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February 12, 2026Micromachines0 citationsOpen Access

A Novel In-Circuit Impedance Modeling Method and Variation Characteristics Analysis for SMPS

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JZJun ZhanZZZiliang ZhangRZRongxuan Zhang

Key Points

  • This work aims to develop a novel method for in-circuit impedance modeling and analyze its variation characteristics in SMPS.
  • Proposed a new method based on inductive coupling for modeling in-circuit impedance.
  • Derived an accurate impedance model considering external and modal impedance features.
  • Conducted simulations and experiments to verify the model's accuracy across various frequencies.
  • The model accurately represents in-circuit impedance with amplitude deviation within 3 dB.
  • Phase deviation is below 6 degrees across a frequency range of 10 kHz to 30 MHz.
  • The variation characteristics provide insights for optimizing EMI filter design.

Abstract

The precise in-circuit impedance extraction in a switched-mode power supply (SMPS) is essential for the optimal design of electromagnetic interference (EMI) filters. The design of EMI filter parameters based on in-circuit impedance has already been widely investigated in the literature, but the variation characteristics of the in-circuit impedance for an SMPS is still a research gap and needs further study. In this article, based on the concept of the inductive coupling approach, a novel method for in-circuit impedance modeling is proposed. Subsequently, an accurate in-circuit impedance modeling is derived, which indicates that the in-circuit impedance for the SMPS is related to the external impedance, the modal impedance under different switching modes, and the proportion of each switching mode. Based on the derived model, the variation characteristics of the in-circuit impedance are revealed, which can provide valuable guidance for the design of EMI suppression measures. Finally, the simulation results show good agreement with the calculated results. Experimental verification further indicates that the model accurately characterizes the impedance of the switching power supply across the range of 10 kHz to 30 MHz, with amplitude deviation within 3 dB and phase deviation below 6 degrees. This work provides a quantitative foundation for designing electromagnetic interference suppression strategies, enabling more precise filter optimization over a broad frequency range.

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Cite This Study

Zhan et al. (2026) studied this question.

synapsesocial.com/papers/698d6edc5be6419ac0d54c1fhttps://doi.org/10.3390/mi17020232
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