DocumentCode :
666428
Title :
Cascaded sliding mode control for global stability of three phase AC/DC PWM rectifier with rapidly varying power electronic loads
Author :
Zhang, Xinan ; Vilathgamuwa, D.M. ; Foo, Gilbert ; Tseng, King-Jet ; Kandasamy, K. ; Gupta, Amit Kumar ; Chandana, Gajanayake
Author_Institution :
Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
fYear :
2013
fDate :
10-13 Nov. 2013
Firstpage :
4580
Lastpage :
4587
Abstract :
It can be seen presently widespread electrification of high power vehicular systems such as more electric aircrafts and electric ships. To further improve the efficiency, flexibility and reliability of such systems, zonal DC electric distribution technology is proposed. In most cases, the zonal DC bus is fed by front-end AC/DC voltage source rectifiers and is responsible for supporting many onboard loads with complex dynamic characteristics. Due to the small-signal constant power nature of tightly regulated power electronic loads and the large-signal load variations, stability of the zonal DC bus becomes a major concern. It is clear that conventional PI controllers stabilize the system in a small-signal sense. However, they are ineffective under some large-signal disturbances and load changes. Passivity based control method is known to provides global stability under passive loads, such as resistive loads. Nonetheless, the global stability of voltage regulation with nonlinear loads has not been discussed. This paper proposes a cascaded sliding mode control method with global stability and online observation of load power. Moreover, system stability limit constrained by catastrophic bifurcation is also discussed. Simulation results are provided to verify the proposed method.
Keywords :
AC-DC power convertors; PI control; PWM rectifiers; cascade control; catastrophe theory; stability; variable structure systems; PI controllers; cascaded sliding mode control; catastrophic bifurcation; complex dynamic characteristics; electric aircrafts; electric ships; front-end voltage source rectifiers; global stability; high power vehicular systems; large-signal load variations; load power; online observation; passive loads; passivity based control method; power electronic loads; resistive loads; three phase ac-dc PWM rectifier; voltage regulation; zonal DC bus; zonal dc electric distribution technology; Power electronics; Power system stability; Pulse width modulation; Rectifiers; Resistance; Stability analysis; Voltage control; More electric aircraft; electric ship; global stability; load power observation; sliding mode control; zonal DC bus;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Industrial Electronics Society, IECON 2013 - 39th Annual Conference of the IEEE
Conference_Location :
Vienna
ISSN :
1553-572X
Type :
conf
DOI :
10.1109/IECON.2013.6699874
Filename :
6699874
Link To Document :
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