Increased flood exposure in the Pacific Northwest following earthquake-driven subsidence and sea-level rise

T Tina Dura (Department of Geosciences, Virginia Tech) W William Chilton (Department of Geosciences, Virginia Tech) D David Small (Department of Earth Sciences, University of Oregon) A Andra J. Garner (Department of Environmental Science, Rowan University) A Andrea Hawkes (Department of Earth and Ocean Sciences, University of North Carolina) D Diego Melgar (Department of Earth Sciences, University of Oregon) S Simon E. Engelhart (Department of Geography, Durham University) L Lydia M. Staisch (Geology Minerals Energy and Geophysics Science Center, United States Geological Survey) R Robert C. Witter (Alaska Science Center, U.S. Geological Survey) A Alan R. Nelson (Earthquake Hazards Program, U.S. Geological Survey) H Harvey M. Kelsey (Department of Geology, California State Polytechnic University) J Jonathan C. Allan (Department of Geology and Mineral Industries) D David Bruce (Department of Geosciences, Virginia Tech) J Jessica DePaolis (Department of Geosciences, Virginia Tech) M Michael Priddy (Department of Geosciences, Virginia Tech) R Richard W. Briggs (Earthquake Hazards Program, U.S. Geological Survey) R Robert Weiss (Friedrich-Alexander-Universität (FAU) Erlangen-Nürnberg, Nikolaus-Fiebiger-Str. 10, 91058 Erlangen, Germany) S SeanPaul La Selle (Pacific Coastal and Marine Science Center, U.S. Geological Survey Santa Cruz) M Michael Willis (Department of Geosciences, Virginia Tech) B Benjamin P. Horton (School of Energy and Environment City University of Hong Kong)

Abstract

Climate-driven sea-level rise is increasing the frequency of coastal flooding worldwide, exacerbated locally by factors like land subsidence from groundwater and resource extraction. However, a process rarely considered in future sea-level rise scenarios is sudden (over minutes) land subsidence associated with great (>M8) earthquakes, which can exceed 1 m. Along the Washington, Oregon, and northern California coasts, the next great Cascadia subduction zone earthquake could cause up to 2 m of sudden coastal subsidence, dramatically raising sea level, expanding floodplains, and increasing the flood risk to local communities. Here, we quantify the potential expansion of the 1% floodplain (i.e., the area with an annual flood risk of 1%) under low (~0.5 m), medium (~1 m), and high (~2 m) earthquake-driven subsidence scenarios at 24 Cascadia estuaries. If a great earthquake occurred today, floodplains could expand by 90 km 2 (low), 160 km 2 (medium), or 300 km 2 (high subsidence), more than doubling the flooding exposure of residents, structures, and roads under the high subsidence scenario. By 2100, when climate-driven sea-level rise will compound the hazard, a great earthquake could expand floodplains by 170 km 2 (low), 240 km 2 (medium), or 370 km 2 (high subsidence), more than tripling the flooding exposure of residents, structures, and roads under the high subsidence scenario compared to the 2023 floodplain. Our findings can support decision-makers and coastal communities along the Cascadia subduction zone as they prepare for compound hazards from the earthquake cycle and climate-driven sea-level rise and provide critical insights for tectonically active coastlines globally.

Article Details

Volume / Issue Vol. 122, Issue 18
Published May 06, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (20)

T

Tina Dura

Department of Geosciences, Virginia Tech

W

William Chilton

Department of Geosciences, Virginia Tech

D

David Small

Department of Earth Sciences, University of Oregon

A

Andra J. Garner

Department of Environmental Science, Rowan University

A

Andrea Hawkes

Department of Earth and Ocean Sciences, University of North Carolina

D

Diego Melgar

Department of Earth Sciences, University of Oregon

S

Simon E. Engelhart

Department of Geography, Durham University

L

Lydia M. Staisch

Geology Minerals Energy and Geophysics Science Center, United States Geological Survey

R

Robert C. Witter

Alaska Science Center, U.S. Geological Survey

A

Alan R. Nelson

Earthquake Hazards Program, U.S. Geological Survey

H

Harvey M. Kelsey

Department of Geology, California State Polytechnic University

J

Jonathan C. Allan

Department of Geology and Mineral Industries

D

David Bruce

Department of Geosciences, Virginia Tech

J

Jessica DePaolis

Department of Geosciences, Virginia Tech

M

Michael Priddy

Department of Geosciences, Virginia Tech

R

Richard W. Briggs

Earthquake Hazards Program, U.S. Geological Survey

R

Robert Weiss

Friedrich-Alexander-Universität (FAU) Erlangen-Nürnberg, Nikolaus-Fiebiger-Str. 10, 91058 Erlangen, Germany

S

SeanPaul La Selle

Pacific Coastal and Marine Science Center, U.S. Geological Survey Santa Cruz

M

Michael Willis

Department of Geosciences, Virginia Tech

B

Benjamin P. Horton

School of Energy and Environment City University of Hong Kong