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Optimal Variable Switching Frequency Scheme to Reduce Loss of Single-Phase Grid-Connected Inverter With Unipolar and Bipolar PWM

机译:用单极和双极PWM减少单相网连接逆变器的最佳变换开关频率方案

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Reducing the power loss of a converter without increasing its volume or cost in hardware has always been a much sought-after but challenging goal. This article proposes a comprehensive variable switching frequency (VSF) scheme to improve the overall system efficiency while still meeting a given total harmonic distortion (THD) requirement without any hardware changes, achieved only by changes to the controller. In this article, it is analyzed that for the H-bridge inverter, the inductor copper loss and the switch conduction loss are independent of the switching frequency (SF), while the device switching loss and the inductor core loss are functions of the SF. This article aims at weighting the combined switching loss and inductor core loss for both the unipolar and bipolar modulation techniques, with the constraint on the output THD, which, for fixed passive components, is a function of inductor ripple current that in turn depends on the SF. An optimal VSF scheme is devised through rigorous mathematical analysis of the output ripple component and the SF-dependent losses. In each switching cycle, the inductor ripple current is predicted with the circuit parameters, such as duty cycle, switching period, inductance, and dc voltage, and by implementing the VSF scheme, the current ripple is optimally varied such as to satisfy the THD requirement while reducing the SF-dependent losses. A generalized method to design VSF schemes for any topology and specifications is also presented, which would help future users in designing the VSF controller. A 1-kW H-bridge inverter using SiC MOSFETs and powdered iron/ferrite core has been built to validate the theoretical analysis. Both constant SF (CSF) scheme (200 kHz) and optimal VSF scheme with simple controller modification have been implemented in the experimental prototype using DSP TMS320f28335. Compared with the CSF scheme, the optimal VSF scheme shows a significant improvement in the system efficiency at rated power from 94.7% to 95.4% with a corresponding saving of 16.5% in the SF-dependent loss in unipolar modulation and from 95.5% to 96.8% with a corresponding saving of 36.5% in the SF-dependent loss in bipolar modulation.
机译:在不增加其体积或硬件成本的情况下减少转换器的功率损失一直是一个追捧但具有挑战性的目标。本文提出了全面的可变开关频率(VSF)方案,以提高整体系统效率,同时仍在满足给定的总谐波失真(THD)要求而没有任何硬件的变化,只能通过对控制器的更改实现。在本文中,分析了用于H桥逆变器,电感器铜损耗和开关导通损耗与开关频率(SF)无关,而设备开关损耗和电感器磁芯损耗是SF的功能。本文旨在加权单极和双极调制技术的组合开关损耗和电感磁芯损耗,对输出THD的约束,对于固定无源元件,这是一个又取决于电感纹波电流的函数SF。通过对输出纹波组件的严格数学分析和SF相关损耗来设计最佳VSF方案。在每个开关周期中,使用电路参数(例如占空比,切换周期,电感和DC电压)预测电感纹波电流,并且通过实现VSF方案,最佳地变化,例如满足THD要求的电流纹波虽然减少了SF依赖性损失。还提出了为任何拓扑和规范设计VSF方案的广义方法,这将有助于未来用户设计VSF控制器。建立了一个1-kW H桥式逆变器,采用SiC MOSFET和粉末铁/铁氧体核心为验证理论分析。使用DSP TMS320F28335在实验原型中已经在实验原型中实现了恒定的SF(CSF)方案(200kHz)和具有简单控制器修改的最佳VSF方案。与CSF方案相比,最佳VSF方案显示了系统效率的显着提高,额定功率为94.7%至95.4%,相应节省了单极调节的SF依赖性损失16.5%,95.5%至96.8%相应节省36.5%,在双极调制中依赖于SF依赖性损失。

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