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    EE102 Electronic Engineering II

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    211164 211164
    This document provides a lecture overview on Darlington amplifiers. It begins with an introduction to Darlington pairs and how they provide high current gain by connecting the collector of one BJT to the base of another. The document then presents the key equations for current gain in a Darlington pair and works through an example circuit to determine the quiescent operating points, voltage gain, input resistance, and output resistance. Key points covered include that Darlington pairs increase current gain approximately to β2 and provide very high input resistance. An example circuit is used to calculate the base currents, collector currents, and voltages at different nodes for the Darlington pair.

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    EE102 Electronic Engineering II

    Uploaded by

    211164 211164
    35 views29 pages
    This document provides a lecture overview on Darlington amplifiers. It begins with an introduction to Darlington pairs and how they provide high current gain by connecting the collector of one BJT to the base of another. The document then presents the key equations for current gain in a Darlington pair and works through an example circuit to determine the quiescent operating points, voltage gain, input resistance, and output resistance. Key points covered include that Darlington pairs increase current gain approximately to β2 and provide very high input resistance. An example circuit is used to calculate the base currents, collector currents, and voltages at different nodes for the Darlington pair.

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    This document provides a lecture overview on Darlington amplifiers. It begins with an introduction to Darlington pairs and how they provide high current gain by connecting the collector of one BJT to the base of another. The document then presents the key equations for current gain in a Darlington pair and works through an example circuit to determine the quiescent operating points, voltage gain, input resistance, and output resistance. Key points covered include that Darlington pairs increase current gain approximately to β2 and provide very high input resistance. An example circuit is used to calculate the base currents, collector currents, and voltages at different nodes for the Darlington pair.

    Copyright:

    © All Rights Reserved
    Download as PPT, PDF, TXT or read online from Scribd
    Download as ppt, pdf, or txt
    35 views29 pages

    EE102 Electronic Engineering II

    Uploaded by

    211164 211164
    This document provides a lecture overview on Darlington amplifiers. It begins with an introduction to Darlington pairs and how they provide high current gain by connecting the collector of one BJT to the base of another. The document then presents the key equations for current gain in a Darlington pair and works through an example circuit to determine the quiescent operating points, voltage gain, input resistance, and output resistance. Key points covered include that Darlington pairs increase current gain approximately to β2 and provide very high input resistance. An example circuit is used to calculate the base currents, collector currents, and voltages at different nodes for the Darlington pair.

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    EE102

    Electronic Engineering II

    Dr. Tamer Saleh El-Sayed


    Lecturer in the Egyptian Russian University (ERU)

    algwaal@yahoo.com
    EE102 Electronics II
    Spring 2022

    Output Stage Gain Amplifier


    Darlington Amplifier
    Announcements
    • Text Book:
    • Microelectronic Circuits by Sedra & Smith, 6th ed., Oxford University Press,
    Electronics Devices & Circuit Theory, Robert and Louis

    3
    Lecture Overview
    • Output Stage Gain Amplifier
    • Darlington Amplifier

    4
    BJT Darlington Pair
    Op Amp BJT Circuit

    C
    IC
    c1

    b1
    c2 Darlington amplifier
    B Q1
    IB
    Q2
    e1 b2
    e2

    E 5
    BJT Darlington Pair C
    Darlington amplifier
    IC
    c1
    Darlington pair c2
    b1
    B Q1
    Internal connection; IB
    • Collectors of Q1 and
    Q2
    e1 b2
    Q2;
    e2
    • Emitter of Q1 and
    base of Q2.
    E
    Provides high current
    gain : IC  2IB

    I C   DC I B
    6
    BJT Darlington Pair
    Darlington amplifier I C   DC I B
    Currents in darlington pair

    b 1I B 1 I C 1 + IC 2 = [b 1 + b 2(1+b 1)]I B 1

    I C 2 = b 2I B 2 =b 2(1+b 1)I B 1
    Q1
    IB1
    Q2

    I E 2 = (1+b 2)I B 2 =(1+b 1)(1+b 2)I B 1


    I E 1 = (1+b 1)I B 1 = I B 2

    7
    BJT Darlington Pair
    Darlington amplifier
    I C   DC I B
    If 1 = 2 =  and assuming  is large;
    Darlington configuration
    provides;
    • Increased bIB1 I C 1 + IC 2 @ b 2I B 1
    current

