A review of nature-based solutions for urban water management in European circular cities: a critical assessment based on case studies and literature
暂无分享,去创建一个
Magdalena Gajewska | Martin Regelsberger | Anacleto Rizzo | Fabio Masi | Jan Kazak | Eric D. van Hullebusch | Pawel Krzeminski | Nadia Ursino | Gianluigi Buttiglieri | Theis Raaschou Andersen | Alfonso Expósito | Mariyana Nikolova | Pedro N. Carvalho | Lena Simperler | Kaveh Dehghanian | David Christian Finger | Matej Radinja | Hasan Volkan Oral | L. Simperler | Matej Radinja | D. Finger | J. Kazak | A. Rizzo | F. Masi | P. Carvalho | M. Gajewska | N. Ursino | E. V. Hullebusch | A. Expósito | G. Cipolletta | T. R. Andersen | M. Regelsberger | Vit Rous | G. Buttiglieri | P. Krzeminski | Kaveh Dehghanian | Mariyana Nikolova | M. Zimmermann | Giulia Cipolletta | Vit Rous | Martin Zimmermann | P. Krzemiński
[1] Davide Geneletti,et al. A framework for assessing and implementing the co-benefits of nature-based solutions in urban areas , 2017 .
[2] Zhe-ming Tong,et al. A case study of air quality above an urban roof top vegetable farm. , 2016, Environmental pollution.
[3] I. Masih,et al. Intensification of constructed wetlands for land area reduction: a review , 2017, Environmental Science and Pollution Research.
[4] Timothy O. Randhir,et al. Managing emerging contaminants in watersheds: Need for comprehensive, systems-based strategies , 2017 .
[5] Patrizia Piro,et al. Hydrological Effectiveness of an Extensive Green Roof in Mediterranean Climate , 2019, Water.
[6] C. Arias,et al. "WETWALL” : an innovative design concept for the treatment of wastewater at an urban scale , 2018 .
[7] M. Hekkert,et al. Conceptualizing the Circular Economy: An Analysis of 114 Definitions , 2017 .
[8] J. Bayona,et al. Occurrence and fate of benzothiazoles and benzotriazoles in constructed wetlands. , 2010, Water science and technology : a journal of the International Association on Water Pollution Research.
[9] V. Matamoros,et al. The ability of biologically based wastewater treatment systems to remove emerging organic contaminants—a review , 2014, Environmental Science and Pollution Research.
[10] Francesca Nocca,et al. Moving Towards the Circular Economy/City Model: Which Tools for Operationalizing This Model? , 2019, Sustainability.
[11] Jakob Magid,et al. A minimum data set of water quality parameters to assess and compare treatment efficiency of stormwater facilities. , 2011, Journal of environmental quality.
[12] Patrizia Piro,et al. A comprehensive numerical analysis of the hydraulic behavior of a permeable pavement , 2016 .
[13] Connor David,et al. Mapping and Assessment of Ecosystems and their Services – An analytical framework for ecosystem assessments under Action 5 of the EU Biodiversity Strategy to 2020. Discussion paper , 2013 .
[14] Elke S. Reichwaldt,et al. Giving waterbodies the treatment they need: A critical review of the application of constructed floating wetlands. , 2019, Journal of environmental management.
[15] J. Spangenberg,et al. Nature-based solutions: sustainable? , 2017, Nature.
[16] P. Piro,et al. Energy and Hydraulic Performance of a Vegetated Roof in Sub-Mediterranean Climate , 2018, Sustainability.
[17] H. Richnow,et al. Monitoring and assessing processes of organic chemicals removal in constructed wetlands. , 2009, Chemosphere.
[18] J. V. Hoof,et al. Application of Ecological Footprint Accounting as a Part of an Integrated Assessment of Environmental Carrying Capacity: A Case Study of the Footprint of Food of a Large City , 2018, Resources.
[19] Ghassan Chebbo,et al. Priority pollutants in urban stormwater: part 2 - case of combined sewers. , 2012, Water research.
[20] H. Brix,et al. A review of plant–pharmaceutical interactions: from uptake and effects in crop plants to phytoremediation in constructed wetlands , 2014, Environmental Science and Pollution Research.
[21] Greening and Cooling the City Using Novel Urban Water Systems , 2019, Approaches to Water Sensitive Urban Design.
[22] T. Headley,et al. The taxonomy of treatment wetlands: A proposed classification and nomenclature system , 2013 .
