• 제목/요약/키워드: 증기 메탄 개질

검색결과 4건 처리시간 0.019초

증기 메탄 개질 반응의 Ru 촉매 Kinetic Parameter 예측 (Kinetic Parameter Estimation of Ru Catalyst for Steam Methane Reforming)

  • 주종효;김명준;조형태;이재원;김정환
    • 한국수소및신에너지학회논문집
    • /
    • 제33권5호
    • /
    • pp.499-506
    • /
    • 2022
  • This study proposes kinetic parameters of Ru catalyst for steam methane reforming (SMR). First, extensive experiments are performed under different SMR conditions to evaluate performance of the catalyst in SMR. Second, a kinetic model is designed and developed for parameter estimation and validation using gPROMS. Finally, estimated parameters are fitted to the kinetic model and then, the model results are compared with the experimental data. The model results are in a good agreement with the experimental data.

연료전지자동차용 수소제조와 저장·운반기술동향 (Technical Trends of Hydrogen Manufacture, Storage and Transportation System for Fuel Cell Vehicle)

  • 길상철;황용길
    • 자원리싸이클링
    • /
    • 제25권1호
    • /
    • pp.48-59
    • /
    • 2016
  • 화석연료를 사용하는 선박이나 자동차는 $CO_2$가스를 과대하게 발생하므로 지구 온난화에 영향을 주기 때문에 화석연료 대신 수소를 사용하는 수소연료전지자동차(FCV)가 크게 각광을 받고 있다. 우리나라는 현대자동차가 FCV자동차를 미국, 일본, 독일 등의 선진국들의 자동차회사와 경쟁적으로 개발하고 있다. 수소는 제철소의 코크스 공장, 서유화학공장의 부산물로 얻으며, 석탄, 메탄가스 등을 고온에서 증기와 반응시켜서 메탄 수증기개질법과 압력스윙흡착법 또는 막분리형멤브레인개질 법을 이용한 수소분리형개질방법으로 고순도 수소를 제조하거나 물을 전기분해하여 제조한다. 수소는 전자공업, 금속 및 화학공업, 로켓 연료 및 공장, 병원, 가정용 등의 연료전지시스템이나 FCV의 연료로 사용하고 있다. 수소의 저장은 수소용기에 수소를 압축하는 방법과 액화수소로 저장하는 방법이 일반적이고, 최근 수소화물이나 유기화학하이드라이드법으로 저장하여 수소스테이션에 운반해서 사용한다. 우리나라는 현재 13개소의 수소스테이션이 가동 중에 있으며, 향후 43개소를 설치할 계획이다.

초고온가스로 연계 블루수소 생산 공정의 열역학적 분석 (Preliminary Thermodynamic Evaluation of a Very High Temperature Reactor (VHTR) Integrated Blue Hydrogen Production Process)

  • 손성민
    • 한국수소및신에너지학회논문집
    • /
    • 제34권3호
    • /
    • pp.267-273
    • /
    • 2023
  • As the impacts of global climate change become increasingly apparent, the reduction of carbon emissions has emerged as a critical subject of discussion. Nuclear power has garnered attention as a potential carbon-free energy source; however, the rapidity of load following in nuclear power generation poses challenges in comparison to fossil-fueled methods. Consequently, power-to-gas systems, which integrate nuclear power and hydrogen, have attracted growing interest. This study presents a preliminary design of a very high temperature reactor (VHTR) integrated blue hydrogen production process utilizing DWSIM, an open-source process simulator. The blue hydrogen production process is estimated to supply the necessary calorific value for carbon capture through tail gas combustion heat. Moreover, a thermodynamic assessment of the main recuperator is performed as a function of the helium flow rate from the VHTR system to the blue hydrogen production system.

수소 생산 공정 개선을 위한 엑서지 분석과 열 교환망 합성: 분산형 수소 충전소에 대한 실용적 적용 (Exergy Analysis and Heat Exchanger Network Synthesis for Improvement of a Hydrogen Production Process: Practical Application to On-Site Hydrogen Refueling Stations)

  • 윤승관;조형태;김명준;이재원;김정환
    • 한국수소및신에너지학회논문집
    • /
    • 제33권5호
    • /
    • pp.515-524
    • /
    • 2022
  • In this study, the on-site hydrogen production process for refueling stations that were not energy-optimized was improved through exergy analysis and heat exchange network synthesis. Furthermore, the process was scaled up from 30 Nm3/h to 150 Nm3/h to improve hydrogen production capacity. Exergy analysis results show that exergy destruction in the SMR reactor and the heat exchanger accounts for 58.1 and 19.8%, respectively. Thus, the process is improved by modifying the heat exchange network to reduce the exergy loss in these units. As a result of the process simulation analysis, thermal and exergy efficiency is improved from 75.7 to 78.6% and 68.1 to 70.4%, respectively. In conclusion, it is expected to improve the process efficiency when installing on-site hydrogen refueling stations.