Main objective of this project is controlling the dc-side voltage of the PWM converter, and prediction of the low order harmonics in the control variable with minimal error.
In this project a new discrete-time control strategy for Three-Phase Three-Wire Shunt Active Power Filters (APF) is presented, based on a mathematical model in the stationary reference frame. It involves a feedback-linearization-type approach to control the filter currents, whereby the voltage control loop is decoupled from the current control.
The voltage control loop is for controlling the dc-side voltage of the PWM converter, and employs a Proportional-Integral (PI) controller to generate the reference amplitude for the compensated grid currents. An important feature of the proposed control strategy is the compensation of the one-sampling-period delay caused by microcontroller computation using a Finite Impulse Response (FIR) predictor. This predictor is designed to accomplish one-step-ahead prediction of the control variable, which is the PWM converterβs switching function space vector.
Furthermore, the FIR predictor is optimized so that the low order harmonics in the control variable are predicted with minimal error. The proposed control strategy is analyzed to obtain the steady state filter current error and ranges for the PI controller gains for stability. Simulation results are presented to show the effectiveness of the proposed shunt APF.
Keywords: Three-Phase Three-Wire Shunt Active Power Filters (APF), Finite Impulse Response (FIR), 3-phase Grid, FIR predictor.
NOTE: Without the concern of our team, please don't submit to the college. This Abstract varies based on student requirements.

Software Configuration:
Operating System : Windows 7/8/10
Application Software : Matlab/Simulink
Hardware Configuration:
RAM : 8 GB / 4 GB (Min)
Processor : I3 / I5(Mostly prefer)