{"title":"高密度分层光流研究的折射率匹配","authors":"B. Krohn, Sunming Qin, A. Manera, V. Petrov","doi":"10.1115/FEDSM2018-83245","DOIUrl":null,"url":null,"abstract":"Turbulent mixing in density stratified environments represents a challenging task in experimental turbulence research. When optical measurement techniques like Particle Image Velocimetry (PIV) are applied to stratified liquids, it is common practice to combine two aqueous solutions with different densities but equal refractive indices. As a result, light deflections/distortions due to the mixing of the fluids can be suppressed. While refractive image matching (RIM) was developed in the late ’70s, the limit of a 4% density ratio had yet to be reported before this work. In the present work, a methodology based on the behavior of changes in a multi component system while mixing is presented. This methodology allows RIM for solutions with higher density differences. The applicability of this methodology is experimentally demonstrated with a turbulent buoyant jet using a ternary combination of water, isopropanol and glycerol, for which an index matched density ratio of 8.6% has been achieved (Krohn et al. 2018). 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The applicability of this methodology is experimentally demonstrated with a turbulent buoyant jet using a ternary combination of water, isopropanol and glycerol, for which an index matched density ratio of 8.6% has been achieved (Krohn et al. 2018). 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引用次数: 0
摘要
密度分层环境下的湍流混合是实验湍流研究中一个具有挑战性的课题。当粒子成像测速(PIV)等光学测量技术应用于分层液体时,通常的做法是将两种不同密度但折射率相等的水溶液组合在一起。因此,由于流体混合引起的光偏转/畸变可以被抑制。虽然折射成像匹配(RIM)在70年代末被开发出来,但在这项工作之前,还没有报道过4%密度比的极限。在本工作中,提出了一种基于混合过程中多组分系统变化行为的方法。这种方法允许RIM解决密度差异较大的问题。该方法的适用性通过使用水、异丙醇和甘油三元组合的湍流浮力射流进行了实验证明,其指数匹配密度比达到了8.6% (Krohn et al. 2018)。采用高保真同步PIV/PLIF系统进行测量,并根据湍流统计对结果进行定性比较。
Refractive Index Matching for Optical Flow Investigation With High Density Stratification
Turbulent mixing in density stratified environments represents a challenging task in experimental turbulence research. When optical measurement techniques like Particle Image Velocimetry (PIV) are applied to stratified liquids, it is common practice to combine two aqueous solutions with different densities but equal refractive indices. As a result, light deflections/distortions due to the mixing of the fluids can be suppressed. While refractive image matching (RIM) was developed in the late ’70s, the limit of a 4% density ratio had yet to be reported before this work. In the present work, a methodology based on the behavior of changes in a multi component system while mixing is presented. This methodology allows RIM for solutions with higher density differences. The applicability of this methodology is experimentally demonstrated with a turbulent buoyant jet using a ternary combination of water, isopropanol and glycerol, for which an index matched density ratio of 8.6% has been achieved (Krohn et al. 2018). Measurements were conducted with a high fidelity synchronized PIV/PLIF system and the results are qualitatively compared in terms of turbulent statistics.