Optical Multi-Parameter Measuring System for Fluid and Air Bubble Recognition
Author:
Bello Valentina1ORCID, Bodo Elisabetta1ORCID, Merlo Sabina1ORCID
Affiliation:
1. Department of Electrical, Computer and Biomedical Engineering, University of Pavia, 27100 Pavia, Italy
Abstract
Detection of air bubbles in fluidic channels plays a fundamental role in all that medical equipment where liquids flow inside patients’ blood vessels or bodies. In this work, we propose a multi-parameter sensing system for simultaneous recognition of the fluid, on the basis of its refractive index and of the air bubble transit. The selected optofluidic platform has been designed and studied to be integrated into automatic pumps for the administration of commercial liquid. The sensor includes a laser beam that crosses twice a plastic cuvette, provided with a back mirror, and a position-sensitive detector. The identification of fluids is carried out by measuring the displacement of the output beam on the detector active surface and the detection of single air bubbles can be performed with the same instrumental scheme, exploiting a specific signal analysis. When a bubble, traveling along the cuvette, crosses the readout light beam, radiation is strongly scattered and a characteristic fingerprint shape of the photo-detected signals versus time is clearly observed. Experimental testing proves that air bubbles can be successfully detected and counted. Their traveling speed can be estimated while simultaneously monitoring the refractive index of the fluid.
Subject
Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry
Reference25 articles.
1. Desai, P.D., Ng, W.C., Hines, M.J., Riaz, Y., Tesar, V., and Zimmerman, W.B. (2019). Comparison of Bubble Size Distributions Inferred from Acoustic, Optical Visualisation, and Laser Diffraction. Colloids Interfaces, 3. 2. Jenderka, K.V., Dietrich, G., Cobet, U., Kopsch, B., Klemenz, A., and Urbanek, P. (1998, January 5–8). Detection of micro bubbles in the extracorporeal circulation. Proceedings of the IEEE International Ultrasonics Symposium, Sendai, Japan. 3. A non-invasive, low frequency resonant method to detect bubbles in liquid media;Rivera;Appl. Acoust.,2021 4. Ultrasonic detection of air bubbles in ducts using PVDF;Benech;Meas. Sci. Technol.,1999 5. Ozeri, S., Shmilovitz, D., and Fainguelernt, J. (2006, January 9–13). Ultrasonic air bubble detection employing signal processing techniques. Proceedings of the IEEE International Symposium on Industrial Electronics, Montreal, QC, Canada.
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