculate the fractal dimension of a purely hydrodynamically unstable flame that is neutral in terms of diffusive-thermal instability. These methods are applied to the numerical solution of the Sivashinsky equation, but they can be also used to the result of an ordinary CFD calculation. The fractal structure of a purely diffusive-thermally unstable flame, which is neutral in terms of hydrodynamic instability, is also studied for comparison. The results show that all the three methods yield consistent fractal dimensions for the hydrodynamically unstable flame, whereas the diffusive-thermally unstable flame does not exhibit fractal characters. This is because the former flame has a hierarchical structure, whereas wrinkles of a specific wavelength mainly grow in the latter flame. The dependence of the fractal dimension on the thermal expansion ratio is also discussed.
机译:本文以爆炸危险性风险评估为背景,讨论了流体动力学不稳定火焰的分形结构。意外的气体爆炸通常发生在大规模的静态可燃混合物中。球形火焰从点火点向外传播,并且由于流体动力不稳定,火焰加速。从风险评估的角度来看,必须考虑火焰速度的这种增加,因为爆炸的损害会受到火焰速度的显着影响。由于流体动力学不稳定的火焰具有分形结构,并且可以使用分形维数来估计火焰面积(因此可以估计火焰速度),因此,在潜在的意外爆炸条件下,了解火焰的分形维数很重要。测试了三种方法(盒计数法,傅立叶分析和基于火焰速度的比例依赖的方法),以计算在扩散热不稳定性方面为中性的纯流体力学不稳定火焰的分形维数。这些方法适用于Sivashinsky方程的数值解,但也可以用于普通CFD计算的结果。为了进行比较,还研究了纯扩散热不稳定火焰的分形结构,该分形结构在流体动力学不稳定方面是中性的。结果表明,这三种方法对于水动力不稳定火焰均产生一致的分形维数,而扩散热不稳定火焰没有分形特征。这是因为前者火焰具有分层结构,而特定波长的皱纹主要在后者火焰中生长。还讨论了分形维数对热膨胀率的依赖性。

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