Recording Permafrost Thaw and Thaw Lake Degradation in Northern Siberia: School Science in Action
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area: Geography and Climate
2.2. Study Design, Site Selection, Methodology, and Measurement Tools
- The selection of test sites for the study of thermokarst processes depending on the landscape and geocryological zoning of the territory of the Tazovskiy District of Western Siberia.
- The development of a methodology for assessing temporal changes in the areas of thermokarst lakes using remote sensing data and modern geographic information systems (GIS) and GIS technologies.
- Assessing likely causes of lake degradation, including climate and sandy soil mining.
- The formation of a database for the areas and dynamics of thermokarst lakes based on the results of satellite observations and quantitative analysis of the dynamics of the areas of thermokarst lakes.
- Observations on the impacts of changes in the lake area.
2.2.1. Climate Change
2.2.2. Active Layer Dynamics
2.2.3. Sand Dredging
2.2.4. Statistical Analysis and Presentation
3. Results
3.1. School Science
3.2. Thermokarst Lake Dynamics, Their Causes and Impacts
3.2.1. Potential Causes of Lake Dynamics
- I.
- Climate
- II.
- Active Layer Dynamics
- III.
- Local Anthropological Activities
- IV.
- Ranking the Importance of Factors Potentially Causing Changes in Active Layer Thickness and Lake Area
3.2.2. Impacts of Reduced Lake Areas
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Lakes | Maximum Diameter, m | Minimum Diameter, m | Lake Area, km2 | ||||
---|---|---|---|---|---|---|---|
2014 | 2019 | 2014 | 2019 | 2014 | 2019 | Difference % | |
Lake UA1 | 197 | 0 | 103 | 0 | 0.070 | 0 | −100 |
Lake UA2 | 582 | 486 | 254 | 233 | 0.137 | 0.101 | −26.3 |
Lake UA3 | 368 | 321 | 199 | 151 | 0.063 | 0.053 | −5.87 |
Lake UA4 | 623 | 596 | 441 | 391 | 0.222 | 0.191 | −14.0 |
Lake UA5 | 2865 | 2313 | 1251 | 936 | 3.324 | 2.071 | −37.7 |
Lake UA6 | 2638 | 2145 | 1403 | 1224 | 3.204 | 2.227 | −30.5 |
Lake UA7 | 486 | 458 | 432 | 362 | 0.165 | 0.131 | −20.6 |
Lake UA8 | 498 | 412 | 385 | 343 | 0.153 | 0.114 | −25.5 |
Lake UA9 | 345 | 339 | 289 | 261 | 0.079 | 0.070 | −23.9 |
Mean | 955.8 | 785.6 | 528.6 | 433.4 | 0.821 | 0.551 | −31.6 |
Standard error | 0.462 | 0.302 |
Lakes | Maximum Diameter, m | Minimum Diameter, m | Lake Area, km2 | ||||
---|---|---|---|---|---|---|---|
2014 | 2019 | 2014 | 2019 | 2014 | 2019 | Difference % | |
Lake UB1 | 286 | 268 | 168 | 153 | 0.040 | 0.035 | −12.5 |
Lake UB2 | 265 | 248 | 172 | 159 | 0.037 | 0.032 | −13.5 |
Lake UB3 | 462 | 417 | 298 | 246 | 0.113 | 0.086 | −23.9 |
Lake UB4 | 312 | 271 | 252 | 241 | 0.062 | 0.051 | −17.7 |
Lake UB5 | 452 | 385 | 287 | 271 | 0.107 | 0.084 | −21.5 |
Lake UB6 | 685 | 649 | 452 | 436 | 0.253 | 0.231 | −8.7 |
Lake UB7 | 648 | 612 | 447 | 421 | 0.235 | 0.209 | −11.1 |
Lake UB8 | 928 | 895 | 536 | 502 | 0.420 | 0.383 | −8.8 |
Lake UB9 | 323 | 318 | 203 | 172 | 0.054 | 0.047 | −13.0 |
Mean | 484.6 | 451.4 | 312.8 | 289.0 | 0.15 | 0.12 | −12.3 ± SE |
Standard error | 0.043 | 0.04 |
(A) | |||||
---|---|---|---|---|---|
Active Layer Thickness (cm) | Summer Precipitation (mm/cm2) | Mean Annual Temperature (°C) | Mean Winter Temperature (°C) | Mean Snow Depth (cm) | |
Active layer thickness (cm) | 1 | ||||
Summer precipitation (mm/cm2) | 0.521 | 1 | |||
Mean annual temperature (°C) | 0.023 | −0.170 | 1 | ||
Mean winter temperature (°C) | 0.008 | −0.570 | 0.806 | 1 | |
Mean snow depth (cm) | −0.143 | −0.646 | −0.644 | 0.860 | 1 |
(B) | |||||
Summer precipitation (mm/cm2) | Mean annual temperature (°C) | Mean winter temperature (°C) | Mean snow depth (cm) | ||
p-value for active layer thickness correlation with four climate variables | 0.289 | 0.988 | 0.955 | 0.787 | |
(C) | |||||
Summer precipitation (mm/cm2) | Mean annual temperature (°C) | Mean winter temperature (°C) | Mean snow depth (cm) | ||
p-value for lake area correlation with four climate variables | 0.487 | 0.153 | 0.025 | 0.0125 |
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Kunin, S.; Semenova, O.; Callaghan, T.V.; Shaduyko, O.; Bodur, V. Recording Permafrost Thaw and Thaw Lake Degradation in Northern Siberia: School Science in Action. Water 2023, 15, 818. https://doi.org/10.3390/w15040818
Kunin S, Semenova O, Callaghan TV, Shaduyko O, Bodur V. Recording Permafrost Thaw and Thaw Lake Degradation in Northern Siberia: School Science in Action. Water. 2023; 15(4):818. https://doi.org/10.3390/w15040818
Chicago/Turabian StyleKunin, Sergey, Olga Semenova, Terry V. Callaghan, Olga Shaduyko, and Vladimir Bodur. 2023. "Recording Permafrost Thaw and Thaw Lake Degradation in Northern Siberia: School Science in Action" Water 15, no. 4: 818. https://doi.org/10.3390/w15040818
APA StyleKunin, S., Semenova, O., Callaghan, T. V., Shaduyko, O., & Bodur, V. (2023). Recording Permafrost Thaw and Thaw Lake Degradation in Northern Siberia: School Science in Action. Water, 15(4), 818. https://doi.org/10.3390/w15040818