• Title/Summary/Keyword: Mn ferrite

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Influence of Cu and Ni on Ductile-Brittle Transition Behavior of Metastable Austenitic Fe-18Cr-10Mn-N Alloys (준안정 오스테나이트계 Fe-18Cr-10Mn-N 합금의 연성-취성 천이 거동에 미치는 Cu와 Ni의 영향)

  • Hwang, Byoungchul
    • Korean Journal of Materials Research
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    • v.23 no.7
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    • pp.385-391
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    • 2013
  • The influence of Cu and Ni on the ductile-brittle transition behavior of metastable austenitic Fe-18Cr-10Mn-N alloys with N contents below 0.5 wt.% was investigated in terms of austenite stability and microstructure. All the metastable austenitic Fe-18Cr-10Mn-N alloys exhibited a ductile-brittle transition behavior by unusual low-temperature brittle fracture, irrespective of Cu and/or Ni addition, and deformation-induced martensitic transformation occasionally occurred during Charpy impact testing at lower temperatures due to reduced austenite stability resulting from insufficient N content. The formation of deformation-induced martensite substantially increased the ductile-brittle transition temperature(DBTT) by deteriorating low-temperature toughness because the martensite was more brittle than the parent austenite phase beyond the energy absorbed during transformation, and its volume fraction was too small. On the other hand, the Cu addition to the metastable austenitic Fe-18Cr-10Mn-N alloy increased DBTT because the presence of ${\delta}$-ferrite had a negative effect on low-temperature toughness. However, the combined addition of Cu and Ni to the metastable austenitic Fe-18Cr-10Mn-N alloy decreased DBTT, compared to the sole addtion of Ni or Cu. This could be explained by the fact that the combined addition of Cu and Ni largely enhanced austenite stability, and suppressed the formation of deformation-induced martensite and ${\delta}$-ferrite in conjunction with the beneficial effect of Cu which may increase stacking fault energy, so that it allows cross-slip to occur and thus reduces the planarity of the deformation mechanism.

Electric Characteristics of Ring-shaped Electrodeless Fluorescent Lamps by Coil Turns (환형 무전극 형광램프의 권선수 변화에 따른 코일의 전기적 특성)

  • 이영환;김광수;조주웅;최용성;박대희
    • Proceedings of the Korean Institute of IIIuminating and Electrical Installation Engineers Conference
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    • 2003.11a
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    • pp.165-167
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    • 2003
  • 무전극 형광 램프에서 플라즈마 생성이 용이한 유도 결합형 플라즈마가 많이 사용되는데, 코일의 권선수나 주파수에 의해 전기적 특성의 변화가 크다. 따라서, 기존의 환형 무전극 형광 램프에 사용되는 ferrite core나 coil을 새롭게 적용하기 위하여 투자율이 2000인 Mn-Zn ferrite를 사용하여 주파수와 coil의 권선수를 변화시켜 전기적 특성을 측정하여 기존의 환형 무전극 형광램프와 비교·검토하였다.

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Study on Grinding Force and Ground Surface of Ferrite (페라이트의 연삭저항 및 연삭면 특성)

  • 김성청
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.6 no.3
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    • pp.17-25
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    • 1997
  • This paper aims to clarify the effects of grinding conditions on the grinding force, ground surface and chipping size of workpiece in surface grinding of various ferrites with the resin bond diamond wheel. The main conclusions obtained were as follows: In a constant peripheral wheel speed, the specific grinding energy is fitted by straight lines with grinding depth coefficient($\delta$) in a logarithmic graph. The effect of both depth of cut and workpiece speed on grinding energy becomes larger in the order of Mn-Zn, Cu-Ni-Zn and Sr. When using the diamond grain of the lower toughness, the roughness of the ground surface becomes lower. The ground surfaces show that the fracture process during grinding becomes more brittle in the order of Sr, Mn-Zn and Cu-Ni-Zn. The chipping size at the corner of workpiece in grinding increases with the the increases of the depth of cut and workpiece speed, and the decrease of peripheral wheel speed. The effect of both depth of cut and workpiece speed on chipping size becomes more larger in the order of Sr, Mn-Zn and Cu-Ni-Zn.

