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Transcript
Electronics 1 (EEEN-3421) Section: 101 Experiment No. 2 : Diode Rectifiers By: Faisal Al-Hunsil 200800011 Hussian Al haji 201002375 Hussain Al-marhoon 200600719 To : Mr. Muhammad Omer Introduction: Two of the most important diode application are rectification and regulation. The primary function of rectification circuits is to establish a DC level from an AC input signal. Rectifier circuits play an important role in power application and communication signal detection. Regulation is needed to maintain a constant dc voltage source and/or load conditions. Theory : With four diodes, you can make both halves of the waves positive. This is called a full-wave rectifier diode bridge. For both positive and negative swings of the input there is a forward path through the diode bridge. While two of the diodes are forward biased, the other two are reverse biased and effectively eliminated from the circuit. Both conduction paths cause current to flow in the same direction through the load resistor, accomplishing full-wave rectification. Full-wave rectifiers are used in power supplies to convert AC voltages to DC voltages. A large capacitor in parallel with the output load resistor reduces the ripple from the rectification process. Purpose : In the first part of this experiment we will investigate the half-wave rectification circuits. In the second part the effect of filter capacitor will be investigated. In the third part a full wave rectifier circuits will be investigated. Table 1: Step Measurement 1 Measurement diode and resistor VD= 0.58v R= 10.36 kΩ 2 contact the diode circuit Vspp= 10.00v 3 Using oscilloscope Vspeak= 5.0v frequency= 49.92 Hz vopeak= 4.4v vHWmean= 1.32v 4 Using multimeter 6 Conversion vrC1= 0.13v vmeanC1= 4.05V 7 With lowe c2 Vrc2= 0.68v vfmean=c2= 3.91v 10 Photo oscilloscope 11 Using multimeter 12 Add a capacitor vFWmean= 2.494v VrCFW= 0.035V VmeanCFW= 3.945V Table 2: Mean, Ripple Measurement Summary Parameter Half Wave Full Wave Mean v0 without c 1.32v 2.494v Mean v0 with c=100µF 4.05v 3.945v Mean v0 with c=10µF 3.91v None Ripple, Vr with c=100 µF 0.13v 0.035v Ripple, Vr with c=10 µF 0.68v None Conclusion : For the half wave voltage, the difference between Vs and Vo is 0.6 volts which is the voltage required for the diode to operate. The capacitor increases Vo for half wave and full wave. The less of value the capacitor has the higher the voltage will be.
