The Tipping Point of Maladaptation: Household Risk Trade-Offs Between Flooding and Extreme Heat in Northern Ghana

Authors

Emmanuel Eyiah-Botwe

Department of Construction Technology and Quantity Surveying, Kumasi Technical University, Ghana (Ghana)

Wellington Didibhuku Thwala

Faculty of Engineering, Built Environment and Information Technology, Walter Sisulu University, South Africa (South Africa)

Clinton Ohis Aigbavboa

Department of Construction Technology and Quantity Surveying, University of Johannesburg, South Africa (South Africa)

Solomon Nii Offei Wellington

Department of Theoretical and Applied Biology, Kwame Nkrumah University of Science and Technology, Kumasi, Ghana (Ghana)

Ernest Boadu Osei

Department of Data Science and Analytics, Thrive Africa, Ghana (Ghana)

Bright Fosu Marfo

Department of Construction Technology and Quantity Surveying, Kumasi Technical University, Ghana (Ghana)

Article Information

DOI: 10.51244/IJRSI.2026.1306000415

Subject Category: Education

Volume/Issue: 13/6 | Page No: 5587-5601

Publication Timeline

Submitted: 2026-06-29

Accepted: 2026-07-04

Published: 2026-07-15

Abstract

Cement-based self-built housing in Northern Ghana links flood resistance to severe indoor heat stress. This study identifies the socioeconomic threshold at which flood protection overrides thermal comfort, producing climatic maladaptation in household construction decisions. A cross-sectional survey was conducted across three flood-risk-stratified peri-urban clusters in Tamale, and 384 household heads were selected by multi-stage stratified random sampling. Chi-square tests, logistic regression, cluster analysis, and receiver operating characteristic threshold analysis were employed. While indoor heat was considered the main daily stressor by 51.6% of households, 71.9% of climate expenditures were spent on flood protection (mean GHS 2340 vs GHS 680 for heat mitigation). A monthly income of 1,000 GHS marked a maladaptation tipping point; below that threshold, households had a 92.0% chance of a locked-in vulnerability. Adaptation regret affected 46.4%, while 86.5% lacked remediation capacity. Integrated flood-heat policy, tenure regularisation, and bioclimatic material subsidies targeting households earning below 1000 GHS are imperative for breaking the maladaptive trajectory of construction. This study empirically quantifies the household-level tipping point for maladaptation in West African informal settlements, thereby contributing to the theory of maladaptation through income-threshold analysis.

Keywords

Climate risk trade-offs; Flood protection; Indoor heat stress; Informal settlements; Maladaptation; Northern Ghana

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