HEAD
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester (Mathematics-III)
Integral Transforms:
Erwin Kreyszig: Advanced Engineering Mathematics, Wiley India.
H C Taneja: Advanced Engineering Mathematics, I.K. International Publishing House Pvt. Ltd.
C B Gupta & S R Singh : Engineering Mathematics , Mc Graw Hill Education.
S S Sastri: Engineering Mathematics, PHI
Ramana: Advance Engg. Mathematics, TMH New Delhi
Engineering Mathematics By Samnta Pal and Bhutia, Oxford Publication
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Electrical Measurements and Instrumentation
The primary objective of the course is to introduce operation principles of instruments, terminology related to measurements and to have an adequate knowledge in measurement techniques for voltage, current, power and energy.
Introduction, History and overview of measurement system, Fundamentals of Measurement system, Static and Dynamic Characteristics of measurement systems: Systematic Characteristics, Generalized model, Transfer function, Techniques for dynamic compensation, Accuracy of measurement systems in steady state: Measurement error, Error probability function, Error reduction techniques, Reliability, Choice and Economics of measurement systems. Loading effects due to shunt connected and series connected instruments, calibration curve, Testing & calibration of instruments.
Digital Voltmeter, Ammeter, Multimeter and Wattmeter.
Measurement of low resistance using Kelvin’s Double bridge
Measurement of medium resistance using Wheatstone’s bridge
Measurement of high resistance by loss of charge method
Measurement of Insulation resistance using Megger
Measurement of earth resistance by fall of potential method and verification by using earth tester
Measurement of power in a single phase ac circuit by 3 voltmeter/ 3 Ammeter method
Calibration of a dynamometer type of wattmeter with respect to a standard/Sub Standard wattmeter
Calibration of single phase digital/ Electronic type energy meter.
Calibration of a dynamometer type of wattmeter by Phantom Loading method.
Measurements using Instrument Transformers.
Study of various types of Indicating Instruments.
Measurement of Power in three phase circuit by one, two & three wattmeters.
After successful completion of course, Students are expected to possess an in-depth understanding and Knowledge of the concepts and principles of measurement of electrical and non electrical viz. physical quantities and instruments.
Evaluation will be continuous an integral part of the class as well through external assessment. Laboratory assessment will be based on external assessment, assignments, presentations, and interview of each candidate.
A.K. Sawhney; ‘A course in Electrical & Electronic Measurements & Instrumentation’; Dhanpat Rai & co(p) Ltd ,New Delhi
G. K. Banerjee,’ Electrical and Electronic Measurements’. PHI Learning Pvt.Ltd.
R. B. Northrop,’ Introduction to Instrumentation and Measurement’; CRC press Taylor & Francis
Vijay Singh;’ Fundamentals of Electrical & Electronic Measurements’, New Age International Publishers.
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Network Analysis
This Course introduces examination of electrical & electronic circuit analysis & synthesis tools & techniques such as the Laplace transform, nodal analysis & two port network theory.
Introduction to circuit elements R,L,C and their characteristics in terms of linearity & time dependent nature, voltage & current sources controlled & uncontrolled sources KCL and KVL analysis, Nodal & mesh analysis, analysis of magnetically coupled circuits, Transient analysis :- Transients in RL, RC&RLC Circuits, initial conditions, time constants. Steady state analysis- Concept of phasor & vector, impedance & admittance, Network topology, concept of Network graph, Tree, Tree branch & link, Incidence matrix, cut set and tie set matrices, dual networks, Dot convention, coupling co- efficient, tuned circuits, Series & parallel resonance.
Network Theorems for AC & DC circuits- Thevenins & Norton’s, Superpositions, Reciprocity, Compensation, Substitution, Maximum power transfer, and Millman’s theorem, Tellegen’s theorem, problems with dependent & independent sources.
Frequency domain analysis – Laplace transform solution of Integro-differential equations, transform of waveform synthesized with step ramp, Gate and sinusoidal functions, Initial & final value theorem, Network Theorems in transform domain
Concept of signal spectra, Fourier series co-efficient of a periodic waveform, symmetries as related to Fourier coefficients, Trigonometric & Exponential form of Fourier series.
Network function & Two port networks – concept of complex frequency, Network & Transfer functions for one port & two ports, poles and zeros, Necessary condition for driving point & transfer function. Two port parameters – Z, Y, ABCD, Hybrid parameters, their inverse & image parameters, relationship between parameters, Interconnection of two ports networks, Terminated two port network.
To Verify Thevenin Theorem.
To Verify Superposition Theorem.
To Verify Reciprocity Theorem.
To Verify Maximum Power Transfer Theorem.
To Verify Millman’s Theorem.
To Determine Open Circuit parameters of a Two Port Network and to Determine Short Circuit
parameters of a Two Port Network.
To Determine A,B, C, D parameters of a Two Port Network
To Determine h parameters of a Two Port Network
To Find Frequency Response of RLC Series Circuit.
To Find Frequency Response of RLC parallel Circuit.
