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Layout optimization of planar inductors for high-efficiency integrated power converters

机译:高效集成功率转换器的平面电感器布局优化

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The performance of dc-dc power converters is critically dependent on the inductors at their core. Planar spiral inductors are compact constructions that can be scaled and integrated without the limitations of traditional wire-wound devices. Therefore, they are increasingly employed to meet the needs of modern low-power applications, especially where size, weight and manufacturing costs are deciding factors. As a planar inductor is designed to fit the parameters of an application, it is paramount to take into account the associated parasitic effects that have an impact on the converter performance. This paper analyzes how the conversion efficiency of boost and buck integrated power converters depends on the parasitics elements of planar inductors, and how it can be improved by optimizing the inductor layout. In particular, the paper provides the guidelines for maximizing the time constant of the inductor by considering the different geometrical features that define the inductor shape. The trade-offs that maximize the inductance time constant for different shapes are introduced, and an algorithm is developed to optimize the performance with no area overhead. Finally, three boost converters are designed, simulated, and compared in a 65-nm CMOS technology to demonstrate the validity of the proposed approach, and the corresponding conversion efficiency improvement is assessed.
机译:DC-DC电源转换器的性能批判性地取决于其核心的电感。平面螺旋电感器是紧凑的结构,可以缩放和集成,而不会限制传统的卷绕装置。因此,他们越来越多地用于满足现代低功耗应用的需求,特别是在尺寸,重量和制造成本是决定因素的情况下。由于平面电感器旨在符合应用的参数,因此考虑到对转换器性能产生影响的相关寄生效应是至关重要的。本文分析了升压和降压集成功率转换器的转换效率如何取决于平面电感器的寄生元件,以及如何通过优化电感器布局来改进。特别地,本文通过考虑定义电感器形状的不同几何特征提供了最大化电感器的时间常数的指导。介绍了最大化不同形状的电感时间常数的权衡,并且开发了一种算法,以优化具有区域开销的性能。最后,三个升压转换器被设计,模拟,并在65nm CMOS技术中进行比较,以证明所提出的方法的有效性,并评估相应的转换效率改善。

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