Double‐order negative group delay filtering function: A brilliant capability of the bilinear double‐order transfer function

IF 1.8 3区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC International Journal of Circuit Theory and Applications Pub Date : 2024-08-07 DOI:10.1002/cta.4213
Rawid Banchuin
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Abstract

In this work, the capability to generate the negative group delay (NGD) phenomenon at those frequencies higher than a certain value, that is, the NGD high‐pass (HP) filtering function, of the bilinear double‐order transfer function has been demonstrated. Based on the Type‐I bilinear double‐order filter circuit, our theory has been verified by strong agreements between the formulae and their proof‐of‐concept (POC) circuit‐based simulation results. Both formula‐based and POC circuit‐based simulations give the minimum group delay of −5 ms yet the cut‐off frequency of 10 and 9 rad/s, respectively. Such slight deviation is caused by the approximation error of the bilinear double‐order impedance. By employing two orders, the bilinear double‐order transfer function has been found to be the basis transfer function for the NGD filtering function with the highest degree of freedom. Based on our design equation for the NGD filtering function, it can be seen that the distances between zero and pole and the characteristic frequency of the bilinear double‐order transfer function are governed by such characteristic frequency itself, the cut‐off frequency of the NGD filtering function, and the fractional order of the Laplacian operator. In addition, the effects of the fractional order of the Laplacian operator, the fractional order of the transfer function, and the ratio of the abovementioned distances to the characteristics of the newly found double‐order NGD filtering function have been studied in detail.
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双阶负群延迟滤波函数双线性双阶传递函数的卓越能力
在这项研究中,我们证明了双线性双阶传递函数在高于特定值的频率上产生负群延迟(NGD)现象的能力,即 NGD 高通(HP)滤波函数。基于 I 型双线性双阶滤波器电路,我们的理论得到了公式和基于概念验证(POC)电路仿真结果的有力验证。基于公式的仿真和基于 POC 电路的仿真都得出了最小群延迟为 -5 ms,截止频率分别为 10 和 9 rad/s。造成这种微小偏差的原因是双线性双阶阻抗的近似误差。通过采用双阶,我们发现双线性双阶传递函数是自由度最高的 NGD 滤波函数的基础传递函数。根据我们的 NGD 滤波函数设计方程,可以看出双线性双阶传递函数的零点和极点之间的距离以及特征频率受该特征频率本身、NGD 滤波函数的截止频率以及拉普拉斯算子的分数阶的制约。此外,还详细研究了拉普拉斯算子的分数阶、传递函数的分数阶以及上述距离的比值对新发现的双阶 NGD 滤波函数特性的影响。
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来源期刊
International Journal of Circuit Theory and Applications
International Journal of Circuit Theory and Applications 工程技术-工程:电子与电气
CiteScore
3.60
自引率
34.80%
发文量
277
审稿时长
4.5 months
期刊介绍: The scope of the Journal comprises all aspects of the theory and design of analog and digital circuits together with the application of the ideas and techniques of circuit theory in other fields of science and engineering. Examples of the areas covered include: Fundamental Circuit Theory together with its mathematical and computational aspects; Circuit modeling of devices; Synthesis and design of filters and active circuits; Neural networks; Nonlinear and chaotic circuits; Signal processing and VLSI; Distributed, switched and digital circuits; Power electronics; Solid state devices. Contributions to CAD and simulation are welcome.
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