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Geometric control breaks tracking performance limits using linear control in a buck converter

机译:几何控制在降压转换器中使用线性控制突破了跟踪性能极限

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This paper highlights performance and efficiency benefits using time optimal control (TOC) in a synchronous buck converter, over an optimally tuned current mode control (CMC) for a step reference transient. An approximate second order closed loop model is obtained for CMC using type-II compensation, and critical performance limits are derived using a normalized framework. Under frequent step change in reference voltage, an analytical study comparing transient performance and efficiency is carried out for CMC and TOC. This study shows that both performance and efficiency can be improved significantly using TOC, however at the cost of larger peak inductor current during the transient. Possible alternate solutions using performance-efficiency trade-off are discussed under peak (inductor) current limits. A buck converter prototype is fabricated, and the test results are obtained using a FPGA device.
机译:本文重点介绍了在同步降压转换器中使用时间最佳控制(TOC)优于阶跃参考瞬态的最佳调谐电流模式控制(CMC)的性能和效率优势。使用II型补偿为CMC获得了近似的二阶闭环模型,并使用归一化框架得出了关键性能极限。在参考电压频繁变化的情况下,对CMC和TOC进行了比较瞬态性能和效率的分析研究。这项研究表明,使用TOC可以显着提高性能和效率,但是要以瞬态期间更大的峰值电感器电流为代价。在峰值(电感器)电流限制下,讨论了使用性能-效率折衷的可能替代解决方案。制作了降压转换器原型,并使用FPGA器件获得了测试结果。

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