Assessing climate-change-induced flood risk in the Conasauga River watershed: an application of ensemble hydrodynamic inundation modeling
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Published:2021-06-02
Issue:6
Volume:21
Page:1739-1757
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ISSN:1684-9981
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Container-title:Natural Hazards and Earth System Sciences
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language:en
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Short-container-title:Nat. Hazards Earth Syst. Sci.
Author:
Dullo Tigstu T., Darkwah George K.ORCID, Gangrade SudershanORCID, Morales-Hernández MarioORCID, Sharif M. Bulbul, Kalyanapu Alfred J.ORCID, Kao Shih-ChiehORCID, Ghafoor Sheikh, Ashfaq MoetasimORCID
Abstract
Abstract. This study evaluates the impact of potential future climate change on flood
regimes, floodplain protection, and electricity infrastructures across the
Conasauga River watershed in the southeastern United States through ensemble
hydrodynamic inundation modeling. The ensemble streamflow scenarios were
simulated by the Distributed Hydrology Soil Vegetation Model (DHSVM) driven
by (1) 1981–2012 Daymet meteorological observations and (2) 11 sets of
downscaled global climate models (GCMs) during the 1966–2005 historical and
2011–2050 future periods. Surface inundation was simulated using a
GPU-accelerated Two-dimensional Runoff Inundation Toolkit for Operational
Needs (TRITON) hydrodynamic model. A total of 9 out of the 11 GCMs exhibit an
increase in the mean ensemble flood inundation areas. Moreover, at the 1 %
annual exceedance probability level, the flood inundation frequency curves
indicate a ∼ 16 km2 increase in floodplain area. The
assessment also shows that even after flood-proofing, four of the
substations could still be affected in the projected future period. The
increase in floodplain area and substation vulnerability highlights the need
to account for climate change in floodplain management. Overall, this study
provides a proof-of-concept demonstration of how the computationally
intensive hydrodynamic inundation modeling can be used to enhance flood
frequency maps and vulnerability assessment under the changing climatic
conditions.
Funder
Oak Ridge National Laboratory
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences
Reference94 articles.
1. AECOM: The Impact of Climate Change and Population Growth on the National
Flood Insurance Program through 2100, available at: https://www.aecom.com/content/wp-content/uploads/2016/06/Climate_Change_Report_AECOM_2013-06-11.pdf (last access: 12 October 2019), 2013. 2. Akaike, H.: A new look at the statistical model identification,
IEEE Transactions on Automatic Control, 19, 716–723, https://doi.org/10.1109/TAC.1974.1100705,
1974. 3. Alfieri, L., Salamon, P., Bianchi, A., Neal, J., Bates, P., and Feyen, L.:
Advances in Pan-European Flood Hazard Mapping, Hydrol. Process., 28,
4067–4077, https://doi.org/10.1002/hyp.9947, 2014. 4. Alfieri, L., Burek, P., Feyen, L., and Forzieri, G.: Global warming increases the frequency of river floods in Europe, Hydrol. Earth Syst. Sci., 19, 2247–2260, https://doi.org/10.5194/hess-19-2247-2015, 2015a. 5. Alfieri, L., Feyen, L., Dottori, F., and Bianchi, A.: Ensemble Flood Risk
Assessment in Europe Under High End Climate Scenarios, Global Environ.
Change, 35, 199–212, https://doi.org/10.1016/j.gloenvcha.2015.09.004, 2015b.
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