(b) A student has three capacitors. Two of the capacitors have a capacitance of 4.0 µF and one has a capacitance of 8.0 µF. Draw labelled circuit diagrams, one in each case, to show how the three capacitors may be connected to give a total capacitance of: (i) 1.6uF (ii) 10µF.

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(b) A student has three capacitors. Two of the capacitors have a capacitance of 4.0 µF and one
has a capacitance of 8.0 µF.
Draw labelled circuit diagrams, one in each case, to show how the three capacitors may be
connected to give a total capacitance of:
(i) 1.6uF
(ii) 10µF.
Transcribed Image Text:(b) A student has three capacitors. Two of the capacitors have a capacitance of 4.0 µF and one has a capacitance of 8.0 µF. Draw labelled circuit diagrams, one in each case, to show how the three capacitors may be connected to give a total capacitance of: (i) 1.6uF (ii) 10µF.
(c) A capacitor C of capacitance 47 uF is connected across the output terminals of a bridge
rectifier,as shown in Fig. 5.1.
C
bridge
rectifier
|47 µF
Fig. 5.1
The variation with time tof the potential difference Vacross the resistor R is shown in Fig. 5.2.
10
8.
VIV
6.
4
2-
t2
time t
Fig. 5.2
Use data from Fig. 5.2 to determine the energy transfer from the capacitor C to resistor R
between time t, and time t,.
energy =
J
Transcribed Image Text:(c) A capacitor C of capacitance 47 uF is connected across the output terminals of a bridge rectifier,as shown in Fig. 5.1. C bridge rectifier |47 µF Fig. 5.1 The variation with time tof the potential difference Vacross the resistor R is shown in Fig. 5.2. 10 8. VIV 6. 4 2- t2 time t Fig. 5.2 Use data from Fig. 5.2 to determine the energy transfer from the capacitor C to resistor R between time t, and time t,. energy = J
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