• 제목/요약/키워드: manganese oxides

검색결과 118건 처리시간 0.034초

Oxidation of Fe-(5.3-29.8)%Mn-(1.1-1.9)%Al-0.45%C Alloys at 550-650 ℃

  • Park, Soon Yong;Xiao, Xiao;Kim, Min Ji;Lee, Geun Taek;Hwang, Dae Ho;Woo, Young Ho;Lee, Dong Bok
    • Corrosion Science and Technology
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    • 제21권1호
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    • pp.53-61
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    • 2022
  • Alloys of Fe-(5.3-29.8)%Mn-(1.1-1.9)%Al-(0.4-0.5)%C were oxidized at 550 ℃ to 650 ℃ for 20 h to understand effects of alloying elements on oxidation. Their oxidation resistance increased with increasing Mn level to a small extent. Their oxidation kinetics changed from parabolic to linear when Mn content was decreased and temperature was increasing. Oxide scales primarily consisted of Fe2O3, Mn2O3, and MnFe2O4 without any protective Al-bearing oxides. During oxidation, Fe, Mn, and a lesser amount of Al diffused outward, while oxygen diffused inward to form internal oxides. Both oxide scales and internal oxides consisted of Fe, Mn, and a small amount of Al. The oxidation of Mn and carbon transformed γ-matrix to α-matrix in the subscale. The oxidation led to the formation of relatively thick oxide scales due to inherently inferior oxidation resistance of alloys and the formation of voids and cracks due to evaporation of manganese, decarburization, and outward diffusion of cations across oxides.

전산 고체물리를 이용한 바이오 산화망간 광물의 금속흡착과 광화학 반응도의 이해 (Reactivity of Biogenic Manganese Oxide for Metal Sequestration and Photochemistry: Computational Solid State Physics Study)

  • 권기덕
    • 한국광물학회지
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    • 제23권2호
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    • pp.161-170
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    • 2010
  • 많은 미생물들이 수용성 망간이온($Mn^{2+}$)을 불용성인 산화망간($Mn^{4+}$) 광물로 산화 침전시키는데, 이와 같은 생물학적 산화반응은 비생물학적 산화반응보다 훨씬 빠르게 일어난다. 이처럼 미생물에 의해 생성된 바이오 산화망간 광물은 표면의 강한 흡착성과 산화환원 반응을 통해 생지구화학 순환과 환경오염물질의 생물흡수도에 큰 역할을 한다. 본 논평은 양자역학의 밀도범함수 이론에 바탕을 둔 전산모사를 이용하여 산화망간 광물 표면의 독성금속 흡착의 자세한 기작과 망간원자 빈자리의 광화학적 역할을 새롭게 밝힌 최근 연구결과를 소개한다.

Fe-25Mn-1.5Al-0.5C강의 고온 산화 거동과 표면 결함 (High Temperature Oxidation Behavior and Surface Defect in Fe-25Mn-1.5Al-0.5C Steel)

  • 박신화;홍순택;김태웅;정인상
    • 열처리공학회지
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    • 제13권3호
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    • pp.158-162
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    • 2000
  • The high temperature oxidation behavior and the surface defect in Fe-25Mn-1.5A1-0.5C steel was investigated by XRD (X-ray Diffractin) and electron microscopy. The intra- and inter-granular oxides were formed by the selective oxidation of manganese and aluminum, which were identified to MnAl2O4 phase. Aluminum nitride (AlN) was formed in front of these oxides. The ${\gamma}$-matrix was transformed to ${\alpha}$- and ${\varepsilon}$- phases by the selective oxidation of manganese. The surface defect, micro-scab was induced by the difference of the high temperature ductility between the matrix and the inter-granular oxide.

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Synthesis of Ordered Mesoporous Manganese Oxides by Double Replication for Use as an Electrode Material

  • Guo, Xiao-Feng;Kim, Geon-Joong
    • Bulletin of the Korean Chemical Society
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    • 제32권1호
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    • pp.186-190
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    • 2011
  • Periodically ordered mesoporous manganese oxides were synthesized in a single and double replication procedure. Mesoporous SBA-15 and -16 silica and their reverse replica carbons were successively used as hard templates. The silica and carbon pore systems were infiltrated with $Mn(NO_3)_2{\cdot}xH_2O$ or $Mn(AcAc)_2$, which was then converted to $Mn_2O_3$ at 873 K; the silica and carbon matrix were finally removed by NaOH solution or calcinations in air. The structure of the mesoporous $Mn_2O_3$, using a carbon template, corresponds to that of the original SBA-15 and SBA-16 silica. The products consist of hexagonally arranged cylindrical mesopores with crystalline pore walls or cubic mesoporous pores. The structure of replica has been confirmed by XRD, TEM analysis, and its electrochemical properties were tested with cyclic voltammetry. Formation of $Mn_2O_3$ inside the mesoporous carbon pore system showed much improved electrical properties.

