Biquad Filter

19
THREE AMPLIFIER BIQUAD 23/12/2016 Imran Ullah Khan JAP/IU 1

Transcript of Biquad Filter

Page 1: Biquad Filter

THREE AMPLIFIER BIQUAD

23/12/2016 Imran Ullah Khan JAP/IU 1

Page 2: Biquad Filter

Filter Transmission, Types and Specification

23/12/2016 Imran Ullah Khan JAP/IU 2

H(s) = K/(as² + bs + 1),

where a = R1R2C1C2

and b = R1C1 + R2C1

This can be simplified by making

R1 = R2 and C1 = C2, resulting

in:

H(s) = K/(R²C²s² + 2RCs + 1)

Page 3: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 3

Three Amplifier Biquad

Figure shows the basic architecture of the 3

amplifier state variable Biquad. It comprises a

summing node followed by two integrators. This

architecture is quite versatile in that it gives a high-

pass, band-pass and low-pass output, but it also

allows independent control of fc, and the Q.

Page 4: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 4

Three amplifier state-variable biquad

Page 5: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 5

Four Amplifier Biquad State Variable Filter

Page 6: Biquad Filter

TOW THOMAS BIQUAD

23/12/2016 Imran Ullah Khan JAP/IU 6

The big difference is that for a biquad, as fc changes, the bandwidth stays

constant, but the Q value changes. Thus, if you change fc in the frequency

domain, as fc increases, the Q value increases and as fc decreases, the Q value

also decreases. Other than this difference, the biquad behaves like the state

variable. It allows very high Q values, it can be configured in a 3 or 4 amplifier

configuration, and it too is less sensitive to external component variations. The

3 and 4 amplifier circuits draw more power, and usually require more design

time, especially when multiple stages are cascaded to obtain a steeper filter

roll-off response.

Page 7: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 7

TOW THOMAS BIQUAD contd…

Page 8: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 8

The Tow-Thomas biquad with feedforward. The transfer function is

realized by feeding the input signal through appropriate components to

the inputs of the three op amps. This circuit can realize all special

second-order functions.

TOW THOMAS BIQUAD contd…

Page 9: Biquad Filter

Passive Ladder structure

23/12/2016 Imran Ullah Khan JAP/IU 9

Page 10: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 1

Inductor Substitution using Gyrator

The Antoniou inductance-simulation circuit

Page 11: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 11

Analysis of the circuit assuming ideal op amps. The order of the analysis steps is indicated by the circled numbers.

Page 12: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 2

The Antoniou inductance-simulation circuit. Analysis

of the circuit assuming ideal op amps. The order of

the analysis steps is indicated by the circled numbers.

Page 13: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 3

(b) HP; (c) BP, (d) notch at 0;

Realization of second-order filter functions using opamp-RC resonator of Low Pass

Page 14: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 14

Realization of second-order filter functions using Opamp-RC resonator of High Pass

Page 15: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 15

Realization of second-order filter functions using opamp-RC resonator of Band Pass

Page 16: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 16

Realization of second-order filter functions using opamp-RC resonator of NOTCH

Page 17: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 4

LPN, n 0

Page 18: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 18

HPN, 0 n

Page 19: Biquad Filter

23/12/2016 Imran Ullah Khan JAP/IU 19

ALL PASS