The diagram shown below is a typical tuning circuit. Considering this circuit comprises a transformer (with a coil ratio of 20:1 and an HV side voltage of 240V ), a capacitor of impedance -j20Ω, an inductor of impedance j40Ω, and a 50Ω resistor, determine: the current supplied by the source the impedance seen at the supply (HV side) the power dissipated by the resistor the operating power factor of the fitting

Introductory Circuit Analysis (13th Edition)
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ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
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  • The diagram shown below is a typical tuning circuit. Considering this circuit comprises a transformer (with a coil ratio of 20:1 and an HV side voltage of 240V ), a capacitor of impedance -j20Ω, an inductor of impedance j40Ω, and a 50Ω resistor, determine:

 

  1. the current supplied by the source

 

  1. the impedance seen at the supply (HV side)

 

  1. the power dissipated by the resistor

 

  1. the operating power factor of the fitting

 

 

 

 

  • If the capacitor is now removed from the above circuit and is placed in parallel with the secondary of the transformer, redraw the circuit diagram and recalculate parts a. to d. in question (i).

 

  • Draw the phasor diagram for both series and parallel RLC circuits in parts (i) and (ii). Discuss the effects of changing the capacitor connection in parallel on the power factor of the circuit.

 

  • State the benefits of using the transformer in the above circuit. Explain the operating principle of the transformer with particular reference to electro-magnetic induction and induced emfs.

 

Note: To achieve the higher criteria for this learning outcome, evaluate your calculations using computer software across all tasks.

Supply
240V RMS
20⁰
50Hz
20:1
HIM
XL = j400
Xc = -j20Ω
R = 500
Transcribed Image Text:Supply 240V RMS 20⁰ 50Hz 20:1 HIM XL = j400 Xc = -j20Ω R = 500
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