SlideShare a Scribd company logo
Frequency Response Analysis
Unit III
FREQUENCY RESPONSE ANALYSIS
• It is the steady state response of a system when the input of the
system is sinusoidal signal
In TF G(s), s is replaced by jω G(jω) is called sinusoidal TF
The Transfer function is a complex function of ω. Hence it can
be separated into magnitude and phase function.
Advantages of Frequency analysis
• The stability of the closed loop system can be
estimated from the open loop frequency response
• The practical testing of system can be easily
carried with available sinusoidal signal generators
and precise measurement equipments
• The complicated transfer function can be
determined
• Design parameter adjustment of open loop system
is easy
• Extended to non linear system
Frequency domain specifications
• Resonant Peak (Mr)
• Resonant Frequency (ωr)
• Bandwidth (ωb)
• Cut-off rate
• Gain margin (Kg)
• Phase margin(γ)
Frequency Response Plots
• Bode Plot
• Polar Plot
• Nyquist plot
• Nichols Plot
• M and N circles
• Nichols Chart
Resonant Peak (Mr)
• The maximum value of the magnitude of
closed loop transfer function is called resonant
peak. A large resonant peak corresponds to a
large overshoot in transient response.
Resonant Frequency (ωr)
• The frequency at which the resonant peak
occurs is called resonant frequency. This is
related to the frequency of oscillation in the
step response and thus it is indicative of the
speed of transient response.
2
1 2
r n
  
 
Bandwidth (ωb)
• The bandwidth is the range of frequencies for
which the system normalized gain is more than
-3dB
• The frequency at which the gain is -3dB is
called cut-off frequency.
Cut-off Rate
• The slope of the log magnitude curve near the
cut off frequency is called cut-off rate.
• The cut-off rate indicates the stability of
system to distinguish the signal from noise
Gain Margin (Kg)
• The gain margin is the factor by which the
system gain can be increased to drive it to the
verge of instability.
• It may be defined as the reciprocal of the gain
at the phase cross over frequency (pc). The
phase cross over frequency is the frequency at
which the phase is 180.
1
( )
pc
Kg
G j

Phase Margin (γ)
• The phase margin is defined as the amount of
additional phase lag at the gain crossover
frequency (gc) required to bring the system to
the verge of instability.
Phase margin  = gc + 180 Where gc =  G (j) H (j) at  = gc
Frequency Response Analysis,domain specification, bode and polar plot
Polar Graph
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Corner frequencies wc1 = 0.5 rad/sec and wc2 = 1 rad/sec
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
The corner frequency is
Frequency Response Analysis,domain specification, bode and polar plot
Bode Plot
• Frequency response plot
• Magnitude Vs logw
• Phase angle Vs logw
Bode Plot
Calculate the gain in dB for lowest frequency and first corner frequency
Calculate the gain using the below formulae for all other frequency
Draw the bode plot for the transfer function and find
gain cross over and phase cross over frequencies
)]
1
1
.
0
)(
4
.
0
1
(
[
10
)
(



s
s
s
s
G
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Sketch the Bode plot for the following transfer function and
obtain gain margin and phase margin
)]
5
3
(
[
1
)
( 2



s
s
s
s
G
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Sketch the bode plot and hence find gain cross over frequency,
phase cross over frequency, gain margin and phase margin for
the function
.
)
100
4
)(
2
(
)
3
(
10
)
( 2





s
s
s
s
s
s
G
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot
Frequency Response Analysis,domain specification, bode and polar plot

More Related Content

PPTX
Unit 4.pptx cs
PPTX
Unit 4 frequency response-Bode plot
PPT
Frequency response analysis
PDF
control engineering revision
PPTX
bode plot.pptx
PPTX
frequency response
PPTX
BODE PLOT.pptx
PPTX
BODE PLOT.pptx
Unit 4.pptx cs
Unit 4 frequency response-Bode plot
Frequency response analysis
control engineering revision
bode plot.pptx
frequency response
BODE PLOT.pptx
BODE PLOT.pptx

Similar to Frequency Response Analysis,domain specification, bode and polar plot (20)

