F210 The Discrimination method of a contact position in bubble measurement via an Optical Fiber Probe

2010 ◽  
Vol 2010.15 (0) ◽  
pp. 485-486
Author(s):  
Kodai HANYU ◽  
Yuki MIZUSHIMA ◽  
Takayuki SAITO
2001 ◽  
Vol 2001.50 (0) ◽  
pp. 283-284
Author(s):  
Takayuki SAITO ◽  
Robert F. MUDDE ◽  
Takashi SAWADA

Author(s):  
Yuki Mizushima ◽  
Takayuki Saito

An optical fiber probe has been frequently employed to measure bubble diameters, velocities, and local void fractions simultaneously in gas-liquid two-phase systems. For the application of the probe to tiny-bubble measurement, one of the authors already developed a Single-Tip Optical fiber Probe (STOP). The purpose of this study is to rapidly improve the measurement accuracy of the S-TOP. A bubble chord length pierced by the S-TOP is obtained. Consequently, the chord length depends on the pierced position. The chord lengths measured by the S-TOP include an error owing to the random positions pierced by the S-TOP; i.e. the measured chord length becomes shorter than the bubble minor axis, with a shift of the contact position towards the outer edge of the bubble. The S-TOP axis crosses the direction of the bubble motion at a random angle. This also causes a miscalculation of the chord lengths. In order to correct these errors in the S-TOP measurement, we need to detect the contact position and the intersection angles. To realize this, using a pre-signal is quite effective. The pre-signal is generated clearly and intensively, only when the S-TOP sensing tip is ground in a wedge shape and the tip touches vertically the center region of the bubble frontal surface. The pre-signal becomes weak and indistinct under the other contact conditions. Making the smart use of these phenomena, we are able to solve the above defects of the S-TOP. First, the relationship between the intensity of the pre-signal and the pierced positions/angles is systematically quantified. Second, a signal processing to detect the pierced positions/angles, based on the relationship, is established. Third, we discuss a mechanism of the pre-signal. We determine the most suitable S-TOP size, tip diameter and wedge-angle, for the most accurate measurement. Finally, we demonstrate the effectiveness of our newly proposed method.


Author(s):  
Yusuke Ozawa ◽  
Takayuki Saito

The optical probe method has been repeatedly improved in order to measure bubbles and droplets efficiently and reliably in gas-liquid two-phase flows, since the application of an optical fiber to measure them was proposed early eighties. However, simultaneous measurement of their diameters and velocities has been thought to need at least two optical fiber probes. To break through this situation, we newly developed a Single-Tip Optical fiber Probe (S-TOP) which realizes simultaneous measurement of diameters and velocities of minute bubbles/droplets. In the S-TOP measurement, the relation between the reflected-light intensity at the wedge-shaped probe tip and the tip-surface area covered with a phase is cleverly used to realize the simultaneous measurement. The surface tension and probe-surface wettability intensively influence the S-TOP signals. The main aim of the present study is to strictly evaluate the influences of surface tension and wettability on the bubble measurement in order to develop precise and reliable S-TOP method. In the present study, we specify the gradient of leading edge (or trailing edge) of the S-TOP signal is proportional to the gas-liquid interface velocity. In the measurement of bubbles and droplets via S-TOP, this relation is effectively utilized. The influences of surface tension and probe-surface wettability on this relation are quantitatively discussed. At surface tension higher than about 50mN/m, the surface tension is dominant. On the other hand, at lower than this value, the wettability is dominant. On the basis of improvement in the consideration of the above results, the authors demonstrate the simultaneous measurement of diameters and velocities of small bubbles with about 200 mm in diameter.


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