A Complete Impedance-Based Characterization of a High-Frequency Transformer in Triple Active Bridge Converters for EV Onboard Chargers
Abstract
1. Introduction
2. Transformer Impedance Modeling
2.1. Open-Circuit Impedance Modeling of the Transformer
2.2. Short-Circuit Impedance Modeling of the Three-Winding Transformer
3. Impedance-Based Characterisation (IBC)
3.1. Open-Circuit Impedance-Based Characterization (IBC-OC)
3.2. ESR Identification
3.3. Short-Circuit Impedance-Based Characterization (IBC-SC)
3.3.1. Leakage Inductances and Winding Resistances Identification
3.3.2. Inter-Winding Capacitance Identification
3.4. Impedance Analysis Validation


4. Experimental and Simulation Results
4.1. High Voltage Transformer Parameter Compensation
4.2. Model Validation
4.2.1. Large-Signal Open-Circuit Validation
4.2.2. Full TAB Validation
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| 3W-HFT | Three-Winding High-Frequency Transformer |
| TAB | Triple Active Bridge |
| IBC | Impedance-Based Characterization |
| IBC-OC | Open-Circuit Impedance-Based Characterization |
| IBC-SC | Short-Circuit Impedance-Based Characterization |
| LVEC | Low-Voltage Excitation Conditions |
| HVEC | High-Voltage Excitation Conditions |
| OC | Open Circuit |
| SC | Short Circuit |
| ESR | Effective Series Resistance |
| OBC | Onboard Charger |
| EV | Electric Vehicle |
| MAB | Multi-Active Bridge |
| HFT | High-Frequency Transformer |
References
- Pradhan, R.; Keshmiri, N.; Emadi, A. On-Board Chargers for High-Voltage Electric Vehicle Powertrains: Future Trends and Challenges. IEEE Open J. Power Electron. 2023, 4, 189–207. [Google Scholar] [CrossRef]
- Yu, G.; Choi, S. An Effective Integration of APM and OBC With Simultaneous Operation and Entire ZVS Range for Electric Vehicle. IEEE Trans. Power Electron. 2021, 36, 10343–10354. [Google Scholar] [CrossRef]
- Chakraborty, S.S.; Dey, S.; Hatua, K. Design of a Three-Winding Transformer for Power Decoupling of a Three-Port Series Resonant Converter for an Integrated On-Board EV Charger. IEEE Trans. Power Electron. 2023, 38, 14262–14273. [Google Scholar] [CrossRef]
- Deb, S.; Pramanick, S.K. Investigation of Leakage Inductance in Three-Winding Transformer for Three-Port Integrated Onboard Chargers. In Proceedings of the 2024 IEEE Transportation Electrification Conference and Expo (ITEC), Chicago, IL, USA, 19–21 June 2024; pp. 1–6. [Google Scholar]
- Bossi, G.; Buccella, C.; Cecati, C.; Simonetti, F.; Damiano, A. A Battery-Based Auxiliary Power System for an All-Electric Aircraft: A Novel Converter Configuration. IEEE Trans. Ind. Appl. 2025, 61, 9493–9505. [Google Scholar] [CrossRef]
- Rahrovi, B.; Mehrjardi, R.T.; Ehsani, M. On the Analysis and Design of High-Frequency Transformers for Dual and Triple Active Bridge Converters in More Electric Aircraft. In Proceedings of the 2021 IEEE Texas Power and Energy Conference (TPEC), College Station, TX, USA, 2–5 February 2021; pp. 1–6. [Google Scholar]
- Alam, M.D.; Mahinur Rahman, M.; Husain, I.; Lukic, S. Circulating Power and Winding Current Minimization in a Triple Active Bridge DC-DC Converter with Optimized Leakage Inductance Design. In Proceedings of the 2024 IEEE Applied Power Electronics Conference and Exposition (APEC), Long Beach, CA, USA, 25–29 February 2024; pp. 474–480. [Google Scholar]
- Byun, H.J.; Park, J.M.; Yi, J.; Won, C.Y. Zero-Voltage-Switching Analysis Model of the Triple-Active-Bridge Converter. Energies 2023, 16, 7763. [Google Scholar] [CrossRef]
- Chattopadhyay, R.; Juds, M.A.; Ohodnicki, P.R.; Bhattacharya, S. Modelling, design and analysis of three limb high frequency transformer including transformer parasitics, for SiC Mosfet based three port DAB. In Proceedings of the IECON 2016—42nd Annual Conference of the IEEE Industrial Electronics Society, Florence, Italy, 23–26 October 2016; pp. 4181–4186. [Google Scholar]
