• 제목/요약/키워드: Tertiary Treatment Processes

검색결과 16건 처리시간 0.02초

고정생물막을 이용한 기존 하수처리장의 생물학적 영양염 제커 신공정개발 (Development of New BNR Process Using Fixed-Biofilm to Retrofit the Existing Sewage Treatment Plant)

  • 김미화;이지형;전양근;박태주
    • 대한환경공학회지
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    • 제22권6호
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    • pp.1093-1101
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    • 2000
  • 본연구의 목적은 국내의 기존 하 폐수처리장에 생물막을 적용하여 BNR공정으로 전환 및 개조하거나 생물막 공법을 적용한 BNR공정을 3차 처리로 적용할 수 있는 새로운 공정을 개발하는 데 있다. 우리 나라 하수의 $SCOD_{cr}/T-N(NH_4{^+}-N+NOx-N) $ 비는 다른 나라에 비하여 상대적으로 낮기 때문에 완전한 탈질화를 얻기 위해서는 외부탄소원을 반드시 공급해야만 한다. 본 연구에서의 $SCOD_{cr}/NH_4{^+}-N$비는 2.49이었으며, 실험기간 동안 유입수 $NH_4{^+}-N$농도는 25에서 37 mg/L로 변화되었다. 하수처리시 질소제거능을 향상시키기 위하여 R-1(무산소/중간침전조/호기성/무산소/호기성)과 R-2(호기성/중간침전조/무산소/무산소/호기성)의 생물막을 이용하는 두 공정을 적용하였다. 외부탄소원을 투여하지 않은 조건에서 $NH_4{^+}-N$와 T-N의 유출수질과 제거효율은 R-1공정이 R-2공정에 비하여 하수로부터 질소제거에 보다 적절한 것으로 평가되었다. 무산소 반응조의 $SCOD_{cr}/NOx-N$비와 T-N제거효율을 고려하였을 때, R-1공정이 원하수내 유기물질의 분배에 있어서 더 효과적인 것으로 사료되었다. R-1 공정과 R-2공정에서 1 g의 $NH_4{^+}-N$를 제거하는데 요구되는 알칼리도는 R-1과 R-2 각각 5.18과 5.76(g $CaCO_3/g$ removed $NH_4{^+}-N$)이었으며, 이는 활성슬러지 BNR공정에 비하여 낮았다.

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중압 자외선과 과산화수소 공정을 이용한 하수 3차 처리수중 총유기탄소와 미량오염물질 제거 (Removal of Total Organic Carbon and Micropollutants in Tertiary Treated Sewage by Medium Pressure UV/H2O2)

  • 이재엽;김일호
    • 한국물환경학회지
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    • 제36권4호
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    • pp.314-321
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    • 2020
  • This study evaluated the applicability of UV-AOP process using medium-pressure UV lamp and H2O2 to remove TOC and emerging micropollutants in the effluent from a sewage treatment plant. The UV lamp with higher output(1.6~8.0 kW) showed slightly higher amount of power in removing TOC of 1 mg/L(0.09 kWh/mg/L~0.11 kWh/mg/L), however it was found that there was no significant difference for each cases. In addition, under the condition that the H2O2 concentration is sufficient, as the power consumption of the UV lamp increases, the unit TOC removal concentration per unit H2O2 decomposition concentration also increases, resulting in effective removal of TOC. The removal rate of 7 new trace contaminants, such as antibiotics by the UV-AOP tested, was at least 89.4%, and the ability to remove the emerging micro pollutants in the process was very effective. But, it was judged that it could not be excluded that the probablity of transforming to oxidated by-product in the case of a low TOC removal efficiency. Depending on the operating conditions of the UV and H2O2 processes, a higher BOD concentration is found in the treated water than in the influent, and it is necessary to review the UV power and proper injection conditions of H2O2 to maintain the BOD concentration increase below a certain level.

