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Direct Numerical Simulations of the Impact of High Turbulence Intensities and Volume Viscosity on Premixed Methane Flames

机译:高湍流强度和体积粘度对预混甲烷火焰的影响的直接数值模拟

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摘要

Parametric direct numerical simulations (DNS) of turbulent premixed flames burning methane in the thin reaction zone regime have been performed relying on complex physicochemical models and taking into account volume viscosity (κ). The combined effect of increasing turbulence intensities (u′) and κ on the resulting flame structure is investigated. The turbulent flame structure is marred with numerous perforations and edge flame structures appearing within the burnt gas mixture at various locations, shapes and sizes. Stepping up u′ from 3 to 12 m/s leads to an increase in the scaled integrated heat release rate from 2 to 16. This illustrates the interest of combustion in a highly turbulent medium in order to obtain high volumetric heat release rates in compact burners. Flame thickening is observed to be predominant at high turbulent Reynolds number. Via ensemble averaging, it is shown that both laminar and turbulent flame structures are not modified by κ. These findings are in opposition to previous observations for flames burning hydrogen, where significant modifications induced by κ were found for both the local and global properties of turbulent flames. Therefore, to save computational resources, we suggest that the volume viscosity transport term be ignored for turbulent combustion DNS at low Mach numbers when burning hydrocarbon fuels.
机译:已经依赖于复杂的物理化学模型和考虑体积粘度(κ)进行薄反应区制度燃烧甲烷的参数直接数值模拟(DNS)。研究了增加湍流强度(U')和κ对所得到的火焰结构的综合效果。湍流火焰结构与许多穿孔和燃烧的气体混合物中出现的边缘火焰结构造成损坏,在各个位置,形状和尺寸。将U'从3到12米/秒加入,导致缩放的集成热释放速率从2到16增加。这说明了在高湍流介质中燃烧的兴趣,以便在紧凑型燃烧器中获得高容量的热释放速率。观察到火焰增厚在高湍流雷诺数处是主要的。通过集合平均值,示出了由κ不修饰的层流和湍流火焰结构。这些发现与先前的火焰燃烧氢的观察结果相反,其中发现湍流火焰的局部和全局性质诱导κ诱导的显着修饰。因此,为了节省计算资源,我们建议在燃烧烃燃料时在低马赫数下忽略体积粘度传输术语。

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