Title :
Improving the Stability of Cascaded DC/DC Converter Systems via Shaping the Input Impedance of the Load Converter With a Parallel or Series Virtual Impedance
Author :
Xin Zhang ; Xinbo Ruan ; Qing-Chang Zhong
Author_Institution :
Aero-Power Sci-Tech Center, Nanjing Univ. of Aeronaut. & Astronaut., Nanjing, China
Abstract :
Interactions between individually designed power subsystems in a cascaded system may cause instability. This paper proposes an approach, which connects a virtual impedance in parallel or series with the input impedance of the load converter so that the magnitude or phase of the load converter´s input impedance is modified in a small range of frequency, to solve the instability problem of a cascaded system. The requirements on the parallel virtual impedance (PVI) and series virtual impedance (SVI) are derived, and the control strategies to implement the PVI and SVI are proposed. The comparison and general design procedure of the PVI and SVI control strategies are also discussed. Finally, considering the worst stability problem that often occurs at the system whose source converter is an LC filter, two cascaded systems consisting of a source converter with an LC input filter and a load converter, which is either a buck converter or a boost converter, are fabricated and tested to validate the effectiveness of the proposed control methods.
Keywords :
DC-DC power convertors; LC circuits; cascade networks; impedance convertors; load regulation; LC filter; PVI; SVI; boost converter; buck converter; cascaded DC-DC converter system; control strategy; input impedance shaping; load converter; parallel virtual impedance; power subsystem; series virtual impedance; stability problem; Band-pass filters; Frequency conversion; Impedance; Resistors; Stability criteria; Transfer functions; Voltage control; Cascaded system; dynamic performance; input impedance regulator (IIR); input-impedance-regulator; instability problem; load converter; parallel virtual impedance (PVI); parallel-virtual-impedance; series virtual impedance (SVI); series-virtual-impedance;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2015.2459040