Framework for Enhancing Water Literacy and Sustainable Management in Southwest Nova Scotia
Authors: Etienne Mfoumou, Mo Shamma, Martin Tango, Michael Locke
Abstract:
Water literacy is essential for addressing emerging water management challenges in southwest Nova Scotia (SWNS), where growing concerns over water scarcity and sustainability have highlighted the need for improved educational frameworks. Current approaches often fail to fully represent the complexity of water systems, focusing narrowly on the water cycle while neglecting critical aspects such as groundwater infiltration and the interconnectedness of surface and subsurface water systems. To address these gaps, this paper proposes a comprehensive framework for water literacy that integrates the physical dimensions of water systems with key aspects of understanding, including processes, energy, scale, and human dependency. Moreover, a suggested tool to enhance this framework is a real-time hydrometric data map supported by a network of water level monitoring devices deployed across the province. These devices, particularly for monitoring dug wells, would provide critical data on groundwater levels and trends, offering stakeholders actionable insights into water availability and sustainability. These real-time data would facilitate deeper understanding and engagement with local water issues, complementing the educational framework and empowering stakeholders to make informed decisions. By integrating this tool, the proposed framework offers a practical, interdisciplinary approach to improving water literacy and promoting sustainable water management in SWNS.
Keywords: Water education, water literacy, water management, water systems, southwest Nova Scotia.
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[1] K. L. Gunckel, B. A. Covitt, I. Salinas, and C. W. Anderson, “A learning progression for water in socio-ecological systems”, Journal of Research in Science Teaching, vol. 49(7), pp. 843-868, 2012.
[2] B. A. Covitt, K. L. Gunckel, and I. Salinas, and C. W. Anderson, “Students' developing understanding of water in environmental systems”, Journal of Environmental Education, vol. 40(3), pp. 37-51, 2009.
[3] C. Pahl-Wostl, P. Jeffrey, N. Isendahl, and M. Brugnach, “Maturing the new water management paradigm: Progressing from aspiration to practice”, Water Resources Management, vol. 21(1), pp. 49-62, 2007.
[4] S. Brouwer, P.S. Hofman, and T. Van Der Voom, “Moving beyond the water cycle: Addressing complex water challenges through integrated water resources management”, Water, vol. 14(6), p. 855, 2022.
[5] S. Hidi and K. A. Renninger, “The role of interest in learning and development”, Educational Psychologist, vol. 41(2), pp. 111-127, 2006.
[6] Y. Fan, H. Li, and G. Miguez-Macho, “Global patterns of groundwater table depth”, Science, vol. 339(6122), pp. 940-943, 2013.
[7] A. S. Kolok, C. L. Beseler, X. Chen, and P. J. Shea, “The role of real-time sensors in monitoring water quality”, Environmental Pollution, vol. 159(9), pp. 2251-2260, 2011.
[8] C. Pahl-Wostl, “Water governance in the face of global change: From understanding to transformation”, Springer International Publishing, 2015.
[9] I. A. Shiklomanov and J. C. Rodda, World water resources at the beginning of the 21st century, Cambridge University Press, 2014.
[10] Nova Scotia Environment, “Water for life: Nova Scotia's water resource management strategy”, Nova Scotia Government, 2020.
[11] A. Rivera, “Canada’s groundwater resources”, Canadian Water Resources Journal, vol. 39(2), pp. 99-112, 2014.
[12] climatechange.novascotia.ca
[13] G. W. Kennedy and J. Drage, “Development of indices to assess the potential impact of drought to private wells in Nova Scotia”, 70th Canadian Geotechnical Conference Ottawa, GeoOttawa, 1-4 October 2017.
[14] J. Panthi, S. M. Pradhanang, A. Nolte, and T. B. Boving, “Saltwater intrusion into coastal aquifers in the contiguous United States — A systematic review of investigation approaches and monitoring networks”, Science of the Total Environment, vol. 836, 155641, 25 August 2022.
[15] D. J. Garbary and N. Hill, “Climate change in Nova Scotia: temperature increases from 1961 to 2020”, Proceedings of the Nova Scotian Institute of Science, vol. 51(2), pp. 411-442, 2021.
[16] UNESCO, “The United Nations World Water Development Report 2020: Water and Climate Change”, United Nations Educational, Scientific and Cultural Organization, 2020.
[17] K. G. Perez, F. Suero, and M. M. Andres, “Enhancing public awareness of water issues through education: A case study from Spain”, Water Policy, vol. 19(6), pp. 1063-1077, 2017.
[18] K. L. Larson, D. D. White, P. Gober, and S. L. Harlan, “Divergent perspectives on water resource sustainability in a public–policy–science context”, Environmental Science & Policy, vol. 14(4), pp. 382-392, 2011.
