Title :
Enhanced Power Generation From Two-Winding Single-Phase SEIG Using LMDT-Based Decoupled Voltage and Frequency Control
Author :
Kalla, Ujjwal Kumar ; Singh, Bhim ; Murthy, S. Sreenivasa
Author_Institution :
Dept. of Electr. Eng., Indian Inst. of Technol. Delhi, New Delhi, India
Abstract :
This paper proposes a leaky minimal disturbance theory (LMDT)-based decoupled control of voltage and frequency for two-winding single-phase self-excited induction generators (SEIGs) for enhanced power generation and power quality improvement. Single-phase two-winding SEIGs are normally designed with 33% derated capacity in comparison to three-phase SEIGs of the same frame size. Using single-point operation performed by the proposed decoupled voltage and frequency controller (DVFC), the two-winding single-phase machine can generate enhanced power output, nearly 33% higher than its normal capacity. It is equal to the power generated by a three-phase machine with the same frame size. The DVFC consists of a voltage source converter (VSC) and a closed-loop controlled dump load. A single-phase VSC is used for harmonics and fundamental reactive power compensation for system voltage control and harmonics mitigation. The control of VSC is achieved using an LMDT-based control algorithm. The minimal disturbance theory-based control algorithm is used for potentially fast convergence and fast dynamic response, whereas the leakage factor is added for improving the steady-state performance of the system. The LMDT control-based VSC-battery energy storage system scheme is also implemented for the voltage and frequency control of a single-phase SEIG. Both schemes are implemented in real time using a digital signal processor.
Keywords :
asynchronous generators; battery management systems; closed loop systems; convergence; dynamic response; frequency control; harmonics suppression; machine control; machine windings; power convertors; power generation control; reactive power control; voltage control; DVFC; LMDT control-based VSC-battery energy storage system scheme; LMDT-based decoupled control algorithm; SEIG; closed loop controlled dump load; convergence; decoupled voltage and frequency controller; digital signal processor; dynamic response; fundamental reactive power compensation; harmonics compensation; leakage factor; leaky minimal disturbance theory; power generation enhancement; single phase VSC; steady-state performance; two winding single phase machine; two winding single phase self-excited induction generator; voltage source converter; Control systems; Frequency control; Heuristic algorithms; Power conversion; Reactive power; Voltage control; Power quality improvement; power quality improvement; single phase SEIG; single-phase self-excited induction generator (SEIG); voltage and frequency control;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2015.2435698