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Analysis of the flame–wall interaction in premixed turbulent combustion

机译:预混湍流燃烧中的火焰壁相互作用分析

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The present work focuses on the flame–wall interaction (FWI) based on direct numerical simulations (DNS) of a head-on premixed flame quenching configuration at the statistically stationary state. The effects of FWI on the turbulent flame temperature, wall heat flux, flame dynamics and flow structures were investigated. In turbulent head-on quenching, particularly for high turbulence intensity, the distorted flames generally consist of the head-on flame part and the entrained flame part. The flame properties are jointly influenced by turbulence, heat generation from chemical reactions and heat loss to the cold wall boundary. For the present FWI configuration, as the wall is approached, the ‘influence zone’ can be identified as the region within which the flame temperature, scalar gradient and flame dilatation start to decrease, whereas the wall heat flux tends to increase. As the distance to the wall drops below the flame-quenching distance, approximately where the wall heat flux reaches its maximum value, chemical reactions become negligibly weak inside the ‘quenching zone’. A simplified counter-flow model is also proposed. With the reasonably proposed relation between the flame speed and the flame temperature, the model solutions match well with the DNS results, both qualitatively and quantitatively. Moreover, near-wall statistics of some important flame properties, including the flame dilatation, reaction progress variable gradient, tangential strain rate and curvature were analysed in detail under different wall boundary conditions.
机译:本工作侧重于基于统计静止状态下的头部预混火焰淬火配置的直接数值模拟(DNS)的火焰壁交互(FWI)。研究了FWI对湍流火焰温度,壁热通量,火焰动力学和流动结构的影响。在湍流的头部淬火中,特别是对于高湍流强度,变形火焰通常由头部火焰部分和夹带的火焰部分组成。火焰性质受到湍流,从化学反应和热量损失到冷壁边界的热产生的。对于本发明的FWI构造,当壁接近时,“影响区”可以被识别为火焰温度,标量梯度和火焰扩张开始降低的区域,而壁热通量趋于增加。随着到壁的距离低于火焰淬火距离,大约在壁热通量达到其最大值的情况下,在“淬火区”内,化学反应变弱。还提出了一种简化的反流模型。在火焰速度与火焰温度之间合理提出的关系,模型解决方案与DNS结果匹配,定性和定量。此外,在不同的壁边界条件下详细分析了一些重要火焰性质的近壁统计,包括火焰扩张,反应性可变梯度,切向应变率和曲率。

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