Analysis of the vaporization processes in the vehicle fuel tank. New equation for determining the vapor amount

Author:

Ter-Mkrtich'yan G. G.1

Affiliation:

1. Federal State Unitary Enterprise "Central Scientific Research Automobile and Automotive Engines Institute"

Abstract

Introduction (problem statement and relevance). Hydrocarbon emissions from vaporizationtank fuel contribute significantly to the total emissions of hazardous substances from vehicles equipped with spark ignition engines. To meet the established standards for limiting hydrocarbon emissions caused by evaporation, all modern vehicles use fuel vapor recovery systems, the optimal parameters of which require the availability and application of mathematical models and methods for their determination.The purpose of the research was to develop a model of vapor generation processes in the car fuel tank and a methodology for determining the main quantitative parameters of the vapor-air mixture.Methodology and research methods. The analysis of the processes of vapor generation in the fuel tank was carried out. It was shown that the mass of hydrocarbons generated in the steam space was directly proportional to its volume and did not depend on the amount of fuel in the tank.Scientific novelty and results. New analytical dependences of the vaporization amount on the saturated vapor pressure, barometric pressure, initial fuel temperature and fuel heating during parking have been obtained.Practical significance. A formula was obtained to estimate the temperature of gasoline boiling starting in the tank, depending on the altitude above sea level and the volatility of gasoline, determined by the pressure of saturated vapors. Using the new equations, the vaporization analysis in real situations (parking, idling, refueling, explosive concentration of vapors) was carried out.

Publisher

FSUE Central Scientific Research Automobile and Automotive Engines Institute (FSUE NAMI)

Reference10 articles.

1. Grigor'ev M. A., Zheltyakov V. T., Ter-Mkrtich'yan G. G., Terekhin A. N. [Modern automotive engines and their prospects]. Avtomobil'naya promyshlennost', 1996, no. 6, pp. 10-14. (In Russian)

2. Saykin A. M., Ter-Mkrtichyan G. G., Karpukhin0 K. E., Pereladov A. S., Zhuravlev A. V., Yakunova E. A. Air quality within vehicles. Russian Engineering Research, 2017, vol. 37, no. 5, pp. 424-427.

3. Gureev A. A., Fuks I. G., Lashkhi V. L. [Chemotology: a textbook for universities]. Moscow, Khimiya Publ., 1986. 367 p. (In Russian)

4. Gureev A. A., Kamfer G. M. [Volatility of fuels for automotive engines]. Moscow, Khimiya Publ., 1982. 264 p. (In Russian)

5. Ter-Mkrtich'yan G. G., Mikerin N. A., Glaviznin V. V., Balashov D. Yu., Arabyan M. E. [The thermodynamic system "fuel tank of a vehicle" energy model. Processes of unsteady heat transfer at constant fuel mass]. Trudy NAMI, 2020, no. 4 (283), pp. 82-93. DOI: 10.51187/0135-3152--4-82-93. (In Russian)

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