DocumentCode
3612580
Title
Reverse blocking IGCT optimised for 1 kV DC bi-directional solid state circuit breaker
Author
Vemulapati, Umamaheswara ; Arnold, Martin ; Rahimo, Munaf ; Antoniazzi, Antonello ; Pessina, Davide
Author_Institution
Corp. Res., ABB Switzerland Ltd., Baden-Dättwil, Switzerland
Volume
8
Issue
12
fYear
2015
Firstpage
2308
Lastpage
2314
Abstract
This study presents the simulation and experimental results of the newly developed 2.5 kV reverse blocking-integrated gate commutated thyristor (RB-IGCT) which has been designed and optimised to have very low conduction losses and high turn-off current capability for DC solid state circuit breaker (SSCB) applications. The device has been optimised through anode engineering, thickness and resistivity to achieve the required blocking capability of 2.5 kV and to have very low conduction losses below 1 kW at 1 kA, that is, the on-state voltage drop is as low as 0.9 V at 1 kA. This study also presents the simulation and experimental results at the system level including the influence of the surge arrester (SA) which is connected in parallel to the RB-IGCT to clamp the overvoltage and to absorb the energy stored in the system inductance at the current interruption. The influence of different voltage rating SAs and parallel combination of SAs on the switching behaviour of the RB-IGCT has been investigated. A bi-directional SSCB for 1 MW application based on 2.5 kV RB-IGCT has been built successfully. The device simulations show that the results are in good agreement with the measurement results both at the device and system levels.
Keywords
arresters; circuit breakers; commutation; power semiconductor switches; thyristors; DC bidirectional solid state circuit breaker; RB-IGCT; SA; SSCB application; Sentaurus Technology Computer Aided Design device simulation; conduction loss; current interruption; on-state voltage drop; power 1 MW; power electronic switch; reverse blocking IGCT; reverse blocking-integrated gate commutated thyristor; surge arrester; voltage 1 kV; voltage 2.5 kV;
fLanguage
English
Journal_Title
Power Electronics, IET
Publisher
iet
ISSN
1755-4535
Type
jour
DOI
10.1049/iet-pel.2015.0028
Filename
7364311
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