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Origin of Variation of the Initial Permeability of Manganese-Zinc Ferrite Polycrystals with Additives (Mn-Zn 페라이트 다결정의 첨가물에 따른 초투자율의 변화 기구)

  • Byeon, Sun-Cheon;Byeon, Tae-Yeong;Go, Gyeong-Hyeon;Hong, Guk-Seon
    • Korean Journal of Materials Research
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    • v.7 no.9
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    • pp.758-762
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    • 1997
  • 52mol% Fe$_{2}$O$_{3}$, 26mol% MnO의 조성에서 calcium과 vanadium의 동시첨가에 의한 투자율의 변화원인을 살펴보았다. 초투자율은 첨가물의 농도가 커짐에 따라 감사하였으나 소결체의 밀도나 입자크기는 증가하였으므로 초투자율의 변화는 미세구조의 변화로는 설명되지 않았다. 전기비저항은 첨가물의 농도가 증가함에 따라 증가하였으며 이는 입계의 고저항층의 생성과 vanadium ion에 의한 Fe$^{2+}$이온의 산화로 설명되었다. 첨가물의 농도가 증가함에 따라, 초투자율의 제 2차 최대치가 나타나지 않는 것과 초투자율이 감소하는 것으로부터, 결정자기이방성 상수의 값은 음으로 커짐을 알 수 있었다. 투자육의 온도의존성과 비저항의 변화로부터, 첨가물의 농도에 따른 상온 초투자율의 감소는 Fe$^{2+}$ 이온 농도의 감소에 따른 결정자기이방성 상수의 증가에 의한 효과와 입계에 유리질이 생겨 자벽이 쉽게 이동하지 못하는 효과 때문인 것으로 판단되었다.

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Effect of Mn Oxides on the Magnetic properties of Mn-Zn Ferrite (가수가 다른 Mn 산화물이 Mn-Zn 페라이트의 자기특성에 미처는 영향)

  • 박천제;권오홍;배철수
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 1999.11a
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    • pp.516-519
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    • 1999
  • 스위칭 전원에 사용되는 Mn-Zn 페라이트에 대항하는 고성능화의 요구에 부응하기 위해 그 중요한 요인이 되는 기수가 다른 Mn 산화물에 착목하여 그것들을 이용 제작한 Mn-Zn 페라이트의 자기특성 및 결정구조를 정밀하게 조사함과 동시에 그것들의 상관성을 검토하였다. Mn-Zn 페라이트의 소성 분위기의 변경방식은 소성개시에서 종료시까지 질소 분위기, 냉각시부터 질소분위기로 변경, 소성 개시에서 종료시까지 대기중 소성 세가지를 실험하였고, 소성 온도는 115$0^{\circ}C$, 120$0^{\circ}C$, 125$0^{\circ}C$ 130$0^{\circ}C$ 135$0^{\circ}C$ 및 140$0^{\circ}C$의 6종류의 시료를 제작하였다. 이 결과는 Mn-Zn 페라이트의 소성 분위기 및 온도 최적화는 승온 및 온도 유지 단계에서는 대기중으로, 냉각단계에서는 질소가스 분위기로 치환한 것과 소성 온도는 120$0^{\circ}C$ 이다. 이 분위기에서 Mn-Zn 페라이트를 가수를 다르게 하여 시료의 투자율 및 주파수 특성, 코아로스 주파수 의존성, 코아로스 주파수로 나눈값의 주파수 의존성, 스피넬 구조(311)의 면에서의 회절픽, 자화의 온도 의존성을 분석하였다. 이 결과는 Mn$_3$O$_4$를 출발원료로 사용한 Mn-Zn 페라이트가 투자율 및 한계 주파수 모두 뛰어난 특성을 나타내었다.

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Effects of Mn Substitution on Crystallographic and Magnetic Properties of Li-Zn-Cu Ferrites

