Y Transformation 2'7 Circuits with Dependent Sources 2'8 - PowerPoint PPT Presentation

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Y Transformation 2'7 Circuits with Dependent Sources 2'8

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Rb. Rc. ECE201 Lect-5. 4 -Y Transformation. To compute the new Y resistance values. For the balanced case (RY= Ra= Rb= Rc) R? = 3 RY. ECE201 Lect-5. 5. Class ... – PowerPoint PPT presentation

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Title: Y Transformation 2'7 Circuits with Dependent Sources 2'8


1
?-Y Transformation (2.7)Circuits with Dependent
Sources (2.8)
  • Prof. Phillips
  • February 3, 2003

2
?-Y Transformation
  • A particular configuration of resistors (or
    impedances) that does not lend itself to the
    using series and parallel combination techniques
    is that of a delta (?) connection
  • In such cases the delta (?) connection is
    converted to a wye (Y) configuration
  • The reverse transformation can also be performed

3
?-Y Transformation
a
a
Ra
R1
R2
Rb
Rc
c
b
R3
b
c
4
?-Y Transformation
  • To compute the new Y resistance values
  • For the balanced case (RY Ra Rb Rc)
  • R? 3 RY

5
Class Example
6
Circuits with Dependent Sources
  • Strategy
  • Apply KVL and KCL, treating dependent source(s)
    as independent sources.
  • Determine the relationship between dependent
    source values and controlling parameters.
  • Solve equations for unknowns.

7
Example Inverting Amplifier
  • The following circuit is a (simplified) model for
    an inverting amplifier created from an
    operational amplifier (op-amp).
  • It is an example of negative feedback.

8
Inverting Amplifier
1kW
4kW
10kW
I



Vf
Vs100Vf
10V
  • Apply KVL around loop
  • -10V 1kW I 4kW I 10kW I 100 Vf 0

9
Inverting Amplifier
  • Applying KVL yielded
  • -10V 1kW I 4kW I 10kW I 100 Vf 0
  • Get Vf in terms of I
  • Vf 10kW I 100Vf 0
  • Vf -(10kW/101) I

10
Inverting Amplifier
  • Solve for I
  • I 1.961 mA
  • Solve for Vf
  • Vf -0.194 V
  • Solve for source voltage
  • Vs -19.4 V

11
Amplifier Gain
  • Repeat the previous example for a gain of 1000
  • Answer Vs -19.94V

12
Transistor Amplifier
  • A small-signal linear equivalent circuit for a
    transistor amplifier is the following
  • Find VX


5?10-4VX
3kW
6kW
VX
5mA

13
Apply KCL at the Top Node
  • 5mA VX/6kW 5?10-4VX VX/3kW
  • 5mA 1.67?10-4VX 5?10-4VX 3.33?10-4VX
  • VX5mA/(1.67?10-4 5?10-4 3.33?10-4)
  • VX5V

14
Class Examples
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