Closing Water Cycles in the Built Environment through Nature-Based Solutions: The Contribution of Vertical Greening Systems and Green Roofs

Water in the city is typically exploited in a linear process, in which most of it is polluted, treated, and discharged; during this process, valuable nutrients are lost in the treatment process instead of being cycled back and used in urban agriculture or green space. The purpose of this paper is to...

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Published inWater (Basel) Vol. 13; no. 16; p. 2165
Main Authors Pearlmutter, David, Pucher, Bernhard, Calheiros, Cristina S. C., Hoffmann, Karin A., Aicher, Andreas, Pinho, Pedro, Stracqualursi, Alessandro, Korolova, Alisa, Pobric, Alma, Galvão, Ana, Tokuç, Ayça, Bas, Bilge, Theochari, Dimitra, Milosevic, Dragan, Giancola, Emanuela, Bertino, Gaetano, Castellar, Joana A. C., Flaszynska, Julia, Onur, Makbulenur, Mateo, Mari Carmen Garcia, Andreucci, Maria Beatrice, Milousi, Maria, Fonseca, Mariana, Lonardo, Sara Di, Gezik, Veronika, Pitha, Ulrike, Nehls, Thomas
Format Journal Article
LanguageEnglish
Published Basel MDPI AG 01.08.2021
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Abstract Water in the city is typically exploited in a linear process, in which most of it is polluted, treated, and discharged; during this process, valuable nutrients are lost in the treatment process instead of being cycled back and used in urban agriculture or green space. The purpose of this paper is to advance a new paradigm to close water cycles in cities via the implementation of nature-based solutions units (NBS_u), with a particular focus on building greening elements, such as green roofs (GRs) and vertical greening systems (VGS). The hypothesis is that such “circular systems” can provide substantial ecosystem services and minimize environmental degradation. Our method is twofold: we first examine these systems from a life-cycle point of view, assessing not only the inputs of conventional and alternative materials, but the ongoing input of water that is required for irrigation. Secondly, the evapotranspiration performance of VGS in Copenhagen, Berlin, Lisbon, Rome, Istanbul, and Tel Aviv, cities with different climatic, architectural, and sociocultural contexts have been simulated using a verticalized ET0 approach, assessing rainwater runoff and greywater as irrigation resources. The water cycling performance of VGS in the mentioned cities would be sufficient at recycling 44% (Lisbon) to 100% (Berlin, Istanbul) of all accruing rainwater roof–runoff, if water shortages in dry months are bridged by greywater. Then, 27–53% of the greywater accruing in a building could be managed on its greened surface. In conclusion, we address the gaps in the current knowledge and policies identified in the different stages of analyses, such as the lack of comprehensive life cycle assessment studies that quantify the complete “water footprint” of building greening systems.
AbstractList Water in the city is typically exploited in a linear process, in which most of it is polluted, treated, and discharged; during this process, valuable nutrients are lost in the treatment process instead of being cycled back and used in urban agriculture or green space. The purpose of this paper is to advance a new paradigm to close water cycles in cities via the implementation of nature-based solutions units (NBS_u), with a particular focus on building greening elements, such as green roofs (GRs) and vertical greening systems (VGS). The hypothesis is that such “circular systems” can provide substantial ecosystem services and minimize environmental degradation. Our method is twofold: we first examine these systems from a life-cycle point of view, assessing not only the inputs of conventional and alternative materials, but the ongoing input of water that is required for irrigation. Secondly, the evapotranspiration performance of VGS in Copenhagen, Berlin, Lisbon, Rome, Istanbul, and Tel Aviv, cities with different climatic, architectural, and sociocultural contexts have been simulated using a verticalized ET0 approach, assessing rainwater runoff and greywater as irrigation resources. The water cycling performance of VGS in the mentioned cities would be sufficient at recycling 44% (Lisbon) to 100% (Berlin, Istanbul) of all accruing rainwater roof–runoff, if water shortages in dry months are bridged by greywater. Then, 27–53% of the greywater accruing in a building could be managed on its greened surface. In conclusion, we address the gaps in the current knowledge and policies identified in the different stages of analyses, such as the lack of comprehensive life cycle assessment studies that quantify the complete “water footprint” of building greening systems.
Author Mateo, Mari Carmen Garcia
Pobric, Alma
Milosevic, Dragan
Calheiros, Cristina S. C.
Andreucci, Maria Beatrice
Fonseca, Mariana
Gezik, Veronika
Stracqualursi, Alessandro
Pitha, Ulrike
Pucher, Bernhard
Onur, Makbulenur
Hoffmann, Karin A.
Theochari, Dimitra
Flaszynska, Julia
Bas, Bilge
Castellar, Joana A. C.
Milousi, Maria
Galvão, Ana
Pearlmutter, David
Pinho, Pedro
Aicher, Andreas
Giancola, Emanuela
Nehls, Thomas
Tokuç, Ayça
Bertino, Gaetano
Lonardo, Sara Di
Korolova, Alisa
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SubjectTerms Buildings
Built environment
Case studies
Cities
Consumption
Drinking water
Ecosystem services
Environmental degradation
Evapotranspiration
Floods
Green buildings
Green roofs
Greening
Greywater
Hydrologic cycle
Irrigation
Irrigation water
nature-based solutions
Nutrient cycles
Nutrients
Outdoor air quality
Precipitation
Rain water
Roofs
Storm runoff
Stormwater management
Sustainable design
Urban agriculture
Urban environments
vertical greening systems
Water consumption
water cycle
water management
Water reuse
Water shortages
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Title Closing Water Cycles in the Built Environment through Nature-Based Solutions: The Contribution of Vertical Greening Systems and Green Roofs
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