Chinese Journal of Electrical Engineering ›› 2023, Vol. 9 ›› Issue (3): 50-71.doi: 10.23919/CJEE.2023.000030
• Regular Papers • Previous Articles Next Articles
Zijie He1, Guidong Zhang1,*, Zexiang Chen1, Samson S. Yu2
Received:
2023-07-06
Revised:
2023-07-19
Accepted:
2023-08-03
Online:
2023-09-25
Published:
2023-08-07
Contact:
*E-mail: guidong.zhang@gdut.edu.cn
About author:
Zijie He was born in Dongguan, Guangdong, China. He received the B.S. degree from the Wuyi University, Jiangmen, Guangdong, China, in 2022. He is currently pursuing the M.S. degree in Electrical Engineering with the Guangdong University of Technology, Guangzhou, Guangdong, China.Supported by:
Zijie He, Guidong Zhang, Zexiang Chen, Samson S. Yu. A Review of Variable-inductor-based Power Converters for Eco-friendly Applications: Fundamentals, Configurations, and Applications*[J]. Chinese Journal of Electrical Engineering, 2023, 9(3): 50-71.
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[1] B Chenari, J Carrilho, M Silva.Optimized design of bi-directional dual active bridge converter for low-voltage battery charger.Renewable and Sustainable Energy Reviews, 2016, 59: 1426-1447. [2] M Moradi, S Razini, S Hosseinian.State of art of multiagent systems in power engineering: A review.Renewable and Sustainable Energy Reviews, 2016, 58: 814-824. [3] J Keithley.The story of electrical and magnetic measurements: From 500 BC to the 1940s. New York: John Wiley & Sons, 1999. [4] G Zhang, Z Li, B Zhang, et al.Power electronics converters: Past, present and future.Renewable and Sustainable Energy Reviews, 2018, 81: 2028-2044. [5] W Hurley, W Wolfle, H Werner.Transformers and inductors for power electronics: Theory, design and applications. New York: John Wiley & Sons, 2013. [6] F Ulaby, U Ravaioli.Fundamentals of applied electromagnetics. New Jersey: Pearson Upper Saddle River, 2015. [7] N Panwar, S Kaushik, S Kothari.Role of renewable energy sources in environmental protection: A review.Renewable and Sustainable Energy Reviews, 2011, 15(3): 1513-1524. [8] D Holmes, T Lipo.Pulse width modulation for power converters: Principles and practice. New York: John Wiley & Sons, 2003. [9] C Zhao, X Wu, P Meng, et al.Optimum design consideration and implementation of a novel synchronous rectified soft-switched phase-shift full-bridge converter for low-output-voltage high-output-current applications.IEEE Transactions on Power Electronics, 2009, 24(2): 388-397. [10] Y Wei, D Woldegiorgis, A Mantooth.Variable resonant and magnetizing inductor control for LLC resonant converter. [11] Y Wei, Q Luo, M Alan.Overview of modulation strategies for LLC resonant converter.IEEE Transactions on Power Electronics, 2011, 35(10): 10423-10443. [12] F Azcondo, R Zane, C Branas.Design of resonant inverters for optimal efficiency over lamp life in electronic ballast with phase control.IEEE Transactions on Power Electronics, 2007, 22(3): 815-823. [13] Y Ho, S Lee, H Chung, et al.A comparative study on dimming control methods for electronic ballasts.IEEE Transactions on Power Electronics, 2001, 16(6): 828-836. [14] E Alexanderson, S Nixdorff.A magnetic amplifier for radio telephony.Proceedings of the Institute of Radio Engineers, 1916, 4(2): 101-120. [15] K Glading.Navy electricity and electronics training series, module 8: Introduction to amplifiers. 