Localized Breakup Instabilities for a Liquid Jet in Crossflow

S. Salauddin, Wilmer Flores, M. Otero, K. Ahmed
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Abstract

Liquid fuel jet in Crossflow (LJIC) is significant to the aviation industry since it is a vital technique for atomization. The hydrodynamic instability mechanisms that drive a transverse jet’s primary breakup were investigated using modal and traveling wavelength analysis. This study highlights the primary breakup mechanisms for aviation fuel Jet-A. However, the techniques discussed are applicable to any liquid. Mathematical decomposition techniques are known as POD (Proper Orthogonal Decomposition), and MrDMD (Multi-Resolution Dynamic Mode Decomposition) are used together to identify dominant instability flow dynamics associated with the primary breakup mechanism. Implementation of the MrDMD method deconstructs the nonlinear dynamical systems into multiresolution time-scaled components that capture the intermittent coherent structures. The MrDMD, in conjunction with the POD method, is applied to data points taken across the entire spray breakup regimes, which are: enhanced capillary breakup, bag breakup, multimode breakup, and shear breakup. The dominant frequencies of both breakup regimes are extracted and identified. These coherent structures are classified with an associated time scale and Strouhal number. Characterization of the traveling column and surface wavelengths are conducted and associated with a known instability model. It is found that the Plateau-Rayleigh instability model predicts columns wavelengths similar to wavelengths found in dominant modes associated with a capillary breakup. Rayleigh Taylor’s instability model matches well with bag and multimode breakup. Small scale surface wavelengths associated with a shear breakup are correlated to a modified Rayleigh Taylor instability model founded by Wang et al. [1]. Furthermore, an atomization model that predicts the Sauter Mean Diameter associated with the dominant small-scale surface traveling wavelengths is established.
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液体射流在横流中的局部破碎不稳定性
横流液体燃料射流是一项重要的雾化技术,对航空工业具有重要意义。利用模态分析和行波长分析研究了横向射流初次破裂的水动力不稳定性机制。本研究强调了航空燃油Jet-A的主要分解机制。然而,所讨论的技术适用于任何液体。数学分解技术被称为POD(固有正交分解)和MrDMD(多分辨率动态模式分解)一起使用,以确定与主要破裂机制相关的主要不稳定流动动力学。MrDMD方法的实现将非线性动力系统解构为捕获间歇相干结构的多分辨率时间尺度组件。MrDMD与POD方法一起应用于整个喷雾破碎体系的数据点,这些体系包括:增强毛细破碎、袋状破碎、多模破碎和剪切破碎。提取和识别了两种分裂机制的主导频率。这些相干结构用相关的时间尺度和斯特罗哈尔数进行分类。行柱和表面波长的表征进行并与已知的不稳定性模型相关联。发现高原-瑞利不稳定性模型预测柱的波长与毛细管破裂相关的主要模式的波长相似。瑞利·泰勒的不稳定性模型与袋型和多模态的破裂非常吻合。与剪切破碎相关的小尺度表面波长与Wang等人[1]建立的改进的Rayleigh Taylor不稳定性模型相关。此外,建立了一个原子化模型,该模型预测了与主要小尺度表面行进波长相关的索特平均直径。
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