• 제목/요약/키워드: Fe nanopowder

검색결과 55건 처리시간 0.048초

Evaluation of Iron Nickel Oxide Nanopowder as Corrosion Inhibitor: Effect of Metallic Cations on Carbon Steel in Aqueous NaCl

  • Chaudhry, A.U.;Mittal, Vikas;Mishra, Brajendra
    • Corrosion Science and Technology
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    • 제15권1호
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    • pp.13-17
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    • 2016
  • The aim of this study was to evaluate the use of iron-nickel oxide ($Fe_2O_3$.NiO) nanopowder (FeNi) as an anti-corrosion pigment for a different application. The corrosion protection ability and the mechanism involved was determined using aqueous solution of FeNi prepared in a corrosive solution containing 3.5 wt.% NaCl. Anti-corrosion abilities of aqueous solution were determined using electrochemical impedance spectroscopy (EIS) on line pipe steel (API 5L X-80). The protection mechanism involved the adsorption of metallic cations on the steel surface forming a protective film. Analysis of EIS spectra revealed that corrosion inhibition occurred at low concentration, whereas higher concentration of aqueous solution produced induction behavior.

Densification Behavior and Microstructural Development of Nano-agglomerate Powder during Singering

  • Kang, Yun-Sung;Cha, Berm-Ha;Kang, Hyun-Goo;Lee, Jai-Sung
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2006년도 Extended Abstracts of 2006 POWDER METALLURGY World Congress Part 1
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    • pp.282-283
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    • 2006
  • Densification behavior of nano-agglomerate powder during pressureless sintering of Fe-Ni nanopowder was investigated in terms of diffusion kinetics and microstructural development. To understand the role of agglomerate boundary for sintering process, densification kinetics of Fe-Ni nano-agglomerate powder with different agglomerate size was investigated. It was found that activation energy for densification was lower in the small-sized agglomerate powder. The increase in the volume fraction of inter-agglomerate boundary acting as high diffusion path might be responsible for the enhanced diffusion process.

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폐 인듐주석산화물 타겟의 재활용 기술 (Recycling Method of Used Indium Tin Oxide Targets)

  • 이영인;좌용호
    • 한국재료학회지
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    • 제22권4호
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    • pp.174-179
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    • 2012
  • In this study, we demonstrated a simple and eco-friendly method, including mechanical polishing and attrition milling processes, to recycle sputtered indium tin oxide targets to indium tin oxide nanopowders and targets for sputtered transparent conductive films. The utilized indium tin oxide target was first pulverized to a powder of sub- to a few- micrometer size by polishing using a diamond particle coated polishing wheel. The calcination of the crushed indium tin oxide powder was carried out at $1000^{\circ}C$ for 1 h, based on the thermal behavior of the indium tin oxide powder; then, the powders were downsized to nanometer size by attrition milling. The average particle size of the indium tin oxide nanopowder was decreased by increasing attrition milling time and was approximately 30 nm after attrition milling for 15 h. The morphology, chemical composition, and microstructure of the recycled indium tin oxide nanopowder were investigated by FE-SEM, EDX, and TEM. A fully dense indium tin oxide sintered specimen with 97.4% of relative density was fabricated using the recycled indium tin oxide nanopowders under atmospheric pressure at $1500^{\circ}C$ for 4 h. The microstructure, phase, and purity of the indium tin oxide target were examined by FE-SEM, XRD, and ICP-MS.

화염법에 의한 천이금속 첨가 이산화티타늄 나노분말의 제조 (Fabrication of Transition-metal-incorporated TiO2 Nanopowder by Flame Synthesis)

  • 박훈;지현석;이승용;안재평;이덕열;박종구
    • 한국분말재료학회지
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    • 제12권6호
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    • pp.399-405
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    • 2005
  • Nanopowders of titanium dioxide $(TiO_2)$ incorporating the transition metal element(s) were synthesized by flame synthesis method. Single element among Fe(III), Cr(III), and Zn(II) was doped into the interior of $TiO_2$ crystal; bimetal doping of Fe and Zn was also made. The characteristics of transition-metal-doped $TiO_2$ nanopowders in the particle feature, crystallography and electronic structures were determined with various analytical tools. The chemical bond of Fe-O-Zn was confirmed to exist in the bimetal-doped $TiO_2$ nanopowders incorporating Fe-Zn. The transition element incorporated in the $TiO_2$ was attributed to affect both Ti 3d orbital and O 2p orbital by NEXAFS measurement. The bimetal-doped $TiO_2$ nanopowder showed light absorption over more wide wavelength range than the single-doped $TiO_2$ nanopowders.