[23] D. Barceló,et al. Emerging Contaminants from Industrial and Municipal Waste , 2008 .
[24] A. Paschke. Consideration of the physicochemical properties of sample matrices – an important step in sampling and sample preparation , 2003 .
[25] R R Brown,et al. The water sensitive city: principles for practice. , 2009, Water science and technology : a journal of the International Association on Water Pollution Research.
[26] The Internet of Things for Smart Urban Ecosystems , 2019, Internet of Things.
[27] Salvatore Losco,et al. Water Sensitive Urban Design - WSUD - Principles and Inspiration for Sustainable Stormwater Management in the City of the Future - AA.VV. , 2014 .
[28] A. Wüest,et al. Effects of oligotrophication on primary production in peri‐alpine lakes , 2013 .
[29] Fabio Masi,et al. Integrated valuation of a nature-based solution for water pollution control. Highlighting hidden benefits , 2016 .
[30] Nadja Kabisch,et al. Nature-Based Solutions to Climate Change Adaptation in Urban Areas: Linkages between Science, Policy and Practice , 2017 .
[31] Emmanuelle Cohen-Shacham,et al. Nature-based solutions to address global societal challenges , 2016 .
[32] Jan Kazak,et al. Pluvial Flood Risk Assessment Tool (PFRA) for Rainwater Management and Adaptation to Climate Change in Newly Urbanised Areas , 2018 .
[33] Ü. Mander,et al. Constructed Wetlands for Wastewater Treatment in Cold Climates , 2002 .
[34] A. Rizzo,et al. The role of constructed wetlands in a new circular economy, resource oriented, and ecosystem services paradigm. , 2017, Journal of environmental management.
[35] H. Brix,et al. Removal of the pharmaceuticals ibuprofen and iohexol by four wetland plant species in hydroponic culture: plant uptake and microbial degradation , 2016, Environmental Science and Pollution Research.
[36] S. Keesstra,et al. Connectivity assessment in Mediterranean vineyards using improved stock unearthing method, LiDAR and soil erosion field surveys , 2018 .
[37] K. Sakadevan,et al. Stormwater treatment: do constructed wetlands yield improved pollutant management performance over a detention pond system? , 2001, Water science and technology : a journal of the International Association on Water Pollution Research.
[38] Peter Steen Mikkelsen,et al. SUDS, LID, BMPs, WSUD and more – The evolution and application of terminology surrounding urban drainage , 2015 .
[39] Soon Keat Tan,et al. Constructed wetlands for wastewater treatment in cold climate - A review. , 2017, Journal of environmental sciences.
[40] F. Müller,et al. Mapping ecosystem service supply, demand and budgets , 2012 .
[41] T. McPhearson,et al. Integrating the Grey, Green, and Blue in Cities: Nature-Based Solutions for Climate Change Adaptation and Risk Reduction , 2017 .
[42] Georgia Destouni,et al. Nature-based solutions for flood-drought risk mitigation in vulnerable urbanizing parts of East-Africa , 2018, Current Opinion in Environmental Science & Health.
[43] P. Bolund,et al. Ecosystem services in urban areas , 1999 .
[44] E. Katsou,et al. Implementing nature-based solutions for creating a resourceful circular city , 2020, Blue-Green Systems.
[45] Adrián M.T. Silva,et al. A review on the application of constructed wetlands for the removal of priority substances and contaminants of emerging concern listed in recently launched EU legislation. , 2017, Environmental pollution.
[46] Kalanithy Vairavamoorthy. Managing Water for the City of the Future , 2009 .
[47] R. Haines-Young,et al. Nature-Based Solutions , 2016 .
[48] M. C. Tomei,et al. Performance of secondary wastewater treatment methods for the removal of contaminants of emerging concern implicated in crop uptake and antibiotic resistance spread: A review. , 2019, The Science of the total environment.
[49] Floris Boogaard,et al. Stormwater characteristics and new testing methods for certain sustainable urban drainage systems in The Netherlands , 2015 .
[50] F. Escobedo,et al. Edible green infrastructure: An approach and review of provisioning ecosystem services and disservices in urban environments , 2017 .
[51] S. J. Stanley,et al. Urban stormwater quality: Summary of contaminant data , 1995 .
[52] Robert Costanza,et al. Ecosystem Appropriation by Cities , 1996 .
