NEFTNING OG‘IR QOLDIQLARINI QAYTA ISHLASHNING ZAMONAVIY TEXNOLOGIYALARI: XALQARO VA MILLIY TADQIQOTLAR TAHLILI
PDF

Keywords

og‘ir neft qoldiqlari
gidrokrekking
katalitik kreking
akvatermoliz
visbreking
koks
vakuum qoldig‘i
neft-kimyo mahsulotlari
katalizator
O‘zbekiston neft sanoati.

How to Cite

NEFTNING OG‘IR QOLDIQLARINI QAYTA ISHLASHNING ZAMONAVIY TEXNOLOGIYALARI: XALQARO VA MILLIY TADQIQOTLAR TAHLILI. (2026). Qo‘qon DPI. Ilmiy Xabarlar Jurnali, 8(5), 351-358. https://doi.org/10.70728/a.series.tab.v08.i05.048

Abstract

Ushbu maqola neftning og‘ir qoldiqlari (mazut, gudron, vakum qoldig‘i) ni qayta ishlash va qayta tiklash bo‘yicha so‘nggi o‘n yilliklar davomida olib borilgan xalqaro va o‘zbek olimlari tadqiqotlarining tizimli adabiyotlar tahliliga bag‘ishlangan. Maqolada termal, katalitik, gidrogen qo‘shish hamda yangi avlod texnologiyalar – akvatermoliz, slurry-fazali gidrokrekking, nano-dispersli katalizatorlar – qiyosiy tahlil qilinadi. J. Ancheyta, J. G. Speight, M. S. Rana, M. A. Varfolomeev kabi yetakchi xalqaro olimlar hamda O‘zbekistonning Samarqand davlat universiteti va Farg‘ona davlat texnika universiteti tadqiqotchilari – A. Ali Axunov, N. Muxamadiyev, O. Mirzayev – ishlari maxsus tahlil etiladi. Maqola PhD tadqiqotchilari uchun mavzudagi oldingi ilmiy ishlarning to‘liq adabiyotlar tahliliga xizmat qiladi. Maqola IMRAT (Kirish, Metodologiya, Natijalar, Tahlil, Xulosa) tuzilishi asosida yozilgan.
PDF

References

1. Marafi, M., Al-Dahhan, M. H., & Yatimi, Y. (2024). Advancement in heavy oil upgrading and sustainable exploration emerging technologies. Arabian Journal of Chemistry / Journal of King Saud University, 17(4), 105659. https://doi.org/10.1016/j.arabjc.2024.105659

2. Ancheyta, J., & Speight, J. G. (Eds.). (2007). Hydroprocessing of Heavy Oils and Residua. CRC Press / Taylor & Francis Group, Boca Raton.

3. Rana, M. S., Sámano, V., Ancheyta, J., & Díaz, J. A. I. (2007). A review of recent advances on process technologies for upgrading of heavy oils and residues. Fuel, 86(9), 1216–1231. https://doi.org/10.1016/j.fuel.2006.08.004

4. Speight, J. G. (2014). The Chemistry and Technology of Petroleum (5th ed.). CRC Press / Taylor & Francis Group, Boca Raton.

5. Prajapati, R., Kohli, K., & Maity, S. K. (2021). Slurry phase hydrocracking of heavy oil and residue to produce lighter fuels: An experimental review. Fuel, 288, 119686. https://doi.org/10.1016/j.fuel.2020.119686

6. Félix, G., & Ancheyta, J. (2019). Using separate kinetic models to predict liquid, gas, and coke yields in heavy oil hydrocracking. Industrial & Engineering Chemistry Research, 58(19), 7973–7979. https://doi.org/10.1021/acs.iecr.9b00904

7. Djimasbe, R., Galiullin, E. A., Varfolomeev, M. A., Fakhrutdinov, R. Z., Al-Muntaser, A. A., & Farhadian, A. (2021). Experimental study of non-oxidized and oxidized bitumen obtained from heavy oil. Scientific Reports, 11, 8213. https://doi.org/10.1038/s41598-021-87398-2

8. Sahu, R., Song, B. J., Im, J. S., Jeon, Y.-P., & Lee, C. W. (2015). A review on the oil-soluble dispersed catalyst for slurry-phase hydrocracking of heavy oil. Journal of Industrial and Engineering Chemistry, 27, 12–24. https://doi.org/10.1016/j.jiec.2014.12.019

9. Oloruntoba, A., Zhang, Y., & Hsu, C. S. (2022). Review of fluid catalytic cracking (FCC) catalyst regeneration intensification technologies. Energies, 15(6), 2061. https://doi.org/10.3390/en15062061

10. Khanghah, M. A. (et al.) (2025). Kinetic modeling and CFD simulation of in-situ heavy oil upgrading using batch reactors and porous media. Scientific Reports, 15, 13624. https://doi.org/10.1038/s41598-025-98494-y

11. Andijan Oil and Gas. (n.d.). Oil Refining Operations. Retrieved from https://andijanoilandgas.com/our-operations/oil-refining/

12. Browning, B., Alvarez, P., Jansen, T., Lacroix, M., Geantet, C., & Tayakout-Fayolle, M. (2021). A review of thermal cracking, hydrocracking, and slurry phase hydroconversion kinetic parameters in lumped models for upgrading heavy oils. Energy & Fuels, 35(19), 15360–15380. https://doi.org/10.1021/acs.energyfuels.1c02214

13. NS Energy. (2020). Bukhara Oil Refinery Modernisation, Karaulbazar, Uzbekistan. Retrieved from https://www.nsenergybusiness.com/projects/bukhara-oil-refinery-modernisation/

14. Kadiev, K., Maximov, A. L., & Ancheyta, J. (2023). Novel Technologies for Upgrading Heavy and Extra-Heavy Oil. In J. Ancheyta, M. Varfolomeev, & C. Yuan (Eds.), Catalytic In-Situ Upgrading of Heavy and Extra-Heavy Crude Oils (pp. 417–460). Wiley. https://doi.org/10.1002/9781119871507.ch11

15. Ali Akhunov, A., Aliev, F., Mukhamadiev, N., Kahwir, O. F., Dengaev, A., Majeed, M. Y., Esmaeel, M., Al-Qaz, A., Mirzaev, O., & Vakhin, A. (2025). Aquathermolytic upgrading of Zarafshanian extra heavy oil using ammonium alum. Molecules, 30(14), 3013. https://doi.org/10.3390/molecules30143013

16. Prajapati, R., Kohli, K., & Maity, S. K. (2022). Role of catalyst defect sites towards product selectivity in the upgrading of vacuum residue. Fuel, 314, 123062. https://doi.org/10.1016/j.fuel.2021.123062

17. Sitnov, S. A., Khelkhal, M. A., Mukhamatdinov, I. I., Feoktistov, D. A., & Vakhin, A. V. (2022). Iron oxide nanoparticles impact on improving reservoir rock minerals catalytic effect on heavy oil aquathermolysis. Fuel, 327, 124956. https://doi.org/10.1016/j.fuel.2022.124956

18. Muñoz, J. A. D., Páez, G., & Ancheyta, J. (2023). Combination of hydrotreating and delayed coking technologies for conversion of residue. Chinese Journal of Chemical Engineering, 63, 209–219. https://doi.org/10.1016/j.cjche.2023.03.029

19. Akramov, B. Sh., & Umedov, Sh. X. (2010). Neft qazib olish bo'yicha ma'lumotnoma [Handbook on Oil Extraction]. Toshkent: Fan va texnologiya, 368 b.

Creative Commons License

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

Copyright (c) 2026 Murodjon Zafarjon o'g'li Ma'murov (Author)