Fluctuation of Void Fraction in the Microbubble Generator With a Venturi Tube

Author(s):  
Shin-ichiro Uesawa ◽  
Akiko Kaneko ◽  
Yasumichi Nomura ◽  
Yutaka Abe

Microbubbles are tiny bubbles with less than 1 mm diameter. These bubbles are utilized in various engineering fields, and it is very important to understand physics of flow with microbubbles. Especially, void fraction is one of the significant parameter for two-phase flow. Thus, developments of real-time measurement systems of void fraction are required. In the nuclear power engineering, electrical void fraction measurement methods have been proposed as one of the real-time measurement techniques. In the present study, we apply this method to a microbubble generator with a venturi tube and examine the performance of the generator. Constant electrical current method is adopted as electrical measurement method of void fraction. Microbubbles are generated with a bubble collapse phenomenon through a venturi tube. We can generate microbubbles in high void fraction. However, mechanism of bubble collapse in a ventrui tube is not made clear and void fraction distribution toward flow direction is less understood. The applicability of constant electrical current method in bubbly flow and the process of the bubble breakup in a venturi tube are discussed. In this experiment, a voltage between two electrodes in the generator is measured with various gas-liquid volume flows as inlet conditions. From results we succeeded to measure the void fraction profile in the venturi tube with constant electrical current method. The void fractions achieve a peak before the bubble collapse and it decreased drastically for 10 mm after collapse.

Author(s):  
Yuya Takakura ◽  
MinHo Jeon ◽  
MinJae Do ◽  
Daisuke Kawashima ◽  
Sohei Takamiya ◽  
...  

The purpose of this study is the calibration in normalization technique for the real-time measurement of void-fraction inside fluid by using VC system at each temperature condition. There is an existing method of measuring electrical response called a VC system. A VC system is a voltage applied current measured system. The VC method measures electrically between electrodes attached around the measurement subject and detects internal distribution from impedance difference of the component to be measured. We deal with water and air in this research. In this method, we measure the difference between the electrical characteristics of air and water. And the measurement technique is requirement of pre-measurement. In homogeneous case, we need to measure current for normalization with real-time measured current. This method has problem that the impedance of water depends on the temperature. So the impedance of water at pre-measurement is different as compared real-time impedance. That’s why, the technique for measuring void-fraction is not high accuracy at present. The measurement technology should be improved to obtain more accurate area of air inside fluid. This requirement is achieved by real-time measurement and real-time separation based on the different electrical properties of air and water while calibrating with temperature. In order to improve accuracy of the proposed method, we conducted a system comparison experiment before calibration with temperature and after calibration. In conclusion, we could measure the void fraction in real time more accurately.


Author(s):  
Josep Maria Margarit-Taule ◽  
Pablo Gimenez-Gomez ◽  
Roger Escude-Pujol ◽  
Manuel Gutierrez-Capitan ◽  
Cecilia Jimenez-Jorquera ◽  
...  

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