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Visualization in cryogenic environment: Application to two-phase studies

机译:低温环境下的可视化:应用于两阶段研究

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This paper reviews recent technical developments devoted to the study of cryogenic two-phase fluids. These techniques span from simple flow visualization to quantitative measurements of light scattering. It is shown that simple flow pattern configurations are obtained using classical optical tools (CCD cameras, endoscopes), even in most severe environments (high vacuum, high magnetic field). Quantitative measurements include laser velocimetry, particle sizing, and light scattering analysis. In the case of magnetically compensated gravity boiling oxygen, optical access is used to control the poistioning of a bubble subject to buoyancy forces in an experimental cell. Flow visualization on a two-phase superfluid helium pipe-flow, performed as a support of LHC cooldown studies, leads to flow pattern characterization. Visualization includes stratified and atomized flows. Thanks to the low refractive index contrast between the liquid and its vapor, quantitative results on droplet densities can be obtained even in a multiple scattering regime.
机译:本文回顾了致力于低温两相流体研究的最新技术进展。这些技术从简单的流动可视化到光散射的定量测量。结果表明,即使在最恶劣的环境(高真空,高磁场)下,也可以使用经典的光学工具(CCD摄像机,内窥镜)获得简单的流型配置。定量测量包括激光测速,粒度分析和光散射分析。在磁性补偿的重力沸腾氧气的情况下,光学通道可用于控制气泡在实验池中受浮力作用的位置。在LHC冷却研究的支持下,在两相超流氦气管道上进行流动可视化,可表征流动模式。可视化包括分层流和雾化流。由于液体与其蒸气之间的折射率差很低,因此即使在多重散射状态下也可以获得定量的液滴密度结果。

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