研究目的
Investigating the 3D image reconstruction of gas-liquid two-phase flow in mini-channels using a new optical sensor.
研究成果
The proposed method effectively reconstructs 3D images of slug flow in mini-channels, offering advantages of low cost, high sampling frequency, and simple structure. It provides detailed and undistorted flow structure information, improving measurement accuracy for parameters like void fraction and pressure drop. However, its performance in high-velocity flows and other flow patterns needs further study.
研究不足
The method assumes the cross-sectional gas-liquid interface is circular, which may not hold in all flow conditions, especially at high velocities where bubbles deform. The application in other flow patterns requires further investigation.
1:Experimental Design and Method Selection:
The study utilizes a new optical sensor with vertical and horizontal photodiode arrays for 3D image reconstruction of gas-liquid two-phase flow in mini-channels. Support Vector Regression (SVR) is used to develop a measurement model for determining cross-sectional information from optical signals obtained by the vertical array.
2:Sample Selection and Data Sources:
Experiments are conducted on slug flow in a channel with an inner diameter of
3:0 mm. High-speed visualization provides reference values for model development and velocity measurement. List of Experimental Equipment and Materials:
The optical measurement system includes a laser diode, beam expander, slit, test channel, and optical sensor. The sensor consists of vertical and horizontal photodiode arrays.
4:Experimental Procedures and Operational Workflow:
Optical signals from the vertical array are used to predict cross-sectional parameters via SVR, which are then used to reconstruct 2D images. Gas velocity is calculated using signals from the horizontal array to determine the spatial interval between 2D images. 3D images are reconstructed by stacking the 2D images.
5:Data Analysis Methods:
The study employs SVR for predicting cross-sectional parameters and cross-correlation methods for velocity measurement. High-speed visualization data are processed for reference values.
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