Answer:
a) 12.74 V
b) Two pairs of diode will work only half of the cycle
c) 8.11 V
d) 8.11 mA
Explanation:
The voltage after the transformer is relationated with the transformer relationshinp:
[tex]V_o=Vrms*\frac{1}{12}\\V_o=10Vrms[/tex]
the peak voltage before the bridge rectifier is given by:
[tex]V_{op}=Vo*\sqrt{2}\\V_{op}=14.14V[/tex]
The diodes drop 0.7v, when we use a bridge rectifier only two diodes are working when the signal is positive and the other two when it's negative, so the peak voltage of the load is:
[tex]V_l=V_{op}-2(0.7)\\V_l=12.74V[/tex]
As we said before only two diodes will work at a time, because the signal is half positive and half negative,so two of them will work only half of the cycle.
The averague voltage on a full wave rectifier is given by:
[tex]V_{avg}=2*\frac{V_l}{\pi}\\V_{avg}=8.11V[/tex]
Using Ohm's law:
[tex]I_{avg}=\frac{V_{avg}}{R}\\\\I_{avg}=8.11mA[/tex]
