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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 1 Lecture 37 Zero-voltage transition converters The phase-shifted full bridge converter Buck-derived full-bridge converter Zero-voltage switching of each half- bridge section Each half-bridge produces a square wave voltage. Phase-shifted control of converter output A popular converter for server front- end power systems Efficiencies of 90% to 95% regularly attained Controller chips available
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 2 Lecture 37 Phase-shifted control Approximate waveforms and results (as predicted by analysis of the parent hard- switched converter)
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 3 Lecture 37 Actual waveforms, including resonant transitions
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 4 Lecture 37 Result of analysis Basic configuration: full bridge ZVT Phase shift assumes the role of duty cycle d in converter equations Effective duty cycle is reduced by the resonant transition intervals Reduction in effective duty cycle can be expressed as a function of the form FP ZVT (J), where P ZVT (J) is a negative number similar in magnitude to 1. F is generally pretty small, so that the resonant transitions do not require a substantial fraction of the switching period Circuit looks symmetrical, but the control, and hence the operation, isn’t. One side of bridge loses ZVS before the other.
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 5 Lecture 37 ZVT Analysis
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 6 Lecture 37 Interval 1
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 7 Lecture 37 Normalized state plane
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 8 Lecture 37 Solution of state plane
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 9 Lecture 37 Subintervals 2 and 3
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 10 Lecture 37 Subinterval 4
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 11 Lecture 37 Subinterval 5 ZVS: output current charges C leg without requiring J > 1
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 12 Lecture 37 Subinterval 6 Current i c circulates around primary-side elements, causing conduction loss This current arises from stored energy in L c The current is needed to induce ZVS during next subinterval To maxzimize efficiency, minimize the length of this subinterval by choosing the turns ratio n such that M = V/nV g is only slightly less than 1
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 13 Lecture 37 Subintervals 7 to 11 Subintervals 7 to 11 and 0 are symmetrical to subintervals 1 to 6 Complete state plane trajectory:
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 14 Lecture 37 Averaging
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 15 Lecture 37 Phase-shift control
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 16 Lecture 37 Phase shift control
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 17 Lecture 37 Phase shift control: result
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ECEN 5817 Resonant and Soft-Switching Techniques in Power Electronics 18 Lecture 37 Effect of ZVT: reduction of effective duty cycle
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