PPT
Understanding and Implementation the Bode Plot
PDF
CS-BMEE330L-Module6-Frequency Response Analysis-1.1 Bode Plot.pdf
PDF
Bode Plots
PDF
Real-Time Jitter Measurements
PDF
Ch7 frequency response analysis
PPTX
lecture1 (6).pptx
PPTX
Frequency Response Techniques
DOC
1 bode plot
PDF
Introduction to seismic interpretation
PPT
Chapter 10- Synchronisation.ppt
PDF
DSP_FOEHU - Lec 11 - IIR Filter Design
PDF
Companding & Pulse Code Modulation
PPT
1619494.ppt
PPT
synthetic aperture radar
PPTX
Lag lead compensator design in frequency domain 7th lecture
PPSX
Light wave-system-3855513
PPTX
Te442 lecture02-2016-14-4-2016-1
PPT
Signal & systems
PPT
PPTX
Frequency Domain approach- An Introduction
Understanding and Implementation the Bode Plot
CS-BMEE330L-Module6-Frequency Response Analysis-1.1 Bode Plot.pdf
Bode Plots
Real-Time Jitter Measurements
Ch7 frequency response analysis
lecture1 (6).pptx
Frequency Response Techniques
1 bode plot
Introduction to seismic interpretation
Chapter 10- Synchronisation.ppt
DSP_FOEHU - Lec 11 - IIR Filter Design
Companding & Pulse Code Modulation
1619494.ppt
synthetic aperture radar
Lag lead compensator design in frequency domain 7th lecture
Light wave-system-3855513
Te442 lecture02-2016-14-4-2016-1
Signal & systems
Frequency Domain approach- An Introduction
Ad

More from Anbarasan P (10)

PPTX
Control system with matlab Time response analysis, Frequency response analysi...
PPTX
Root locus, procedure, problem solved in root locus
PPTX
Fast Fourier Transforms, Butterfly structure, DIT, DIF
PPTX
Electrical wiring &types, Earthing , fuses and its types
PPTX
Sampling process, Aliasing effect, Quantization
PPTX
Photovoltaic system, solar array, equivalent circuits, characteristics
PPTX
Presentation on Transformer-construction
PPTX
TRANSDUCERS AND ITS TYPES - lvdt,Strain guage
PPTX
Digital logic circuits multiple choice questions
PPTX
Code conversion - Binary, Gray, BCD and Excess- 3 code
Control system with matlab Time response analysis, Frequency response analysi...
Root locus, procedure, problem solved in root locus
Fast Fourier Transforms, Butterfly structure, DIT, DIF
Electrical wiring &types, Earthing , fuses and its types
Sampling process, Aliasing effect, Quantization
Photovoltaic system, solar array, equivalent circuits, characteristics
Presentation on Transformer-construction
TRANSDUCERS AND ITS TYPES - lvdt,Strain guage
Digital logic circuits multiple choice questions
Code conversion - Binary, Gray, BCD and Excess- 3 code
Ad

Recently uploaded (20)

PPTX
Foundation to blockchain - A guide to Blockchain Tech
PDF
The CXO Playbook 2025 – Future-Ready Strategies for C-Suite Leaders Cerebrai...
PPTX
Internet of Things (IOT) - A guide to understanding
PPT
Project quality management in manufacturing
PPTX
web development for engineering and engineering
PPTX
OOP with Java - Java Introduction (Basics)
PPTX
additive manufacturing of ss316l using mig welding
PDF
composite construction of structures.pdf
PDF
Unit I ESSENTIAL OF DIGITAL MARKETING.pdf
PPTX
FINAL REVIEW FOR COPD DIANOSIS FOR PULMONARY DISEASE.pptx
PDF
Well-logging-methods_new................
PPTX
Infosys Presentation by1.Riyan Bagwan 2.Samadhan Naiknavare 3.Gaurav Shinde 4...
PDF
Enhancing Cyber Defense Against Zero-Day Attacks using Ensemble Neural Networks
PDF
keyrequirementskkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkk
PDF
Automation-in-Manufacturing-Chapter-Introduction.pdf
PPTX
CARTOGRAPHY AND GEOINFORMATION VISUALIZATION chapter1 NPTE (2).pptx
PDF
Embodied AI: Ushering in the Next Era of Intelligent Systems
PPTX
UNIT-1 - COAL BASED THERMAL POWER PLANTS
PPTX
Geodesy 1.pptx...............................................
PPT
introduction to datamining and warehousing
Foundation to blockchain - A guide to Blockchain Tech
The CXO Playbook 2025 – Future-Ready Strategies for C-Suite Leaders Cerebrai...
Internet of Things (IOT) - A guide to understanding
Project quality management in manufacturing
web development for engineering and engineering
OOP with Java - Java Introduction (Basics)
additive manufacturing of ss316l using mig welding
composite construction of structures.pdf
Unit I ESSENTIAL OF DIGITAL MARKETING.pdf
FINAL REVIEW FOR COPD DIANOSIS FOR PULMONARY DISEASE.pptx
Well-logging-methods_new................
Infosys Presentation by1.Riyan Bagwan 2.Samadhan Naiknavare 3.Gaurav Shinde 4...
Enhancing Cyber Defense Against Zero-Day Attacks using Ensemble Neural Networks
keyrequirementskkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkk
Automation-in-Manufacturing-Chapter-Introduction.pdf
CARTOGRAPHY AND GEOINFORMATION VISUALIZATION chapter1 NPTE (2).pptx
Embodied AI: Ushering in the Next Era of Intelligent Systems
UNIT-1 - COAL BASED THERMAL POWER PLANTS
Geodesy 1.pptx...............................................
introduction to datamining and warehousing

