Analysing the Effects of Switching, Conduction and Thermal Losses on IGBT Performance in Boost DC–DC Converters for Photovoltaic Systems

Authors

  • Muhanad D. Hashim Almawlawe Department of Electronics and communication Engineering ,College of Engineering, University of Al-Qadisiyah, Al-Qadisiyah, Iraq

DOI:

https://doi.org/10.22153/kej.2025.10.003

Keywords:

IGBT losses; step-up DC–DC converter; photovoltaic systems; conduction losses; switching losses; thermal control; efficiency optimisation; continuous conduction mode (CCM)

Abstract

This study examines the thermal and electrical characteristics of insulated gate bipolar transistors (IGBTs) in boost direct current (DC)–DC converters used in photovoltaic systems with respect to how switching and conduction losses vary under different operating conditions. The behaviour of IKWH70N65WR6 IGBT was measured (PLECS software) with load resistances of 5, 10 and 20 Ω at switching frequencies of 1–100 kHz. Important results are as follows: conduction losses prevail at low frequencies and load currents and switching losses increase towards high frequencies. Thermal stress is the highest at mid-range frequencies (50–60 kHz) and IGBT junction temperatures peak to 123 °C. Reduced load resistance leads to increased power consumption and total losses, and the value of load matching must be optimised. This study offers critical data regarding the choice and optimisation of IGBTs to improve efficiency and reliability within the uses of renewable energies.

 

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References

TWIDELL, John. Renewable energy resources., Second edition,: Taylor&Francis, 2021.‏

[2] M. D. Almawlawe, M. Al-Badri, and E. J. Alshebaney, “Implementation and evaluation of low switching losses converter for solar panel using digital controller,” AIP Conference Proceedings, vol. 2797, 2023, p. 050009-1-050009-10, , doi: 10.1063/5.0148147.

[3] T. Esram and P. L. Chapman, “Comparison of photovoltaic array maximum power point tracking techniques,” IEEE Transactions on Energy Conversion, vol. 22, no. 2, pp. 439–449, Jun. 2007, doi: 10.1109/tec.2006.874230.

[4] P. Singh, D. K. Palwalia, A. Gupta, and P. Kumar, “Comparison of photovoltaic array maximum power point tracking techniques,” Int. Adv. Res. J. Sci. Eng. Technol, vol. 2, no. 1, pp. 401–404, 2015.

[5] M. Hawsawi, H. M. D. Habbi, E. Alhawsawi, M. Yahya, and M. A. Zohdy, “Conventional and switched capacitor boost converters for solar PV integration: dynamic MPPT enhancement and performance evaluation,” Designs, vol. 7, no. 5, p. 114, Sep. 2023, doi: 10.3390/designs7050114.

[6] F. L. Luo and H. Ye, Essential Dc/Dc converters., CRC Press, 2018. doi: 10.1201/9781420037104.

[7] S. S. Ahmad, C. Urabinahatti, K. N. V. Prasad, and G. Narayanan, “High-Switching-Frequency SIC Power Converter for High-Speed Switched Reluctance Machine,” IEEE Transactions on Industry Applications, vol. 57, no. 6, pp. 6069–6082, Sep. 2021, doi: 10.1109/tia.2021.3111540.

[8] Reali, Alessandro. , Design of high-performance electronic power converters based on GaN-on-Si semiconductors devices." (2025).‏

[9] A. Chaithanakulwat, “Technique Reducing Power Loss in Three-Level DC-DC Converter Devices with Zero-Voltage and zero-Current Switching Method,” Journal of Engineering Science and Technology Review, vol. 13, no. 4, pp. 124–131, Aug. 2020, doi: 10.25103/jestr.134.12.

[10] S. M. I. Rahman et al., “Emerging Trends and Challenges in thermal Management of Power Electronic Converters: A State of the art review,” IEEE Access, vol. 12, pp. 50633–50672, Jan. 2024, doi: 10.1109/access.2024.3385429.

