• 제목/요약/키워드: Electrochemical disinfection system

검색결과 4건 처리시간 0.016초

소규모 오수처리를 위한 전기화학적 방법에 의한 대장균 소독에 관한 연구 (A Study on Escherichia Coli Disinfection by the Electrochemical Method for Small Sewerage System)

  • 박영식;정노성;김동석
    • 한국환경과학회지
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    • 제16권4호
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    • pp.441-447
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    • 2007
  • This study was carried out to investigate the effect of electrochemical (EC) disinfection of artificial wastewater contaminated by Escherichia coli culture. Circulated batch type electrochemical disinfection system using three plates electrodes was used. Also, the several factors (pH, ORP, DO, temperature, current, conductivity) were measured in order to investigate the fundamental design factor in the EC disinfection system. It was demonstrated that the EC process was highly effective for wastewater disinfection. At the constant voltage, the disinfection efficiency was increased according to time. The disinfection efficiency and current increased as the increase of voltage. The variation of conductivity was a little related to the variation of CFU (colony forming units). The differences in disinfection efficiency according to the ice pack and the variation of electrodes were not occurred. The EC disinfection efficiency and current increased according to the increase of circulating flow rate.

An aluminum-based reflective nanolens array that enhances the effectiveness of a continuous-flow ultraviolet disinfection system for livestock water

  • Changhoon Chai;Jinhyung Park
    • Journal of Animal Science and Technology
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    • 제65권1호
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    • pp.258-270
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    • 2023
  • Climate change has worsened droughts and floods, and created conditions more likely to lead to pathogen contamination of surface water and groundwater. Thus, there is a growing need to disinfect livestock water. Ultraviolet (UV) irradiation is widely accepted as an appropriate method for disinfecting livestock water, as it does not produce hazardous chemical compounds and kills pathogens. However, UV-based disinfection inevitably consumes electricity, so it is necessary to improve UV disinfection effectiveness. Aluminum-based reflective nanolens arrays that enhanced the effectiveness of a continuous-flow UV water disinfection system were developed using electrochemical and chemical processes, including electropolishing and two-step anodization. A continuous UV disinfection system was custom designed and the parts were produced using a three-dimensional printer. Electropolished aluminum was anodized at 40 and 80 V in 0.3 M oxalic acid, at 120 and 160 V in 1.0 M phosphoric acid, and at 200 and 240 V in 1.5 M citric acid. The average nanolens diameters (D) of the aluminum-based reflective nanolens arrays prepared using 40, 80, 120, 160, 200, and 240 V anodization were 95.44, 160.98, 226.64, 309.90, 296.32, and 339.68 nm, respectively. Simple UV reflection behind irradiated water disinfected Escherichia coli O157:H7 in water more than did the non-reflective control. UV reflection and focusing behind irradiated water using an aluminum-based reflective nanolens array disinfected E. coli O157:H7 more than did simple UV reflection. Such enhancement of the UV disinfection effectiveness was significantly effective when a nanolens array with D 226.64 nm, close to the wavelength of the irradiated UV (254 nm), was used.

해양 플랑크톤 군집의 전기분해 염소소독 효과 (The Electrochemical Chlorination for Marine Plankton Community Disinfection)

  • 강정훈;신경순;현봉길;장민철;김은찬;장만
    • 한국해양환경ㆍ에너지학회지
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    • 제10권3호
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    • pp.127-137
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    • 2007
  • 전기분해 염소소독기로 처리한 결과가 국제해사기구의 협약에서 제시한 생물처리 기준(D-2 regulation)을 만족하는지 확인하기 위해 박테리아, 식물플랑크톤($10-50\;{\mu}m$) 및 동물플랑크톤($>50\;{\mu}m$)의 사멸효과를 확인하였다. 실험조건은 대조구와 잔류염소농도 10 ppm(Expt. 1)과 30 ppm(Expt. 2)을 실험구로 설정하였고, 시험수를 $23.8\;m^3/hr$의 속도로 전기분해염소독기에 통과시켰다. 시험수의 생물조건은 국제해사기구에서 작성된 선박 평형수 관리 장치의 승인을 위한 지침서에서 제시한 기준을 따랐다. 식물플랑크톤의 생사판별은 광학현미경, 형광현미경 및 형광측정기(Turner Designs 10-AU)를 이용하여 확인되었다. 두 농도 조건(10 ppm, 30 ppm)의 처리수에서 운동성이 있는 식물플랑크톤은 움직임이 나타나지 않았고, 형광현미경 하에서 엽록소 형광색이 적색에서 녹색으로 바뀌었으며, 형광값은 고농도(Expt. 1: 6.95, Expt. 2: 7.11)에서 0으로 바뀌었다. 이는 식물플랑크톤의 활성이 상실되어 모두 사멸되었음을 의미한다. 동물플랑크톤의 생사판별은 해부현미경하에서 부속지의 움직임을 토대로 결정되었다. 전기분해 염소소독기 처리 후 해양환경에서 채집되어 농축된 자연군집 동물플랑크톤은 모두 사멸되었으나, 일부 Artemia가 생존하였다. 그러나 각 잔류염소 농도조건의 암소에서 노출시킨 지 24시간 뒤에는 모든 동물플랑크톤이 사멸되었다. 박테리아는 Petrifilm plates($3M^{TM}$)를 이용한 접종배양법으로 처리수의 총 세균, 대장균 군 및 대장균의 사멸효과를 확인한 결과, 균주가 전혀 관찰되지 않았다. 또한 각 염소농도 조건의 처리수에서 추가적으로 노출시킨 5일 동안 세 그룹의 생물에서 재성장이 나타나지 않았다. 본 연구결과는 세 그룹의 생물에 대한 전기분해염소소독기 처리결과가 국제해사기구에서 제정한 선박 평형수 배출기준을 만족시켰음을 보여주었다.

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전기분해 염소소독공정의 반응표면분석법을 이용한 차아염소산나트륨 발생 최적화 (Application of Response Surface Methodology to Optimize the Performance of the Electro-Chlorination Process)

  • 주재현;박찬규
    • 한국환경보건학회지
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    • 제48권3호
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    • pp.167-175
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    • 2022
  • Background: Disinfection is essential to provide drinking water from a water source. The disinfection process mainly consists of the use of chlorine and ozone, but when chlorine is used as a disinfectant, the problem of disinfection by-products arises. In order to resolve the issue of disinfection by-products, electro-chlorination technology that produces chlorine-based disinfectants from salt water through electrochemical principles should be applied. Objectives: This study surveys the possibility of optimally producing active chlorine from synthetic NaCl solutions using an electro-chlorination system through RSM. Methods: Response surface methodology (RSM) has been used for modeling and optimizing a variety of water and wastewater treatment processes. This study surveys the possibility of optimally producing active chlorine from synthetic saline solutions using electrolysis through RSM. Various operating parameters, such as distance of electrodes, sodium chloride concentration, electrical potential, and electrolysis time were evaluated. Results: Various operating parameters, such as distance of electrodes, sodium chloride concentration, electrical potential, and electrolysis time were evaluated. A central composite design (CCD) was applied to determine the optimal experimental factors for chlorine production. Conclusions: The concentration of the synthetic NaCl solution and the distance between electrodes had the greatest influence on the generation of hypochlorite disinfectant. The closer the distance between the electrodes and the higher the concentration of the synthetic NaCl solution, the more hypochlorous acid disinfectant was produced.