Daily Functioning in Chronic Pain: Study of Structural Relations with Posttraumatic Stress Disorder Symptoms, Pain Intensity, and Pain Avoidance

  • Cho, Sung-Kun;Heiby, Elaine M.;McCracken, Lance M.;Moon, Dong-Eon;Lee, Jang-Han
    • The Korean Journal of Pain
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    • 제24권1호
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    • pp.13-21
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    • 2011
  • Background: This study aimed to evaluate processes from the mutual maintenance model in relation to daily functioning in patients with both chronic pain and a history of a traumatic experience. The mechanism illustrated the structural relations for daily functioning among pain intensity, hyperarousal, re-experiencing, trauma avoidance, and pain avoidance. Methods: Archival data (N = 214) was used for this study and data were analyzed for 142 chronic pain patients reporting a traumatic experience and seeking treatment at a tertiary pain clinic in Korea. Results: The results indicated that pain intensity, hyperarousal, and pain avoidance had significant direct effects on daily functioning. Also, pain intensity showed significant indirect effects on daily functioning through hyperarousal and pain avoidance; and hyperarousal through pain avoidance. Conclusions: Results suggest a direct contribution of high levels of pain, hyperarousal symptoms of PTSD, and pain avoidance behaviors to reduced daily functioning. Also, elevated pain as reminders of the trauma may trigger high levels of hyperarousal symptoms of PTSD. Subsequently, avoidant coping strategies may be used to minimize pain so that the trauma would not be re-experienced, thus inhibiting the activation of hyperarousal symptoms of PTSD. However, prolonged use of such strategies may contribute to decline in daily functioning.

사과원토양(園土壤)의 광물학적특성(鑛物學的特性)에 관(關)한 연구(硏究) (Studies on the Mineralogical Characteristics of Apple Orchard Soils)

  • 이만정
    • 한국토양비료학회지
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    • 제6권3호
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    • pp.141-152
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    • 1973
  • 화강암(花崗岩), 화강섬록암(花崗閃綠岩), 섬록암(閃綠岩), Arkose 질사암(質砂岩), 및 Tertiary 혈암(頁岩)등에 유래(由來)된 사과과수원(果樹園) 11개처(個處)의 하층토(下層土)에 대(對)해서 광물(鑛物)의 풍화과정(風化過程)과 토양생성작용(土壤生成作用) 및 광물조성(鑛物組成)과의 관계(關係)를 밝히기 위(爲)하여 일(一), 이차광물(二次鑛物)에 대(對)한 광물학적(鑛物學的) 연구(硏究)를 시도(試圖)한 결과(結果)는 다음과 같다. 1. 일차광물(一次鑛物)로서 Quartz, Changed-feldspar, Plagioclase, Alkali-feldspar 등은 거의 모든 시료(試料)에 존재(存在)하였고, 또 시료(試料)에 따라 Hornblende, Biotite, Muscovite 및 Plant opal를 가진 것도 있었으며, 그 밖에 양(量)은 적으나마 Pyroxene group, Tourmaline, Epidote, Cyanite, Magnetite, Volcanic glass 및 Zircon 등도 찾아 볼 수 있었다. 토양(土壤)의 광물학적조성(鑛物學的組成)은 모재(母材)의 특성(特性)을 어느정도(程度) 반영(反映)하고 있어서, 주(主)로 Granite, Granodiorite, Diorite, Arkose 또는 그들의 풍화생성물(風化生成物)이 서로 혼입(混入)된 것에 유래(由來)된 것으로 추정(推定)할 수 있었다. 2. 점토광물조성(粘土鑛物組成)은 팽창형(膨脹型) 또는 비팽창형(非膨脹型) ${\AA}14$광물(鑛物), Illite 및 Kaolin 광물(鑛物)이 주성분(主成分)으로 되고, 시료(試料)에 따라서는 Chlorite, Christobalite, Gibbsite와 일차광물(一次鑛物)인 Quartz 및 Feldspar를 가지고 있었으나 양적(量的)으로는 모재(母材)에 따라 차(差)가 있었다. 3. 비팽창형(非膨脹型) $14{\AA}$광물(鑛物)로는 2, 8면체(面體) Vermiculite가 주(主)이고, 그 층격자간(層格子間)에 Gibbsite 모양의 수산화(水酸化) Aluminium 층(層)을 끼워 있는 것으로 추정(推定)된다. 4. Arkose 또는 Tertiary 혈암계암석(頁岩系岩石) 풍화생성물(風化生成物)에 유래(由來)된 것은 Montmorillonite가 주성분(主成分)이 였다. 그러나 Arkose만으로 된 것은 Kaolin 광물(鑛物)과 Vermiculite가 주(主)이고, 또 산성암풍화생성물(酸性岩風化生成物)이 주(主)로 된 곳은 Kaolin 광물(鑛物)을 주성분(主成分)으로 하는 것과, Kaolin 광물(鑛物) 및 Vermiculite를 주성분(主成分)으로 하는 두 Group로 크게 나눌 수 있었다.

