• 제목/요약/키워드: Phosphate coating

검색결과 126건 처리시간 0.022초

건설현장의 산성암반배수 발생저감을 위한 철인산염 피막형성 최적조건 도출 실내연구 (Laboratory Study for Phosphate Coating on Pyrite Surface for Reduction of Acid Rock Drainage)

  • 이규호;김재곤;이진수;김탁현;이상훈;송윤구
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2006년도 춘계 학술발표회 논문집
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    • pp.1083-1089
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    • 2006
  • Acid drainage occurs when sulfide minerals are exposed to an oxidizing environment. The objective of this study was to examine the optimum condition for creating a phosphate coating on standard pyrite surfaces for reduction of pyrite oxidation. The solution of $10^{-2}M\;KH_2PO_4\;10^{-2}M\;H_2O_2$ pH 6 was identified as the best phosphate coating agent for the reduction of pyrite oxidation. The formation of an iron phosphate coating on pyrite surfaces was confirmed with ore microscope and scanning electron microscope equipped with energy dispersive spectroscopy. The temperature did not significantly affect on the formation of phosphate coating on the surface of pyrite. However, the phosphate coating was less stable at higher temperature than at lower temperature. The phosphate coating was quitely stable at wide range of pH and $H_2O_2$ concentration. The less than 3.4% of phosphate was dissolved at pH 2.79 and 10.64 and less than 1.0% of phosphate was dissolved at 0.1M $H_2O_2$. On the basis of these results, the phosphate coating can effectively reduce the negative environmental of acid rock drainage.

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UNS G41400 강의 인산염 표면 처리에 따른 국부 부식 저항성 (Effect of Phosphate Surface Treatment on the Localized Corrosion Resistance of UNS G41400 Steel)

  • 이준섭;박시욱
    • Corrosion Science and Technology
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    • 제22권6호
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    • pp.429-434
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    • 2023
  • This study investigated the localized corrosion behavior of a UNS G41400 steel surface treated with manganese phosphate. The phosphate coating, primarily composed of oxygen (O), phosphorus (P), and manganese (Mn) elements, had an approximate thickness of 6 ㎛. The particles comprising the coating varied in size by several micrometers; smaller particles were mainly composed of O, P, Mn, and iron (Fe) elements, indicating incomplete formation of the manganese phosphate film. Potentiodynamic polarization curves revealed a decrease in anodic current after surface treatment and a shift in corrosion potential toward the noble direction after treatment. After immersion in a 3.5 wt% NaCl solution for 96 hours, localized corrosion was observed, with some regions retaining residual phosphate film. Even though localized corrosion occurred on the treated surface, it was less severe than that on the untreated UNS G41400 steel surface. These findings suggest that manganese phosphate coating improved resistance to localized corrosion.

기계적 연마 전처리가 인산망간 피막의 윤활 특성에 미치는 영향 (Effect of Mechanical Polishing Pretreatment on Tribological Properties of Manganese Phosphate Coating of Carbon Steel)

  • 김호영;노영태;전준혁;강호상
    • 한국표면공학회지
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    • 제52권6호
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    • pp.350-356
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    • 2019
  • In this study, the effect of mechanical polishing of carbon steel on the tribological properties of manganese phosphate coating on carbon steel has investigated. The microstructure, surface morphology and chemical composition were analyzed by SEM, EDS, and XRD. The surface roughness test was carried out in order to calculate Rvk value by 3D laser microscopy. Also, the tribology property of manganese phosphate coating was tested by ball-on disk. In the results of EDS analysis, coating layer consists of elements such in Mn, P, Fe, and O. XRD showed that (Mn,Fe)5H2(PO4)4·4H2O in manganese phosphate coating layer was formed by the chemical reaction between manganese phosphate and elements in carbon steel. As the mechanical polishing degree increased, the friction coefficient was reduced. The rougher the mechanical polishing degree, the better corrosion resistance was obtained.

자동차 부품 Tribology용 인산-망간 화성처리에 있어서 첨가제에 따른 화성피막 특성 (Characterization of Tribology for Automobile Part of Manganese Phosphate Solution with Addition agent)

  • 변영민;박종규;서선교;이지환
    • 한국표면공학회지
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    • 제48권2호
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    • pp.56-61
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    • 2015
  • In this study, the wear performance of manganese phosphate coating on SM45C with addition agent of Tartaric acid and Citric acid were investigated. The Surface morphology of manganese phosphate coating was examined by Scanning Electron Microscope (SEM) and Energy Dispersive X-ray spectroscopy (EDS). It is found that Mn, P, Fe, O and C. The crystal structure and thee composition was analysis and determined by using XRD. The XRD results indicated that manganese phosphate coatings are mainly composed of $(Mn,Fe)_5H_2(PO_4)_44H_2O$ and consists of a lot of close packed lump crystalline. Based on the time dependence of morphology and the weight of manganese phosphate coating, it shows that the phosphating process mainly includes three stages: corrosion of the substrate, creation and growth of phosphate crystal nucleus and thickening of manganese phosphate coating. The wear tests were performed in a ball on disc apparatus as per ASTM G-99 Standard. It was showed that the initial wear was quite high followed by low sludge.

