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Passive reciprocal transistor-based RF tuneable inductances

机译:基于无源互易晶体管的RF可调电感

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摘要

Where unused frequency bands become scarce, their resourceful handling is essential. Consequential, to enable best use of various frequency bands with a single device, the need for reconfigurability emerges. Complementary to already existing technologies, a novel transistor-based circuit is introduced that makes passive, reciprocal, electronic reactive tuning possible. Ultimately, a tuneable inductance was chosen as an example for reactance circuits due to its outstanding relevance for modern, reconfigurable circuit design. The general development process of the inductance circuit is outlined through an abstracted process overview. It enables a broad understanding of the challenges and possibilities of this approach. Also, by extensive circuit analysis with ideal and non-ideal element values, the gap between numerical simulation and guidelines for practical implementation can be narrowed. From the resulting analytic expression, the key figures of an electronic tuneable inductance are derived, namely the range of inductive tuning, the quality factor and the achievable frequency range. These values enable the circuit designer to set up a reasonable starting point for developing a tuneable inductance circuit and gives the means to estimate its unprecedented, passive output behaviour.
机译:在未使用的频带变得稀缺的地方,对它们进行足智多谋的处理至关重要。因此,为了使单个设备能够最好地利用各种频带,出现了可重构性的需求。作为对现有技术的补充,引入了一种新颖的基于晶体管的电路,该电路使无源,互易的电子无功调谐成为可能。最终,由于可调谐电感与现代可重构电路设计的显着相关性,最终选择了可调谐电感作为电抗电路的示例。通过抽象的过程概述来概述电感电路的一般开发过程。它使人们对这种方法的挑战和可能性有了广泛的了解。而且,通过对具有理想和非理想元素值的电路进行广泛分析,可以缩小数值模拟与实际实现准则之间的差距。从得到的解析表达式中,得出电子可调电感的关键指标,即电感调谐范围,品质因数和可达到的频率范围。这些值使电路设计人员能够为开发可调电感电路设置合理的起点,并提供估算其空前的无源输出性能的方法。

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