다양한 농도 공급원의 조합을 통한 역전기투석 장치의 성능 평가

논문상세정보
' 다양한 농도 공급원의 조합을 통한 역전기투석 장치의 성능 평가' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • brine(브라인)
  • desalination(담수화)
  • renewable energy (신재생에너지)
  • reverse electrodialysis(역전기투석)
  • salinity gradient power(농도차 발전)
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
26 0

0.0%

' 다양한 농도 공급원의 조합을 통한 역전기투석 장치의 성능 평가' 의 참고문헌

  • 휴대용 고분자전해질막 연료전지의 산화제 공급을 위한 전기침투 현상 기반의 공기펌프의 개발
    권길성 대한기계학회논문집 B 34 (7) : 715 ~ 720 [2010]
  • Tunable Reverse Electrodialysis Microplatform with Geometrically Controlled Self-Assembled Nanoparticle Network
    Choi, E. Lab Chip 15 : 168 ~ 178 [2015]
  • Thermodynamic Analysis of Osmotic Energy Recovery at a Reverse Osmosis Desalination Plant
    Feinberg, B. J. Environ. Sci. Technol. 47 (6) : 2982 ~ 2989 [2013]
  • Salinity-Gradient Power: Evaluation of Pressure-Retarded Osmosis and Reverse Elerctrodialysis
    Post, J. W. J. Membrane Sci. 288 (1-2) : 218 ~ 230 [2007]
  • Salinity Gradient Energy at River Mouths, Environ. Sci. Technol. Lett., Vol. 1, No. 10
    Alvarez-Silva, O. Environ. Sci. Technol. Lett. 1 (10) : 410 ~ 415 [2014]
  • Renewable Energy by Reverse Electrodialysis
    Turek, M. Desalination 205 (1~3) : 67 ~ 74 [2007]
  • Production of Energy from Concentrated Brines by Pressure-Retarded Osmosis: II. Experimental Results and Projected Energy Costs
    Loeb, S. J. Membrane Sci. 1 : 249 ~ 269 [1976]
  • Production of Electric Power by Mixing Fresh and Salt Water in the Hydraulic Pile
    Pattle, R. E. Nature 174 : 660 ~ [1954]
  • Pressure Retarded Osmosis: From the Vision of Sidney Loeb to the First Prototype Installation – Review
    Achilli, A. Desalination 261 (3) : 205 ~ 211 [2010]
  • Power Generation using profiled Membranes in Reverse Electrodialysis
    Vermaas, D. A. J. Membrane Sci. 385-386 : 234 ~ 242 [2011]
  • Power Generation from Concentration Gradient by Reverse Electrodialysis in Ion-Selective Nanochannels
    Kim, D.-K Microfluid. Nanofluid 9 (6) : 1215 ~ 1224 [2010]
  • Potential of Osmotic Power Generation by Pressure Retarded Osmosis using Seawater as Feed Solution: Analysis and Experiments
    Kim, Y. J. Membrane Sci. 429 : 330 ~ 337 [2013]
  • Perfromance-determining Membrane Properties in Reverse Electrodialysis
    Güler, E. J. Membrane Sci. 446 : 266 ~ 276 [2013]
  • Modelling the Rverse Eectrodialysis Process with Sawater and Concentrated Brines
    Tedesco, M. Desalin. Water Treat. 49 (1~3) : 404 ~ 424 [2012]
  • Ion Conductive Spacers for Increased Power Generation in Reverse Electrodialysis
    Długołęcki, P. J. Membrane Sci. 347 (1~2) : 101 ~ 107 [2010]
  • Evaluation of Reciprocating Electromagnetic Air Pumping for Portable PEMFC
    Kwon, K J. Micromech. Microeng. 23 (6) : 065007 ~ [2013]
  • Energy Requirements of Ammonia-Carbon Dioxide Forward Osmosis Desalination
    McGinnis, R. Desalination 207 (1~3,) : 370 ~ 382 [2007]
  • Energy Harvesting System Using Reverse Electrodialysis with Nanoporous Polycarbonate Track-Etch Membranes
    Kwon, K Int. J. Energy. Res. 38 (4) : 530 ~ 537 [2014]
  • Doubled Power Density from Salinity Gradients at Reduced Intermembrane Distance 45 (16) : 7089 ~ 7095
  • Comparison of Energy Efficiency and Power Density in Pressure Retarded Osmosis and Reverse Electrodialysis
    Yip, N. Y. Environ. Sci. Technol. 48 (18) : 11002 ~ 11012 [2014]
  • A Novel Hybrid Process of Reverse Electrodialysis and Reverse Osmosis for Low Energy Seawater Desalination and Brine Management
    Li, W. Appl. Energy 104 : 592 ~ 602 [2013]