- Arshad, A.; Bossi, G.; Damiano, A. A Three-Winding High-Frequency Transformer Characterization for Multi-Active Bridge Design. In Proceedings of the IECON 2025—51st Annual Conference of the IEEE Industrial Electronics Society, Madrid, Spain, 14–17 October 2025; pp. 1–7. [Google Scholar]
- Guillod, T.; Krismer, F.; Kolar, J.W. Magnetic equivalent circuit of MF transformers: Modeling and parameter uncertainties. Electr. Eng. 2018, 100, 2261–2275. [Google Scholar] [CrossRef]
- Gawrylczyk, K.M.; Banaszak, S. Recent Developments in the Modelling of Transformer Windings. Energies 2021, 14, 2798. [Google Scholar] [CrossRef]
- Yoon, Y.; Son, Y.; Cho, J.; Jang, S.; Kim, Y.G.; Choi, S. High-Frequency Modeling of a Three-Winding Power Transformer Using Sweep Frequency Response Analysis. Energies 2021, 14, 4009. [Google Scholar] [CrossRef]
- Gómez-Luna, E.; Candelo-Becerra, J.E.; Vasquez, J.C. A New Method for Complex Impedance Measurement of Power Transformers via a Continuous Wavelet Transform. Energies 2024, 17, 6056. [Google Scholar] [CrossRef]
- Liu, Y.; Li, C.; Guo, Z.; Ren, F.; Liu, F.; Fu, Y.; Zhu, Y.; Wang, X. Broadband Modelling of Power Transformers for Sweep Frequency Impedance Studies on Winding Short-Circuit Faults. Electronics 2023, 12, 4068. [Google Scholar] [CrossRef]
- Lu, H.Y.; Zhu, J.G.; Hui, S. Experimental determination of stray capacitances in high frequency transformers. IEEE Trans. Power Electron. 2003, 18, 1105–1112. [Google Scholar] [CrossRef]
- De Grève, Z.; Deblecker, O.; Lobry, J. Numerical Modeling of Capacitive Effects in HF Multiwinding Transformers—Part II: Identification Using the Finite-Element Method. IEEE Trans. Magn. 2013, 49, 2021–2024. [Google Scholar] [CrossRef]
- Guillod, T.; Färber, R.; Krismer, F.; Franck, C.M.; Kolar, J.W. Computation and analysis of dielectric losses in MV power electronic converter insulation. In Proceedings of the 2016 IEEE Energy Conversion Congress and Exposition (ECCE), Milwaukee, WI, USA, 18–22 September 2016; pp. 1–8. [Google Scholar]
- Olowu, T.O.; Jafari, H.; Peirano, I.; Mahmoudi, M.; Sarwat, A. Parasitic Parameter Analysis of High Frequency Transformer for Series Resonant Converter with Experimental Validation. In Proceedings of the 2021 IEEE Transportation Electrification Conference & Expo (ITEC), Chicago, IL, USA, 16–18 June 2021; pp. 15–19. [Google Scholar]
- Herrera Portilla, W. Analysis of the non-linear behaviour of the magnetisation inductance during the frequency response test of a transformer. IET Sci. Meas. Technol. 2019, 13, 1186–1193. [Google Scholar] [CrossRef]
- Bossi, G.; Arshad, A.; Damiano, A. Comparative Analysis of Three-Winding High-Frequency Transformer Parameter Estimation Methodologies. In Proceedings of the 2025 International Conference on Clean Electrical Power (ICCEP), Villasimius, Italy, 24–26 June 2025; pp. 956–961. [Google Scholar]
- Canal, T.; Zgainski, F.X.; Renouard, V.L. Determination of the saturation curve of power transformers by processing transient measurements. Electr. Power Syst. Res. 2021, 195, 107153. [Google Scholar] [CrossRef]
- Nasirpour, F.; Heidary, A.; Niasar, M.G.; Lekić, A.; Popov, M. High-frequency transformer winding model with adequate protection. Electr. Power Syst. Res. 2023, 223, 109637. [Google Scholar] [CrossRef]
- Leibl, M.; Ortiz, G.; Kolar, J.W. Design and Experimental Analysis of a Medium-Frequency Transformer for Solid-State Transformer Applications. IEEE J. Emerg. Sel. Top. Power Electron. 2017, 5, 110–123. [Google Scholar] [CrossRef]
