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A Novel Approach to Assess Diesel Spray Models using Joint Visible and X-Ray Liquid Extinction Measurements

机译:一种使用关节可见和X射线液体消光测量评估柴油喷雾模型的新方法

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Spray processes, such as primary breakup, play an important role for subsequent combustion processes and emissions formation. Accurate modeling of these spray physics is therefore key to ensure faithful representation of both the global and local characteristics of the spray. However, the governing physical mechanisms underlying primary breakup in fuel sprays are still not known. Several theories have been proposed and incorporated into different engineering models for the primary breakup of fuel sprays, with the most widely employed models following an approach based on aerodynamically-induced breakup, or more recently, based on liquid turbulence-induced breakup. However, a complete validation of these breakup models and theories is lacking since no existing measurements have yielded the joint liquid mass and drop size distribution needed to fully define the spray, especially in the near-nozzle region. In this work, we compare physical models of aerodynamically-induced and turbulence-induced spray breakup and assess their influence on predictions of local spray behavior using 3D CFD simulations in CONVERGE. Motivated by these results, we propose a new spray model validation methodology, using a combination of quantitative measurements and light-scatter modeling, to help fully validate the joint liquid mass and mean drop size distribution in predicted sprays. In particular, we demonstrate that employing joint x-ray and visible liquid extinction measurements, in combination with light extinction modeling within the predicted spray, can provide unique evaluation of the predicted spray morphology and ensure a more accurate representation of the experimentally measured spray.
机译:喷雾过程,如初级分手,对后续燃烧过程和排放形成起重要作用。因此,这些喷雾物理学的准确建模是确保忠实忠实的喷雾剂的忠实代表的关键。然而,燃料喷雾中初级分解的管理物理机制仍然没有知道。已经提出了几种理论并将其纳入不同的工程模型中,用于燃料喷雾的初级分解,基于液体湍流引起的分离,基于空气动力学诱导的分离的方法,最广泛使用的模型。然而,由于没有现有的测量结果,缺乏对这些分离模型和理论的完全验证,因此在近喷嘴区域中不需要完全定义喷雾所需的关节液体质量和滴尺寸分布。在这项工作中,我们比较空气动力学诱导和湍流诱导的喷雾分解的物理模型,并在汇聚中使用3D CFD模拟来评估它们对局部喷雾行为预测的影响。通过这些结果的动机,我们提出了一种新的喷涂模型验证方法,使用定量测量和光散射建模的组合,帮助全面验证预测喷雾中的关节液体质量和平均下降尺寸分布。特别地,我们证明使用关节X射线和可见液体消光测量与预测喷雾内的光消光建模结合,可以提供预测的喷雾形态的独特评估,并确保通过实验测量的喷雾更准确地表示。

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