The Adoption and Impact of Climate-Smart Water Management Technologies in Smallholder Farming Systems of Sub-Saharan Africa: A Systematic Literature Review
Abstract
:1. Introduction
2. Materials and Methods
2.1. Research Questions
2.2. Search Strategy
2.3. Selection and Exclusion Criteria
2.4. Data Extraction
2.5. Data Synthesis
3. Results and Discussion
3.1. Overview of Selected Studies
3.2. CSWM Technologies and Their Role in Sub-Saharan African Agriculture
3.3. Impacts of CSWM Technologies in Sub-Saharan Smallholder Farming Systems
3.3.1. Rainwater Harvesting
3.3.2. Micro-Irrigation
3.3.3. Greenhouse Technology
3.3.4. Wastewater Re-Use
4. Conclusions and Recommendations
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Patle, G.T.; Kumar, M.; Khanna, M. Climate-smart water technologies for sustainable agriculture: A review. J. Water Clim. Chang. 2020, 11, 1455–1466. [Google Scholar] [CrossRef]
- Altieri, M.A.; Nicholls, C.I. The adaptation and mitigation potential of traditional agriculture in a changing climate. Clim. Chang. 2017, 140, 33–45. [Google Scholar] [CrossRef]
- Goyal, M.K.; Rao, Y.S. Impact of climate change on water resources in India. J. Environ. Eng. 2018, 144, 1–10. [Google Scholar] [CrossRef]
- Sikka, A.K.; Islam, A.; Rao, K.V. Climate-smart land and water management for sustainable agriculture. Irrig. Drain. 2018, 67, 72–81. [Google Scholar] [CrossRef]
- Rosenzweig, C.; Hillel, D. Climate Change and the Global Harvest: Impacts of El Nino and Other Oscillations on Agroecosystems; Oxford University Press: New York, NY, USA, 2008. [Google Scholar]
- Makate, C.; Makate, M.; Mutenje, M.; Mango, N.; Siziba, S. Synergistic impacts of agricultural credit and extension on adoption of climate-smart agricultural technologies in Southern Africa. Environ. Dev. 2019, 32, 100458. [Google Scholar] [CrossRef]
- Lipper, L.; Thornton, P.; Campbell, B.M.; Baedeker, T.; Braimoh, A.; Bwalya, M.; Caron, P.; Cattaneo, A.; Garrity, D.; Henry, K.; et al. Climate-smart agriculture for food security. Nat. Clim. Chang. 2014, 4, 1068–1072. [Google Scholar] [CrossRef]
- Nkonya, E.; Koo, J.; Kato, E.; Johnson, T. Climate Risk Management through Sustainable Land and Water Management in Sub-Saharan Africa, In Climate Smart Agriculture, Natural Resource Management and Policy; Lipper, L., McCarthy, N., Zilberman, D., Asfaw, S., Branca, G., Eds.; Springer: Cham, Switzerland, 2018; Volume 52, pp. 445–476. [Google Scholar]
- Khatri-Chhetri, A.; Pant, A.; Aggarwal, P.K.; Vasireddy, V.V.; Yadav, A. Stakeholders’ prioritization of climate-smart agriculture interventions: Evaluation of a framework. Agric. Syst. 2019, 174, 23–31. [Google Scholar] [CrossRef]
- Ng’ombe, J.N.; Tembo, M.C.; Masasi, B. “Are they aware, and why?” Bayesian analysis of predictors of smallholder farmers’ awareness of climate change and its risks to agriculture. Agronomy 2020, 10, 376. [Google Scholar] [CrossRef]
- Dahlin, A.S.; Rusinamhodzi, L. Yield and labour relations of sustainable intensification 57 options for smallholder farmers in sub-Saharan Africa. A meta-analysis. Agron. Sustain. Dev. 2019, 39, 32. [Google Scholar] [CrossRef]
