基于时域边界元法的隧道二极管谐振振荡器建模

IF 1.8 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Shakirudeen O. Lasisi;Trevor M. Benson;Mark T. Greenaway;Gabriele Gradoni;Kristof Cools
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引用次数: 1

摘要

我们演示了如何使用全波时域边界元法(BEM)求解器与电路求解器的耦合来模拟1)谐振隧道二极管(RTD)振荡器中高频振荡的产生,以及2)具有显著频率差异的非相同RTD的相互耦合和同步以实现相干功率组合。数值模拟表明,同步器件中单个振荡器的联合输出功率高达3.7倍。RTD的非差分电导被建模为具有非线性电流-电压关系的集总分量。集总单元采用有限间隙模型以一致和离散无关的方式与辐射结构耦合。所得到的电路方程与时域电场积分方程同时求解,并与时域电场积分方程一致,时域电场积分方程模拟了构成器件的导电表面的电磁场瞬态散射。本文介绍了三个新元素:(i)将网格无关馈线应用于RTD设备馈线的建模,(ii)将辐射系统耦合到具有负差分电阻的强非线性组件,以及(iii)在适用的情况下使用电路模型验证该模型,并根据两个RTD靠近时同步的实验观察进行验证。这三个元素提供了一种方法,可以创建对RTD源和相关技术建模的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of Resonant Tunneling Diode Oscillators Based on the Time-Domain Boundary Element Method
We demonstrate how the coupling of a full-wave time-domain boundary element method (BEM) solver with a circuit solver can be used to model 1) the generation of high frequency oscillations in resonant tunneling diode (RTD) oscillators, and 2) the mutual coupling and synchronization of non-identical RTDs with significant differences in frequencies to achieve coherent power combination. Numerical simulations show a combined output power of up to 3.7 times a single oscillator in synchronized devices. The non-differential conductance of the RTD is modeled as a lumped component with a non-linear current-voltage relationship. The lumped element is coupled to the radiating structure using a finite-gap model in a consistent and discretisation independent manner. The resulting circuit equations are solved simultaneously and consistently with time-domain electric field integral equations that model the transient scattering of electromagnetic (EM) fields from conducting surfaces that make up the device. This paper introduces three novel elements: (i) the application of a mesh independent feed line to the modelling of feed lines of RTD devices, (ii) the coupling of the radiating system to a strongly non-linear component with negative differential resistance, and (iii) the verification of this model with circuit models where applicable and against the experimental observation of synchronisation when two RTDs are placed in close proximity. These three elements provide a methodology that create the capacity to model RTD sources and related technology.
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来源期刊
CiteScore
4.30
自引率
0.00%
发文量
27
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