산성배수 발생저감을 위한 황철석 표면의 철인산염 피막형성 연구 (Iron Phosphate Coating on Pyrite Surface for Reduction of Acid Rock Drainage)

  • 이규호;김재곤;김탁현;이진수
    • 자원환경지질
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    • 제39권1호
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    • pp.75-82
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    • 2006
  • 암석 또는 광미시료에 포함되어 있는 황철석의 산화에 의해 발생하는 산성배수를 저감하기 위하여 황철석 표면에 철인산염 피막을 형성시킬 수 있다. 첫 단계로 표준황철석을 이용한 실내실험을 통하여 최적의 피막형성 조건을 도출하였다. 피막형성제와 황철석을 24시간 반응시킬 때 최적조건은 $10^{-2}M\;KH_2PO_4,\;10^{-2}M\;H_2O_2$, PH 6으로 결정되었으며, 이 조건으로 황철석을 피막처리한 후 반사현미경, 주사전자현미경, 에너지분산분광기로 피막의 형성을 확인하였다. 피막의 내구성을 검증하기 위하여 온도 pH, 산화제의 농도변화에 따른 인산염의 용출을 조사한 결과, $4^{\circ}C$$70^{\circ}C$에서 온도의 영향은 거의 없었으며, 강산 또는 강알칼리 환경에서 $3.4\%$미만, 산화제의 농도별 조건하에서 $1.0\%$미만의 인산염이 피막으로부터 용출되었다. 실험 결과는 암석 또는 광미시료의 철인산염 피막형성 연구의 기초자료로 활용될 수 있을 것이다.

탄약 표면 처리용 아연계 인산염 피막의 중량 및 내식성에 관한 연구 (Study on the coating weight and corrosion resistance of Zinc phosphate for surface treatment of ammunition)

  • 김명현;이승용;이현희;이영태
    • 한국산학기술학회논문지
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    • 제18권10호
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    • pp.603-610
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    • 2017
  • 탄약을 포함한 다양한 산업 분야에서 사용되는 철강 재료는 부식에 취약하므로, 표면 그대로 사용하는 것은 바람직하지 않다. 따라서 도금, 도장, 화성처리와 같은 표면 처리 이후 사용하여야 하는데, 탄약 제조 과정에서는 주로 아연계 인산염 피막 처리가 사용되고 있다. 표면 처리 기법 중 하나인 아연계 인산염 피막은 금속 표면을 화학적으로 처리하여 안정성이 높은 화합물 층을 표면에 고착시키는 방법으로, 크게 도장 하지용 경인산염 피막과 부식 방지용 중인산염 피막으로 나뉘어지는데, 아연계 인산염 피막은 전산도, 철 함량과 같은 여러 가지 인자에 의해 피막의 품질과 내식성이 결정된다. 본 연구에서는 전산도 및 철 함량이 탄약 부식 방지 목적으로 사용되는 아연계 중인산염 피막의 중량 및 내식성에 미치는 영향에 대하여 알아보았다. 철 함량에 따라 피막의 구조가 치밀해지며, 내식성이 향상되는 결과를 확인할 수 있었으나, 전산도는 피막의 두께와 중량에만 영향을 주고 내식성에는 큰 영향을 주지 못하였다. 위 결과를 토대로 탄약 제조 과정에서 사용되는 인산염 피막 처리 공정의 최적 제어 수준을 제시하였다.

알카리성 인산-과망간산 용액을 이용한 AZ31 마그네슘 합금의 친환경 화성 처리 및 화성 피막의 특성 평가 (Characteristics of Environmentally-Friendly Conversion Coating of AZ31 Magnesium Alloy by a Alkaline Phosphate-Permanganate Solution)

