УСТРОЙСТВО ДЛЯ ОПРЕДЕЛЕНИЯ ВЯЗКОСТИ ТЕЧУЩИХ ЖИДКОСТЕЙ В ТРУБАХ МАЛОГО ДИАМЕТРА
Ключевые слова:
кинематическая вязкость, температура, вискозиметрия, терморезистор, малая трубаАннотация
В данной статье рассматривается использование величины вязкости жидкостей производственных процессах для определения взаимосвязи между изменением температуры жидкости. В результате проведённых исследований авторы установили, что температура смазочных масел и других сложных жидкостей, движущихся по трубам, изменяется зависимости от их вязкости. Согласно результатам этого исследования предприятие может определить и непрерывно контролировать вязкость продукции как в процессе производства, так и при транспортировке по трубопроводам.
Библиографические ссылки
Certificate for utility model RU 98816 U1 G01N 11/16 (2006.01).
Certificate for utility model RU 112769 U1 G01N 33/26 (2006.01).
Certificate for the proposed viscometer RU 2743511 C1 G01F 1/66 (2006.01).
Shamuratov, J., Mustafayev, O., Kadyrov, I. (2024). New Viscometers for Measuring the Viscosity of Liquids. Journal of Engineering, Article ID 6877306, 8 pages. https://doi.org/10.1155/2024/6877306
Mills, K.C., Chapman, L.A., Fox, A.B., Sridhar, D. (2001). Round robin project on estimation of slag viscosities. Scandinavian Journal of Metallurgy, 30, 396–403.
Battezati, L., Greer, A.L. (1989). The viscosity of liquid metals and alloys. Acta Metallurgica, 37(7), 1791–1802.
Shamuratov, J., Ruziev, I., Ismailov, M., et al. (2024). New Vibration Viscometer for Measuring the Viscosity of Liquids. Journal of Engineering Physics and Thermophysics, 97, 947–955. https://doi.org/10.1007/s10891-024-02964-5
Sasahara, S., Inaba, S., Tomita, M. (1992). New oscillating plate viscometer for instantaneous measurement of viscosity of molten slag. In: Proc. 4th Int. Conf. Molten Slags and Fluxes, 8–11 June, Sendai, Japan.
Liu, Z., Liu, Y., Tian, L. (2005). Experimental study on the relationship between the viscosity and concentration of glycerin. Journal of Yan'an University (Natural Science Edition), 04, 58–59.
Matyakubova, P.M., Ismatullaev, P.R., Shamuratov, Z.U. (2024). Oscillatory Viscometer for Measuring the Viscosity of Liquids. Journal of Engineering Physics and Thermophysics, 97, 134–141. https://doi.org/10.1007/s10891-024-02876-4
Seeton, C.J. (2006). Viscosity-temperature correlation for liquids. Tribology Letters, 22, 67–78.
Wunderlecht, R. (2004). Presented at the 2nd International Symposium on Physical Sciences in Space, Microgravity Sci. Technol. J. (Submitted), Toronto, Canada.
Shamuratov, J. (2023). New Vibration Viscometer for Measuring the High-Viscosity Liquids. In: Science of Youth – Science of the Future: Collection of Articles of the III Int. Scientific and Practical Conference, Petrozavodsk: ICNP "New Science", Europe, UK.
Braunschweig. (2004). Viscosity Standard Specimens 100B. PTB, Bundesalle, Vol. 52.
Seeton, C.J. (2006). Viscosity-temperature correlation for liquids. In: International Joint Tribology Conference, pp. 131–142.
Shamuratov, J.U. (2023). Method of viscosity measurement using a new oscillating-plate type viscometer for high-temperature. Material Instruments, 10.
Caetano, F.J.P., Fareleira, J.M.N.A., Oliveira, C.M.B.P., Wakeham, W.A. (2004). Viscosity of di-isodecylphthalate: A potential standard of moderate viscosity. International Journal of Thermophysics, 25(5), 1311–1322.
Knezevic, D., Savic, V. (2006). Mathematical modeling of change of dynamic viscosity as a function of temperature and pressure of mineral oils for hydraulic systems. Facta Universitatis. Series: Mechanical Engineering.
Shamuratov, J.U. (2023). Physical quantity measured by a vibration viscometer. Actual Problems of Modern Science, Education and Training, 3.
Mills, K.C., Chapman, L.A., Fox, A.B., Sridhar, S. (2001). 'Round robin' project on the estimation of slag viscosities. Scandinavian Journal of Metallurgy, 30(6), 396–403.
Matyakubova, P., Ismatullaev, P., Shamuratov, J. (2023). Development of vibration viscometer for industrial purpose and experience of its practice. In: Proc. IV Int. Scientific Conf. "Construction Mechanics, Hydraulics and Water Resources Engineering", Aug. 2023, Tashkent, Uzbekistan. E3S Web of Conferences, Vol. 365. https://doi.org/10.1051/e3sconf/202336505012
Coker, K. (2007). In: Ludwig's Applied Process Design for Chemical and Petrochemical Plants, Vol. 1 (4th ed.).
Micha, P. (2017). Temperature-viscosity models reassessed. Critical Reviews in Food Science and Nutrition, 15, 2663–2672.
Markova, L.V., Makarenko, V.M., Semenyuk, M.S., Zozulya, A.P. (2010). On-line monitoring of the viscosity of lubricating oils. Journal of Friction and Wear, 31, 433–442.