Electrostatic enhancement of coalescence of water droplets in oil: a review of the technology

被引:351
|
作者
Eow, JS
Ghadiri, M [1 ]
机构
[1] Univ Leeds, Dept Chem Engn, Leeds LS2 9JT, W Yorkshire, England
[2] Univ Surrey, Dept Chem & Proc Engn, Guildford GU2 7XH, Surrey, England
关键词
water-in-oil emulsions; dispersions; electrocoalescence; electric fields; frequency; pulsed direct current; alternating current; separation; centrifugal force;
D O I
10.1016/S1385-8947(01)00250-9
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The technology for electrostatic enhancement of coalescence of water droplets in oil emulsions is critically reviewed. Historically, the electrostatic coalescer was invented for the petroleum-related industries in California [US Patent 987 115 (1911)]. Nowadays, this technology is generally considered for the separation of an aqueous phase dispersed in a dielectric oil phase with a significantly lower dielectric constant than that of the dispersed phase. Various designs have been introduced, with most using alternating current (AC) electric fields with mains frequency (50 or 60 Hz). The direct current (DC) electric field has been less common in the past as compared to the AC. In 1981, the concept of pulsed DC electric fields was introduced, together with insulated electrodes [Trans. IChemE 59 (1981) 229-237; UK Patent 217 103 1 A (1986)]. Since then, this has become more common in the electrocoalescence technology. Pulsed DC and AC fields are especially useful, when the aqueous phase content of the emulsion is high, to prevent short-circuiting between the pair of electrodes. Processing of oil from old wells is a good example, where the volumetric water content could vary significantly. Reported work by some workers indicates the existence of an optimum frequency, which depends on the electrode coating material, its thickness and the liquid emulsion composition. This is however, a contentious issue which has not been completely resolved. The characteristics and geometry of the electrode system (generally cylindrical or plate) influence the performance of the electrostatic coalescer, and are closely related to the type of the applied electric field and the emulsion used. There are basically two types of electrode: uninsulated electrode and insulated electrode. Combination of electrocoalescence and mechanical separation (e.g., centrifugal force) has also been introduced. Heating and the addition of chemicals have been shown to further enhance the electrocoalescence of water droplets. Other methods that can be combined with the electrical treatment are filtration, methods employing high pressure and temperature, and mixing. This review paper also looks at some of the current specific industrial applications using the electrocoalescence technology. Besides the oil and petroleum industries, this technology has potential applications in the edible oil industries such as palm oil, sunflower oil and vegetable oil processing. Most of the currently available equipment is very big and bulky, having a large inventory of emulsion. Therefore, we see the future trend for new developments to be in the direction of inventing small portable devices, incorporating features such as optimum electric fields and combined electrical and centrifugal forces to further enhance the separation of water-in-oil emulsions. Furthermore, a better understanding of the fundamentals of electrocoalescence will enable a better design of the geometry of the electrodes, of the flow field with respect to the electric fields, the type of dispersion used and the type of the applied electric field. (C) 2002 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:357 / 368
页数:12
相关论文
共 50 条
  • [31] A visible coalescence of droplets on hydrophobic and hydrophilic fibers in water-in-oil emulsion
    Liu, Liyan
    Hou, Lifei
    Tan, Wei
    Zhu, Guorui
    JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2017, 38 (12) : 1719 - 1725
  • [32] Influence of Interfacial Gas Enrichment on Controlled Coalescence of Oil Droplets in Water in Microfluidics
    Wang, Jianlong
    Teo, Adrian J. T.
    Tan, Say H.
    Evans, Geoffrey M.
    Nam-Trung Nguyen
    Nguyen, Anh, V
    LANGMUIR, 2019, 35 (10) : 3615 - 3623
  • [33] Membrane technology enhancement in oil-water separation. A review
    Padaki, M.
    Murali, R. Surya
    Abdullah, M. S.
    Misdan, N.
    Moslehyani, A.
    Kassim, M. A.
    Hilal, N.
    Ismail, A. F.
    DESALINATION, 2015, 357 : 197 - 207
  • [34] Coalescence behaviour of water droplets in water-oil interface under pulsatile electric fields
    Hosseini, Morteza
    CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2016, 24 (09) : 1147 - 1153
  • [35] COLLECTION KERNEL FOR COALESCENCE OF WATER DROPLETS
    MANTON, MJ
    TELLUS, 1974, 26 (03): : 369 - 375
  • [36] COALESCENCE OF DROPLETS IN NON-NEWTONIAN OIL
    Rasulov, Sakit R.
    Kelbaliyev, Gudret I.
    Baulin, Oleg A.
    PROCESSES OF PETROCHEMISTRY AND OIL REFINING, 2022, 23 (03): : 453 - 462
  • [37] COLLISION COALESCENCE AND DISRUPTION OF WATER DROPLETS
    ADAM, JR
    LINDBLAD, NR
    HENDRICKS, CD
    JOURNAL OF APPLIED PHYSICS, 1968, 39 (11) : 5173 - +
  • [38] COALESCENCE OF WATER DROPLETS IN TURBULENT CLOUDS
    MANTON, MJ
    TELLUS, 1977, 29 (01): : 1 - 7
  • [39] COALESCENCE OF WATER DROPLETS ON SINGLE FIBERS
    BITTEN, JF
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1970, 33 (02) : 265 - &
  • [40] STUDY OF COALESCENCE AND SEDIMENTATION OF DROPLETS IN OIL EMULSION
    Huseynova, Lala, V
    PROCESSES OF PETROCHEMISTRY AND OIL REFINING, 2021, 22 (02): : 242 - 251