- Djufry, F.; Wulandari, S. Climate-smart agriculture implementation facing climate variability and uncertainty in the coffee farming system. In IOP Conference Series: Earth and Environmental Science, The 2nd International Conference on Sustainable Agriculture for Rural Development 2020, Purwokerto, Indonesia, 20 October 2020; IOP publishing: Bristol, UK, 2021; Volume 653, pp. 1–8. [Google Scholar]
- Lipper, L.; Zilberman, D. A short history of the evolution of the climate-smart agriculture approach and its links to climate change and sustainable agriculture debates. In Climate-Smart Agriculture: Building Resilience to Climate Change; Lipper, L., McCarthy, N., Zilberman, D., Asfaw, S., Branca, G., Eds.; Springer Nature, Natural Resource Management Policy; Springer: Cham, Switzerland, 2018; Volume 52, pp. 13–30. [Google Scholar]
- Nandula, V.K.; Riechers, D.E.; Ferhatoglu, Y.; Barrett, M.; Duke, S.O.; Dayan, F.E.; Goldberg-Cavalleri, A.; Tétard-Jones, C.; Wortley, D.J.; Onkokesung, N.; et al. Herbicide metabolism: Crop selectivity, bioactivation, weed resistance, and regulation. Weed Sci. 2019, 67, 149–175. [Google Scholar] [CrossRef]
- Sova, C.A.; Grosjean, G.; Baedeker, T.; Nguyen, T.N.; Wallner, M.; Jarvis, A.; Nowak, A.; Corner-Dolloff, C.; Girvetz, C.; Laderach, P.; et al. Bringing the Concept of Climate-Smart Agriculture to Life: Insights from CSA Country Profiles across Africa, Asia, and Latin America; World Bank, and the International Centre for Tropical Agriculture: Washington, DC, USA, 2018. [Google Scholar]
- Sun, L.; Wang, S.; Zhang, Y.; Li, J.; Wang, X.; Wang, R.; Lyu, W.; Chen, N.; Wang, Q. Conservation agriculture based on crop rotation and tillage in the semi-arid Loess Plateau, China: Effects on crop yield and soil water use. Agric. Ecosyst. Environ. 2018, 251, 67–77. [Google Scholar] [CrossRef]
- Corner-Dolloff, C.; Nowak, A.; Lizarazo, M. Climate-Smart Agriculture Investment Prioritization Framework; International Center for Tropical Agriculture (CIAT): Cali, Colombia, 2015. [Google Scholar]
- Teklewold, H.; Mekonnen, A.; Kohlin, G.; Di Falco, S. Does adoption of multiple climate-smart practices improve farmers’ climate resilience? Empirical evidence from the Nile basin of Ethiopia. Clim. Chang. Econ. 2017, 8, 1750001. [Google Scholar] [CrossRef]
- Senyolo, M.P.; Long, T.B.; Blok, V.; Omta, O. How the characteristics of innovations impact their adoption: An exploration of climate-smart agricultural innovations in South Africa. J. Clean. Prod. 2018, 172, 3825–3840. [Google Scholar] [CrossRef]
- Grainger-Jones, E. Climate-smart smallholder agriculture: What is different? In IFAD Occasional Paper, n 3; IFAD Enabling Poor Rural People to Overcome Poverty: Rome, Italy, 2011. [Google Scholar]
- Thamaga-Chitja, J.M.; Morojele, P. The context of smallholder farming in South Africa: Towards a livelihood asset building framework. J. Hum. Ecol. 2014, 45, 147–155. [Google Scholar] [CrossRef]
- Donnenfeld, Z.; Hedden, S.; Crookes, C. A Delicate Balance: Water Scarcity in South Africa, Institute for Security Studies. 2018. Available online: https://www.africaportal.org/publications/delicate-balance-water-scarcity-south-africa/ (accessed on 15 July 2022).
