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Unmatched Accuracy: How Mismatches Can Improve the Accuracy of Swept Frequency Measurements

机译:无与伦比的精度:不匹配如何提高扫频测量的精度

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The goal of this article is to shed light on the mystery surrounding the effective source match of three-resistor power dividers and two-resistor power splitters. The distinction between dividers and splitters is often found in the literature but is ambiguous. In common use and described in many microwave textbooks, the three-resistor divider is the component of choice for standard applications [1], [2]. The three-resistor divider is matched at all three ports and can be used both for splitting incoming power into two parts and for combining two signals into one. In contrast, the two-resistor splitter is matched only at the input port but shows a reflection coefficient of 0.25 in the reverse direction at the output ports when terminated in matched loads. The only information commonly found in the literature regarding this type of splitter is that it should be used in leveling loops and reference measurements [3]. As a justification for this advice, the effective source match Ceff is put forward, which is supposed to be zero for the splitter but gives -0.5 for the divider. This behavior is explained in this article. The calculation of is a good example of how to use a signal flow graph and apply Mason?s rule [4]. Getting to the bottom of this puzzle leads to digging out some very old publications. The zero reflection coefficient is not always the cleverest solution.
机译:本文的目的是阐明围绕三电阻功率分配器和两电阻功率分配器的有效源匹配的奥秘。分隔符和分隔符之间的区别通常在文献中发现,但尚不明确。三电阻分压器是常用的并且在许多微波教科书中都有描述,是标准应用[1],[2]的选择组件。三电阻分压器在所有三个端口上均匹配,既可以用于将输入功率分成两部分,也可以用于将两个信号合并为一个。相反,两电阻分路器仅在输入端口匹配,但当终止于匹配负载时,在输出端口反向显示反射系数为0.25。关于这种类型的分离器,文献中通常可以找到的唯一信息是应将其用于调平回路和参考测量[3]。作为此建议的理由,提出了有效的源匹配Ceff,该有效源匹配Ceff对于拆分器应该为零,而对于拆分器则为-0.5。本文介绍了此行为。 的计算是如何使用信号流图并应用梅森规则的一个很好的例子[4]。深入探究这个难题将导致挖掘出一些非常古老的出版物。零反射系数并不总是最聪明的解决方案。

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