DocumentCode
1116293
Title
Voltage Dip Mitigation Using Shunt-Connected Voltage Source Converter
Author
Bongiorno, Massimo ; Svensson, Jan
Author_Institution
Chalmers Univ. of Technol., Goteborg
Volume
22
Issue
5
fYear
2007
Firstpage
1867
Lastpage
1874
Abstract
In this paper, a voltage source converter (VSC) connected in shunt with the grid to mitigate voltage dips for sensitive processes is presented. The VSC maintains the magnitude of the grid voltage at the connection point constant by injecting reactive power to compensate for the voltage dip. This is achieved by using a cascade controller, constituted by an inner vector current-controller (VCC) and an outer voltage controller, which calculates the current references for the VCC. The paper shows that using an inductor/capacitor/inductor (LCL)-filter instead of the simpler L-filter in between the VSC and the grid yields high performance and robust controller. Furthermore, in order to compensate for unbalanced dips, both positive- and negative-sequence components of the grid voltage must be controlled separately. This is done by using two independent controllers for the two sequences, with the same cascaded structure described above. Simulation results under balanced and unbalanced dips are presented to show the performance. Also, stability analyses are done to determine the robustness of the system against grid parameter variation.
Keywords
cascade control; electric current control; power convertors; power filters; reactive power control; reference circuits; robust control; stability; static VAr compensators; voltage control; cascade controller; cascaded structure; current references; grid parameter variation; high performance controller; inductor/capacitor/inductor filter; reactive power; robust controller; shunt-connected voltage source converter; stability analysis; vector current-controller; voltage controller; voltage dip compensation; voltage dip mitigation; Capacitors; Converters; Inductors; Power conversion; Reactive power; Robust control; Shunt (electrical); Stability analysis; Voltage control; Voltage fluctuations; Cascade control; converters; current control; power quality; reactive power control;
fLanguage
English
Journal_Title
Power Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0885-8993
Type
jour
DOI
10.1109/TPEL.2007.904243
Filename
4300860
Link To Document