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首页> 外文期刊>Experimental Thermal and Fluid Science: International Journal of Experimental Heat Transfer, Thermodynamics, and Fluid Mechanics >Kinematic characterization of the advancing liquid-gas interface in microfluidic components combining digital processing of microscope images with curve matching technique
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Kinematic characterization of the advancing liquid-gas interface in microfluidic components combining digital processing of microscope images with curve matching technique

机译:结合显微镜图像的数字处理和曲线匹配技术,对微流体组件中前进的液-气界面进行运动学表征

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摘要

A method based on flow visualization to measure the advancing planar liquid-gas interface velocities of unsteady two-phase microflows is presented. A high-frequency CCD camera connected to a microscope is used to acquire flow images, which are digitally processed to define mathematically the interface locations at each frame of the acquired images with accuracy of ±1/2 pixel. Curve matching technique including a function to define the optimal matching path is applied to the parameterized interface locations previously obtained to determine the advancing interface velocities. The continuity equation is included in the algorithm to evaluate the velocity profile that minimizes the mass imbalance. The method is appropriate for open curves typical of moving interfaces inside confined microdevices and is applied to the filling process flows at constant rate, imposed by a syringe pump, in two constant height microchannels with different sizes for validation purposes. The results yielded by the methodology prove that it is accurate in determining planar flows with no vertical velocity component with mass balance errors below 0.07%. When a relevant vertical velocity component is present, the technique is hardly applicable to such flows since it is unable to capture the interface movement in that direction, yielding errors of mass balance that can go up to 41.6% in the case of a triangular microvalve with varying height.
机译:提出了一种基于流动可视化的非稳态两相微流推进平面液-气界面速度测量方法。连接到显微镜的高频CCD相机用于获取流图像,该流图像经过数字处理以数学方式定义获取图像的每一帧的界面位置,精度为±1/2像素。将包括定义最佳匹配路径的功能的曲线匹配技术应用于先前获得的参数化接口位置,以确定前进的接口速度。连续性方程包含在算法中,以评估使质量不平衡最小的速度曲线。该方法适用于受限微型设备内部移动界面的典型开放曲线,并适用于由注射泵在两个恒定高度的微通道(具有不同大小)中以恒定速率以恒定速率进行填充过程,以进行验证。该方法得出的结果证明,该方法可准确测定平面流,而没有垂直速度分量且质量平衡误差低于0.07%。当存在相关的垂直速度分量时,由于该技术无法捕获在该方向上的界面运动,因此该技术几乎不适用于此类流动,从而导致质量平衡误差,在带有三角形微阀的情况下,误差高达41.6%。变化的高度。

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