• 제목/요약/키워드: Electro-fenton oxidation

검색결과 6건 처리시간 0.024초

정유 공장에서 발생된 폐수 슬러지의 최적 감량화 방안 연구 (Study of optimal reduction plan for wastewater sludge generated from oil refinery)

  • 최재우;정종민;심나탈리아;이상협;박철희
    • 상하수도학회지
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    • 제24권4호
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    • pp.395-406
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    • 2010
  • In this study, anaerobic digestion, electro-oxidation and electro-fenton oxidation processes were investigated to reduce oily refinery sludge. Anaerobic digestion process was not suitable for oily activated sludge reduction because of characteristics itself and, as experimental results revealed, reduction efficiency was low for electro-oxidation process. However, 40% total suspended solid reduction of oily activated sludge was obtained by electro-fenton oxidation process, operating at pH=1, 0.5 A and $Fe^{2+}$:$H_2O_2$ ratio = 1:30. In addition, higher reduction efficiency was obtained as reaction time was increased (30, 60, 90, 120 min) despite of low $H_2O_2$ concentration. From the results, it has been investigated that electro-fenton oxidation is efficient process for oily activated sludge reduction.

전기-펜톤 공정에 의한 페놀의 전기화학적 분해 (Electrochemical Degradation of Phenol by Electro-Fenton Process)

  • 김동석;박영식
    • 한국환경보건학회지
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    • 제35권3호
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    • pp.201-208
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    • 2009
  • Oxidation of phenol in aqueous media by electro-Fenton process using Ru-Sn-Sb/graphite electrode has been studied. Hydrogen peroxide was electrically generated by reaction of dissolved oxygen in acidic solutions containing supporting electrolyte and $Fe^{2+}$ was added in aqueous media. Phenol degradation experiments were performed in the presence of electrolyte media at pH 3. Effect of operating parameters such as current, electrolyte type (NaCl, KCl and $Na_2SO_4$) and concentration, $Fe^{2+}$ concentration, air flow rate and phenol concentration were investigated to find the best experimental conditions for achieving overall phenol removal. Results showed that current of 2 A, NaCl electrolyte concentration of 2g/l, 0.5M concentration of $Fe^{2+}$, air flow rate of 1l/min were the best conditions for mineralization of the phenol by electro-Fenton.

일체형 산화철 촉매를 전극으로 하는 전기펜톤산화법 (An Electro-Fenton System Using Magnetite Coated One-body Catalyst as an Electrode)

  • 최윤정;주재백;김상훈
    • 공업화학
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    • 제29권1호
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    • pp.117-121
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    • 2018
  • 하폐수 고도산화처리(AOP, advanced oxidation process) 중 하나인 펜톤산화법과 전기화학적 방법을 결합한 전기펜톤산화법의 cathode에 stainless steel mesh (SUS mesh)를 적용하였다. 난분해성 물질인 염료 methylene blue (MB) 용액에 대해서, SUS mesh의 표면 처리 및 산화철 코팅 여부에 따라 전기펜톤산화 처리의 효율이 어떻게 달라지는지를 비교, 분석하였다. MB분해 반응의 효율 비교를 통해 mesh 표면에 코팅된 산화철의 양이 많을수록 전극의 촉매 특성이 높아짐을 확인하였고, 이는 전극표면에서 in situ로 발생하는 과산화수소의 발생량이 높아지는 것과 연관이 있었다. 전류-전위 순환법(CV)을 통해 개발된 전극의 전기화학적 특성을 평가해 본 결과, mesh 표면에 코팅된 산화철의 양이 많을수록 전기화학적 산화-환원 특성 또한 개선되었고, 이것이 우수한 전기펜톤산화 전극으로서의 성능과 밀접한 관계가 있음을 확인하였다.

