론문(論文) : 가축분뇨의 마이크로버블과 촉매와의 반응 시간 증가에 따라 질소 제거에 미치는 영향

' 론문(論文) : 가축분뇨의 마이크로버블과 촉매와의 반응 시간 증가에 따라 질소 제거에 미치는 영향' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • ammonia-nitrogen
  • catalyst
  • livestockwastewater
  • microbubble
  • nitrate-nitrogen
  • 가축분뇨
  • 마이크로버블
  • 암모니아성 질소
  • 질산성질소
  • 촉매
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
554 0

0.0%

' 론문(論文) : 가축분뇨의 마이크로버블과 촉매와의 반응 시간 증가에 따라 질소 제거에 미치는 영향' 의 참고문헌

  • 촉매 산화에 의한 수중 암모니아의 분자질소로의 제거
    이득기 대한환경공학회지 25 (7) : 14 ~ 897 [2003]
  • 다양한 채소류에서 마이크로버블 및 전기분해수의 세척 살균 효과
    이운종 한국식품영양과학회지 40 (6) : 912 ~ 917 [2011]
  • Studies on a feasibility of swine farm wastewater treatment using microbiol fuel cell
    Jong, J. K. Korean J. Microbiol. Biotechnol. 38 (4) : 461 ~ 466 [2010]
  • Removal of nitrogen from swine manure wastewater by ammonia stripping
    Liao, P. H. Bioresour. Technol. 54 (1) : 17 ~ 20 [1995]
  • Removal of ammonium and nitrate in swine wastewater to prevent the current drop of microbial fuel cells
    Jang, J. K. In Proceedings of the international symposium on 4th Microbial fuel cell : 246 ~ [2013]
  • Recovery of ammonium nitrogen from the effluent of UASB treating poultry nanure wastewater by MAP precipitation as a slow release fertilizer
    Yetilmezsoy, K. J. Hazard. Mater. 166 (1) : 260 ~ 269 [2009]
  • Present state and future prospect for microbubble technology
    Cha, H. Bullet. Food Technol. 22 (3) : 544 ~ 552 [2009]
  • Operational parameters affecting the performance of a mediator-less microbial fuel cell
    Gil, G. C. Biosens. Bioelectron. 18 : 327 ~ 324 [2003]
  • Nitrogen removal in a modified anaerobic baffled reactor (ABR): 2 Nitrificaiton
    Barber, W. Water Res 34 (9) : 2423 ~ 2432 [2000]
  • Nitrogen removal in a modified anaerobic baffled reactor (ABR): 1 Denitrificaiton
    Barber, W. Water Res. 34 (9) : 2413 ~ 2422 [2000]
  • Microbubblesaided water and wastewater purification: a review
    Khuntia, S. Rev. Chem. Eng. 28 : 191 ~ 221 [2012]
  • Microbial fuel cells: novel biotechnology for energy generation
    Rabaey, K. Trends Biotechnol 23 (6) : 291 ~ 298 [2005]
  • Microbial fuel cells: methodology and technology
    Logan, B. E. Environ. Sci. Technol 40 (17) : 5181 ~ 5192 [2006]
  • Improved nitrogen removal in upflow anaerobic sludge blanket (UASB)reactors by incorporation of anammox bacteria in to the granular sludge
    Schmidt, L. E. Water Sci. Technol 49 : 69 ~ 76 [2004]
  • Hydrogen and methane production from swine wastewater using microbial electrolysis cells
    Wagner, R. C. Water Res. 43 : 1480 ~ 1488 [2009]
  • Enhanced treatment of practical textile wastewater by microbubble ozonation
    Chu, L. B. Proc. Safety and Environ. Protect. 86 : 389 ~ 396 [2008]
  • Electricity production in membrane-less microbial fuel cell with livestock organic solid waste
    Lee, Y. Bioresour. Technol. 102 (10) : 5831 ~ 5835 [2011]
  • Electricity generation from swine wastewater using microbial fuel cell
    Min, B. Water Res 39 : 4961 ~ 4968 [2005]
  • Effect of Ammonium and Nitrate on Current Generation Using Dual-Cathode Microbial Fuel Cells
    Jae Kyung Jang Journal of Microbiology and Biotechnology 22 (2) : 270 ~ 273 [2012]
  • Desulfurization for simultaneous removal of hydrogen sulfide and sulfur dioxide
    Jung, K. D. Patent 10-2005-0116694
  • Construction and operation of a novel mediator- and membrane-less microbial fuel cell
    Jang, J. K. Process Biochem 39 (8) : 1007 ~ 1012 [2004]
  • Characteristics of nitrogen and phosphorus removal in SBR and SBBR with different ammonium loading rates
    Young-Seek Park The Korean Journal of Chemical Engineering 25 (4) : 793 ~ 800 [2008]
  • Catalysts for oxidation of ammonia to oxides of nitrogen
    Handforth, S. L. Ind. Eng. Chem. 26 (12) : 1287 ~ 1292 [1934]
  • Advanced wet oxidation of Fe/MgO : catalytic ozonation of humic acid and phenol
    Lee, J. Theories and Appl. Chem. Eng. 8 (2) : 4537 ~ 4576 [2002]