- Kitchenham, B.; Charters, S. Guidelines for Performing Systematic Literature Reviews in Software Engineering; Version 2.3; University of Keele: Keele, UK, 2007. [Google Scholar]
- Kitchenham, B.; Brereton, O.P.; Budgen, D.; Turner, M.; Bailey, J.; Linkman, S. Systematic literature reviews in software engineering–a systematic literature review. Inf. Softw. Technol. 2009, 51, 7–15. [Google Scholar] [CrossRef]
- Abegunde, V.O.; Sibanda, M.; Obi, A. The dynamics of climate change adaptation in Sub-Saharan Africa: A review of climate-smart agriculture among small-scale farmers. Climate 2019, 7, 132. [Google Scholar] [CrossRef]
- Anantha, K.H.; Garg, K.K.; Barron, J.; Dixit, S.; Venkataradha, A.; Singh, R.; Whitbread, A.M. Impact of best management practices on sustainable crop production and climate resilience in smallholder farming systems of South Asia. Agric. Syst. 2021, 194, 103276. [Google Scholar] [CrossRef]
- Andrieu, N.; Sogoba, B.; Zougmore, R.; Howland, F.; Samake, O.; Bonilla-Findji, O.; Lizarazo, M.; Nowak, A.; Dembele, C.; Corner-Dolloff, C. Prioritizing investments for climate-smart agriculture: Lessons learned from Mali. Agric. Syst. 2017, 154, 13–24. [Google Scholar] [CrossRef]
- Aznar-Sánchez, J.A.; Velasco-Muñoz, J.F.; López-Felices, B.; Román-Sánchez, I.M. An analysis of global research trends on greenhouse technology: Towards a sustainable agriculture. Int. J. Environ. Res. Public Health 2020, 17, 664. [Google Scholar] [CrossRef]
- Bafdal, N.; Dwiratna, S. Water harvesting system as an alternative appropriate technology to supply irrigation on red oval cherry tomato production. Int. J. Adv. Science. Eng. Inf. Technol. 2018, 8, 561–566. [Google Scholar] [CrossRef]
- Barros, V.R. (Ed.) Impacts, Adaptation and Vulnerability: Part B: Regional Aspects; Working Group II Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change; Cambridge University Press: New York, NY, USA, 2014. [Google Scholar]
- Biazin, B.; Sterk, G.; Temesgen, M.; Abdulkedir, A.; Stroosnijder, L. Rainwater harvesting and management in rainfed agricultural systems in sub-Saharan Africa–a review. Phys. Chem. Earth 2012, Parts A/B/C 47, 139–151. [Google Scholar] [CrossRef]
- Chartzoulakis, K.; Bertaki, M. Sustainable Water Management in Agriculture under Climate Change. Agric. Agric. Sci. Procedia 2015, 4, 88–98. [Google Scholar] [CrossRef]
- Connor, N.O.; Mehta, K. Modes of greenhouse water savings. Procedia Eng. 2016, 159, 259–266. [Google Scholar]
- Cornelissen, P. Wastewater Re-Use in Agriculture: Modelling Contaminant Transport and Impact on Soil Structure. Doctoral Dissertation, Wageningen University, Wageningen, The Netherlands, 2022. [Google Scholar]
- Food and Agriculture Organization of the United Nations (FAO). The State of Food and Agriculture 2020: Overcoming Water Challenges in Agriculture; FAO: Rome, Italy, 2020. [Google Scholar]
- Food and Agriculture Organization of the United Nations (FAO). Climate-Smart Agriculture Sourcebook; FAO: Rome, Italy, 2013. [Google Scholar]
- Giller, K.E. Can we define the term ‘farming systems? A question of scale. Outlook Agric. 2013, 42, 149–153. [Google Scholar] [CrossRef]
- Grant, F.; Sheline, C.; Sokol, J.; Amrose, S.; Brownell, E.; Nangia, C.; Winter, A.G. Creating a Solar-Powered Drip Irrigation Optimal Performance model (SDrOP) to lower the cost of drip irrigation systems for smallholder farmers. Appl. Energy 2022, 323, 119563. [Google Scholar] [CrossRef]
- Knox, J.; Hess, T.; Daccache, A.; Wheeler, T. Climate change impacts on crop productivity in Africa and South Asia. Environ. Res. Lett. 2012, 7, 034032. [Google Scholar] [CrossRef]
