Termination Design Optimization of High-Current PCB-Winding Matrix Transformers

Оптимизация конструкции выводов матричных трансформаторов с печатными обмотками для больших токов
Pranav Raj Prakash, Ahmed Nabih, Qiang Li
2022-12-19

AC resistanceLLC resonant convertersPCB matrix transformersparasitic inductancetermination loss
Due to their high power densities and efficiencies, high-frequency resonant converters using printed circuit board (PCB)-based transformers are gaining popularity in applications, such as datacenters and automotive. However, in such high-frequency, high-current applications, the PCB transformer's termination losses may become significant if not designed properly. This article aims to highlight multiple design considerations to minimize the termination losses while designing a PCB-based matrix transformer. Various termination techniques for full-bridge and center-tap secondary-rectifiers are studied, and it is shown that placing the devices and output filter capacitors directly on the secondary windings results in the lowest termination loss. However, this results in the output filter capacitors being split between the two secondary PCB layers, resulting in a long paralleling loop between them. It is demonstrated that the parasitic inductance of this loop undergoes parallel resonance with the filter capacitors, resulting in high circulating currents and, hence, high termination losses. Methods to mitigate this effect at theLLCconverter's switching frequency are discussed. Improvements of the proposed terminations are demonstrated by modeling and measuring the transformer's ac resistance. Furthermore, theLLCconverters' efficiency improvements are also showcased with the improved terminations.
1
Modeling and measurements of transformer AC resistance, together with LLC converter tests, demonstrate reduced termination losses and improved converter efficiency using the optimized terminations.
2
PCB transformer termination losses can become significant in high-frequency, high-current resonant converters and require explicit design optimization.
3
Placing rectifier devices and output filter capacitors directly on the secondary windings minimizes termination loss for both full-bridge and center-tap rectifiers.
4
Splitting output filter capacitors across secondary PCB layers creates a long paralleling loop whose parasitic inductance can resonate with the capacitors, causing high circulating currents and increased termination losses.
5
The study presents mitigation methods for suppressing this parallel resonance at the LLC converter switching frequency.

high-current PCB-based matrix transformers in high-frequency LLC resonant converters

termination losses, parasitic-inductance-induced circulating currents, AC resistance, and efficiency in full-bridge and center-tap secondary-rectifier designs

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Publication Date
2022-12-19
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Authors
Pranav Raj Prakash
Ahmed Nabih
Qiang Li
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