[53] Patrizia Piro,et al. A Comprehensive Approach to Stormwater Management Problems in the Next Generation Drainage Networks , 2018, The Internet of Things for Smart Urban Ecosystems.
[54] Małgorzata Świąder,et al. The implementation of the concept of environmental carrying capacity into spatial management of cities , 2018, Management of Environmental Quality: An International Journal.
[55] P S Mikkelsen,et al. Selected stormwater priority pollutants: a European perspective. , 2007, The Science of the total environment.
[56] James M. Gaines. Flooding: Water potential , 2016, Nature.
[57] Sander Jacobs,et al. Nature‐Based Solutions for Europe's Sustainable Development , 2017 .
[58] Hanna Obarska-Pempkowiak,et al. Oczyszczalnie hydrofitowe jako wdrożenie założeń idei gospodarki o obiegu zamkniętym , 2018 .
[59] Ashok K. Sharma,et al. Approaches to Water Sensitive Urban Design: Potential, Design, Ecological Health, Urban Greening, Economics, Policies, and Community Perceptions , 2018 .
[60] J. K. Kazak,et al. Decision support systems for a sustainable management of the indoor and built environment , 2018, Indoor and Built Environment.
[61] R R Brown,et al. Urban water management in cities: historical, current and future regimes. , 2009, Water science and technology : a journal of the International Association on Water Pollution Research.
[62] D. Benson,et al. Particle tracking and the diffusion‐reaction equation , 2013 .
[63] W. Gujer,et al. The concept of sustainable Urban Water Management , 1997 .
[64] A. Rizzo,et al. Constructed wetlands for combined sewer overflow treatment: Ecosystem services at Gorla Maggiore, Italy , 2017 .
[65] H. Golden,et al. Green infrastructure and its catchment-scale effects: an emerging science , 2018, WIREs. Water.
[66] J. N. Fernandes,et al. Key issues for sustainable urban stormwater management. , 2012, Water research.
[67] Ana Mijic,et al. Blue Green Solutions. A Systems Approach to Sustainable and Cost-Effective Urban Development , 2017 .
[68] N. Ursino. Dynamic models of socio-ecological systems predict catastrophic shifts following unsustainable development. , 2019, The Science of the total environment.
[69] S. Arden,et al. Constructed wetlands for greywater recycle and reuse: A review. , 2018, The Science of the total environment.
[70] Ting Fong May Chui,et al. Linking hydrological and bioecological benefits of green infrastructures across spatial scales - A literature review. , 2019, The Science of the total environment.
[71] P. Piro,et al. Synthetic sustainability index (SSI) based on life cycle assessment approach of low impact development in the Mediterranean area , 2017 .
[72] Yolanda Madrid,et al. Water sampling : Traditional methods and new approaches in water sampling strategy , 2007 .
[73] W. Botzen,et al. Review of economic valuation of nature based solutions in urban areas , 2017 .
[74] Soon Keat Tan,et al. Removal of pharmaceuticals and personal care products in aquatic plant-based systems: a review. , 2014, Environmental pollution.
[75] Nancey Green Leigh,et al. Sustainable and Resilient Urban Water Systems: The Role of Decentralization and Planning , 2019, Sustainability.
[76] Susan A Baldwin,et al. Vermicomposting toilets, an alternative to latrine style microbial composting toilets, prove far superior in mass reduction, pathogen destruction, compost quality, and operational cost. , 2012, Waste management.
[77] Guenter Langergraber,et al. Green walls for greywater treatment and recycling in dense urban areas: a case-study in Pune , 2016 .
[78] G. Bennett,et al. Natural infrastructure investment and implications for the nexus: A global overview , 2016 .
[79] W. Wang,et al. Water Resources Compound Systems: A Macro Approach to Analysing Water Resource Issues under Changing Situations , 2015 .
[80] H. Andrieu,et al. Understanding, management and modelling of urban hydrology and its consequences for receiving waters: A state of the art , 2013 .
[81] J. Vymazal. Is removal of organics and suspended solids in horizontal sub-surface flow constructed wetlands sustainable for twenty and more years? , 2019 .
[82] Scientific. The United Nations World Water Development Report 2018 , 2019, The United Nations World Water Development Report.
[83] S. Keesstra,et al. The superior effect of nature based solutions in land management for enhancing ecosystem services. , 2018, The Science of the total environment.
[84] S. Guner. United Nations World Water Assessment Programme , 2011 .