- Kuivanen, K.S.; Alvarez, S.; Michalscheck, M.; Adjei-Nsiah, S.; Descheemaeker, K.; Mellon-Bedi, S.; Groot, J.C. Characterising the diversity of smallholder farming systems and their constraints and opportunities for innovation: A case study from the Northern Region, Ghana. NJAS-Wagening. J. Life Sci. 2016, 78, 153–166. [Google Scholar] [CrossRef]
- Murray, U.; Gebremedhin, Z.; Brychkova, G.; Spillane, C. Smallholder farmers and climate smart agriculture: Technology and labor-productivity constraints amongst women smallholders in Malawi. Gend. Technol. Dev. 2016, 20, 117–148. [Google Scholar] [CrossRef]
- Mwongera, C.; Shikuku, K.M.; Twyman, J.; Läderach, P.; Ampaire, E.; Van Asten, P.; Twomlow, S.; Winowiecki, L.A. Climate smart agriculture rapid appraisal (CSA-RA): A tool for prioritizing context-specific climate smart agriculture technologies. Agric. Syst. 2017, 151, 192–203. [Google Scholar] [CrossRef]
- Nyong, P.A.; Martin, N.T. Enhancing agricultural sustainability and productivity under changing climate conditions through improved agroforestry practices in smallholder farming systems in sub-Saharan Africa. Afr. J. Agric. Res. 2019, 14, 379–388. [Google Scholar] [CrossRef]
- Rosa-Schleich, J.; Loos, J.; Mußhoff, O.; Tscharntke, T. Ecological-economic trade-offs of diversified farming systems—A review. Ecol. Econ. 2019, 160, 251–263. [Google Scholar] [CrossRef]
- Shamshiri, R.R.; Jones, J.W.; Thorp, K.R.; Ahmad, D.; Man, H.C.; Taheri, S. Review of optimum temperature, humidity, and vapour pressure deficit for microclimate evaluation and control in greenhouse cultivation of tomato: A review. Int. Agrophysics 2018, 32, 287–302. [Google Scholar] [CrossRef]
- Shekarchi, N.; Shahnia, F. A comprehensive review of solar-driven desalination technologies for off-grid greenhouses. Int. J. Energy Res. 2019, 43, 1357–1386. [Google Scholar] [CrossRef]
- Totin, E.; Segnon, A.C.; Schut, M.; Affognon, H.; Zougmoré, R.B.; Rosenstock, T.; Thornton, P.K. Institutional perspectives of climate-smart agriculture: A systematic literature review. Sustainability 2018, 10, 1990. [Google Scholar] [CrossRef]
- Uphoff, N. Improving International Irrigation Management with Farmer Participation: Getting the Process Right, 1st ed.; Routledge: New York, NY, USA, 2019. [Google Scholar]
- Zhuwakinyu, M. Water 2017: A Review of South Africa’s Water Sector; Creamer Media: Johannesburg, South Africa, 2017. [Google Scholar]
- Torres-Carrión, P.V.; González-González, C.S.; Aciar, S.; Rodríguez-Morales, G. Methodology for systematic literature review applied to engineering and education. In Proceedings of the 2018 IEEE Global Engineering Education Conference (EDUCON), Santa Cruz de Tenerife, Canary Islands, Spain, 17–20 April 2018; pp. 1364–1373. [Google Scholar]
- Naveenkumar, M.R.; Sathyapriya, E.; Dhivya, V. An empirical study on drip irrigation. In Proceedings of the National Conference on Micro Irrigation, National Congress on New Challenges and Advances in Sustainable Micro Irrigation, Water Technology Centre, TNAU, Coimbatore, India, 1–3 March 2017; p. 308. [Google Scholar]
- Ghoulem, M.; El Moueddeb, K.; Nehdi, E.; Boukhanouf, R.; Calautit, J.K. Greenhouse design and cooling technologies for sustainable food cultivation in hot climates: Review of current practice and future status. Biosyst. Eng. 2019, 183, 121–150. [Google Scholar] [CrossRef]
- Wiggins, S. Can the smallholder model deliver poverty reduction and food security for a rapidly growing population in Africa? In Expert Meeting on How to Feed the World in 2050, Working Paper No. 08; Future Agricultures Consortium Secretariat, Institute of Development Studies: Brighton, UK, 2009. [Google Scholar]
- Pimentel, D.; Whitecraft, M.; Scott, Z.R.; Zhao, L.; Satkiewicz, P.; Scott, T.J.; Phillips, J.; Qadir, M.; Sharma, B.R.; Bruggeman, A.; et al. Non-conventional water resources and opportunities for water augmentation to achieve food security in water scarce countries. Agric. Water Manag. 2007, 87, 2–22. [Google Scholar]
