Consider the oneline diagram shown in Figure 3.40. The three-phase transformer bank is made up of three identical single-phase transformers, each specified by X 1 = 0.24 Ω (on the low-voltage side), negligible resistance and magnetizing current, and turns ratio η = N 2 / N 1 = 10 . The transformer bank is delivering 100 MW at 0.8 p.f. lagging to a substation bus whose voltage is 230 kV. (a) Determine the primary current magnitude, primary voltage (line-to-line) magnitude, and the three-phase complex power supplied by the generator. Choose the line-to-neutral voltage at the bus, V a ' η ' as the reference Account for the phase shift, and assume positive-sequence operation. (b) Find the phase shift between the primary and secondary voltages.
Consider the oneline diagram shown in Figure 3.40. The three-phase transformer bank is made up of three identical single-phase transformers, each specified by X 1 = 0.24 Ω (on the low-voltage side), negligible resistance and magnetizing current, and turns ratio η = N 2 / N 1 = 10 . The transformer bank is delivering 100 MW at 0.8 p.f. lagging to a substation bus whose voltage is 230 kV. (a) Determine the primary current magnitude, primary voltage (line-to-line) magnitude, and the three-phase complex power supplied by the generator. Choose the line-to-neutral voltage at the bus, V a ' η ' as the reference Account for the phase shift, and assume positive-sequence operation. (b) Find the phase shift between the primary and secondary voltages.
Solution Summary: The author calculates the power factor of a three-phase transformer bank, which is supplying 100MW at 0.8 pf lagging to the bus having voltage 230kV.
Consider the oneline diagram shown in Figure 3.40. The three-phase transformer bank is made up of three identical single-phase transformers, each specified by
X
1
=
0.24
Ω
(on the low-voltage side), negligible resistance and magnetizing current, and turns ratio
η
=
N
2
/
N
1
=
10
. The transformer bank is delivering 100 MW at 0.8 p.f. lagging to a substation bus whose voltage is 230 kV.
(a) Determine the primary current magnitude, primary voltage (line-to-line) magnitude, and the three-phase complex power supplied by the generator. Choose the line-to-neutral voltage at the bus,
V
a
'
η
'
as the reference Account for the phase shift, and assume positive-sequence operation.
(b) Find the phase shift between the primary and secondary voltages.
The input reactance of an infinitesimal linear dipole of length 1/60 and radius
a = x/200 is given by
[In(/2a) - 11
X-120-
tan(kl/2)
Assuming the wire of the dipole is copper with a conductivity of 5.7 × 10'S/m.
determine at f = 1 GHz the
(a) loss resistance
(b) radiation resistance
(c) radiation efficiency
input impedance
Q4- a) For the block diagram of control system shown below with its unit step response. Determine
(K, a,damping ration, Maximum overshoot, Wn, Wd,ẞ, ts, tp, td, tr, and overall transfer function?
C(1) ↑
1.4
1.2
1
0.8
0.6
0.4
0.2
R(s)
E(s)
K
C(s)
$(s + α)
0.05
0.1
0.15
0.2
+2%
-2%
Determine the power radiated for the antenna has the following specifications (48 ohm radiation
resistance, 2 ohm loss resistance and 50 ohms reactance) connected to generator with 12 V open
circuit and internal impedance 50 ohm via à long transmission line with 100 ohm characteristic
impedance.
Chapter 3 Solutions
Power System Analysis and Design (MindTap Course List)
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, electrical-engineering and related others by exploring similar questions and additional content below.