Use the node-voltage method to find the steady-state expression for vo(t) in the circuit in (Figure 1) if Ugl 22 sin(400t + 143.13°) V Vg2 = 18.03 cos (400t +33.69°) V. Write the steady-state expression for vo(t) as vo=V₁ cos(wt + o), where -180° <≤ 180°. Figure Ugl 50 μF 1500 50 mH 1 of 1 > Part B Find the numerical value of . Express your answer in degrees to three significant figures. Submit Η ΑΣΦΑ ↓↑ vec 3 12.844 Part C Previous Answers Request Answer * Incorrect; Try Again; 3 attempts remaining ? O Find the value of w Express your answer in radians per second to three significant figures. w = 400 rad/s

Introductory Circuit Analysis (13th Edition)
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Author:Robert L. Boylestad
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Use the node-voltage method to find the steady-state expression
for vo(t) in the circuit in (Figure 1) if
Vg1 = 22 sin(400t + 143.13°) V,
Vg2 = 18.03 cos (400t + 33.69°) V.
Write the steady-state expression for vo(t) as
vo= Vo cos(wt +), where -180° < ≤ 180°.
Figure
Ugl
50 μF
Vo
150 Ω
50 mH
m
<
1 of 1 >
V₂2
Part B
Find the numerical value of p.
Express your answer in degrees to three significant figures.
IVE ΑΣΦ ↓↑ vec
= 12.844
Submit Previous Answers Request Answer
X Incorrect; Try Again; 3 attempts remaining
Part C
?
Find the numerical value of w.
Express your answer in radians per second to three significant figures.
w = 400 rad/s
Review | Consta
Transcribed Image Text:Use the node-voltage method to find the steady-state expression for vo(t) in the circuit in (Figure 1) if Vg1 = 22 sin(400t + 143.13°) V, Vg2 = 18.03 cos (400t + 33.69°) V. Write the steady-state expression for vo(t) as vo= Vo cos(wt +), where -180° < ≤ 180°. Figure Ugl 50 μF Vo 150 Ω 50 mH m < 1 of 1 > V₂2 Part B Find the numerical value of p. Express your answer in degrees to three significant figures. IVE ΑΣΦ ↓↑ vec = 12.844 Submit Previous Answers Request Answer X Incorrect; Try Again; 3 attempts remaining Part C ? Find the numerical value of w. Express your answer in radians per second to three significant figures. w = 400 rad/s Review | Consta
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