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A comparative study on various turbocharging approaches based on IC engine exhaust gas energy recovery

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  • Fu, Jianqin
  • Liu, Jingping
  • Wang, Yong
  • Deng, Banglin
  • Yang, Yanping
  • Feng, Renhua
  • Yang, Jing

Abstract

In this paper, two kinds of novel boosting pressure approaches, steam turbocharging and steam-assisted turbocharging, have been proposed. And both are based on the principle of internal combustion (IC) engine exhaust gas energy recovery. In order to demonstrate the advantages of the two types of new turbocharging concepts, a comparative study among exhaust turbocharging, steam turbocharging and steam-assisted turbocharging was conducted on a passenger car gasoline engine, and the effects of various boosting pressure approaches on IC engine performances as well as turbocharging system energy flow were analyzed. The results show that, steam turbocharging can achieve the target intake pressure in the entire IC engine speed range, while steam-assisted turbocharging can improve IC engine intake pressure at the low-speed operating conditions; the energy saving potentials from high to low follow the subsequence of steam turbocharging, steam-assisted turbocharging and exhaust turbocharging; with the increasing of IC engine speed, the exhaust gas energy recovery efficiency of steam turbocharging system decreases and its maximum value is 6.5%, while the exhaust gas energy recovery efficiency of steam-assisted turbocharging and exhaust turbocharging first increases and then decreases.

Suggested Citation

  • Fu, Jianqin & Liu, Jingping & Wang, Yong & Deng, Banglin & Yang, Yanping & Feng, Renhua & Yang, Jing, 2014. "A comparative study on various turbocharging approaches based on IC engine exhaust gas energy recovery," Applied Energy, Elsevier, vol. 113(C), pages 248-257.
  • Handle: RePEc:eee:appene:v:113:y:2014:i:c:p:248-257
    DOI: 10.1016/j.apenergy.2013.07.023
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    1. Wang, Dexin & Bao, Ainan & Kunc, Walter & Liss, William, 2012. "Coal power plant flue gas waste heat and water recovery," Applied Energy, Elsevier, vol. 91(1), pages 341-348.
    2. Fu, Jianqin & Liu, Jingping & Ren, Chengqin & Wang, Linjun & Deng, Banglin & Xu, Zhengxin, 2012. "An open steam power cycle used for IC engine exhaust gas energy recovery," Energy, Elsevier, vol. 44(1), pages 544-554.
    3. Liu, Mingxi & Shi, Yang & Fang, Fang, 2012. "A new operation strategy for CCHP systems with hybrid chillers," Applied Energy, Elsevier, vol. 95(C), pages 164-173.
    4. Pandiyarajan, V. & Chinna Pandian, M. & Malan, E. & Velraj, R. & Seeniraj, R.V., 2011. "Experimental investigation on heat recovery from diesel engine exhaust using finned shell and tube heat exchanger and thermal storage system," Applied Energy, Elsevier, vol. 88(1), pages 77-87, January.
    5. Fu, Jianqin & Liu, Jingping & Feng, Renhua & Yang, Yanping & Wang, Linjun & Wang, Yong, 2013. "Energy and exergy analysis on gasoline engine based on mapping characteristics experiment," Applied Energy, Elsevier, vol. 102(C), pages 622-630.
    6. Fu, Jianqin & Liu, Jingping & Xu, Zhengxin & Ren, Chengqin & Deng, Banglin, 2013. "A combined thermodynamic cycle based on methanol dissociation for IC (internal combustion) engine exhaust heat recovery," Energy, Elsevier, vol. 55(C), pages 778-786.
    7. Zhang, Jianhua & Zhou, Yeli & Li, Ying & Hou, Guolian & Fang, Fang, 2013. "Generalized predictive control applied in waste heat recovery power plants," Applied Energy, Elsevier, vol. 102(C), pages 320-326.
    8. Hung, T.C. & Shai, T.Y. & Wang, S.K., 1997. "A review of organic rankine cycles (ORCs) for the recovery of low-grade waste heat," Energy, Elsevier, vol. 22(7), pages 661-667.
    9. He, Maogang & Zhang, Xinxin & Zeng, Ke & Gao, Ke, 2011. "A combined thermodynamic cycle used for waste heat recovery of internal combustion engine," Energy, Elsevier, vol. 36(12), pages 6821-6829.
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