• Title/Summary/Keyword: 산화전극조

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Role of Electrode Reaction of Electrolyte in Electrokinetic-Fenton Process for Phenanthrene Removal (동전기-펜턴 공정에서 전해질의 전극반응이 처리효율에 미치는 영향)

  • Park Ji-Yeon;Kim Sang-Joon;Lee You-Jin;Yang Ji-Won
    • Journal of Soil and Groundwater Environment
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    • v.11 no.1
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    • pp.7-13
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    • 2006
  • The effects of electrolytes were investigated on the removal efficiency when several different electrolytes were used to change the electrode reaction in an electrokinetic (EK)-Fenton process to remediate phenanthrene-contaminated soil. Electrical potential gradient decreased initially due to the ion entrance into soil and then increased due to the ion extraction from soil under the electric field. Accumulated electroosmotic flow was $NaCl>KH_2PO_4>MgSO_4$ at the same concentration because the ionic strength of $MgSO_4$ was the highest and $Mg(OH)_2$ formed near the cathode reservoir plugged up soil pore to inhibit water flow. When hydrogen peroxide was contained in electrolyte solution, removal efficiency increased by Fenton reaction. When NaCl was used as an electrolyte compound, chlorine ($Cl_2$) was generated at the anode and dissolved to form hypochlorous acid (HClO), which increased phenanthrene removal. Therefore, the electrode reaction of electrolyte in the anode reservoir as well as its transport into soil should be considered to improve removal efficiency of EK-Fenton process.

Electrokinetic-Fenton Process for Removal of Phenanthrene (동전기-펜턴 공정을 이용한 phenanthrene 오염토양의 정화)

  • 양지원;박지연;김상준;이유진;기대정
    • Journal of Soil and Groundwater Environment
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    • v.9 no.1
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    • pp.47-53
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    • 2004
  • Feasibility of electrokinetic process combined with Fenton-like reaction was investigated for the removal of phenanthrene from contaminated soil. Transport of hydrogen peroxide by electroosmosis and decomposition of phenanthrene by Fenton-like reaction were observed in a model system. Electrical potential gradient and electroosmotic flow (EOF) at 10 mA were higher than those at 5 mA. High accumulated EOF resulted in high removal efficiency of phenanthrene because the large amount of hydrogen peroxide was transfered through the soil. Removal efficiency of phenanthrene by water washing was 8.5% for 7 days. The highest removal efficiency including phenanthrene decomposition was 95.6% for 14 days. After the operation, soil samples with removal efficiency of 95.6% showed low concentrations of phenanthrene and its intermediates. From this result, it was presumed that phenanthrene was decomposed to small molecules or mineralized to water and carbon dioxide due to continuous supply of hydrogen peroxide by electroosmotic flow.

Current Research Trends in Microbial Fuel Cell Based on Polymer Electrolyte Membranes (고분자 전해질 분리막 기반 미생물 연료전지의 최근 연구동향)

  • Choi, Tae-Hwan;Kim, Hyo-Won;Park, Ho-Bum
    • Membrane Journal
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    • v.20 no.3
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    • pp.173-184
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    • 2010
  • Microbial fuel cell (MFC) is a promising renewable energy source that can generate electrical energy from organic wastes using microbe. This technology has been regarded as a future green alternative energy in that MFC makes use of organic-rich wastewater and also reduces waste sludges as well as produces electricity. To be practically realized, however, achieving higher power density than now is demanded, which may be possible by eliminating various negative factors to act as resistances in MFC operations. For instance, highly activated microbes, highly conductive electrode materials, and fast electron transfer between microbes and electrodes can lead to MFC with high power density. In particular, polymer electrolyte membranes are also a key component for improved MFC performance.

The Effect of Fluid Flow on Power Density in a Horizontal-flow Microbial Fuel Cell (수평 흐름형 미생물 연료전지에서 유체의 흐름 형태에 따른 전력수율 평가)

  • Lee, Chae-Young;Park, Su-Hee;Song, Young-Chae;Yoo, Kyu-Seon;Chung, Jae-Woo;Han, Sun-Kee
    • Journal of the Korea Organic Resources Recycling Association
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    • v.21 no.1
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    • pp.39-44
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    • 2013
  • This study evaluated the effect of fluid flow on the power density in a horizontal-flow microbial fuel cell (MFC). The maximum power densities in four types of flow induced by different channel types in the anode chamber were investigated. The fluid flow at each channel was analyzed using tracer tests. Results of polarization curves showed that the maximum power densities of case 1, 2, 3 and 4 were 95.7, 129.1, 190.9 and 114.2 mW/m2, respectively. Case 3 with a set of guide walls where flow had an S type-like shape showed the highest power density. Based on the Morrill Dispersion Index (MDI) value of case 4, microbial activity would be enhanced since the reactor allows even distribution of substrate but the overflow occurrence would not guarantee stable performance. Therefore, case 3 could be an effective reactor type for MFC because of high electricity generation and stable performance.