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Chapter 4 Techniques of Circuit Analysis
So far we have analyzed relatively simple resistive circuits by applying KVL and KCL in combination with Ohm’s law.
However as circuit become more complicated and involve more elements, this direct method become cumbersome ( , سهل مرهقةغير )
+-
2R
sv
1R
3R
si
1 2 30
sv iR iR iR+ +-
Applying KVL and Ohm’s law, we have,
Solving for i , we have,
1 2 3
sv
iR R R+ +
+-
1R
2R
3R
6R
7R
8R
sv 7
R
In this chapter we introduce two powerful techniques of circuit analysis that aid in the analysis of complex circuit which they are known as
Node-Voltage Method or Nodal Analysis Mesh-Current Method or Mesh Analysis
In addition to these method we will develop other method such as source transformations,Thevenin and Norton equivalent circuit.
However as circuit become more complicated and involve more elements, this direct method become cumbersome ( , سهل مرهقةغير )
4.1 Terminology
+-
1R
2R
3R
6R
7R
8R
sv 7
R
Planar Circuit : a circuit that can be drawn on a plane with no crossing branches as shown
The circuit shown can be redrawn which is equivalent to the above circuit
Planar Circuit
5R 4
R
3R
7R
8R
+-
6R
sv
1R
2R
5R 4
R
3R
7R
8R
+-
6R
sv
1R
2R
9R
10R
11R
12R
The circuit shown is non planar circuit because it can not be redrawn to make it planar the circuit
Describing a Circuit – The vocabulary
Consider the following circuit
Node A point where two or more circuit elements join a
Essential node A node where three or more circuit elements join b
path A trace of adjoining basic elements with no elements included
branch A path that connects two nodes
1 1 5 6v R R R- - -
1R
Essential branch1 1
v R-A path that connects two essential nodes without passing through an essential node
loop A path whose last node is the same as the starting node
1 1 5 6 4 2v R R R R v- - - - -
mesh A loop that does not enclose any other loops1 1 5 3 2
v R R R R- - - -
Planar Circuit A circuit that can be drawn on a plane with no crossing branches
Example 4.1 For the circuit identify the following
The nodes are a, b, c, d, e, f and g
)a (All nodes ?
The essential nodes are b, c, e and g
)b (The essential nodes ?
A node where three or more circuit elements join
The branches are
1 2 1 2 3 4 5 6 7, , , , , , , , and Iv v R R R R R R R
)c (All branches ?
A path that connects two nodes
The essential branches are
1 1v R-
)d (All essential branches ?
A path that connects two essential nodes without passing through an essential node
2 3 R R- 2 4v R- 5R 6R 7R I
The meshes are
1 1 5 3 2v R R R R- - - -
)e (All meshes ?
2 2 3 6 4 v R R R R- - - - 5 7 6R R R- - 7 IR -
1 5 6R R R- -
)f (Two paths that are not loops or essential branches ?
is a paths , but it is not a loop because it does not have the same starting and ending nodes
Nor is it an essential branch because it does not connect two essential nodes
22v R- Is a paths that are not loop or essential branches ?
1 5 6 41 2v vR R R R- - - --
)g (Two loops that are not meshes ?
