• 제목/요약/키워드: Electrolysis

검색결과 813건 처리시간 0.021초

Electro-Fenton 반응을 위한 불용성 전극의 과산화수소 생성과 Rhodamine B의 제거 (Hydrogen Peroxide Generation of DSA for Electro-Fenton Reaction and Removal of Rhodamine B)

  • 김동석;박영식
    • 한국환경보건학회지
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    • 제34권2호
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    • pp.175-182
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    • 2008
  • This study investigates the optimal conditions for electrogenerated hydrogen peroxide production and the application of the electro-Fenton process using DSA electrodes. The influences of parameters for the hydrogen peroxide generation such as electrode materials, electrolyte concentration, current, pH, air flow rate and electrode distance were investigated using a laboratory scale batch reactor. The relative performance for hydrogen peroxide generation of each of the six electrodes is : Ru-Sn-Ti > Ru-Sn-Sb > Ru > Ir > Pt > Sn-Sb. Optimum NaCl dosage, current and air flow rate were 2.0 g/l, 12.5 A and 2 l/min, respectively. When the pH is low, hydrogen peroxide concentration was high. Electrode distance dos not effect to a hydrogen peroxide generation. A complete color removal was obtained for RhB (200 mg/l) at the 8 min mark of the electro-Fenton process under optimum operation conditions of $Fe^{2+}$ 0.105 g/l and 5.0 A. The electro-Fenton process increased initial reaction and decreased final reaction time. However the effect was not high.

Evaluate of Electrochemical Characteristics in Electrolyzed Reduced Water

  • Park, Sung-Ho;Yun, Su-Jin;Kim, Jeong-Sik;Shin, Hyun-Su;Park, Soo-Gil
    • Journal of Electrochemical Science and Technology
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    • 제2권2호
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    • pp.85-90
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    • 2011
  • Active oxygen species or free radicals are considered to cause extensive oxidative damage to biological macromolecules, which brings about a variety of diseases as well as aging. Electrolyzed reduced water(ERW) has been regarded as a ideal antioxidative agent in recent years. ERW is produced by passing a diluted salt solution through an electrolytic cell, within which the anode and cathode are separated by membrane. It can be produced reactive materials in ERW near the cathode during the electrolysis of water. ERW have the following advantages over other traditional cleaning agents: effective antioxidative agent, easy preparation, inexpensive, and environmentally friendly. The main advantage of ERW is its safety and antioxidative effect. ERW with strong reducing potential can be used to remove dirt and grease from items such as cutting boards and other kitchen utensils. The primary aim of this study is the activation mechanism of oxidation reduction potentials, ion conductivity, pH, and electrochemical properties with reactive materials in ERW.

LiCl 용융염에서 NiO를 혼합한 희토류 산화물의 파이로 전해환원 특성 (Pyro-Electrochemical Reduction of a Mixture of Rare Earth Oxides and NiO in LiCl molten Salt)

  • 이민우;정상문
    • Korean Chemical Engineering Research
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    • 제55권3호
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    • pp.379-384
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    • 2017
  • LiCl 용융염에서 희토류 산화물의환원율을 높이기 위해 NiO와 혼합하여 전해환원을실시하였다. Cyclic voltammetry (CV) 실험을 통해 LiCl 용융염 내에서 혼합산화물의 전기화학적 환원거동을 조사하였다. 혼합산화물로 제작된 환원전극과 그라파이트 산화전극 사이에 일정한 작동전압을 인가하여 이론전하량 대비 다양한 전하량을 공급한 후 중간생성물의 결정구조를 XRD를 이용하여 분석하였다. NiO 산화물을 첨가함으로써 전기전도성이 좋은 Ni 금속 주위로 희토류 산화물이 환원되어 RE-Ni 합금형태의 금속으로 완전히 전환되었으며, 합금을 형성하는 반응 메커니즘을 제시하였다.

