Hydrologic Impacts of Thawing Permafrost—A Review

Гидрологические последствия оттаивания вечной мерзлоты — обзор
Michelle A. Walvoord, Barret L. Kurylyk
2016-06-01

cryohydrogeologic modelinghydrologic connectivitypermafrost hydrologypermafrost thawsubsurface characterization
Core Ideas This review synthesizes the state of the science in permafrost hydrology. Observed and projected hydrologic impacts of permafrost thaw are discussed. Characterization, modeling, and knowledge gaps of permafrost systems are identified. Translating results between multiple scales in cold regions presents a challenge. Opportunities for advancement in the field of permafrost hydrology are described. Where present, permafrost exerts a primary control on water fluxes, flowpaths, and distribution. Climate warming and related drivers of soil thermal change are expected to modify the distribution of permafrost, leading to changing hydrologic conditions, including alterations in soil moisture, connectivity of inland waters, streamflow seasonality, and the partitioning of water stored above and below ground. The field of permafrost hydrology is undergoing rapid advancement with respect to multiscale observations, subsurface characterization, modeling, and integration with other disciplines. However, gaining predictive capability of the many interrelated consequences of climate change is a persistent challenge due to several factors. Observations of hydrologic change have been causally linked to permafrost thaw, but applications of process‐based models needed to support and enhance the transferability of empirical linkages have often been restricted to generalized representations. Limitations stem from inadequate baseline permafrost and unfrozen hydrogeologic characterization, lack of historical data, and simplifications in structure and process representation needed to counter the high computational demands of cryohydrogeologic simulations. Further, due in part to the large degree of subsurface heterogeneity of permafrost landscapes and the nonuniformity in thaw patterns and rates, associations between various modes of permafrost thaw and hydrologic change are not readily scalable; even trajectories of change can differ. This review highlights promising advances in characterization and modeling of permafrost regions and presents ongoing research challenges toward projecting hydrologic and ecologic consequences of permafrost thaw at time and spatial scales that are useful to managers and researchers.
1
Climate warming and soil thermal change are expected to alter permafrost distribution, causing changes in soil moisture, inland water connectivity, streamflow seasonality, and subsurface vs. surface water partitioning.
2
Observations have causally linked hydrologic changes to permafrost thaw, but process-based models often use generalized representations limiting transferability of empirical linkages.
3
Permafrost exerts primary control on water fluxes, flowpaths, and distribution where it is present.
4
Predictive capability is constrained by inadequate baseline permafrost and unfrozen hydrogeologic characterization, lack of historical data, and computational simplifications in cryohydrogeologic simulations.
5
Subsurface heterogeneity and nonuniform thaw patterns hinder scalable associations between modes of permafrost thaw and hydrologic change, producing variable trajectories of change.

Permafrost systems and landscapes undergoing thaw

Hydrologic impacts and changes driven by permafrost thaw, including effects on water fluxes, flowpaths, soil moisture, inland water connectivity, streamflow seasonality, and subsurface/aboveground water partitioning, plus challenges in characterization, modeling, and scaling of these processes

Publication Details
Publication Date
2016-06-01
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Michelle A. Walvoord
Barret L. Kurylyk
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%