1st ed. Taipei: The Center, 1982. [16] K Harada, A Katsuki, M Fujiwara, et al.Resonant converter controlled by variable capacitance devices.IEEE Transactions on Power Electronics, 1993, 8(4): 404-410. [17] T Sterken, K Baert, R Puers, et al.A new power MEMS component with variable capacitance.Mircoelectronics Symposium and Exhibition. Edina: Surface Mount Technology Association, 2003: 27-34. [18] S Liang, X Lu, R Chen, et al.A solid state variable capacitor with minimum DC capacitance. [19] A Katsuki, K Shirouzu, K Harada, et al.Improved variable capacitance device and its applications to resonant converters. [20] M Perdigão.Research and development on new control techniques for electronic ballasts based on magnetic regulators. Portugal: University of Coimbra, 2012. [21] A Kislovski.Linear variable inductor (LVI) in single-phase telecom rectifiers. [22] M Gulko, D Medini, S Ben-Yaakov.Inductor-controlled current-sourcing resonant inverter and its application as a high pressure discharge lamp driver. [23] J Alonso, M Perdigao, D Vaquero, et al.Analysis, design, and experimentation on constant-frequency DC-DC resonant converters with magnetic control.IEEE Transactions on Power Electronics, 2011, 27(3): 1369-1382. [24] Y Wei, Q Luo, Z Wang, et al.Design of LLC resonant converter with magnetic control for LEV application. [25] Y Wei, Q Luo, A Mantooth.Comprehensive analysis and design of LLC resonant converter with magnetic control.CPSS Transactions on Power Electronics and Applications, 2019, 4(4): 265-275. [26] C Lim, J Kim, Y Jeong, et al.A high efficiency critical mode boost PFC using a variable inductor. [27] J Alonso, D Gacio, A Calleja, et al.Reducing storage capacitance in off-line LED power supplies by using integrated converters. [28] J Alonso, J Cardesín, A Calleja, et al.A fluorescent lamp electronic ballast for railway applications based on low-cost microcontroller.IEEE Transactions on Industry Applications, 2005, 41(5): 1391-1400. [29] M Perdigao, J Alonso, C Dalla, et al.Using magnetic regulators for the optimization of universal ballasts.IEEE Transactions on Power Electronics, 2008, 23(6): 3126-3134. [30] M Perdigao, J Alonso, C Dalla, et al.Comparative analysis and experiments of resonant tanks for magnetically controlled electronic ballasts.IEEE Transactions on Industrial Electronics, 2008, 55(9): 3201-3211. [31] J Alonso, C Dalla, M Rico-Secades, et al.Investigation of a new control strategy for electronic ballasts based on variable inductor.IEEE Transactions on Industrial Electronics, 2008, 55(1): 3-10. [32] M Menke, M Da Silva, A Seidel, et al.High power factor dimmable self-oscillating electronic ballast with variable inductor control. [33] R Pinto, J Alonso, M Perdigão, et al.A new technique to equalize branch currents in multiarray LED lamps based on variable inductors.IEEE Transactions on Industry Applications, 2015, 52(1): 521-530. [34] S Lee, H Chung, S Hui.Use of saturable inductor to improve the dimming characteristics of frequency-controlled dimmable electronic ballasts.IEEE Transactions on Power Electronics, 2004, 19(6): 1653-1660. [35] U Boeke.Scalable fluorescent lamp driver using magnetic amplifiers. [36] S Borekci.Dimming electronic ballasts without striations.IEEE Transactions on Industrial Electronics, 2009, 56(7): 2464-2468. [37] L Lee, S Hui, H Chung.An automatic lamp detection technique for electronic ballasts. [38] O Busse, S Mayer, B Schemmel, et al.SEPIC converter to perform power factor correction in a ballast for fluorescent lamps. [39] L Zhang, W Hurley, W Wölfle.A new approach to achieve maximum power point tracking for PV system with a variable inductor.IEEE Transactions on Power Electronics, 2010, 26(4): 1031-1037. [40] A Kislovski. Linear variable inductor in DC current sensors utilized in telecom solar battery chargers. [41] K Shetty, D Kanchan.Analysis of photovoltaic systems to achieve maximum power point tracking with variable inductor.International Journal of Electrical and Electronic Engineering & Telecommunications, 2015, 1(1): 214-220. [42] K Song, Y Lan, R Wei, et al.A control strategy for wireless ev charging system to improve weak coupling output based on variable inductor and capacitor.IEEE