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Theory and Design of Tunable and Reconfigurable Microwave Passive Components on Partially Magnetized Ferrite Substrate

机译:部分磁化铁氧体衬底上可调谐和可重构微波无源元件的理论和设计

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摘要

Typical microwave components such as antennas are large in size and occupy considerable space. Since multiple standards are utilized in modern day systems and thus multiple antennas are required, it is best if a single component can be reconfigured or tuned to various bands. Similarly phase shifters to provide beam scanning and polarization reconfigurable antennas are important for modern day congested wireless systems. udTunability of antennas or phase shifting between antenna elements has been demonstrated using various techniques which include magnetically tunable components on ferrite based substrates. Although this method has shown promising results it also has several issues due to the use of large external electromagnets and operation in the magnetically saturated state. These issues include the device being bulky, inefficient, non-integrable and expensive. In this thesis, we have tried to resolve the above mentioned issues of large size and large power requirement by replacing the large electromagnets with embedded bias windings and also by operating the ferrites in the partially magnetized state. udNew theoretical models and simulation methodology have been used to evaluate the performance of the microwave passive components in the partially magnetized state. A multilayer ferrite Low Temperature Cofired Ceramic (LTCC) tape system has been used to verify the performance experimentally. There exists a good agreement between the theoretical, simulation and measurement results. Tunable antennas with tuning range of almost 10 % and phase shifter with an FoM of 83.2/dB have been demonstrated in this work, however the major contribution is that this has been achieved with bias fields that are 90 % less than the typically reported values in the literature. Finally, polarization reconfigurability has also been demonstrated for a circular patch antenna using a low cost additive manufacturing technique. udThe results are promising and indicate that highly integrated ferrite based tunable components are feasible in small form factor, without the need of the large electromagnets and coils, and thus can be operated at very low bias levels as compared to the ones which are operated in the saturated state with external bias mechanisms.
机译:典型的微波组件,例如天线,尺寸较大且占用大量空间。由于现代系统中使用了多种标准,因此需要多个天线,因此最好是将单个组件重新配置或调谐到各个频段。类似地,提供波束扫描和极化可重构天线的移相器对于现代拥挤的无线系统也很重要。使用多种技术已经证明了天线的可调性或天线元件之间的相移,这些技术包括基于铁氧体的基板上的磁性可调组件。尽管该方法已显示出令人鼓舞的结果,但由于使用大型外部电磁体以及在磁饱和状态下运行,该方法也存在一些问题。这些问题包括设备体积大,效率低,不可集成且昂贵。在本文中,我们试图通过用嵌入的偏置绕组代替大型电磁体,并使铁氧体在部分磁化状态下运行,以解决上述大尺寸,大功率需求的问题。新的理论模型和仿真方法已用于评估部分磁化状态下微波无源组件的性能。多层铁氧体低温共烧陶瓷(LTCC)胶带系统已用于通过实验验证性能。理论,仿真和测量结果之间存在良好的一致性。这项工作已经证明了调谐范围几乎为10%的可调谐天线和FoM为83.2/ dB的移相器,但是主要的贡献在于,它的偏置场比通常报告的值小90%在文学中。最后,还已经证明了使用低成本增材制造技术的圆形贴片天线的极化可重构性。 ud结果令人鼓舞,并表明高度集成的基于铁氧体的可调组件在小尺寸形式中是可行的,而无需大型电磁体和线圈,因此与在低噪声水平下运行相比,可以在非常低的偏置水平下运行具有外部偏置机制的饱和状态。

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    Ghaffar Farhan A.;

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  • 年度 2016
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  • 正文语种 en
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