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하수처리장 내 나노 TiO2 입자 제거효율 예측을 위한 물질흐름모델 개발 (Development of A Material Flow Model for Predicting Nano-TiO2 Particles Removal Efficiency in a WWTP)

  • 반민정;이동훈;신상욱;이병태;황유식;김극태;강주현
    • 한국습지학회지
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    • 제24권4호
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    • pp.345-353
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    • 2022
  • 산업과 생활환경에서 사용된 공학적 미세입자는 결국 하수처리장을 거쳐 수계로 배출되므로 미세입자의 수계 배출 제어에 매우 중요한 역할을 담당하고 있다. 그러나 다수 연구에서 하수처리장 유출수 내 미세입자의 농도가 무영향관찰농도(No Observed Effective Concentration, NOEC)를 빈번히 초과하고 있는 것으로 보고되고 있어 전통적인 하수처리 기능과 더불어 미세입자를 보다 효과적으로 제어할 수 있도록 하수처리장의 설계와 운영을 최적화시킬 필요가 있다. 이를 위해서는 하수처리장 내 단위공정별 특성 및 운전조건에 따른 미세입자의 거동특성과 제거효율에 대한 예측이 선행되어야 한다. 이에 본 연구에서는 하수처리장 내 각 공정 특성별 및 주요 운전조건의 영향에 따른 미세입자 제거효율예측을 위한 모델을 개발함으로써 하수처리장에서 미세입자를 보다 효율적으로 제어하기 위한 도구를 제공하고자 하였다. 개발 모델에서는 수처리 계통에서의 4개 단위공정(1차침전지, 생물반응조, 2차침전지, 및 총인처리시설)을 고려하고, 슬러지처리 계통은 농축, 소화, 탈수 공정 등의 다중 공정을 통합한 단일 공정으로 모의한다. 모의 대상 미세입자는 TiO2 (nano-TiO2)로서, 수중에서의 용해와 변환은 미미하므로 부유성 고형물과의 부착 기작만을 고려하였다. 부유성고형물에의 nano-TiO2 부착 기작은 고-액상 간 평형가정에 기반한 겉보기분배계수(Kd)를 매개변수로 반영하였으며 정상상태에서의 미세입자의 농도 및 부하를 공정별로 계산할 수 있도록 하였다. 아울러 개발 모델 구동의 편의를 위하여 MS 엑셀기반 사용자 인터페이스를 제작하였다. 개발 모델을 이용하여 주요 운전인자인 고형물체류시간(Solid Retention Time, SRT)이 nano-TiO2 제거효율에 미치는 영향을 파악하였다.

