Development of a methodology and design of a device for determining the Mach number of a supersonic flow

Автор: Kozlov V.S., Kolga V.V., Volkova Y.Y.

Журнал: Siberian Aerospace Journal @vestnik-sibsau-en

Рубрика: Aviation and spacecraft engineering

Статья в выпуске: 3 vol.25, 2024 года.

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The paper presents the developed methodology and designed a device for determining the Mach number during supersonic gas outflow. An analysis of various methods for determining the Mach number was carried out, including measuring the pressure at the flow boundary, the use of shock waves, and the use of optical methods. A comparison of the accuracy of the readings when using the considered methods was made. Based on the results obtained, a technique for high-precision determination of the Mach number has been developed, including a combination of several independent measurement methods. A device has been designed that implements this measurement technique, and the results of experimental tests in a wind tunnel have been reviewed, including instrument readings, graphs and tables confirming the accuracy and reliability of the data obtained. Their accuracy and reliability are analyzed. Using the analysis, it is possible to ensure the selection of the most rational method for determining the Mach number at the initial stage of designing aircraft, such as airplanes, missiles, fighters, and UAVs. Accurate knowledge of the Mach number allows engineers to optimize the aerodynamic characteristics of the aircraft, ensure flight safety, improve engine efficiency and overall air transport performance. In addition, the Mach number is the most important criterion of similarity when modeling in aerodynamic research, which makes the developed methodology and device relevant not only for the design of aircraft, but also for a wide range of scientific and engineering research in the field of aeronautical technology. It is emphasized that the presence of a reliable method for determining the Mach number can significantly reduce the time and resources spent on testing and improving aircraft, and also contributes to the development of innovative technologies in the field of aviation and astronautics.

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Mach number, supersonic flow, determination of Mach number, measurement technique, measurement device

Короткий адрес: https://sciup.org/148329744

IDR: 148329744   |   DOI: 10.31772/2712-8970-2024-25-3-296-310

Список литературы Development of a methodology and design of a device for determining the Mach number of a supersonic flow

  • Butenko V. A., Rylov Yu. P., Chikov V. P. [Experimental investigation of the characteristics of small-sizer nozzles]. Fluid Dynamics. 1976, Vol. 11, No. 6, P. 137–140.
  • Voronin S. T. [Numerical simulation of supersonic gas flow in a conical nozzle with local plasma heading and experimental results]. Siberian Aerospace Journal. 2023, Vol. 24, No. 1, P. 309–324. DOI: 10.31772/2712-8970-2023-24-2-309-324 (In Russ.).
  • Rtisheva A. S. [Gas dynamic design and numerical study of supersonic circuit of wind tunnel]. Herald of the Bauman Moscow State Technical University. Series Mechanical Engineering. 2021, No. 1 (136), P. 68–84. DOI: 10.18698/0236-3941-2021-1-68-84 (In Russ.).
  • Rotermel A. R., Yashkov S. A., Sevchenko V. I. [Experimental study of aerodynamic characteristics in a supersonic wind tunnel ST-3 using a software and hardware complex]. Trudu MAI. 2021, No. 119. DOI: 10.34759/trd-2021-119-06 (In Russ.).
  • Rotermel A. R., Sevchenko V. I., Lizan V. M. [Modernization of the working part of the wind tunnel for tensometric measurements of aerodynamic forces in supersonic flow]. Trudu MAI. 2022, No. 127. DOI: 10.34759/trd-2022-127-08 (In Russ.).
  • Savishenko N. P., Apevalov I. V., Popov A. S. [Experimental studies of the aerodynamic characteristic of an unmanned aerial sciences]. News of the TulGU. Technical sciences. 2020, Vol 2, P. 143–150 (In Russ.).
  • Pavlovskiy A. A., Soldatkin V. V., Soldatkin V. M. [Estimation of the spread of aerodynamic characteristics in multifunctional air pressure receiver]. Journal of Instrument Engineering. 2022, Vol. 65, No. 6, P. 398–405. DOI: 10.17586/0021-3454-2022-65-6-398-405 (In Russ.).
  • Versin A. A., Molchanov A. M., Monakhova V. P., Afanasyev V. A. [Development of a mathematical model of the of gas flow for the calibration stand of full and static pressure receivers]. Omsk Scientific bulletin. 2022, No. 3(183), P. 117–121. DOI: 10.25206/1813-8225-2022-183-117-121 (In Russ.).
  • Nguyen T. T., Sboev D. S., Tkachenko V. V. [Experimental set-up for the low speed with tunnel AT-3 of Center of aeromechanics and flight engineering MIPT]. Proceedings of MIPT. 2020, Vol. 12, No. 2, P. 161–176 (In Russ.).
  • Vershinin I. D., Kovalenko A. N., Neburchilov S. A. [A mathematical model of a receiver for determining the Mach number and the direction of the flow velocity]. Uchenye zapiski TsAGI. 1986, Vol. XVII, No. 6, P. 116–121 (In Russ.).
  • Petunin A. N., Ponomarev L. F. [Full and static pressure receiver with aerodynamic compensation for deterring the Mach number at high subsonic and supersonic flow velocities]. Uchenye zapiski TsAGI. 1999, Vol. XXX, No. 1–2, P. 84–87 (In Russ.).
  • Klimov A. S., Simakova N. K. et al. Usroystvo dlya opredeleniya chisla Makha na letatel’nom apparate [A device for determining the Mach number on aircraft]. Patent RF, no. SU147185A1, 2005.
  • Erashov G. F., Kozlov V. S. Laboratornyy praktikum po aerogazodinamike sverkhzvukovykh skorostey [Laboratory workshop on aerodynamics of supersonic speeds]. Krasnoyarsk, 2005, 67 p. (In Russ.).
  • Drozdov S. M., Rtisheva A. S. [Numerical study on air flow in wind tunnel circuit]. Mat. mezhdunarodnoy. konferentsii “Sovremennye problemy teplofiziki i energetiki”. 2017, Vol. 1, P. 131–132. (In Russ.).
  • Maksimov A. D., Shustov S. A. [On the efficiency of using the Navier – Stokes approximation in thermogasdynamic calculation of low – thrust liquid propellant rocket engines at low Reynolds numbers]. Vestnic of Samara University. Aerospace and Mechanical Engineering. 2022, Vol. 21. No. 1, P. 67–80. DOI: 10.18287/2541-7533-2022-21-1-67-80.
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