Title :
Transient performance of UPS system with synchronous-frame digital controller
Author :
Chen, Su ; Joós, Géza
Author_Institution :
Dept. of Electr. & Comput. Eng., Concordia Univ., Montreal, Que., Canada
Abstract :
This paper proposes a voltage controlled voltage source type nonlinear regulator, based on the state variable approach, for the control of three-phase UPS inverters. The purposes are to improve dynamic response, incorporate the output LC filter as part of the output voltage control system and reduce the number of sensors. The design and analysis are based on the system state-space models, with state variable linearization and decoupling performed through on-line calculation. An output voltage estimator is proposed, using the instantaneous power as the basis for the algorithm, with data sampling executed only at the zero switching states, thereby eliminating the filter. In addition, a full-order load current observer is used, which makes the proposed control system load parameter insensitive, and results in fast transient response. The steady state and transient performance of the UPS system are evaluated. The dynamic response time is around 4 ms. Experimental results are obtained on a 4 kVA DSP controlled prototype UPS
Keywords :
PWM invertors; digital control; digital signal processing chips; nonlinear control systems; observers; switching circuits; transient response; uninterruptible power supplies; voltage control; 4 kVA; 4 ms; DSP controlled UPS; UPS system; decoupling; dynamic response improvement; dynamic response time; full-order load current observer; instantaneous power; nonlinear control strategy; output LC filter; output voltage control system; output voltage estimator; sensorless techniques; state variable approach; state variable linearization; synchronous-frame digital controller; system state-space models; three-phase UPS inverters; transient performance; voltage control; voltage source type nonlinear regulator; zero switching states; Filters; Inverters; Nonlinear dynamical systems; Performance analysis; Power system modeling; Regulators; Sensor systems; Uninterruptible power systems; Voltage control; Zero voltage switching;
Conference_Titel :
Telecommunications Energy Conference, 2000. INTELEC. Twenty-second International
Conference_Location :
Phoenix, AZ
Print_ISBN :
0-7803-6407-4
DOI :
10.1109/INTLEC.2000.884300