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首页> 外文期刊>Experiments in Fluids: Experimental Methods and Their Applications to Fluid Flow >Visualization of dynamic boiling processes using high-speed optical coherence tomography
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Visualization of dynamic boiling processes using high-speed optical coherence tomography

机译:使用高速光学相干断层扫描技术可视化动态沸腾过程

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摘要

Investigating microscale nucleate boiling processes with high heat flux requires experimental visualization and quantification with high spatial resolution in the micrometer range as well as a sufficient temporal resolution. Numerous measurement techniques are employed for providing comprehensive experimental data on microscale boiling processes and other multiphase flows. In this context, optical coherence tomography (OCT) has been introduced recently for the visualization of quasistatic growing vapor bubbles in turbid fluids with a high spatial resolution. Since OCT detects backscattered light, only one optical access is necessary and OCT is feasible for measurements in turbid media, where other imaging techniques fail. Within this study, a high-speed OCT system is utilized for visualizing dynamic nucleate boiling processes at a heated surface with a frame rate of about 234 Hz. The bubble contour is extracted out of the OCT images using segmentation and tracking algorithm, which provide bubble contours and the course of the bubble area for individual vapor bubbles over time. Additionally, high-speed Doppler OCT imaging is presented revealing the velocity component of the fluid in beam direction up to 30 mm/s unambiguously. The present proof of principle study suggests high-speed OCT imaging as a promising and alternative technique for the simultaneous measurement of bubble geometries and fluid velocities in dynamic processes with a high spatial resolution of 16 mu m. Due to the ongoing development and availability of ultra high-speed OCT systems, the perspective temporal resolution will be comparable to the frame rates provided by presently established techniques, such as particle image velocimetry or high-speed camera imaging.
机译:要研究具有高热通量的微尺度成核沸腾过程,需要进行实验可视化和量化,并在微米范围内以高空间分辨率以及足够的时间分辨率进行。许多测量技术用于提供有关微尺度沸腾过程和其他多相流的综合实验数据。在这种情况下,近来引入了光学相干断层扫描(OCT),以可视化方式以高空间分辨率显示混浊流体中的准静态生长蒸汽泡。由于OCT检测到反向散射光,因此仅需要一个光学通道,并且OCT在其他成像技术无法使用的混浊介质中进行测量是可行的。在这项研究中,高速OCT系统用于以约234 Hz的帧频可视化加热表面上的动态成核沸腾过程。使用分段和跟踪算法从OCT图像中提取气泡轮廓,该算法可提供随时间变化的气泡轮廓以及各个蒸气气泡的气泡区域变化。此外,还提供了高速多普勒OCT成像,可以清晰地显示出流体在射束方向上的速度分量高达30 mm / s。目前的原理研究证明,高速OCT成像是一种有前途的替代技术,可同时测量动态过程中气泡的几何形状和流体速度,具有16微米的高空间分辨率。由于超高速OCT系统的不断发展和可用性,透视时间分辨率将与当前建立的技术(例如粒子图像测速或高速相机成像)提供的帧速率相当。

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