Investigation of dielectric and magnetic properties of AL-800 ferrite

IF 0.3 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY Lithuanian Journal of Physics Pub Date : 2022-12-10 DOI:10.3952/physics.v62i4.4824
S. Rudys, S. Balčiu̅nas, C. Vollinger, J. Banys, V. Kalendra
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Abstract

Ferrites are usually used in accelerators for tuning radiofrequency (RF) cavities and in nonreciprocal devices controlling the power flow in RF accelerating systems. The conventional parallel‐biased Ni Zn ferrites employed for varying the frequency of accelerating cavities have the disadvantage of high saturation magnetization (4πMs). Application of the transversely biased yttrium iron garnet (YIG) material in RF tuners promises a significant reduction of power loss compared with systems that use the longitudinal bias. To inject the beam and extract the beam out of the CERN accelerator rings the fast kicker magnets made from ferrite materials must be used. Power deposition in the kicker magnets can be a limitation: if the temperature of the ferrite yoke exceeds the Curie temperature, the beam will not be properly deflected. Investigation of the ferrite electromagnetic properties of materials up to the GHz frequency range is essential for a correct impedance evaluation. This report summarizes an approach for deriving electromagnetic properties as a function of both frequency and temperature of the AL-800 garnet material. This information will be useful for simulating ferrite behaviour under realistic operating conditions.
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AL-800铁氧体介电和磁性能的研究
铁氧体通常用于调谐射频(RF)腔的加速器和控制RF加速系统中功率流的非互易器件。用于改变加速腔频率的传统平行偏置Ni-Zn铁氧体具有高饱和磁化强度(4πMs)的缺点。与使用纵向偏置的系统相比,横向偏置钇铁石榴石(YIG)材料在RF调谐器中的应用有望显著降低功率损耗。为了注入光束并从欧洲核子研究中心加速器环中提取光束,必须使用由铁氧体材料制成的快速踢球磁体。踢球磁体中的功率沉积可能是一个限制:如果铁氧体磁轭的温度超过居里温度,光束将不会正确偏转。研究高达GHz频率范围的材料的铁氧体电磁特性对于正确的阻抗评估至关重要。本报告总结了一种推导AL-800石榴石材料电磁特性随频率和温度变化的方法。这些信息将有助于模拟实际操作条件下的铁氧体行为。
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来源期刊
Lithuanian Journal of Physics
Lithuanian Journal of Physics 物理-物理:综合
CiteScore
0.90
自引率
16.70%
发文量
21
审稿时长
>12 weeks
期刊介绍: The main aim of the Lithuanian Journal of Physics is to reflect the most recent advances in various fields of theoretical, experimental, and applied physics, including: mathematical and computational physics; subatomic physics; atoms and molecules; chemical physics; electrodynamics and wave processes; nonlinear and coherent optics; spectroscopy.
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