양자교환막을 이용하여 생산된 수소의 불순물 분석 (Hydrogen Impurities Analysis From Proton Exchange Membrane Hydrogen Production)

  • 이택홍;김태완;박태성;최운선;김홍열;이홍기
    • 한국수소및신에너지학회논문집
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    • 제24권4호
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    • pp.288-294
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    • 2013
  • This gas analysis data come from the hydrogen which is produced by proton exchange membrane. Main impurities of hydrogen are methane, oxygen, nitrogen, carbon monoxide, and carbon dioxide. The concentration of impurities is ranged between 0.0191 to $315{\mu}mol/mol$ for each impurity. Methane contamination is believed from the electrode reaction between carbon doped electrode and produced hydrogen. Nitrogen contamination should take place the sampling process error, not from PEM hydrogen Production system.

촉매성 산화물 전극을 이용한 페놀의 전기화학적 분해 (Electrochemical Degradation of Phenol Using Dimensionally Stable Anode)

  • 김동석;박영식
    • 한국환경과학회지
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    • 제22권8호
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    • pp.999-1007
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    • 2013
  • Electrochemical degradation of phenol was evaluated at DSA (dimensionally stable anode), JP202 (Ru, 25%; Ir, 25%; other, 50%) electrode for being a treatment method in non-biodegradable organic compounds such as phenol. Experiments were conducted to examine the effects of applied current (1.0~4.0 A), electrolyte type (NaCl, KCl, $Na_2SO_4$, $H_2SO_4$) and concentration (0.5~3.0 g/L), initial phenol concentration (12.5~100.0 mg/L) on phenol degradation and $UV_{254}$ absorbance as indirect indicator of by-product degraded phenol. It was found that phenol concentration decreased from around 50 mg/L to zero after 10 min of electrolysis with 2.5 g/L NaCl as supporting electrolyte at the current of 3.5 A. Although phenol could be completely electrochemical degraded by JP202 anode, the degradation of phenol COD was required oxidation time over 60 min due to the generation of by-products. $UV_{254}$ absorbance can see the impact of as an indirect indicator of the creation and destruction of by-product. The initial removal rate of phenol is 5.63 times faster than the initial COD removal rate.

전기분해 해수의 활어패류 살균 효과 (Germicidal Effect of Electrolyzed Seawater on Live Fish and Shellfish)

  • 이희정;유홍식;오은경;신순범;박큰바위;김지회
    • 한국수산과학회지
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    • 제46권5호
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    • pp.534-539
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    • 2013
  • To secure the biological safety of live fish and shellfish for raw consumption, the germicidal effects of electrolyzed seawater were evaluated. Upon direct exposure to electrolyzed seawater, coliform group bacteria were killed and decreased to undetectable levels after 1 day. The physicochemical characteristics of the seawater were stable during the test period. A byproduct of chlorine disinfection, trihalomethane, was not generated by the electrolysis of seawater. Vibrio parahaemolyticus infection in a live fish was effectively resolved by electrolyzed seawater and became undetectable after 12-36 h of treatment. Bioaccumulation of coliform group and fecal coliform bacteria in live oysters Crassostrea gigas was removed within 18 h of treatment. This study demonstrated that electrolyzed seawater is an effective and safe germicidal agent for the traditional retail market and can help to prevent outbreaks of foodborne disease associated with the consumption of raw fish and shellfish.

6,6-Dibromopenicillanic acid 1,1-Dioxide 분자내 탄소 6-위치 브롬기의 전극촉매 수소화반응과 전극반응기구 (Electro-Catalytic Hydrogenation and the Electrode Reaction Mechanism of the Carbon-6-Bromo groups of 6,6-Dibromopenicillanic acid 1,1-Dioxide)

  • 김일광;이영행;이채호
    • 대한화학회지
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    • 제35권2호
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    • pp.165-171
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    • 1991
  • 6,6-dibromopenicillanic acid 1,1-oxide(DBPA)의 6위치 dibromo기의 전기화학적 환원을 direct current, differential pulse polarography, cyclic voltammetry, 조절전위 전기량법으로 연구하였다. DBPA 환원과정은 2단계-0.48, -1.62 volts)에서 모두 완전비가역으로 2전자씩 이동하는 EC, EC 반응기구로 진행하였다. 조절전위 전기분해를 이용하여 6-bromo-PA와 6,6-dihydro-PA를 단계적으로 합성하였으며, pH 변화에 다른 폴라로그램의 해석과 생성물 분석의 결과를 바탕으로 전기화학적 반응기구도 제안하였다.

