TY - GEN
T1 - Efficiency-based optimization of steady-state operating points for parallel source converters in stand-alone power system
AU - Wang, Shike
AU - Liu, Jinjun
AU - Liu, Zeng
AU - Wu, Teng
AU - Liu, Baojin
N1 - Publisher Copyright:
© 2016 IEEE.
PY - 2016/7/13
Y1 - 2016/7/13
N2 - The operation efficiency is always considered to be a significant issue for power electronics system, such as parallel source converters in stand-alone power system. Quite a few solutions have been developed to increase power conversion efficiency of a single converter. However, existing work concerning efficiency issue on system level is scarce. On the basis of hierarchical multilevel control theory, this paper proposed a coordinative control strategy on tertiary level to optimize steady-state operating points for each source converter in the system, reducing losses and improving the overall efficiency. Based on the quadratic loss model, the optimal power distribution ratio between two converters is firstly analyzed. By introducing the concept of equivalent converter loss model, a forward-backward sweep calculation method is generalized to N-parallel-converter system. Furthermore, the successive switching points of N converters are precisely designed to maintain minimum system losses under full load range. According to datasheets of typical industrial products, calculation examples are presented to demonstrate the validity of this proposed strategy. The maximum and average efficiency improvement is 1.55 and 0.56 in percentage respectively. Considering the rising development of renewable energy generation and microgrids, this efficiency increase will contribute considerable energy and economic savings in the long run.
AB - The operation efficiency is always considered to be a significant issue for power electronics system, such as parallel source converters in stand-alone power system. Quite a few solutions have been developed to increase power conversion efficiency of a single converter. However, existing work concerning efficiency issue on system level is scarce. On the basis of hierarchical multilevel control theory, this paper proposed a coordinative control strategy on tertiary level to optimize steady-state operating points for each source converter in the system, reducing losses and improving the overall efficiency. Based on the quadratic loss model, the optimal power distribution ratio between two converters is firstly analyzed. By introducing the concept of equivalent converter loss model, a forward-backward sweep calculation method is generalized to N-parallel-converter system. Furthermore, the successive switching points of N converters are precisely designed to maintain minimum system losses under full load range. According to datasheets of typical industrial products, calculation examples are presented to demonstrate the validity of this proposed strategy. The maximum and average efficiency improvement is 1.55 and 0.56 in percentage respectively. Considering the rising development of renewable energy generation and microgrids, this efficiency increase will contribute considerable energy and economic savings in the long run.
KW - efficiency
KW - losses
KW - optimization
KW - parallel source converter
UR - https://www.scopus.com/pages/publications/84983372962
U2 - 10.1109/IPEMC.2016.7512280
DO - 10.1109/IPEMC.2016.7512280
M3 - 会议稿件
AN - SCOPUS:84983372962
T3 - 2016 IEEE 8th International Power Electronics and Motion Control Conference, IPEMC-ECCE Asia 2016
SP - 163
EP - 170
BT - 2016 IEEE 8th International Power Electronics and Motion Control Conference, IPEMC-ECCE Asia 2016
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 8th IEEE International Power Electronics and Motion Control Conference, IPEMC-ECCE Asia 2016
Y2 - 22 May 2016 through 26 May 2016
ER -