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Engineering design of lossless passive soft switching methods for PWM converters. II. With nonminimum voltage stress circuit cells

机译:PWM转换器的无损无源软开关方法的工程设计。二。使用非最小电压应力电路单元

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This paper proposes the analysis and design methodology of lossless, passive soft switching methods for PWM converters. The emphasis of the design and analysis is for PWM converters that use nonminimum voltage stress (non-MVS) circuit cells to provide soft switching. PWM converters with non-MVS circuit cells have several distinct advantages over converters that use minimum voltage stress (MVS) cells. With the same relative size of the inductor and capacitor added for soft switching, the non-MVS cells have a substantially larger duty ratio range where soft switching is guaranteed. In addition, the overcurrent stress of the main switch, under most conditions, will be lower and an optimum value of inductor and capacitor added for soft switching can be used. Therefore, with proper design, the non-MVS cells provide higher efficiency. These advantages are obtained with the price of higher switching voltage stress and one additional inductor. The loss model for a MOSFET and optimum capacitor and inductor values are utilized in the design procedure. Examples of the design procedure are given for PFC and DC-DC applications. Experimental results backup the claim of higher efficiency.
机译:本文提出了用于PWM转换器的无损无源软开关方法的分析和设计方法。设计和分析的重点在于使用非最小电压应力(non-MVS)电路单元提供软开关的PWM转换器。与使用最小电压应力(MVS)单元的转换器相比,具有非MVS电路单元的PWM转换器具有几个明显的优势。在为软开关添加的电感器和电容器的相对尺寸相同的情况下,非MVS单元的占空比范围要大得多,可以保证软开关。此外,在大多数情况下,主开关的过电流应力会降低,并且可以使用为软开关添加的最佳电感器和电容器值。因此,通过适当的设计,非MVS电池可提供更高的效率。以更高的开关电压应力和一个额外的电感器为代价获得这些优势。设计过程中采用了MOSFET的损耗模型以及最佳的电容器和电感器值。给出了针对PFC和DC-DC应用的设计程序示例。实验结果证明了更高的效率。

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