Electro-deposition for asphaltene removal during heavy oil upgrading

被引:6
作者
Xia, Shunxiang [1 ]
Veony, Enjelia [1 ]
Kostarelos, Konstantinos [1 ]
机构
[1] Univ Houston, Dept Petr Engn, Houston, TX 77023 USA
关键词
COLLOIDAL PARTICLES; CRUDE-OIL; VISCOSITY; BITUMEN; PRECIPITATION; AGGREGATION; SUSPENSIONS; STABILITY; RESINS; MODEL;
D O I
10.1039/c8ra10514f
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Blending crude oil with short-chain paraffins is a common method to improve the oil quality during heavy oil upgrading. The additional paraffins will cause precipitation of asphaltene that is removed by filtration or sedimentation; both processes are slow and inefficient. As a potential faster and more efficient removal method, an electric field can be applied in order to electro-deposit the asphaltene on the electrodes. Electro-deposition (E-D) experiments were conducted in a bench scale vessel while varying several process parameters such as the dilution ratio of paraffin to heavy oil, the paraffin used as the diluent, electric field strength, and the effect of resins on the E-D process. Increasing the dilution ratio resulted in more precipitated asphaltene and required a lower electric field strength for the E-D process. The electro-deposition process could affect the net charge of the asphaltene, and hence, both cathode and anode were closely observed: deposition onto the cathode was favored with higher dilution ratio and a lower electric field strength, while anode deposition occurred using a lower dilution ratio and higher electric field strength. This result is related to the higher resin content at low dilution ratio which adsorbs onto the asphaltene aggregate and shields or inhibits the effect of the electric field. To recover 1 kg of asphaltene, the energy input is estimated to be as low as 10 kJ. The process is relatively fast and requires low energy input, which can overcome the disadvantages of current filtration methods.
引用
收藏
页码:6596 / 6602
页数:7
相关论文
共 33 条
[11]   Electrodeposition of Asphaltenes. 2. Effect of Resins and Additives [J].
Khvostichenko, Daria S. ;
Andersen, Simon I. .
ENERGY & FUELS, 2010, 24 (04) :2327-2336
[12]   Electrodeposition of Asphaltenes. 1. Preliminary Studies on Electrodeposition from Oil-Heptane Mixtures [J].
Khvostichenko, Daria S. ;
Andersen, Simon I. .
ENERGY & FUELS, 2009, 23 (1-2) :811-819
[13]   A MECHANISM FOR NON-NEWTONIAN FLOW IN SUSPENSIONS OF RIGID SPHERES [J].
KRIEGER, IM ;
DOUGHERTY, TJ .
TRANSACTIONS OF THE SOCIETY OF RHEOLOGY, 1959, 3 :137-152
[14]   Novel Solvent Deasphalting Process by Vacuum Residue Blending with Coal Tar [J].
Long, Jian ;
Shen, Benxian ;
Ling, Hao ;
Zhao, Jigang ;
Lu, Juncai .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2011, 50 (19) :11259-11269
[15]   Effects of asphaltene content on the heavy oil viscosity at different temperatures [J].
Luo, Peng ;
Gu, Yongan .
FUEL, 2007, 86 (7-8) :1069-1078
[16]   Molecular asphaltene models based on Clar sextet theory [J].
Martin-Martinez, Francisco J. ;
Fini, Elham H. ;
Buehler, Markus J. .
RSC ADVANCES, 2015, 5 (01) :753-759
[17]   Effects of asphaltene solvency on stability of water-in-crude-oil emulsions [J].
McLean, JD ;
Kilpatrick, PK .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1997, 189 (02) :242-253
[18]   The influence of asphaltene-resin molecular interactions on the colloidal stability of crude oil [J].
Mousavi, Masoumeh ;
Abdollahi, Tahereh ;
Pahlavan, Farideh ;
Fini, Elham H. .
FUEL, 2016, 183 :262-271
[19]   Molecular recognition in aggregates formed by asphaltene and resin molecules from the Athabasca oil sand [J].
Murgich, J ;
Abanero, JA ;
Strausz, OP .
ENERGY & FUELS, 1999, 13 (02) :278-286
[20]  
Nellensteyn F.J., 1938, The Science of Petroleum, V4