具有磁轴偏置的陀螺磁力线的运行

F. S. Yamasaki, J. O. Rossi, Leandro C. Silva, E. Rangel, E. Schamiloglu
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引用次数: 3

摘要

非线性传输线(NLTLs)用于射频(RF)产生的兴趣越来越大,因为最近发表的结果显示了该应用的巨大前景。本文的主题是一个连续的铁氧体负载的非色散线被称为回旋磁非线性传输线(GNLTL),被轴向磁场偏置。该类型的传输线具有较高的射频转换效率(高达20.0%),在300 MHz至6.0 GHz的更宽频率范围内具有良好的运行能力。为了理解铁氧体磁偶极子的进动运动,一些作者采用了不同的方法来研究回旋磁效应。本文提出并研究的模型分析了GNLTL在高压下具有同轴结构,采用分布在20 cm同轴线上的NiZn铁氧体磁珠。通过对信号结果的比较,验证了螺线管对轴向偏磁的影响。本文探讨了由于磁系统设置的变化而在输出端产生的振荡。预计这里提出的讨论将作为开发一种能够为移动防御平台产生射频的新系统的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Operation of a Gyromagnetic Line with Magnetic Axial Bias
A growing interest has been raising around the use of nonlinear transmission lines (NLTLs) for radiofrequency (RF) generation since recent results published has demonstrated great prospects for this application. The subject of this paper is about a continuous ferrite loaded nondispersive line known as a gyromagnetic nonlinear transmission line (GNLTL), biased by an axial magnetic field. This type of transmission line has demonstrated a high RF conversion efficiency (up to 20.0%), showing a good capability of operation in a broader frequency range, between 300 MHz and 6.0 GHz. Several authors used different approaches to study the gyromagnetic effect to understand the precession movement of the ferrite magnetic dipoles. The model proposed and studied here to analyze the GNLTL has a coaxial structure using NiZn ferrite beads distributed in a 20-cm coaxial line at a high voltage operation. Signal results were compared to check the influence of a solenoid on the axial magnetic bias. This paper explores the oscillations generated at the output caused by the changes in the magnetic system setup. It is expected that the discussion presented here will be useful as a basis to develop a new system capable of generating RF for mobile defense platforms.
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