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首页> 外文期刊>International Journal of Multiphase Flow >Characterization of drop aerodynamic fragmentation in the bag and sheet-thinning regimes by crossed-beam, two-view, digital in-line holography
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Characterization of drop aerodynamic fragmentation in the bag and sheet-thinning regimes by crossed-beam, two-view, digital in-line holography

机译:通过交叉梁,双视图,数字在线全息术中袋子和薄薄的空气动力碎片的表征

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When a spherical liquid drop is subjected to a step change in relative gas velocity, aerodynamic forces lead to drop deformation and possible breakup into a number of secondary fragments. To investigate this flow, a digital in-line holography (DIH) diagnostic is proposed which enables rapid quantification of spatial statistics with limited experimental repetition. To overcome the high uncertainty in the depth direction experienced in previous applications of DIH, a crossed-beam, two-view configuration is introduced. With appropriate calibration, this diagnostic is shown to provide accurate quantification of fragment sizes, three-dimensional positions and three-component velocities in a large measurement volume. These capabilities are applied to investigate the aerodynamic breakup of drops at two non-dimensional Weber numbers, We, corresponding to the bag (We = 14) and sheet-thinning (We = 55) regimes. Ensemble average results show the evolution of fragment size and velocity statistics during the course of breakup. Results indicate that mean fragment sizes increase throughout the course of breakup. For the bag breakup case, the evolution of a multi-mode fragment size probability density is observed. This is attributed to separate fragmentation mechanisms for the bag and rim structures. In contrast, for the sheet-thinning case, the fragment size probability density shows only one distinct peak indicating a single fragmentation mechanism. Compared to previous related investigations of this flow, many orders of magnitude more fragments are measured per condition, resulting in a significant improvement in data fidelity. For this reason, this experimental dataset is likely to provide new opportunities for detailed validation of analytic and computational models of this flow. (C) 2017 Elsevier Ltd. All rights reserved.
机译:当对球形液体液滴进行相对气体速度的步骤变化时,空气动力力导致将变形落入多个二次片段中。为了研究该流程,提出了一种数字在线全息术(DIH)诊断,其能够快速定量具有有限的实验重复的空间统计数据。为了克服在DIH的先前应用中经历的深度方向上的高不确定性,介绍了横梁,横梁,双视图配置。通过适当的校准,示出该诊断,以提供大量测量体积中的片段尺寸,三维位置和三分量速度的精确定量。这些能力适用于调查两个非维度韦伯号码的下落的空气动力学分析,我们对应于袋子(We = 14)和片材变薄(We = 55)制度。集合平均结果显示分崩离析中片段大小和速度统计的演变。结果表明,在整个分析过程中,平均片段尺寸增加。对于袋式破坏情况,观察到多模片段大小概率密度的演变。这归因于袋子和轮辋结构的分离机制。相反,对于片状稀疏情况,片段尺寸概率密度仅显示一个不同的峰,表示单个碎片机制。与此流程的先前相关的调查相比,每个条件测量许多碎片的数量级,导致数据保真度的显着改善。因此,该实验数据集可能提供新的机会,以便详细验证该流程的分析和计算模型。 (c)2017 Elsevier Ltd.保留所有权利。

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