Linearity An element is said to be linear if it satisfies homogeneity (scaling) property and additive (superposition) property. 1. homogeneity property Let x be the input and y be the output of an element.

x → y

If kx is applied to the element, the output must be ky.

kx → ky

2. additivity property

x1 → y1, x2 → y2

If (x1 + x2) is applied to the element, the output must be y1 + y2. (x1 + x2) → y1 + y2 Linear Elements

I Resistor It is a linear element because its voltage-current relation satisfies both homogeneity and additivity property.

v = iR

I Inductor It is a linear element.. Its voltage-current relationship1 is di v = L dt

I Capacitor It is also a linear element 2 . It i − v relationship is dv i = C dt

1(differential operator is linear) 2Inductor and capacitor should not have any initial energy I Dependent Sources Dependent voltage and current sources are linear as long as their input-output relationship is linear.

vo = kvi , vo = rii , io = kii , io = gii

A linear circuit consists of only linear elements and linear dependent sources.

In linear circuit, the output and input are related by a linear

relationship.

+ Linear I ∝ V V − Network R I What about Independent Sources?

They are nonlinear as their i − v relationship does not satisfy the linearity.

i i

I

+ V − I V v v

Figure: Independent voltage source Figure: Independent current source

v = V i = I Test yourself Find whether the element is linear or not. i i (A) + v 2 v (V)

− -2

i = v − 2

v1 → i1 = v1 − 2, v2 → i2 = v2 − 2

(v1 + v2) → i3 = v1 + v2 − 2

i3 6= i1 + i2 It is nonlinear.

For an element to be linear, its i − v characteristics must not only be a straight line but also pass through origin. Superposition

It states that in a linear network with a number of independent sources, the response can be found by summing the responses to each independent source acting alone, with all other independent sources set to zero.

1. Consider one independent source at a time while all other independent sources are turned off. It means that voltage source is replaced by short circuit and current source by open circuit. 2. Leave dependent sources in the circuit as they are controlled by other variables.

sources.

a w opnnsa hr r w independent two are there as components two has e that Notice

r constants. are β and α where

I β + V α = e

2 1 2 1 R + R R + R

I + V = e

2 2 1 R R R

2 1 R R

I = +

e V − e

yKCL, By

sn oa analysis. nodal using e find us Let

2 V I R −

+

e

1 R Let us analyze the same circuit using superposition. 1. Voltage source acting alone: R1 eV

R2

+ eV = V − R + R V R2 1 2

2. Current source acting alone: R1 eI R R e = 1 2 I I R + R R2 I 1 2

By superposition,

R2 R1R2 e = eV + eI = V + I R1 + R2 R1 + R2 Test yourself

Use superposition to find the vlaue of current ix .

6 Ω 3 Ω

ix

+ +

− 8 V 2 A 3ix −

Voltage source acting alone: 6 Ω 3 Ω ix

−8 + 6ix + 3ix + 3ix = 0

+ +

− 8 V 3ix − 2 i = A x 3 Current source acting alone: By KCL, 6 Ω 3 Ω ix e −e 3i − e + 2 + x = 0

6 3

+ e 2 A 3ix − i = − x 6 1 By solving this, i = − A. x 2 By superposition,

ix = ixV + ixI 2 1 1 i = − = A x 3 2 6 Thevenin’s Theorem

Any linear two-terminal circuit can be replaced by an equivalent circuit consisting of a voltage source VTh in series with a resistor RTh, where VTh is the open-circuit voltage at the terminals and RTh is the input or equivalent resistance at the terminals when the independent sources are turned off.

R RTh

i i

+ +

+ +

− − Vm In v VTh v − − Proof Let us apply a current source and find the voltage.

R i

+

+ − Vm In v i

−

Since the network is linear, its terminal voltage can be found by superposition.

The voltage v will have as many components as the number of independent sources. X X v = αmVm + βnIn + Ri m n v = VTh + RThi This equation can be represented in a network form as shown below. RTh i

+

+ VTh − v i

−

This makes us replace any linear network with its Thevenin equivalent.

R RTh

i i

+ +

+ +

− − I Vm n v VTh v − − The Thvenin equivalent circuit for any linear network at a given pair of terminals consists of a voltage source VTh in series with a resistor RTh. The voltage VTh and RTh can be obtained as follows.

1. VTh can be found by calculating the open circuit voltage at the designated terminal pair on the original network.

2. RTh can be found by calculating the resistance of the open-circuit network seen from the designated terminal pair with all independent sources internal to the network set to zero. If the network has dependent sources, RTh can be found as follows.

1. Turn off all independent sources. Do not turn off dependent sources.

2. Apply a test voltage vo at the terminals and calculate the current io.

io

Network with

+ all independent − vo sources set to zero

vo RTh = io Example

R1

e

+ V − R2 I

Let us find e using Thevenin equivalent. To find VTh: R1 e

+

+ VTh = V + IR1 V − Voc I − To find RTh: R1

RTh = R1 RTh

Thevenin equivalent is

RTh

e

+ VTh − R2

By voltage division,

R2 R2 R2 R1R2 e = VTh = (V + IR1) = V + I R2 + RTh R2 + R1 R1 + R2 R1 + R2 Norton’s Theorem

It states that a linear two-terminal circuit can be replaced by an equivalent circuit consisting of a current source IN in parallel with a resistor RN , where IN is the short-circuit current through the ter- minals and RN is the input or equivalent resistance at the terminals when the independent sources are turned off.

R

i i

+ +

+ − Vm In v IN RN v − −

RN = RTh The Norton equivalent circuit for any linear network at a given pair of terminals consists of a current source IN in parallel with a resistor RN . The current IN and resistance RN can be obtained as follows:

1. IN can be found by applying a short at the designated terminal pair on the original network and calculating or measuring the current through the short circuit.

R

+ − Vm In Isc

IN = Isc

2. RN can be found in the same manner as RTh. Proof Let us apply a voltage source and find the current.

R

i

+ +

− − Vm In v

Since the network is linear, the current can be found by superposition.

The current i will have as many components as the number of independent sources. ! X X v i = − α V + β I + m m n n R m n v i = −IN + RN This equation can be represented in a network form as shown below.

i

+ IN RN − v

This makes us replace any linear network with its Norton equivalent.

R

i i

+ +

+ − Vm In v IN RN v − − Source Transformation

a a

R

I R

+ V −

b b (a) (b)

These two circuits are equal as long as they have same i − v characteristics at their terminals.

V = IR V I = R Thevenin and Norton Transformation

a a

RTh

IN RTh

+ VTh −

b b (c) (d)

VTh = IN RTh

VTh IN = RTh Maximum Power Transfer

RTh

+ VTh − RL

The power delivered to the load is 2 2 VTh p = i RL = 2 RL (RTh + RL)

p pmax

RTh RL dp = 0 dRL  2  2 (RTh + RL) − 2RL(RTh + RL) VTh 4 = 0 (RTh + RL)

RL = RTh

Maximum power is transferred to the load when the load resistance equals the Thevenin resistance as seen from the load (RL = RTh).

The maximum power transferred to load is

2 VTh pmax = 4RTh