77.5Si Tunable Magnetic Properties of Glass-Coated Microwires by Initial Technical Parameters
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Tunable Magnetic Properties of Glass-Coated Microwires by Initial Technical Parameters

机译:通过初始技术参数对玻璃涂层微丝的可调磁性能

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摘要

Glass-coated microwires of three different compositions Fe77.5Si7.5B15, Fe45Co30Si10B15, and Co69Fe4Cr4Si12B11were produced by the Taylor-Ulitovsky method under water or air cooling. By changing the technological parameters such as the drawing velocity and cooling environment, the formation of different phases in the microwire metallic core was realized owing to partial crystallization, which was confirmed by X-ray diffraction analysis. A critical correlation of the wire composition, drawing velocity, and hysteresis loops was demonstrated. The combination of air cooling and low drawing velocities create the conditions of partial crystallization which may form a single or multiple crystal phases, depending on composition. On the contrary, the wires quenched in water had an amorphous state irrespectively of the drawing velocity and composition. Then, single-phase, biphase, or multi-phase state microwires could be produced. They demonstrated various types of the magnetization reversal: bistable, stepwise, and S shape with a highly enhanced coercivity. Tailoring the wire microstructure and the magnetization behavior during the fabrication process could be of considerable practical interest.
机译:三种不同成分的玻璃涂层微丝Fe n 77.5 nSi n 7.5B 15 n,Fe n 45 nCo n 30 nSi n 10 nB n < sub xmlns:mml = “ http://www.w3.org/1998/Math/MathML ” xmlns:xlink = “ http://www.w3.org/1999/xlink ”> 15 n和Co n 69 nFe n 4 nCr n 4 nSi n <子xmlns:mml = “ http://www.w3.org/1998/Math/MathML ” xmlns:xlink = “ http://www.w3.org/1999/xlink ”> 12 nB n 11 n是通过Taylor-Ulitovsky方法在水或空气冷却下生产的。通过改变拉拔速度和冷却环境等工艺参数,由于部分结晶,在微线金属芯中实现了不同相的形成,这通过X射线衍射分析得以证实。证明了线成分,拉拔速度和磁滞回线之间的关键关系。空气冷却和低拉伸速度的结合产生了部分结晶的条件,根据成分的不同,该部分结晶可能形成一个或多个晶相。相反,在水中淬火的金属丝具有无定形状态,而与拉丝速度和组成无关。然后,可以生产单相,双相或多相状态的微丝。他们演示了各种类型的磁化反转:双稳态,阶梯形和S形,矫顽力大大提高。在制造过程中定制线的微观结构和磁化行为可能具有相当大的实际意义。

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  • 来源
    《IEEE Transactions on Magnetics》 |2018年第11期|1-6|共6页
  • 作者单位

    Institute of Physics, Mathematics and Information Technology, Immanuel Kant Baltic Federal University, Kaliningrad, Russia;

    Institute of Physics, Mathematics and Information Technology, Immanuel Kant Baltic Federal University, Kaliningrad, Russia;

    College of New Materials and Nanotechnologies, National University of Science and Technology “MISIS,”, Moscow, Russia;

    College of New Materials and Nanotechnologies, National University of Science and Technology “MISIS,”, Moscow, Russia;

    Institute of Physics, Mathematics and Information Technology, Immanuel Kant Baltic Federal University, Kaliningrad, Russia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Magnetic hysteresis; Cooling; Crystallization; Amorphous magnetic materials; Magnetomechanical effects; Iron;

    机译:磁滞;冷却;结晶;非晶态磁性材料;磁机械效应;铁;
  • 入库时间 2022-08-18 04:11:56

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