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首页> 外文期刊>Journal of Fluid Mechanics >On velocity and reactive scalar spectra in turbulent premixed flames
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On velocity and reactive scalar spectra in turbulent premixed flames

机译:湍流预混火焰中的速度谱和反应性标量谱

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摘要

Kinetic energy and reactive scalar spectra in turbulent premixed flames are studied from compressible three-dimensional direct numerical simulations (DNS) of a temporally evolving rectangular slot-jet premixed flame, a statistically one-dimensional configuration. The flames correspond to a lean premixed hydrogen-air mixture at an equivalence ratio of 0.7, preheated to 700 K and at 1 atm, and three DNS are considered with a fixed jet Reynolds number of 10 000 and a jet Damk?hler number varying between 0.13 and 0.54. For the study of spectra, motivated by the need to account for density change, which can be locally strong in premixed flames, a new density-weighted definition for two-point velocity/scalar correlations is proposed. The density-weighted two-point correlation tensor retains the essential properties of its constant-density (incompressible) counterpart and recovers the density-weighted Reynolds stress tensor in the limit of zero separation. The density weighting also allows the derivation of balance equations for velocity and scalar spectrum functions in the wavenumber space that illuminate physics unique to combusting flows. Pressure-dilatation correlation is a source of kinetic energy at high wavenumbers and, analogously, reaction rate-scalar fluctuation correlation is a high-wavenumber source of scalar energy. These results are verified by the spectra constructed from the DNS data. The kinetic energy spectra show a distinct inertial range with a -5=3 scaling followed by a 'diffusive-reactive' range at higher wavenumbers. The exponential drop-off in this range shows a distinct inflection in the vicinity of the wavenumber corresponding to a laminar flame thickness, δ_L, and this is attributed to the contribution from the pressure-dilatation term in the energy balance in wavenumber space. Likewise, a clear spike in spectra of major reactant species (hydrogen) arising from the reaction-rate term is observed at wavenumbers close to δ_L. It appears that in the inertial range classical scaling laws for the spectra involving the Kolmogorov scale are applicable, but in the high-wavenumber range where chemical reactions have a strong signature the laminar flame thickness produces a better collapse. It is suggested that a full scaling should perhaps involve the Kolmogorov scale, laminar flame thickness, Damk?hler number and Karlovitz number.
机译:湍流预混火焰中的动能和反应性标量光谱是根据时间演化的矩形狭缝喷射预混火焰(可统计的一维结构)的可压缩三维直接数值模拟(DNS)研究的。火焰对应于当量比为0.7的稀薄的预混合氢-空气混合物,预热至700 K,且温度为1 atm,并考虑了三个DNS,固定的雷诺数为10000,而Damk?hler数在0.13和0.54。为了研究光谱,出于对密度变化的考虑,在预混火焰中局部变化可能很强,提出了一种新的密度加权的两点速度/标量相关性定义。密度加权的两点相关张量保留了其恒定密度(不可压缩)副本的基本属性,并在零分离的极限内恢复了密度加权的雷诺应力张量。密度加权还允许推导波数空间中速度和标量频谱函数的平衡方程,从而阐明了燃烧流特有的物理原理。压力-膨胀相关性是高波数时动能的来源,并且类似地,反应速率-标量波动相关性是高波数时标量能量的来源。这些结果通过从DNS数据构造的光谱得到验证。动能谱显示出-5 = 3标度的独特惯性范围,随后是在更大波数下的“扩散-反应”范围。在此范围内的指数下降表明,在与层流火焰厚度δ_L相对应的波数附近出现了明显的拐点,这归因于压力膨胀项对波数空间中能量平衡的贡献。同样,在接近δ_L的波数处观察到由反应速率项引起的主要反应物物种(氢)光谱的明显峰值。似乎在惯性范围内适用涉及Kolmogorov比例尺的光谱的经典比例定律,但在化学反应具有强烈信号的高波数范围内,层流火焰厚度会产生更好的塌陷。建议完全缩放可能涉及Kolmogorov缩放比例,层流火焰厚度,Dakkhler数值和Karlovitz数值。

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