Manganese and Iron Interaction: a Mechanism of Manganese-Induced Parkinsonism

  • Zheng, Wei
    • 한국환경성돌연변이발암원학회:학술대회논문집
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    • 한국환경성돌연변이발암원학회 2003년도 추계학술대회
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    • pp.34-63
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    • 2003
  • Occupational and environmental exposure to manganese continue to represent a realistic public health problem in both developed and developing countries. Increased utility of MMT as a replacement for lead in gasoline creates a new source of environmental exposure to manganese. It is, therefore, imperative that further attention be directed at molecular neurotoxicology of manganese. A Need for a more complete understanding of manganese functions both in health and disease, and for a better defined role of manganese in iron metabolism is well substantiated. The in-depth studies in this area should provide novel information on the potential public health risk associated with manganese exposure. It will also explore novel mechanism(s) of manganese-induced neurotoxicity from the angle of Mn-Fe interaction at both systemic and cellular levels. More importantly, the result of these studies will offer clues to the etiology of IPD and its associated abnormal iron and energy metabolism. To achieve these goals, however, a number of outstanding questions remain to be resolved. First, one must understand what species of manganese in the biological matrices plays critical role in the induction of neurotoxicity, Mn(II) or Mn(III)? In our own studies with aconitase, Cpx-I, and Cpx-II, manganese was added to the buffers as the divalent salt, i.e., $MnCl_2$. While it is quite reasonable to suggest that the effect on aconitase and/or Cpx-I activites was associated with the divalent species of manganese, the experimental design does not preclude the possibility that a manganese species of higher oxidation state, such as Mn(III), is required for the induction of these effects. The ionic radius of Mn(III) is 65 ppm, which is similar to the ionic size to Fe(III) (65 ppm at the high spin state) in aconitase (Nieboer and Fletcher, 1996; Sneed et al., 1953). Thus it is plausible that the higher oxidation state of manganese optimally fits into the geometric space of aconitase, serving as the active species in this enzymatic reaction. In the current literature, most of the studies on manganese toxicity have used Mn(II) as $MnCl_2$ rather than Mn(III). The obvious advantage of Mn(II) is its good water solubility, which allows effortless preparation in either in vivo or in vitro investigation, whereas almost all of the Mn(III) salt products on the comparison between two valent manganese species nearly infeasible. Thus a more intimate collaboration with physiochemists to develop a better way to study Mn(III) species in biological matrices is pressingly needed. Second, In spite of the special affinity of manganese for mitochondria and its similar chemical properties to iron, there is a sound reason to postulate that manganese may act as an iron surrogate in certain iron-requiring enzymes. It is, therefore, imperative to design the physiochemical studies to determine whether manganese can indeed exchange with iron in proteins, and to understand how manganese interacts with tertiary structure of proteins. The studies on binding properties (such as affinity constant, dissociation parameter, etc.) of manganese and iron to key enzymes associated with iron and energy regulation would add additional information to our knowledge of Mn-Fe neurotoxicity. Third, manganese exposure, either in vivo or in vitro, promotes cellular overload of iron. It is still unclear, however, how exactly manganese interacts with cellular iron regulatory processes and what is the mechanism underlying this cellular iron overload. As discussed above, the binding of IRP-I to TfR mRNA leads to the expression of TfR, thereby increasing cellular iron uptake. The sequence encoding TfR mRNA, in particular IRE fragments, has been well-documented in literature. It is therefore possible to use molecular technique to elaborate whether manganese cytotoxicity influences the mRNA expression of iron regulatory proteins and how manganese exposure alters the binding activity of IPRs to TfR mRNA. Finally, the current manganese investigation has largely focused on the issues ranging from disposition/toxicity study to the characterization of clinical symptoms. Much less has been done regarding the risk assessment of environmenta/occupational exposure. One of the unsolved, pressing puzzles is the lack of reliable biomarker(s) for manganese-induced neurologic lesions in long-term, low-level exposure situation. Lack of such a diagnostic means renders it impossible to assess the human health risk and long-term social impact associated with potentially elevated manganese in environment. The biochemical interaction between manganese and iron, particularly the ensuing subtle changes of certain relevant proteins, provides the opportunity to identify and develop such a specific biomarker for manganese-induced neuronal damage. By learning the molecular mechanism of cytotoxicity, one will be able to find a better way for prediction and treatment of manganese-initiated neurodegenerative diseases.

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