At t = t 0 the voltage across a certain capacitance is zero. A pulse of current flows through the capacitance between t 0 and t 0 + Δ t , and the voltage across the capacitance increases to V f . What can you say about the peak amplitude and area under the pulse waveform (i e current versus time)? What are the units and physical significance of the area under the pulse What must happen to the peak amplitude and area under the pulse as Δ t approaches zero, assuming that V f remains the same?
At t = t 0 the voltage across a certain capacitance is zero. A pulse of current flows through the capacitance between t 0 and t 0 + Δ t , and the voltage across the capacitance increases to V f . What can you say about the peak amplitude and area under the pulse waveform (i e current versus time)? What are the units and physical significance of the area under the pulse What must happen to the peak amplitude and area under the pulse as Δ t approaches zero, assuming that V f remains the same?
At
t
=
t
0
the voltage across a certain capacitance is zero. A pulse of current flows through the capacitance between
t
0
and
t
0
+
Δ
t
, and the voltage across the capacitance increases to
V
f
. What can you say about the peak amplitude and area under the pulse waveform (i e current versus time)? What are the units and physical significance of the area under the pulse What must happen to the peak amplitude and area under the pulse as
Δ
t
approaches zero, assuming that
V
f
remains the same?
The one-line diagram of an unloaded power system is shown below.
Reactances of the two sections of transmission line are shown on the diagram.
The generators and transformers are rated as follows:
20 MVA, 13.8 kV, X = 0.20 p.u
Generator 1:
Generator 2:
Generator 3:
30 MVA, 18 kV, X = 0.20 p.u
Transformer Ti:
Transformer T2:
30 MVA, 20 kV, X = 0.20 p.u
25 MVA, 220Y/13.8A kV, X = 10%
Three single-phase units each rated 10
MVA, 127/18 kV, X = 10%
HT sides connected in wye
Transformer T3:
LT sides connected in delta
35 MVA, 220Y/22Y KV, X = 10%
j80 Q
j100 Q
Line 1
Line 2
T₁
T₂
Draw the impedance diagram with all reactances marked in per unit. Choose
a base of 50 MVA, 13.8 kV in the circuit of generator 1.
ntotn
In Fig.35 resistive loads, 1, 2, and 3, respectively, absorb 1200 W, 2400 W, and 3600 W. Calculate the current:
a. In lines A and B.
b. In the neutral conductors.
c. In the HV line.
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