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Improving pumpset selection to support intensification of groundwater irrigation in the Eastern Indo-Gangetic Plains

Author

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  • Foster, Timothy
  • Adhikari, Roshan
  • Adhikari, Subash
  • Justice, Scott
  • Tiwari, Baburam
  • Urfels, Anton
  • Krupnik, Timothy J.

Abstract

Intensification of groundwater irrigation is central to goals of improving food security and reducing chronic poverty faced by millions of rural households across the eastern Indo-Gangetic Plains (EIGP) of Nepal and parts of eastern India. At present, levels of groundwater use and access in the EIGP lag far behind other areas of South Asia despite abundant available groundwater resources. A key reason for prevailing access constraints is the dependence on diesel pumpsets for accessing groundwater, which are typically unsubsidised and therefore expensive to purchase and operate. To date, efforts to reduce access costs have focused almost exclusively on how to incentivise adoption of alternative electric or solar-powered pumping technologies, which are viewed as being cheaper to operate and less environmentally damaging due to their lower operational carbon emissions. In contrast, there has been little attention paid to identifying opportunities to make existing diesel pump systems more cost effective for farmers to operate in order to support adaptation to climate change and reduce poverty. In this study, we use evidence from 116 detailed in-situ pump tests along with interviews with pumpset dealers, mechanics and farmers in the Nepal Terai to assess how and why fuel efficiency and operational costs of diesel pump irrigation are affected by farmers’ pumpset selection decisions. We show that costs diesel pumpset irrigation can be reduced significantly by supporting and incentivising farmers (e.g., through equipment advisories, improved supply chains for maintenance services and spare parts) to invest in newer low-cost, portable and smaller horsepower pumpset designs that are more effectively matched to local operating conditions in the EIGP than older Indian manufactured engines that have historically been preferred by farmers in the region. Such interventions can help to unlock potential for intensified irrigation water use in the EIGP, contributing to goals of improving agricultural productivity and resilience to climate extremes while also strengthening farmers capacity to invest in emerging low-carbon pumping technologies.

