• Title/Summary/Keyword: 수직자화

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Demagnetization to Induce Vertical Magnetization in a Military Vessel (함정에 수직자화를 부여하기 위한 탈자)

  • Kim, Young-Hak
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2015.10a
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    • pp.1109-1112
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    • 2015
  • A milatary ship without degaussing coil has a vertical magnetization to compensate magnetization induced by the vertical magnetic field component of earth magnetic field during demagnetization process. Flash D is very useful to acquire vertical magnetization. However this is hard to predict vertical magnetization. This experiment was investicated on another method, which used the only vertical bias magentic field. The specimens were prepared by thin Zn coated steel sheet with a thickness of 0.15mm. The shapes of 3 specimes was rectangular, triangular and circular cylinders. These shapes were corresponded to the shapes of bow, mid and stern of a vessel. Through FEM analysis, the difference of magnetic signatures for these specimens was recognized and the residual magnetization curve was measured. magnetic field was generated by a solenoid coil and magnetic signature was measured by a magnetic field sensor. A linearity between a vertical bias magnetic field and a vertical manetzation existed and the vertical magnetization of a miltary vessel was predicted by the linearity.

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Magnetization loss characteristics at arbitrary directional magnetic field by perpendicular magnetization loss in YBCO CC stacked conductors (YBCO CC 적층선재의 수직자화 손실 값을 이용한 임의 방향 자화손실 평가)

  • Lee, Ji-Kwang;Lim, Hyoung-Woo;Cha, Guee-Soo;Park, Myung-Jin
    • Proceedings of the KIEE Conference
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    • 2006.07b
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    • pp.655-656
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    • 2006
  • 대부분의 초전도 전력기기의 경우, 초전도 테이프를 솔레노이드나, 팬케�� 형태로 권선해서 사용하게 되고, 이러한 경우에는 권선을 구성하는 테이프들에 흐르는 전류에 의해 발생하는 자계는 권선내의 각각의 테이프에 임의 방향의 외부 인가자계로 작용하여 자화손실을 발생시키므로 초전도 코일에서의 교류손실을 평가하고 예측하기 위해서는 임의방향 자장에 의한 자화손실에 대한 데이터가 필요하다. 수직 자화손실에 대한 측정값으로서 임의방향 자장에 의한 자화손실을 알 수 있다면 코일의 교류손실 평가는 훨씬 쉽게 접근할 수 있을 것이다. 본 논문에서는 측정된 자화손실 값들로부터 각 방향 인가자장에 의한 자화손실과 인가된 자장을 분리하여 수직방향 및 수평방향 성분에 의한 자화손실 측정값의 합과 비교하여 각도별로 두 자화손실의 차이를 살펴보았다.

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Influence of Shape Demagnetization Effect for Naval Vessel Deperming (함정의 형상 반자계 효과가 탈자에 미치는 영향)

  • Kim, Young-Hak
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.20 no.2
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    • pp.445-450
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    • 2016
  • This paper studied on the influence of naval vessel shape on vertical magnetic field after the vessel was demagnetized. The triangular shape, the rectangular shape and circular shape were adaped from vessel's structual drawings. Magneto-static FEM analysis was performed to obtain the iduced magnetic field due to earth magnetic field for those shapes. During demagnetization process, magnetic field of residual magnetization was observed. The holizontal and vertical magnetic field were calculated depending on vertical bias magnetic field through magnetc component seperation. To demagnetize naval vessel ship, demagnetizing coils shoud be wound more finely in the vow and stern of the ship than it should be in the mid-part of the ship.

Sputering Pressure and Temperature Effects on Magnetization Reversal Behaviors of $Co(2\AA)/Pd(13\AA)$ Multilayers (스퍼터링압력 및 온도 효과에 의한 $Co(2\AA)/Pd(13\AA)$ 다층박막의 자화반전 거동)

  • 김성봉;정순영
    • Journal of the Korean Magnetics Society
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    • v.6 no.4
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    • pp.199-203
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    • 1996
  • To study the magnetization reversal behavior of Co/Pd multilayers, we first demagnetized the samples by the field-demagnetized method and then measured initial curves and minor loops. The coercivity and the perpendicular magnetic anisotropy were obtained from the perpendicular and parallel magnetization curves measured at different temperatures. We interpret our experimental results by applying several qualitative and semiquantative approaches. From these study, we found that the magnetization reversal behavior is dominated by the domain wall pinning for all samples and the coercivity incremental tendency can be explained by Kronmuller's formula $H_c(T)\;{\propto}\;r_0.K_u$.

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Estimation of magnetization loss st arbitrary directional magnetic field by perpendicular magnetization loss in BSCCO tapes (BSCCO 선재의 수직방향 자장에 의한 자화손실 값을 이용한 임의방향 자장에 의한 자화손실 평가)

  • Lee, Ji-Kwang;Park, Myung-Jin;Lim, Hyoung-Woo;Cha, Guee-Soo
    • Proceedings of the KIEE Conference
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    • 2005.07b
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    • pp.1101-1103
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    • 2005
  • 초전도 전력기기에서는 선재를 이용하여 권선한 코일 형태로 적용되므로 코일을 구성하는 각각의 초전도 선재에서는 코일 여자시 임의 방향의 자장이 발생한다. 초전도 코일에서 발생하는 주 교류손실인 자화손실을 예측하기 위해서는 임의 방향 외부자장에 의한 초전도 선재의 자화손실을 알아야 한다. 본 논문에서는 BSCCO선재에서 측정된 임의방향 자장에 의한 자화손실과 수직방향 자장에 의한 자화손실값을 이용하여 초전도 선재에서 자화손실의 자장방향 의존성 및 임의 각도의 인가자장에 의한 자화손실 예측방법을 살펴보았다.

