反激电源电磁干扰信号与抑制技术

H. K. Patel
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引用次数: 9

摘要

反激电源由于变压器一次电流(IPRI)、漏极电压(VDrain)、二极管电压(VDiode)和变压器二次电流(ISEC)波形的叠加而具有独特的电磁干扰特征;如果没有适当的电磁干扰设计技术,它们产生的发射电流可能会超过期望的电磁干扰规格限制。初级电流波形导致初级差分模式发射电流在交流电源和电源输入之间循环。如果由PC板布局定义的电流路径环绕一个大的物理区域,它还可以由于辐射磁场而产生共模发射。漏极电压、二极管电压和二次电流波形是产生共模发射电流的主要原因。控制SMPS中的电磁干扰需要注意以下几个方面:差模滤波共模滤波电源线阻尼本文讨论了SMPS中电磁干扰信号的概念,并提出了抑制电磁干扰的概念技术。详细讨论了差模滤波器分析和共模滤波器分析,得到了差模滤波器的有效高频电路模型。还简要介绍了电源线阻尼和变压器结构的重要方面。本文旨在为EMI滤波器设计人员提供有效的辅助工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flyback Power Supply EMI Signature and Suppression Techniques
Flyback power supplies have a distinctive EMI signature caused by superposition of the transformer primary current (IPRI), drain voltage (VDrain), diode voltage (VDiode) and transformer secondary current (ISEC) waveforms; each generate emission currents which may exceed the desired EMI specification limits without proper EMI design technique. The primary current waveform causes primarily differential mode emission currents to circulate between the AC mains and the power supply input. It can also create common mode emissions due to radiated magnetic fields if the current path defined by the PC board layout encircles a large physical area. The drain voltage, diode voltage and secondary current waveforms are mainly responsible for the generation of common mode emission currents. Controlling EMI in SMPS requires attentions to following areas: 1. Differential mode filtering 2. Common mode filtering 3. Power cord damping 4. Transformer construction This paper addresses the concept of EMI signature in SMPS and presents conceptual techniques for EMI suppression. Differential mode filter analysis and common mode filter analysis are discussed in detail and an effective high frequency circuit model of the differential mode filter is obtained. Important aspects of power cord damping and transformer construction are also briefly covered. This paper is intended to be an efficient helping tool for the EMI filter designers.
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