Managing Multiple Catchment Demands for Sustainable Water Use and Ecosystem Service Provision
Abstract
:1. Introduction
2. Ecosystem Service Trade-Offs and Co-Benefits from a Catchment Perspective
2.1. The Ecosystem Service Concept and Catchment Management
2.2. Trade-Offs between Ecosystem Services
2.3. Win-Win Scenarios and Managing Catchments for Multiple Ecosystem Service Provision
2.4. Multiple Stakeholder Preferences within a Trade-Off
3. Using the Ecosystem Service Concept for Catchment Management
3.1. Ecosystem Service-Based Approaches and Integrated Catchment Management (ICM)
3.2. Ecosystem Service Valuation Methods
3.3. Payment for Ecosystem Services (PES)
3.4. Ecosystem Service Assessment, Modelling and Mapping
Challenges and Limitations of Ecosystem Service Assessments
3.5. Using Scenario Analysis
3.6. Participatory Approaches
4. Recommendations for Future Research
4.1. Short-Term Research Priorities (0–5 Years)
4.1.1. Transdisciplinary Research and Stakeholder Engagement
4.1.2. Ecosystem Service Assessment and Decision-Making Frameworks
4.2. Long-Term Research Priorities (>5–10 Years)
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Driver | Service A | Service B | Scenario | Spatial Scale | Reference |
---|---|---|---|---|---|
Fertiliser use | crop production (P) | water quality (R) | trade-off | downstream | [33] |
Forest harvesting | timber production (P) | runoff, water quality (R) | trade-off | downstream | [34] |
Afforestation | carbon sequestration (R) | water quantity (P) | trade-off | downstream | [35] |
Crop irrigation | crop production (P) | soil salinisation (R) | trade-off | local | [36] |
Diffuse pollution buffer areas | water quality (R) | soil, air & groundwater quality (R) | trade-off | local, downstream & wider environment | [37] |
Constructed wetland | water quality (R) | biodiversity (R) | win-win | local & downstream | [38] |
Wetland restoration | water quality (R) | fisheries (P) | win-win | downstream | [24] |
Habitat protection | pollination (R) | crop production (P) | win-win | local | [39] |
Lake restoration | water quality (R) | human health (R) | win-win | downstream | [40] |
Farmland forest | pest control (R) | coffee production (P) | win-win | local | [41] |
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Stosch, K.C.; Quilliam, R.S.; Bunnefeld, N.; Oliver, D.M. Managing Multiple Catchment Demands for Sustainable Water Use and Ecosystem Service Provision. Water 2017, 9, 677. https://doi.org/10.3390/w9090677
Stosch KC, Quilliam RS, Bunnefeld N, Oliver DM. Managing Multiple Catchment Demands for Sustainable Water Use and Ecosystem Service Provision. Water. 2017; 9(9):677. https://doi.org/10.3390/w9090677
Chicago/Turabian StyleStosch, Kathleen C., Richard S. Quilliam, Nils Bunnefeld, and David M. Oliver. 2017. "Managing Multiple Catchment Demands for Sustainable Water Use and Ecosystem Service Provision" Water 9, no. 9: 677. https://doi.org/10.3390/w9090677
APA StyleStosch, K. C., Quilliam, R. S., Bunnefeld, N., & Oliver, D. M. (2017). Managing Multiple Catchment Demands for Sustainable Water Use and Ecosystem Service Provision. Water, 9(9), 677. https://doi.org/10.3390/w9090677