is a loop , but it is not a mesh because there are two loops within it
5 6I R R- - is a loop , but it is not a mesh because there are two loops within it
Simultaneous Equations- How many
Let the circuit as shown
There are nine branches in which the current is unknown
Note that the current I is known
Since there are nine unknown current Therefore we need nine independent equations
Since there are 7 nodes There will be 6 independent KCL equations since the 7th one can be written in terms of the 6 equations
We still need 3 more equations
1i
3i
5i
6i
9i
8i 7i
2i
4i
They will come from KVL around three meshesor loops
Note the meshe or loop we apply KVL around should not contain the current source I since we do not know the voltage across it
1i
3i
5i
6i
9i
8i 7i
2i
4i
Since KCL at the non essential (connecting two circuit elements only) like a , d , f will have the following results
9 1i i 3 7i i
Therefore we have 6 currents and 4 essential nodes (connecting three or more circuit elements) like b, c, e, g
5 8i i
1i
3i
5i
6i
2i
4i
Applying KCL to 3 of the 4 essential nodes since KCL on the 4th node will have an equation that is not independent but rather can be derived from the 3 KCL equations
Therefore
Applying KCL to the essential nodes b, c, and e ( we could have selected any three essential nodes) we have
KCL at node b we have 1 2 6 0Ii i i+ + - -KCL at node c we have 1 3 5 0i i i- -
KCL at node e we have 3 4 2 0i i i+ -
Note applying KCL on node g 5 4 6 0Ii i i- - + Which is a linear combination of the other KCL’s
1i
3i
5i
6i2i
4i
Therefore the remaining 3 equations will be derived from KVL around 3 meshes
KVL around mesh 1 1 5 21 32 13( 0)R R R Ri i i v+ + - +
Since there are 4 meshes only, we will use the three meshes with out the current source
2 3 63 4 4 25( 0)R R R Ri i vi- + + - +KVL around mesh 2
5 7 62 6 40R R Ri i i- + - KVL around mesh 2
1i
3i
5i
6i2i
4i
1 3 5 0i i i- -
3 4 2 0i i i+ -
1 5 21 32 13( 0)R R R Ri i i v+ + - +
2 3 63 4 4 25( 0)R R R Ri i vi- + + - +
5 7 62 6 40R R Ri i i- + -
6 equations and 6 unknown which can be solved for the currents
1 2 3 4 6, , , , i i i i i
KCL Equations
1 2 6 0Ii i i+ + - -
KVL Equations
4.2 Node-Voltage Method
Nodal analysis provide a general procedure for analyzing circuits using node voltages as the circuit variables
Node-Voltage Method is applicable to both planar and nonplanar circuits
Using the circuit shown, we can summarize the node-voltage methods as shown next:
+-10 V
1 W
5 W
2 W
10 W 2 A
Step 1 identify all essentials nodes
+-10 V
1 W
5 W
2 W
10 W 2 A
1 2
3 3
Do not select the non essentials nodes
Step 2 select one of the essentials nodes ( 1, 2, or 3) as a reference node
Although the choice is arbitrary the choice for the reference node is were most of branches, example node 3
Selecting the reference node will become apparent as you gain experience using this method (i,.e, solving problems)
Step 3 label all nonrefrence essentials nodes with alphabetical label as v1, v2…
+-10 V
1 W
5 W
2 W
10 W 2 A
v1
A node voltage is defined as the voltage rise from the reference node to a nonreference node
v2
1v
+
-2v
+
-
Step 4 write KCL equation on all labels nonrefrence nodes as shown next
KCL at node 1 1i + 2i + 3i = 0
+-10 V
1 W
5 W
2 W
10 W 2 A
v1 v2
1v
+
-2v
+
-
i1 i2
i3
By applying KVL 1 1(1) 10 0i v+ - 11
10
(1)
vi
-
Let us find 1i 2i 3i, ,
similarly 1 30 (5)v i- 13 (5)
vi
KVL on the middle mesh, we have 1 2 2(2) 0v i v- + + 1 22 2
v vi
-
Therefore
+-10 V
1 W
5 W
2 W
10 W 2 A
v1 v2
1v
+
-2v
+
-
i1 i2
i3
1i + 2i + 3i = 0 We have
1
5
v1 2
2
v v-1 10
1
v -+ + = 0
If we look at this KCL equation, we see that the current we notice that the potential at the left side of the 1 W resistor which is tied to the + of the 10 V source is 10 V because
the – is tied to the reference
10
1 W
5 W
2 Wv1 v2
i1 i2
i3
10
13 5
vi
1 22 2
v vi
-
11
10
1
vi
-
1 2
2
v v-1 10
1
v -+ + 01
5
v=
Therefore we can write KCL at node 1 without doing KVL’s as we did previously
2 W
10 W 2 A
v1 v2
i1 i3
i2
2
10
v2 1
2
v v-02- =KCL at node 2
+
Similarly
+-10 V
1 W
5 W
2 W
10 W 2 A
v1 v210
1 2
2
v v-1 10
1
v -+ + 01
5
v=
2
10
v2 1
2
v v-02- =+
Two equations and two unknowns namely v1 , v2 we can solve and have
1
1009.09
11v V 2
12010.91
11v V
4.3 The Node-Voltage Method and Dependent Sources
If the circuit contains dependent source, the node-voltage equations must be supplemented with the constraint equations imposed by the dependent source as will be shown in the example next
Example 4.3 Use the node voltage method to find the power dissipated in the 5 W resistor
i
i
1 2
33
The circuit has three essentials nodes 1, 2, and 3 and one of them will be the reference
We need two node-voltage equations to describe the circuit
We select node 3 as the reference node since it has the most branches (i.e, 4 branches)
i
v1 v220 8i
The circuit has two non essentials nodes which are connected to voltage sources and will impose the constrain imposed by the value of the voltage sources on the non essential nodes voltage
Applying KCL at node 11 1 1 220
02 20 5
v v v v- -+ +
Applying KCL at node 222 1 2
8 0
5 10 2
vv v v i-- + +
i
v1 v220 8i
1 1 1 220 0
2 20 5
v v v v- -+ + 22 1 28
05 10 2
vv v v i-- + +
The second node equation contain the current i which is related to the nodes voltages as
1 2
5
v vi
- Substituting in the second node equation, we have the following nodes equations
1 20.75 0.2 10 v v-
1 21.6 0 v v- + Solving we have
1 216 V 10 Vv v
2
516 10
= ( ) (5)5
A W i p W- 1.2 1 7.2.2
4.4 The Node-Voltage Method : Some Special Cases
Let us consider the following circuit
The circuit has three essentials nodes 1, 2, and 3 which means that two simultaneous equations are needed.
