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首页> 外文期刊>Journal of power electronics >Design Methodology for Optimal Phase-Shift Modulation of Non-Inverting Buck-Boost Converters
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Design Methodology for Optimal Phase-Shift Modulation of Non-Inverting Buck-Boost Converters

机译:非反相降压转换器的最佳相移调制的设计方法

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摘要

The non-inverting buck-boost converter (NIBB) is a step-up and step-down DC-DC converter suitable for wide-input-voltage-range applications. However, when the input voltage is close to the output voltage, the NIBB needs to operate in the buck-boost mode, causing a significant efficiency reduction since all four switches operates in the PWM mode. Considering both the current stress limitation and the efficiency optimization, a novel design methodology for the optimal phase-shift modulation of a NIBB in the buck-boost mode is proposed in this paper. Since the four switches in the NIBB form two bridges, the shifted phase between the two bridges can serve as an extra degree of freedom for performance optimization. With general phase-shift modulation, the analytic current expressions for every duty ratio, shifted phase and input voltage are derived. Then with the two key factors in the NIBB, the converter efficiency and the switch current stress, taken into account, an objective function with constraints is derived. By optimizing the derived objective function over the full input voltage range, an offline design methodology for the optimal modulation scheme is proposed for efficiency optimization on the premise of current stress limitation. Finally, the designed optimal modulation scheme is implemented on a DSPs and the design methodology is verified with experimental results on a 300V-1.5kW NIBB prototype.
机译:非反相降压 - 升压转换器(NIBB)是适用于宽输入电压范围应用的升压和降压DC-DC转换器。然而,当输入电压接近输出电压时,NIBB需要在降压 - 升压模式下操作,从而显着降低,因为所有四个开关以PWM模式操作。考虑到当前的应力限制和效率优化,本文提出了一种新颖的设计方法,用于降压 - 升压模式中NIBB的最佳相移调制。由于NIBB中的四个开关形成两个桥,因此两座桥梁之间的换档相位可以作为性能优化的额外自由度。通过一般相移调制,推导出每个占空比,移位相位和输入电压的分析电流表达式。然后,通过NIBB中的两个关键因素,转换器效率和交换机电流应力考虑,导出了具有约束的目标函数。通过在完全输入电压范围内优化导出的目标函数,提出了最佳调制方案的离线设计方法,以实现电流应力限制的前提。最后,在DSP上实现了设计的最佳调制方案,并在300V-1.5KW NIBB原型上使用实验结果进行了设计方法。

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