Stability analysis of a hybrid DC-DC buck converter model using dissipation inequality and convex optimization

T. Tamba, J. Chandra, B. Hu
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引用次数: 0

Abstract

The stability analysis of a DC-DC buck converter is a challenging problem due to the hybrid systems characteristic of its dynamics. Such a challenge arises from the buck converter operation which depends upon the ON/OFF logical transitions of its electronic switch component to correspondingly activate different continuous vector fields of the converter’s temporal dynamics. This paper presents a sum of squares (SOS) polynomial optimization approach for stability analysis of a hybrid model of buck converter which explicitly takes into account the converter’s electronic switching behavior. The proposed method first transforms the converter’s hybrid dynamics model into an equivalent polynomial differential algebraic equation (DAE) model. An SOS programming algorithm is then proposed to computationally prove the stability of the obtained DAE model using Lyapunov’s stability concept. Based on simulation results, it was found that the proposed method requires only 8.5 seconds for proving the stability of a buck converter model. In contrast, exhaustive simulations based on numerical integration scheme require 15.6 seconds to evaluate the stability of the same model. These results thus show the effectiveness of the proposed method as it can prove the converter stability in shorter computational times without requiring exhaustive simulations using numerical integration.
基于耗散不等式和凸优化的混合DC-DC降压变换器模型稳定性分析
由于DC-DC降压变换器的动力学特性,其稳定性分析是一个具有挑战性的问题。这种挑战来自降压转换器的操作,该操作依赖于其电子开关组件的ON/OFF逻辑转换以相应地激活转换器的时间动态的不同连续矢量场。本文提出了一种用于降压转换器混合模型稳定性分析的平方和(SOS)多项式优化方法,该方法明确考虑了转换器的电子开关行为。该方法首先将变换器的混合动力学模型转换为等效多项式微分代数方程(DAE)模型。然后,利用李雅普诺夫稳定性概念,提出了一种SOS规划算法来计算证明所获得的DAE模型的稳定性。基于仿真结果,发现所提出的方法只需要8.5秒就可以证明降压转换器模型的稳定性。相反,基于数值积分方案的详尽模拟需要15.6秒来评估同一模型的稳定性。因此,这些结果表明了所提出的方法的有效性,因为它可以在较短的计算时间内证明转换器的稳定性,而不需要使用数值积分进行详尽的模拟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
0.70
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10
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