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Modeling, Design, and Fabrication of High-Inductance Bond Wire Microtransformers With Toroidal Ferrite Core

机译:环形铁氧体磁芯高电感键合线微变压器的建模,设计与制造

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This paper presents the design of miniaturized bond wire transformers assembled with standard IC bonding wires and NiZn and MnZn ferrite toroidal cores. Several prototypes are fabricated on a printed circuit board substrate with various layouts in a area. The devices are modeled by analytical means and characterized with impedance measurements over a wide frequency range. Experimental results on 1:38 device show that the secondary self-inductance increases from 0.3 μH with air-core to 315 μH with ferrite core; the coupling coefficient improves from 0.1 with air-core to 0.9 with ferrite core; the effective turns ratio enhances from 0.5 with air-core to 34 with ferrite core. This approach is cost effective and enables a flexible design of efficient micromagnetics on top of ICs with dc inductance to resistance ratio of 70 μH/Ω and an inductance per unit area of 12.8 μH/mm up to 0.3 MHz. The design targets the development of bootstrap circuits for ultralow voltage energy harvesting. In this context, a low-voltage step-up oscillator suitable for thermoelectric generator sources is realized with a commercial IC and the proposed microtransformers. Experimental measurements on a discrete prototype report that the circuit bootstraps from voltages down to 260 mV and outputs a dc voltage of 2 V.
机译:本文介绍了采用标准IC键合线以及NiZn和MnZn铁氧体环形磁芯组装的小型键合线变压器的设计。在印刷电路板基板上以一个区域中的各种布局制作了几个原型。器件通过分析手段建模,并在很宽的频率范围内进行阻抗测量。在1:38器件上的实验结果表明,次级自感从空芯的0.3μH增加到铁氧体芯的315μH;耦合系数从空心的0.1提高到铁氧体的0.9有效匝数比从空心的0.5提高到铁氧体的34。这种方法具有成本效益,可以在IC之上灵活设计高效的微磁性器件,直流电感与电阻之比为70μH/Ω,在0.3 MHz以下的每单位面积电感为12.8μH/ mm。该设计旨在开发用于超低压能量收集的自举电路。在这种情况下,利用商用IC和所提出的微变压器实现了适用于热电发电机源的低压升压振荡器。在分立的原型上进行的实验测量表明,该电路从电压降至260mV时会自举,并输出2V的直流电压。

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