- Lan, Y.; Yang, L.; Zhang, X.; Chen, Q.; Zheng, Z. Calculation Model of Parasitic Capacitance for High-Frequency Inductors and Transformers. IEEE Access 2023, 11, 143182–143189. [Google Scholar] [CrossRef]
















| Parameter | Symbol | Value |
|---|---|---|
| Leakage Inductances | ||
| Primary leakage inductance | H | |
| Secondary-1 leakage inductance | H | |
| Secondary-2 leakage inductance | H | |
| Magnetizing Inductances (OC, Port Dependent) | ||
| Primary magnetizing inductance | mH | |
| Secondary-1 magnetizing inductance | mH | |
| Secondary-2 magnetizing inductance | mH | |
| Series Winding Resistances | ||
| Primary leakage resistance | m | |
| Secondary-1 leakage resistance | m | |
| Secondary-2 leakage resistance | m | |
| Core-Loss Resistances | ||
| Primary core-loss resistance | 147 k | |
| Secondary-1 core-loss resistance | k | |
| Secondary-2 core-loss resistance | k | |
| Self Stray Capacitances (Port Dependent) | ||
| Primary stray capacitance | pF | |
| Secondary-1 stray capacitance | pF | |
| Secondary-2 stray capacitance | pF | |
| Self Stray Capacitances (Unified ) | ||
| Primary stray capacitance (core) | pF | |
| Secondary-1 stray capacitance (core) | pF | |
| Secondary-2 stray capacitance (core) | pF | |
| Inter-Winding Capacitances | ||
| Primary–Secondary-1 capacitance | pF | |
| Primary–Secondary-2 capacitance | pF | |
| Secondary-1–Secondary-2 capacitance | pF | |
| Capacitor ESR (Resonance Damping) | ||
| Primary ESR | ||
| Secondary-1 ESR | ||
| Secondary-2 ESR | ||
| Parameter | Symbol | Value | Unit |
|---|---|---|---|
| DC rated voltage | 800 | V | |
| DC maximum continuous current | 24 | ARMS | |
| DC maximum pulsed current | 80 | A | |
| Reference switching frequency | 25 | kHz | |
| DC-link capacitance | 260 | F |
| Parameter | Symbol | Value | Unit |
|---|---|---|---|
| Drain–source voltage | 1200 | V | |
| Continuous drain current | 24 | A | |
| Reference switching frequency | 25 | kHz | |
| On-state resistance | 88 | m | |
| Turn-on switching energy | 265 | J | |
| Turn-off switching energy | 135 | J |
| Instrument | Model | Accuracy |
|---|---|---|
| Impedance Analyzer | Keysight E4990A | (typ.), (spec.) |
| Oscilloscope | Yokogawa DLM5058HD | (typ.) |
| Power Analyzer | Yokogawa WT5000 | (power, 50/60 Hz) |
| DC Power Supply | EA PS 10750-120 | ≤ FS (voltage), ≤ FS (current) |
| Power Comp. | Loss. Estim. HVEC OC | Loss. Estim. Full TAB |
|---|---|---|
| 20.6 W | 20.6 W | |
| 0.1 W | 0.6 W | |
| / | 0.1 W | |
| / | 1.1 W | |
| / | 1.0 W | |
| / | 21.0 W | |
| 1.9 W | 5.5 W | |
| / | 1.1 W | |
| / | 47.3 W |
| Power Comp. | Exp. Meas. | Sim. Estim. | Estim. Error |
|---|---|---|---|
| 1675 W | 1682 W | 0.42% | |
| 398.5 W | 399.7 W | 0.30% | |
| 1181 W | 1184 W | 0.25% | |
| 94.3% | 94.2% | 0.10% |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Arshad, A.; Bossi, G.; Damiano, A. A Complete Impedance-Based Characterization of a High-Frequency Transformer in Triple Active Bridge Converters for EV Onboard Chargers. Energies 2026, 19, 2547. https://doi.org/10.3390/en19112547
Arshad A, Bossi G, Damiano A. A Complete Impedance-Based Characterization of a High-Frequency Transformer in Triple Active Bridge Converters for EV Onboard Chargers. Energies. 2026; 19(11):2547. https://doi.org/10.3390/en19112547
Chicago/Turabian StyleArshad, Ali, Giuseppe Bossi, and Alfonso Damiano. 2026. "A Complete Impedance-Based Characterization of a High-Frequency Transformer in Triple Active Bridge Converters for EV Onboard Chargers" Energies 19, no. 11: 2547. https://doi.org/10.3390/en19112547
APA StyleArshad, A., Bossi, G., & Damiano, A. (2026). A Complete Impedance-Based Characterization of a High-Frequency Transformer in Triple Active Bridge Converters for EV Onboard Chargers. Energies, 19(11), 2547. https://doi.org/10.3390/en19112547