Transactions on Power Electronics, 2022, 37(10): 12853-12864. [43] M Perdigão, J Trovão, J Alonso, et al.Large-signal characterization of power inductors in EV bidirectional DC-DC converters focused on core size optimization.IEEE Transactions on Industrial Electronics, 2015, 62(5): 3042-3051. [44] M Beraki, J Trovão, M Perdigão, et al.Variable inductor based bidirectional DC-DC converter for electric vehicles.IEEE Transactions on Vehicular Technology, 2017, 66(10): 8764-8772. [45] Y Hu, L Huber, M Jovanović.Universal-input single-stage PFC flyback with variable boost inductance for high-brightness LED applications. [46] D Jiles.Introduction to magnetism and magnetic materials. 3rd ed. La Paz: CRC Press, 2015. [47] A Kislovski.Quasi-linear controllable inductor.Proceedings of the IEEE, 1987, 75(2): 267-269. [48] C Lee, K Siri, A K Upadhyay. Parallel resonant converter with zero voltage switching: U.S. Patent 4,992,919.1991-02-12. [49] R Washburn, R McClanahan. Non-saturating magnetic amplifier controller: U.S. Patent 4,841,428.1989-06-20. [50] J Vollin, F Tan, S Cuk.Magnetic regulator modeling. [51] X Mu, J Wang, Y Ji, et al.Novel harmonic free single phase variable inductor based on active power filter strategy. [52] X Mu, S Zhang, J Wang, et al.Novel static var compensator based on ferrite orthogonal core controlled reactor. [53] D Medini, S Ben-Yaakov.A current-controlled variable-inductor for high frequency resonant power circuits. [54] W Wolfle, W Hurley.Quasi-active power factor correction with a variable inductive filter: Theory, design and practice.IEEE Transactions on Power Electronics, 2003, 18(1): 248-255. [55] E Bitencourt, M Cosetin, I Vegner, et al.A ferromagnetic based variable inductor analysis and design methodology. [56] G Engdahl, I Mayergoyz.Handbook of giant magnetostrictive materials. San Diego: Academic Press, 2000. [57] L Zhang, Y Xia, K Lu, et al.Stress-based variable inductor for electronic ballasts.IEEE Transactions on Magnetics, 2015, 51(11): 1-4. [58] T Ueno, T Higuchi.Magnetic circuit for stress-based magnetic force control using iron-gallium alloy.IEEE Transactions on Magnetics, 2007, 43(6): 2594-2596. [59] P Tuethong, P Yutthagowith, S Maneerot.Design and construction of a variable air-core inductor for lightning impulse current test on surge arresters. [60] IEC 62475: 2010. High-current test and techniques- definitions, requirements for test currents and measuring systems.EC 62475: 2010. High-current test and techniques- definitions, requirements for test currents and measuring systems.IEC, 2010, 62: 475. [61] J Sun, M Xu, Y Ren, et al.Light-load efficiency improvement for buck voltage regulators.IEEE Transactions on Power Electronics, 2009, 24(3): 742-751. [62] M El-Sherbiny.Representation of the magnetization characteristic by a sum of exponentials.IEEE Transactions on Magnetics, 1973, 9(1): 60-61. [63] J Brauer.Simple equations for the magnetization and reluctivity curves of steel.IEEE Transactions on Magnetics, 1975, 11(1): 81-81. [64] D Jiles, J Thoelke.Theory of ferromagnetic hysteresis: Determination of model parameters from experimental hysteresis loops. IEEE Transactions on Magnetics, 1989, 25(5): 3928-3930. [65] D Jiles, J Thoelke, M Devine.Numerical determination of hysteresis parameters for the modeling of magnetic properties using the theory of ferromagnetic hysteresis.IEEE Transactions on Magnetics, 1992, 28(1): 27-35. [66] D Rumsey.A saturating transformer model for SPICE. Energy to the 21st century. [67] J Crangle.Applications of magnetism. Solid· State Magnetism. Berlin: Springer, 1991. [68] D Pei, P Lauritzen.A computer model of magnetic saturation and hysteresis for use on SPICE2. [69] D Hamill.Lumped equivalent circuits of magnetic components: The