0195136047.pdf

(Joyce) #1

80 CIRCUIT ANALYSIS TECHNIQUES


V 1 2 Ω 0.5 V^15 Ω^ V^ =?

I =?

10 Ω

10 Ω

4 Ω

(a)

5 V

+


+


+


Figure E2.2.5

V 1 2 Ω 5 Ω

0.5 V 1 × 10 = 5 V 1
10 Ω 4 Ω 10 Ω

(b)

5 V

+


+−

+


I 1 I 2

0.5 V 1

(c)

O Reference

A B C

(^12) = 0.5 S (^15) = 0.2 S
1
4
105 = 0.5 A = 0.1 S
= 0.25 S
1
10
101 = 0.1 S
V 1




  • Combining the constraint equation with the loop equations, one gets
    16 I 1 − 2 I 2 = 5 ;− 2 I 1 + 17 I 2 =− 10 (I 1 −I 2 ), or 8 I 1 + 7 I 2 = 0
    from which
    I 1 = 35 / 128 A; I 2 =− 5 / 16 A
    Thus, the current through the 5-V source isI=I 1 = 35 / 128 = 0 .273 A, and the
    voltage across the 5-resistor isV= 5 I 2 = 5 (− 5 / 16 )=− 1 .563 V.
    (b) Node-Voltage Method: The 5-V voltage source with its 10-series resistor is replaced
    by its Norton equivalent. Resistances are converted into conductances and the circuit is
    redrawn in Figure E2.2.5(c) with the nodes shown.
    The nodal equations are
    A: ( 0. 1 + 0. 25 )VA− 0. 25 VB= 0. 5
    B: − 0. 25 VA+( 0. 25 + 0. 5 + 0. 1 )VB− 0. 1 VC= 0. 5 V 1
    C: − 0. 1 VB+( 0. 1 + 0. 2 )VC=− 0. 5 V 1

Free download pdf