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미래 수소 에너지 공급 산업에서 암모니아의 활용성 (Potential Applicabilities of Ammonia in Future Hydrogen Energy Supply Industries)

  • 이수영;이혜진
    • 공업화학
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    • 제30권6호
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    • pp.667-672
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    • 2019
  • 비재생 에너지원인 화석 연료의 환경 문제들이 발생하면서 국제 사회는 탈탄소화 사회를 지향하고 있으며 이를 위해 Power 2 Gas (P2G) 시스템의 실증화를 목표로 많은 연구들이 진행 중이다. 그 중 암모니아는 수소 캐리어의 역할, 수소 생산 공급체의 역할, 직접적인 사용 등의 많은 이점들이 있다. 본 총설에서는 암모니아의 특성과 해외 동향의 움직임을 분석하여 암모니아의 수소 에너지 공급 산업에서의 잠재력에 대해 기술하고자 한다.

중수도 시스템 운전을 위한 전기분해장치의 설계 (Design of Electrolysis Reactor for the Reclamation System)

  • 신춘환;배정석
    • 한국환경과학회:학술대회논문집
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    • 한국환경과학회 2006년도 추계 학술발표회 발표논문집
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    • pp.323-327
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    • 2006
  • 전류밀도를 $1.0\;A/dm^2{\ell}$로 고정시키고, 촉매로 사용된 소금의 농도를 전체 폐수량의 약 15%로 조절하여 접촉시간을 $0\;{\sim}\;120$ 분으로 조절하여 각각의 시간에서 $COD_{Mn}$ 농도 약 70mg/L의 합성폐수를 전기분해 처리하여 접촉시간 약 30분에서 약 25 mg/L로 제거 되었으며, 60분이 지난 후부터 약 12 mg/L로 제거되는 것을 확인 할 수 있었다. 접촉시간을 1 시간으로 고정시키고, 촉매로 사용된 소금의 농도를 전체 폐수량의 약 15%로 조절하여 전류밀도를 $0\;{\sim}\;2.0\;A/dm^2{\ell}$로 조절하여 각각의 전류밀도에서 $COD_{Mn}$의 농도변화 실험결과 전류밀도 약 1.0 $A/dm^2{\ell}$에서 약 9 mg/L로 제거가 가능한 것으로 조사 되었다. 접촉시간을 1 시간, 전류밀도를 $1.0A/dm^2{\ell}$로 고정시키고 사용된 소금의 농도를 전체 폐수량의 $0\;{\sim}\;30\;%$로 조절하여 각각의 촉매 첨가율에서 $COD_{Mn}$의 농도변화를 조사결과 촉매 첨가율 30 %에서 가장 높은 처리효율을 나타내었으며, 촉매의 첨가에 의한 전기분해 효율뿐만이 아니라 직류전원공급기에 전기적 부하 또한 감소되는 것을 확인 할 수 있었다.

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분리형 재생 연료전지를 위한 수전해 MEA 및 시스템 개발 (Development of PEMWE MEA & System for Discrete Regenerative Fuel Cell)

  • 최낙헌;윤대진;한창현;이준영;송민아;정혜영;최윤기;문상봉
    • 한국수소및신에너지학회논문집
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    • 제27권4호
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    • pp.335-340
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    • 2016
  • Hydrogen production through proton exchange membrane water electrolysis (PEMWE) is expeditiously receiving international attention for renewable energy sources as well as energy storage system applications due to its environmentally friendly uses. A series of $Ir_{0.2}Ru_{0.8}O_2$ $Ir_{0.5}Ru_{0.8}O_2$ & $IrO_2$ catalysts were synthesized and electrochemically evaluated by using linear sweep voltammetry (LSV) technique. Furthermore, the PEMWE performances of full cells were evaluated by recording I-V Curves. The developed PEMWE stack was also operated in combination with a proton exchange membrane fuel cell (PEMFC) to demonstrate the discrete regenerative fuel cell (DRFC) performances. Produced hydrogen and oxygen from PEMWE were used as a fuel to operate PEMFC to establish a DRFC system.