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Bifurcation Analysis of a Current-Mode-Controlled DC Cascaded System and Applications to Design

机译:电流模式控制直流级联系统和应用的分岔分析

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In an electrical system, dc-dc converters are the major constituents that control the power flow among various terminals including power sources, buses, and loadings. Stability of these constituent converters under all operating conditions is vital to the operation of the electrical system. In this article, a simple dc cascaded system consisting of two cascading averaged current-mode-controlled dc-dc converters is considered. Application of the impedance criteria allows fast and decoupled design of a stable cascaded system. However, the usual impedance criteria fail to predict the stability of the system correctly. Slow-scale instability has been observed from full-circuit simulations, discrete-time analysis, and experimental measurements. The complex behavior caused by the slow-scale instability such as border collision has been analyzed in depth based on the discrete-time model. Stability boundaries are derived in practical parameter space. Finally, effective methods for ensuring the stable design of current-mode-controlled cascaded dc converter systems are discussed.
机译:在电气系统中,DC-DC转换器是控制包括电源,公共汽车和装载的各个终端之间的功率流的主要成分。在所有操作条件下,这些组成转换器的稳定性对电气系统的操作至关重要。在本文中,考虑由两个级联平均电流模式控制的DC-DC转换器组成的简单DC级联系统。阻抗标准的应用允许快速和分离的稳定级联系统设计。然而,通常的阻抗标准未能正确预测系统的稳定性。已经从全电路模拟,离散时间分析和实验测量中观察到慢速稳定性。基于离散时间模型,深入分析了由慢速稳定性诸如边界碰撞的慢速不稳定引起的复杂行为。稳定边界是在实际参数空间中的。最后,讨论了确保电流模式控制的级联直流转换器系统稳定设计的有效方法。

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