• 제목/요약/키워드: Nanocrystalline Cores

검색결과 19건 처리시간 0.023초

나노결정립 합금을 이용한 유도형 결합기의 통신 성능 (Communication Performance of Inductive Coupler Using Nanocrystalline Alloy)

  • 양승호;정재환;손경락
    • 한국항해항만학회:학술대회논문집
    • /
    • 한국항해항만학회 2018년도 춘계학술대회
    • /
    • pp.154-154
    • /
    • 2018
  • Conventional inductive powerline communications typically use ferrite cores. However, since the recent nanocrystalline cores are expected to perform better, this paper aims to measure the performance of inductive couplers using nanocrystalline cores. To do this, we used inductive powerline communications to observe the communication range when increasing the number of cores from one to five. This experiment shows that we have the best communication performance when we connect 5 cores.

  • PDF

Magnetic Properties of FeCuNbSiB Nanocrystalline Alloy Powder Cores Using Ball-milled Powder

  • Kim, G. H.;T. H. Noh;Park, G. B.;Kim, K. Y.
    • 한국자기학회:학술대회 개요집
    • /
    • 한국자기학회 2002년도 동계연구발표회 논문개요집
    • /
    • pp.202-203
    • /
    • 2002
  • Ribbon type nanocrystalline alloy cores have shown excellent soft magnetic properties in the high frequency range because of small crystalline anisotropy and nearly zero magnetostriction[1]. In present, however ribbon alloys gives some limit in applications such as a large inductor and reactors of PFC circuit, which are required good DC bias property and low loss in the high frequency. Powder alloys with ultra fine grain structure can be an important way to overcome this kind of disadvantage, and to improve the high frequency soft magnetic properties in conventional metallic powder cores[2]. (omitted)

  • PDF

FeCuNbSiB 나노결정립 합금 분말코아의 자기적 특성에 미치는 절연체의 영향 (The Effects of Insulating Materials on the Magnetic Properties of Nanocrystalline FeCuNbSiB Alloy Powder Cores)

  • 노태환;최혁열
    • 한국자기학회지
    • /
    • 제14권5호
    • /
    • pp.186-191
    • /
    • 2004
  • 250~850 $\mu\textrm{m}$ 크기의 FeCuNbSiB 나노결정립 합금분말에 3wt%의 전기절연체(glass frits, 활석 또는 폴리아미드 분말)를 혼합한 뒤 압축성형하여 분말코아를 만들었을 때, 절연물질의 종류에 따른 자기적 특성의 변화를 조사하고 그 결과를 비교하였다. 세라믹 물질인 glass frits와 활석은 폴리아미드에 비해 수백 kHz이하의 주파수 범위에서 높은 투자율을 나타내나 1 MHz 이상의 주파수에서는 투자율이 빠르게 낮아지는 거동을 보였다 자심손실은 glass frits와 활석을 첨가한 자심 쪽이 더 크며, 품질계수는 폴리아미드를 첨가한 자심보다 더 낮은 주파수에서 피크를 나타내고 그 값도 더 작았다. 반면 폴리아미드로 절연처리한 자심의 경우 수 MHz에 이르기까지 투자율의 저하가 거의 나타나지 않았으며, 더 우수한 자심손실 및 품질계수 특성을 보여 주었다. 그리고 직류중첩특성 또한 폴리아미드를 첨가한 자심이 100 Oe이상의 큰 자장에 이르기까지 더 우수하였다. 폴리아미드를 절연체로 사용한 경우 그 밀도가 낮음으로 인해 결국 더 많은 체적비로 혼합되므로 자성 입자 사이의 전기적 절연을 보다 더 충분히 해주고 있는 것으로 판단되었으며, 세라믹 물질을 절연체로 사용했을 때와의 이상과 같은 자기적 특성의 차이는 이 사실에 주로 의존하고 있는 것으로 평가되었다.

