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Lecture 09 - 3ELE2110A © 2008
Multivibrators
A multivibrator is used to implement simple two-state
systems such as oscillators, timers and flip-flops.
Three types:
– Astable – neither state is stable.
Applications: oscillator, etc.
– Monostable - one of the states is stable, but the other is not;
Applications: timer, etc.
– Bistable – it remains in either state indefinitely.
Applications: flip-flop, etc.
Reference: http://en.wikipedia.org/wiki/Multivibrator
Lecture 09 - 4ELE2110A © 2008
Astable Multivibrator
Consists of two amplifying devices cross-coupled by resistors and
capacitors.
Typically, R2 = R3, R1 = R4, C1 = C2 and R2 >> R1.
The circuit has two states
– State 1: VC1 LOW, VC1 HIGH, Q1 ON (saturation) and Q2 OFF.
– State 2: VC1 HIGH, VC2 LOW, Q1 OFF and Q2 ON (saturation).
It continuously oscillates from one state to the other.
Redrawn
Circuit in Experiment A4
Lecture 09 - 5ELE2110A © 2008
Basic Mode of Operation
VB1 charges up through R3 from below ground towards VCC.
When VB1 reaches VON (of VBE, ≈1V), Q1 turns on and pulls VC1 from
VCC to VCESat ≈ 0V.
Due to forward-bias of the BE junction of Q1, VB1 remains at 1V.
State 1:
Lecture 09 - 6ELE2110A © 2008
Basic Mode of Operation
As C1’s voltage cannot change instantaneously, VB2 drops by VCC.
State 1 (cont’d):
1V
VCC 0V
VCC
1V-VCC
Lecture 09 - 7ELE2110A © 2008
Basic Mode of Operation
Q2 turns off and VC2 charges up through R4 to VCC (speed set by the
time constant R4C2).
VB2 charges up through R2 towards VCC (speed set by R2C1, which is
slower than the charging up speed of VC2).
State 1 (cont’d):
1V
0V
Lecture 09 - 8ELE2110A © 2008
Basic Mode of Operation
When VB2 reaches VON, Q2 turns on and pulls VC2 from VCC to 0V.
VB2 remains at VON.
State 2:
VCC 0V
1V
Lecture 09 - 9ELE2110A © 2008
Basic Mode of Operation
As C2’s voltage cannot change instantaneously, VB1 drops by VCC.
State 2 (cont’d):
1V 1V-VCC
VCC 0V
VCC
1V
Lecture 09 - 10ELE2110A © 2008
Basic Mode of Operation
Q1 turns off and VC1 charges up through R1 to VCC, at a rate set by
R1C1.
VB2 charges up through R3 towards VCC, at a rate set by R3C2, which
is slower.
State 2 (cont’d):
1V
0V
Lecture 09 - 11ELE2110A © 2008
Basic Mode of Operation
When VB1 reaches Von, the circuit enters state 1 again, and the
process repeats.
Back to state 1:
Lecture 09 - 12ELE2110A © 2008
Initial Power-Up
When the circuit is first powered up, neither transistor is ON.
Parasitic capacitors between B and E of Q1 and Q2 are charged up
towards VCC through R2 and R3. Both VB1 and VB2 rise.
Inevitable slight asymmetries will mean that one of the transistors is
first to switch on. This will quickly put the circuit into one of the
above states, and oscillation will ensue.
Lecture 09 - 13ELE2110A © 2008
Multivibrator Frequency
T/2
CCON
CRt
CCCC
CRt
onCCCCONB
VVeVV
eVVVVv
<<−+−≈
−−+−=
−
−
for)1(2
)1)(2()(
23
23
/
/
1
0V
t = 0
At t = T/2, vB1=VON: )1(2 232/ CRT
CCCCON
eVVV −
−+−=
Lecture 09 - 14ELE2110A © 2008
Multivibrator Frequency
)1(2 232/ CRT
CCCCON
eVVV −
−+−=
CCON
VV <<for)1(2 232/ CRT
CCCC
eVV −
−≈∴
)1(21 232/ CRT
e−
−=∴
23
23
2/
)2(ln2
2ln
2
5.023
CRT
CR
T
e CRT
=∴
−=−∴
=∴ −
23
)2(ln2
1
CR
f =or
For the above component values,
f =1.53kHz.
