Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method
Upgrading of cracked PFO (Pyrolysis fuel oil) for production of fuels, such as gasoline and light gasoil, was carried out in a semi batch reactor. Two different kinds of mesoporous and microporous catalysts, MCM-41 and ZSM-5, were used. Modification methods, such as ion exchange and impregnation wit...
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doaj-428a08a1eb994f859cf08902ef7aaee52020-11-25T03:13:21ZengUniversity of TehranJournal of Chemical and Petroleum Engineering2423-673X2423-67212020-06-01541133310.22059/jchpe.2019.280824.1277Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method Alizad, Sina0 Moosavi, Elham Sadat1 Karimzadeh, Ramin2Chemical Engineering Faculty, Tarbiat Modares University, Tehran, Tehran, P.O. Box 14155-4838, Iran Department of Materials and Chemical Engineering, Buein Zahra Technical University, Buein Zahra, Qazvin, P.O. Box 34517-45346, Iran Chemical Engineering Faculty, Tarbiat Modares University, Tehran, Tehran, P.O. Box 14155-4838, Iran Upgrading of cracked PFO (Pyrolysis fuel oil) for production of fuels, such as gasoline and light gasoil, was carried out in a semi batch reactor. Two different kinds of mesoporous and microporous catalysts, MCM-41 and ZSM-5, were used. Modification methods, such as ion exchange and impregnation with Fe and Ti, were done for tuning the acidity of the catalyst. XRD, FT-IR, and XRF analyzes were used to identify the structure and composition of the catalysts. Among the catalysts used in low temperature catalytic cracking of cracked PFO in a moderate temperature (380 °C), 3%Ti/H-MCM-41 showed the best catalytic performance. After choosing the best catalyst, an experimental design was carried out using response surface method with a five-level central composite design model. The effect of 3 main parameters, i.e. reaction temperature (360-400 °C), catalyst to feed ratio (0.04-0.1), and loading of Ti (0-5%) were investigated on liquid productivity and light olefin production. Design Expert software was used to maximize the sum of liquid yield and olefins in the gas. The best catalyst is 2.5%Ti/H-MCM-41. In optimum, 380 °C with the ratio of 0.1 g/g catalyst to feed over 2.5%Ti/H-MCM-41, the wt.% of liquid, gas, and solid products are 80 wt. %, 10 wt. %, and 10 wt. %, respectively. At this condition, 26 wt. % of liquid product was in the range of gasoline (C5-C10) and the rest (i.e. C11+) was considered in the range of light gas oil. Light olefins of the obtained gas products were about 2.74 wt. %.https://jchpe.ut.ac.ir/article_73979_9d407d4301c9ce92106cb02ec8d263b2.pdfal-mcm-41catalytic crackingpyrolysis fuel oilresponse surface |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Alizad, Sina Moosavi, Elham Sadat Karimzadeh, Ramin |
spellingShingle |
Alizad, Sina Moosavi, Elham Sadat Karimzadeh, Ramin Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method Journal of Chemical and Petroleum Engineering al-mcm-41 catalytic cracking pyrolysis fuel oil response surface |
author_facet |
Alizad, Sina Moosavi, Elham Sadat Karimzadeh, Ramin |
author_sort |
Alizad, Sina |
title |
Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method |
title_short |
Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method |
title_full |
Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method |
title_fullStr |
Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method |
title_full_unstemmed |
Low Temperature Catalytic Cracking of Heavy Feedstock Optimized by Response Surface Method |
title_sort |
low temperature catalytic cracking of heavy feedstock optimized by response surface method |
publisher |
University of Tehran |
series |
Journal of Chemical and Petroleum Engineering |
issn |
2423-673X 2423-6721 |
publishDate |
2020-06-01 |
description |
Upgrading of cracked PFO (Pyrolysis fuel oil) for production of fuels, such as gasoline and light gasoil, was carried out in a semi batch reactor. Two different kinds of mesoporous and microporous catalysts, MCM-41 and ZSM-5, were used. Modification methods, such as ion exchange and impregnation with Fe and Ti, were done for tuning the acidity of the catalyst. XRD, FT-IR, and XRF analyzes were used to identify the structure and composition of the catalysts. Among the catalysts used in low temperature catalytic cracking of cracked PFO in a moderate temperature (380 °C), 3%Ti/H-MCM-41 showed the best catalytic performance. After choosing the best catalyst, an experimental design was carried out using response surface method with a five-level central composite design model. The effect of 3 main parameters, i.e. reaction temperature (360-400 °C), catalyst to feed ratio (0.04-0.1), and loading of Ti (0-5%) were investigated on liquid productivity and light olefin production. Design Expert software was used to maximize the sum of liquid yield and olefins in the gas. The best catalyst is 2.5%Ti/H-MCM-41. In optimum, 380 °C with the ratio of 0.1 g/g catalyst to feed over 2.5%Ti/H-MCM-41, the wt.% of liquid, gas, and solid products are 80 wt. %, 10 wt. %, and 10 wt. %, respectively. At this condition, 26 wt. % of liquid product was in the range of gasoline (C5-C10) and the rest (i.e. C11+) was considered in the range of light gas oil. Light olefins of the obtained gas products were about 2.74 wt. %. |
topic |
al-mcm-41 catalytic cracking pyrolysis fuel oil response surface |
url |
https://jchpe.ut.ac.ir/article_73979_9d407d4301c9ce92106cb02ec8d263b2.pdf |
work_keys_str_mv |
AT alizadsina lowtemperaturecatalyticcrackingofheavyfeedstockoptimizedbyresponsesurfacemethod AT moosavielhamsadat lowtemperaturecatalyticcrackingofheavyfeedstockoptimizedbyresponsesurfacemethod AT karimzadehramin lowtemperaturecatalyticcrackingofheavyfeedstockoptimizedbyresponsesurfacemethod |
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