Effect of rectifier capacitances on the conversion loss of ring modulators

V. Belevitch
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引用次数: 2

Abstract

THE SMALL-signal theory of rectifier modulators is normally developed by assuming that rectifiers switch periodically from their forward to their backward resistance, neglecting the capacitive component of the backward impedance. Such a resistive theory has been quite invaluable to compare the performance of various circuits and especially to study the effect of selective terminations.1 It is well established, however, that capacitive effects are not negligible, and become quite important at high frequencies. For small dissipation, the resistive and capacitive losses clearly add up without interaction, so that it will be sufficient for practical purposes to develop the theory for ideal rectifiers (zero forward and infinite backward impedance) shunted by a parasitic capacitance C. The Cowan modulator of Fig. 1 is then equivalent to a periodic switch shunted by C (Fig. 2). Similarly; a well-known equivalence for lattice networks reduces the ring modulator of Fig. 3, next page (with ideal auto transformers) to an ideal commutator enclosed between two capacitances C (Fig. 4, on the following page). The first step is to develop the theory of the linear variable 4-poles of Figs. 2 and 4 working between purely resistive and frequency independent source and load. The next important case of selective terminations has not yet been attacked.
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整流电容对环形调制器转换损耗的影响
整流器调制器的小信号理论通常是通过假设整流器周期性地从正向电阻切换到反向电阻而发展起来的,忽略了反向阻抗的容性成分。这种电阻理论对于比较各种电路的性能,特别是研究选择性终止的影响是非常宝贵的然而,电容效应是不可忽略的,并且在高频率下变得相当重要。对于小耗散,电阻和电容损耗明显加在一起而没有相互作用,因此对于实际目的来说,开发由寄生电容C分流的理想整流器(正向零阻抗和反向无限阻抗)的理论就足够了。图1的Cowan调制器相当于由C分流的周期开关(图2)。众所周知,晶格网络的等效性将下一页图3(带有理想的自耦变压器)中的环形调制器简化为两个电容C之间的理想换向器(下一页图4)。第一步是发展图2和图4的线性可变4极理论,在纯电阻和频率无关的源和负载之间工作。下一个重要的选择性堕胎案例还没有被提起。
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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