Lecture 09 - 15ELE2110A © 2008
Supply Voltage Limit
When VB1 is negative, BE junction of Q1 is reverse-biased.
Suppose the breakdown voltage of this junction is Vbreak (positive).
then to avoid breakdown,
CCON
VV −
BreakONCCBreakCCON VVVVVV +<⇒−>−
Lecture 09 - 16ELE2110A © 2008
Mono-stable Multivibrator
Capacitive path between VC2 and VB1
removed.
Stable for one state (state 2 here)
– Q1 OFF and Q2 ON
– VC1 High, VC2 Low
When VB2 is momentarily pulled to ground
by an external signal
– VC2 rises to VCC
– Q1 turns on
– VC1 pulled down to 0V
– Enter state 1 temporarily
When the external signal goes high
– VB2 charges up to VCC through R2
– After a certain time T, VB2=VON, Q2 turns on
– VC2 pulled to 0V, Q1 turns off
– Enters state 2 and remains there
Can be used as a timer
Lecture 09 - 17ELE2110A © 2008
Q2Q1
VCC
Vout
VB1
Vout
VB2
set reset
Bi-stable Multivibrator
Both capacitors removed
Stable for either state 1 or 2
Can be forced to either state by Set or
Reset signals
If Set is low,
– Q1 turns off
– VC1 (Vout) and VB2 rises towards VCC
– Q2 turns on
– VC2 (/Vout) pulled to 0V
– VB1 is latched to 0V
– Circuit remains in state 2 until Reset is low
If Reset is low
– Similar operation
– Circuit remains in state 1 until Set is low
Behave as an RS flip-flop

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Multivibrators

  • 1. Lecture 09 - 3ELE2110A © 2008 Multivibrators A multivibrator is used to implement simple two-state systems such as oscillators, timers and flip-flops. Three types: – Astable – neither state is stable. Applications: oscillator, etc. – Monostable - one of the states is stable, but the other is not; Applications: timer, etc. – Bistable – it remains in either state indefinitely. Applications: flip-flop, etc. Reference: http://en.wikipedia.org/wiki/Multivibrator
  • 2. Lecture 09 - 4ELE2110A © 2008 Astable Multivibrator Consists of two amplifying devices cross-coupled by resistors and capacitors. Typically, R2 = R3, R1 = R4, C1 = C2 and R2 >> R1. The circuit has two states – State 1: VC1 LOW, VC1 HIGH, Q1 ON (saturation) and Q2 OFF. – State 2: VC1 HIGH, VC2 LOW, Q1 OFF and Q2 ON (saturation). It continuously oscillates from one state to the other. Redrawn Circuit in Experiment A4
  • 3. Lecture 09 - 5ELE2110A © 2008 Basic Mode of Operation VB1 charges up through R3 from below ground towards VCC. When VB1 reaches VON (of VBE, ≈1V), Q1 turns on and pulls VC1 from VCC to VCESat ≈ 0V. Due to forward-bias of the BE junction of Q1, VB1 remains at 1V. State 1:
  • 4. Lecture 09 - 6ELE2110A © 2008 Basic Mode of Operation As C1’s voltage cannot change instantaneously, VB2 drops by VCC. State 1 (cont’d): 1V VCC 0V VCC 1V-VCC
  • 5. Lecture 09 - 7ELE2110A © 2008 Basic Mode of Operation Q2 turns off and VC2 charges up through R4 to VCC (speed set by the time constant R4C2). VB2 charges up through R2 towards VCC (speed set by R2C1, which is slower than the charging up speed of VC2). State 1 (cont’d): 1V 0V
