Effect of ultrasound irradiation on asphaltene aggregation and implications to rheological behavior of bitumen

被引:10
作者
Nguele, Ronald [1 ]
Okawa, Hirokazu [2 ]
机构
[1] Kyushu Univ, Resource Prod & Safety Engn Lab, Fukuoka 8190395, Japan
[2] Akita Univ, Grad Sch Engn Sci, Akita 0108502, Japan
关键词
Asphaltene; Bitumen viscosity; Ultrasound; Sonication; Bitumen; HEAVY-CRUDE-OIL; VISCOSITY; SONOCHEMISTRY; WAVES; TRANSPORTATION; REDUCTION; STABILITY; SCIENCE; POWER;
D O I
10.1016/j.ultsonch.2021.105811
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The present work investigates the contribution of asphaltene aggregation to bitumen viscosity subject to ultrasound irradiation. A West-African bitumen with a viscosity of 12043 cP at room temperature was sonicated at low (38 kHz) and mild frequency (200 kHz) under controlled gas environment including air, nitrogen (N2) and carbon dioxide (CO2). The rheology of the bitumen, asphaltene content analyses as well as spectral studies were conducted. Herein was found that sonicating the bitumen at 200 kHz under air-environment reduces the initial viscosity up to 2079 cP, which was twice larger than that obtained when a low frequency was used. In respect of the gas environment, it was shown that ultrasound irradiation under N2 environment could lower the bitumen viscosity up to 3274 cP. A positive correlation between the asphaltene content and the viscosity reduction was established. The results from the spectral analyses including Fast Fourier Infrared and the observations from Scanned Electron Microscope were consistent with the rheological studies and led to the argument that the viscosity reduction results from either the scission of long chain molecules attached to the aromatic rings (when the applied frequency was altered under fixed gas environment) or the self-aggregation of asphaltene monomers (when gas environment was changed at fixed frequency).
引用
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页数:10
相关论文
共 61 条
[31]   Oil-water de-emulsification using ultrasonic technology [J].
Mohsin, Muhammad ;
Meribout, Mahmoud .
ULTRASONICS SONOCHEMISTRY, 2015, 22 :573-579
[32]  
Montes Daniel, 2018, Dyna rev.fac.nac.minas, V85, P153, DOI 10.15446/dyna.v85n207.71804
[33]   Rheological, structural and chemical evolution of bitumen under gamma irradiation [J].
Mouazen, M. ;
Poulesquen, A. ;
Bart, F. ;
Masson, J. ;
Charlot, M. ;
Vergnes, B. .
FUEL PROCESSING TECHNOLOGY, 2013, 114 :144-153
[34]   Effect of ultrasonic irradiation on rheological properties of asphaltenic crude oils [J].
Mousavi, Seyed Mohammadreza ;
Ramazani, Ahmad ;
Najafi, Iman ;
Davachi, Seyed Mohammad .
PETROLEUM SCIENCE, 2012, 9 (01) :82-88
[35]   Advances in Asphaltene Science and the Yen-Mullins Model [J].
Mullins, Oliver C. ;
Sabbah, Hassan ;
Eyssautier, Joelle ;
Pomerantz, Andrew E. ;
Barre, Loic ;
Andrews, A. Ballard ;
Ruiz-Morales, Yosadara ;
Mostowfi, Farshid ;
McFarlane, Richard ;
Goual, Lamia ;
Lepkowicz, Richard ;
Cooper, Thomas ;
Orbulescu, Jhony ;
Leblanc, Roger M. ;
Edwards, John ;
Zare, Richard N. .
ENERGY & FUELS, 2012, 26 (07) :3986-4003
[36]   Microwave applications to oil sands and petroleum: A review [J].
Mutyala, Sateesh ;
Fairbridge, Craig ;
Pare, J. R. Jocelyn ;
Belanger, Jacqueline M. R. ;
Ng, Siauw ;
Hawkins, Randall .
FUEL PROCESSING TECHNOLOGY, 2010, 91 (02) :127-135
[37]   Quantifying the Role of Ultrasonic Wave Radiation on Kinetics of Asphaltene Aggregation in a Toluene-Pentane Mixture [J].
Najafi, I. ;
Mousavi, S. M. R. ;
Ghazanfari, M. H. ;
Ghotbi, C. ;
Ramazani, A. ;
Kharrat, R. ;
Amani, M. .
PETROLEUM SCIENCE AND TECHNOLOGY, 2011, 29 (09) :966-974
[38]   Solid-liquid separation by sonochemistry: A new approach for the separation of mineral suspensions [J].
Nakamura, Takashi ;
Okawa, Hirokazu ;
Kawamura, Youhei ;
Sugawara, Katsuyasu .
ULTRASONICS SONOCHEMISTRY, 2011, 18 (01) :85-91
[39]   Drag reduction in transportation of hydrocarbon liquids: From fundamentals to engineering applications [J].
Nesyn, G. V. ;
Sunagatullin, R. Z. ;
Shibaev, V. P. ;
Malkin, A. Ya. .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2018, 161 :715-725
[40]  
Nguele R., 2021, ADV MICROFLUID NANOF