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Propagating nonpremixed edge-flames in a counterflow, annular slot burner under DC electric fields

机译:在直流电场下,在逆流环形槽燃烧器中传播未预混的边缘火焰

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Characteristics of propagating nonpremixed edge-flames were investigated in a counterflow, annular slot burner. A high-voltage direct current (DC) was applied to the lower part of the burner and the upper part was grounded, creating electric field lines perpendicular to the direction of edge-flame propagation. Upon application of an electric field, an ionic wind is caused by the migration of positive and negative ions to lower and higher electrical potential sides of a flame, respectively. Under an applied DC, we found a significant decrease in edge-flame displacement speeds unlike several previous studies, which showed an increase in displacement speed. Within a moderate range of field intensity, we found effects on flame propagation speeds to be negligible after correcting the flame displacement speed with respect to the unburned flow velocity ahead of the flame edge. This indicates that the displacement speed of an edge flame strongly depends on ionic wind and that an electric field has little or no impact on propagation speed. The ionic wind also influenced the location of the stoichiometric contour in front of the propagating edge in a given configuration such that a propagating edge was relocated to the higher potential side due to an imbalance between ionic winds originating from positive and negative ions. In addition, we observed a steadily wrinkled flame following transient propagation of the edge-flame, a topic for future research. (C) 2016 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在逆流环形槽式燃烧器中研究了非预混边缘火焰的传播特性。将高压直流电(DC)施加到燃烧器的下部,并将上部接地,从而产生垂直于边缘火焰传播方向的电场线。在施加电场时,离子风是由正离子和负离子迁移到火焰的较低和较高电位侧而引起的。在施加直流电的情况下,我们发现边缘火焰移动速度显着降低,这与之前的几项研究不同,后者表明移动速度有所提高。在中等强度的场强范围内,我们发现在相对于火焰边缘之前的未燃烧流速校正火焰位移速度之后,对火焰传播速度的影响可以忽略。这表明边缘火焰的位移速度很大程度上取决于离子风,并且电场对传播速度几乎没有影响。离子风还以给定的配置影响化学计量轮廓在传播边缘前面的位置,使得传播边缘由于来自正离子和负离子的离子风之间的不平衡而重新定位到较高电势侧。此外,在边缘火焰的瞬态传播之后,我们观察到了稳定起皱的火焰,这是未来研究的主题。 (C)2016年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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