- Velasco-Muñoz, J.F.; Aznar-Sánchez, J.A.; Batlles-delaFuente, A.; Fidelibus, M.D. Rainwater harvesting for agricultural irrigation: An analysis of global research. Water 2019, 11, 1320. [Google Scholar] [CrossRef]
- Bruins, H.J.; Evenari, M.; Nessler, U. Rainwater-harvesting agriculture for food production in arid zones: The challenge of the African famine. Appl. Geogr. 1986, 6, 13–32. [Google Scholar] [CrossRef]
- Pachauri, R.K.; Meyer, L.A. (Eds.) Climate change 2014: Synthesis report. In Contribution of Working Groups I, II and III to the fifth assessment report of the Intergovernmental Panel on Climate Change (IPCC); IPCC: Geneva, Switzerland, 2014. [Google Scholar]
- Grafton, R.Q.; Williams, J.; Perry, C.J.; Molle, F.; Ringler, C.; Steduto, P.; Udall, B.; Wheeler, S.A.; Wang, Y.; Garrick, D.; et al. The paradox of irrigation efficiency. Science 2018, 361, 748–750. [Google Scholar] [CrossRef]
- Fernández, J.A.; Orsini, F.; Baeza, E.; Oztekin, G.B.; Muñoz, P.; Contreras, J.; Montero, J.I. Current trends in protected cultivation in Mediterranean climates. Eur. J. Hortic. Sci. 2018, 83, 294–305. [Google Scholar] [CrossRef]
- Al-Kodmany, K. The vertical farm: A review of developments and implications for the vertical city. Buildings 2018, 8, 24. [Google Scholar] [CrossRef]
- Magwaza, S.T.; Magwaza, L.S.; Odindo, A.O.; Mditshwa, A. Hydroponic technology as decentralised system for domestic wastewater treatment and vegetable production in urban agriculture: A review. Sci. Total Environ. 2020, 698, 134–154. [Google Scholar] [CrossRef] [PubMed]
Source | Retrieved | Included | Selected | Method |
---|---|---|---|---|
Google Scholar | 648 | 312 | 22 | Automatic |
ScienceDirect | 356 | 57 | 12 | Automatic |
Wiley Online | 90 | 20 | 1 | Automatic |
MDPI | 281 | 33 | 3 | Automatic |
Springer link | 1 | 1 | 1 | Automatic |
Total | 1376 | 423 | 39 |
Exclusion Criteria No. | Criteria |
---|---|
EC1 | Paper is published before 2012. |
EC2 | The paper is not in English. |
EC3 | There is no full text of the article online. |
EC4 | Paper has nothing to do with agriculture. |
EC5 | There is no discussion of water management in the abstract. |
EC6 | Duplicate content. |
Authors | Title | Year |
---|---|---|
Abegunde et al. [25] | The dynamics of climate change adaptation in Sub-Saharan Africa: A review of climate-smart agriculture among small-scale farmers | 2019 |
Altieri and Nicholls [2] | The adaptation and mitigation potential of traditional agriculture in a changing climate | 2017 |
Anantha et al. [26] | Impact of best management practices on sustainable crop production and climate resilience in smallholder farming systems of South Asia | 2021 |
Andrieu et al. [27] | Prioritizing investments for climate-smart agriculture: Lessons learned from Mali | 2017 |
Aznar-Sánchez et al. [28] | An analysis of global research trends on greenhouse technology: Towards a sustainable agriculture | 2020 |
Bafdal and Dwiratna [29] | Water harvesting system as an alternative appropriate technology to supply irrigation on red oval cherry tomato production | 2018 |
Barros [30] | Impacts, Adaptation and Vulnerability: Part B: Regional Aspects; Working Group II Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change | 2014 |
Biazin et al. [31] | Rainwater harvesting and management in rainfed agricultural systems in sub-Saharan Africa–a review | 2012 |
Chartzoulakis andBertaki [32] | Sustainable Water Management in Agriculture under Climate Change | 2015 |
Connor and Mehta [33] | Modes of greenhouse water savings | 2016 |
Cornelissen [34] | Wastewater re-use in agriculture: modelling contaminant transport and impact on soil structure’ | 2022 |
