TY - JOUR
T1 - A Novel Burst Mode Control Algorithm for SE-IH Applications to Reduce Switch Current Spikes With Improved System Reliability and Power Conversion Efficiency
AU - Ahmed, Aneel
AU - Ryu, Sang Wook
AU - Park, Hyunghu
AU - Ali, Irfan
AU - Khan, Zawar
AU - Jung, Jin Woo
N1 - Publisher Copyright:
© 2005-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - This article presents an efficient burst mode control algorithm (BMCA) designed to reduce the turn-ON switch current spike in the power control of a single-ended induction heater (SE-IH). Modern SE-IH uses two control modes: square wave control at heavy loads and burst mode control at light loads to effectively control power flow to the induction heating load. First, the former achieves soft switching, i.e., zero voltage switching, at higher load conditions by properly controlling the switching frequency or duty ratio. Second, the latter often encounters inefficiencies and potential hazards due to current spikes at the switch turn-ON instant, caused by the sudden discharge of the dc-link capacitor through the resonant capacitor at lower load conditions. These current spikes result in significant power loss and thermal stress, which can ultimately cause the power switch to burn out. This article proposes a novel BMCA that optimizes burst mode operation to significantly reduce current spikes and enhance system reliability and overall power efficiency. The proposed algorithm, thoroughly tested, demonstrates superior performance compared to conventional commercial SE-IHs. Experimental results from a 2.6 kW SE-IH prototype using a TMS320F28377D control board validate the proposed solution’s efficacy under various load conditions.
AB - This article presents an efficient burst mode control algorithm (BMCA) designed to reduce the turn-ON switch current spike in the power control of a single-ended induction heater (SE-IH). Modern SE-IH uses two control modes: square wave control at heavy loads and burst mode control at light loads to effectively control power flow to the induction heating load. First, the former achieves soft switching, i.e., zero voltage switching, at higher load conditions by properly controlling the switching frequency or duty ratio. Second, the latter often encounters inefficiencies and potential hazards due to current spikes at the switch turn-ON instant, caused by the sudden discharge of the dc-link capacitor through the resonant capacitor at lower load conditions. These current spikes result in significant power loss and thermal stress, which can ultimately cause the power switch to burn out. This article proposes a novel BMCA that optimizes burst mode operation to significantly reduce current spikes and enhance system reliability and overall power efficiency. The proposed algorithm, thoroughly tested, demonstrates superior performance compared to conventional commercial SE-IHs. Experimental results from a 2.6 kW SE-IH prototype using a TMS320F28377D control board validate the proposed solution’s efficacy under various load conditions.
KW - Burst mode control (BMC)
KW - dual-mode control (DMC)
KW - single-ended induction heater (SE-IH)
KW - square wave control (SWC)
KW - turn-ON current spikes
KW - zero voltage switching (ZVS)
UR - https://www.scopus.com/pages/publications/105011748945
U2 - 10.1109/TII.2025.3586034
DO - 10.1109/TII.2025.3586034
M3 - Article
AN - SCOPUS:105011748945
SN - 1551-3203
VL - 21
SP - 8638
EP - 8649
JO - IEEE Transactions on Industrial Informatics
JF - IEEE Transactions on Industrial Informatics
IS - 11
ER -