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Diode Applications Outline: Load-line Analysis Chapter 2. Diode Applications Logic Gates Waveform Modification Circuits Zener Diodes
Diode Applications
Outline:
Load-line Analysis
Chapter 2. Diode Applications
Logic Gates
Waveform Modification Circuits
Zener Diodes
Diode Applications
Developing a working knowledge of a device through the use of appropriate approximation.
Methods
Avoiding an unnecessary level of mathematical complexity.
Diode Applications
Load-line Analysis
Example:For the series diode configuration, employing the diode characteristics, determine:
(1). VDQ and IDQ.
(2). VR.
Diode Applications
Solution:
For the knowledge of Circuit Analysis, we get:
RIVVVE DDRD
So
RV
REI D
D
This means that ID is a function of VD , i.e.
Diode Applications
)( DD VfI
Recalling the diode characteristics , it’s also the relationship between ID and VD.
So ID and VD should satisfy both the the network parameters and characteristics at the same time.
Furthermore, it’s a linear relationship.
Diode Applications
And our work is to draw the linear relationship between ID and VD on the same set of axes.
The diode characteristics is ready here.
For straight line, two points are sufficient to determine it. The first point is:
mAkV
REI
VVDQ
D
205.0
10
0
Diode Applications
The other point is:
VEVVIDQ
D10
0
From the two points, we get the straight line.
The straight line is called a load line because the intersection on the vertical axis is defined by the applied load R.
Diode Applications
The analysis method is therefore called load-line analysis.
The intersection of the two curves will define the solution for the question and also define the current and voltage for the network.
The intersection, the point of operation, is usually called the quiescent point, denoted by Q-point.
Diode Applications
From the intersection between the load line and the characteristic curve, we may read off that:
VVDQ 75.0
mAIDQ 5.18
Note here that, ID and VD are now referred to as IDQ and VDQ due to that operation point is Q-point.
Diode Applications
Or
DQR VEV
VVV 25.975.010
The remaining problem is VR:RIV DR
VkmA 25.95.05.18
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Figure: Diode circuit
Diode Applications
Figure: Characteristic
Diode Applications
Q-pointIDQ
VDQ
Load-line
Figure: Characteristic & load-line
E/R
E
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Notes: The characteristics are defined by the
chosen device. The accuracy is determined by the scales,
but the one with much higher accuracy would be unwieldy.
Different approximation models, diode equivalent circuits, would be used depending on different degrees of accuracy required.
Diode Applications
It’s feasible when nonlinear curve is involved and a “pictorial” solution is obtained without lengthy mathematical derivations.
The load line is determined solely by the applied network.
The load-line analysis is also useful to BJT and FET in the following chapters.
Diode Applications
Assumptions:OR Gates
10-V level is assigned a “1” and 0-V a “0” for Boolean algebra.
The focus is to determine the voltage level instead of Boolean algebra.
The voltage across the diode must be 0.7V positive to switch to the “ON” state.
Diode Applications
Example:As shown in the figure, analyze the circuit to verify that input V1, V2 & output VO voltages conform to OR logic.
Proof:
(1). When V 1 =10V, V 2 =0V,
There would be four cases:
Diode Applications
Because V 2 =0V, D2 is in “OFF” state.
Then D2 can be regarded as open circuit.
Thus, V 1 =10V, D1 is in “ON” state.
So we obtain: VO = V 1 - VD
= 10-0.7=9.3VThis means VO is in logic “1”.
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(2). When V 1 =0V, V 2 =10V,
The result is the same as in (1), in which VO is in logic “1”.
(3). When V 1 =10V, V 2 =10V,
The result is obvious that VO is almost 9.3V, and still in logic “1”.
Diode Applications
(4). When V 1 =0V, V 2 =0V,
Apparently, that VO is 0V, and in logic “0”.
Briefly, the I/O relation is: V 1V 2
1 (10V)
0 (0V)
1 (10V) 0 (0V)
1 (9.3V)
1 (9.3V)
0 (0V)
1 (9.3V)
Diode Applications
Figure: OR gate
Diode Applications
Figure: OR gate in case 1
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AND GatesExample:As shown in the figure, analyze the circuit to verify that input V1, V2 & output VO voltages conform to AND logic.
Proof:
(1). When V 1 =10V, V 2 =0V,
There would be four cases:
Diode Applications
Because V 1 =10V, D1 is in “OFF” state.
Then D1 can be regarded as open circuit.
Thus, V 2 =0V, D2 is in “ON” state.
