Title: From runoff to resilience

Climate change and rapid urbanization intensify stormwater-related challenges in cities, particularly in compact urban environments. Traditional grey infrastructure often fails to address these risks in a flexible and adaptive manner. Nature-based solutions (NbS) offer a multifunctional and resilien...

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Detalles Bibliográficos
Autores: Khromova, Svetlana|||0000-0002-6434-4879, Busse, Svea|||0009-0000-8106-5882, Benati, Giulia|||0000-0002-1625-0640, Herreros-Cantis, Pablo|||0000-0002-2278-0648, Segura Barrero, Ricard|||0000-0003-1048-1875, Ventura, Sergi|||0000-0003-2529-209X, Eckelman, Matthew J.|||0000-0002-0595-3682, Villalba, Gara|||0000-0001-6392-0902, Langemeyer, Johannes|||0000-0002-0558-8486
Tipo de recurso: artículo
Fecha de publicación:2026
País:España
Institución:Universitat Autònoma de Barcelona
Repositorio:Dipòsit Digital de Documents de la UAB
Idioma:inglés
OAI Identifier:oai:dnet:uabarcelona_::5ac3762cabcebbdf1d75f756dd98f546
Acceso en línea:https://ddd.uab.cat/record/328908
https://dx.doi.org/urn:doi:10.1016/j.ufug.2026.129431
Access Level:acceso abierto
Palabra clave:Ecosystem Services
InVEST modeling
Nature-based solutions (NbS)
Social-Ecological-Technological Systems (SETS)
Urban stormwater
Descripción
Sumario:Climate change and rapid urbanization intensify stormwater-related challenges in cities, particularly in compact urban environments. Traditional grey infrastructure often fails to address these risks in a flexible and adaptive manner. Nature-based solutions (NbS) offer a multifunctional and resilient complement to traditional grey infrastructure. This study presents a Social-Ecological-Technological Systems (SETS)-framed methodology for evaluating urban risks, feasibility, and the multifunctional performance of NbS at the city scale. Using a GIS-based framework, we assess NbS feasibility across social, ecological, and technological domains, simulate stormwater retention under different scenarios, and quantify co-benefits including heat mitigation, water storage, water quality, habitat provisioning, and recreation. Applied to Barcelona, the study finds that implementing NbS (including green roofs, rain gardens, urban parks, and permeable pavements) over 160 ha in Scenario 1 (S1), aligned with the city's greening strategy, and 2498 ha in Scenario 2 (S2), which maximizes NbS feasibility, could reduce city-scale flood volume by up to 4.6% for T1 events, increase water storage capacity by 43%, improve habitat quality by 36%, and reduce the proportion of the population underserved by urban nature by nearly 50%, compared to the current land use and land cover (S0). While the reduction in runoff volume is moderate, especially for high-intensity storm events, our findings highlight the substantial additional value of NbS through the provisioning of co-benefits and risk reduction for vulnerable urban communities. Although the assumptions and simplifications of the numerical models used in this study may influence the results, our findings underscore the importance of integrating NbS not only as technical solutions for stormwater management but also as strategic tools for enhancing urban resilience, equity, and climate adaptation, while unlocking their transformative potential to reconfigure urban systems towards more sustainable and inclusive futures.