7.23 The switch in the circuit in Fig. P7.23 has been in the left position for a long time. At t = 0 it moves to the right position and stays there. a) Write the expression for the capacitor voltage, v(t), for t > 0. b) Write the expression for the current through the 40 kN resistor, i(t), for t > 0*. Figure P7.23 5 kΩ 40 k2 t = 0 + 120 V 10 kΩ 160 nF 25 kN 10 kM

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7.23 The switch in the circuit in Fig. P7.23 has been in the
left position for a long time. At t
right position and stays there.
O it moves to the
a) Write the expression for the capacitor voltage,
v(t), for t > 0.
b) Write the expression for the current through the
40 kN resistor, i(t), for t > 0*.
Figure P7.23
5 ΚΩ
40 kΩ
t = 0
120 V
10 kΩ
160 nF
{25 k
ξ10 kΩ
7.44 The switch in the circuit in Fig. P7.44 has been open
a long time before closing at t = 0. Find i,(t)
PSPICE
MULTISIM for t > 0.
Figure P7.44
40 mH
20 Ω
40 N
i,(t)
+ Vý
t = 0
50 Ωξ
>0.1v
310 N
{15 N
1 )10 A
140 V
Transcribed Image Text:7.23 The switch in the circuit in Fig. P7.23 has been in the left position for a long time. At t right position and stays there. O it moves to the a) Write the expression for the capacitor voltage, v(t), for t > 0. b) Write the expression for the current through the 40 kN resistor, i(t), for t > 0*. Figure P7.23 5 ΚΩ 40 kΩ t = 0 120 V 10 kΩ 160 nF {25 k ξ10 kΩ 7.44 The switch in the circuit in Fig. P7.44 has been open a long time before closing at t = 0. Find i,(t) PSPICE MULTISIM for t > 0. Figure P7.44 40 mH 20 Ω 40 N i,(t) + Vý t = 0 50 Ωξ >0.1v 310 N {15 N 1 )10 A 140 V
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