DocumentCode :
1754751
Title :
LCL and L-VSC Converters With DC Fault Current-Limiting Property and Minimal Power Losses
Author :
Weixing Lin ; Jovcic, Dragan
Author_Institution :
Sch. of Eng., Univ. of Aberdeen, Aberdeen, UK
Volume :
29
Issue :
5
fYear :
2014
fDate :
Oct. 2014
Firstpage :
2359
Lastpage :
2368
Abstract :
This paper studies the methodologies for developing dc fault-tolerant and highly efficient voltage-source converters (VSCs). Building on a recently proposed LCL-VSC converter, which suffers from low efficiency at partial load, an operating strategy of switchable capacitor banks instead of a fixed central capacitor is proposed to improve the efficiency. A theoretical framework is presented to enable LCL-VSC to achieve fault current limiting and avoid the blocking of insulated-gate bipolar transistors during dc faults. A design of traditional L-VSC (either two level or multilevel) that can limit fault current is also mathematically deduced as a comparison. The L-VSC can be designed to limit the fault current close to rated value, but this comes at an increase of around 40% in semiconductor costs and operating losses. The results show that the efficiency of LCL-VSC is similar to the conventional L-VSC. LCL-VSC cannot isolate dc faults, but their reduced fault current enables the converter to ride through dc faults and this significantly reduces the requirements on operating speed and capacity of dc circuit breakers. The LCL-VSC is especially suitable to replace conventional L-VSC at the grid points where a strong ac grid will feed significant dc fault current to the dc grid. Detailed PSCAD simulations confirm theoretical findings.
Keywords :
circuit breakers; fault current limiters; fault tolerance; insulated gate bipolar transistors; mathematical analysis; power capacitors; power convertors; AC grid; DC circuit breaker; DC fault current-limiting property; DC fault-tolerant; DC grid; L-VSC converter; LCL-VSC converter; PSCAD simulation; fixed central capacitor; insulated-gate bipolar transistor; mathematical analysis; minimal power loss; semiconductor cost; switchable capacitor bank; voltage-source converter; Capacitors; Circuit faults; Fault currents; Insulated gate bipolar transistors; Power conversion; Switches; AC–DC power conversion; HVDC converters; HVDC transmission; dc power systems; dc power transmission;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2014.2314481
Filename :
6803913
Link To Document :
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