  • 김명환;이만식;곽삼탁;문명준
    • 한국표면공학회지
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    • 제44권3호
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    • pp.82-88
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    • 2011
  • A uniform chromium-free conversion coating treated with an alkaline phosphate- permanganate solution was formed on the AZ 31 magnesium alloy. The effect of acid pickling on the morphology and on the corrosion resistance of the alkaline phosphate-permanganate conversion coating was investigated. The chemical composition and phase structure of conversion coating layer were determined via optical microscopy, SEM, EDS, XPS and XRD. Results show that the conversion coatings are relatively uniform and continuous, with thickness 1.8 to $2.4\;{\mu}m$. The alkaline phosphate-permanganate conversion coating was mainly composed of elements Mg, O, P, Al and Mn. The conversion-coated layers were stable compounds of magnesium oxide and spinel ($MgAl_2O_4$). These compounds were excellent inhibitors to corrosion. The electrochemical corrosion behaviors of coatings in 3.5 wt.% NaCl solutions were evaluated by electrochemical impedance spectroscopy, potentiodynamic polarization technique. EIS results showed a polarization resistance of $0.1\;k{\Omega}$ for the untreated Mg and $16\;k{\Omega}$ for the alkaline phosphate-permanganate conversion treatment sample, giving an improvement of about 160 times. The results of the electrochemical measurements demonstrated that the corrosion resistance of the AZ 31 magnesium alloy was improved by the alkaline phosphate-permanganate conversion treatment.

도장 알루미늄 합금판의 성능에 미치는 인산염피막의 영향 (Effects of phosphate coating on some performance of painted Al alloy sheet)

  • 이규환;노병호
    • 한국표면공학회지
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    • 제28권5호
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    • pp.289-299
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    • 1995
  • The effects of phosphate coating have been studied on physical properties and corrosion resistance of painted aluminum alloy sheet for automobile body. The physical properties (surface roughness, paint adhesion, impact resistance and pencil hardness) and corrosion resistance(cyclic corrosion and filiform corrosion) were investigated. Phosphate coatings enhanced the physical properties of painted Al alloy sheet, especially paint adhesion after the 240hours water immersion test. Phosphate coating also markedly improved the resistance for cyclic corrosion and filiform corrosion of painted cold rolled steel and Zn-Ni plated steel sheet as well as painted Al alloy sheet. The corrosion resistance of painted Al sheets was varied with the concentration of free fluoride ion and metal additives like Ni and Mn in the phosphating bath. A maximum corrosion resistance was obtained at about 300ppm of fluoride ion and additives of Ni and Mn obviously increased the corrosion resistance of painted specimens.

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Magnetic Properties of Amorphous FeCrSiBC Alloy Powder Cores Using Phosphate-coated Powders

  • Jang, Dae-Ho;Kim, Kwang-Youn;Noh, Tae-Hwan
    • Journal of Magnetics
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    • 제11권3호
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    • pp.126-129
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    • 2006
  • The phosphate coating on the $(Fe_{0.97}Cr_{0.03})_{76}(Si_{0.5}B_{0.5})_{22}C_2$ amorphous powders with an average size of 10 ${\mu}m$ in diameter has been carried out in aqueous 1.0-2.0 wt% $H_3PO_4$ solutions, and the consolidation behavior and magnetic properties of their compressed powder cores has been investigated. The phosphate coating could provide efficient electrical insulation between amorphous powders and improved consolidation ability at room temperature. Especially when the powders were treated in more concentrated phosphoric acid solution, enhanced phosphate covering and higher frequency/dc-bias stability were achieved. The powder cores phosphate-coated in 2.0 wt% $H_3PO_4$ solution exhibited constant permeability of 21 up to 10 MHz, 110 of the quality factor at 0.9 MHz, 610 mW/cm3 core loss at 100 kHz/0.1 T and 89 of percent permeability at 100 kHz.

마그네슘 합금의 방청을 위한 하이브리드 졸-겔 코팅제의 개발 (Development of Hybrid Sol-Gel Coating to Prevent Corrosion of Magnesium Alloys)

  • 이동욱;김영훈;문명준
    • Corrosion Science and Technology
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    • 제17권1호
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    • pp.30-36
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    • 2018
  • The high rate of corrosion of magnesium alloys makes it limited for industrial applications. Therefore, surface treatment is required to enhance their corrosion resistance. In our study, a chemical conversion coating for protecting the corrosion of the magnesium alloy, AZ31B, was prepared by using a phosphate-permanganate solution. The chemical conversion coating had a limited protection ability due to defects arising from cracks and pores in the coating layer. The sol-gel coating was prepared by using trimethoxymethylsilane (MTMS) and 3-glycidoxypropyltrimethoxysilane (GPTMS) as precursors, and aluminum acetyl acetonate as a ring opening agent. The corrosion protection properties of sol-gel and conversion coatings in 0.35wt% NaCl solution were measured by the electrochemical impedance spectroscopy (EIS) and potentiodynamic polarization test. The EIS results indicated that the resistance of the chemical conversion coating with the sol-gel coating was significantly improved through the sol-gel sealed phosphate-permanganate conversion coating. The results of the potentiodynamic polarization test revealed that the sol-gel coating decreased the corrosion current density ($I_{corr}$). The SEM image showed that the sol-gel coating sealed conversion coating and improved corrosion protection.