gyrator-capacitor approach.IEEE Transactions on Power Electronics, 1993, 8(2): 97-103. [70] D Hamill.Gyrator-capacitor modeling: A better way of understanding magnetic components. [71] E Rozanov, S Ben-Yaakov.Analysis of current-controlled inductors by new SPICE behavioral model.HAIT Journal of Science and Engineering Series B, 2005, 2(3/4): 558-570. [72] K Ngo.Subcircuit modeling of magnetic cores with hysteresis in PSpice. IEEE Transactions on Aerospace and Electronic Systems, 2002, 38(4): 1425-1434. [73] S Ben-Yaakov, M Peretz.Simulation bits: A SPICE behavioral model of non-linear inductors. IEEE Power Electronics Society Newsletter, 2003: 9-10. [74] M Perdigao, J Alonso, M Dalla, et al.A variable inductor MATLAB/Simulink behavioral model for application in magnetically-controlled electronic ballasts. [75] D Jiles.Frequency dependence of hysteresis curves in non-conducting magnetic materials.IEEE Transactions on Magnetics, 1993, 29(6): 3490-3492. [76] J Alonso, G Martínez, M Perdigão, et al.A systematic approach to modeling complex magnetic devices using SPICE: Application to variable inductors.IEEE Transactions on Power Electronics, 2016, 31(11): 7735-7746. [77] M Perdigao, M Menke, Á Seidel, et al.A review on variable inductors and variable transformers: Applications to lighting drivers. IEEE Transactions on Industry Applications, 2015, 52(1): 531-547. [78] Y Wei, Q Luo, X Du, et al.Analysis and design of the LLC resonant converter with variable inductor control based on time-domain analysis.IEEE Transactions on Industrial Electronics, 2019, 67(7): 5432-5443. [79] Y Wei, Q Luo, X Du, et al.A dual half-bridge LLC resonant converter with magnetic control for battery charger application.IEEE Transactions on Power Electronics, 2019, 35(2): 2196-2207. [80] S Saeed, J Garcia, R Georgious.Dual-active-bridge isolated DC-DC converter with variable inductor for wide load range operation. IEEE Transactions on Power Electronics, 2021, 36(7): 8028-8043. [81] S Hui, L Lee, H Chung, et al.An electronic ballast with wide dimming range, high PF, and low EMI.IEEE Transactions on Power Electronics, 2001, 16(4): 465-472. [82] P Tam, S Lee, S Hui, et al.Practical evaluation of dimming control methods for electronic ballasts.IEEE Transactions on Power Electronics, 2006, 21(6): 1769-1775. [83] J Alonso, M Costa, J Cardesin, et al.A new control method for electronic ballasts based on magnetic regulators. [84] M Gulko, S Ben-Yaakov.Current-sourcing push-pull parallel-resonance inverter (CS-PPRI): Theory and application as a discharge lamp driver.IEEE Transactions on Industrial Electronics, 1994, 41(3): 285-291. [85] B Yang, F Lee, A Zhang, et al.LLC resonant converter for front end DC/DC conversion. APEC. [86] J Deng, C Mi, R Ma, et al.Design of LLC resonant converters based on operation-mode analysis for level two PHEV battery chargers.IEEE/ASME Transactions on Mechatronics, 2014, 20(4): 1595-1606. [87] J Deng, S Li, S Hu, et al.Design methodology of LLC resonant converters for electric vehicle battery chargers.IEEE Transactions on Vehicular Technology, 2013, 63(4): 1581-1592. [88] F Musavi, M Craciun, D Gautam, et al.Control strategies for wide output voltage range LLC resonant DC-DC converters in battery chargers.IEEE Transactions on Vehicular Technology, 2014, 63(3): 1117-1125. [89] F Musavi, M Craciun, D Gautam, et al.An LLC resonant DC-DC converter for wide output voltage range battery charging applications.IEEE Transactions on Power Electronics, 2013, 28(12): 5437-5445. [90] G Cao, W Dou, K Sun, et al.Design optimization of LLC converter for battery charger with wide output voltage range. [91] X Gumera, A Caberos, S Huang.Design and implementation of a high efficiency cost effective EV charger using LLC resonant converter. [92] Z