From the three essentials nodes, a reference node has been chosen and the other two nodes have been labeled
1 2
33
+-100 V 25 W
10 W
50 W 5 A
However since the 100 V source constrains the voltage between node 1 and the reference node to 100 V.
1 Vv 100
This mean that there is only one unknown node voltage namely (v2)
v1 v2
+-100 V
25 W
10 W
50 W5 A
100
Applying KCL at node 22 1 2 5 010 50
v v v- + + -
1 Vv 100Since 2 Vv 125
Knowing v1 and v2 we can calculate the current in every branch
This voltage source is connected between non reference and
reference
Nodal Analysis with voltage sources Some Special Cases
This voltage source is connected between two non reference nodes reference
Enclose the voltage source in a region called supper node
Apply KCL to that region
KCL on the Supper node
2 23 3 36v v+
KCL on the Supper node2 2
3 3 36v v+ The second equation come from the constraint on the voltage source
2 35v v-
Two equations and two unknowns , we can solve
Two voltage sources are connected between two non reference nodes reference
Two supper nodes touching or intersection
Dependent Voltage source supper node apply as will to dependent sources
Combine the two supper nodes to supper supper node
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
4.5 Introduction to the Mesh-Current Method
Consider the following planar circuit
There are 4 essentials nodes
+-
1R
2R
3R
6R
8R
7R
5R
4R
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
There are 7 essentials branches were the current is unknown
Therefore to solve via the mesh-current method we must write 4 mesh -current
( 4 17 )- - Number Number Exxentia Exxential Nodesl Branches
4
1i
2i
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
3i 4
i
A mesh current is the current that exists only in the perimeter of a mesh as shown in the circuit below
The mesh current satisfy Kirchhoff’s Current Law (KCL)
At any node in the circuit, a given mesh current both enters and leaves the node
Mesh current is not always equal branch current
Mesh current is not always equal branch current
1i
2i
+-
1R
2R
3R
6R
8R
sv 7
R
5R
4R
3i 4
i
aI bI
The branch current aI Equal the mesh current 1i
The branch current Doesn't equal any of the mesh currents
bI
+-1
v
1R
+- 2
v
2R
3R
1i 2i
3i
Consider the following circuit were we want to solve for the currents , , 1 2 3i i i
The circuit has 3 essential branches and 2 essentials nodes
( 2 13 )- - Number Number Exxentia Exxential Nodesl Branches
2
Therefore to solve via the mesh-current method we must write 2 mesh -current
+-1
v
1R
+- 2
v
2R
3R
1i 2i
3i
Applying KCL to the upper node (one KCL for two essentials nodes)
1 1 1 3 3v R i R i +
+1 2 3i i i
Applying KVL around the two meshes 2 2 2 3 3v R i R i- -
Solving the KCL for i3 and substituting in the KVL equations we have
1 1 3 1 3 2( )v R R i R i + -
2 3 1 2 3 2( )v R i R R i- - + +
+-1
v
1R
+- 2
v
2R
3R
1i 2i
3i
1 1 3 1 3 2( )v R R i R i + -
2 3 1 2 3 2( )v R i R R i- - + +
Now consider the mesh currents ia, ib , and applying KVL around the two meshes we have
+-1
v
1R
+- 2
v
2R
3R
