The Influence of Temperature on the Bulk Settling of Cohesive Sediment in Still Water with the Lattice Boltzmann Method
Abstract
:1. Introduction
2. Methods and Model
2.1. Lattice Boltzmann Method
2.2. The Extended Derjaguin–Landau–Verwey–Overbeek Theory
2.3. Criterion Distance of Flocculation
3. Computational Conditions
4. Results
4.1. Floc Size and Floc Volume
4.2. Settling and Flocculation Process
4.3. Suspended Sediment Concentration
4.4. Sediment Settling Velocity
5. Discussion
6. Conclusions
- (1)
- The mean floc size and floc volume increased with increasing temperature. The maximum floc size initially increased and then decreased slightly with its peak at 10 °C and trough at 5 °C. The floc was not easily formed at low temperature but was unstable and cracked easily at high temperature. The aggregation process, aggregation frequency and forces between particles can be explained by the above. At low temperatures, the collision frequency ηglo and capture frequency ηcap were low, which meant the floc was not easily formed; at high temperatures, the large flocs were easily broken as the weighting of the macro force increased to have the same magnitude as the short-distance force.
- (2)
- During settling, the SSC time series curves fit well with the equation , from which the settlement half-life period and bulk setting velocity were deduced. Increasing the temperature had a negative effect on the settlement half-life, indicating a faster SSC incline at high temperatures than at low temperatures.
- (3)
- The macroscopic bulk velocity derived from the SSC change agreed well with the microscopic statistical settling velocity of each particle and floc. Both velocities agreed well with the existing physical test results, on-site observation data, and formulas, indicating that the LBM is a reasonable choice for simulating cohesive sediment bulk settling.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Case ID | #1 | #2 | #3 | #4 |
---|---|---|---|---|
Temperature/(°C) | 5 | 10 | 20 | 30 |
2δ/(nm) | 18.7 | 19.1 | 20.0 | 20.7 |
Water viscosity ν/(10−6 m2 s−1) | 1.52 | 1.31 | 1.00 | 0.80 |
Temperature/(°C) | 5 | 10 | 20 | 30 |
---|---|---|---|---|
(1) velocity 1 v1/(mm/s) | 0.099 | 0.117 | 0.155 | 0.189 |
(2) velocity 2 v2/(mm/s) | 0.101 | 0.117 | 0.152 | 0.185 |
(3) ABS(1-2) |v1−v2|/(mm/s) | 0.002 | 0.000 | 0.003 | 0.004 |
(4) |v1−v2|/(|v1+v2|/2)/(%) | 2.0% | 0.0% | 2.0% | 2.1% |
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Qiao, G.-q.; Zhang, J.-f.; Zhang, Q.-h.; Feng, X.; Lu, Y.-c.; Feng, W.-b. The Influence of Temperature on the Bulk Settling of Cohesive Sediment in Still Water with the Lattice Boltzmann Method. Water 2019, 11, 945. https://doi.org/10.3390/w11050945
Qiao G-q, Zhang J-f, Zhang Q-h, Feng X, Lu Y-c, Feng W-b. The Influence of Temperature on the Bulk Settling of Cohesive Sediment in Still Water with the Lattice Boltzmann Method. Water. 2019; 11(5):945. https://doi.org/10.3390/w11050945
Chicago/Turabian StyleQiao, Guang-quan, Jin-feng Zhang, Qing-he Zhang, Xi Feng, Yong-chang Lu, and Wei-bing Feng. 2019. "The Influence of Temperature on the Bulk Settling of Cohesive Sediment in Still Water with the Lattice Boltzmann Method" Water 11, no. 5: 945. https://doi.org/10.3390/w11050945
APA StyleQiao, G. -q., Zhang, J. -f., Zhang, Q. -h., Feng, X., Lu, Y. -c., & Feng, W. -b. (2019). The Influence of Temperature on the Bulk Settling of Cohesive Sediment in Still Water with the Lattice Boltzmann Method. Water, 11(5), 945. https://doi.org/10.3390/w11050945