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Accurate Light Load Loss Analysis of Hybrid Modulation Strategy for ZVS Operation of Low-Q LLC Resonant Converter for Wide Input Voltage Range Applications

机译:适用于宽输入电压范围应用的低Q LLC谐振转换器ZVS操作的混合调制策略的精确轻载损耗分析

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Light load efficiency and output regulation of LLC resonant converter is a critical problem for wide input voltage and load range applications due to converter’s parasitic capacitances such as rectifier diode junction capacitance (Cj). Compact size, high density and high transformer turns-ratio requirements for micro-inverter applications adds significant distributed capacitance (Cd) of low-profile transformer, worsening output regulation and zero- voltage switching (ZVS) capability at light loads. Magnetic core losses and turn-off switching losses in power MOSFETs further degrade power conversion efficiency at light loads. Therefore, an improved loss analysis for a hybrid modulation technique is proposed for full-bridge LLC resonant converter. The proposed methodology calculates duty cycle offline such that minimum power losses are incurred at different light loading condition. Variation in switching frequency at selected duty cycle value regulates output voltage. Time domain analysis of proposed technique including effects of Cd and Cj is performed to ensure accurate loss calculation. An experimental prototype for 20-40V input, 380V/300W output LLC converter is tested for validation of theoretical analysis.
机译:由于转换器的寄生电容(例如整流二极管的结电容(C),LLC谐振转换器的轻载效率和输出调节对于广泛的输入电压和负载范围应用而言是一个关键问题。 j )。微型逆变器应用的紧凑尺寸,高密度和高变压器匝数比要求增加了显着的分布式电容(C d )的薄型变压器,在轻负载时会恶化输出调节和零电压开关(ZVS)能力。功率MOSFET中的磁芯损耗和关断开关损耗进一步降低了轻负载时的功率转换效率。因此,针对全桥LLC谐振转换器,提出了一种针对混合调制技术的改进损耗分析方法。所提出的方法离线计算占空比,从而在不同的轻负载条件下产生最小的功率损耗。选定占空比值下的开关频率变化会调节输出电压。所提出技术的时域分析,包括C的影响 d 和C j 执行以确保准确的损失计算。测试了用于20-40V输入,380V / 300W输出LLC转换器的实验原型,以验证理论分析。

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