  • 6. Lecture 09 - 8ELE2110A © 2008 Basic Mode of Operation When VB2 reaches VON, Q2 turns on and pulls VC2 from VCC to 0V. VB2 remains at VON. State 2: VCC 0V 1V
  • 7. Lecture 09 - 9ELE2110A © 2008 Basic Mode of Operation As C2’s voltage cannot change instantaneously, VB1 drops by VCC. State 2 (cont’d): 1V 1V-VCC VCC 0V VCC 1V
  • 8. Lecture 09 - 10ELE2110A © 2008 Basic Mode of Operation Q1 turns off and VC1 charges up through R1 to VCC, at a rate set by R1C1. VB2 charges up through R3 towards VCC, at a rate set by R3C2, which is slower. State 2 (cont’d): 1V 0V
  • 9. Lecture 09 - 11ELE2110A © 2008 Basic Mode of Operation When VB1 reaches Von, the circuit enters state 1 again, and the process repeats. Back to state 1:
  • 10. Lecture 09 - 12ELE2110A © 2008 Initial Power-Up When the circuit is first powered up, neither transistor is ON. Parasitic capacitors between B and E of Q1 and Q2 are charged up towards VCC through R2 and R3. Both VB1 and VB2 rise. Inevitable slight asymmetries will mean that one of the transistors is first to switch on. This will quickly put the circuit into one of the above states, and oscillation will ensue.
  • 11. Lecture 09 - 13ELE2110A © 2008 Multivibrator Frequency T/2 CCON CRt CCCC CRt onCCCCONB VVeVV eVVVVv <<−+−≈ −−+−= − − for)1(2 )1)(2()( 23 23 / / 1 0V t = 0 At t = T/2, vB1=VON: )1(2 232/ CRT CCCCON eVVV − −+−=
  • 12. Lecture 09 - 14ELE2110A © 2008 Multivibrator Frequency )1(2 232/ CRT CCCCON eVVV − −+−= CCON VV <<for)1(2 232/ CRT CCCC eVV − −≈∴ )1(21 232/ CRT e− −=∴ 23 23 2/ )2(ln2 2ln 2 5.023 CRT CR T e CRT =∴ −=−∴ =∴ − 23 )2(ln2 1 CR f =or For the above component values, f =1.53kHz.
  • 13. Lecture 09 - 15ELE2110A © 2008 Supply Voltage Limit When VB1 is negative, BE junction of Q1 is reverse-biased. Suppose the breakdown voltage of this junction is Vbreak (positive). then to avoid breakdown, CCON VV − BreakONCCBreakCCON VVVVVV +<⇒−>−
  • 14. Lecture 09 - 16ELE2110A © 2008 Mono-stable Multivibrator Capacitive path between VC2 and VB1 removed. Stable for one state (state 2 here) – Q1 OFF and Q2 ON – VC1 High, VC2 Low When VB2 is momentarily pulled to ground by an external signal – VC2 rises to VCC – Q1 turns on – VC1 pulled down to 0V – Enter state 1 temporarily When the external signal goes high – VB2 charges up to VCC through R2 – After a certain time T, VB2=VON, Q2 turns on – VC2 pulled to 0V, Q1 turns off – Enters state 2 and remains there Can be used as a timer
  • 15. Lecture 09 - 17ELE2110A © 2008 Q2Q1 VCC Vout VB1 Vout VB2 set reset Bi-stable Multivibrator Both capacitors removed Stable for either state 1 or 2 Can be forced to either state by Set or Reset signals If Set is low, – Q1 turns off – VC1 (Vout) and VB2 rises towards VCC – Q2 turns on – VC2 (/Vout) pulled to 0V – VB1 is latched to 0V – Circuit remains in state 2 until Reset is low If Reset is low – Similar operation – Circuit remains in state 1 until Set is low Behave as an RS flip-flop