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Critical issues of energy efficient and new energy vehicles development in China

Author

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  • Liu, Zongwei
  • Hao, Han
  • Cheng, Xiang
  • Zhao, Fuquan

Abstract

Energy efficient and new energy vehicles are key measures in addressing China's energy and environment problems. In terms of the prospect of different technologies, the industrial and academic circles have not reached a consensus yet. In this study, the current situation and future development of main technology pathways in China are discussed. Specifically, internal combustion engines will be simpler in the future as a result of electric motor coupling. Battery electric vehicles are faced with a certain challenges currently and should be adopted in smaller vehicles at first. Hybrid technologies should be considered a significant development stage and should be applied before 2018. Plug-in hybrid electric vehicles and extended range electric vehicles are different in essence and should be applied based on their original intentions. Fuel cell vehicles are confronted with multiple challenges currently and will probably popularize after 2025.

Suggested Citation

  • Liu, Zongwei & Hao, Han & Cheng, Xiang & Zhao, Fuquan, 2018. "Critical issues of energy efficient and new energy vehicles development in China," Energy Policy, Elsevier, vol. 115(C), pages 92-97.
  • Handle: RePEc:eee:enepol:v:115:y:2018:i:c:p:92-97
    DOI: 10.1016/j.enpol.2018.01.006
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    1. Björn Nykvist & Måns Nilsson, 2015. "Rapidly falling costs of battery packs for electric vehicles," Nature Climate Change, Nature, vol. 5(4), pages 329-332, April.
    2. Sharaf, Omar Z. & Orhan, Mehmet F., 2014. "An overview of fuel cell technology: Fundamentals and applications," Renewable and Sustainable Energy Reviews, Elsevier, vol. 32(C), pages 810-853.
    3. Offer, G.J. & Howey, D. & Contestabile, M. & Clague, R. & Brandon, N.P., 2010. "Comparative analysis of battery electric, hydrogen fuel cell and hybrid vehicles in a future sustainable road transport system," Energy Policy, Elsevier, vol. 38(1), pages 24-29, January.
    4. Chen, Bo-Chiuan & Wu, Yuh-Yih & Tsai, Hsien-Chi, 2014. "Design and analysis of power management strategy for range extended electric vehicle using dynamic programming," Applied Energy, Elsevier, vol. 113(C), pages 1764-1774.
    5. Troy R. Hawkins & Bhawna Singh & Guillaume Majeau‐Bettez & Anders Hammer Strømman, 2013. "Comparative Environmental Life Cycle Assessment of Conventional and Electric Vehicles," Journal of Industrial Ecology, Yale University, vol. 17(1), pages 53-64, February.
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