  • Lee, Young Bae;Choi, Won-Ok;Chae, Kwang Pyo
    • Journal of Magnetics
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    • v.19 no.3
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    • pp.210-214
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    • 2014
  • The effects of manganese substitution on the crystallographic and magnetic properties of Li-Zn-Cu ferrite, $Li_{0.5}Zn_{0.2}Cu_{0.4}Mn_xFe_{2.1-x}O_4$ ($0.0{\leq}x{\leq}0.8$), were investigated. Ferrites were synthesized via a conventional ceramic method. We confirmed the formation of crystallized particles using X-ray diffraction, field emission scanning electron microscopy and $M{\ddot{o}}ssbauer$ spectroscopy. All of the samples showed a single phase with a spinel structure, and the lattice constants linearly decreased as the substituted manganese content increased, and the particle size of the samples also somewhat decreased as the doped manganese content increased. All the $M{\ddot{o}}ssbauer$ spectra can be fitted with two Zeeman sextets, which are the typical spinel ferrite spectra of $Fe^{3+}$ with A- and B-sites, and one doublet. The cation distribution was determined from the variation of the $M{\ddot{o}}ssbauer$ parameters and of the absorption area ratio. The magnetic behavior of the samples showed that an increase in manganese content led to a decrease in the saturation magnetization, whereas the coercivity was nearly constant throughout. The maximum saturation magnetization was 73.35 emu/g at x = 0.0 in $Li_{0.5}Zn_{0.2}Cu_{0.4}Mn_xFe_{2.1-x}O_4$.

Microstructural Characteristics of 800 MPa Grade High Strength Steel Weld Metals (800 MPa급 고강도강 용접금속의 미세조직 특성 비교 연구)

  • Lee, Jae-Hee;Kim, Sang-Hoon;Yoon, Byung-Hyun;Kim, Hwan-Tae;Kil, Sang-Cheol;Lee, Chang-Hee
    • Journal of Welding and Joining
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    • v.29 no.1
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    • pp.65-73
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    • 2011
  • Microstructural characteristics of two high strength (600 MPa & 800 MPa) weld metals produced by flux-cored arc welding process (FCAW) were evaluated. The 600 MPa grade weld metal was consisted of 75% acicular ferrite and 25% ferrite which was formed at relatively high temperature (grain boundary ferrite, widmanstatten ferrite, polygonal ferrite). However, the 800 MPa grade weld metal was composed of about 85% acicular ferrite and 15% low temperature forming phases (bainite, martensite). The prior austenite grain size of 800 MPa grade weld metal was decreased by solute drag force. The compositions and sizes of inclusions which are the dominant factors for the formation of acicular ferrite were analyzed by a transmission electron microscopy (TEM). In both 600 MPa and 800MPa grade weld metals, the inclusions were mainly consisted of Ti-oxide and Mn-oxide, and the average size of inclusions was $0.7{\mu}m$. The 800 MPa grade weld metal exhibited higher tensile strength and similar toughness compared with the 600 MPa grade weld metal. This result is mainly due to a higher fraction of low temperature products and a lower fraction of grain boundary ferrite in the 800 MPa grade weld metal.

Atomic Scale Investigation of TRIP Steels (변태 유기 소성강(TRIP steel)의 미세구조와 원자 단위 분석)

  • Lim, N.S.;Kang, J.S.;Kim, S.I.;Park, C.G.
    • Proceedings of the Korean Society for Technology of Plasticity Conference
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    • 2008.10a
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    • pp.273-276
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    • 2008
  • In this study, microstructure and distribution of alloy elements were investigated in thermo-mechanically processed C-Mn-Si transformation induced plasticity (TRIP) steels. The microstructures of TRIP steels were investigated by using advanced analysis techniques, such as three dimensional atom probe tomography (3D-APT). At first, the microstructure was observed by using TEM. TEM results revealed that microstructure of C-Mn-Si TRIP steel was composed of ferrite, bainte, and retained austenite. 3D-APT was used to characterize atomic-scale partitioning of added elements at the phase interface. In the retained austenite phase, Ti and B were enriched with C. However, there was no fluctuation of Mn and Si concentration across the interface. Through these analysis techniques, the advanced characteristics of constituent microstructure in C-Mn-Si TRIP steels were identified.

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Magenetic Properties of Co, Ni and Ca Substituted Mn-Zn Ferrite (Co, Ni 및 Ca를 첨가한 Mn-Zn 페라이트의 자기적 성질)

  • 하태욱;이정식
    • Journal of the Korean Magnetics Society
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    • v.5 no.1
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    • pp.15-20
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    • 1995
  • We have prepared 20 kinds of Mn-Zn ferrites as content of CaO(0.1 mol%), NiO(0.0~0.60 mol%) and CoO(0.0~0.8 mol%) adding by the coprecipitation method and studied the magnetic properties as content of CaO, NiO and CoO adding. Initial permeability decrease as the content of NiO and CoO adding increases, while Curie tem~ perature increase as the content of NiO and CoO adding increases. $(H_{c})$, $(B_{s})$ and $(W_{h})$ increase as content of NiO adding increases.

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