Related MCQs

• The problem of short-circuiting in 1- Full wave semi-converter is very common.
• Diodes in 1- Full wave semi-converter protects the thyristor from short-circuiting.
• Calculate the r.m.s value of diode current in 1- Full wave semi-converter for the load (Highly inductive) current=.2 A and =74 . (F.D configuration)
• Calculate the average value of diode current in 1- Full wave semi-converter for the load (Highly inductive) current=5.2 A and =11 . (F.D configuration)
• Calculate the average value of diode current in 1- Full wave semi-converter for the load (Highly inductive) current=75.2 A and =41 . (Asymmetrical configuration)
• Calculate the average value of thyristor current in 1- Full wave semi-converter for the load (Highly inductive) current=25.65 A and =18 . (Asymmetrical configuration)
• Calculate the r.m.s value of diode current in 1- Full wave semi-converter for the load (Highly inductive) current=5.1 A and =115 . (Asymmetrical configuration)
• Calculate the r.m.s value of thyristor current in 1- Full wave semi-converter for the load (Highly inductive) current=2.2 A and =155 . (Asymmetrical configuration)
• Calculate the r.m.s value of source current in 1- Full wave semi-converter for the load (Highly inductive) current=51.2 A and =15 .
• Calculate the fundamental component of source current in 1- Full wave bridge rectifier for the load(Highly inductive) current=78 A.