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Bioenergy prospects in Taiwan using set-aside land – an economic evaluation

Author

Listed:
  • Chih-Chun Kung
  • Bruce McCarl
  • Xiaoyong Cao
  • Hualin Xie

Abstract

Purpose - – This study aims to explore Taiwan's potential for bioenergy production using feedstocks grown on set-aside land and discusses the consequent effects on Taiwan's energy security plus benefits and greenhouse gas (GHG) emission. Design/methodology/approach - – The Modified Taiwan Agricultural Sector Model (Modified TASM), based on price endogenous mathematical programming, was used to simulate different agricultural policies related to bioenergy production. To do this simulation, the TASM model was extended to include additional bioenergy production possibilities and GHG accounting. Findings - – Taiwan's bioenergy production portfolio depends on prices of ethanol, electricity and GHG. When GHG prices go up, ethanol production decreases and electricity production increases because of the relatively stronger GHG offset power of biopower. Originality/value - – Taiwan is interested in producing bioenergy but only limited information is available. This study provides the information on potential bioethanol and bioelectricity production from various energy crops, GHG emission offset from bioenergy, and regional energy security.

Suggested Citation

  • Chih-Chun Kung & Bruce McCarl & Xiaoyong Cao & Hualin Xie, 2013. "Bioenergy prospects in Taiwan using set-aside land – an economic evaluation," China Agricultural Economic Review, Emerald Group Publishing Limited, vol. 5(4), pages 489-511, November.
  • Handle: RePEc:eme:caerpp:v:5:y:2013:i:4:p:489-511
    DOI: 10.1108/CAER-01-2012-0002
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    Citations

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    Cited by:

    1. Kung, Chih-Chun & Mu, Jianhong E., 2019. "Prospect of China's renewable energy development from pyrolysis and biochar applications under climate change," Renewable and Sustainable Energy Reviews, Elsevier, vol. 114(C), pages 1-1.
    2. Chih-Chun Kung & Meng-Shiuh Chang, 2015. "Effect of Agricultural Feedstock to Energy Conversion Rate on Bioenergy and GHG Emissions," Sustainability, MDPI, vol. 7(5), pages 1-15, May.
    3. Chih-Chun Kung & Hualin Xie & Tao Wu & Shih-Chih Chen, 2014. "Biofuel for Energy Security: An Examination on Pyrolysis Systems with Emissions from Fertilizer and Land-Use Change," Sustainability, MDPI, vol. 6(2), pages 1-18, January.
    4. Chih-Chun Kung & Tao Wu, 2020. "A spatial equilibrium analysis of using agricultural resources to produce biofuel," Agricultural Economics, Czech Academy of Agricultural Sciences, vol. 66(2), pages 74-83.
    5. Kung, Chih-Chun & Cao, Xiaoyong & Choi, Yongrok & Kung, Shan-Shan, 2019. "A stochastic analysis of cropland utilization and resource allocation under climate change," Technological Forecasting and Social Change, Elsevier, vol. 148(C).
    6. Kung, Chih-Chun, 2019. "A stochastic evaluation of economic and environmental effects of Taiwan's biofuel development under climate change," Energy, Elsevier, vol. 167(C), pages 1051-1064.
    7. Kung, Chih-Chun & Zhang, Ning & Choi, Yongrok & Xiong, Kai & Yu, Jiangli, 2019. "Effectiveness of crop residuals in ethanol and pyrolysis-based electricity production: A stochastic analysis under uncertain climate impacts," Energy Policy, Elsevier, vol. 125(C), pages 267-276.

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