具有嵌入式磁芯微型电感的高效集成电压调节器的fr4兼容复合磁性材料的制备、表征和比较

M. Bellaredj, S. Mueller, A. Davis, Paul A. Kohl, Madhavan Swaminathan, Y. Mano
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引用次数: 13

摘要

集成电压调节器(ivr)由于能够在多核微处理器和片上系统(SoC)架构中实现负载点电压调节,因此被认为是当今数字电子电力输送网络发展的主要元素。电感式稳压器通常在较宽的转换电压范围内实现更高的功率效率。然而,高效率的ivr需要集成功率电感,在非常高的频率下具有低损耗和减小尺寸。采用磁性材料的磁芯可以显著减小电感面积,同时增加电感值。本文主要研究了镍锌(NiZn)铁氧体和羰基铁粉(CIP)环氧复合磁体材料的制备、表征和建模,该复合磁体材料将用作基于SIP的buck型IVR的PWB嵌入式电感的磁芯材料。所制备的复合材料和工艺与FR4环氧树脂预浸料和层压板(pwb兼容)完全兼容。复合材料的相对渗透率在nizn -复合材料(0.78体积分数)的7.5-8.1之间,CIP复合材料(0.47体积分数)的5.2-5.6之间,nizn -复合材料的损失切线值在0.24-0.28之间,CIP-复合材料的损失切线值在0.09- 0.1之间。利用Maxwell-Garnet近似(MGA)混合规则和简化的Lorentz和Landau-Lifshitz-Gilbert Debye型弛豫方程,计算了磁性复合材料的相对磁导率和频散参数的变化。根据测量的材料性能对buck型IVR进行评估表明,用NiZn铁氧体和CIP复合磁体制成的开芯嵌入式螺线管电感器在11 MHz时的峰值效率为91.7%,在14 MHz时的峰值效率为91.6%,在1.7V:1.05V转换时,在100 MHz时的峰值效率为87.5% (NiZn-复合)和87.3% (CIP-复合)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fabrication, Characterization and Comparison of FR4-Compatible Composite Magnetic Materials for High Efficiency Integrated Voltage Regulators with Embedded Magnetic Core Micro-Inductors
Integrated voltage regulators (IVRs) are considered nowadays as major elements in the development of power delivery networks for digital electronics because of their ability to implement point-of-load voltage regulation in multicore microprocessors and system-on-chip (SoC) architectures. Inductive regulators generally enable higher power efficiency over a wide range of conversion voltages. However, high efficiency IVRs require the integration of power inductors with low loss and reduced size at very high frequency. The use of a magnetic material core can reduce significantly the inductor area while increasing the inductance value at the same time. This paper focuses on the fabrication, characterization and modeling of Nickel Zinc (NiZn) Ferrite and Carbonyl Iron powder (CIP) epoxy composite magnet material which will be used as the magnetic core material of an embedded inductor in the PWB for SIP based buck type IVR. The fabricated composite materials and process are fully compatible with FR4 epoxy resin prepreg and laminate (PWB-compatible). The composite materials show (for 85% weigh loading, around 100 MHz at room temperature) a relative permeability between 7.5-8.1 for NiZn-composite (0.78 volume fraction) and between 5.2-5.6 for CIP composite (0.47 volume fraction) and a loss tangent value between 0.24-0.28 for NiZn-composite and 0.09- 0.1 for CIP-composite. The variation of the relative permeability and the frequency dispersion parameters of the magnetic composites are evaluated using Maxwell-Garnet Approximation (MGA) mixing rule and a simplified Lorentz and Landau-Lifshitz-Gilbert equation for Debye type relaxation. Evaluation of a buck type IVR based on the measured material properties shows that an embedded solenoidal inductor with an open core made with the NiZn Ferrite and CIP composite magnets can reach peak efficiencies of 91.7 % at 11 MHz for NiZn-composite, 91.6 % at 14 MHz for CIP-composite and 87.5 % (NiZn-composite) and 87.3 % (CIP-composite) efficiencies at 100 MHz for a 1.7V:1.05V conversion.
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