References
- Abbasian, S., Gohari, H. S., Farsjani, M., Abbaszadeh, K., Hafezi, H. and Filizadeh, S. (2022). Single-Switch Resonant Soft-Switching Ultra-High Gain DC-DC Converter with Continuous Input Current. IEEE Access, 10, pp. 33482–33491. doi: 10.1109/ACCESS.2022.3161456
- Barreto, L. H. S. C., Coelho, E. A. A., Faris, V. J., de Oliveira, J. C., de Freitas, L. C. Jr. and Vieira, J. B. (2005). A Quasi-Resonant Quadratic Boost Converter Using a Single Resonant Network. IEEE Transactions on Industrial Electronics, 52(2), pp. 552–557. doi: 10.1109/TIE.2005.844255
- Behera, S., Kumar, S., Behera, R., Panigrahi, B. P., Behera, R. K. and Bagarty, D. P. (2020). Regulated soft-switching power supply using buck-boost converter. IEEE International Conference on Computational Intelligence for Smart Power System and Sustainable Energy (CISPSSE), 29–31 July 2020, Keonjhar, India. pp. 29–31. doi: 10.1109/CISPSSE49931.2020.9212245
- Cheng, X., Liu, C., Wang, D. and Zhang, Y. (2021). State-of-the-Art Review on Soft-Switching Technologies for Non-Isolated DC-DC Converters. IEEE Access, 9, pp. 119235–119249. doi: 10.1109/ACCESS.2021.3107861
- Danyali, S. (2022). New Dual-Source High-Gain ZVS DC-DC Converter for Integrating Renewable Power Source and Battery Storage. Journal of Electric Power System Research, 213, pp. 1–10. doi: 10.1016/j.epsr.2022.108740
- Do, H. L. (2010). A Soft-Switching DC/DC Converter with High Voltage Gain. IEEE Transactions on Power Electronics, 25(5), pp. 1193–1200. doi: 10.1109/TPEL.2009.2039879
- Dobakhshari, S. S., Milimonfared, J., Taheri, M. and Moradisizkoohi, H. (2017). A Quasi-Resonant Current-Fed Converter with Minimum Switching Losses. IEEE Transactions on Power Electronics, 32(1), pp. 353–362. doi: 10.1109/TPEL.2016.2528893
- Forouzesh, M. (2022). A novel soft-switched three-phase three-wire isolated AC-DC converter with power factor correction. IEEE Applied Power Electronics Conference and Exposition (APEC), 20–24 March 2022, Houston, TX, USA. doi: 10.1109/APEC43599.2022.9773554
- Guan, Y., Cheng, Y., Yao, T., Wang, Y., Wang, W. and Xu, D. (2022). A High-Performance DC–DC Converter with Soft Switching Characteristic and High Voltage Gain. IEEE Transactions on Power Electronics, 37(10), pp. 12279–12288. doi: 10.1109/TPEL.2022.3172904
- Gu, Y., Zhang, D. and Zhao, Z. (2014). Input Current Ripple Cancellation Technique for Boost Converter Using Tapped Inductor. IEEE Transactions on Industrial Electronics, 61(10), pp. 5323–5333. doi: 10.1109/TIE.2014.2300045
- Hasanpour, S., Forouzesh, M., Siwakoti, Y. P. and Blaabjerg, F. (2021). A Novel Full Soft-Switching High-Gain DC/DC Converter Based on Three-Winding Coupled-Inductor. IEEE Transactions on Power Electronics, 36(11), pp. 12656–12669. doi: 10.1109/TPEL.2021.3075724
- Hosseinzadeh, Z., Molavi, N. and Farzanehfard, H. (2019). Soft-Switching High Step-Up/Down Bidirectional DC–DC Converter. IEEE Transactions on Industrial Electronics, 66, pp. 4379–4386. doi: 10.1109/TIE.2018.2863216
- Jahangiri, S., Delshad, M. and Vesali, M. (2022). A New Single-Switch ZCS Flyback-Forward Converter with High Power Density. IETE Journal of Research, 68(5), pp. 3428–3438. doi: 10.1080/03772063.2020.1768160
- Kalahasthi, R. B., Ramteke, M. R., Suryawanshi, H. M. and Kothapalli, K. R. (2022). A High Gain Soft Switched DC–DC Converter for Renewable Applications. International Journal of Electronics, 110(8), pp. 1447–1467. doi: 10.1080/00207217.2022.2117423
- Kalahasthi, R. B., Ramteke, M. R., Suryawanshi, H. M. and Singh, A. K. (2023). A ZVS-Based Non-Isolated High Step-Up DC–DC Converter With Low Voltage Stress for Renewable Applications. IEEE Journal of Emerging and Selected Topics in Power Electronics, 11(3), pp. 2793–2804. doi: 10.1109/JESTPE.2023.3237076
- Khallili, S., Esteki, M., Packnezhad, M., Farzanehfard, H. and Khajehoddin, S. A. (2023). Fully Soft-Switched Non-Isolated High Step-Down DC–DC Converter with Reduced Voltage Stress and Expanding Capability. IEEE Journal of Emerging and Selected Topics in Power Electronics, 11(1), pp. 796–805. doi: 10.1109/JESTPE.2022.3180782
- Lalitha, A. S., Chakraborty, S. and Kumar, S. S. (2022). A zero voltage switching based soft switching boost DC-DC converter for vehicle to grid applications with enhanced energy efficiency. IEEE 3rd International Conference for Emerging Technology (INCET), 27–29 May 2022, Belgaum, India. doi: 10.1109/INCET54531.2022.9824207
