Performance evaluation of high-frequency CLL resonant DC–DC converter operated with phase-shift and modified PWM gating scheme: Analysis, design and implementation

dc.contributor.authorPatil, U.
dc.contributor.authorNagendrappa, N.
dc.date.accessioned2026-02-05T09:28:18Z
dc.date.issued2020
dc.description.abstractNormal phase-shift and modified pulse-width modulation gating schemes are proposed for a full bridge high-frequency capacitor–inductor–inductor (CLL) resonant DC–DC converter, and its performance is analysed in this study. Detailed modelling and the steady-state analysis of the converter are performed by using the fundamental harmonic approximation approach. Various modes of the converter operation with both the gating schemes are described and examined in detail. Zero-voltage switching of all the main switches is achieved by designing the resonant converter to operate in the above resonance mode. The optimum design of the converter is illustrated with the help of a flowchart and design curves. PSIM simulation is carried out and the experimental prototype is built to substantiate theoretical performance predictions. The simulation and experimental results are presented and compared. © The Institution of Engineering and Technology 2020
dc.identifier.citationIET Power Electronics, 2020, 13, 10, pp. 2127-2138
dc.identifier.issn17554535
dc.identifier.urihttps://doi.org/10.1049/iet-pel.2019.1612
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/23782
dc.publisherInstitution of Engineering and Technology
dc.subjectPulse width modulation
dc.subjectVoltage control
dc.subjectZero voltage switching
dc.subjectDesign and implementations
dc.subjectExperimental prototype
dc.subjectFundamental harmonic
dc.subjectHigh frequency HF
dc.subjectOptimum designs
dc.subjectResonant converters
dc.subjectSteady-state analysis
dc.subjectTheoretical performance
dc.subjectPower converters
dc.titlePerformance evaluation of high-frequency CLL resonant DC–DC converter operated with phase-shift and modified PWM gating scheme: Analysis, design and implementation

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