The Mackenzie Delta is an extensive river-mouth depocentre, the second largest delta on the Arctic Ocean, and lies in the zone of continuous permafrost. We report the first measurements of natural consolidation subsidence in a high-latitude delta with ice-bonded sediments. Several years of episodic GPS records on a network of 15 stable monuments throughout the central and outer delta reveal downward motion between 1.5 ± 0.7 and 5.3 ± 1.1 mm/year relative to a nearby monument on bedrock. Additional shallow subsidence results from loss of near-surface excess ice with deeper seasonal thaw in a warming climate. Isostatic adjustment is a third component of subsidence, captured in the NAD83v70VG crustal velocity model. Sedimentation rates over much of the outer delta are less than the rate of subsidence combined with rising sea level. Scenarios for future inundation are evaluated using interpolated IPCC AR5 projections, NAD83v70VG, and a LiDAR DEM with realistic consolidation, thaw subsidence, and sedimentation rates, on time scales of 40 and 90 years. These reveal increases in area flooded at mean water level from 33% in 2010 to 65% or as much as 85% in 2100, depending on the emissions scenario, driving delta-front retreat and removing a large proportion of avian nesting habitat. The three components of subsidence together increase the relative sea-level rise by a factor of two to eight, depending on the scenario. Consolidation subsidence may also contribute to rising low-flow water levels in the central delta, increasing river-lake connectivity, with negative impacts on aquatic biodiversity and productivity.
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Research Article|
March 08, 2022
Subsidence drives habitat loss in a large permafrost delta, Mackenzie River outlet to the Beaufort Sea, western Arctic Canada Available to Purchase
D.L. Forbes;
D.L. Forbes
a
Geological Survey of Canada, Natural Resources Canada, Dartmouth, NS B2Y 4A2, Canada.b
Department of Geography, Memorial University of Newfoundland, St. John’s, NL A1B 3X9, Canada.c
Earth and Environmental Sciences, Dalhousie University, Halifax, NS B3H 4R2, Canada.
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M.R. Craymer;
M.R. Craymer
d
Canadian Geodetic Survey, Natural Resources Canada, Ottawa, ON K1A 0Y2, Canada.
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T.S. James;
T.S. James
e
Geological Survey of Canada, Natural Resources Canada, Sidney, BC V8L 4B2, Canada.f
School of Earth and Ocean Sciences, University of Victoria, Victoria, BC V8W 2Y2, Canada.
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D. Whalen
D. Whalen
a
Geological Survey of Canada, Natural Resources Canada, Dartmouth, NS B2Y 4A2, Canada.c
Earth and Environmental Sciences, Dalhousie University, Halifax, NS B3H 4R2, Canada.
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D.L. Forbes
a
Geological Survey of Canada, Natural Resources Canada, Dartmouth, NS B2Y 4A2, Canada.b
Department of Geography, Memorial University of Newfoundland, St. John’s, NL A1B 3X9, Canada.c
Earth and Environmental Sciences, Dalhousie University, Halifax, NS B3H 4R2, Canada.
M.R. Craymer
d
Canadian Geodetic Survey, Natural Resources Canada, Ottawa, ON K1A 0Y2, Canada.
T.S. James
e
Geological Survey of Canada, Natural Resources Canada, Sidney, BC V8L 4B2, Canada.f
School of Earth and Ocean Sciences, University of Victoria, Victoria, BC V8W 2Y2, Canada.
D. Whalen
a
Geological Survey of Canada, Natural Resources Canada, Dartmouth, NS B2Y 4A2, Canada.c
Earth and Environmental Sciences, Dalhousie University, Halifax, NS B3H 4R2, Canada.Corresponding author: D.L. Forbes (email: [email protected]).
Publisher: Canadian Science Publishing
Received:
17 Nov 2021
Accepted:
20 Feb 2022
First Online:
05 Dec 2022
Online ISSN: 1480-3313
Print ISSN: 0008-4077
Her Majesty the Queen in Right of Canada, as represented by the Minister of Natural Resources
This work is licensed under a Creative Commons Attribution 4.0 International License (CC BY 4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
Canadian Journal of Earth Sciences (2022) 59 (11): 914–934.
Article history
Received:
17 Nov 2021
Accepted:
20 Feb 2022
First Online:
05 Dec 2022
Citation
D.L. Forbes, M.R. Craymer, T.S. James, D. Whalen; Subsidence drives habitat loss in a large permafrost delta, Mackenzie River outlet to the Beaufort Sea, western Arctic Canada. Canadian Journal of Earth Sciences 2022;; 59 (11): 914–934. doi: https://doi.org/10.1139/cjes-2021-0127
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Index Terms/Descriptors
- Arctic Ocean
- Beaufort Sea
- bedrock
- biodiversity
- Canada
- Cenozoic
- climate change
- consolidation
- deltas
- digital elevation models
- erosion
- geologic hazards
- global change
- global warming
- ice
- land subsidence
- laser methods
- lidar methods
- Mackenzie River
- natural hazards
- permafrost
- productivity
- Quaternary
- sea-level changes
- sedimentation
- shore features
- submergence
- thawing
- habitability
Latitude & Longitude
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