Ecosystem-Based Adaptation Practices as a Nature-Based Solution to Promote Water-Energy-Food Nexus Balance
Abstract
:1. Introduction
1.1. Study Background
1.2. Scenario Description
1.3. Water-Energy-Food Nexus in Land-Based Activities
2. Methodology
2.1. Proposed Theoretical Framework
2.2. Case Study: The Gambia
2.3. Research Design
3. Results and Discussions
3.1. Preferred EbA Practices in the Community Forests
3.1.1. EbA Practices Under the Forest, Tree, and Wood Development System Cluster
3.1.2. EbA Practices under the Climate-Smart Farming System Cluster
3.1.3. EbA Practices under the Nature-Based Businesses Cluster
3.1.4. EbA Practices within the Water Resources Management Cluster
3.2. Pathways towards WEF Nexus Development through Different EbA Practices
3.3. EbA Practice Contribution to Livelihood Development through the Sustainable Livelihood Framework Lens
3.4. Enablers and Barriers towards Strengthening the WEF Nexus through Different EbA Practices
4. Conclusions and Insights for Practitioners
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Agroecological Zone | Average Rainfall (mm) | Length of the Growing Season (Days) | Major Vegetation Types |
---|---|---|---|
Sahelian | <600 | <79 | Open savannah |
Sudano-Sahelian | 600–900 | 70–119 | Savannah |
Sudanian | 900–1100 | 120–139 | Woodland savannah |
Guinea | >1100 | 140–150 | Woodlands |
Region | No. of Community Forests | Total Community Forest Area (ha) | Population | |
---|---|---|---|---|
No. of Households | Total Population | |||
CRR | 23 | 3949.1 | 1292 | 12,163 |
LRR | 11 | 2419.3 | 887 | 8041 |
URR | 16 | 2235.0 | 655 | 8695 |
Total | 50 | 8603.3 | 2834 | 28,899 |
Broad EbA Cluster | Related EbA Practices | General Description of the Practices | Associated Ecosystem Goods, Ecosystem Services, and Livelihood Benefits |
---|---|---|---|
Forest and tree system development | Enrichment planting | Introduction of valuable species to an ecosystem without removing the valuable ones that are already present | Water conservation, wild fruits, fodder, enhanced energy source, soil stabilization, climatic amelioration |
Assisted natural regeneration—ANR | Human-led interventions to accelerate the natural regeneration of trees | Food, shade, habitat protection | |
Woodlot development | The development of a portion of land for wood tree growing | Income, fuelwood, timber, and non-timber products | |
Cashew plantation establishment | Establishment of cashew (Anacardium occidentale) plantations inside the farm or along farm boundary | Firebreak, windbreak, food, shade, income, fencing | |
Climate-smart farming system | Apiculture (beekeeping) | Process of rearing honeybees | Honey, wax, pollination, enhanced crop production |
Fish harvesting | Harvesting fish for domestic and commercial purposes | Food, income | |
Vegetable gardening | Establishing plots for fruit and vegetable growing | Food, income | |
Climate-smart farming practices | Diverse agricultural practices that are climate-resilient to increase food production | Food, income, soil stability, water conservation | |
Nature-based businesses | Rhun palm handicraft development | Planting Rhun palms to support handicraft activities | Income, food, fiber, wood |
Tree nursery development | Developing tree nurseries to propagate seedlings for planting | Seedlings, income | |
Wild fruit processing | Collecting, processing, and packaging of wild fruits for human consumption | Income, food | |
Ecotourism activities | Socially responsible travels such as nature travels, bird watching, and cultural visits | Income, conservation | |
Water resource development systems | Water point development | Development and rehabilitation of different water points to conserve and supply water | Water supply, food production, energy production |
Rice field restoration | Process of restoring the functionality of flooded pieces of farmlands used for rice growing | Food, water supply, income |
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Muthee, K.; Duguma, L.; Nzyoka, J.; Minang, P. Ecosystem-Based Adaptation Practices as a Nature-Based Solution to Promote Water-Energy-Food Nexus Balance. Sustainability 2021, 13, 1142. https://doi.org/10.3390/su13031142
Muthee K, Duguma L, Nzyoka J, Minang P. Ecosystem-Based Adaptation Practices as a Nature-Based Solution to Promote Water-Energy-Food Nexus Balance. Sustainability. 2021; 13(3):1142. https://doi.org/10.3390/su13031142
Chicago/Turabian StyleMuthee, Kennedy, Lalisa Duguma, Judith Nzyoka, and Peter Minang. 2021. "Ecosystem-Based Adaptation Practices as a Nature-Based Solution to Promote Water-Energy-Food Nexus Balance" Sustainability 13, no. 3: 1142. https://doi.org/10.3390/su13031142
APA StyleMuthee, K., Duguma, L., Nzyoka, J., & Minang, P. (2021). Ecosystem-Based Adaptation Practices as a Nature-Based Solution to Promote Water-Energy-Food Nexus Balance. Sustainability, 13(3), 1142. https://doi.org/10.3390/su13031142