Mathematical Model for Calculating Gas Flow Using an Ultrasonic Flow Meter
https://doi.org/10.21122/2220-9506-2025-16-3-265-274
Abstract
Ultrasonic flow meters are promising tool for monitoring gas flows in domestic and industrial pipelines. The aim of this work was to develop methodologies for calculating gas flow rate, as well as to develop and analyze a mathematical model using simulation in the MATLAB package for a coaxial arrangement of ultrasonic transducers, including an analysis of limitations of this approach. The base of the study was a mathematical model with a coaxial sensor arrangement, describing the propagation of ultrasonic waves in a gas flow. Input parameters were gas pressure (5 Pa and 8.5 kPa) and temperature, while the calculated parameters were flow velocity, Reynolds number, pulse transit time along and opposite the flow, difference between these two time values, and the final flow rate. The simulation was performed in MATLAB with a focus on the calculation methodology although without accounting for acoustic interference and the ultrasonic beam shape (only the central beam’s part was considered). The developed methodology allows for preliminary gas flow rate calculations and serves as a basis for further improvement including consideration of additional physical factors and adaptation for an angular transducer configuration. Key limitations of the mathematical model include: the omission of sound pressure, noise from the receiver circuit, and a simplified wave beam model. Nevertheless, the model confirmed its viability for basic scenarios.
About the Authors
V. P. GrebnevBelarus
Address for correspondence:
Grebnev V.P. -
MMZ named after S. I. Vavilov – managing Company of “BelOMO” Holding”
Makaenka str., 23,
Minsk 220114,
Belarus
e-mail: vadim.grebnev.vg@gmail.com
N. D. Abramovich
Belarus
Makaenka str., 23,
Minsk 220114
I. S. Maksimovich
Belarus
Makaenka str., 23,
Minsk 220114
References
1. Jacobson S. New developments in ultrasonic gas analysis and flowmetering. IEEE, 2008;508-516. DOI: 10.1109/ULTSYM.2008.0124
2. Conrad K., Lynnworth L. Fundamentals of ultrasonic flow meters. American School of Gas Measurement Technology. 2002;1:53-54.
3. Rajita G., Mandal N. Review on transit time ultrasonic flowmeter. IEEE, 2016;88-92. DOI: 10.1109/CIEC.2016.7513740
4. Lynnworth L. C. Ultrasonic measurements for process control: theory, techniques, applications. Academic press. 2013;694.
5. Zhang H., Guo C., Lin J. Effects of velocity profiles on measuring accuracy of transit-time ultrasonic flowmeter. Applied Sciences. 2019;9(8):1648. DOI: 10.3390/app9081648
6. Качанов И. В. Механика жидкости и газа: курс лекций: в 4 ч. / И.В. Качанов, В.В. Кулебякин, В.К. Недбальский. – Минск: БНТУ, 2012. – Ч. 3. – 56 с.
7. Kachanov I. V., Kulebyakin V. V., Nedbalsky V. K. Fluid and Gas Mechanics: Lecture Course: in 4 Parts. Minsk: BNTU, 2012;3:56 p.
8. Mandard E. [et al.]. Transit Time Ultrasonic Flowmeter: Velocity Profile Estimation. Proc. IEEE Ultrason. Symp. 2005;763-766. DOI: 10.1109/ULTSYM.2005.1602963
9. Ландау Л. Д. Теоретическая физика: Учеб. пособ.: для вузов. В 10 т. Т. VI. Гидродинамика. / Л. Д. Ландау, Лифшиц Е. М. – 5-е изд., стереот. – М.: ФИЗМАТЛИТ, 2001. – 736 с.
10. Landau L. D, Lifshitz E. M. Theoretical Physics: Textbook for Universities. In 10 Volumes. Vol. VI: Fluid Mechanics. 5th Edition, Stereo. Moscow: FIZMATLIT, 2001;736.
11. White F. M. [et al.]. Fluid Mechanics. McGrawHill. 2011;862.
12. Ovsyannikov M. K., Orlova E. G., Yemelyanov P. S. Fundamentals of Hydromechanics. Moscow: RConsult. 2003.
13. Willatzen M. [et al.]. Arrival-time detection and ultrasonic flow-meter applications. Journal of Physics: Conference Series. IOP Publishing. 2006;52(1):58. DOI: 10.1088/1742-6596/52/1/006
14. Ma Jie [et al.]. Applications of digital signal processing methods in TOF calculation of ultrasonic gas flowmeter. Flow Measurement and Instrumentation. 2021;79. DOI: 10.1016/j.flowmeasinst.2021.101932
Review
For citations:
Grebnev V.P., Abramovich N.D., Maksimovich I.S. Mathematical Model for Calculating Gas Flow Using an Ultrasonic Flow Meter. Devices and Methods of Measurements. 2025;16(3):265-274. (In Russ.) https://doi.org/10.21122/2220-9506-2025-16-3-265-274