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AuthorNamadmalan, A.
AuthorJaafari, B.
AuthorIqbal, Atif
AuthorAl-Hitmi, Mohammed
Available date2022-03-31T08:05:54Z
Publication Date2020
Publication NameIEEE Access
ResourceScopus
Identifierhttp://dx.doi.org/10.1109/ACCESS.2020.3013120
URIhttp://hdl.handle.net/10576/29150
AbstractThis paper presents a design optimization algorithm for series-series compensated Inductive Power Transfer (IPT) system based on flat spiral coils, considering bifurcation phenomenon and AC equivalent resistance of the coils. Moreover, it finds the best values in the areas where the IPT system operates in Zero Voltage Switching (ZVS) condition. Equivalent AC resistance of spiral coils is modeled based on eddy currents simulations using Finite Element Method (FEM) and Maxwell simulator. Based on the FEM simulations, a new approximation method using separation of variables is proposed as a function of spiral coil's main parameters. This paper shows that this model accurately derive equivalent resistance of the coils for a specific strand diameter, with almost 95% accuracy. Based on the proposed algorithm, several IPT systems are optimized in MATLAB software using Genetic Algorithm (GA). Finally, the proposed method has been verified using a laboratory prototype with output power of about 200 watts and operating frequency of about 85 kHz.
SponsorThis work was supported in part by the Qatar University High Impact Research from Qatar University under Grant QUCG-CENG-19/20-5, and the publication charges is paid by the Qatar National Library.
Languageen
PublisherInstitute of Electrical and Electronics Engineers Inc.
Subjectand design optimization
Inductive power transfer
Litz wire
proximity effect
resonant inverter
skin effect
TitleDesign Optimization of Inductive Power Transfer Systems Considering Bifurcation and Equivalent AC Resistance for Spiral Coils
TypeArticle
Pagination141584-141593
Volume Number8


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