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Effects of Sputtering Pressure on the Magnetization Reversal Process and Perpendicular Magnetic Anisotropy of Co/Pd Multilayered Thin Films (스퍼터링 압력이 Co/Pd 다층박막의 자화반전 및 수직자기 이방성에 미치는 영향)

  • 오훈상;주승기
    • Journal of the Korean Magnetics Society
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    • v.4 no.3
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    • pp.256-262
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    • 1994
  • $200{\AA}$ thick Co/Pd multilayered thin films were fabricated by sputtering. Two thicknesses of cobalt sublayer, $2{\AA}$ and $4{\AA}$ were chosen and the effects of sputtering pressure on the perpendicular magnetic anisotropy were investigated. It has been found that the optimum pressure for maximum perpendicular magnetic anisotropy(PMA) existed and the pressure for maximum PMA was lower for the multilayer with $2{\AA}$ cobalt layer than that with $4{\AA}$ cobalt thickness. As the sputtering gas presssure increased, domain wall motion with magnetization became difficult and the predominant mode of magnetization reversal changed from domain wall motion to magnetic moment rotation. It turned out that the perpendicular magnetic anisotropy was higher in case of $2{\AA}$ cobalt thickness than $4{\AA}$ cobait thickness.

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A Study on Intial Susceptibility for the Prediction of Vertical Magnetization in Flash D Demagnetization (Flash D 탈자방법에서 수직자화예측을 위한 초기자화율에 관한 검토)

  • Kim, Young-Hak;Doh, Jaewon
    • Journal of the Korea Institute of Military Science and Technology
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    • v.17 no.5
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    • pp.585-590
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    • 2014
  • A permanent vertical magnetization should be obtained to counteract induced vertical magnetization due to the earth's background field during the Flash D demagnetization process. A vertical susceptibility is needed to calculate a extra-permanent magnetization, which is needed to control the permanent vertical magnetization in stage 2 of Flash D demagnetization and added to the final vertical permanent magnetization. Two susceptibilities were found in this paper. One is obtained from the extra-magnetization. The other is obtained by magnetic field measurement from the scaled physical vessel when the vessel is excited by vertical magnetic field. The initial susceptibility by the extra-magnetization was 0.101~0.109 and the one from the measured magnetic field was 0.122. Two susceptibilities have a good agreement each other. From this paper, it is found that the susceptibility is able to appllied to calculate the extr-magnetization.

양극산화 자성피막을 이용한 수직자기기록매체

  • 강희우
    • 전기의세계
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    • v.42 no.9
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    • pp.20-27
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    • 1993
  • 1. 철근출막은 결정자기이방성의 영향이 작기 때문에, 자기특성이 막의 기하학적구조에 의해 거의 결정되고 그것에 의하여 자성막의 설계가 가능하다. 2. 코발트 근출막은 결정자기이방성이 자기특성에 영향은 크기때문에 코발트 결정의 자화용역축(C축)의 배향에 의하여 자기특성은 크게 변한다. 따라서 이 C축의 배향성을 변화시켜 석출입자의 형태를 바꾸지 않고 작은 포아직경에서도 항자력의 제어가 가능하였다. 3. 코발트-철합금신출막은 조성변화에 의하여 자기특성을 제어할 수 있다. 또 ㅈ포화자화, 항자력도 철을 석출한 자성막에 비해서 높은 값을 나타냄을 물론, 우수한 각형화(Mr/Ms)로 얻어지는 큰 자기에너지적으로 수직 자기기록방식의 고정밀의 로타리 엔코다에의 응용이 유망하다.

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Magnetic and Magneto-Optic Properties of Tb/Fe Multilayers (Tb/Fe 다층박막의 자기 및 자기광 특성)

  • 이장로;장현숙;김미양;이용호;손봉균
    • Journal of the Korean Magnetics Society
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    • v.2 no.2
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    • pp.125-131
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    • 1992
  • 기판회전 테이블이 부착된 DC, RF-magnetron sputtering 장치로 유리기판 위에 제작한 1000 .angs. 정도의 8.8 .angs. Tb/X .angs. Fe (X=5.4~11.0) 다층박막에 관하여 시료진동형 자 기계와 타원편광 분석장치를 사용하여 자화, 수직자기이방성, kerr 회전각의 Fe층 두께와 열처리 온도 의존성이 연구되었다. Fe층 두께가 7.8 .angs. 기점으로하여 자화용이축의 전이가 나타나기 시작하여 6.4 .angs. 일때 수직자기이방성을 나타낸다. 실험치로부터 계산한 Fe와 Tb층의 경계면 수직이방성 에너지 $K_{s}$ = -0.38 erg/$cm^{2}$이고, Fe층만의 체적수직이방성 에너지 $K_{v}$ = -8.50 * $10^{5}$ erg/$cm^{3}$이다. Polar Kerr 회전각은 Fe층 두께 7.8 .angs. 에서 그대값 2 .THETA. $_{k}$ = 1.22 .deg. 를 갖는다.다.다.다.

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