[1]

Vu VB, Ramezani A, Triviño A, González-González JM, Kadandani NB, et al. 2023. Operation of inductive charging systems under misalignment conditions: a review for electric vehicles. IEEE Transactions on Transportation Electrification 9(1):1857−1887

doi: 10.1109/TTE.2022.3165465
[2]

Zhang B, Dong S, Zhu C, Yin Y, Zhang M. 2023. Composite control to suppress output fluctuation for receiver side of dynamic wireless power transfer system. IEEE Transactions on Power Electronics 38(5):6720−6733

doi: 10.1109/TPEL.2023.3244989
[3]

Wei Y, Wu F. 2022. Indirect control strategy of secondary current for LCC-series compensated wireless power transfer system based on primary current closed-loop control. IEEE Transactions on Transportation Electrification 8(2):1553−1565

doi: 10.1109/TTE.2021.3129508
[4]

Ahn J, Woo S, Kim H, Song K, Huh S, et al. 2022. An out-of-phase wireless power transfer system for implantable medical devices to reduce human exposure to electromagnetic field and increase power transfer efficiency. IEEE Transactions on Biomedical Circuits and Systems 16(6):1166−1180

doi: 10.1109/TBCAS.2022.3222011
[5]

Lu Y, Yang B, He S, Peng Y, Lyu T, et al. 2024. Design of compensation topology for IPT system considering coils' parameters and load variations for CC or CV output. IEEE Transactions on Transportation Electrification 10(1):1583−1595

doi: 10.1109/tte.2023.3272919
[6]

Triviño A, González-González JM, Aguado JA. 2021. Wireless power transfer technologies applied to electric vehicles: a review. Energies 14(6):1547

doi: 10.3390/en14061547
[7]

Ali N, Liu Z, Armghan H, Ahmad I, Hou Y. 2021. LCC-S-based integral terminal sliding mode controller for a hybrid energy storage system using a wireless power system. Energies 14(6):1693

doi: 10.3390/en14061693
[8]

Massa A, Salucci M. 2022. On the design of complex EM devices and systems through the system-by-design paradigm: a framework for dealing with the computational complexity. IEEE Transactions on Antennas and Propagation 70(2):1328−1343

doi: 10.1109/TAP.2021.3111417
[9]

Rohith C, Indumathi B. 2023. Double-sided LCC compensation network and its tuning method for wireless power transfer for EV charging. International Journal for Research in Applied Science and Engineering Technology 11(3):886−888

doi: 10.22214/ijraset.2023.49538
[10]

Huang Z, Fang Z, Lam CS, Mak PI, Martins RP. 2020. Cost-effective compensation design for output customization and efficiency optimization in series/series-parallel inductive power transfer converter. IEEE Transactions on Industrial Electronics 67(12):10356−10365

doi: 10.1109/TIE.2019.2959491
[11]

Nguyen VT, Vu VB, Gohil G, Fahimi B. 2022. Coil-to-coil efficiency optimization of double-sided LCC topology for electric vehicle inductive chargers. IEEE Transactions on Industrial Electronics 69(11):11242−11252

doi: 10.1109/TIE.2021.3118343
[12]

Nguyen BX, et al. 2015. An efficiency optimization scheme for bidirectional inductive power transfer systems. IEEE Transactions on Power Electronics 30(11):6310−6319

doi: 10.1109/TPEL.2014.2379676
[13]

Shi W, Dong J, Soeiro TB, Riekerk C, Grazian F, et al. 2022. Design of a highly efficient 20-kW inductive power transfer system with improved misalignment performance. IEEE Transactions on Transportation Electrification 8(2):2384−2399

doi: 10.1109/TTE.2021.3133759
[14]

Xu F, Wei S, Li J, Yuan D, Chen K. 2024. Investigation on compensation topology and its parameter matching method for dynamic wireless power transfer system. IEEE Transactions on Industry Applications 60(4):5692−5701

doi: 10.1109/TIA.2024.3382223
[15]

Chen Z, Sun X, Liu J, Ren B, Wang Z. 2024. Research on maximum power point tracking control in omnidirectional wireless power transfer system. IEEE Transactions on Industrial Electronics 71(7):6612−6621

doi: 10.1109/TIE.2023.3303625
[16]

Monti G, De Paolis MV, Corchia L, Georgiadis A, Tarricone L. 2019. Efficiency optimization of a three-coil resonant energy link. Wireless Power Transfer 6(2):126−137

doi: 10.1017/wpt.2019.14
[17]

Guo Z, Nai J, Chen S, Zhang H, Ye M, et al. 2025. Optimized configuration and characterization of LCC-S based wireless power transmission system. Wireless Power Transfer 12(1):e012

doi: 10.48130/wpt-0025-0005
[18]

Bertoluzzo M, Di Barba P, Forzan M, Mognaschi ME, Sieni E. 2022. Optimization of compensation network for a wireless power transfer system in dynamic conditions: a circuit analysis approach. Algorithms 15(8):261

doi: 10.3390/a15080261
[19]

Chakibanda V, Komanapalli VLN. 2024. Coil parameter analysis for inductively coupled wireless charging for electric vehicles. Vehicles 6(1):468−483

doi: 10.3390/vehicles6010021
[20]

Li Y, Wang S, Wu Y, Jiang Y, Xiao Z, et al. 2025. Heterogeneous integration of isotropic and anisotropic magnetic cores for inductive power transfer. IEEE Transactions on Power Electronics 40(2):3770−3784

doi: 10.1109/TPEL.2024.3485193
[21]

Wang Q, Li Z, Yang B, Lu Y, Mai R, et al. 2025. Inductive power transfer system with constant current-constant voltage charging tolerating misalignment based on multiobjective optimization for compensation topology. IEEE Transactions on Power Electronics 40(3):4581−4591

doi: 10.1109/TPEL.2024.3435424
[22]

Ma J, Li Z, Liu Y, Ban M, Song W. 2023. Thermal analysis and optimization of the magnetic coupler for wireless charging system. IEEE Transactions on Power Electronics 38(12):16269−16280

doi: 10.1109/TPEL.2023.3318356
[23]

Bertoluzzo M, Giacomuzzi S, Sieni E. 2020. Automatic optimization of the compensation networks of a wireless power transfer system. Energies 13(20):5298

doi: 10.3390/en13205298
[24]

Wen F, Chu X, Li Q, Gu W. 2020. Compensation parameters optimization of wireless power transfer for electric vehicles. Electronics 9(5):789

doi: 10.3390/electronics9050789