SPCE에 HRP 효소가 고정화된 바이오센서의 전기화학적 특성에 관한 연구 (A Study on the Electrochemical Characteristics of Biosensor with HRP Enzyme Immobilized on SPCE)

  • 한경호;이대현;윤도영;최상일
    • 전기화학회지
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    • 제23권3호
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    • pp.73-80
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    • 2020
  • 과산화수소를 이용한 펜톤(Fenton)산화법은 수처리 및 토양 복원분야에서 활용되는 친환경 산화방법이다. 이 방법으로 오염물질을 제거할 때, 오염물의 농도에 따라 과산화수소의 농도를 적절하게 조절하는 것이 상당히 중요하다. 이에 본 연구에서는 HRP (horseradish peroxidase) 효소를 이용한 전기화학적 바이오센서를 제조하고 효소의 활성과 과산화수소의 검출 특성에 대한 연구를 수행하였다. SPCE (Screen Printed Carbon Electrode)의 작업 전극 표면에 키토산과 AuNP를 이용하여 HRP를 전착하였다. 이 후, 전위주사법(CV)과 전기화학적 임피던스 분광법(EIS)을 이용하여 효소의 고정화를 확인하였다. 또한 시간대전류법(CA)과 UV 분광법으로부터 HRP 효소의 활성을 확인하였다. 본 연구에서 제조한 바이오센서를 PBS 전해질에 담그고 과산화수소를 적정하여 CA 분석으로부터 전극에서 발생하는 전류를 측정하였다. 발생 전류는 과산화수소의 농도에 대하여 선형적으로 증가하였으며, 전류로부터 과산화수소의 농도를 예측할 수 있는 검정곡선을 도출하였다.

Recent Advances in Advanced Oxidation Processes

  • Huang, Chin-Pao
    • 한국환경과학회:학술대회논문집
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    • 한국환경과학회 1998년도 가을 학술발표회 프로그램
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    • pp.1-1
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    • 1998
  • Advanced (Chemical) oxidation processes (AOP) differ from most conventional ones in that hydroxyl radical(OH.) is considered to be the primary oxidant. Hydroxyl radicalcan react non-selectively with a great number of organic and inorganic chemicals. The typical rate constants of true hydroxyl radical reactions are in the range of between 109 to 1012 sec-1. Many processes are possible to generate hydroxyl radical. These include physical and chemical methods and their combinations. Physical means involves the use of high energy radiation such as gamma ray, electron beam, and acoustic wave. Under an applied high energy radiation, water molecules can be decomposed to yield hydroxyl radicals or aqueous electrons. Chemical means include the use of conventional oxidants such as hydrogen peroxide and ozone, two of the most efficient oxidants in the presence of promoter or catalyst. Hydrogen peroxide in the presence of a catalyst such as divalent iron ions can readily produce hydroxyl radicals. Ozone in the presence of specific chemical species such as OH- or hydrogen peroxide, can also generate hydroxyl radicals. Finally the combination of chemical and physical means can also yield hydroxyl radicals. Hydrogen peroxide in the presence of acoustic wave or ultra violet beam can generate hydroxyl radicals. The principles for hydroxyl radical generation will be discussed. Recent case studied of AOP for water treatment and other environmental of applications will be presented. These include the treatment of contaminated soils using electro-Fenton, lechate treatment with conventional Ponton, treatment of coal for sulfur removal using sonochemical and the treatment of groundwater with enhanced sonochemical processes.

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사용 후 기저귀 재활용을 위한 폐수처리방안 연구 (Wastewater Treatment Process Study for Used Diaper Recycling)

  • 김경신;이호선
    • 펄프종이기술
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    • 제47권2호
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    • pp.24-33
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    • 2015
  • This study aims to suggest wastewater treatment options for diaper recycling by identifying characteristic analysis of wastewater from diaper recycling process and efficiency evaluation of wastewater treatment units. The wastewater characteristic analysis showed that the concentration of organic pollutants and ionic materials were very high comparing to seawater. Through the investigation of similar wastewater treatment, six treatment units were identified to reduce pollutants. It is found UF(ultra-filtration), DAF(dissolved air flotation), fenton oxidation, electro-coagulation and chemical-coagulation are effective in reducing organic pollutants while membrane system and ion exchanger are effective in reducing ionic materials. Even though the target of water quality should be secured in terms of managing organic pollutants level, the application of treatment unit for reducing ionic material needs lots of considerations. This result suggests that reuse of pulping wastewater after controlling organic pollutants is better than direct discharge of pulping wastewater. To select the appropriate wastewater treatment unit, an economic analysis about operation condition, wastewater flow, cost, efficiency should be considered.