Submitted:
23 April 2025
Posted:
24 April 2025
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Abstract
Keywords:
1. Introduction
- Are low-centered polygons degradational or aggradational features?
- What drives the formation of elevated polygonal rims in low-centered polygons? Can actively growing ice wedges form without rims?
- Does aggradation of ice-rich permafrost in polygonal centers reduce low-centered polygon microtopographic relief?
- How does the orthogonal system of low-centered ice-wedge polygons form?
2. Are Low-Centered Polygons Degradational or Aggradational Features?
2.1. Low-Centered Polygons as Permafrost Degradation Features
2.2. Low-Centered Polygons as Permafrost Aggradation Features
3. What Drives the Formation of Elevated Polygonal Rims in Low-Centered Polygons?
3.1. Rims Are Formed by Bulging of Soil Along Ice Wedges
3.2. Formation of Rims by Bulging of Ice Wedges
3.3. Formation of Rims by Bending the Soil of Polygons by Thickening Ice Wedges
3.4. Formation of Rims by Peat Folding
3.5. Formation of Rims by Pressure of Ice Forming in Water-Filled Troughs
3.6. Rims of Sand-Wedge Polygons
3.7. Vegetation Growth
3.8. Frost Heave
3.9. Absence of Elevated Rims in Areas of Actively Growing Ice Wedges
4. Does Aggradation of Ice-Rich Permafrost in Polygonal Centers Reduce Low-Centered Polygon Microtopographic Relief?
5. How Does the Orthogonal System of Low-Centered Ice-Wedge Polygons Form?
5.1. First Observations of Low-Centered Polygonal Systems from Ground Level
5.2. First Observations of Polygonal Systems from the Air with the Introduction of Aerial Photography
5.3. Explanations of the Processes That Lead to Orthogonal Arrangement of Ice-Wedge Polygons
- (1)
- The orthogonal grid is confined to the shorelines of water bodies and follows the forms of a shoreline: one system of wedges is oriented along the shore, the other is normal to it. There are also examples when the shorelines of water bodies cross a non-predetermined polygonal grid without any changes in it.
- (2)
- The orthogonal grid is confined to the ancient shorelines of water bodies, now not existing (e.g., due to migration of the river channel), but left traces of their existence visible on aerial photographs.
- (3)
- The orthogonal grid is separated from the adjacent non-orthogonal polygonal grid or from the area devoid of polygonal grids by a sharp boundary, the nature of which cannot be unambiguously interpreted from aerial photographs.
- (4)
- There is a gradual transition from orthogonal to nonorthogonal polygonal grids.
5.4. Opposing Explanations of Orthogonal Network Formation
6. Conclusions
- Are low-centered polygons degradational or aggradational features?
- 2.
- What drives the formation of elevated polygonal rims in low-centered polygons? Can actively growing ice wedges form without rims?
- 3.
- Does aggradation of ice-rich permafrost in polygonal centers reduce low-centered polygon microtopographic relief?
- 4.
- How does the orthogonal system of low-centered ice-wedge polygons form?
Acknowledgments
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