Oil-Water Separation in a Novel Liquid-Liquid Cylindrical Cyclone (LLCC©) Compact Separator—Experiments and Modeling

Author:

Oropeza-Vazquez C.1,Afanador E.1,Gomez L.1,Wang S.1,Mohan R.1,Shoham O.1,Kouba G.2

Affiliation:

1. The University of Tulsa, 600 S. College Ave., Tulsa, OK 74104

2. Senior Staff Research Scientist, ChevronTexaco Energy Technology Company, 2811 Hayes Road, Houston, TX 77082

Abstract

The hydrodynamics of multiphase flow in a Liquid-Liquid Cylindrical Cyclone (LLCC) compact separator have been studied experimentally and theoretically for evaluation of its performance as a free water knockout device. In the LLCC, no complete oil-water separation occurs. Rather, it performs as a free-water knockout, delivering a clean water stream in the underflow and an oil rich stream in the overflow. A total of 260 runs have been conducted, measuring the LLCC separation efficiency for water-dominated flow conditions. For all runs, an optimal split-ratio (underflow to inlet flow rate ratio) exists, where the flow rate in the water stream is maximum, with 100% watercut. The value of the optimal split-ratio depends upon the existing inlet flow pattern, and varies between 60% and 20%. For split-ratios higher than the optimal one, the watercut in the underflow stream decreases as the split-ratio increases. A novel mechanistic model has been developed for the prediction of the complex flow behavior and the separation efficiency in the LLCC. Comparisons between the experimental data and the LLCC model predictions show excellent agreement. The model is capable of predicting both the trend of the experimental data as well as the absolute measured values. The developed model can be utilized for the design and performance analysis of the LLCC.

Publisher

ASME International

Subject

Mechanical Engineering

Reference16 articles.

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2. Gay, J. C., Triponey, G., Bezard, C. and Schummer, P., 1987, “Rotary Cyclone Will Improve Oily Water Treatment and Reduce Space Requirement/Weight on Offshore Platforms,” SPE 16571.

3. Bednarski, S. and Listewnik, J, 1988, “Hydrocyclones for Simultaneous Removal of Oil and Solid Particles from Ships’ Oily Waters,” Filtration and Separation, pp. 92–97.

4. Seyda, B., 1991, “Separation of a Light Dispersion in a Cylindrical Vortex Chamber,” Report, Michigan State University.

5. Afanador E., 1999, “Oil-Water Separation in Liquid-Liquid Cylindrical Cyclone Separators,” M.S. Thesis, The University of Tulsa.

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