층상구조 망간산화물에서의 구조적 안정도와 결정성과의 관계 (Relationship between Structural Stability and Crystallinity in Layered Manganese Oxide)

  • 황성주
    • 대한화학회지
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    • 제48권1호
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    • pp.46-52
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    • 2004
  • 층상구조를 갖는 망간산화물에서 결정성과 구조적 안정도 간의 관계에 대해 조사하였다. 좋은 결정성을 갖는 망간산화물은 고상합성법-이온교환법을 이용하여 합성하였으며, 나노결정 망간산화물은 실온에서의 Chimie-Douce 반응을 통해 얻어졌다. 마이크로 라만 분광과 X선 흡수분광 결과는 결정성에 상관없이 이들 화합물에 존재하는 망간이온이 공통적으로 층상구조의 팔면체 자리에 안정화되어 있음을 보여준다. 미분전하용량 분석 결과는 나노결정 화합물의 층상구조가 전기화학적 충방전 과정 동안 안정하다는 사실을 보여주며, 이와는 대조적으로 좋은 결정성을 갖는 층상구조 화합물의 경우 현저한 구조변화를 겪는다는 사실을 보여준다. 마이크로 라만 분광 결과는 이러한 구조전이가 층상 구조로부터 스핀넬 타입 구조로의 변화에 해당함을 보여준다. 위 실험 결과로부터 나노결정성이 층상구조의 안정도를 향상시킨다는 결론을 얻을 수 있었다.

분천광산(汾川鑛山)의 망간광석(鑛石)에 대(對)한 광물학적(鑛物學的) 및 성인적(成因的) 연구(硏究) (Mineralogy and Genesis of Manganese Ores from the Buncheon Mine, Korea)

  • 김수진;손병국
    • 자원환경지질
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    • 제17권4호
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    • pp.273-282
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    • 1984
  • 분천 광산의 망간 광상은 선캠브리아기 율리통의 변성암류의 엽상 구조를 횡단하는 $N20^{\circ}E$ 방향의 단층면을 따라 열수 용액이 충진하여 형성된 열수 기원의 규산 망간 광석과 이의 표성 산화작용에 의하여 생성된 산화 망간 광석으로 구성되어 있다. 규산 망간 광석은 주로 파이록스만자이트로 구성되어 있으며 소량의 능망간석, 석영, 녹니석 및 황화황물(황철석, 황동석, 섬아연석, 방연석, 알라반다이트, 자류철석)등이 포함되어 있다. 산화 망간 광석은 엔소타이트, 버네사이트, 토도로카이트, 망가나이트 등으로 구성되어 있다. 파이록스만자이트와 능망간석의 산화과정 및 광물생성 순서는 다음과 같다. 능망간석$_{\rightarrow}^o$토도로카이트$_{\searro}^o$파이록스만자이트$_{\line(10){90}}^o{\nearro}$버네사이트$_{\rightarrow}^o$엔소타이트$_{\rightarrow}^s$ 망간나이트 (o : 산화, s : 단순한 순서) 광석을 구성하고 있는 광물들은 광학적, X선적, 적외선 흡수분광학적, 열분석에 의하여 감정 연구되었다.

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강변여과수 처리를 위한 포기-모래여과공정에서 망간제거 기작에 관한 연구 (The study of manganese removal mechanism in aeration-sand filtration process for treating bank filtered water)

  • 최승철;김세환;양해진;임재림;왕창근;정관수
    • 상하수도학회지
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    • 제24권3호
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    • pp.341-349
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    • 2010
  • It is well known that manganese is hard to oxidize under neutral pH condition in the atmosphere while iron can be easily oxidized to insoluble iron oxide. The purpose of this study is to identify removal mechanism of manganese in the D water treatment plant where is treating bank filtered water in aeration and rapid sand filtration. Average concentration of iron and manganese in bank filtered water were 5.9 mg/L and 3.6 mg/L in 2008, respectively. However, their concentration in rapid sand filtrate were only 0.11 mg/L and 0.03 mg/L, respectively. Most of the sand was coated with black colored manganese oxide except surface layer. According to EDX analysis of sand which was collected in different depth of sand filter, the content of i ron in the upper part sand was relatively higher than that in the lower part. while manganese content increased with a depth. The presence of iron and manganese oxidizing bacteria have been identified in sand of rapid sand filtration. It is supposed that these bacteria contributed some to remove iron and manganese in rapid sand filter. In conclusion, manganese has been simultaneously removed by physicochemical reaction and biological reaction. However, it is considered that the former reaction is dominant than the latter. That is, Mn(II) ion is rapidly adsorbed on ${\gamma}$-FeOOH which is intermediate iron oxidant and then adsorbed Mn(II) ion is oxidized to insoluble manganese oxide. In addition, manganese oxidation is accelerated by autocatalytic reaction of manganese oxide. The iron and manganese oxides deposited on the surface of the sand and then are aged with coating sand surface.

Manganese treatment to reduce black water occurrence in the water supply

  • Kim, Jinkeun
    • Environmental Engineering Research
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    • 제20권3호
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    • pp.230-236
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    • 2015
  • 26 multi-regional water treatment plants (WTPs) were investigated, to determine the characteristics of manganese (Mn) concentration and removal in Korea. Mn concentrations of raw water in most WTPs were higher than the drinking water standard (i.e., 0.05 mg/L); thus, proper removal of Mn at the WTPs is needed. Mn concentration was generally higher in lakes than rivers due to seasonal lake turnovers. The Mn concentrations of treated water at 26 WTPs in 2012 were less than 0.05 mg/L, due to strict law enforcement and water treatment processes optimization. However, before 2010, those concentrations were more than 0.05 mg/L, which could have led to an accumulation of Mn oxides in the distribution system. This could be one of the main reasons for black water occurrence. Therefore, regular monitoring of Mn concentration in the distribution system, flushing, and proper Mn removal at WTPs are needed, to supply clean and palatable tap water.