Suggested Citation

  • Foster, Timothy & Adhikari, Roshan & Adhikari, Subash & Justice, Scott & Tiwari, Baburam & Urfels, Anton & Krupnik, Timothy J., 2021. "Improving pumpset selection to support intensification of groundwater irrigation in the Eastern Indo-Gangetic Plains," Agricultural Water Management, Elsevier, vol. 256(C).
  • Handle: RePEc:eee:agiwat:v:256:y:2021:i:c:s0378377421003358
    DOI: 10.1016/j.agwat.2021.107070
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    as
    1. Giordano, Mark & Villholth, Karen, 2007. "The agricultural groundwater revolution: opportunities and threats to development," IWMI Books, Reports H040039, International Water Management Institute.
    2. Shah, Tushaar & Ul Hassan, Mehmood & Khattak, Muhammad Zubair & Banerjee, Parth Sarthi & Singh, O.P. & Rehman, Saeed Ur, 2009. "Is Irrigation Water Free? A Reality Check in the Indo-Gangetic Basin," World Development, Elsevier, vol. 37(2), pages 422-434, February.
    3. Mukherji, Aditi, 2007. "The energy-irrigation nexus and its impact on groundwater markets in eastern Indo-Gangetic basin: Evidence from West Bengal, India," Energy Policy, Elsevier, vol. 35(12), pages 6413-6430, December.
    4. Willem Colenbrander & Barbara van Koppen, 2013. "Improving the supply chain of motor pumps to accelerate mechanized small-scale private irrigation in Zambia," Water International, Taylor & Francis Journals, vol. 38(4), pages 493-503, July.
    5. Giordano, Meredith & de Fraiture, Charlotte, 2014. "Small private irrigation: Enhancing benefits and managing trade-offs," Agricultural Water Management, Elsevier, vol. 131(C), pages 175-182.
    6. Bhandari, Humnath & Pandey, Sushil, 2006. "Economics of Groundwater Irrigation in Nepal: Some Farm-Level Evidences," Journal of Agricultural and Applied Economics, Cambridge University Press, vol. 38(1), pages 185-199, April.
    7. Ram Fishman, 2018. "Groundwater depletion limits the scope for adaptation to increased rainfall variability in India," Climatic Change, Springer, vol. 147(1), pages 195-209, March.
    8. Shalu Agrawal & Abhishek Jain, 2019. "Sustainable deployment of solar irrigation pumps: Key determinants and strategies," Wiley Interdisciplinary Reviews: Energy and Environment, Wiley Blackwell, vol. 8(2), March.
    9. Ram Bastakoti & Manita Raut & Bhesh Raj Thapa, 2020. "Groundwater Governance and Adoption of Solar-Powered Irrigation Pumps," World Bank Publications - Reports 33245, The World Bank Group.
    10. Anton Urfels & Andrew J. McDonald & Timothy J. Krupnik & Pieter R. van Oel, 2020. "Drivers of groundwater utilization in water-limited rice production systems in Nepal," Water International, Taylor & Francis Journals, vol. 45(1), pages 39-59, January.
    11. Humpherys, Allan S. & Lauritzen, C. W., 1964. "Hydraulic and Geometrical Relationships of Lay-Flat Irrigation Tubing," Technical Bulletins 171198, United States Department of Agriculture, Economic Research Service.
    12. Matthew Rodell & Isabella Velicogna & James S. Famiglietti, 2009. "Satellite-based estimates of groundwater depletion in India," Nature, Nature, vol. 460(7258), pages 999-1002, August.
    13. Closas, Alvar & Rap, Edwin, 2017. "Solar-based groundwater pumping for irrigation: Sustainability, policies, and limitations," Energy Policy, Elsevier, vol. 104(C), pages 33-37.
    14. Tushaar Shah, & Intizar Hussain & Saeed ur Rehman, 2000. "Irrigation Management in Pakistan and India: Comparing Notes on Institutions and Policies," IWMI Working Papers H027088, International Water Management Institute.
    15. Bhandari, Humnath & Pandey, Sushil, 2006. "Economics of Groundwater Irrigation in Nepal: Some Farm-Level Evidences," Journal of Agricultural and Applied Economics, Southern Agricultural Economics Association, vol. 38(1), pages 1-15, April.
    16. Mottaleb, Khondoker A. & Krupnik, Timothy J. & Keil, Alwin & Erenstein, Olaf, 2019. "Understanding clients, providers and the institutional dimensions of irrigation services in developing countries: A study of water markets in Bangladesh," Agricultural Water Management, Elsevier, vol. 222(C), pages 242-253.
    17. Oda, Hisaya & Tsujita, Yuko, 2011. "The determinants of rural electrification: The case of Bihar, India," Energy Policy, Elsevier, vol. 39(6), pages 3086-3095, June.
    18. Shah, Tushaar, 2007. "The groundwater economy of South Asia: an assessment of size, significance and socio-ecological impacts," IWMI Books, Reports H039669, International Water Management Institute.
    19. Shah, Tushaar & Rajan, Abhishek & Rai, Gyan Prakash & Verma, Shilp & Durga, Neha, "undated". "Solar pumps and South Asia's energy-groundwater nexus: exploring implications and reimagining its future," Papers published in Journals (Open Access) H048971, International Water Management Institute.
    20. Foster, Tim & Adhikari, Roshan & Urfels, Anton & Adhikari, Subash & Krupnik, Timothy J., 2019. "Costs of diesel pump irrigation systems in the Eastern Indo-Gangetic Plains: What options exist for efficiency gains?," CSISA project notes 15, International Food Policy Research Institute (IFPRI).
    21. Shah, Tushaar, 2007. "The groundwater economy of South Asia: an assessment of size, significance and socio-ecological impacts," Book Chapters,, International Water Management Institute.
    22. Sayre, Susan Stratton & Taraz, Vis, 2019. "Groundwater depletion in India: Social losses from costly well deepening," Journal of Environmental Economics and Management, Elsevier, vol. 93(C), pages 85-100.
    23. Burney, Jennifer A. & Naylor, Rosamond L., 2012. "Smallholder Irrigation as a Poverty Alleviation Tool in Sub-Saharan Africa," World Development, Elsevier, vol. 40(1), pages 110-123.
    24. Avinash Kishore & PK Joshi & Divya Pandey, 2017. "Harnessing the sun for an evergreen revolution: a study of solar-powered irrigation in Bihar, India," Water International, Taylor & Francis Journals, vol. 42(3), pages 291-307, April.
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