학술논문

Time-Domain Analysis and Optimization of a Three-Phase Dual-Active-Bridge Converter With Variable Duty-Cycle Modulation
Document Type
Periodical
Source
IEEE Transactions on Power Electronics IEEE Trans. Power Electron. Power Electronics, IEEE Transactions on. 38(12):15338-15352 Dec, 2023
Subject
Power, Energy and Industry Applications
Aerospace
Communication, Networking and Broadcast Technologies
Components, Circuits, Devices and Systems
Computing and Processing
Engineered Materials, Dielectrics and Plasmas
Fields, Waves and Electromagnetics
General Topics for Engineers
Nuclear Engineering
Signal Processing and Analysis
Transportation
Modulation
Optimization
Phase modulation
Bridge circuits
Table lookup
Stress
Voltage control
DC–DC converter
modulation
optimal control
Language
ISSN
0885-8993
1941-0107
Abstract
The duty-cycle control (DCC) modulation scheme for the three-phase dual-active-bridge (3p-DAB) dc–dc converter is a promising three degree-of-freedom modulation scheme which can extend the converter's soft-switching range and reduce conduction losses under partial loading and wide voltage variations. However, the prior suggested methods to implement DCC in 3p-DABs have drawbacks, such as requiring a multifrequency approximation and offline optimization process, or achieving less than optimal efficiency. To overcome these challenges, this article first proposes an optimal DCC modulation strategy (OMS) for the 3p-DAB based on a novel piecewise time-domain analysis (TDA) and optimization process that obtains the optimal control parameters for minimum rms phase current. Second, this article proposes a novel closed-form minimum current stress optimization (MCSO) DCC scheme based on the theoretical findings of the TDA optimization. The MCSO reduces the transformer phase currents and extends soft-switching operation under partial loading and wide voltage variations. Experimental results show that the proposed closed-form MCSO DCC scheme has virtually identical efficiency as the OMS, making this the first article to provide a closed-form DCC modulation scheme for a 3p-DAB that achieves efficiency results equivalent to a fully optimized offline scheme, but without the drawbacks of the offline optimization process.