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An exploration of inter-pulse coupling in nanosecond pulsed high frequency discharge ignition

机译:纳秒脉冲高频放电点火中脉冲间耦合的探索

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A parametric exploration of the dynamics of ignition using nanosecond pulsed high frequency discharges (NPHFD) in flowing mixtures of methane and air is conducted to determine the "inter-pulse coupling" effect of a burst of high frequency discharges in the pulse repetition frequency (PRF) range of 1-300 kHz. The impacts of PRF, number of pulses, equivalence ratio, discharge gap distance, and flow velocity are quantified in terms of ignition probability and minimum ignition power, and schlieren images of ignition kernel development are presented. Three regimes of inter-pulse coupling are found for different values of PRF: fully-coupled, partially-coupled, and decoupled. Each regime is characterized by distinct ignition probabilities and kernel structures. The fully-coupled regime occurs for the highest PRF and exhibits complete ignition of the kernel and the highest ignition probability. The partially-coupled regime occurs for intermediate PRF and exhibits only local ignition of portions of the kernel and has the lowest ignition probability. The decoupled regime occurs for the lowest PRF and exhibits multiple non-interacting ignition events with ignition probability being a linear function of the number of pulses. The effect of equivalence ratio is found to increase or decrease the ignition probability without altering the structure of inter-pulse coupling. The electrode gap distance determines the degree of heat and active species quenching to the electrode surfaces, and shifts the transition between the partially-coupled and fully coupled regimes to higher PRFs as the gap distance is decreased. Flow velocity determines the degree of convective heat loss, with lower velocities increasing the ignition probability and altering the structure of inter-pulse coupling in a non-monotonic fashion. (C) 2017 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:使用甲烷和空气的流动混合物中的纳秒脉冲高频放电(NPHFD)对点火动力学进行了参数研究,以确定脉冲重复频率(PRF)中的高频放电突发的“脉冲间耦合”效应)范围1-300 kHz。根据点火概率和最小点火功率,量化了PRF,脉冲数,当量比,放电间隙距离和流速的影响,并给出了点火核发展的schlieren图像。对于不同的PRF值,发现了三种脉冲间耦合方式:完全耦合,部分耦合和解耦。每个方案的特征在于不同的着火概率和籽粒结构。对于最高的PRF发生全耦合状态,并且显示出完全的籽粒点火和最高的点火概率。部分耦合状态发生在中间的PRF中,仅表现出部分籽粒的局部着火,着火概率最低。解耦状态针对最低的PRF发生,并表现出多个非交互的点火事件,点火概率是脉冲数的线性函数。发现当量比的影响在不改变脉冲间耦合的结构的情况下增加或减少了点火概率。电极间隙距离决定了热量和活性物质淬灭到电极表面的程度,并且随着间隙距离的减小,将部分耦合和完全耦合状态之间的过渡转换为更高的PRF。流速决定了对流热损失的程度,较低的速度增加了点火的可能性,并以非单调的方式改变了脉冲间耦合的结构。 (C)2017燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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