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Journal ArticleDOI

Improving the Characteristics of integrated EMI filters by embedded conductive Layers

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TLDR
In this paper, a structural winding capacitance cancellation method for inductors is proposed, where a conductive ground layer is embedded in the planar inductor windings, and the structural capacitance between the inductor winding and this embedded layer is utilized to cancel the parasitic wound capacitance.
Abstract
Discrete electromagnetic interference (EMI) filters have been used for power electronics converters to attenuate switching noise and meet EMI standards for many years. Because of the unavoidable structural parasitic parameters of the discrete filter components, such as equivalent parallel capacitance (EPC) of inductors and equivalent series inductance (ESL) of capacitors, the effective frequency range of the discrete filter is normally limited. Aiming at improving high frequency performance and reducing size and profile, the integrated EMI filter structure has been proposed based on advanced integration and packaging technologies , . Some improvements have been made but further progress is limited by EPCs of the filter inductors, which is restricted by dimension, size and physical structure. In this paper, a new structural winding capacitance cancellation method for inductors is proposed. Other than trying to reduce EPCs, a conductive ground layer is embedded in the planar inductor windings and the structural capacitance between the inductor winding and this embedded layer is utilized to cancel the parasitic winding capacitance. In order to obtain the best cancellation effect, the structural winding capacitance model of the planar spiral winding structure is given and the equivalent circuit is derived. The design methodology of the layout and area of the embedded ground layer is presented. Applying this method, an improved integrated EMI filter is designed and constructed. The experimental results show that the embedded conductive layer can effectively cancel the parasitic winding capacitance, hence ideal inductor characteristics can be obtained. With the help of this embedded conductive layer, the improved EMI filter has much smaller volume and profile and much better characteristics over a wide frequency range, compared to the former integrated EMI filter and the discrete EMI filter.

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Citations
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Journal ArticleDOI

Overview of Planar Magnetic Technology—Fundamental Properties

TL;DR: The major advantages and disadvantages in the use of planar magnetics for high-frequency power converters are covered in this paper, and a detailed survey of winding conduction loss, leakage inductance, and winding capacitance for planar magnetic technologies is presented.
Journal ArticleDOI

Passive and Active Hybrid Integrated EMI Filters

TL;DR: In this paper, two planar integrated EMI filter structures that reduce the filter volume and that are based on standard printed circuit board (PCB) process technology are presented, which results in a volume reduction of 24% compared to the discrete solution.
Proceedings ArticleDOI

Passive and active hybrid integrated EMI filters

TL;DR: In this paper, two planar integrated EMI filter structures which reduce the filter volume and which are based on standard PCB process technology are presented, which are designed for a 600W PFC converter.
Journal ArticleDOI

A Study of Integration of Parasitic Cancellation Techniques for EMI Filter Design With Discrete Components

TL;DR: In this article, the effects of parasitic parameters on the electromagnetic interference (EMI) filter performance are discussed and the possibilities of integrating parasitic cancellation techniques into one EMI filter are analyzed.
Journal ArticleDOI

Analysis and Applications of Parasitic Capacitance Cancellation Techniques for EMI Suppression

TL;DR: This paper reviews and analyzes five parasitic capacitance cancellation methods and identifies critical parameters and constraints determining the cancellation frequency ranges, and the effective frequency range for each method is derived based on these constraints.
References
More filters
Journal ArticleDOI

Effects of parasitic parameters on EMI filter performance

TL;DR: In this paper, the authors examined the effects of parasitic couplings among the filter components and the coupling between the filter component and the ground plane of printed circuit board (PCB).
Book

Electromagnetic Compatibility in Power Electronics

TL;DR: In this paper, the authors describe the history of EMC standardisation efforts and describe the electromagnetic disturbances conducted by EMI measurement and EMI filter elements, including noise suppression and measurement.
Book

Power line filter design for switched-mode power supplies

Mark J. Nave
TL;DR: In this paper, the authors propose a filter topology and damping scheme based on the radiation coupling between on-board filters and the power supply of a power supply, as well as a common mode component selection.
Book

EMI filter design

TL;DR: In this article, the authors present a hands-on and academic approach to the design of EMI filters and the selection of components values using a mix of practical methods and theoretical analysis, including matrix methods using table data and the use of Fourier analysis, Laplace transforms and transfer function realization of LC structures.
Journal ArticleDOI

Design of planar integrated passive module for zero-voltage-switched asymmetrical half-bridge PWM converter

TL;DR: In this article, a planar L-L-C-T module was used for the integration of passive module for a zero-voltage-switched asymmetrical half bridge PWM converter for application in distributed power systems.
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