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Power losses versus stress and temperature in soft amorphous alloys

机译:软非晶合金的功率损耗与应力和温度的关系

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The role of stress‐induced anisotropy on magnetic power losses has been investigated in FeBSiC amorphous ribbons, in the ‘‘as‐quenched’’ state and after annealing. Loss separation has been accomplished up to 400 Hz, under a wide range of applied tensile stresses (3.5 MPa≤sgr;≤300 MPa). It is found that, by increasing sgr;, the hysteresis loss componentWhis initially decreased and passes through a minimum around a critical stress sgr;0. Correspondingly, rearrangement of the maze domain structure associated with the unstressed state occurs and a longitudinally oriented pattern sets in. The dynamic loss exhibits a somewhat opposite trend, as it tends to monotonically increase with sgr;, thus attenuating the overall benefits of tensile stressing. Insight on the physical mechanisms responsible for these phenomena is obtained by measuring, at different stress levels,Whversus temperature (20 °C≤T≤280 °C). Topological rearrangements of the domain structure and interaction of the Bloch walls with localized stress fluctuations are envisaged, in association with roughness of the ribbon surface, as the main sources of coercivity and losses. As to the relaxation aftereffect, this is shown to produce additional loss under fairly restricted conditions of temperature and magnetization rate.
机译:在FeBSiC非晶带中,在“as”淬火状态下和退火后,已经研究了应力诱导的各向异性对磁功率损耗的作用。在广泛的拉伸应力(3.5 MPa≤&sgr;≤300 MPa)下,可实现高达400 Hz的损耗分离。结果表明,通过增加&sgr;,滞后损耗分量Whis最初减小,并在临界应力&sgr;0附近通过最小值。相应地,与无应力状态相关的迷宫域结构发生重排,并形成纵向取向的模式。动态损耗表现出相反的趋势,因为它倾向于单调地增加&sgr;,从而减弱了拉伸应力的整体优势。通过测量不同应力水平下的温度(20°C≤T≤280°C),可以深入了解导致这些现象的物理机制。与带状表面的粗糙度有关,设想了畴结构的拓扑重排和布洛赫壁与局部应力波动的相互作用,这是矫顽力和损失的主要来源。至于弛豫后效应,这在温度和磁化速率相当有限的条件下会产生额外的损耗。

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  • 来源
    《journal of applied physics》 |1991年第8期|5020-5022|共页
  • 作者

    C. Appino; F. Fiorillo;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 英语
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