考虑弯曲气液界面影响的光波导膜液膜厚度测量研究进展

Hajime Furuichi, Shunya Kawada, Y. Mizushima, T. Sanada
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引用次数: 1

摘要

本研究旨在开发一种具有光波导膜的液膜传感器(基于owf的传感器),以提供准确的液膜厚度测量。OWF测量原理是利用高空间分辨率检测液膜表面反射的光。针对液膜曲面反射光线增加测量误差的问题,提出了一种信号处理方法来消除计算时均厚度时的误差因素。这种方法需要知道一个合适的厚度测量范围和预测表面曲率。我们实验用金属试件模拟液膜曲面,试件在亚克力容器中匀速移动。我们发现,当波经过传感器上方时,基于owf的传感器的输出信号达到峰值。我们使用基于owf的传感器的3D光线跟踪模拟器计算输出信号。仿真结果表明,在表面曲率为5.0 mm−1以下,液膜厚度与平面液膜厚度相差在6%以内,可以忽略曲面的影响。此外,我们发现在0.1-20.0 mm−1范围内的表面曲率能够使用输出信号峰值的特性来预测。因此,我们用基于owf的传感器证实了所开发传感器的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Liquid Film Thickness Measurement Considering Effect of Curved Gas-Liquid Interface Based on Optical Waveguide Film
This study aims at developing a liquid film sensor with an optical waveguide film (OWF-based sensor) that provides accurate measurements of liquid film thickness. The OWF measurement principle employs detection of light reflected at the liquid film surface with high spatial resolution. Since the curved surface of the liquid film reflects the light and increases measurement error, we proposed a signal processing method to remove the error factor in calculation of the time-averaged thickness. This method requires knowing an appropriate range for the thickness measurement and predicting the surface curvature. We experimentally simulated a liquid film curved surface with a metal test piece, and the test piece was moved with a constant velocity in an acrylic water vessel. We found that an output signal from the OWF-based sensor peaked when the wave passed above the sensor. We calculated the output signal with our 3D ray-tracing simulator of the OWF-based sensor. The simulation results showed that the effect of the curved surface up to the surface curvature of 5.0 mm−1 was negligible based on the good agreement of the liquid film thickness with that of the flat liquid film surface within 6 % difference. Furthermore, we found the surface curvature in the range of 0.1–20.0 mm−1 was able to be predicted using a characteristic of the output signal peak. Consequently, we confirmed the effectiveness of the developed sensor with the OWF-based sensor.
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