Preview

Proceedings of the Voronezh State University of Engineering Technologies

Advanced search

Research of thermal stability of the VG transformer oil in the presence of individual sulfides

https://doi.org/10.20914/2310-1202-2018-3-336-340

Abstract

In connection with the known negative impact of organosulfur connections on quality of transformer oils and the corresponding rise in price of their production including various ways of cleaning of oil fractions of organosulfur connections re-searches of structural and group structure of oil organosulfur connections and their influence on operational properties of transformer oil have been conducted. Influence of individual sulfides on thermal stability of the brand VG transformer oil in electric field is studied by tension of 30 kV/cm at change of concentration of sulfides in range from 0 to 1,0% from the mass of oil. The research was con-ducted with use of methylbenzylsulfide and a metilfenilsulfide on the basis of the brand VG transformer oil without addition of an ionol. It is established that individual sulfides metilbenzil- and metilfenilsulfide treat the anti-oxidizing additives reducing oil aging speed. For obtaining the maximum thermal stability of transformer oil the optimum concentration of individual sulfides making 0,5% of the mass of oil is defined. The analysis of the inhibiting ability metilbenzil-and a metilfenilsulfida has shown that more effective additive to oil is methylbenzylsulfide which increases thermal stability of oil and reduces amount of the absorbed air more (by 2,2 times) in comparison with the metilfenilsulfide, 0,5% of the mass of oil taken at the optimum concentration equal. The carried-out comparative analysis of a molecular structure of methylbenzylsulfide and metilfenilsulfide has shown that with an identical length of a paraffin chain replacement of a naphthenic cycle by an aromatic kernel leads to decrease in efficiency of individual sulfide as anti-oxidizing additive to oil.

About the Authors

L. R. Gaynullina
Kazan State Power Engineering University
Cand. Sci. (Engin.), associate professor, Рower supply of enterprises and energy resource saving technologies department, Krasnoselskaya str., 51 Kazan, 420066, Russia


V. P. Tutubalina
Kazan State Power Engineering University
Dr. Sci. (Engin.), professor, Chief Researcher, Krasnoselskaya str., 51 Kazan, 420066, Russia


References

1. Gimatdinov R.R., Fakhrutdinov R.Z. State of production of base oils in Russia. Vestnik tekhnologicheskogo universiteta [Bulletin of the Technological University]. 2016. vol. 19. no. 11. pp. 58–62. (in Russian)

2. Borisov I.M., Gazizova Z.Sh., Shayakhmetova G.R., Faizrakhmanov I.S. Catalytic oxidation of petroleum sulphides by hydrogen peroxide under the influence of molybdenum or tungstic acids in the presence of acetone additives. Neftekhimiya [Petrochemistry]. 2015. vol. 55. no. 3. pp. 236–240. (in Russian)

3. Rakhmanov E.V., Tarakanova A.V., Valieva T., Akopyan A.V. et al. Oxidative desulfurization of a diesel fraction with hydrogen peroxide in the presence of catalysts based on transition metals. Neftekhimiya [Petrochemistry]. 2014. vol. 54. no. 1. pp. 49–51. (in Russian)

4. Betiha M.A., Rabie A.M., Ahmed H.S., Abdelrahman A.A. et al. Oxidative desulfurization using graphene and its composites for fuel containing thiophene and its derivatives: An update review. Egyptian Journal of Petroleum. Available at: https://doi.org/10.1016/j.ejpe.2017.10.006

5. Papina E.N., Maydantsev S.A., Sobchinsky A.I. Technologies of desulfurization of high-sulfur oils: problems and prospects. Molodezhnyj nauchnyj vestnik [Youth scientific bulletin]. 2017. no. 11 (24). pp. 154–158. (in Russian)

6. Kharlampidi Kh.E., Gaynullina L.R., Tutubalina V.P. Individual sulfur compounds – inhibitors of oxidation of hydrocarbons of transformer oil. Vestnik tekhnologicheskogo universiteta [Bulletin of the Technological University]. 2016. vol. 19. No. 7. pp. 5–7. (in Russian)

7. Kharlampidi Kh. E., Gaynullina LR, Tutubalina V.P. Influence of hydrocarbon composition and sulfur compounds on the operational properties of transformer oil. Vestnik tekhnologicheskogo universiteta [Bulletin of the Technological University]. 2016. vol. 19. no. 6. pp. 5–7. (in Russian)

8. Vse o korrozii [Everything about corrosion]. Available at: https://www.okorrozii.com/metalloizdeliya.html (in Russian)

9. Rizvanova G.I., Gafiyatullin L.G., Garifullin M.Sh. et al. Features of transformer oil aging under real operating conditions. Izvestiya vuzov. Problemy ehnergetiki [Izvestiya Vuzov. Problems of energy]. 2015. no. 9-10. pp. 91–94. (in Russian)

10. Lyadov N.M., Turanova O.A., Kozlov V.K., Turanov A.N. Study of aging products of transformer oil by scanning electron microscopy. Himiya i tekhnologiya topliv i masel [Chemistry and Technology of Fuels and Oils]. 2013. no. 4. pp. 53–56. (in Russian)

11. Martin D., Cui Yi, Ekanayake C., Ma H. et al. An Updated Model to Determine the Life Remaining of Transformer Insulation. IEEE Transactions on Power Delivery. 2015. vol. 30. no. 1. pp. 395–402.·doi: 10.1109/TPWRD.2014.2345775

12. Wang X., Tang C., Huang B., Hao J. et al. Review of Research Progress on the Electrical Properties and Modification of Mineral Insulating Oils Used in Power Transformers. Energies. 2018. no. 11. pp. 487–518.


Review

For citations:


Gaynullina L.R., Tutubalina V.P. Research of thermal stability of the VG transformer oil in the presence of individual sulfides. Proceedings of the Voronezh State University of Engineering Technologies. 2018;80(3):336-340. (In Russ.) https://doi.org/10.20914/2310-1202-2018-3-336-340

Views: 575


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2226-910X (Print)
ISSN 2310-1202 (Online)