[11] C. R. Sullivan and R. Y. Zhang, “Simplified design method for litz wire,” In 2014 IEEE Applied Power Electronics Conference and Exposition-APEC 2014, 2014, pp. 2667–2674, doi: 10.1109/apec.2014.6803681.

[12] W. G. Hurley and W. H. Wölfle, Transformers and Inductors for Power Electronics: Theory, design and Applications.,:John Wiely& Sons, 2013. doi: 10.1002/9781118544648.

[13] S. C. Trujillo, J. E. Candelo-Becerra, and F. E. Hoyos, “Numerical Validation of a Boost Converter Controlled by a Quasi-Sliding Mode Control Technique with Bifurcation Diagrams,” Symmetry, vol. 14, no. 4, p. 694, Mar. 2022, doi: 10.3390/sym14040694.

[14] N. B.-R. Lin and N. C.-L. Huang, “Interleaved ZVS converter with Ripple-Current cancellation,” IEEE Transactions on Industrial Electronics, vol. 55, no. 4, pp. 1576–1585, Apr. 2008, doi: 10.1109/tie.2008.917069.

[15] T. Pei, H. Zhang, W. Hua, and F. Zhang, “Comprehensive Review of Bearing Currents in Electrical Machines: Mechanisms, impacts, and mitigation techniques,” Energies, vol. 18, no. 3, p. 517, Jan. 2025, doi: 10.3390/en18030517.

[16] J. Yang, “Efficiency Improvement with GaN-Based SSFET as Synchronous Rectifier in PFC Boost Converter,” PCIM Europe 2014; International Exhibition and Conference for Power Electronics, Intelligent Motion, Renewable Energy and Energy Management; Proceedings .VDE, May 2014, pp. 1–6, [Online]. Available: http://ieeexplore.ieee.org/xpls/abs_all.jsp?arnumber=6841334.

[17] M. Almawlawe, H. Hamed, I. Al-Umari, and M. Wali, “Enhanced voltage conversion and reduced inductor size in a flying capacitor boost converter compared to conventional boost converter for photovoltaic systems,” Al-Qadisiyah Journal for Engineering Sciences, vol. 17, no. 4, pp. 322–330, Dec. 2024, doi: 10.30772/qjes.2024.152779.1354.

[18] Y.-W. Cho, J.-M. Kwon, and B.-H. Kwon, “Single Power-Conversion AC--DC converter with high power factor and high efficiency,” IEEE Transactions on Power Electronics, vol. 29, no. 9, pp. 4797–4806, Nov. 2013, doi: 10.1109/tpel.2013.2286832.

[19] W. Hassan, D. Lu, and W. Xiao, “Optimal Analysis and Design of DC-DC Converter to Achieve High Voltage Conversion Gain and High Efficiency for Renewable Energy Systems,” IEEE Transactions on Power Electronics, Art. no. IEEE Transactions on Power Electronics, 2018 IEEE 27th International Symposium on Industrial Electronics (ISIE, Jun. 2018, doi: 10.1109/isie.2018.8433857.

[20] Q. Liu, A. Ali, and A. Alkhayyat, “Genetic Algorithm-Optimized Convolutional Neural Network Controller for enhanced performance of boost DC-DC converters,” vol. 20, no. 8, pp. 5315–5331, Jun. 2025, doi: 10.1007/s42835-025-02315-1.

[21] Z. H. Al-Araji, M. D. H. Almawlawe, and M. H. Wali, “Comprehensive characterization of switching and conduction losses in high-ratio step-down converters for next-generation electric vehicles,” Sustainable Engineering and Innovation, vol. 7, no. 2, pp. 449–462, 2025. doi: 10.37868/sei.v7i2.id633.

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Published

01-12-2025

How to Cite

[1]
M. Almawlawe, “Analysing the Effects of Switching, Conduction and Thermal Losses on IGBT Performance in Boost DC–DC Converters for Photovoltaic Systems”, alkej, vol. 21, no. 4, pp. 93–105, Dec. 2025, doi: 10.22153/kej.2025.10.003.

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