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The calculation of the Inductor Value in all the Primary converters is based on : Select one:a.Energy Balance Equationsb.Power Balance equationsc.Inductor Voltage Equationd.Capacitor Current Equation

Question

The calculation of the Inductor Value in all the Primary converters is based on : Select one:a.Energy Balance Equationsb.Power Balance equationsc.Inductor Voltage Equationd.Capacitor Current Equation

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Solution

The calculation of the Inductor Value in all the Primary converters is based on the Inductor Voltage Equation. So, the correct answer is c. Inductor Voltage Equation.

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The calculation of the Input-Output relationship in all the Primary converters is based on : Select one:a.Inductor Volt-sec balance equationb.Energy Balance Equationsc.Power Balance equationsd.Capacitor Volt-sec balance equation

The calculation of the Output Capacitor Value in all the Primary converters is based on

In a Boost converter of Figure below, the inductor current has ΔiL = 2 A. It is operating in dc steady state under the following conditions: Vin = 5 V, Vo = 12 V, Po = 11 W, and fs = 200 kHz. Assuming ideal components, calculate the inductance value in Micro Henery

A boost converter has the following specifications: Vin = 36 V, Vo= constant = 108 V, Fs = 51 kHz, and the output power may vary with a range of Po(range) = 107 W to 200 W. Assuming that the converter is ideal, calculate: a) the smallest value of the inductor, L, in order to have continuous current

A boost converter has the following specifications: Vin = 36 V, Vo= constant = 108 V, Fs = 51 kHz, and the output power may vary with a range of Po(range) = 107 W to 200 W. Assuming that the converter is ideal, calculate: a) the smallest value of the inductor, L, in order to have continuous current b) the value of the output filter capacitor, C, so that the output voltage ripple to be lower than 0.5 V. Use the inductance you calculated in part (a)

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