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NUMERICAL INVESTIGATION OF A NON-CONFINED SPRAY FLAME EXPOSED TO ACOUSTIC FORCING

机译:声力作用下非约束喷焰的数值研究

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A numerical investigation of the interaction between a spray flame and an acoustic forcing of the velocity field is presented in this paper. The test-case which is the focus of this work is a non-confined flame12 burning at atmospheric pressure and therefore the velocity fluctuations play a key role. Acoustic waves will eventually affect the rate of combustion, and the oscillating fluctuation of the heat released by the flame might be increased by the evaporation process. The dynamic interaction between the evaporating fuel spray and the velocity fluctuations induced by an acoustic perturbation is investigated to understand the impact of the acoustic waves on the droplet dispersion and on the evaporation rate. The influence of the initial droplet diameter has been observed to be irrelevant, when two monodispersed sprays of 20 μm and 80 μm were numerically simulated. In this work the main question to address is how the interphase heat and mass transfer, and the momentum exchange are influenced, at low amplitude velocity fluctuations, by the forcing frequency, under two different imposed velocity profiles of the liquid fuel. A fast decay of the slip velocity is predicted under both steady and perturbed conditions. Thus, slip velocity fluctuations do not have a significant influence on the solved spray field. Finally, the impact of the forcing frequency and of the pilot are the main effects acting on the forced flame response. At low frequency, the entrainment of hot gases into the spray results in a clearly visible stretching of the flame which causes a high level of temperature fluctuation. At high frequency, despite the weak response of the gas velocity field, the dynamics of the combustion show a faster evaporation rate than the acoustic -free case.
机译:本文给出了喷雾火焰与速度场的声强迫之间相互作用的数值研究。作为这项工作的重点的测试案例是在大气压力下燃烧的无限制火焰,因此速度波动起着关键作用。声波最终将影响燃烧速率,并且火焰释放的热量的振荡波动可能会因蒸发过程而增加。研究了蒸发的燃料喷雾和声扰动引起的速度波动之间的动态相互作用,以了解声波对液滴弥散和蒸发速率的影响。当数值模拟两个分别为20μm和80μm的单分散喷雾时,已观察到初始液滴直径的影响无关紧要。在这项工作中,要解决的主要问题是在液体燃料的两种不同施加的速度分布下,在低振幅速度波动下,强迫频率如何影响相间传热和传质以及动量交换。在稳态和扰动条件下,滑移速度都会快速衰减。因此,滑移速度波动对解决的喷雾场没有显着影响。最后,强制频率和引燃器的影响是作用在强制火焰响应上的主要影响。在低频下,夹带在喷雾中的热气体会导致火焰清晰可见地伸展,从而引起高水平的温度波动。在高频率下,尽管气体速度场的响应较弱,但燃烧动力学比无声情况显示出更快的蒸发速率。

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