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Agent-based modeling of “cleaner” cookstove adoption and woodfuel use: An integrative empirical approach

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  • Jagadish, Arundhati
  • Dwivedi, Puneet
  • McEntire, Kira D.
  • Chandar, Mamta

Abstract

Heavy reliance on biomass for cooking and heating raises concerns of deforestation and forest degradation in rural India. We developed an agent-based model to spatially and temporally understand woodfuel consumption from local forests, and the role of adoption of cleaner cookstoves in alleviating woodfuel pressure from nearby forests. First, we calculated the aboveground woody biomass present in forests accessed for woodfuel using randomized forest sampling. Second, we quantified household woodfuel consumption for cooking and heating from the household surveys. Third, we developed four different scenarios over 20 years varying the adoption of "cleaner" cookstoves (LPG and Induction). Finally, we synthesized information in an agent-based model to estimate the spatial patterns and temporal trends of woodfuel collection from nearby forests in a watershed located in Himachal Pradesh, India. The total annual woodfuel consumption was 2200 t across eight villages located in the selected watershed. Households with at least one non-biomass-based cookstove consumed on average 0.38 t less woodfuel than households with only biomass-based cookstoves. The total aboveground woody biomass for 235.8 ha of forest area accessed for woodfuel collection was 95,505 t. From the model, we found that the total aboveground woody biomass increased from 95,505.2 to 110,352.5 t over 20 years. The aboveground woody biomass increased in larger forest areas at the end of 20 years, whereas in smaller forest areas it decreased considerably. We postulate that instead of focusing on measures to reduce consumption at the household level, policies may be more effective by focusing on supply side reforms such as promoting alternative sources for woodfuel, along with alternatives to not just “cleaner” cooking but heating as well.

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  • Jagadish, Arundhati & Dwivedi, Puneet & McEntire, Kira D. & Chandar, Mamta, 2019. "Agent-based modeling of “cleaner” cookstove adoption and woodfuel use: An integrative empirical approach," Forest Policy and Economics, Elsevier, vol. 106(C), pages 1-1.
  • Handle: RePEc:eee:forpol:v:106:y:2019:i:c:10
    DOI: 10.1016/j.forpol.2019.101972
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    References listed on IDEAS

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    1. Khandelwal, Meena & Hill, Matthew E. & Greenough, Paul & Anthony, Jerry & Quill, Misha & Linderman, Marc & Udaykumar, H.S., 2017. "Why Have Improved Cook-Stove Initiatives in India Failed?," World Development, Elsevier, vol. 92(C), pages 13-27.
    2. Khuman, Y.S.C. & Pandey, Ranjita & Rao, K.S., 2011. "Fuelwood consumption patterns in Fakot watershed, Garhwal Himalaya, Uttarakhand," Energy, Elsevier, vol. 36(8), pages 4769-4776.
    3. Aggarwal, R.K. & Chandel, S.S., 2010. "Emerging energy scenario in Western Himalayan state of Himachal Pradesh," Energy Policy, Elsevier, vol. 38(5), pages 2545-2551, May.
    4. Grieshop, Andrew P. & Marshall, Julian D. & Kandlikar, Milind, 2011. "Health and climate benefits of cookstove replacement options," Energy Policy, Elsevier, vol. 39(12), pages 7530-7542.
    5. Lee, Soo Min & Kim, Yeon-Su & Jaung, Wanggi & Latifah, Sitti & Afifi, Mansur & Fisher, Larry A., 2015. "Forests, fuelwood and livelihoods—energy transition patterns in eastern Indonesia," Energy Policy, Elsevier, vol. 85(C), pages 61-70.
    6. Grimm, Volker & Berger, Uta & DeAngelis, Donald L. & Polhill, J. Gary & Giske, Jarl & Railsback, Steven F., 2010. "The ODD protocol: A review and first update," Ecological Modelling, Elsevier, vol. 221(23), pages 2760-2768.
    7. Viswanathan, Brinda & Kavi Kumar, K. S., 2005. "Cooking fuel use patterns in India: 1983-2000," Energy Policy, Elsevier, vol. 33(8), pages 1021-1036, May.
    8. Pohekar, S.D. & Kumar, Dinesh & Ramachandran, M., 2005. "Dissemination of cooking energy alternatives in India--a review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 9(4), pages 379-393, August.
    9. Matsika, R. & Erasmus, B.F.N. & Twine, W.C., 2013. "Double jeopardy: The dichotomy of fuelwood use in rural South Africa," Energy Policy, Elsevier, vol. 52(C), pages 716-725.
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