

Modification of ZSM-5 Zeolite in order to Improve the Yield of Light Olefins during Cracking of Oil and Plant Materials
https://doi.org/10.18412/1816-0387-2018-4-31-40
Abstract
The influence of modifying HZSM-5 zeolite as a component of a bizeolite catalyst in transformations of hydrotreated vacuum gasoil, plant oil, and a mixture of vacuum gasoil and plant oil was studied. The modification with phosphorus was established to decrease the specific surface area and meso- and macropore volumes in HZSM-5 zeolite; the higher phosphorus content, the lower main characteristics of the zeolite porous structure. A decrease in the total acidity of P/HZSM-5 and quantitative redistribution between weak and moderate acid sites also was observed. Testing of the zeolites in catalytic cracking revealed that the phosphorus modification favored an increase in the total yield of propane-propylene and butane-butylene fractions containing olefins in high proportions. Alkali treatment of HZSM-4 zeolite with a high silicate module resulted in a higher silicon extraction and in a considerable increase in the specific surface area of mesopores. In addition, strong acid sites of the zeolite were transformed to weaker ones and/or their exposure changed due to partial silicon removal.
About the Authors
V. P. DoroninRussian Federation
P. V. Lipin
Russian Federation
O. V. Potapenko
Russian Federation
V. V. Vysotsky
Russian Federation
T. I. Gulyaeva
Russian Federation
T. P. Sorokina
Russian Federation
References
1. Bortnovsky O., Sazama P., Wichterlova B. // Appl. Catal., A. 2005. V. 287. № 2. P. 203-213.
2. Bezouhanova C.P., Dimitrov Chr., Nenova V., Dimitrov L., Lechert H. // Appl. Catal. 1985. V. 19. № 1. P. 101-108.
3. Romero M.D., Calles J.A., Rodríguez A., de Lucas A. // Microporous Mater. 1997. V. 9. № 5-6. P. 221-228.
4. Gao X., Tang Z., Zhang H., Ji D., Lu G., Wang Z., Tan Z. // J. Mol. Catal. A: Chem. 2010. V. 325. P. 36-39.
5. Blasco T., Corma A., Martínez-Triguero J. // J. Catal. 2006. V. 237. № 2. P. 267-277.
6. Rahimi N., Karimzadeh R. // Appl. Catal., A. 2011. V. 398. № 1-2. P. 1-17.
7. Ding J., Wang M., Peng L., Xue N., Wang Y., He M.-Y. // Appl. Catal., A. 2015. V. 503. P. 147-155.
8. Алтынкович Е.О., Потапенко О.В., Сорокина Т.П., Доронин В.П., Гуляева Т.И., Талзи В.П. // Нефтехимия. 2017. Т. 57. № 2. С. 156—162.
9. Xue N., Chen X., Nie L., Guo X., Ding W., Chen Y., Gu M., Xie Z. // J. Catal. 2007. V. 248. № 1. P. 20-28.
10. Caeiro G., Magnoux P., Lopes J.M., Ribeiro F.R., Menezes S.M.C., Costa A.F., Cerqueira H.S. // Appl. Catal., A. 2006. V. 314. № 2. P. 160-171.
11. Wang X., Zhao Z., Xu C., Duan A., Zhang L., Jiang G. // Journal of Rare Earths. 2007. V. 25. № 3. P. 321-328.
12. Awayssa O., Al-Yassir N., Aitani A., Al-Khattaf S. // Appl. Catal., A. 2014. V. 477. P. 172-183.
13. Lü Q., Lin X., Wang L., Gao J., Bao X. // Catal. Commun. 2016. V. 83. P. 31-34.
14. Han D., Sun N., Liu J., Li Ch., Shan H., Yang Ch. // Journal of Energy Chemistry. 2014. V. 23. № 4. P. 519-526.
15. Jung J.S., Park J.W., Seo G. // Appl. Catal., A. 2005. V. 288. № 1-2. P. 149-157.
16. Silaghi M.-C., Chizallet C., Raybaud P. // Microporous Mesoporous Mater. 2014. V. 191. P. 82-96.
17. Melero J.A., Clavero M.M., Calleja G., Garciía A., Miravalles R. and Galindo T. // Energy Fuels. 2010. V. 24. P. 707-717.
18. Bielansky P., Weinert A., Schönberger C., Reichhold A. // Fuel Process. Technol. 2011. V. 92. P. 2305-2311.
19. Shan H., Liu Y., Chen X., Yang C. // Shiyou Xuebao, Shiyou Jiagong/Acta Petrolei Sinica (Petroleum Processing Section) 2015. V. 31. № 2. Р. 460-467.
20. Lovás P., Hudec P., Hadvinová M., Ház A. // Fuel Process. Technol. 2015. V. 134. P. 223-230.
21. Abbasov V., Mammadova T., Aliyeva N., Abbasov M., Movsumov N., Joshi A., Lvov Y., Abdullayev E. // Fuel. 2016. V. 181. P. 55-63.
22. Доронин В.П., Сорокина Т.П., Потапенко О.В., Липин П.В., Дмитриев К.И., Короткова Н.В., Гурьевских С.Ю. // Катализ в промышленности. 2016. Т. 16. № 6. С. 69—74.
23. Доронин В.П., Липин П.В., Потапенко О.В., Журавлев Я.Е., Сорокина Т.П. // Химия в интересах устойчивого развития. 2017. Т. 25. С. 385—392.
24. Карнаухов А.П. Адсорбция. Текстура дисперсных и пористых материалов. Новосибирск: Наука. Сиб. Предприятие РАН, 1999. 470 с.
25. Thommes M., Kaneko K., Neimark A.V., Olivier J.P., Rodriguez- Reinoso F., Rouquerol J. and Sing K.S.W. // Pure Appl. Chem. 2015. V. 87. № 9—10. P. 1051-069.
26. Zhu X., Lobban L.L., Mallinson R.A., Resasco D.E. // J. Catal. 2010. V. 271. № 1. P. 88-98.
27. Jiang G., Zhang L., Zhao Zh., Zhou X., Duan A., Xu Ch., Gao J. // Appl. Catal., A. 2008. V. 340. № 2. P. 176-182.
28. Guisnet M., Gnep N.S., Aittaleb D., Doyemet Y.J. // Appl. Catal., A. 1992. V. 87. № 2. P. 255-270.
29. Katikaneni S.P.R., Adjaye J.D., Idem R.O., and Bakhshi N.N. // Ind. Eng. Chem. Res. 1996. V. 35. P. 3332-3346.
30. Benson T.J., Hernandez R., French W.T., Alley E.G., Holmes W.E. // J. Mol. Catal. A: Chem. 2009. V. 303. P. 117-123.
31. Ong Y.K., Bhatia S. // Energy. 2010. V. 35. P. 111-119.
Review
For citations:
Doronin V.P., Lipin P.V., Potapenko O.V., Vysotsky V.V., Gulyaeva T.I., Sorokina T.P. Modification of ZSM-5 Zeolite in order to Improve the Yield of Light Olefins during Cracking of Oil and Plant Materials. Kataliz v promyshlennosti. 2018;18(4):31-40. (In Russ.) https://doi.org/10.18412/1816-0387-2018-4-31-40