• 제목/요약/키워드: magnetic particle

검색결과 603건 처리시간 0.026초

산업용 자성폴리머 필터소재의 여과특성 연구 (Filtration Characteristics of Magnetic Fibrous Polymeric Filter Elements for Industrial Lub-systems)

  • 안병길;최웅수;이용훈;정용진;권오관
    • Tribology and Lubricants
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    • 제12권3호
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    • pp.39-47
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    • 1996
  • The magnetic fibrous polymeric oil filter elements for industrial lub-systems were obtained by pneumoextrusion processing prepared from thermoplastic pqlymer (polyamide) containing a magnetic particulate filler (Ba ferrite), and treated subsequently in a magnetic fields. Using the standard laboratory oil filtration test rig, metallic particle quantifier and image analyser system, the dependence of filtration charateristics of the magnetic filter media on the parameters of porosity and magnetic properties was investigated. The pressure drops and efficiencies of lubricating filter elements were measured on the packing density and magnetised filler content of filter element. Also, the industrial lub-systems such as lubricant filters for gear test rig and electric discharge processing machine were used for testing the flitrational characteristics of tl, c magnetised filter elements. The magnetic fibrous polymeric filter material was shown to possess a highly filtration efficiency in filtering the fine ferrous particles with increasing the magnetic force of filter element. Therefore, it is expected that the magnetic fibrous polymeric filter material should be used for effective oil filrers on the industrial lub-systems.

Methods for Determining the Quality of Magnetic Fluids

  • Chioran, Viorica;Chioran, Marius
    • Journal of Magnetics
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    • 제18권2호
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    • pp.197-201
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    • 2013
  • This paper presents the conversion parameter values of the magnetic properties of magnetic fluids. These values were determined for three magnetic fluid samples containing particles with diameters between 30 ${\AA}$ and 170 ${\AA}$. The factors that may affect the value of this parameter (size of particle, magnetic properties, the presence of clusters and aggregates) are also studied. The determined values for the conversion parameter (${\gamma}$) are between 0.25 and 0.76 and the determined limit value is 0.8. Because many applications require magnetic fluids with the saturation magnetization as high as possible and the viscosity as low as possible [1], it has been considered necessary to determine this parameter which describes the quality of magnetic fluids.

초상자성 나노 입자의 자기이완 특성에 관한 이론적 연구 (The Development of Theoretical Model for Relaxation Mechanism of Sup erparamagnetic Nano Particles)

  • 장용민;황문정
    • Investigative Magnetic Resonance Imaging
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    • 제7권1호
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    • pp.39-46
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    • 2003
  • 목적 : 간(liver)과 림프절 특이성 등의 다기능성을 나타내는 미세 초상자성 산화철 입자(ultrasmall superparamagnetic iron oxide: USP IO)의 자기이완(magnetic relaxation)에 대한 이론적 모델을 제시하고 이러한 이론적 모델에 근거한 미세 초상자성 산화철 입자의 자기장의 세기에 따른 자기 이완시간의 변화를 컴퓨터 모의 실험을 통해 연구하였다. 대상 및 방법 : 초상자성 산화철 입자를 조영제로 사용하기 위해서는 생체적합성 고분자로 축약(encapsulation)시키게 되고 따라서 확산(diffusion) 및 전자스핀의 fluctuation 에 기인하여 발생하는 자유 물분자와 간접 상호작용인 "outsphere " 기전에 근거하여 자기이완모델을 개발하였다. 또한 초상자성체의 경우 자기 모멘트가 상자성 입자에 비해 최소 수백배에서 최대 수만배까지 더 크므로 일반적으로 상자성 조영제의 "out sphere" 기전에서 가정하는 저자장 근사치를 사용할 수 없고 따라서 본 연구에서는 Brillouin함수로 표현되는 총자화에 대한 표현을 적용하여 저자장뿐만 아니라 고자장의 경우까지를 모두 포함하는 "out sphere" 기전에 의한 T1 그리고 T2 이완율에 대한 모델을 개발하였다. 이렇게 개발된 자기이완모델을 사용하여 미세 초상자성 산화철 입자의 자기장의 세기에 따른 자기 이완시간의 변화를 symbolic computation tool 인 MathCad(MathCad, USA)를 사용한 컴퓨터 모의 실험을 통해 조사하였다. 결과 : 미세 초상자성 산화철 입자의 T1, T2 자기이완 특성은 먼저, 저자장 영역 (<1.0 Mhz)에서는 이론적 모델의 spectral density function에 들어 있는 두 개의 correlation time중 $\tau$$_{s1}$ 중 (T2의 경우 ${\tau}_{S2}$)이 주된 역할을 하는 것을 알 수 있었고 이는 결과적으로 이러한 나노자성체 입자들이 낮은 자기장하에서는 열적으로 야기된 자기모멘트들의 재배열이 주된 역할을 하는 것으로 해석할 수 있다. 한편 고자장 영역에서는 correlation time 중 $\tau$가 주된 역할을 담당하는데는 $\tau$는 나노 입자의 크기와 연관되어 있으며 고자장에서 입자 크기에 따른 T1 이완율(R1)과 T2 이완율(R2)의 차이는 이러한 입자크기의 차이에 의해 발생하는 것으로 해석할 수 있다. 나노입자에 포함된 철 원자수를 변화시키는 경우 철 원자수가 증가 할 수록 R1과 R2가 증가하는 결과를 나타내었다. 한편 온도변화에 따른 T1, T2 자기이완시간의 변화는 정상체온 근처의 제한적인 온도범위내에서 저자장 영역에서의 아주 작은 변화를 제외하고는 큰 차이를 보이지 않았으나 T1에 비해 T2에서 이러한 변화가 상대적으로 더 작게 나타났다. 결론 : 임상적 다기능성을 나타낼 가능성이 많은 것으로 보고되고 있는 미세 초상자성 산화철 입자의 자기이완에 대한 이론적 모델을 초상자성 나노입자의 물리적 특성에 기초하여 제시하였고 이러한 이론적 모델에 근거한 미세 초상자성 산화철 입자의 자기장의 세기에 따른 자기 이완시간의 변화를 컴퓨터 모의 실험을 통해 조사하였다.다.