Corner-Dolloff et al. [17] | Climate-smart agriculture investment prioritization framework | 2015 |
Donnenfeld et al. [22] | A delicate balance: Water scarcity in South Africa | 2018 |
FAO [35] | The State of Food and Agriculture 2020: Overcoming water challenges in Agriculture | 2020 |
FAO [36] | Climate-smart agriculture sourcebook | 2013 |
Ghoulem et al. [15] | Greenhouse design and cooling technologies for sustainable food cultivation in hot climates: Review of current practice and future status | 2019 |
Giller [37] | Can we define the term ‘farming systems? A question of scale | 2013 |
Goyal and Rao [3] | Impact of climate change on water resources in India | 2018 |
Grant et al. [38] | Creating a Solar-Powered Drip Irrigation Optimal Performance model (SDrOP) to lower the cost of drip irrigation systems for smallholder farmers | 2022 |
Knox et al. [39] | Climate change impacts on crop productivity in Africa and South Asia | 2012 |
Kuivanen et al. [40] | Characterizing the diversity of smallholder farming systems and their constraints and opportunities for innovation: A case study from the Northern Region, Ghana | 2016 |
Lipper and Zilberman [13] | A short history of the evolution of the climate-smart agriculture approach and its links to climate change and sustainable agriculture debates | 2018 |
Lipper et al. [7] | Climate-smart agriculture for food security | 2014 |
Makate et al. [6] | Synergistic impacts of agricultural credit and extension on adoption of climate-smart agricultural technologies in Southern Africa | 2019 |
Murray et al. [41] | Smallholder farmers and climate smart agriculture: Technology and labor-productivity constraints amongst women smallholders in Malawi | 2016 |
Mwongera et al. [42] | Climate smart agriculture rapid appraisal (CSA-RA): A tool for prioritizing context-specific climate smart agriculture technologies | 2017 |
Nkonya et al. [8] | Climate Risk Management through Sustainable Land and Water Management in Sub-Saharan Africa | 2018 |
Nyong and Martin [43] | Enhancing agricultural sustainability and productivity under changing climate conditions through improved agroforestry practices in smallholder farming systems in sub-Saharan Africa | 2019 |
Patle et al. [1] | Climate-smart water technologies for sustainable agriculture: A review | 2020 |
Rosa-Schleich et al. [44] | Ecological-economic trade-offs of diversified farming systems–a review | 2019 |
Senyolo et al. [19] | How the characteristics of innovations impact their adoption: An exploration of climate-smart agricultural innovations in South Africa | 2018 |
Shamshiri et al. [45] | Review of optimum temperature, humidity, and vapour pressure deficit for microclimate evaluation and control in greenhouse cultivation of tomato: a review | 2018 |
Shekarchi and Shahnia [46] | A comprehensive review of solar-driven desalination technologies for off-grid greenhouses | 2019 |
Sikka et al. [4] | Climate-smart land and water management for sustainable agriculture | 2018 |
Teklewold et al. [18] | Does adoption of multiple climate-smart practices improve farmers’ climate resilience? empirical evidence from the Nile basin of Ethiopia | 2017 |
Thamaga-Chitja and Morojele [21] | The context of smallholder farming in South Africa: Towards a livelihood asset building framework | 2014 |
Totin et al. [47] | Institutional perspectives of climate-smart agriculture: A systematic literature review | 2018 |
Uphoff [48] | Improving international irrigation management with farmer participation: Getting the process right | 2019 |
Zhuwakinyu [49] | A Review of South Africa’s Water Sector, Creamer Media | 2017 |
Extracted Element | Content |
---|---|
General information | |
ID | Unique identification of study |
