(a) Transform v ( t ) = 75 cos ( 377 t − 15 ° ) to phasor form. Comment on whether ω = 377 appears in your answer. (b) Transform V = 50 ∠ 10 ° to instantaneous form. Assume that ω = 377 . (c) Add the two sinusoidal functions a ( t ) and b ( t ) of the same frequency given as follows: a ( t ) = A 2 cos ( ω t + α ) and b ( t ) = B 2 cos ( ω t + β ) . Use phasor methods and obtain the resultant c ( t ). Does the resultant have the same frequency?
(a) Transform v ( t ) = 75 cos ( 377 t − 15 ° ) to phasor form. Comment on whether ω = 377 appears in your answer. (b) Transform V = 50 ∠ 10 ° to instantaneous form. Assume that ω = 377 . (c) Add the two sinusoidal functions a ( t ) and b ( t ) of the same frequency given as follows: a ( t ) = A 2 cos ( ω t + α ) and b ( t ) = B 2 cos ( ω t + β ) . Use phasor methods and obtain the resultant c ( t ). Does the resultant have the same frequency?
Solution Summary: The author explains the phasor form of v(t), the peak current, and the phase angle.
(a) Transform
v
(
t
)
=
75
cos
(
377
t
−
15
°
)
to phasor form. Comment on whether
ω
=
377
appears in your answer. (b) Transform
V
=
50
∠
10
°
to instantaneous form. Assume that
ω
=
377
. (c) Add the two sinusoidal functions a(t) and b(t) of the same frequency given as follows:
a
(
t
)
=
A
2
cos
(
ω
t
+
α
)
and
b
(
t
)
=
B
2
cos
(
ω
t
+
β
)
. Use phasor methods and obtain the resultant c(t). Does the resultant have the same frequency?
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