

Structural and Catalytic Properties of the Binary Systems Alumina – Amorphous Aluminosilicate
https://doi.org/10.18412/1816-0387-2023-1-6-14
Abstract
The amorphous aluminosilicate – alumina systems were examined using various physicochemical methods, including the analysis of 27Al NMR spectra of solid samples, estimation of the catalyst acidity by temperature-programmed desorption of ammonia, investigation of the sample structure by X-ray diffraction analysis, and thermogravimetric analysis of the samples. A study on the catalytic properties of the samples upon cracking on the model feedstock n-dodecane in a mixture with 2-methylthiophene revealed that conversion of the feedstock increases in the series: 100 % Al2O3 (AH) > 70 % Al-Si + 30 % Al2O3 (AH) > 30 % Al-Si + 70 % Al2O3 (AH) > 100 % Al-Si (AH – aluminum hydroxide obtained by sulfate method; Al-Si – amorphous aluminosilicate). An increase in the calcination temperature of the samples from 500 to 700 °C decreases the conversion of the feedstock. The growing contribution of hydrogen transfer reactions leads to an increase in the formation selectivity of hydrogen sulfide and a decrease in the content of sulfur compounds in the liquid products.
About the Authors
V. P. DoroninRussian Federation
T. V. Bobkova
Russian Federation
T. P. Sorokina
Russian Federation
O. V. Potapenko
Russian Federation
A. S. Yurtaeva
Russian Federation
N. N. Leontieva
Russian Federation
T. I. Gulyaeva
Russian Federation
References
1. Каминский Э.Ф. Глубокая переработка нефти: технологический и экологический аспекты / Э.Ф. Каминский, В.А. Хавкин. М.: Техника, 2001. 384 с.
2. Войцеховский Б.В. Каталитический крекинг. Катализаторы, химия, кинетика: пер. с англ. / Б.В. Войцеховский, А. Корма. М.: Химия, 1990. 152 с.
3. Доронин В.П. Химический дизайн катализаторов крекинга / В.П. Доронин, Т.П. Сорокина // Российский химический журнал. 2007. Т. 51. № 4. С. 23—28.
4. Letzsch W. // Handbook of Petroleum Processing; Treese, AS, Pujadó, RP, Jones, JDS, Eds. 2015. Р. 261—316.
5. Горденко В.И. и др. // Нефтепереработка и нефтехимия. 2005. № 8. С. 20—22.
6. Doronin V.P. // Catalysis Today. 2021. Vol. 378. P. 75—82.
7. Дик П.П. и др. // Катализ в промышленности. 2014. № 3. С. 49—58.
8. Перейма В.Ю. // Журнал прикладной химии. 2015. Т. 88. Вып. 12. С. 1722—1728.
9. Dik P.P. et al. // Catalysis Today. 2016. Vol. 271. P. 154—162.
10. Li T. et al. // Applied Catalysis A, General. 2022. Vol. 630. P. 118439.
11. Hsu C.S. et al. Springer Handbook of Petroleum Technology — Springer International Publishing AG 2017.
12. Xu S. et al. // ACS Omega. 2021. Vol. 6 (5). P. 4090—4099.
13. Düvel A. et al. // The Journal of Physical Chemistry C. 2011. Vol. 115 (46). P. 22770—22780.
Review
For citations:
Doronin V.P., Bobkova T.V., Sorokina T.P., Potapenko O.V., Yurtaeva A.S., Leontieva N.N., Gulyaeva T.I. Structural and Catalytic Properties of the Binary Systems Alumina – Amorphous Aluminosilicate. Kataliz v promyshlennosti. 2023;23(1):6-14. (In Russ.) https://doi.org/10.18412/1816-0387-2023-1-6-14