Effect of Core Morphology on the Decomposition of CCI₄ over the Surface of Core/Shell Structured Fe₂O₃/MgO Composite Metal Oxides

  • 김해진;강진;박동곤;권호진;Kenneth J. Klabunde
    • Bulletin of the Korean Chemical Society
    • /
    • 제18권8호
    • /
    • pp.831-840
    • /
    • 1997
  • Core/shell structured composite metal oxides of Fe2O3/MgO were prepared by thermal decomposition of Fe(acac)3 adsorbed on the surface of MgO cores. The morphology of the composites conformed to that of the MgO used as the cores. Broad powder X-ray diffraction peaks shifted toward larger d, large BET surface area (∼350 m2/g), and the size of crystalline domains in nano range (4 nm), all corroborate to the nanocrystallinity of the Fe2O3/MgO composite which was prepared by using nanocrystalline MgO as the core. By use of microcrystalline MgO as the core, microcrystalline Fe2O3/MgO composite was prepared, and it had small BET surface area of less than 35 m2/g. AFM measurements on nanocrystalline Fe2O3/MgO showed a collection of spherical aggregates (∼80 nm dia) with a very rough surface. On the contrary, microcrystalline Fe2O3/MgO was a collection of plate-like flat crystallites with a smooth surface. The nitrogen adsorption-desorption behavior indicated that microcrystalline Fe2O3/MgO was nonporous, whereas nanocrystalline Fe2O3/MgO was mesoporous. Bimodal distribution of the pore size became unimodal as the layer of Fe2O3 was applied to nanocrystalline MgO. The macropores in a wide distribution which the nanocrystalline MgO had were absent in the nanocrystalline Fe2O3/MgO. The decomposition of CCl4 was largily enhanced by the overlayer of Fe2O3 on nanocrystalline MgO making the reaction between nanocrystalline Fe2O3/MgO and CCl4 be nearly stoichiometric. The reaction products were environmentally benign MgCl2 and CO2. Such an enhancement was not attainable with the microcrystalline samples. Even for the nanocrystalline MgO, the enhancement was not attained, if not with the Fe2O3 layer. Without the layer of Fe2O3, it was observed that the nanocrystalline domain of the MgO transformed into microcrystalline one as the decomposition of CCl4 proceeded on its surface. It appeared that the layer of Fe2O3 on the particles of nanocrystalline Fe2O3/MgO blocked the transformation of the nanocrystalline domain into microcrystalline one. Therefore, in order to attain stoichiometric reaction between CCl4 and Fe2O3/MgO core/shell structured composite metal oxide, the morphology of the core MgO has to be nanocrystalline, and also the nanocrystalline domains has to be sustained until the core was exhausted into MgCl2.

$Fe_{73}Si_{16}B_7Nb_3Cu_1$ 나노결정합금 분말코아의 자기적 특성에 미치는 분말입도 및 볼밀링 시간의 영향 (Effects of Powder Size and Ball-milling Time on the Magnetic Properties of $Fe_{73}Si_{16}B_7Nb_3Cu_1$ Nanocrystalline Alloy Powder Cores)

  • 문병기;강성찬;박원욱;손근용
    • 연구논문집
    • /
    • 통권34호
    • /
    • pp.121-129
    • /
    • 2004
  • The influence of powder size and ball-milling time on the magnetic properties of $Fe_{73}Si_{16}B_7Nb_3Cu_1$ nanocrystalline alloy powder was investigated. Flake-shaped powders were produced by pulverizing the ribbons annealed at $550^\circC$ for 1 hour. The powders were classified and consolidated into core shapes at a pressure of 18ton/$cm^2$. The initial permeability at 100kHz of the inductor core produced using $53-75\mum$ powders showed the highest value although its consolidated density showed the lowest one. The reason for the result is due to the cracking of the particles larger than $75\mum$ during the consolidation process. The ball-milling of powders for 2-4 hours improved the consolidation density and the initial permeability of the cores. The intrinsic coercivity of the powder decreased as well, resulting from the stress relief of the powder by a short-time milling.

  • PDF