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Erschienen in: Chemistry and Technology of Fuels and Oils 5/2023

07.12.2023 | INNOVATIVE TECHNOLOGIES OF OIL AND GAS

Optimization of Catalyst Hydrogenation Technology for White Oil Production Based on Medium Pressure Hydrogenation

verfasst von: Rui Yu, Guangfa Miao, Hua Liu, Xueqin Han

Erschienen in: Chemistry and Technology of Fuels and Oils | Ausgabe 5/2023

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Abstract

Because the requirements of environmental protection are becoming strict, the preparation of petroleum products such as white oil needs to be harmless. In order to produce high-grade white oil products, it is necessary to study the medium-pressure hydrogenation technology and the suitable high-activity hydrogenation catalyst. The medium-pressure hydrogenation technology is proposed to produce white oil by a one-stage hydrogenation process under 7-8 MPa hydrogen partial pressure. The paper optimized the optimum conditions for medium-pressure hydrogenation of white oil. The initial reaction temperature was 210°C. The reaction pressure was 8 MPa. The liquid space velocity was 0.4 h-1. The hydrogen oil ratio was 500:1 V/V. The catalyst life evaluation experiment was carried out. The research results can provide a basis for the selection of hydrogenation catalysts.

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Literatur
1.
Zurück zum Zitat Kouhi, M., and Shams, K. (2019) Bulk features of catalytic co-pyrolysis of sugarcane bagasse and a hydrogen-rich waste: The case of waste heavy paraffin. Renewable Energy. 140, 970-982.CrossRef Kouhi, M., and Shams, K. (2019) Bulk features of catalytic co-pyrolysis of sugarcane bagasse and a hydrogen-rich waste: The case of waste heavy paraffin. Renewable Energy. 140, 970-982.CrossRef
2.
Zurück zum Zitat Wu, Q. (2023) Acidic and basic catalytic cracking technologies and its development prospects for crude oil to chemicals. Fuel. 332, 126132.CrossRef Wu, Q. (2023) Acidic and basic catalytic cracking technologies and its development prospects for crude oil to chemicals. Fuel. 332, 126132.CrossRef
3.
Zurück zum Zitat Monzavi, M., Chen, Z., Solouki, A., et al. (2022) Microwave-assisted catalytic pyrolysis of paraffin wax. Fuel. 320, 123886.CrossRef Monzavi, M., Chen, Z., Solouki, A., et al. (2022) Microwave-assisted catalytic pyrolysis of paraffin wax. Fuel. 320, 123886.CrossRef
4.
Zurück zum Zitat Verma, V., Mishra, A., Anand, M., et al. (2023) Catalytic hydroprocessing of waste cooking oil for the production of dropin aviation fuel and optimization for improving jet biofuel quality in a fixed bed reactor. Fuel. 333, 126348.CrossRef Verma, V., Mishra, A., Anand, M., et al. (2023) Catalytic hydroprocessing of waste cooking oil for the production of dropin aviation fuel and optimization for improving jet biofuel quality in a fixed bed reactor. Fuel. 333, 126348.CrossRef
5.
Zurück zum Zitat Valle, B., Palos, R., Bilbao, J., et al. (2022) Role of zeolite properties in bio-oil deoxygenation and hydrocarbons production by catalytic cracking. Fuel Processing Technology. 227, 107130.CrossRef Valle, B., Palos, R., Bilbao, J., et al. (2022) Role of zeolite properties in bio-oil deoxygenation and hydrocarbons production by catalytic cracking. Fuel Processing Technology. 227, 107130.CrossRef
6.
Zurück zum Zitat Izaddoust, S., Hita, I., Zambrano, N., et al. (2022) Fuel production via catalytic cracking of pre-hydrotreated heavy-fuel oil generated by marine-transport operations. Fuel. 325, 124765.CrossRef Izaddoust, S., Hita, I., Zambrano, N., et al. (2022) Fuel production via catalytic cracking of pre-hydrotreated heavy-fuel oil generated by marine-transport operations. Fuel. 325, 124765.CrossRef
7.
Zurück zum Zitat Lahijani, P., Mohammadi, M., Mohamed, A., et al. (2022) Upgrading biomass-derived pyrolysis bio-oil to bio-jet fuel through catalytic cracking and hydrodeoxygenation: A review of recent progress. Energy Conversion and Management. 268, 115956.CrossRef Lahijani, P., Mohammadi, M., Mohamed, A., et al. (2022) Upgrading biomass-derived pyrolysis bio-oil to bio-jet fuel through catalytic cracking and hydrodeoxygenation: A review of recent progress. Energy Conversion and Management. 268, 115956.CrossRef
