Title :
Master–Slave Current-Sharing Control of a Parallel DC–DC Converter System Over an RF Communication Interface
Author :
Mazumder, Sudip K. ; Tahir, Muhammad ; Acharya, Kaustuva
Author_Institution :
Univ. of Illinois at Chicago, Chicago
Abstract :
Using analog wireless communication, we demonstrate a master-slave load-sharing control of a parallel dc-dc buck converter system, thereby eliminating the need for physical connection to distribute the control signal among the converter modules. The current reference for the slave modules is provided by the master module using radio-frequency (RF) transmission, thereby ensuring even sharing of the load current. The effect of delay due to RF transmission on system stability and performance is analyzed, and regions of operation for a stable as well as satisfactory performance are determined. We experimentally demonstrate a satisfactory performance of the master-slave converter at 20-kHz switching frequency under steady state as well as transient conditions in the presence of a transmission delay. The proposed control concept, which can potentially attain redundancy that is achievable using a droop method, may lead to more robust and reconfigurable control implementation of distributed converters and power systems. It may also be used as a (fault-tolerant) backup for wire-based control of parallel/distributed converters.
Keywords :
DC-DC power convertors; delays; load regulation; robust control; RF communication interface; analog wireless communication; distributed power systems; droop method; fault-tolerant backup; frequency 20 kHz; master-slave converter; master-slave current-sharing control; parallel dc-dc converter system; parallel/distributed converters; radio-frequency transmission; reconfigurable control; robust control; system performance; system stability; transmission delay effect; wire-based control; Buck converters; Communication system control; Control systems; DC-DC power converters; Delay effects; Master-slave; Power system transients; Radio frequency; Stability analysis; Wireless communication; Load sharing; master–slave control; parallel dc–dc converter; time delay effects; time-delayed system stability; wireless-network-based control;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2007.896138