• Title/Summary/Keyword: 산화 제이철

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Preparation of Needle-like $\alpha$-Iron Oxide Using a Crystal Growth Controller. (결정 성장 조절제를 이용한 침상형 $\alpha$산화철의 제조)

  • Byeon, Tae-Bong;Son, Jin-Geun
    • Korean Journal of Materials Research
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    • v.6 no.8
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    • pp.768-778
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    • 1996
  • Iron oxide (hematite, $\alpha$-${Fe}_{2}{O}_{3}$) particles were prepared directly from aqueous solution using a crystal growth controller. Paticles properties and reaction mechanisum of products as a function of basicity, formation process and mechanism of needle-lkie hematite were investigated. hexagonal hermatite particles were formed in teh range below pH 9.0, ellipsoidal or rectangular hematite particles in the range of pH 10.75-11.75 respectively. In the range above pH 12.50, acicular $\alpha$-FeOOH was formed. Basicity of product solution produced in the range of pH 10.7511.75 was increased slightly as compared with basicity of reastants due to hydroxly ion(OH-) formed by dissociation crystal growth controller. Citric acid which is acted as a crystal growth controller was adsorbed in the form of itrate anion(R-COO-) on the ferric hydroxide and exerted important role on the formation to the needle-like $\alpha$-${Fe}_{2}{O}_{3}$ particles in this reaction system.

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Properties of Ni-Zn Ferrites to Additives (Ni-Zn 페라이트의 첨가제에 따른 특성)

  • Ahn, M.S.;Park, H.Y.;Han, D.H.;Ahn, Y.W.;Lee, S.K.;Oh, Y.W.
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2004.07a
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    • pp.519-522
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    • 2004
  • 첨가제로 $Bi2O_3$를 첨가하고, 소결 온도를 변화시켜 고주파 내역에서 전자기적 특성이 안정적으로 유지될 수 있는 Ni-Zn 페라이트를 제조하고자 하였다. $Bi2O_3$의 첨가는 액상을 형성하여 소결을 촉진시키며, 0.3 wt% 첨가된 시편에서는 비정상 입자를 성장시켜 높은 전력 손실 특성을 나타내었다. 그러나 $Bi2O_3$의 적정한 첨가는 소결을 촉진시켜 밀도를 증가시키며, 균일한 입자를 형성하여 전력 손실이 감소하였다. Ni-Zn 페라이트에 $Bi2O_3$의 첨가는 공명 주파수 범위의 제어가 가능하며, 소결 촉진 및 밀도의 증가를 가져와 안정적인 재료를 제조할 수 있었다. 투자율의 일정성이 특정 주파수 10MHz 부근에서 급증하면서 급감하는 것은 공명이 생기고, 이러한 현장은 자벽 공명 또는 자벽의 이동에 의해 나타나는 것으로 보여진다.

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Effective Coagulation and Fenton Reagent Oxidation of Effluent from Biological Landfill Leachate Treatment (생물학적 처리 침출수의 응집 및 펜톤산화 처리)

  • Won, Jong-Choul;Namkoong, Wan;Park, Ki-Hyuk;Cho, Joon-Ho;Yoon, Cho-Hee
    • Journal of Korean Society of Environmental Engineers
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    • v.22 no.5
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    • pp.811-817
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    • 2000
  • The objectives of this study are to determine optimal operation condition of chemical coagulation with ferric chloride($FeCl_3$) and fenton reagent oxidation for effluents of a biological denitrification treatment and an existing lagoon treatment of landfill leachate, and to investigate the effect of alkalinity on fenton oxidation. In jar-tester, optimum dosage of ferric chloride for removal of COD was $1,500mgFe^{3+}/L$, removal efficiencies of $COD_{Cr}$ and $COD_{Mn}$ under this condition were about 55% and 64%, respectively. After chemical precipitation($1,500mgFe^{3+}/L$) of biological treatment effluent, optimum $Fe^{2+}/H_2O_2$ ratio of fenton oxidation was 1.5, the maximum removal efficiency of COD was about 80%, and optimum dosages of ferrous sulfate and hydrogen peroxide were $600mgFe^{2+}/L$ and $400mgH_2O_2/L$, respectively. The removal efficiency of COD was decreased as alkalinity was increased.

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Synthesis of Iron Oxide Using Ferrous and Ferric Sulfate (황산제일철과 황산제이철을 이용한 산화철 합성)

  • Eom, Tae-Hyoung;Tuan, Huynh Thanh;Kim, Sam-Joong;Suh, Dong-Soo
    • Korean Journal of Materials Research
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    • v.20 no.6
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    • pp.301-306
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    • 2010
  • The chemical formula of magnetite ($Fe_3O_4$) is $FeO{\cdot}Fe_2O_3$, t magnetite being composed of divalent ferrous ion and trivalent ferric ion. In this study, the influence of the coexistence of ferrous and ferric ion on the formation of iron oxide was investigated. The effect of the co-precipitation parameters (equivalent ratio and reaction temperature) on the formation of iron oxide was investigated using ferric sulfate, ferrous sulfate and ammonia. The equivalent ratio was varied from 0.1 to 3.0 and the reaction temperature was varied from 25 to 75. The concentration of the three starting solutions was 0.01mole. Jarosite was formed when equivalent ratios were 0.1-0.25 and jarosite, goethite, magnetite were formed when equivalent ratios were 0.25-0.6. Single-phase magnetite was formed when the equivalent ratio was above 0.65. The crystallite size and median particle size of the magnetite decreased when the equivalent ratio was increased from 0.65 to 3.0. However, the crystallite size and median particle size of the magnetite increased when the reaction temperature was increased from $25^{\circ}C$ to $75^{\circ}C$. When ferric and ferrous sulfates were used together, the synthetic conditions to get single phase magnetite became simpler than when ferrous sulfate was used alone because of the co-existence of $Fe^{2+}$ and $Fe^{3+}$ in the solution.