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The benefits of action to reduce household air pollution (BAR-HAP) model: A new decision support tool

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  • Ipsita Das
  • Jessica J Lewis
  • Ramona Ludolph
  • Melanie Bertram
  • Heather Adair-Rohani
  • Marc Jeuland

Abstract

Cooking with polluting and inefficient fuels and technologies is responsible for a large set of global harms, ranging from health and time losses among the billions of people who are energy poor, to environmental degradation at a regional and global scale. This paper presents a new decision-support model–the BAR-HAP Tool–that is aimed at guiding planning of policy interventions to accelerate transitions towards cleaner cooking fuels and technologies. The conceptual model behind BAR-HAP lies in a framework of costs and benefits that is holistic and comprehensive, allows consideration of multiple policy interventions (subsidies, financing, bans, and behavior change communication), and realistically accounts for partial adoption and use of improved cooking technology. It incorporates evidence from recent efforts to characterize the relevant set of parameters that determine those costs and benefits, including those related to intervention effectiveness. Practical aspects of the tool were modified based on feedback from a pilot testing workshop with multisectoral users in Nepal. To demonstrate the functionality of the BAR-HAP tool, we present illustrative calculations related to several cooking transitions in the context of Nepal. In accounting for the multifaceted nature of the issue of household air pollution, the BAR-HAP model is expected to facilitate cross-sector dialogue and problem-solving to address this major health, environment and development challenge.

Suggested Citation

  • Ipsita Das & Jessica J Lewis & Ramona Ludolph & Melanie Bertram & Heather Adair-Rohani & Marc Jeuland, 2021. "The benefits of action to reduce household air pollution (BAR-HAP) model: A new decision support tool," PLOS ONE, Public Library of Science, vol. 16(1), pages 1-22, January.
  • Handle: RePEc:plo:pone00:0245729
    DOI: 10.1371/journal.pone.0245729
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    References listed on IDEAS

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    1. Brooks, N. & Bhojvaid, V. & Jeuland, M.A. & Lewis, J.J. & Patange, O. & Pattanayak, S.K., 2016. "How much do alternative cookstoves reduce biomass fuel use? Evidence from North India," Resource and Energy Economics, Elsevier, vol. 43(C), pages 153-171.
    2. Bensch, Gunther & Peters, Jörg, 2015. "The intensive margin of technology adoption – Experimental evidence on improved cooking stoves in rural Senegal," Journal of Health Economics, Elsevier, vol. 42(C), pages 44-63.
    3. Robert Bailis & Rudi Drigo & Adrian Ghilardi & Omar Masera, 2015. "The carbon footprint of traditional woodfuels," Nature Climate Change, Nature, vol. 5(3), pages 266-272, March.
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    Cited by:

    1. Dalia Fadly & Francisco Fontes & Miet Maertens, 2023. "Fuel for food: Access to clean cooking fuel and food security in India," Food Security: The Science, Sociology and Economics of Food Production and Access to Food, Springer;The International Society for Plant Pathology, vol. 15(2), pages 301-321, April.
    2. Babak Khavari & Camilo Ramirez & Marc Jeuland & Francesco Fuso Nerini, 2023. "A geospatial approach to understanding clean cooking challenges in sub-Saharan Africa," Nature Sustainability, Nature, vol. 6(4), pages 447-457, April.

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