A Community-Oriented and Climate-Adaptive WASH Framework for Disaster Risk Mitigation and Recovery in Rural India

Authors

  • Rangeet Mitra Fellow Programme in Management (FPM), Xavier Institute of Social Service (XISS), Ranchi, India
  • Tapan Saha Independent Researcher, WASH Sector, India
  • Kaushik Ghosh Independent Researcher, India https://orcid.org/0000-0002-4839-8447

DOI:

https://doi.org/10.54536/ijsrd.v3i1.7812

Keywords:

Climate Resilience, Community-Led Governance, Disaster Recovery, Disaster Risk Reduction, Jal Jeevan Mission, Nature-Based Solutions, Rural Wash, Water Security

Abstract

Climate change, uncontrolled land use, and environmental degradation have increased the frequency and severity of natural disasters, with a particular impact on rural Water, Sanitation, and Hygiene (WASH) systems in countries like India. Floods, cyclones, droughts, and earthquakes frequently disrupt water supplies, destroy sanitation facilities, and hinder hygiene services, increasing disease risk and slowing recovery. Although WASH systems are important for responding to and recovering from disasters, they have not fully integrated climate adaptation and disaster risk reduction into their planning. This paper offers a community-oriented framework to reduce disaster risk and support the recovery of WASH services in rural India. The framework is based on seven strategic pillars: a climate-resilient water supply, adaptive sanitation, promotion of hygiene and public health, nature-based solutions, reform of institutions and governance, digital monitoring and early warning, and community capacity building. It draws together research, policy papers, and practical experience from programmes such as the Jal Jeevan Mission (JJM) and the Swachh Bharat Mission (SBM)-Grameen. The key principles are to build back better, promote decentralised governance, ensure gender-responsive leadership, and adopt ecosystem-based approaches. The framework aims to reduce service disruptions, speed recovery, and build lasting resilience in rural WASH systems, offering a model applicable to other disaster-prone developing countries.

References

Austin, L. M. (2005). Ecological sanitation: Literature review. FSM Toolbox. Retrieved from https://www.fsmtoolbox.com/assets/pdf/125_-_1439-1-06.pdf

Boisson, A., Baisset, M., Alazard, M., & Perrin, J. (2014). Comparison of surface and groundwater balance approaches in the evaluation of managed aquifer recharge structures: Case of a percolation tank in a crystalline aquifer in India. Journal of Hydrology, 519, 1620-1633. https://doi.org/10.1016/j.jhydrol.2014.09.022

Central Ground Water Board. (2025). Simple and practical methods of artificial recharge for groundwater. Government of India. https://cgwb.gov.in/cgwbpnm/public/uploads/documents/1739866191814353122file.pdf

Chen, Y. (2022). Flood hazard zone mapping incorporating geographic information system (GIS) and multi-criteria analysis (MCA) techniques. Journal of Hydrology, 612, 128268. https://doi.org/10.1016/j.jhydrol.2022.128268

Department of Drinking Water and Sanitation. (2023). Manual for disaster management plan for rural water supply schemes (aligned with Jal Jeevan Mission). Ministry of Jal Shakti, Government of India.

Elejalde, E., Naushirvanov, T., Kalimeri, K., Omodei, E., Karsai, M., Bravo, L., & Ferres, L. (2025). Use of mobile phone data to measure behavioral response to SMS evacuation alerts. International Journal of Disaster Risk Reduction, 131, Article 105919. https://doi.org/10.1016/j.ijdrr.2025.105919

Ferreira, C. S. S., Walsh, R., Ferreira, A. J. D., Keizer, J. J., & Prats, S. A. (2023). Wetlands as nature-based solutions for water management and climate resilience. Geography and Sustainability, 4(3), 100-112. https://doi.org/10.1016/j.geosus.2023.03.002

Forhad, H. M., Uddin, M. R., Chakrovorty, R. S., Ruhul, A. M., Faruk, H. M., Kamruzzaman, S., Sharmin, N., Molla Jamal, A. S. I., Haque, M. M.-U., & Morshed, A. M. M. (2024). IoT based real-time water quality monitoring system in water treatment plants (WTPs). Heliyon, 10(23), e40746. https://doi.org/10.1016/j.heliyon.2024.e40746

Gnanasekaran, S., Gupta, M. K., Goel, A. D., Bhardwaj, P., Srinivasan, S., Jain, V., Rajendran, V., & Raghav, P. (2025). Water, sanitation and infection control practices in rural health facilities of Jodhpur District, India: An intervention through supportive supervision. BMC Health Services Research, 25, 1171. https://doi.org/10.1186/s12913-025-12689-7

International Organization for Migration. (2023). DTM Ethiopia: National displacement report 16. https://dtm.iom.int

Mahmoudi, A., Mousavi, S. A., & Darvishi, P. (2021). Greywater as a sustainable source for development of green roofs: Characteristics, treatment technologies, reuse, case studies and future developments. Journal of Environmental Management, 295, 112991. https://doi.org/10.1016/j.jenvman.2021.112991

Ministry of Drinking Water and Sanitation. (2013). Uniform drinking water quality monitoring protocol. Government of India.

Mizutori, M., & Guha-Sapir, D. (2018). Economic losses, poverty and disasters: 1998-2017. UNISDR & CRED.

Munich Re. (2025). Natural disaster figures 2025. Munich Re Group. Retrieved from https://www.munichre.com

Nejad, H. J., Jamshidi, A., & Ghasemi, A. (2024). An innovative solar pump applicable in water distribution systems. Engineering Proceedings, 69(1), 107. https://doi.org/10.3390/engproc2024069107

Nhenderere, O. C. (2025). Reuse of greywater for irrigation in crop production: A review. Sustainable Water Resources Management. https://doi.org/10.1007/s40899-025-01296-3

Observer Research Foundation. (2024). India’s flood vulnerability: A review. ORF Issue Brief.

Pande, V. C., Singh, R., & Tiwari, S. (2014). Community-based water storage structures and management practices. Journal of Public Administration and Policy Research, 6(2), 24-32.

Ritchie, H., Rosado, P., & Roser, M. (2022). Natural disasters. Our World in Data. https://ourworldindata.org/natural-disasters

Singh, S. (2024). Faecal sludge management in India: A review. Cleaner Engineering and Technology. https://doi.org/10.1016/j.clet.2024.002698

Swiss Re Institute. (2026). Global natural catastrophe losses in 2025. Swiss Re Group. Retrieved from https://www.swissre.com

UNICEF. (2024). Global annual results report 2023: WASH section. UNICEF. https://clearinghouse.unicef.org

United Nations Office for Disaster Risk Reduction. (2025). Global assessment report on disaster risk reduction 2025 (GAR 2025): Resilience pays. UNDRR. https://www.undrr.org

Wallemacq, P., & House, R. (2018). Economic losses, poverty and disasters: 1998-2017. UNISDR & CRED.

Wang, T., Yang, L., Wu, S., Gao, J., & Wei, B. (2020). Quantitative assessment of disaster coping capacity. Sustainability, 12(15), 5949. https://doi.org/10.3390/su12155949

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Published

2026-09-30

How to Cite

Mitra, R. ., Saha, T. ., & Ghosh, K. . (2026). A Community-Oriented and Climate-Adaptive WASH Framework for Disaster Risk Mitigation and Recovery in Rural India. International Journal of Sustainable Rural Development, 3(1), 32-40. https://doi.org/10.54536/ijsrd.v3i1.7812

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