ai
bi
1 1 3( )a a bv R i R i i + -
2 3 2( )b a bv R i i R i- - +
1 1 3 3 ( ) a bv R R i R i + -
2 3 2 3 ( )a bv R i R R i- - + +
The two equations are identical if we replace the currents i1, i2 with the mesh currents ia, ib
+-1
v
1R
+- 2
v
2R
3R
1i 2i
3i
+-1
v
1R
+- 2
v
2R
3R
ai
bi
1 1 3 3( ) a bv R R i R i + -
2 3 2 3( )a bv R i R R i- - + +
the branches currents i1, i2, i3 can be written in terms of the mesh currents ia, ib
1 ai i 2 bi i 3 a bi i i -
Once we solve for the mesh current we can solve for any branch currentOnce we know the branch current we can solve for any voltage or power of interest current
+-
+-
2 W 6 W 4 W
8 W 6 W40 V 20 Vo
v
+
-
+-
+-
2 W 6 W 4 W
8 W 6 W40 V 20 V
ai
bi
ci
Example 4.4
i
1i
2i
3i
i
4.6 The mesh-Current Method and dependent sources
Example 4.5Use the mesh-current method to determine the power dissipated in the 4 W resistor
1i
2i
3i
i
1 2 1 350 5( ) 20( )i i i i +- -
KVL on mesh 1
2 1 2 2 30 5( ) 1 4( )i i i i i + +- -
KVL on mesh 2
3 1 3 20 20( ) 4( ) 15i i i i i + +- -
KVL on mesh 3
1 3Since i i i -
1 2 350 25 5 20i i i - -
1 2 30 5 10 4i i i- + -
1 2 30 5 4 9i i i- - +
1
2
3
5025 5 20
5 10 0
0
4
5 4 9
i
i
i
- -- -- -
1i
2i
3i
i
1
2
3
25 5 20
5 10
50
0
4
5 4 9
0
i
i
i
- -- -- -
To solve, we use Cramer method as follows ,
2
25 20
5 4
5 9 3250 = = 26 A
25 5 20
50
0
0125
5 10 4
5 4 9
i
-- --
- -- -- -
we need only i2 and i3
3
25 5
5 10
5 4 3500 = = 28 A
25 5 20
50
0
0125
5 10 4
5 4 9
i
--- -
- -- -- -
2
3 2
2 4( =4(28 26) =) P i i4W
- - 16 W
4.7 The Mesh-Current Method : Some Special Cases
bi
ai
ci
v
+
-
bi
ai
ci
Supermesh
Bi
ai
ci
bi
The Mesh-Current Analysis of the Amplifier Circuit
Bi
ai
bi
ci
Supermesh
Δi
ai
ci
di
ei
bi
4.8 The Node-Voltage Method Versus the Mesh-Current Method
1v
2v
3v
Supernode
Δi
Δi
av b
vc
v
Supernode
ai b
ic
i
4 W 2.5 W
193 V+-
ov
+
-
0.8 v
2 W
Δ
v+ -
0.4Δ
v 0.5 A+-
6 W 7.5 W
v+ -
8 W
ai
bi
ci
Supermesh
4 W 2.5 W
193 V+-
ov
+
-
0.8 v
2 W
Δ
v+ -
0.4Δ
v 0.5 A+-
6 W 7.5 W
v+ -
8 W
av
bv
ov
193 V
4 W 2.5 W
+-
ov
+
-
2 W
Δ
v+ -
0.4Δ
v 0.5 A+-
v+ -
193
By inspection
4.9 Source Transformations
The Node-Voltage Method and the Mesh-Current Method are powerful techniques for solving circuits.
We are still interested in in methods that can be used to simplify circuits like to what we did in parallel and series resistors and to Y transformations
A method called Source Transformations will allow the transformations of a voltage source in series with a resistor to a current source in parallel with resistor.
+-sv
a
b
R
The double arrow indicate that the transformation is bilateral , that we can start with either configuration and drive the other
si
a
b
R
+-sv
a
b
R
LR si
a
b
R LR
Li Li
s
L
v
R R
+LiL
RR R
+L si i
Equating we have ,
s
L L
v RR R R R
+ + si s
s
v i
R OR s s v Ri
Example 4.8 (a) find the power associated with the 6 V source) b (State whether the 6 V source is absorbing or
delivering power
We are going to use source transformation to reduce the circuit, however note that we will not alter or transfer the 6 V source because it is the objective.