Frequency Response Analysis,domain specification, bode and polar plot

  • 2. FREQUENCY RESPONSE ANALYSIS • It is the steady state response of a system when the input of the system is sinusoidal signal In TF G(s), s is replaced by jω G(jω) is called sinusoidal TF The Transfer function is a complex function of ω. Hence it can be separated into magnitude and phase function.
  • 3. Advantages of Frequency analysis • The stability of the closed loop system can be estimated from the open loop frequency response • The practical testing of system can be easily carried with available sinusoidal signal generators and precise measurement equipments • The complicated transfer function can be determined • Design parameter adjustment of open loop system is easy • Extended to non linear system
  • 4. Frequency domain specifications • Resonant Peak (Mr) • Resonant Frequency (ωr) • Bandwidth (ωb) • Cut-off rate • Gain margin (Kg) • Phase margin(γ)
  • 5. Frequency Response Plots • Bode Plot • Polar Plot • Nyquist plot • Nichols Plot • M and N circles • Nichols Chart
  • 6. Resonant Peak (Mr) • The maximum value of the magnitude of closed loop transfer function is called resonant peak. A large resonant peak corresponds to a large overshoot in transient response.
  • 7. Resonant Frequency (ωr) • The frequency at which the resonant peak occurs is called resonant frequency. This is related to the frequency of oscillation in the step response and thus it is indicative of the speed of transient response. 2 1 2 r n     
  • 8. Bandwidth (ωb) • The bandwidth is the range of frequencies for which the system normalized gain is more than -3dB • The frequency at which the gain is -3dB is called cut-off frequency.
  • 9. Cut-off Rate • The slope of the log magnitude curve near the cut off frequency is called cut-off rate. • The cut-off rate indicates the stability of system to distinguish the signal from noise
  • 10. Gain Margin (Kg) • The gain margin is the factor by which the system gain can be increased to drive it to the verge of instability. • It may be defined as the reciprocal of the gain at the phase cross over frequency (pc). The phase cross over frequency is the frequency at which the phase is 180. 1 ( ) pc Kg G j 
  • 11. Phase Margin (γ) • The phase margin is defined as the amount of additional phase lag at the gain crossover frequency (gc) required to bring the system to the verge of instability. Phase margin  = gc + 180 Where gc =  G (j) H (j) at  = gc
  • 16. Corner frequencies wc1 = 0.5 rad/sec and wc2 = 1 rad/sec
  • 23. Bode Plot • Frequency response plot • Magnitude Vs logw • Phase angle Vs logw
  • 24. Bode Plot Calculate the gain in dB for lowest frequency and first corner frequency Calculate the gain using the below formulae for all other frequency
  • 25. Draw the bode plot for the transfer function and find gain cross over and phase cross over frequencies )] 1 1 . 0 )( 4 . 0 1 ( [ 10 ) (    s s s s G
  • 30. Sketch the Bode plot for the following transfer function and obtain gain margin and phase margin )] 5 3 ( [ 1 ) ( 2    s s s s G
  • 33. Sketch the bode plot and hence find gain cross over frequency, phase cross over frequency, gain margin and phase margin for the function . ) 100 4 )( 2 ( ) 3 ( 10 ) ( 2      s s s s s s G