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Gas dynamic regimes observed in dual-pulse laser ignition

机译:双脉冲激光点火中观察到的气体动态制度

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A numerical study of the gas dynamics induced by a dual-pulse laser pre-ionization plasma used in laser ignition applications is presented herein. Past experimental observations have revealed important differences in the gas dynamics of the dual-pulse plasma, generated by overlapping a pair of ultraviolet (UV) and near-infrared (NIR) pulses, as compared to those of single-pulse (typically near-infrared) laser breakdown that has been more commonly studied. The simulation results reported here show that the dual-pulse pre-ionization scheme can lead to various gas dynamic regimes depending on the axial offset of the focal points of the two beams along the optical axis. If the UV and NIR pulses are perfectly overlapped (no offset) the energy deposition is uniform along the optical axis, leading to the formation of a toroidal structure in the post-discharge cooling phase. Alternatively, if the NIR energy addition pulse is focused with a small axial offset, (i.e., upstream or downstream of the UV pre-ionization pulse by -0.5 mm) then an asymmetric torus forms that exhibits a third lobe which propagates away from the main kernel (to the side where the NIR was focused). Finally, if the two beams are focused with a larger offset of -2.5 mm (weaker coupling), then another regime with a fourth lobe can arise. The four main flow regimes revealed from the model are in agreement with OH* experimental chemiluminescence images. These flow regimes influence the development of the early flame kernels, therefore playing an important role in practical laser ignition applications.
机译:本文介绍了激光点火应用中使用的双脉冲激光预电离等离子体诱导的气体动力学的数值研究。过去的实验观察结果揭示了双脉冲等离子体的气体动力学的重要差异,与单脉冲相比,通过重叠一对紫外(UV)和近红外(NIR)脉冲而产生的(通常是近红外线)激光击穿更常见。这里报道的模拟结果表明,双脉冲预电离方案可以通过沿着光轴的两个梁的焦点的轴向偏移来导致各种气体动态调节。如果UV和NIR脉冲完美地重叠(无偏移),则沿光轴均匀地是均匀的,导致在放电后冷却阶段形成环形结构。或者,如果NIR能量加法脉冲以小的轴向偏移聚焦,(即,UV预电离脉冲的UV预电离脉冲的上游或下游通过-0.5mm),则不对称的环形形式,其呈现出远离主的第三叶片内核(NIR集中的一面)。最后,如果两个光束与-2.5mm的较大偏移聚焦(较弱的耦合),则可能出现具有第四瓣的另一个制度。该模型揭示的四个主要流动制度与OH *实验化学发光图像一致。这些流动制度影响早期火焰核的发展,因此在实际激光点火应用中发挥着重要作用。

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