Structure and Magnetic Properties of a Fe73.5Si13.5B9Nb3Cu1 Alloy Nanopowder Fabricated by a Chemical Etching Method and Milling Procedure

  • Hong, Seong-Min;Kim, Jeong-Gon;Kim, Cheol-Gi
    • Journal of Magnetics
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    • 제14권2호
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    • pp.71-74
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    • 2009
  • The magnetic and structural properties of FINEMET (the Hitachi product name of the Fe-Si-B-Nb-Cu alloy) nanopowder with a composition of $Fe_{73.5}Si_{13.5}B_9Nb_3Cu_1$ atomic percent were investigated after annealing, chemical etching, and mechanical milling. The primary and secondary crystallization temperatures were 523 and $550^{\circ}C$, respectively. The grain size of the particles was adjusted by annealing time. Optimally annealed particles exhibited a homogenous microstructure composed of nanometer-sized crystalline grains. The grain boundary of the annealed particles was etched preferentially by chemical etching. Chemically etched particles were broken at the grain boundary by high-energy ball milling. As a result, a nanometer-sized FINEMET powder with a uniform size of crystalline grains was fabricated.

Mechanical Properties of Al-Si Composite Powders produced by Gas Atomization Process

  • Kim Jin-Chun;Wang Li-Fe;Chung In-Sang;Kim Yong-Jin
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2004년도 International Symposium on Powder Materials and Processing
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    • pp.46-47
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    • 2004
  • The microstructure and mechanical properties of the hypereutectic prealloyed Al-Si powders prepared by the gas atomization process were described in this paper. With increasing the gas pressure of the atomization, the average powder size was decreased from about $145{\mu}m\;to\;80{\mu}m$. The primary eutectic Si particles were uniformly distributed in the Al matrix and their size varied in the range of $8-10{\mu}m$. The high densified specimens with above 96% of the theoretical density were fabricated the hot pressing process. The UTS mechanical properties of VN1 specimens were much higher than that of conventional hypoeutectic Al-Si alloys.

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열화학공정으로 제조된 나노결정형 Nd-Fe-B 분말의 특성에 미치는 Ca환원 공정의 영향 (Influence of Ca Reduction Process on the Properties of Nanocrystalline Nd-Fe-B Powders Prepared by a Thermochemical Process)

  • 이대훈;장태석;유지훈;최철진;김병기;박병연
    • 한국자기학회지
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    • 제15권1호
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    • pp.42-47
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    • 2005
  • 기존의 환원확산법(Reduction-Diffusion process) 에 분무건조법(Spray-dry)을 적용한 새로운 열화학적 공정으로 나노결정형 Nd-Fe-B 분말을 제조할 때, Ca 환원공정은 각종 산화물들이 Ca에 의해 환원되어 강자성 $Nd_{2}Fe_{14}B$ 상이 형성되는 중요한 공정이므로 이 과정에서 나타나는 분발의 형태, 조성, 크기 등이 최종 분말의 자기특성에 중대한 영향을 미친다. 기존의 분말과 Ca 을 cake 형태로 성형하여 환원하던 방법에서 단순히 분말과 Ca 을 적정 비율로 혼합만하여 환원을 실시한 결과, 비교적 낮은 환원온도 ($800^{\circ}C$) 에서도 $Nd_{2}Fe_{14}B$ 상이 주상으로 나타났으며, $1100^{\circ}C$ 에서 환원한 분말을 제외하고는 모두 $1{\mu}m$ 이내의 미세한 입자크기 분포를 보였다. 또한 TEM 관찰결과, 이 분말들은 기존의 cake 형태의 환원법으로 제조한 분말에 비해 모서리 부분이 더욱 부드러우면서도 Ca 산화물들은 크게 줄어들어 높은 자기특성이 기대되었다. 변화된 Ca 환원방법에 의해 제조된 분말들은 $_iH_c$ = 5.9 kOe, $B_r$ = 5.5 kG, $_iH_c = 5.9 kOe, (BH)max = 6 MGOe 의 자기특성을 기록하였다. 그러나 이와 같은 분말을 최종 수세 및 건조한 결과, 수세시 발생한 높은 발열반응으로 인한 분말표면의 산화와 $Nd_{2}Fe_{14}B{\to}Nd_{2}Fe_{17}B_x$ 으로서 재분해로 인해 자기특성은 기대치에 미치지 못하였다.

플라즈마 아크 방전법으로 제조된 Fe 나노분말의 미세조직에 미치는 챔버압력 영향 (Effect of Chamber Pressure on the Microstructure of Fe Nano Powders Synthesized by Plasma Arc Discharge Process)

  • 박우영;윤철수;김성덕;유지훈;오영우;최철진
    • 한국분말재료학회지
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    • 제11권4호
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    • pp.328-332
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    • 2004
  • Fe nanopowders were successfully synthesized by plasma arc discharge (PAD) process using Fe rod. The influence of chamber pressure on the microstructure was investigated by means of X-ray Diffraction (XRD), Field Emission Scanning Electron Microscope (FE-SEM), Transmission Electron Microscopy (TEM) and X-ray Photoelectron Spectroscopy (XPS). The prepared particles had nearly spherical shapes and consisted of metallic cores (a-Fe) and oxide shells (Fe$_{3}$O$_{4}$), The powder size increased with increasing chamber pressure due to the higher dissolution and ejection rate of H$_2$ and gas density in the molten metal.