    I C 2 = b I B 2 =b (1+b )I B 1
    Q1
    IB1
    Q2

    I E 2 = (1+b )I B 2 =(1+b )2I B 1


    I E 1 = (1+b )I B 1 = I B 2

    8
    BJT Darlington Pair
    Darlington amplifier

    Hybrid- model (assuming ro1 = ro2 = );

    C
    b1 c1
    +
    c1
    rp 1 Vp 1 g m 1V p 1


    c2
    b1
    B Q1 -
    c2
    Q2 e1 b2 +
    e1 b2
    rp 2 Vp 2 g m 2V p 2
    e2
    -
    E e2

    9
    BJT Darlington Pair
    Darlington amplifier

    Darlington configuration provides;


    • Increased current;
    • High input resistance.

    Darlington pair
    configuration

    10
    BJT Darlington Pair
    Darlington amplifier
    I C   DC I B
    Example

    For circuit shown below, 1   2  100, VA1  VA2   and


    VBE1  VBE 2  0.7 V.

    Determine the;
    (a) Q-point for Q1 and Q2;
    (b) voltage gain vo/vs;
    (c) input resistance;
    (d) output resistance Ro

    11
    BJT Darlington Pair
    Darlington amplifier
    Example (cont’d)
    Determine the;
    (a) Q-point for Q1 and Q2;
    (b) voltage gain vo/vs;
    (c) input resistance;
    (d) output resistance Ro

    12
    BJT Darlington Pair
    Example – Solution V CC +10 V

    (a) Determining the Q-points


    RC 2.2 kW
    R1 335 kW
    Using Thevenin’s theorem;
    Q1
     R2 
    VBB  VCC    2.72 V Q2
     R1  R2 
    R2 125 kW
    R1 R2 RE2 1 kW
    RBB   91 k
    R1  R2

    DC equivalent circuit 13
    BJT Darlington Pair
    Example – Solution (cont’d) Darlington connection
    V CC +10 V
    The circuit becomes;

    RC 2.2 kW
    From page 10 analysis: V BB +2.72 V IC1
    IB1
    I B 2  I E1    1I B1 R BB
    IC2
    Q1
    91 kW
    I E 2    1I B 2    1 I B1 Q2
    2

    IB2 IE2
    KVL input loop
    KVL around B1-E2 input loop:
    RE2 1 kW

    RBB I B1  2VBE  RE 2   1 I B1  VBB


    2

    14
    BJT Darlington Pair
    VBE1  VBE 2  0.7 V. 1   2  100,

    V CC +10 V
    RBB I B1  2VBE
     RE 2   1 I B1  VBB
    2

    RC 2.2 kW
    V BB +2.72 V IC1
    Substituting values; IB1
    R BB
    IC2
    Q1
    91kI B1  2  0.7 91 kW
    Q2
     1k 100  1 I B1  2.72
    2
    IB2 IE2
    KVL input loop
    RE2 1 kW
    1.32
    I B1   10 3
    10292
     0.128 μA
    15
    BJT Darlington Pair
    Example – Solution (cont’d) 1   2  100,

    I C   DC I B V CC +10 V

    I C1  I B1  12.8 μA
    RC 2.2 kW
    V BB +2.72 V IC1
    IB1
    R BB
    IC2
    I E1  I B 2  1   I B1 Q1
     12.93 μA 91 kW
    Q2
    IB2 IE2
    I C 2   I B 2  1.293 mA
    RE2 1 kW

    I E 2  1   I B 2  1.3 mA
    16
    BJT Darlington Pair
    Example – Solution (cont’d)

    V CC +10 V
    VE 2  I E 2 RE 2
     1.3 1  1.3 V RC 2.2 kW
    V BB +2.72 V IC1
    IB1
    VE1  VE 2  VBE 2 R BB
    IC2
    Q1
     1.3  0.7  2 V
    91 kW
    Q2
    IB2 IE2
    VC1  VC 2  VCC  I C1  I C 2 RC
     10  2.21.293  0.0128 RE2 1 kW

     7.127 V

    17
    BJT Darlington Pair
    Example – Solution (cont’d)

    VCE1  VC1  VE1 V CC +10 V


     7.127  2  5.127 V
    RC 2.2 kW
    V BB +2.72 V
    VCE 2  VC 2  VE 2 IC1
     7.127  1.3  5.827 V R BB
    IB1
    IC2
    Q1
    91 kW
    (a) The Q-points are; Q2
    IB2 IE2