So we obtain: VO = V 2 + VD
= 0+0.7=0.7VThis means VO is in logic “0”.
Diode Applications
(2). When V 1 =0V, V 2 =10V,
The result is the same as in (1), in which VO is in logic “0”.
(3). When V 1 =10V, V 2 =10V,
Both D1 and D2 are in “OFF” state. There is no current in network.Thus, V O =10V, is in logic “1”.
Diode Applications
(4). When V 1 =0V, V 2 =0V,
Apparently, Both D1 and D2 are in “ON” state. VO = 0.7V, and in logic “0”.
Briefly, the I/O relation is: V 1V 2
1 (10V)
0 (0V)
1 (10V) 0 (0V)
0 (0.7V)
0 (0.7V)
0 (0.7V)
1 (10V)
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Figure: AND gate
Diode Applications
Figure: AND gate in case 1
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The input is the simplest time-varying signal, sinusoidal waveform.
Half-Wave Rectification
The ideal model of diode is used, i.e.,the “ON” state can be replace with short circuit and “OFF” state open circuit.
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The input sinusoidal waveform has peak value Vm, and period of T.
The average value of input sinusoidal waveform is zero.
The circuit is called half-wave rectifier and will generate a waveform vo which will have an average value.
The half-wave rectifier is useful in power supply circuits.
Diode Applications
During the first half cycle, the applied voltage vi is forward bias voltage and the diode is in “ON” state.
Replacing the diode with short circuit, the output vo is exact copy of the input signal.
During the 2nd half cycle, the applied voltage vi is reverse bias voltage and the diode is in “OFF” state.
Diode Applications
Replacing the diode with open circuit, the output vo is zero.
The figure shows the input & output signals for comparison purpose.
The output signal vo now has a net positive area above axis over a full period and an average value is 0.318Vm.
Diode Applications
Figure: Half-wave rectification
Diode Applications
Figure: Half-wave rectified signal
Diode Applications
Bridge Network:With four diodes in a bridge configuration, the sinusoidal input can be used 100%. And this circuit is referred to as full-wave rectification.
Full-Wave Rectification
Diode Applications
During the first half cycle, v i is positive.
Thus, D2 and D3 are in “ON” state. And D1and D4 are in “OFF” state
Applying diode equivalent circuit in the bridge network, we obtain that:
vo = v i
Diode Applications
During the second half cycle, v i is negative.
Thus, D2 and D3 are in “OFF” state. And D1 and D4 are in “ON” state
Applying diode equivalent circuit in the bridge network, we obtain that:
vo = -v i
Diode Applications
And the average value of full-wave rectification is 0.636Vm , twice that of half-wave rectification.
So with bridge network, the two halves of sinusoidal waveform have been used.
Also, there are other configurations to fulfill full-wave rectification.
Diode Applications
Figure: Full-wave rectification
Diode Applications
Figure: Diode states in the first half of cycle
Diode Applications
Figure: Diode equivalent circuit in the first half of cycle
Diode Applications
Figure: Diode states in the 2nd half of cycle
Diode Applications
Figure: Diode equivalent circuit in the 2nd half of cycle
Diode Applications
Figure: Output of bridge network
Vm
Vdc =0 V
Vm
Vdc =0.636 Vm
Diode Applications
Clippers are networks that employ diodes to “clip” away a portion of an input signal without distorting the remaining part of the applied waveform.
Clippers
The half-wave rectifier is the simplest form of diode clipper.
There are two general categories of clippers: series & parallel.
Diode Applications
The series configuration had been introduced in half-wave rectification.
Moreover, depending on the orientation of the diode, the positive or negative region of the signal is “cut” off.
Series Clippers
It is also useful when applied with more types of input signals.
Diode Applications
Figure: Series clipper
Diode Applications
Figure: Signals which are clipped off
Diode Applications
Example:As shown in the figure, an additional dc supply is added in the circuit. Plot the output waveform vo.
Solution: Without the dc supply, it is easy to analyze.
Without the diode, it is also simple.
Diode Applications
Introducing a new variable, vi’, the question can be divided into two steps.
(1) The relationship between vi’ and vi .
(2) The relationship between vo and vi’.
Diode Applications
The 2nd step: it’s a half-wave rectification.
The output is the portion of vi’ which is above the abscissa.
vi’= vi - V
The first step: it’s easy to obtain:
Diode Applications
Figure: Series clipper with a dc supply
Diode Applications
Figure: Analysis of clipper with a dc supply
Diode Applications
Figure: Output of clipper with a dc supply
Diode Applications
The simplest of parallel diode configuration is shown in the figure.