(20 || 5 )W W 4Ω
408
5A
(8 )( ) 32 VA 4Ω
(6 4)+ 10Ω
( 10)+ 10 20Ω
321.6
20A
(30 || 20 )W W 12Ω
(1.6 )( ) 19.2 VA 12Ω
(4 )+ 12 16Ω
i = 0.825 A1.2- 64+12
i
6 (0.825)(6) 4.95 WVP
It should be clear if we transfer the 6V during these steps you will not be able to find the power associated with it
ov
+
-
Example 4.9 (a) use source transformations to find the voltage vo?
Since the 125 W resistor is connected across or in parallel to the 250 V source then we can remove it without altering any voltage or current on the circuit except the 250 V current which is not an objective any how
Therefore we remove the 125 WOur objective is vo
Similarly the 10 W resistor is connected in series with the 8 A source then we can remove it without altering any voltage or current on the circuit
Now the circuit become
ov
+
-
We now use the source transformation to replace the 250 V with the 25 W resistor with a current source and parallel resistor
25010
25A
ov
+
-
(25 ||100 || 20 )W W W 10ΩWe now combine the parallel resistors
ov
+
-
(25 ||100 || 20 )W W W 10ΩWe now combine the parallel resistors
ov
+
-
The circuit now become
1(2 )( ) 20 V0ov A W
Let us find the Thevenin Equivalent of the following circuit
1 125 3 0
5 20
v v- + -
1v
25
By inspection
1v
1 32v
Therefore the Thevenin voltage for the circuit is 32 V
(4 (5 || 20)) +4
ab ThR R (4 4) 8 + W
To find the RTh we deactivate the sources by shortening independent voltage sources and open independent current source
ab Th
R R20 W
5 W 4 Wa
b
(5 || 20 )W W 4Ω
8 A 4 W
4 W
32 V
4 W
+-
4 W
32 V+-
8 W
255
5A
Let us find the Thevenin Equivalent using source transformations
b
+-Th
V
ThR
a
The Thevenin Equivalent is represented as an independent voltage source VTh and a series resistor RTh
Now let us put a short across the terminal and calculate the resulting current
b
+-Th
V
ThR a
SCi
Th
Th
VR
SC
i
And this another method of finding RTh as Th
SC
Vi
Th
R
Let us find the iSC for the circuit shown before
iSC can be found easily once
we know the voltage v2
2 2 225 3 0
5 20 4
v v v- + - +
2
4sc
vi
To find v2 select the reference as the lower node and write KCL
2v
25 By inspection
2 16 v V
164sci 4 A
324
Th
SC
Vi
8 ΩTh
R
Norton Equivalent
i RTh
4.64 Find Thevenini equivalent with respect to the terminals
a
b
a band
A Using short circuit current
B Deactivating the independent sources
A Using short circuit current
Since Th OC
SC SC
V Vi i
Th
R
17.4
B Deactivating the independent sources
4.12 Maximum Power Transfer
i
0
0
Question : what is the value of the load resistant RL that will absorb the maximum power
i
Substituting in
4.13 Superposition
A linear system obeys the principle of superposition which state that:
Whenever a linear system is excited or driven by more than one independent source of energy , the total response is the sum of the individual responses by the independent sources
1i
2i
3i
4i
Example Consider the following linear circuit
We will use the principle of superposition to find the branch currents , , , 1 2 3 4
i i i i
'1
i '3
i
'2
i '4
i
1v
1- Voltage Source is active and deactivate the current source by opening it
KCL at node 1v
'1
i '3
i
'2
i '4
i
30 V1
v
''1
i ''3
i
''2
i ''4
i
3v
4v
2- Current Source is active and deactivate the voltage source by shorting it
Using Nodal analysis
Solving we get
1i
2i
3i
4i
'1
i '3
i
'2
i '4
i
''1
i ''3
i
''2
i ''4
i
Now to find the branch currents , , , 1 2 3 4
i i i i We sum the currents
P488 Use the principle of superposition to find the voltage v in the circuit
70 V
20 W
+-
bi
+-
4 W
10 W
50 V
+ -
2 W
2b
i
+
-
v
70-V Source acting alone
70
Therefore from 2 and 3 we have
1
2
3
Since
4
From 4 OR
Therefore from 1 and 5 we have
5
OR