Q4. For the following bridge rectifier circuit, draw the output voltage waveform
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- A full-wave bridge rectifier with a 236.86V p-p sinusoidal input has a load resister of 2KΩi. Draw the wave form that the load resistor R would see. ii. Assuming diodes are ideal, what is the dc voltage available at the load resistor? iii. What is the dc voltage available at the load if silicon diodes are employed? iv. Calculate the maximum current flow through the Diode D4 during conduction.A full-wave bridge rectifier with a 12V (pk) sinusoidal input has a load resistor of 20 k. (a) If silicon diodes are employed, what is the dc voltage available at the load? (b) Determine the required PIV rating of each diode. (c) Find the maximum current through each diode during conduction. (d) What is the required power rating of each diode?(a)Derive the average and rms output voltages and currents for three-phase half controlled rectifier with free wheeling diode and RLE load.(b))In a single phase full converter, if output voltage has peak and average values of 325V and 133V respectively, find the firing angle.
- Q.1 A single-phase diode bridge rectifier is connected to a grid with rms voltage V, 230V at 50 Hz. Assume that the load is highly inductive, so it could be represented by a constant dc current, Id = 10A. a) Sketch the load voltage and find the average voltage of the load? b) Sketch the source current (grid. AC side) and find the rms value of the source current? c) Determine the fundamental source current and the first three harmonics? Assume Ish_rms ³ 0.91a/h for odd hand 0 otherwise?A schematic design of a full-wave bridge type power supply is given below. Provide the appropriate values for the inductors, diodes, capacitor and resistors, such that the output DC voltage is 6.2 V and the max. output power for the load resistance is 20 mW (percentage error for output voltage and output power is 2%). AC voltage source: Amplitude=311.13, Freq=60, DC offset= 0. For the rectifier part, choose diodes with an appropriate PIV rating. Show all the formulas and computations involved in acquiring the values for the inductors, diodes, capacitor and resistors. In choosing your Zener diode, consider the output voltage and the output current. Note that the output current should be the minimum Zener current. For the value of the series resistor RS, choose a lower value for less ripple but always consider the required output voltage. The ripple voltage peak-to-peak value should be less than or equal to 1% of the required output voltage. Use the formula below for choosing the value…In a 1-phase full wave bridge rectifier with Vs = Vm sin ωt, with R load & ideal diodes. The expression for the average value of the output voltage is 2Vm/π Select one: True False
- A single phase diode bridge rectifier has an input voltage of 240V and supplies a resistive load with a constant dc current of 10A. (a) Sketch a well labeled circuit of the rectifier described above.(b) Sketch the waveforms for the input voltage, output voltage, input current and output current. (c) Determine the maximum input voltage. (d) Load resistance. (e) Derive an equation for the average output voltage and calculate its value. (f) Derive an equation for the RMS value of the output voltage and calculate its value. (g) Determine the power dissipated in the loadA number of diodes rated at 1620 V each are to be connected in series in a rectifier circuit with a maximum voltage of 3000V. A de-rating factor of 15% is recommended. The maximum difference in leakage current of the diodes is given as 10mA , and the maximum difference in stored charge is 20µC. Calculate, 1) the number of diodes that must be used, 2) a suitable component value for the static equalization circuit; 3) a suitable component value for the dynamic equalization circuit.Two identical Schottky diodes are connected in series, one in the forward and the other in reverse direction, see figure. Assume the reverse saturation current, IS, of each diode to be known. Derive he current-voltage curve I(V) of this circuit. Plot it with the ratio I / IS on the y-axis and V / Vth on the x-axis. Make sure to cover a broad range of voltages, say, from –10 Vth to 10 Vth.