As before, the equivalent circuit for “ON” state is short circuit and “OFF” state open circuit.
Parallel Clippers
Various types of input signals can be clipped off by parallel diode circuit.
Diode Applications
Figure: Parallel clipper
Diode Applications
Figure: Response to a parallel clipper
Diode Applications
Example:As shown in the figure, an additional dc supply is added in the circuit. Plot the output waveform vo.
Solution:
Pay attention to the positive terminal of diode, the red point, the voltage here is always 4V.
Diode Applications
Also the negative terminal of diode is just the output, the green point, the voltage here is vo.
The states of diode are determined by the voltage between the red and green points.
If vo > 4 V, the diode is in “OFF” state. Then the diode can be regarded as open circuit, so vo = vi .
Diode Applications
That is , vo = vi ,when vi > 4V .
If vo < 4V ,The states of diode is in “ON”.
So the diode can be regarded as short circuit, that is vo = 4 V.This means that vo can not be less than 4 V and should only equal to 4 V .
This diode condition is no-bias actually.
Diode Applications
Figure: Parallel clipper with a dc supply
Diode Applications
Figure: Output of parallel clipper with a dc supply
Diode Applications
A clamper is a network constructed of a diode, a resistor, and a capacitor that shifts a waveform to a different dc level without changing the appearance of the applied signal.
Clamper
Diode Applications
Note:
The selected resistor and capacitor must satisfy that the time constant, τ = RC, is sufficiently large so that the capacitor does not discharge significantly during the interval which the diodes is non-conducting.
Diode Applications
Example:As shown in the figure, plot the output waveform vo of the clamper circuit.
Solution:
While in the first half, vi = V, If assume the diode is in “ON” state.
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The capacitor will charge up instantaneously to voltage V.The output vo = 0. If assume the diode is in “OFF” state.
The capacitor will also charge up to V.The output vo = 0.
Actually, diode is non-biased.
Diode Applications
While in the 2nd half, vi = -VAt the instant when vi switches to -V, the capacitor holds its original voltage V and keeps it due to a large τ.
This means that vi - vo =V and vi = -VSo we get vo = -2V.
Also actually, the diode is in “OFF” state.
Diode Applications
Figure: Clamper and its input signal
Diode Applications
Figure: Output of a clamper circuit
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As shown in the figure, each of the three portions of characteristics of Zener diodes has approximation model.
Zener Diodes
(1) Forward-bias: There exists a negative power supply of about 0.7 V.This is only occasional case.
Diode Applications
(2) Reverse-bias:
The equivalent circuit is open circuit.
(3) Zener region:
The equivalent circuit is a power supply with potential of VZ.VZ can be used as a part of protection circuit.
Diode Applications
Figure: Approximation model of Zener diodes
Diode Applications
(1) For the Zener diode regulator, determine VL , VR , IZ and PZ .
Solution:1. Firstly, determine the state of the Zener
diode.
(2) With RL = 3k, repeat the above problem.
Example 2.17:
Diode Applications
Remove it from the network and calculate the voltage across the resulting open circuit.
iL
L VRR
RV
So we get:
Vkk
k 162.11
2.1
V73.8
Diode Applications
Since V=8.73V, less than VZ , so the Zener diode is in “OFF” state.
VVVL 73.8
So the equivalent circuit is open circuit.
Then we get:
LiR VVV VVV 27.773.816
0ZI 0ZPand
Diode Applications
2. While RL = 3k, the same as before, determine the state of the Zener diode.
iL
L VRR
RV
Vkk
k 1631
3
V12
Diode Applications
Since V=12V, greater than VZ , so the Zener diode is in Zener region.
VVV ZL 10So:
LiR VVV
VVV 61016
mAkV 6
16
R
VI RR
Diode Applications
L
LL R
VI mAkV 33.3
310
LRZ III
mAmAmA 67.233.36
RRZ VIP
mWVmA 7.261067.2
And the power dissipated in Zener diode is
Diode Applications
Figure: Zener diode regulator
Diode Applications
Figure: Determining V for the regulator
Diode Applications
Figure: “ON” state of Zener diode regulator
Diode Applications
Summary of Chapter 2• Load-line analysis, quiescent point
• Simple logic gates: OR gate & AND gate
• Half-wave rectification & full-wave rectification
• Series clippers & parallel clipper• Clamper
• Zener diodes
