Laboratory Study of Turbulent Mass Exchange in a Stratified Fluid
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Dependence of Entrainment Velocity on Richardson Number
3.2. Structure of the Density Transition Layer
3.3. Mixing Efficience and It Dependence on Richardson Number
3.4. Dependence on the Reynolds Number
3.5. Analysis of Salinity Pulsations at the Density Interface and an Estimate of Energy-Containing Eddies Scale
3.6. Density Interface Structure, Mass Flux between the Turbulent Layers and Their Relation with Phillips-Posmentier Mechanism
4. Discussion
5. Conclusions
- The maintaining of a density interface between turbulent layers in a sharpening mode is possible only under the condition . If the density interface exists in the eroding non-stationary mode. The transition between these two modes is abrupt and the physical explanation of such a kind of transition from one mode to the other seems to be consistent with Phillips-Posmienter mechanism.
- The maximum mixing efficiency of a stratified fluid, is achieved at , when the thickness of the density interfaces between the quasi-homogeneous layers is in a transition between the sharpening and eroding modes. Thus, the transformation of a continuously density-stratified aqueous medium into a step-like density structure should increase the efficiency of vertical turbulent exchange.
Author Contributions
Funding
Conflicts of Interest
References
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Experiment | , ppm | , cm | , s | ||
---|---|---|---|---|---|
1 | 10 | 135 | 84 | 2.6 | 4.0 |
2 | 10 | 132 | 89 | 3.3 | 5.2 |
3 | 10 | 134 | 86 | 3.3 | 5.1 |
4 | 12 | 147 | 85 | 3.3 | 4.6 |
5 | 14 | 159 | 84 | 3.1 | 4.0 |
6 | 14 | 160 | 84 | 3.3 | 4.3 |
7 | 14 | 159 | 86 | 3.3 | 4.3 |
8 | 14 | 158 | 86 | 3.3 | 4.3 |
9 | 16 | 170 | 85 | 3.3 | 4.0 |
10 | 18 | 180 | 86 | 3.3 | 3.8 |
11 | 19 | 168 | 102 | 3.3 | 4.1 |
12 | 20 | 190 | 84 | 3.7 | 4.0 |
13 | 20 | 194 | 81 | 3.3 | 3.5 |
14 | 24 | 207 | 86 | 3.3 | 3.3 |
15 | 24 | 211 | 83 | 3.3 | 3.2 |
16 | 24 | 207 | 86 | 3.3 | 3.3 |
17 | 24 | 204 | 89 | 3.3 | 3.3 |
18 | 24 | 204 | 89 | 3.3 | 3.3 |
19 | 28 | 223 | 86 | 3.3 | 3.1 |
20 | 28 | 223 | 87 | 3.3 | 3.1 |
21 | 30 | 214 | 100 | 3.3 | 3.2 |
22 | 30 | 214 | 100 | 3.3 | 3.2 |
23 | 30 | 214 | 100 | 3.3 | 3.2 |
24 | 32 | 238 | 87 | 3.3 | 2.9 |
25 | 36 | 254 | 86 | 3.3 | 2.7 |
26 | 38 | 238 | 103 | 3.3 | 2.9 |
27 | 42 | 274 | 86 | 3.3 | 2.5 |
28 | 46 | 287 | 86 | 3.3 | 2.4 |
29 | 46 | 288 | 85 | 3.3 | 2.4 |
30 | 48 | 267 | 104 | 3.3 | 2.6 |
31 | 56 | 293 | 96 | 3.3 | 2.3 |
32 | 56 | 317 | 86 | 3.3 | 2.2 |
33 | 64 | 341 | 84 | 3.3 | 2.0 |
34 | 75 | 364 | 87 | 3.3 | 1.9 |
35 | 76 | 370 | 85 | 3.3 | 1.8 |
36 | 88 | 365 | 102 | 3.3 | 1.9 |
37 | 90 | 402 | 86 | 3.3 | 1.7 |
38 | 108 | 441 | 85 | 3.3 | 1.5 |
39 | 139 | 498 | 86 | 3.3 | 1.4 |
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Zatsepin, A.G.; Gerasimov, V.V.; Ostrovskii, A.G. Laboratory Study of Turbulent Mass Exchange in a Stratified Fluid. J. Mar. Sci. Eng. 2022, 10, 756. https://doi.org/10.3390/jmse10060756
Zatsepin AG, Gerasimov VV, Ostrovskii AG. Laboratory Study of Turbulent Mass Exchange in a Stratified Fluid. Journal of Marine Science and Engineering. 2022; 10(6):756. https://doi.org/10.3390/jmse10060756
Chicago/Turabian StyleZatsepin, Andrey G., Valerii V. Gerasimov, and Alexander G. Ostrovskii. 2022. "Laboratory Study of Turbulent Mass Exchange in a Stratified Fluid" Journal of Marine Science and Engineering 10, no. 6: 756. https://doi.org/10.3390/jmse10060756
APA StyleZatsepin, A. G., Gerasimov, V. V., & Ostrovskii, A. G. (2022). Laboratory Study of Turbulent Mass Exchange in a Stratified Fluid. Journal of Marine Science and Engineering, 10(6), 756. https://doi.org/10.3390/jmse10060756