Dual-band Via-less Band-pass Filter Based on Cascaded Closed Ring Resonator

Teguh Firmansyah, S. Praptodiyono, Achmad Rifai, Syah Alam, Ken Paramayudha
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Abstract

A band-pass filter (BPF) is an essential part of a wireless communication system as it functions to reduce interference and noise. Many structures have been proposed to achieve a high-quality BPF. Typically, these structures utilize vias. However, vias has several drawbacks, including impedance discontinuities, increased resistance values, and complex structures. In this study, we propose a dual-band BPF based on a cascaded closed ring resonator (CCRR) without using vias. Specifically, the proposed structure consists of multiple CCRRs connected at the corner pattern and incorporates capacitive coupling to the input impedance. Additionally, the CCRR configuration has dual sizing to achieve dual-band performance. Subsequently, the proposed BPF is simulated and fabricated using Duroid Rogers RT 5880 with dielectric constant εr = 2.2, dissipation factor tan δ = 0.0009, and thickness h = 1.575 mm. The measurement results demonstrated that the dual-band BPF operated at a resonant frequency of 2.50 GHz with a transmission coefficient (S21) value of -2.18 dB in the first band. In the second band, a resonant frequency of 3.70 GHz was obtained with an S21 value of -1.43 dB. The bandwidth in the first band was 160 MHz, and in the second band, it was 110 MHz. Moreover, based on the measurement results, the reflection coefficient (S11) in the first band was -11.05 dB, while in the second band, it was -23.3 dB. The excellent agreement between the simulation and measurement validates the proposed method.
基于级联闭合环谐振器的双频无过通带通滤波器
带通滤波器(BPF)是无线通信系统的重要组成部分,它具有降低干扰和噪声的功能。为了实现高质量的BPF,已经提出了许多结构。通常,这些结构使用过孔。然而,过孔有几个缺点,包括阻抗不连续、电阻值增加和结构复杂。在这项研究中,我们提出了一个基于级联闭合环谐振器(CCRR)的双频BPF,而不使用过孔。具体来说,所提出的结构由多个ccrr组成,这些ccrr连接在角落图案上,并将电容耦合与输入阻抗结合起来。此外,CCRR配置具有双尺寸以实现双频性能。随后,采用Duroid Rogers RT 5880对所提出的BPF进行了模拟和制备,其介电常数εr = 2.2,耗散因子tan δ = 0.0009,厚度h = 1.575 mm。测量结果表明,双频BPF工作在2.50 GHz的谐振频率下,第一频段的传输系数(S21)为-2.18 dB。在第二波段,谐振频率为3.70 GHz, S21值为-1.43 dB。第一个频段的带宽为160 MHz,第二个频段的带宽为110 MHz。根据测量结果,第一波段的反射系数(S11)为-11.05 dB,第二波段的反射系数(S11)为-23.3 dB。仿真结果与实测结果吻合良好,验证了所提方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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