TY - JOUR
T1 - Stability Improvement of Cascaded Power Conversion Systems Based on Hamiltonian Energy Control Theory
AU - Pang, Shengzhao
AU - Nahid-Mobarakeh, Babak
AU - Hashjin, Saeid Aghaei
AU - Pierfederici, Serge
AU - Martin, Jean Philippe
AU - Liu, Yuntian
AU - Huangfu, Yigeng
AU - Luo, Guangzhao
AU - Gao, Fei
N1 - Publisher Copyright:
© 1972-2012 IEEE.
PY - 2021/1/1
Y1 - 2021/1/1
N2 - It is well known that the interaction between cascaded individually designed power conversion systems can cause instability. To overcome this issue, a Hamiltonian energy control scheme is proposed, which is based on passivity control theory and port-controlled Hamiltonian framework. A complementary PI adjustment term is also included in the control algorithm to eliminate the steady-state output voltage error caused by the parameter uncertainty. The proposed control approach is applied to three different cascade structures. First, the cascade structure between dc/dc converters is considered, and the detailed controller design is given. Second, the cascade connection of a single converter and its LC filter is studied. By placing the LC filter into the Hamiltonian model of the controlled converter system, the dynamic and potential instability caused by the filter can be adjusted. Finally, the cascade structure between subsystems including filters and converters, which are common in microgrids, is studied. By using the Hamiltonian function (storage function) as the Lyapunov function candidate, the large-signal stability of each controlled converter system is proved. When the cascade structure contains multiple controlled converter systems, the stability of the entire cascaded system is guaranteed by the superposition of multiple Lyapunov functions. A 3.5 kW 220-270-350 V test bench is built in the laboratory to demonstrate the application of the proposed control approach to these three cascade structures.
AB - It is well known that the interaction between cascaded individually designed power conversion systems can cause instability. To overcome this issue, a Hamiltonian energy control scheme is proposed, which is based on passivity control theory and port-controlled Hamiltonian framework. A complementary PI adjustment term is also included in the control algorithm to eliminate the steady-state output voltage error caused by the parameter uncertainty. The proposed control approach is applied to three different cascade structures. First, the cascade structure between dc/dc converters is considered, and the detailed controller design is given. Second, the cascade connection of a single converter and its LC filter is studied. By placing the LC filter into the Hamiltonian model of the controlled converter system, the dynamic and potential instability caused by the filter can be adjusted. Finally, the cascade structure between subsystems including filters and converters, which are common in microgrids, is studied. By using the Hamiltonian function (storage function) as the Lyapunov function candidate, the large-signal stability of each controlled converter system is proved. When the cascade structure contains multiple controlled converter systems, the stability of the entire cascaded system is guaranteed by the superposition of multiple Lyapunov functions. A 3.5 kW 220-270-350 V test bench is built in the laboratory to demonstrate the application of the proposed control approach to these three cascade structures.
KW - Cascaded system
KW - Hamiltonian energy control
KW - dc microgrids
KW - dc/dc converter
KW - large-signal stability
KW - port-controlled Hamiltonian (PCH)
KW - proportional integral
UR - http://www.scopus.com/inward/record.url?scp=85098891595&partnerID=8YFLogxK
U2 - 10.1109/TIA.2020.3038355
DO - 10.1109/TIA.2020.3038355
M3 - 文章
AN - SCOPUS:85098891595
SN - 0093-9994
VL - 57
SP - 1081
EP - 1093
JO - IEEE Transactions on Industry Applications
JF - IEEE Transactions on Industry Applications
IS - 1
M1 - 9261131
ER -