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효과적인 중성자 차폐를 위한 경량 연자성 물질 활용방안 연구 (Study on the Application of Soft Magnetic Material for Effective Neutron Shielding)

  • 김영찬;강창우
    • 방사선산업학회지
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    • 제17권1호
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    • pp.93-100
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    • 2023
  • This study analyzes the neutron shielding performance of Soft Magnetic Material and proposes a military application. In general, the military protection facility has been constructed with thick concrete, so Soft Magnetic Material, consisting of boron, was used with concrete in this study. To do so, Monte-Carlo N-Particle (MCNP) was applied to simulate the Watt-fission neutron spectrum of 235U and 239Pu. As a result, a configuration of polyethylene and Soft Magnetic Material is evaluated about four times better than borated polyethylene concerning the atomic weight of boron inside each shielding material. Also, when a nuclear weapon explosion is simulated in MCNP, 1 mm of Soft Magnetic Material with 20 cm of concrete shows about 55% more additional neutron shielding performance compared to when Soft Magnetic Material is not used. In this work, the neutron shielding performance of Soft Magnetic Material could be identified and Soft Magnetic Material would be useful for neutron shielding if applicable to concrete structure.

Influence Factor on Magnetization Property of Carbonyl Iron-based Magnetorheological Fluids

  • Wang, Daoming;Zi, Bin;Qian, Sen;Qian, Jun;Zeng, Yishan
    • Journal of Magnetics
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    • 제21권4호
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    • pp.622-628
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    • 2016
  • Magnetization property is a critical factor for magnetorheological fluids (MRFs) to achieve the liquid-solid transition. The main focus of this study is on exploring the influence factors on magnetization properties of MRFs. In this paper, a theoretical analysis is performed to discuss the magnetization characteristics of MRFs firstly. Then, a method for the preparation of carbonyl iron-based MRFs is illustrated and five MRFs samples with various material parameters are prepared. It is succeeded by a series of experiments on testing the hysteresis loop and the magnetization curve of each sample and the influence factors are compared and analyzed. Experimental results indicate that there is basically no hysteresis phenomenon on MRFs which exhibits superparamagnetic behavior at room temperature. A surfactant coating on magnetic particles can slightly improve the MRFs magnetization. Additionally, the magnetic susceptibility and the saturation magnetization both increase with the particle concentration, whereas the influence of particle diameter is relatively very small. Moreover, as the temperature increases, the magnetization decreases and the declining rate accelerates gradually.

Numerical Calculation of the Deflected Path of Electrons through Water under External Magnetic Fields

  • Jeong, Dong-Hyeok;Kim, Jhin-Kee;Shin, Kyo-Chul;Kim, Ki-Hwan;Kim, Jeung-Kee;Oh, Young-Kee;Ji, Young-Hoo;Lee, Jeong-Ok;Kim, Seung-Kyu
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2003년도 제27회 추계학술대회
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    • pp.71-71
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    • 2003
  • The study on magnetic field combined radiation therapy, as a new technique to modify the dose distributions using external magnetic field, has been investigated. The goal of the study is to develop the techniques for dose localization, as a particle beam, from the strong magnetic fields. In this study, in order to study the principle of dose deposition in external fields, as a basic approach, we have calculated approximately the paths of traveling electrons in water under external magnetic fields with numerical methods. The calculations are performed for a primary particle by cumulating the steps which are defined as small path lengths which energy loss can be ignored. In this calculation, the energy loss and direction change for a step was calculated by using total stopping power and Lorentz force equation respectively. We have examined the deflected paths of the electron through water as a function of external magnetic field and incident electron s energy. Since we did not take account of the multiple scattering effects for electrons through water, there are errors in this calculation. However, from the results we can explain the principle of dose variation and dose focusing for electron beams under strong magnetic fields in water.

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