QUESTION 1' a) Figure 1 shows capacitors Cl = 2 µF, C2 = 3µF, C3= 5µF, C4= 2µF, C5= 3µF and C6 = 6µF connected to a 12V battery and a switch S1. i) When the swith is opened, determine the equivalent capacitance of the circuit. ii) When the swith is closed, determine the equivalent capacitance of the circuit. iii) Analyse the difference in total energy stored when the switch is opened and closed. b) Table 1 shows the current flowing through a 5H inductor. Evaluate and plot the voltage, power and energy stored for time between 0 to 1 s. C1 C2 C3 C4 C5 Vcc S1 12V Có Figure 1: Table 1: Time, (s) Current, (A)

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Chapter21: Resistive-capacitive Series Circuits
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CONFIDENTIAL
20211/BMM2433
QUESTION 1
a) Figure 1 shows capacitors C1 = 2 µF, C2 = 3µF, C3= 5µF, C4= 2µF, C5= 3µF and C6 = 6µF
connected to a 12V battery and a switch S1.
i) When the swith is opened, determine the equivalent capacitance of the circuit.
ii) When the swith is closed, determine the equivalent capacitance of the circuit.
iii) Analyse the difference in total energy stored when the switch is opened and closed.
b) Table 1 shows the current flowing through a 5H inductor. Evaluate and plot the voltage, power
and energy stored for time between 0 to 1 s.
C1
C2
C3
C4
C5
Vcc
12V
Có
Figure 1:
Table 1:
Time, (s)
Current, (A)
0.2
10
0.4
20
0.6
-30
0.8
20
1.0
HH
Transcribed Image Text:CONFIDENTIAL 20211/BMM2433 QUESTION 1 a) Figure 1 shows capacitors C1 = 2 µF, C2 = 3µF, C3= 5µF, C4= 2µF, C5= 3µF and C6 = 6µF connected to a 12V battery and a switch S1. i) When the swith is opened, determine the equivalent capacitance of the circuit. ii) When the swith is closed, determine the equivalent capacitance of the circuit. iii) Analyse the difference in total energy stored when the switch is opened and closed. b) Table 1 shows the current flowing through a 5H inductor. Evaluate and plot the voltage, power and energy stored for time between 0 to 1 s. C1 C2 C3 C4 C5 Vcc 12V Có Figure 1: Table 1: Time, (s) Current, (A) 0.2 10 0.4 20 0.6 -30 0.8 20 1.0 HH
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