Influence of Droplet Size on Exergy Destruction in Flow of Concentrated Non-Newtonian Emulsions
Abstract
:1. Introduction
2. Theoretical Background
Exergy Destruction in a Cone-and-Plate Viscometer
3. Experimental Section
4. Results and Discussion
4.1. Droplet Size Distribution of Emulsions
4.2. Rheology of Emulsions
4.3. Reliability of Rheological Measurements
4.4. Exergy Destruction in Emulsions
5. Simulation of Exergy Destruction in Pipeline Flow of Emulsions
6. Conclusions
- The shear-stress τ versus shear rate behavior of concentrated oil-in-water emulsions (fine, coarse, and their mixtures) investigated in this work can be described satisfactorily by a power-law model . The power-law parameters K and n vary with the droplet size and droplet size distribution of emulsions. When fine emulsion (small droplet size) is mixed with the coarse emulsion (large droplet size), keeping the dispersed-phase concentration fixed, the consistency index K goes through a minimum and the power-law index n goes through a maximum at a certain proportion of fine emulsion content of the mixed fine and coarse emulsion.
- The exergy destruction rate per unit volume of emulsion exhibits a minimum when fine emulsion is mixed with the coarse emulsion. The minimum in exergy destruction rate is observed at low shear rates around the fine emulsion proportion of 35%.
- The thermodynamic efficiency of pumping emulsion through a pipeline increases when fine emulsion is mixed with the coarse emulsion provided that the flow regime is laminar and that the Reynolds number is not high (less than about 100).
- At high Reynolds number in the turbulent regime, the exergy loss in pipeline flow of emulsion increases upon mixing fine emulsion with the coarse emulsion, keeping the dispersed-phase concentration fixed. The increase in exergy loss upon increasing the droplet size distribution is due an increase in the flow behavior index n (a decrease in pseudo-plasticity).
Acknowledgments
Conflicts of Interest
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Emulsion Composition | Regression Correlation Coefficient, R2 | Flow Behavior Index, n | Consistency Index, K (Units of Pa·sn) | 95% Confidence Interval of n | 95% Confidence Interval of K |
---|---|---|---|---|---|
Coarse (0f/100c) | 0.9956 | 0.442 | 1.12 | [0.427, 0.456] | [1.044, 1.199] |
10f/90c | 0.9999 | 0.622 | 0.425 | [0.619, 0.625] | [0.420, 0.430] |
20f/80c | 0.9975 | 0.753 | 0.208 | [0.734, 0.771] | [0.191, 0.227] |
35f/65c | 0.9976 | 0.822 | 0.152 | [0.802, 0.841] | [0.138, 0.167] |
50f/50c | 0.9989 | 0.733 | 0.323 | [0.722, 0.744] | [0.307, 0.340] |
65f/35c | 0.9996 | 0.585 | 0.937 | [0.580, 0.591] | [0.916, 0.959] |
80f/20c | 0.9966 | 0.466 | 2.418 | [0.454, 0.478] | [2.303, 2.539] |
90f/10c | 0.9973 | 0.431 | 3.522 | [0.422, 0.441] | [3.383, 3.667] |
Fine (100f/0c) | 0.9745 | 0.364 | 6.777 | [0.336, 0.392] | [5.927, 7.749] |
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Pal, R. Influence of Droplet Size on Exergy Destruction in Flow of Concentrated Non-Newtonian Emulsions. Energies 2016, 9, 293. https://doi.org/10.3390/en9040293
Pal R. Influence of Droplet Size on Exergy Destruction in Flow of Concentrated Non-Newtonian Emulsions. Energies. 2016; 9(4):293. https://doi.org/10.3390/en9040293
Chicago/Turabian StylePal, Rajinder. 2016. "Influence of Droplet Size on Exergy Destruction in Flow of Concentrated Non-Newtonian Emulsions" Energies 9, no. 4: 293. https://doi.org/10.3390/en9040293
APA StylePal, R. (2016). Influence of Droplet Size on Exergy Destruction in Flow of Concentrated Non-Newtonian Emulsions. Energies, 9(4), 293. https://doi.org/10.3390/en9040293