    Q1 : I CQ1  12.8 μA; VCEQ1  5.127 V RE2 1 kW


    Q2 : I CQ 2  1.293 mA; VCEQ 2  5.827 V

    18
    BJT Darlington Pair
    Example – Solution (cont’d)

    (b) The small-signal voltage gain (mid-band);

    R is
    vo
    Q1
    vs
    Q2 RC
    R BB
    Ro

    The equivalent circuit under AC condition


    19
    BJT Darlington Pair
    Example – Solution (cont’d)

    Using the hybrid- model of transistor;


    R is ii io Ro

    vs + vo
    rp 1 vp 1 g m 1v p 1
    -
    R BB RC
    +
    rp 2 vp 2 g m 2v p 2
    -

    20
    BJT Darlington Pair
    Example – Solution (cont’d)
    Q-point for Q1 and Q2;

    I CQ1 12.8 A
    g m1    0.492 mA/V
    VT 26 mV

    I CQ 2 1.293 mA
    gm2    49.73 mA/V
    VT 26 mV

    1 100
    r 1   3
     203.25 k
    g m1 0.492 10

    2 100
    r 2   3
     2 k
    g m 2 49.73  10

    21
    BJT Darlington Pair
    Example – Solution (cont’d)

    R is ii io Ro

    vs + vo
    rp 1 vp 1 g m 1v p 1
    -
    R BB RC
    +
    rp 2 vp 2 g m 2v p 2
    -

    vo  g m1V 1  g m 2V 2 RC

    22
    BJT Darlington Pair
    I b 2  I i  1 I i  1  1 I i
    Example – Solution (cont’d)
    V 2  I b 2 r 2  1  1 I i r 2
    R is ii io Ro

    vs + vo
    rp 1 vp 1 g m 1v p 1
    -
    R BB RC
    +
    rp 2 vp 2 g m 2v p 2
    -
    V 1  I i r 1
    r 2
    V 2  1    V 1
    V 2  I b 2 r 2  1  1 I i r 2 r 1

    23
    BJT Darlington Pair
    Example – Solution (cont’d)

    vo  g m1V 1  g m 2V 2 RC

    r 2
    V 2  1  1  V 1
    r 1

    Substituting for V2 in the expression for vo and


    simplifying;
     1  1  1  2 
    vo     RCV 1
     r 1 

    24
    BJT Darlington Pair
    Example – Solution (cont’d)

    vs  V 1  V 2 Note :
    r 2
    Substituting for V2; V 2  1  1  V 1
    r 1
    r 2  1  1  1  2 
    vs  V 1  1  1  V 1 vo     RCV 1
    r 1  r 1 

    Therefore;  1  1  1  2 
      RCV 1
    vo  r 1 
    Av  
    vs r 2
    V 1  1  1  V 1
    voltage gain vo/vs r 1

    25
    BJT Darlington Pair
    Example – Solution (cont’d)

    Simplifying; voltage gain vo/vs

    vo
    Av   
    1  1  1  2 RC
    vs r 1  1  1 r 2 1   2  100,

    Substituting values;

    Av 

    100  100  100 2.2
    2

    203.25  2  100  2

    voltage gain vo/vs Av  55.4 V/V

    26
    BJT Darlington Pair
    Example – Solution (cont’d)

    R ib
    R is ii ib io Ro

    + vo
    +
    rp 1 vp 1 g m 1v p 1
    -
    R BB vs RC
    +
    rp 2 vp 2 g m 2v p 2
    - -

    vs
    Rib   r 1  1  1 r 2
    ib
    27
    BJT Darlington Pair
    Example – Solution (cont’d)

    R ib
    R is ii ib io Ro

    + vo
    +
    rp 1 vp 1 g m 1v p 1
    -
    R BB vs RC
    +
    rp 2 vp 2 g m 2v p 2
    - -

    Substituting values; 1   2  100,

    Rib  203  1  1002  405 k

    28
    BJT Darlington Pair
    Example – Solution (cont’d)
    R ib
    R is ii ib io Ro

    + vo
    +
    rp 1 vp 1 g m 1v p 1
    -
    R BB vs RC
    +
    rp 2 vp 2 g m 2v p 2
    - -

    output resistance Ro

    Ro  RC  2.2 k
    29

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