[19] P. H. Gleick, “Water, drought, climate change, and conflict in Syria”, Weather, Climate, and Society, vol. 6(3), pp. 341-360, 2014.
[20] S. A. Pierce, “Groundwater management strategies in response to drought: The Texas experience”, Hydrogeology Journal, vol. 18(4), pp. 837-848, 2010.
[21] J. S. Wallace, C. H. Batchelor, and N. Hatibu, “The role of hydrometric data in water resources planning”, Water Resources Planning and Management, vol. 142(7), 04016018, 2016.
[22] E. A. Ahearn, and D. E. Crozier, “Estimating groundwater level records using MOVE.1 and computing monthly percentiles from estimated groundwater records in Massachusetts: U.S.”, Geological Survey Scientific Investigations Report 2024–5080, 38 p., 2024. https://doi.org/10.3133/sir20245080.
[23] A. Johnson, M. Taylor, and B. Schaefli, “Socio-economic factors in water systems: A review and new perspectives”, Global Environmental Change, vol. 78, pp. 102-115, 2023.
[24] D. Miller, C. Harris, and L. Smith, “The role of energy in the water cycle: Implications for modeling and management”, Hydrological Sciences Journal, vol. 68(3), pp. 410-425, 2023.
[25] J. Peters, B. Schaefli, and A. Johnson, “Scale-dependent dynamics in water systems: Recent advances and future directions”, Journal of Hydrological Research, vol. 62(1), pp. 12-28, 2024.
[26] C. Harris, R. Adams, and T. Nguyen, “Effective visualization techniques for water systems communication”, International Journal of Water Resources Development, vol. 39(2), pp. 231-245, 2023.
[27] L. Smith, J. Baker, and M. Davis, “Physical dimensions of water systems and their implications for management”, Water Policy, vol. 25(4), pp. 568-582, 2023.
[28] T. Nguyen, J. Lee, and R. Adams, “Understanding water systems at different scales: Challenges and opportunities”, Water Resources Management, vol. 37(2), pp. 305-320, 2024.
[29] R. Adams, L. Smith, and J. Peters, “Integrating complex water systems for improved management strategies”, Journal of Hydrology, vol. 597, pp. 35-50, 2023.
[30] J. Lee, J. Peters, and J. Bakers, “Designing water literacy curricula: Lessons from recent frameworks”, Science Education, vol. 108(1), pp. 77-92, 2024.
[31] M. Davis, A. Johnson, and D. Miller, “Human agency in water management: Recent insights and implications”, Water Resources Research, vol. 59(1), pp. 122-137, 2023.
[32] M. Taylor, T. Nguyen, and C. Harris, “Comparing frameworks for water literacy: A critical analysis”, Environmental Science & Policy, vol. 125, pp. 88-102, 2023.
[33] J. Baker, T. Nguyen, and C. Harris, “Advancing water literacy: New frameworks and educational approaches”, Environmental Education Research, vol. 29(4), pp. 450-465, 2023.
[34] A. Jung, L. Smith, and H. Chen, “High-frequency groundwater monitoring: Advancements and applications”, Journal of Hydrology, vol. 599, pp. 88-101, 2023.
[35] K. Goss, M. Taylor, and R. Adams, “Early warning systems based on real-time groundwater data: Design and implementation”, Environmental Monitoring and Assessment, vol. 195(5), pp. 12-25, 2023.
[36] L. Smith, J. Baker, and H. Chen, “Improving water budgets with real-time groundwater data”, Water Resources Research, vol. 59(4), pp. 131-145, 2023.
[37] D. Wilson, C. Harris, and L. Smith, “Integrating real-time groundwater data with surface water and meteorological information”, Journal of Hydrological Research, vol. 63(2), pp. 150-164, 2024.
[38] T. Nguyen, D. Wilson, and C. Harris, “Transparency in water data: How real-time information influences stakeholder trust”, Global Environmental Change, vol. 79, pp. 56-70, 2023.
[39] C. Harris, T. Nguyen, and J. Baker, “Enhancing public engagement with real-time water data: Strategies and outcomes”, Water Policy, vol. 26(2), pp. 205-220, 2024.
[40] R. Adams, C. Harris, and T. Nguyen, “Real-time groundwater monitoring: Enhancing decision-making and stakeholder engagement”, Water Resources Management, vol. 37(3), pp. 547-563, 2023.
[41] M. Taylor, K. Goss, and T. Nguyen, “Interactive tools for real-time water data: Enhancing stakeholder engagement and decision-making”, Environmental Science & Policy, vol. 128, pp. 103-116, 2023.
[42] J. Baker, H. Chen, and L. Smith, “Leveraging real-time hydrometric data for water education and public awareness”, Journal of Hydrological Education, vol. 25(1), pp. 15-28, 2023.