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A Systematic Design Methodology for Series-Stacked Energy Decoupling Buffers Based on Loss–Volume Pareto Optimization

机译:基于损耗Pareto优化的串联堆叠能量解耦缓冲器的系统设计方法

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摘要

The series-stacked buffer (SSB) is an active twice-line frequency energy decoupling buffer architecture in single-phase converters. The high power density and efficiency characteristics of this architecture have been recently demonstrated. However, in previous hardware work on the SSB, the energy utilization ratios of the buffer capacitors are not optimized, and the tradeoff among loss, volume, and bus voltage ripple has not been quantitatively studied. In this article, we propose a methodology that quantifies and formalizes the SSB design process into a multiobjective optimization problem, from which the loss-volume Pareto front can be solved, and an optimal control strategy for minimum loss can be determined. Design constraints, modeling of objective functions, and optimization algorithms are discussed. With realistic hardware parameters and constraints, this methodology is applied to the SSB design for a 1.5-kW, 400-V dc-bus single-phase system. The corresponding Pareto front results are studied with hardware prototypes. Compared with previous SSB hardware demonstrations, both power density and efficiency of the designed hardwares are substantially enhanced with the proposed method.
机译:系列堆叠缓冲区(SSB)是单相转换器中的有源两行频率解耦缓冲区架构。最近已经证明了这种架构的高功率密度和效率特性。然而,在先前的SSB上的硬件工作中,缓冲电容器的能量利用率未被优化,并且丢失,体积和总线电压纹波之间的权衡尚未定量地研究。在本文中,我们提出了一种方法,该方法可以定量和将SSB设计过程中的SSB设计过程集成为多目标优化问题,可以解决损失量帕累托前线,并且可以确定用于最小损耗的最佳控制策略。讨论了设计约束,客观函数的建模和优化算法。具有现实的硬件参数和约束,该方法应用于1.5千瓦,400 V直流公交单相系统的SSB设计。使用硬件原型研究了相应的帕累托前线结果。与以前的SSB硬件演示相比,用所提出的方法大大提高了设计的硬件的功率密度和效率。

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