- Li, H., Du, H., Zeng, Y., Qiu, Z., Jiang, X. and Chen, Z. (2022). A Modified Interleaved Capacitor Clamped DC–DC Converter with Non-Resonant Soft Switching. IEEE Transactions on Power Electronics, 37(10), pp. 12221–12236. doi: 10.1109/TPEL.2022.3163010
- Li, F., Huo, C., Zhao, Z. and Qu, K. (2014). A novel soft-switching DC-DC converter with high-step-down conversion. IEEE International Power Electronics and Application Conference and Exposition, Sanghai, China. doi: 10.1109/ICEMS.2014.7013806
- Li, W., Xu, D., Wu, B., Zhao, Y., Yang, H. and He, X. (2012). Zero-Voltage-Switching Dual-Boost Converter with Multi-Functional Inductors and Improved Symmetrical Rectifier for Distributed Generation Systems. IET Power Electronics, 5(7), pp. 969–977. doi: 10.1049/iet-pel.2012.0031
- Maulik, A., Pal, A. and Saha, S. S. (2020). A new soft-switched DC-DC buck converter with large step down ratio. IEEE International Conference on Power Electronics, Drives and Energy Systems (PEDES). pp.1–6. doi: 10.1109/PEDES49360.2020.9379772
- Mohammadi, M., Dehbashi, A., Gharehpetian, G. B., Khoshsaadat, A. and Mattavelli, P. (2021). A Family of Soft-Switching DC-DC Converters with Two Degrees of Freedom. IEEE Transactions on Industrial Electronics, 68(10), pp. 9398–9409. doi: 10.1109/TIE.2020.3021639
- Mohseni, P., Hosseini, S. H. and Maalandish, M. (2020). A New Soft Switching DC-DC Converter with High Voltage Gain Capability. IEEE Transactions on Industrial Electronics, 67(9), pp. 7386–7398. doi: 10.1109/TIE.2019.2941130
- Montazerolghaem, R., Adib, E., Semiromizadeh, J. and Wheeler, P. (2023). Zero-Voltage-Switching High-Step-Down Buck Converter with Continuous Output Current. IEEE Transactions on Power Electronics, 38(10), pp. 12886–12894. doi: 10.1109/TPEL.2023.3294492
- Pakdel, M., Taheri, A. and Jalilzadeh, S. (2019). A Novel Soft Switching DC–DC Boost Converter with Higher Efficiency. IETE Journal of Research, 67(4), pp. 559–568. doi: 10.1080/03772063.2019.1565949
- Pastor, M., Durdrik, J. and Michal, R. (2022). High-frequency soft-switching DC-DC converter with simple secondary turn-off snubber. IEEE 20th International Power Electronics and Motion Control Conference (PEMC), 25–28 September 2022, Brasov, Romania. doi: 10.1109/PEMC51159.2022.9962897
- Prabhala, V. A. K., Fajri, P., Gouribhatla, V. S. P., Baddipadiga, B. P. and Ferdowsi, M. (2016). A DC-DC Converter with High Voltage Gain and Two Input Boost Stages. IEEE Transactions on Power Electronics, 31(6), pp. 4206–4215. doi: 10.1109/TPEL.2015.2476377
- Rashid, M. H. (2004). Power Electronics Circuits, Devices and Applications, 3rd ed. New Delhi: Pearson Publication, pp. 186–190.
- Rathore, A. K., Patil, D. R. and Srinivasan, D. (2016). Non-Isolated Bidirectional Soft-Switching Current-Fed LCL Resonant DC/DC Converter to Interface Energy Storage in DC Microgrid. IEEE Transactions on Industrial Applications, 52(2), pp. 1711–1722. doi: 10.1109/TIA.2015.2498127
- Siwakoti, Y. P., Blaabjerg, F., Loh, P. C. and Town, G. E. (2014). High Voltage Boost Quasi-Z-Source Isolated DC/DC Converter. IET Power Electronics, 7(9), pp. 2387–2395. doi: 10.1049/iet-pel.2013.0845
- Wu, H., Lu, Y., Mu, T. and Xing, Y. (2015). A Family of Soft-Switching DC-DC Converters Based on a Phase-Shift-Controlled Active Boost Rectifier. IEEE Transactions on Power Electronics, 30(2), pp. 657–667. doi: 10.1109/TPEL.2014.2308278
- Yan, Z., Li, J., Xu, S., Yang, N., Zeng, J., Liu, J., Wu, W., Hu, R. and Qi, H. (2023). Ripple-Free Bidirectional DC–DC Converter With Wide ZVS Range for Battery Charging/Discharging System. IEEE Transactions on Industrial Electronics, 70(10), pp. 9992–10002. doi: 10.1109/TIE.2022.3222659
- Yen, W. and Chao, P. (2022). A ZVS Phase-Shift Full-Bridge Converter With Input Current Steering to Reduce EMI Noise. IEEE Transactions on Power Electronics, 37(10), pp. 11937–11950. doi: 10.1109/TPEL.2022.3170234
- Zhou, M., Liu, C., Zhang, M., Mao, X. and Zhang, Y. (2023). High Step-Up Soft-Switching DC–DC Converter Integrated With Y-Source Network. IEEE Journal of Emerging and Selected Topics in Power Electronics, 11(3), pp. 3348–3358. doi: 10.1109/JESTPE.2023.3264984