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Compound flood hazard and exposure in the Limpopo River Basin : A copula-based climate risk assessment for disaster risk reduction

Mathe, Marcio Fernando LU orcid and Persson, Andreas LU orcid (2026) In Journal of Hydrology: Regional Studies 66.
Abstract

Study region: The Limpopo River Basin (LRB) is a transboundary catchment in Southern Africa spanning South Africa, Botswana, Zimbabwe, and Mozambique. The lower basin, particularly the Chókwè–Xai-Xai floodplain in Mozambique, is highly flood-prone due to flat topography, climate variability, and rapid agricultural and settlement expansion. Study focus: This study presents a climate-informed framework for assessing compound flood hazards in the LRB by coupling a process-based hydrological model with two-dimensional hydraulic simulations and copula-based multivariate statistics. Bias-corrected late-century (2065–2099) climate projections under RCP 4.5 and RCP 8.5 drive hydrological simulations that provide boundary conditions for 2D... (More)

Study region: The Limpopo River Basin (LRB) is a transboundary catchment in Southern Africa spanning South Africa, Botswana, Zimbabwe, and Mozambique. The lower basin, particularly the Chókwè–Xai-Xai floodplain in Mozambique, is highly flood-prone due to flat topography, climate variability, and rapid agricultural and settlement expansion. Study focus: This study presents a climate-informed framework for assessing compound flood hazards in the LRB by coupling a process-based hydrological model with two-dimensional hydraulic simulations and copula-based multivariate statistics. Bias-corrected late-century (2065–2099) climate projections under RCP 4.5 and RCP 8.5 drive hydrological simulations that provide boundary conditions for 2D hydraulic modelling of flood depth, velocity, and duration. Copula functions quantify dependencies among these variables and are used to derive probabilistic compound-hazard classes, which are intersected with land-cover data to assess exposure. New hydrological insights for the region: Results reveal moderate, symmetric dependence among flood depth, velocity, and duration, best captured by a Gaussian copula, indicating joint intensification without strong tail asymmetry. Compound hazards increase sharply with return period and emissions pathway, with the Chókwè–Xai-Xai corridor consistently identified as the primary hotspot. Under RCP 8.5, high compound-hazard areas expand non-linearly, approaching ∼48,000 ha for 100-year events, compared with ∼5500 ha under RCP 4.5. Agricultural land shows the greatest exposure, while urban exposure peaks at intermediate return periods. The framework provides decision-relevant evidence for climate-resilient floodplain zoning, infrastructure design, and early-warning prioritisation.

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author
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organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Compound events, Flood Hazard Modelling, Hydrological extremes, Limpopo River Basin, Probabilistic hydrological modelling, Southern Africa
in
Journal of Hydrology: Regional Studies
volume
66
article number
103668
publisher
Elsevier
external identifiers
  • scopus:105042592287
ISSN
2214-5818
DOI
10.1016/j.ejrh.2026.103668
language
English
LU publication?
yes
additional info
Publisher Copyright: © 2026 The Author(s). Published by Elsevier B.V. This is an open access article under the CC BY license. http://creativecommons.org/licenses/by/4.0/
id
7023ca14-cfba-48bb-b496-c10ff164e54b
date added to LUP
2026-07-23 11:19:44
date last changed
2026-07-23 11:19:44
@article{7023ca14-cfba-48bb-b496-c10ff164e54b,
  abstract     = {{<p>Study region: The Limpopo River Basin (LRB) is a transboundary catchment in Southern Africa spanning South Africa, Botswana, Zimbabwe, and Mozambique. The lower basin, particularly the Chókwè–Xai-Xai floodplain in Mozambique, is highly flood-prone due to flat topography, climate variability, and rapid agricultural and settlement expansion. Study focus: This study presents a climate-informed framework for assessing compound flood hazards in the LRB by coupling a process-based hydrological model with two-dimensional hydraulic simulations and copula-based multivariate statistics. Bias-corrected late-century (2065–2099) climate projections under RCP 4.5 and RCP 8.5 drive hydrological simulations that provide boundary conditions for 2D hydraulic modelling of flood depth, velocity, and duration. Copula functions quantify dependencies among these variables and are used to derive probabilistic compound-hazard classes, which are intersected with land-cover data to assess exposure. New hydrological insights for the region: Results reveal moderate, symmetric dependence among flood depth, velocity, and duration, best captured by a Gaussian copula, indicating joint intensification without strong tail asymmetry. Compound hazards increase sharply with return period and emissions pathway, with the Chókwè–Xai-Xai corridor consistently identified as the primary hotspot. Under RCP 8.5, high compound-hazard areas expand non-linearly, approaching ∼48,000 ha for 100-year events, compared with ∼5500 ha under RCP 4.5. Agricultural land shows the greatest exposure, while urban exposure peaks at intermediate return periods. The framework provides decision-relevant evidence for climate-resilient floodplain zoning, infrastructure design, and early-warning prioritisation.</p>}},
  author       = {{Mathe, Marcio Fernando and Persson, Andreas}},
  issn         = {{2214-5818}},
  keywords     = {{Compound events; Flood Hazard Modelling; Hydrological extremes; Limpopo River Basin; Probabilistic hydrological modelling; Southern Africa}},
  language     = {{eng}},
  publisher    = {{Elsevier}},
  series       = {{Journal of Hydrology: Regional Studies}},
  title        = {{Compound flood hazard and exposure in the Limpopo River Basin : A copula-based climate risk assessment for disaster risk reduction}},
  url          = {{http://dx.doi.org/10.1016/j.ejrh.2026.103668}},
  doi          = {{10.1016/j.ejrh.2026.103668}},
  volume       = {{66}},
  year         = {{2026}},
}