Title :
Improvement of control-law derivation for D-Σ digital controlled three-phase four-wire inverter
Author :
Wu, T.-F. ; Lin, L.-C. ; Lin, P.-H. ; Chen, Y.-H. ; Chang, Y.-R.
Author_Institution :
Dept. of Electr. Eng., Nat. Tsing Hua Univ., Hsinchu, Taiwan
Abstract :
A division-summation (D-Σ) digital control can track sinusoidal reference current in four operation modes: grid-connection, rectification, PF leading and PF lagging mode. It can overcome the limitation of abc to α-β-γ frame transformation and cover wide filter inductance variation. However, the switching sequences for the four modes are different from each other, increasing complexity of firmware programming. In this paper, improvement of control-law derivation for D-Σ digital controlled three-phase four-wire inverter is presented. By selecting the zero crossing points of phase voltages as region transitions, the control laws and the related parameter tables for the four modes can be unified to a general form. The three-phase four-wire inverter topology can be also adopted as an uninterruptible power supply (UPS) application and it can supply unbalanced, linear and rectified loads. With the proposed load impendence estimation, the D-Σ digital control laws can be applied for voltage tracking. The switching sequences of the four modes and UPS mode are all unified to the switching pattern of the grid-connection mode. Additionally, a D-Σ transformation matrix is identified to simplify the derivation procedure of the division (D) and summation (Σ), which can obtain the control law directly. Experimental results measured from a 10 kVA inverter have verified the analysis and discussion.
Keywords :
digital control; invertors; uninterruptible power supplies; α-β-γ frame transformation; D-Σ digital control laws; D-Σ digital controlled three-phase four-wire inverter topology; D-Σ transformation matrix; PF lagging mode; PF leading mode; UPS mode; abc frame transformation; apparent power 10 kVA; control-law derivation; division-summation digital control; filter inductance variation; firmware programming; grid-connection mode; load impedance estimation; phase voltages; rectification mode; sinusoidal reference current tracking; switching pattern; switching sequences; uninterruptible power supply; voltage tracking; zero crossing points; Inductance; Inductors; Inverters; Switches; Tin; Uninterruptible power systems; Voltage control; D-Σ digital control; UPS; grid-tied inverter; region selection;
Conference_Titel :
Applied Power Electronics Conference and Exposition (APEC), 2015 IEEE
Conference_Location :
Charlotte, NC
DOI :
10.1109/APEC.2015.7104549