Authors | |
Title | Full title of paper |
Year | Year of publication |
Source Title | Channel of publication |
Document Type | Journal and Article |
Repository | Google Scholar |
ScienceDirect | |
Wiley Online | |
MDPI | |
Considered water management domain | Climate-smart water management technologies |
Country scope | Agricultural regions |
Considered agricultural domain | Climate-smart agriculture and smallholder farming systems |
Identified challenges Evaluation | Yes/No |
No. | Publication Channel |
---|---|
1 | African Journal of Agricultural Research |
3 | Agricultural Systems |
1 | Agriculture and Agricultural Science Procedia |
1 | Applied Energy |
1 | Biosystems Engineering |
1 | Climate |
1 | Climate Change Economics |
1 | Climatic Change |
1 | Ecological Economics |
1 | Engineering and Information Technology |
1 | Environmental Development |
2 | Food and Agriculture Organization of the United Nations (FAO) |
1 | Gender, Technology and Development |
1 | Institute for Security Studies |
1 | International Agrophysics |
1 | International Center for Tropical Agriculture (CIAT) |
1 | International Journal of Energy Research |
1 | International Journal of Environmental Research and Public Health |
1 | Irrigation and Drainage |
1 | Journal of Cleaner Production |
1 | Journal of Environmental Engineering |
1 | Journal of Human Ecology |
1 | Journal of Water and Climate Change |
1 | Nature Climate Change |
1 | Outlook on Agriculture |
1 | Physics and Chemistry of the Earth |
1 | Procedia Engineering |
1 | Routledge |
1 | Science |
2 | Springer Nature |
1 | Sustainability |
Technologies | Studies |
---|---|
Rainwater harvesting | Patle et al. [1]; Altieri and Nicholls [2]; Sikka et al. [4]; Chartzoulakis and Bertaki [32]; Senyolo et al. [19]; Donnenfeld et al. [22]; Abegunde et al. [25]; Anantha et al. [26]; Aznar-Sánchez et al. [28]; Bafdal and Dwiratna [29]; Biazin et al. [31] |
Micro-irrigation | Patle et al. [1]; Sikka et al. [4]; Lipper and Zilberman [13]; Senyolo et al. [19]; Abegunde et al. [25]; Anantha et al. [26]; Andrieu et al. [27]; Aznar-Sánchez et al. [28]; Bafdal and Dwiratna [29]; Biazin et al. [31]; Chartzoulakis and Bertaki [32]; Connor and Mehta [33]; Grant et al. [38]; Murray et al. [41]; Uphoff [48] |
Greenhouse technology | Patle et al. [1]; Aznar-Sánchez et al. [28]; Bafdal and Dwiratna [29]; Connor and Mehta [33]; Ghoulem et al. [52]; Shamshiri et al. [45]; Shekarchi and Shahnia [46] |
Wastewater re-use | Patle et al. [1]; Donnenfeld et al. [22]; Abegunde et al. [25]; Aznar-Sánchez et al. [28]; Chartzoulakis and Bertaki [32]; Cornelissen [34] |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Zondo, W.N.S.; Ndoro, J.T.; Mlambo, V. The Adoption and Impact of Climate-Smart Water Management Technologies in Smallholder Farming Systems of Sub-Saharan Africa: A Systematic Literature Review. Water 2024, 16, 2787. https://doi.org/10.3390/w16192787
Zondo WNS, Ndoro JT, Mlambo V. The Adoption and Impact of Climate-Smart Water Management Technologies in Smallholder Farming Systems of Sub-Saharan Africa: A Systematic Literature Review. Water. 2024; 16(19):2787. https://doi.org/10.3390/w16192787
Chicago/Turabian StyleZondo, Welcome Ntokozo Sifisosami, Jorine Tafadzwa Ndoro, and Victor Mlambo. 2024. "The Adoption and Impact of Climate-Smart Water Management Technologies in Smallholder Farming Systems of Sub-Saharan Africa: A Systematic Literature Review" Water 16, no. 19: 2787. https://doi.org/10.3390/w16192787
APA StyleZondo, W. N. S., Ndoro, J. T., & Mlambo, V. (2024). The Adoption and Impact of Climate-Smart Water Management Technologies in Smallholder Farming Systems of Sub-Saharan Africa: A Systematic Literature Review. Water, 16(19), 2787. https://doi.org/10.3390/w16192787