Performance Design of Boiler for Waste Heat Recovery of Engine Coolant by Rankine Steam Cycle

엔진 냉각수 폐열 회수를 위한 랭킨 스팀 사이클용 보일러의 성능 설계

  • Heo, Hyung-Seok (High Efficiency Energy System Research Center, Korea Automotive Technology Institute) ;
  • Bae, Suk-Jung (High Efficiency Energy System Research Center, Korea Automotive Technology Institute) ;
  • Hwang, Jae-Soon (High Efficiency Energy System Research Center, Korea Automotive Technology Institute) ;
  • Lee, Heon-Kyun (High Efficiency Energy System Research Center, Korea Automotive Technology Institute) ;
  • Lee, Dong-Hyuk (High Efficiency Energy System Research Center, Korea Automotive Technology Institute) ;
  • Park, Jeong-Sang (Technology Research Team, Doowon Climate Control Co. LTD.) ;
  • Lee, Hong-Yeol (Technology Research Team, Doowon Climate Control Co. LTD.)
  • 허형석 (자동차부품연구원 고효율에너지시스템연구센터) ;
  • 배석정 (자동차부품연구원 고효율에너지시스템연구센터) ;
  • 황재순 (자동차부품연구원 고효율에너지시스템연구센터) ;
  • 이헌균 (자동차부품연구원 고효율에너지시스템연구센터) ;
  • 이동혁 (자동차부품연구원 고효율에너지시스템연구센터) ;
  • 박정상 ((주)두원공조 기술연구소) ;
  • 이홍열 ((주)두원공조 기술연구소)
  • Received : 2010.12.03
  • Accepted : 2011.03.19
  • Published : 2011.09.01

Abstract

A 2-loop waste heat recovery system with Rankine steam cycles for the improvement of fuel efficiency of gasoline vehicles has been investigated. A high temperature loop(HT loop) is a system to recover the waste heat from the exhaust gas, a low temperature loop(LT loop) is for heat recovery from the engine coolant cold relatively. This paper has dealt with a layout of a LT loop system, the review of the working fluids, and the design of the cycle. The design point and the target heat recovery of the LT boiler, a core part of a LT loop, has been presented and analytically investigated. Considering the characteristics of the cycle, the basic concept of the LT boiler has been determined as a shell-and tube type counterflow heat exchanger, the performance characteristics for various design parameters were investigated.

Keywords

References

  1. H. S. Heo and S. J. Bae, "Technology Trends of Rankine Steam Cycle for Engine Waste Heat Recovery," Auto Journal, KSAE, Vol.32, No.5, pp.23-32, 2010.
  2. J. D. Kee and J. H Lee, "Technology Trends of Turbo Compound System for Engine Waste Energy Harvesting," Auto Journal, KSAE, Vol.32, No.5, pp.33-42, 2010.
  3. J. Ringler, M. Seifert, V. Guyotot and W. Hubner, "Rankine Cycle for Waste Heat Recovery of IC Engines," SAE 2009-01-0174, 2009.
  4. T. Endo, S. Kawajiri, Y. Kojima, K. Takahashi, T. Baba, S. Ibaraki, T. Takahashi and M. Shinohara, "Study on Maximizing Exergy in Automotive Engines," SAE 2007-01-0257, 2007.
  5. S. J. bae, H. S. Heo, H. K. Lee, Y. D. Choung, J. S. Hwang and C. B. Lee, "An Investigation on Working Fluids for an Exhaust Waste Heat Recovery System of a Gasoline Engine," Fall Conference Proceedings, KSAE, pp.151-158, 2009.
  6. H. Teng, G. Regner and C. Cowland, "Waste Heat Recovery of Heavy-duty Diesel Engines by Organic Rankine Cycle Part I: Hybrid Energy System of Diesel and Rankine Engines," SAE 2007-01-0537, 2007.
  7. H. Teng, G. Regner and C. Cowland, "Waste Heat Recovery of Heavy-duty Diesel Engines by Organic Rankine Cycle Part II: Working Fluids for WHR-ORC," SAE 2007-01-0543, 2007.