Download Practical Current Source

ECE 3301
General Electrical Engineering
Section 12
Source Transformation
1
Practical Voltage Source
• Consider the practical model of a voltage
source consisting of an ideal voltage source
in series with a resistance.
RS
a

VS

b
2
Open-circuit voltage
• The open-circuit voltage at terminals a-b is found
by applying Kirchhoff’s Voltage Law.
IS  RS

a

VS

VRS
VOC = VS – VRS

VOC
VOC = VS – ISRS

b
IS = 0, so
VOC = VS
3
Short-circuit Current
• The short-circuit current at terminals a-b is
found by inserting a short-circuit link and
applying Ohm’s Law.
RS
a

VS

ISC
VS
ISC = R
S
b
4
Practical Voltage Source
• Consider a practical voltage source with a
variable load resistance.
RS
a
I0

VS

RL

V0

b
5
Practical Voltage Source
• The voltage across the load resistor is found
by applying the voltage divider formula.
RS
a
I0

VS

RL

V0

VSRL
V0 = R + R
L
S
b
6
Practical Voltage Source
• As RL  0 (short-circuit), V0  0
• One cannot maintain a voltage across a
short-circuit.
RS
a
I0

VS

RL

V0

VSRL
V0 = R + R
L
S
b
7
Practical Voltage Source
• As RL   (open-circuit), V0  VS
RS
a
I0

VS

RL

V0

VS
V0 =
RS
1+
RL
b
8
Practical Voltage Source
• The current through the load resistor is
RS
a
I0

VS

RL

V0

VS
I0 =
RL + RS
b
9
Practical Voltage Source
• As RL   (open-circuit), I0  0
RS
a
I0

VS

RL

V0

VS
I0 =
RL + RS
b
10
Practical Voltage Source
• As RL  0 (short-circuit), I0  VS / RS, I0  ISC
RS
a
I0

VS

RL

V0

VS
I0 =
RL + RS
b
11
Practical Current Source
• Consider the practical model of a current
source consisting of an ideal current source
in parallel with a resistance.
a
IS
RS
b
12
Open-circuit voltage
• The open-circuit voltage is found by
applying Ohms Law .
a
IS
IS
RS

VOC
VOC = ISRS

b
13
Short-circuit Current
• The short-circuit current is found by
installing a short-circuit link. The current
takes “the path of least resistance.
a
IS
RS
ISC
ISC = IS
b
14
Short-circuit Current
• From another point of view, the short-circuit link
forces the voltage across the resistance to be zero,
consequently no current can flow through the
resistance and IS must flow through the shortcircuit link.
a
IS
RS
ISC
ISC = IS
b
15
Practical Current Source
• Consider a practical current source driving a
variable load resistance.
a
I0
IS
RS
RL

V0

b
16
Practical Current Source
• The current through the load resistance is
found by applying the current divider
formula.
a
I0
IS
RS
RL

V0

ISRS
I0 = R + R
S
L
b
17
Practical Current Source
• As RL   (open-circuit), I0  0
a
I0
IS
RS
RL

V0

ISRS
I0 = R + R
S
L
b
18
Practical Current Source
• As RL  0 (short-circuit), I0  IS
a
I0
IS
RS
RL

V0

ISRS
I0 =
RS + RL
b
19
Practical Current Source
• The voltage across the load resistance is:
a
I0
IS
RS
RL

V0

ISRSRL
V0 = R + R
S
L
b
20
Practical Current Source
• As RL  0 (short-circuit), V0  0
a
I0
IS
RS
RL

V0

ISRSRL
V0 = R + R
S
L
b
21
Practical Current Source
• As RL   (open-circuit), V0  ISRS
• V0  VOC
a
I0
IS
RS
RL

V0

ISRS
V0 = R
S
+
1
RL
b
22
Source Transformation
• Given a practical voltage source, can we
find an equivalent practical current source?
RV
a
I0

VS

RL

V0

VSRL
V0 =
RL + RV
VS
I0 =
RL + RV
b
23
Source Transformation
• Given a practical voltage source, can we
find an equivalent practical current source?
a
I0
IS
RC
RL

V0

ISRCRL
V0 = R + R
L
C
ISRC
I0 = R + R
L
C
b
24
Source Transformation
• Given a practical voltage source, can we
find an equivalent practical current source?
VSRL
VS
Voltage Source: V0 = R + R , I0 = R + R
L
V
L
V
ISRCRL
ISRC
Current Source: V0 = R + R , I0 = R + R
L
C
L
C
VS = ISRC , RV = RC
25
Source Transformation
RS
a

a
VS
VS

RS
RS
b
b
26
Source Transformation
RS
a
a

IS
RS
ISRS

b
b
27