8.
Zurück zum Zitat Belinskaya, N., Lutsenko, A., Mauzhigunova, E., et al. (2021) Development of the approach to the modeling of the destructive catalytic hydroprocesses of atmospheric and vacuum distillates conversion. The case of oil distillates hydrodewaxing process. Catalysis Today. 378, 219-230.CrossRef Belinskaya, N., Lutsenko, A., Mauzhigunova, E., et al. (2021) Development of the approach to the modeling of the destructive catalytic hydroprocesses of atmospheric and vacuum distillates conversion. The case of oil distillates hydrodewaxing process. Catalysis Today. 378, 219-230.CrossRef
9.
Zurück zum Zitat Shimada, I., Uno, C., Watanabe, Y., and Takatsuka, T. (2022) Catalytic cracking of three-ring polycyclic aromatic hydrocarbons in the presence of hydrogen donors. Fuel Processing Technology. 232, 107267.CrossRef Shimada, I., Uno, C., Watanabe, Y., and Takatsuka, T. (2022) Catalytic cracking of three-ring polycyclic aromatic hydrocarbons in the presence of hydrogen donors. Fuel Processing Technology. 232, 107267.CrossRef
10.
Zurück zum Zitat Shao, S., Ye, Z., Liu, C., et al. (2022) Catalytic pyrolysis of holocellulose followed by integrated aldol condensation and hydrogenation to produce aviation fuel. Energy Conversion and Management. 264, 115644.CrossRef Shao, S., Ye, Z., Liu, C., et al. (2022) Catalytic pyrolysis of holocellulose followed by integrated aldol condensation and hydrogenation to produce aviation fuel. Energy Conversion and Management. 264, 115644.CrossRef
11.
Zurück zum Zitat Verma, V., Mishra, A., Anand, M., et al. (2022) Catalytic hydrocracking of inedible palm stearin for the production of drop-in aviation fuel and comparison with other inedible oils. Renewable Energy. 199, 1440-1450.CrossRef Verma, V., Mishra, A., Anand, M., et al. (2022) Catalytic hydrocracking of inedible palm stearin for the production of drop-in aviation fuel and comparison with other inedible oils. Renewable Energy. 199, 1440-1450.CrossRef
12.
Zurück zum Zitat Yousef, S., Eimontas, J., Zakarauskas, K., et al. (2022) A new sustainable strategy for oil, CH4 and aluminum recovery from metallised food packaging plastics waste using catalytic pyrolysis over ZSM-5 zeolite catalyst. Thermochimica Acta. 713, 179223.CrossRef Yousef, S., Eimontas, J., Zakarauskas, K., et al. (2022) A new sustainable strategy for oil, CH4 and aluminum recovery from metallised food packaging plastics waste using catalytic pyrolysis over ZSM-5 zeolite catalyst. Thermochimica Acta. 713, 179223.CrossRef
13.
Zurück zum Zitat Bhattacharjee, N., Biswas, A. (2022) Catalytic pyrolysis of rice husk with SnCl2, Al2O3.4SiO2.H2O, and MoS2 for improving the chemical composition of pyrolysis oil and gas. Journal of the Indian Chemical Society. 99, 100728. Bhattacharjee, N., Biswas, A. (2022) Catalytic pyrolysis of rice husk with SnCl2, Al2O3.4SiO2.H2O, and MoS2 for improving the chemical composition of pyrolysis oil and gas. Journal of the Indian Chemical Society. 99, 100728.
14.
Zurück zum Zitat Zhou, X., Li, S., Wang, Y., et al. (2022) Crude oil hierarchical catalytic cracking for maximizing chemicals production: Pilot-scale test, process optimization strategy, techno-economic-society-environment assessment. Energy Conversion and Management. 253, 115149.CrossRef Zhou, X., Li, S., Wang, Y., et al. (2022) Crude oil hierarchical catalytic cracking for maximizing chemicals production: Pilot-scale test, process optimization strategy, techno-economic-society-environment assessment. Energy Conversion and Management. 253, 115149.CrossRef
15.
Zurück zum Zitat Xu, H., Li, Z., Li, Y., et al. (2021) Catalytic asphaltene upgrading under methane environment: Solvent effect and its interaction with oil components. Fuel. 291, 120157.CrossRef Xu, H., Li, Z., Li, Y., et al. (2021) Catalytic asphaltene upgrading under methane environment: Solvent effect and its interaction with oil components. Fuel. 291, 120157.CrossRef
