Title :
Decentralized Inverse-Droop Control for Input-Series–Output-Parallel DC–DC Converters
Author :
Guo Xu ; Deshang Sha ; Xiaozhong Liao
Author_Institution :
Key Lab. of Intell. Control & Decision of Complex Syst., Beijing Inst. of Technol., Beijing, China
Abstract :
Input-series-output-parallel dc-dc converters are suited for high-input voltage and low output voltage applications. This letter presents a decentralized inverse-droop control for this configuration. Each module is self-contained and no central controller is needed; thus, improving the system modularity, reliability, and flexibility. With the proposed inverse-droop control, the output voltage reference rises as the load becomes heavy. Even though the input voltages are not used in the inverse-droop loop, the power sharing including input voltage sharing and output current sharing can still be well achieved. Besides, the output voltage regulation characteristic is not affected by the variation of input voltage. The operation principle is introduced, and stability of the strategy is also revealed based on small signal modeling. Finally, the experiment is conducted to verify the effectiveness of the control strategy.
Keywords :
DC-DC power convertors; decentralised control; reliability; voltage control; decentralized inverse-droop control; input voltage sharing; input-series-output-parallel DC-DC converters; output current sharing; output voltage reference; output voltage regulation characteristic; power sharing; reliability; small signal modeling; DC-DC power converters; Decentralized control; Regulators; Stability analysis; Steady-state; Voltage control; Input-series and output-parallel (ISOP); input voltage sharing; input voltage sharing (IVS); input-series and output-parallel; inverse-droop; output current sharing; output current sharing (OCS);
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2015.2396898