Title :
Second-degree digital differentiator-based power system frequency estimation under non-sinusoidal conditions
Author :
Sarkar, Anirban ; Sengupta, Sabyasachi
Author_Institution :
MCKV Inst. of Eng., Howrah, India
fDate :
5/1/2010 12:00:00 AM
Abstract :
This study presents development and implementation of a novel digital signal processing algorithm for on-line estimation of the fundamental frequency of non-sinusoidal power system signals. The basic algorithm relies on the development of a new variance reduction algorithm and design of an optimised infinite impulse response (IIR) second-degree digital differentiator (SDDD). The design of SDDD consists of obtaining a second-degree integrator from Tick integrator, and then modifying and optimising its transfer function appropriately to attain a stable second-degree differentiator. Compared with the well-established technique such as the enhanced phase-locked-loop (EPLL) system, the proposed algorithm provides faster transient response, higher degree of immunity and insensitivity to harmonics and noise. Structural simplicity, wide range of application and robustness against sampling frequency variation are other salient features of the method. The only limitation as compared with the EPLL system is its slight reduced accuracy (around 3 mHz) under static sinusoidal conditions. Based on simulation studies, performances of the proposed algorithm at different operating conditions have been presented and its accuracy and response time have been compared with the EPLL systems.
Keywords :
optimisation; phase locked loops; power system faults; signal processing; transfer functions; EPLL system; SDDD design; Tick integrator; degree of immunity; digital signal processing algorithm; enhanced phase-locked-loop system; nonsinusoidal power system signals; online estimation; optimised infinite impulse response; sampling frequency variation; second-degree digital differentiator; second-degree digital differentiator-based power system frequency estimation; second-degree integrator; static sinusoidal conditions; transfer function optimisation; transient response; variance reduction algorithm;
Journal_Title :
Science, Measurement & Technology, IET
DOI :
10.1049/iet-smt.2008.0138