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An Efficient Le-fdtd Method For The Analysis Of The Active Integrated Circuit And Antenna Mounted Non-linear Devices

机译:一种有效的Le-fdtd方法,用于分析有源集成电路和天线安装的非线性器件

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摘要

The trend of microwave circuits has been toward highly integrated systems. Most design tools for designing microwave circuits mounted the linear or the nonlinear devices adopt the fundamental circuit theory using the S matrix on the frequency domain. The harmonic balance method is also used to correspond to the nonlinear circuit. Therefore, the effect of the electromagnetic field, for example, a mutual coupling between sub-circuits through the space is almost disregarded. To calculate these circuits included its surrounding electromagnetic field, the finite difference time domain method combined with the equivalent circuit simulation had been presented as the lumped element FDTD (LE-FDTD) method. In general, even if an analytical target is a linear circuit, the FDTD method requires very long analytical time. In this paper, we propose an efficient LE-FDTD method to reduce the analytical time. We investigate its efficiency to compare with the conventional LE-FDTD method or measurements, consequently, it is confirmed that the proposal method requires only at analytical time of 1/10 compared with the conventional method. We also show that the proposal method is able to analyze characteristics of the active integrated antenna (AIA) which are practicably impossible to analyze by using the conventional method.
机译:微波电路的趋势已经朝着高度集成的系统发展。用于设计安装线性或非线性器件的微波电路的大多数设计工具都采用基本电路理论,该理论在频域上使用S矩阵。谐波平衡法也用于对应非线性电路。因此,几乎忽略了电磁场的影响,例如通过空间的子电路之间的相互耦合。为了计算这些电路的周围电磁场,提出了时域有限差分法和等效电路仿真相结合的集总元件FDTD(LE-FDTD)方法。通常,即使分析目标是线性电路,FDTD方法也需要非常长的分析时间。在本文中,我们提出了一种有效的LE-FDTD方法来减少分析时间。我们调查了其效率,以与常规LE-FDTD方法或测量结果进行比较,因此,可以确认,与常规方法相比,该建议方法仅需要1/10的分析时间。我们还表明,该建议方法能够分析有源集成天线(AIA)的特性,而使用传统方法实际上无法分析这些特性。

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