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Application of High-Speed PIV Diagnostics for Simultaneous Investigation of Flow Field and Spark Ignited Flame inside an Optical SI Engine

机译:高速PIV诊断在光学发动机内流域同时调查流域及火花点火火焰的应用

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High speed, time resolved Particle Image Velocimetry (PIV) diagnostics was applied to an optical SI engine to study the interactions between in-cylinder flow field and flame development. Optimisation and certain adaptations have been made to the diagnostic setup to enable time-resolved, simultaneous measurements of both PIV data and flame tomography imaging from the same original captured image set. In this particular study, interactions between flow and flame during lean-burn operating conditions at various tumble strength have been investigated and compared to a standard stoichiometric operation. Diagnostics were performed for both the vertical plane (x-y) and the horizontal plane (r-θ) of the combustion chamber with a particular focus in the pent-roof area. Some major differences in the tumble flow-field prior to ignition has been observed between the lean and stoichiometric conditions. Moreover, lean flames show a high degree of convolution and distortion during the early growth period but start to round off in later development stages for higher tumble condition. In terms of flow-flame interactions, the strong stoichiometric flame induces a very high turbulence energy for a wide region of unburned charge all around its flame front. While the lean flame also induces high turbulence in the unburned region near its flame front, the size and scale of these regions are very small in comparison, and are limited to only certain sections of its flame front. However, in the horizontal plane, lean flames under higher tumble condition induces relative high turbulence energy for a wider region all around its flame front, similar to the stoichiometric flame case. These could be the explanation for lean-burn at higher tumble condition having improved CA50 timing and lower combustion variations. The captured data is also useful for engine development efforts to utilise the flow-flame interaction for more stable lean combustion.
机译:高速,时间分辨粒子图像测速仪(PIV)诊断被应用于光学SI发动机研究缸内流场和火焰发展之间的相互作用。优化和某些修改已经进行的诊断设置,以使时间分辨,从相同的原始捕捉到的图像组中的两个数据PIV和火焰断层摄影成像的同时测量。在这个特定的研究中,在流动和火焰之间的相互作用稀薄燃烧在各种翻滚强度的工作条件进行了调查,并与标准的理论运转。诊断被两个垂直平面(X-Y)和燃烧室的水平平面(R-θ)与在屋脊形区域中的特定焦点进行。在翻转流场点火之前的某个主要区别已贫和化学计量条件之间观察到。此外,稀薄的火焰表明在生长前期高度卷积和失真的,但开始以后的发展阶段四舍五入更高的翻滚状态。在流动的火焰相互作用方面,强大的化学计量火焰感应出很高的湍流能量未燃费各地的火焰前的广大区域。虽然淡火还会导致附近的火焰前的未燃区域高位震荡,这些区域的大小和规模相比很小,仅限于它的火焰前锋的某些章节。然而,在水平平面中,在较高的转筒式条件诱导相对高紊流能量稀薄的火焰为更广泛的区域中的所有绕其火焰前沿,类似的化学计量火焰的情况。这些可以是为稀燃在具有改进的CA50定时和较低的燃烧变动更高翻滚状态的说明。捕获的数据也是引擎开发力度,利用更稳定的稀薄燃烧流动的火焰相互作用有用。

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