论文标题

FSVPY:基于Python的荧光条纹速度法(FSV)的包装

FSVPy: A Python-based Package for Fluorescent Streak Velocimetry (FSV)

论文作者

Lin, Han, Blackwell, Brendan C., Call, Connor C., Liu, Shanliangzi, Liu, Claire, Driscoll, Michelle M., Richards, Jeffrey J.

论文摘要

需要使用系统性能变量(例如,功耗和效率)连接易于衡量的传输属性(例如粘度和电导率)的预测本构方程来设计高级的热和电气系统。在这项工作中,我们探讨了荧光粒子斑streak分析的使用,直接测量压力驱动流的局部速度场,并引入了新的Python包(FSVPY)来执行分析。荧光条纹速度计(FSV)将高速成像与高荧光颗粒结合在一起,产生包含荧光条纹的图像,其长度和强度可能与局部流速相关。通过在整个样品体积中捕获图像,可以量化和重建三维速度场。我们通过表征几种非牛顿流体的通道流量谱:胶束氯吡啶丁基溶液,Carbopol 940和聚乙烯乙二醇来证明这一技术。然后,我们探索更复杂的流动,在流动中遇到的微尺度特征而产生明显的加速度。我们证明了FSVPY处理各种形状的条纹的能力,并使用沿条纹的可变强度从单个图像中提取特定位置的速度测量值。因此,我们证明了FSVPY是一种灵活的工具,可用于从多种流体和流动条件中提取局部速度测量。

Predictive constitutive equations that connect easy-to-measure transport properties (e.g., viscosity and conductivity) with system performance variables (e.g., power consumption and efficiency) are needed to design advanced thermal and electrical systems. In this work, we explore the use of fluorescent particle-streak analysis to directly measure the local velocity field of a pressure-driven flow, introducing a new Python package (FSVPy) to perform the analysis. Fluorescent streak velocimetry (FSV) combines high-speed imaging with highly fluorescent particles to produce images that contain fluorescent streaks, whose length and intensity can be related to the local flow velocity. By capturing images throughout the sample volume, the three-dimensional velocity field can be quantified and reconstructed. We demonstrate this technique by characterizing the channel flow profiles of several non-Newtonian fluids: micellar Cetylpyridinium Chloride solution, Carbopol 940, and Polyethylene Glycol. We then explore more complex flows, where significant acceleration is created due to micro-scale features encountered within the flow. We demonstrate the ability of FSVPy to process streaks of various shapes, and use the variable intensity along the streak to extract position-specific velocity measurements from individual images. Thus, we demonstrate that FSVPy is a flexible tool that can be used to extract local velocimetry measurements from a wide variety of fluids and flow conditions.

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