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Losses calculation for medium voltage PWM current source rectifiers using different semiconductor devices

Ahmed K. Abdelsalam, Mahmoud I. Masoud, Stephen Jon Finney, Barry W. Williams

Open publisher page 2 citations

Abstract

In this paper, a comparison of losses and size for three semiconductor devices suitable for medium voltage (2.4 kV, 3.3 kV and 6.6 kV) high power applications is presented. The comparison is made for medium voltage PWM current source rectifiers using a selective harmonic elimination technique. The devices compared are high voltage insulated gate bipolar transistor (HVIGBT) and two types of hard-driven thyristors, namely, the symmetrical gate commutated thyristor (SGCT) and the asymmetrical gate commutated thyristor (AGCT). The study depends on practical devices, data sheets from well known semiconductor vendors, taking into account accurate discrimination between turn-off and recovery states.

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What this paper is about

In this paper, a comparison of losses and size for three semiconductor devices suitable for medium voltage (2.4 kV, 3.3 kV and 6.6 kV) high power applications is presented. The comparison is made for medium voltage PWM current source rectifiers using a selective harmonic elimination technique. The devices compared are high voltage insulated gate bipolar transistor (HVIGBT) and two types of hard-driven thyristors, namely, the symmetrical gate commutated thyristor (SGCT) and the asymmetrical gate commutated thyristor (AGCT). The study depends on practical devices, data sheets from well known semiconductor vendors, taking into account accurate discrimination between turn-off and recovery states.

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Available abstract

In this paper, a comparison of losses and size for three semiconductor devices suitable for medium voltage (2.4 kV, 3.3 kV and 6.6 kV) high power applications is presented. The comparison is made for medium voltage PWM current source rectifiers using a selective harmonic elimination technique. The devices compared are high voltage insulated gate bipolar transistor (HVIGBT) and two types of hard-driven thyristors, namely, the symmetrical gate commutated thyristor (SGCT) and the asymmetrical gate commutated thyristor (AGCT). The study depends on practical devices, data sheets from well known semiconductor vendors, taking into account accurate discrimination between turn-off and recovery states.

Key concepts: Thyristor, Gate turn-off thyristor, Power semiconductor device, Electrical engineering, Pulse-width modulation, Current injection technique, Semiconductor device, Voltage

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