[85] I. Rodríguez-Roda,et al. Long term decentralized greywater treatment for water reuse purposes in a tourist facility by vertical ecosystem , 2019, Ecological Engineering.
[86] J. Kazak,et al. Spatial Form of Greenery in Strategic Environmental Management in the Context of Urban Adaptation to Climate Change , 2019, Polish Journal of Environmental Studies.
[87] R. Moilleron,et al. Priority pollutants in urban stormwater: part 1 - case of separate storm sewers. , 2012, Water research.
[88] Paola Verlicchi,et al. How efficient are constructed wetlands in removing pharmaceuticals from untreated and treated urban wastewaters? A review. , 2014, The Science of the total environment.
[89] P. Piro,et al. The Influence of Hydrologic Parameters on the Hydraulic Efficiency of an Extensive Green Roof in Mediterranean Area , 2016 .
[90] Chirjiv K Anand,et al. Composting toilets as a sustainable alternative to urban sanitation--a review. , 2014, Waste management.
[91] Maes Joachim,et al. Mapping and Assessment of Ecosystems and their Services , 2013 .
[92] Nicolas Faivre,et al. Nature‐Based Solutions in the EU: Innovating with nature to address social, economic and environmental challenges , 2017, Environmental research.
[93] P. Bosch,et al. CITYkeys indicators for smart city projects and smart cities , 2017 .
[94] A. Singh,et al. Constructed Wetlands for Management of Urban Stormwater Runoff , 2012 .
[95] B. Burkhard,et al. Quantification and Mapping of Flood Regulating Ecosystem Services in Different Watersheds – Case Studies in Bulgaria and Arizona, USA , 2014 .
[96] Marko P. Hekkert,et al. Conceptualizing the Circular Economy: An Analysis of 114 Definitions , 2017 .
[97] N. Frantzeskaki,et al. The uptake of the ecosystem services concept in planning discourses of European and American cities , 2015 .
[98] I. Wagner,et al. From classical water-ecosystem theories to nature-based solutions - Contextualizing nature-based solutions for sustainable city. , 2019, The Science of the total environment.
[99] T. Gu,et al. Microbial fuel cell hybrid systems for wastewater treatment and bioenergy production: Synergistic effects, mechanisms and challenges , 2019, Renewable and Sustainable Energy Reviews.
[100] A. Bawiec. Efficiency of nitrogen and phosphorus compounds removal in hydroponic wastewater treatment plant , 2019, Environmental technology.
[101] R Fragoso,et al. Overview of the state of the art of constructed wetlands for decentralized wastewater management in Brazil. , 2017, Journal of environmental management.
[102] L. Bracken,et al. Introduction to special issue on connectivity in water and sediment dynamics , 2015 .
[103] L. Ridolfi,et al. Flood reduction as an ecosystem service of constructed wetlands for combined sewer overflow , 2018 .
[104] Soon Keat Tan,et al. Application of constructed wetlands for wastewater treatment in developing countries--a review of recent developments (2000-2013). , 2014, Journal of environmental management.
[105] Niki Frantzeskaki,et al. Seven lessons for planning nature-based solutions in cities , 2019, Environmental Science & Policy.
[106] J. Kamińska,et al. Assessing the impact of wastewater effluent diversion on water quality , 2017 .
[107] Jiquan Chen,et al. Nature-based solutions for resilient landscapes and cities. , 2018, Environmental research.
[108] Davide Geneletti,et al. An impact evaluation framework to support planning and evaluation of nature-based solutions projects , 2017 .
[109] Patrizia Piro,et al. On the use of surrogate-based modeling for the numerical analysis of Low Impact Development techniques , 2017 .
[110] Soon Keat Tan,et al. A review on removing pharmaceutical contaminants from wastewater by constructed wetlands: design, performance and mechanism. , 2014, The Science of the total environment.
[112] Johan Bouma,et al. The significance of soils and soil science towards realization of the United Nations sustainable development goals , 2016 .
[113] C. Conoscenti,et al. A comparison of statistical methods and multi-criteria decision making to map flood hazard susceptibility in Northern Iran. , 2019, The Science of the total environment.
[114] E. V. van Hullebusch,et al. Role of Design and Operational Factors in the Removal of Pharmaceuticals by Constructed Wetlands , 2019, Water.
[115] N. Frantzeskaki,et al. Nature-based solutions to climate change mitigation and adaptation in urban areas: perspectives on indicators, knowledge gaps, barriers, and opportunities for action , 2016 .