Fang, T Cai, S Duan, et al.Optimal design methodology for LLC resonant converter in battery charging applications based on time-weighted average efficiency.IEEE Transactions on Power Electronics, 2014, 30(10): 5469-5483. [93] E Orietti, P Mattavelli, G Spiazzi, et al.Two-phase interleaved LLC resonant converter with current-controlled inductor. [94] H Fan, H Li.High-frequency transformer isolated bidirectional DC-DC converter modules with high efficiency over wide load range for 20 kVA solid-state transformer.IEEE Transactions on Power Electronics, 2011, 26(12): 3599-3608. [95] A Burgio, D Menniti, M Motta, et al.A laboratory model of a dual active bridge DC-DC converter for a smart user network. [96] G Oggier, G Garcia, A Oliva.Modulation strategy to operate the dual active bridge DC-DC converter under soft switching in the whole operating range. IEEE Transactions on Power Electronics, 2010, 26(4): 1228-1236. [97] H Bai, C Mi.Eliminate reactive power and increase system efficiency of isolated bidirectional dual-active-bridge DC-DC converters using novel dual-phase-shift control.IEEE Transactions on Power Electronics, 2008, 23(6): 2905-2914. [98] Y Xie, J Sun, J Freudenberg.Power flow characterization of a bidirectional galvanically isolated high-power DC/DC converter over a wide operating range.IEEE Transactions on Power Electronics, 2009, 25(1): 54-66. [99] F Krismer, J Kolar.Efficiency-optimized high-current dual active bridge converter for automotive applications. [100] F Krismer, J Kolar.Accurate small-signal model for the digital control of an automotive bidirectional dual active bridge.IEEE Transactions on Power Electronics, 2009, 24(12): 2756-2768. [101] C Calderon, A Barrado, A Rodriguez, et al.Dual active bridge with triple phase shift by obtaining soft switching in all operating range. [102] J Everts.Closed-form solution for efficient ZVS modulation of DAB converters.IEEE Transactions on Power Electronics, 2016, 32(10): 7561-7576. [103] B Zhao, Q Song, W Liu, et al.Dead-time effect of the high-frequency isolated bidirectional full-bridge DC-DC converter: Comprehensive theoretical analysis and experimental verification.IEEE Transactions on Power Electronics, 2013, 29(4): 1667-1680. [104] J Alonso, M Perdigão, M Dalla, et al.Analysis and experimentation of the quad-U variable inductor for power electronics applications. IET Power Electronics, 2018, 11(14): 2330-2337. [105] C McLyman.Magnetic core selection for transformers and inductors: A user’s guide to practice and specifications. La Paz: CRC Press, 2018. [106] U Kumar, S Shukla.Analytical study of inductor simulation circuits.Active and Passive Electronic Components, 1989, 13: 211-227. [107] G Temes, J LaPatra.Introduction to circuit synthesis and design. New York: McGraw-Hill, 1977. [108] B Tellegen.The gyrator, a new electric network element.Philips Research Reports, 1948, 3(2): 81-101. [109] M Fu, C Fei, Y Yang, et al.Optimal design of planar magnetic components for a two-stage GaN-based DC-DC converter.IEEE Transactions on Power Electronics, 2018, 34(4): 3329-3338. [110] C Fei, R Gadelrab, Q Li, et al.High-frequency three-phase interleaved LLC resonant converter with GaN devices and integrated planar magnetics.IEEE Journal of Emerging and Selected Topics in Power Electronics, 2019, 7(2): 653-663. [111] M Ahmed, A Nabih, F Lee, et al.High-efficiency, high-density isolated/regulated 48 V bus converter with a novel planar magnetic structure. [112] C Quinn, K Rinne, T O’Donnell, et al.A review of planar magnetic techniques and technologies. [113] Z Ouyang, M Andersen.Overview of planar magnetic technology: Fundamental properties. IEEE Transactions on Power Electronics, 2013, 29(9): 4888-4900. |
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