Analysis of the Role of Aquatic Gases in the Formation of Sea-Ice Porosity
Abstract
:1. Introduction
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- The displacement of the air dissolved in the seawater during crystallization;
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- The replacement of heavy brine flowing down with atmospheric air;
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- The penetration of gas bubbles contained in the water space and emerging from the seabed sediments into the crystal structure of the sea ice.
2. Porosity of Sea Ice and the Main Peculiarities of Gas Cavities
3. Possible Mechanisms for the Formation of Gas Cavities in Sea Ice
4. Analysis of Experimental Data
- The obvious similarity of the porosity and salinity variation along the length of the cores;
- The similarity of the porosity and salinity variation along both cores;
- The substantial increase in the porosity and salinity values on the upper and lower boundaries of the cores, and the rather small variation in these parameters in the middle parts of the cores;
- Variation of the porosity as random quantity fits the Weibull probability density function, presented in Figure 3.
- A high correlation between the sea-ice density and porosity is natural and does not demand additional comments.
- A high, but negative, correlation between salinity and density seems strange. However, the average value of salinity Sav = 3.577‰ is essentially less than the average value of the porosity Pav = 1.140%. Therefore, the contribution of the porosity to the density of the sea ice is more than the contribution of the salinity. The negative sign of the correlation, salinity—density, is in this case connected to porosity.
- A high and positive correlation between the porosity and the salinity of the sea ice requires special investigation.
5. Evaluation and Modelling of the Mechanisms of Sea Ice with Gas-Bubble Saturation
5.1. Displacement of the Dissolved Atmospheric Air and Capturing the Bubbles Contained in the Seawater
5.2. Penetration of the Atmospheric Air into the Channels behind Salt Seawater Flowing Down
5.3. Floating Up of the Gas Bubbles to the Ice–Water Interface
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Sea-Ice Property | Core No. 1 | Core No. 2 | Unified Array | |
---|---|---|---|---|
Density, g/cm3 | average | 0.911 | 0.913 | 0.912 |
dispersion | 7.533 × 10−5 | 8.097 × 10−5 | 7.981 × 10−5 | |
Salinity, ‰ | average | 3.458 | 3.633 | 3.577 |
dispersion | 1.682 | 2.395 | 2.133 | |
Porosity, % | average | 1.246 | 1.090 | 1.140 |
dispersion | 1.193 | 1.336 | 1.269 |
Characteristic | Density | Salinity | Porosity |
---|---|---|---|
Density | X | −0.834 | −0.965 |
Salinity | −0.834 | X | 0.892 |
Porosity | −0.965 | 0.892 | X |
Gas | Gramm-Molar Weight, μj | Molar Diffusion Coefficient, Dj, m2/s | Saturating Relative Volume Content, αsj | Relative Volume Content in Sea Water, αfj |
---|---|---|---|---|
Methane | 14 | 0.85 × 10−9 | 4.23 × 10−2 | 2.09 × 10−5 |
Nitrogen | 28 | 1.29 × 10−9 | 1.72 × 10−2 | 1.20 × 10−2 |
Oxygen | 32 | 1.54 × 10−9 | 3.61 × 10−2 | 0.11 × 10−2 |
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Goncharov, V.K.; Klementieva, N.Y. Analysis of the Role of Aquatic Gases in the Formation of Sea-Ice Porosity. Water 2024, 16, 2213. https://doi.org/10.3390/w16152213
Goncharov VK, Klementieva NY. Analysis of the Role of Aquatic Gases in the Formation of Sea-Ice Porosity. Water. 2024; 16(15):2213. https://doi.org/10.3390/w16152213
Chicago/Turabian StyleGoncharov, Vadim K., and Natalia Yu. Klementieva. 2024. "Analysis of the Role of Aquatic Gases in the Formation of Sea-Ice Porosity" Water 16, no. 15: 2213. https://doi.org/10.3390/w16152213
APA StyleGoncharov, V. K., & Klementieva, N. Y. (2024). Analysis of the Role of Aquatic Gases in the Formation of Sea-Ice Porosity. Water, 16(15), 2213. https://doi.org/10.3390/w16152213