ANALYSIS OF METHODS FOR REDUCING GASOLINE EVAPORATION LOSSES IN VERTICAL CYLINDRICAL STORAGE TANKS
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Abstract
This article analyzes methods for reducing gasoline evaporation losses in vertical cylindrical storage tanks. The main sources of evaporative losses are identified as “standing losses” and “working losses,” which occur due to daily temperature fluctuations and technological operations such as filling and emptying the tanks. The influence of key factors affecting evaporation intensity, including Reid Vapor Pressure (RVP), ambient temperature, tank volume, and structural characteristics, is examined. A comparative analysis of fixed-roof tanks, floating-roof tanks, and hermetically sealed tanks is presented. The results show that the installation of deflector discs in pressure-vacuum valves and the application of vapor condensation technologies can significantly reduce gasoline evaporation losses. The proposed approach improves both the economic efficiency of petroleum product storage and environmental safety.
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References
[1] Gary, J. H., Handwerk, G. E., & Kaiser, M. J. (2016). Petroleum refining: Technology and economics. CRC Press.
[2] Speight, J. G. (2014). The chemistry and technology of petroleum. CRC Press. DOI: https://doi.org/10.1201/b16559
[3] ASTM International. (n.d.). ASTM D323: Standard test method for vapor pressure of petroleum products (Reid method). ASTM.
[4] Smith, J. M., Van Ness, H. C., & Abbott, M. M. (2005). Introduction to chemical engineering thermodynamics. McGraw-Hill.
[5] U.S. Environmental Protection Agency. (2022). AP-42: Compilation of air pollutant emission factors. Chapter 7 – Liquid storage tanks.
[6] Sahakyan, L., et al. (2018). Evaporation losses from petroleum storage tanks. Journal of Loss Prevention in the Process Industries.
[7] American Petroleum Institute. (n.d.). API Standard 2000: Venting atmospheric and low-pressure storage tanks.
[8] ГОСТ 31385–2016. (2016). Вертикальные цилиндрические резервуары.
[9] Teng, Y., et al. (2017). Floating roof tank evaporation loss analysis. Energy & Fuels.
[10] International Organization for Standardization. (n.d.). ISO 6974: Natural gas — Determination of composition by gas chromatography.
[11] Perry, R. H., & Green, D. W. (2008). Perry’s chemical engineers’ handbook. McGraw-Hill.
[12] Seader, J. D., & Henley, E. J. (2011). Separation process principles. Wiley.
[13] Saxatov, B. G. (2024). Nordon gazni qayta ishlashga tayyorlash jarayonida sovutish qurilmalaridagi asoratlar. Pedagog respublika ilmiy jurnali, 7(11), 159–162.
[14] Saxatov, B. G. (2024). Tabiiy gazni qayta ishlashda desorbsiya jarayonini samaradorligini oshirish. Sanoatda raqamli texnologiyalar, 4(2), 133–136. DOI: https://doi.org/10.70769/3030-3214.SRT.2.4.2024.52
[15] Saxatov, B. G. (2024). Absorbsiya usulida H₂S va CO₂ dan tozalashda yutuvchi komponentlarning to‘yinish balansi me’yorlari. Sanoatda raqamli texnologiyalar, 4(2), 150–155. DOI: https://doi.org/10.70769/3030-3214.SRT.2.4.2024.56
[16] Saxatov, B. G., & Jurayev, E. I. (2025). Nordon gazni qayta ishlashga tayyorlash jarayonida sovutish qurilmalaridagi salbiy asoratlar. Development of Science, 3(9), 205–211.