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Design of cascaded all pass network with monotonous group delay response for broadband radio frequency applications

机译:宽带射频应用中具有单调群时延响应的级联全通网络设计

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摘要

In this study, an iterative procedure is developed for designing radio frequency circuits with a specified group delay dispersion (GDD) characteristics over a broad bandwidth. Second order all pass networks (APNs) are cascaded systematically over multiple stages to achieve the same. The approach is flexible enough to design circuits for various group delay responses. This is demonstrated using two-stage APN with both positive and negative slopes of linear and non-linear group delay responses for a frequency band of 500 MHz–1 GHz. The proposed multi-stage design procedure is shown to help extend the bandwidth over which a uniform resolution of frequency discrimination is possible. Practical limitations in implementing this circuit are addressed while developing the prototype. The circuit is realised as a surface mount device-based implementation of modified two-stage APN. The realised circuit has a GDD of −6 ns/GHz and an insertion loss of 1.2 dB for 500 MHz–1 GHz band. The performance parameters such as GDD, insertion loss and device footprint of the proposed approach are significantly better than previously reported.
机译:在这项研究中,开发了一种迭代程序,用于设计在宽带宽上具有指定群延迟分散(GDD)特性的射频电路。二阶全通网络(APN)在多个阶段上系统级联以实现相同目的。该方法足够灵活以设计用于各种群延迟响应的电路。使用两级APN可以证明这一点,在500 MHz–1 GHz频带上,线性和非线性群延迟响应的正斜率和负斜率都可以。所提出的多级设计程序可以帮助扩展带宽,在该带宽上可以实现频率分辨的统一分辨率。开发原型时,解决了实现此电路的实际限制。该电路实现为改进的两级APN的基于表面贴装器件的实现。实际电路的GDD为-6 ns / GHz,在500 MHz–1 GHz频带上的插入损耗为1.2 dB。提出的方法的性能参数(如GDD,插入损耗和设备占用空间)明显优于以前报道的方法。

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