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Performance Analysis of Polygeneration Process

폴리제너레이션 성능 모사 연구

  • LEE, SIHWANG (Department of Chemical & Biological Engineering, Graduate School of Hanbat National University) ;
  • DAT, NGUYEN VO (Department of Chemical & Biological Engineering, Graduate School of Hanbat National University) ;
  • LEE, GUNHEE (Department of Chemical & Biological Engineering, Graduate School of Hanbat National University) ;
  • JUNG, MINYOUNG (Department of Chemical & Biological Engineering, School of Hanbat National University) ;
  • JEON, RAKYOUNG (Department of Chemical & Biological Engineering, School of Hanbat National University) ;
  • OH, MIN (Department of Chemical & Biological Engineering, Graduate School of Hanbat National University)
  • 이시황 (한밭대학교 대학원 화학생명공학과) ;
  • 보닷윙 (한밭대학교 대학원 화학생명공학과) ;
  • 이건희 (한밭대학교 대학원 화학생명공학과) ;
  • 정민영 (한밭대학교 화학생명공학과) ;
  • 전락영 (한밭대학교 화학생명공학과) ;
  • 오민 (한밭대학교 대학원 화학생명공학과)
  • Received : 2017.07.27
  • Accepted : 2017.08.30
  • Published : 2017.08.30

Abstract

Polygeneration process is widely used to pursuit high efficiency by sharing electricity, utility, refrigeration and the utilization of product chemicals. In this paper, performance analysis of the 450 MW Class polygeneration process was conducted with various syngas generated from coal and biomass gasifier. WGSR and PSA process were employed for hydrogen production and separation. Process modeling and dynamic simulation was carried out, and the results were compared with NETL report. Net power of the polygeneration process was 439 MW considering power consumption. More than 90% of CO was converted at WGSR and the hydrogen purity of PSA was more than 99.99%.

Keywords

References

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