16.
Zurück zum Zitat Li, Y., Xu, H., Li, Z., Meng, S., et al. (2022) Catalytic methanotreating of vegetable oil: A pathway to Second-generation biodiesel. Fuel. 311, 122504.CrossRef Li, Y., Xu, H., Li, Z., Meng, S., et al. (2022) Catalytic methanotreating of vegetable oil: A pathway to Second-generation biodiesel. Fuel. 311, 122504.CrossRef
17.
Zurück zum Zitat Prashanth, P., Shravani, B., Vinu, R., et al. (2021) Production of diesel range hydrocarbons from crude oil sludge via microwave-assisted pyrolysis and catalytic upgradation. Process Safety and Environmental Protection. 146, 383-395.CrossRef Prashanth, P., Shravani, B., Vinu, R., et al. (2021) Production of diesel range hydrocarbons from crude oil sludge via microwave-assisted pyrolysis and catalytic upgradation. Process Safety and Environmental Protection. 146, 383-395.CrossRef
18.
Zurück zum Zitat Miao, P., Zhu, X., Guo, Y., et al. (2021) Combined mild hydrocracking and fluid catalytic cracking process for efficient conversion of light cycle oil into high-quality gasoline. Fuel. 292, 120364.CrossRef Miao, P., Zhu, X., Guo, Y., et al. (2021) Combined mild hydrocracking and fluid catalytic cracking process for efficient conversion of light cycle oil into high-quality gasoline. Fuel. 292, 120364.CrossRef
19.
Zurück zum Zitat Barbera, E., Naurzaliyev, R., Asiedu, A., et al. (2020) Techno-economic analysis and life-cycle assessment of jet fuels production from waste cooking oil via in situ catalytic transfer hydrogenation. Renewable Energy. 160, 428-449.CrossRef Barbera, E., Naurzaliyev, R., Asiedu, A., et al. (2020) Techno-economic analysis and life-cycle assessment of jet fuels production from waste cooking oil via in situ catalytic transfer hydrogenation. Renewable Energy. 160, 428-449.CrossRef
20.
Zurück zum Zitat Sitnov, S., Khelkhal, M., Mukhamatdinov, I., et al. (2022) Iron oxide nanoparticles impact on improving reservoir rock minerals catalytic effect on heavy oil aquathermolysis. Fuel. 327, 124956.CrossRef Sitnov, S., Khelkhal, M., Mukhamatdinov, I., et al. (2022) Iron oxide nanoparticles impact on improving reservoir rock minerals catalytic effect on heavy oil aquathermolysis. Fuel. 327, 124956.CrossRef
21.
Zurück zum Zitat Costa, A., Pires, L., Padrón, D., et al. (2022) Recent advances on catalytic deoxygenation of residues for bio-oil production: An overview. Molecular Catalysis. 518, 112052.CrossRef Costa, A., Pires, L., Padrón, D., et al. (2022) Recent advances on catalytic deoxygenation of residues for bio-oil production: An overview. Molecular Catalysis. 518, 112052.CrossRef
22.
Zurück zum Zitat Roy, P., Jahromi, H., Adhikari, S., et al. (2022) Performance of biochar assisted catalysts during hydroprocessing of nonedible vegetable oil: Effect of transition metal source on catalytic activity. Energy Conversion and Management. 252, 115131.CrossRef Roy, P., Jahromi, H., Adhikari, S., et al. (2022) Performance of biochar assisted catalysts during hydroprocessing of nonedible vegetable oil: Effect of transition metal source on catalytic activity. Energy Conversion and Management. 252, 115131.CrossRef
23.
Zurück zum Zitat Jia, F., Jing, W., Liu, G., et al. (2020) Paraffin-based crude oil refining process unit-level energy consumption and CO2 emissions in China. Journal of Cleaner Production. 255, 120347.CrossRef Jia, F., Jing, W., Liu, G., et al. (2020) Paraffin-based crude oil refining process unit-level energy consumption and CO2 emissions in China. Journal of Cleaner Production. 255, 120347.CrossRef
Metadaten
Titel
Optimization of Catalyst Hydrogenation Technology for White Oil Production Based on Medium Pressure Hydrogenation
verfasst von
Rui Yu
Guangfa Miao
Hua Liu
Xueqin Han
Publikationsdatum
07.12.2023
Verlag
Springer US
Erschienen in
Chemistry and Technology of Fuels and Oils / Ausgabe 5/2023
Print ISSN: 0009-3092
Elektronische ISSN: 1573-8310
DOI
https://doi.org/10.1007/s10553-023-01619-0

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