Student after successful completion of course must be able to apply the Thévenin, Norton, nodal and mesh analysis to express complex circuits in their simpler equivalent forms and to apply linearity and superposition concepts to analyze RL, RC, and RLC circuits in time and frequency domains and also to analyze resonant circuits both in time and frequency domains.
Evaluation will be continuous an integral part of the class as well through external assessment. Laboratory assessment will be based on external assessment, assignments, presentations, and interview of each candidate.
M.E. Van Valkenburg, Network Analysis,Pearson
William H Hayt. & Jack E. Kemmerly, Steven M Durbin; Engineering Circuit Analysis;McGrawHill
Richard C Dorf, James A Svoboda, Introduction to Electric Circuits, Wiley India, 2015
Charles K. Alexander & Matthew N.O. Sadiku: Electrical Circuits; McGrawHill
J David Irwin, Robert M Nelms, Engineering Circuit Analysis, Wiley India,2015
Robert L Boylestad, introductory circuit analysis, Pearson,2016
M S Sukhija, T K Nagsarkar; Circuits and Networks, Oxford University Press, 2015
Samarajit Ghosh, Network Theory Analysis and Synthesis
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Analog Electronics
The primary objective of this course is to develop an in-depth understanding of the design principles and applications of integrated analog circuits.
Design & measure the frequency response of an RC coupled amplifier using discrete components.
Design a two stage RC coupled amplifier and determine the effect of cascading on gain and bandwidth.
Study the effect of voltage series, current series, voltage shunt and current shunt feedback on amplifier using discrete components.
Design & realize inverting, non‐inverting and buffer amplifier using 741 op‐amps.
Verify the operation of a differentiator circuit using op amp IC 741 and show that it acts as a high pass filter.
Verify the operation of a integrator circuit using op amp 741 and show that it acts as a low pass filter.
Design & Verify the operation of adder and subtractor circuit using op amp 741.
Plot frequency response of AC coupled amplifier using op amp 741 and study the effect of negative feedback on the bandwidth and gain of the amplifier.
Study of IC 555 as astable and monostable multivibrator.
Design & realize using op amp 741, wein‐bridge oscillator
After successful completion of course, Students are expected to able in applying theory and realize analog filter circuits, Understand the circuit operation of the 555 timer IC and regulator IC and identifying the faulty components within a circuit.
Evaluation will be continuous an integral part of the class as well through external assessment. Laboratory assessment will be based on external assessment, assignments, presentations, and interview of each candidate.
Robert L Boylestad, Louis Nashelsky; Electronic Devices and Circuits; Pearson
Jacob Millman, Cristos C Halkias, Satyabrata Jit; Electronic Devices and Circuits; McGraw- Hill
Anil K Maini, Electronic Devices and Circuits, Wiley
S Salivahanan, N Suresh Kumar; Electronic Devices and Circuits; McGraw- Hill
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Signals and Systems
This course introduces students about the signals and systems mathematically and understands how to perform mathematical operations on them.
Student after successful completion of course must possess an Understanding of various signals and systems properties and be able to identify whether a given system exhibits these properties and its implication for practical systems.
Evaluation will be continuous an integral part of the class as well through external assessment.
Alan V. Oppenheim, Alan S. Willsky, S Hamid Nawab, ‘Signals and Systems’, 2nd edition 2015 Pearson New International Edition
A. Anand Kumar, Signals and Systems, PHI, III edition, 2015
Mahmood Nahvi, Signals and Systems, McGraw Hill
Simon Haykins and Barry Van Veen, Signals and Systems, Wiley India
A. Nagoor Kani; ‘Signals and Systems’ McGraw Hill
Robert A. Gabel and Richard A.Roberts, Signals & Linear Systems, Wiley.
Rodger E. Ziemer, William H. Tranter, D. Ronald Fannin. Signals & systems, Pearson Education.
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Communication Skills
Introduction: Communication, definition and role of communication, Process of communication, Importance of professional communication, Levels of communication, Types of communication, Challenges in communication. Non –verbal communication – Body language, personal appearance, posture, gesture and hand movement, eye contact, facial expressions, paralinguistic features - proxemics, haptics, chronemics. Oral presentations. Case studies.
Business Communication, Mc Graw Hill Education, Matthukutty M. Monippally.
Effective Business Communication , Mc Graw Hill Education, Neera Jain, Shoma Mukherji.
Technical Communication , Cengage , P. Subba Rao, B. Anita Kumar, C. Hima Bindu.
Business Correspondence & Report Writing , Mc graw Hills. , R.C. Sharma & Krishna Mohan .
Technical Communication – Principles & Practice , Oxford , Meenakshi Raman.
Business Communication- Mc graw Hills , Peter Cordom.
Communication Skills , Oxford , Sanjay Kumar & Pushpa TMH.
Effective Technical Communication , M. Ashraf Rizvi ,Mc Graw Hill Education.
Language Lab II
Module 1 : Reading comprehension Module 2 : Role plays
Module 3 : Debate
Module 4 : Group discussion Module 5 : Resume writing Module 6 : Interview skills Module 7 : Body language Module 8 : Oral presentations Module 7 : Body language Module 8 : Oral presentations
=======Choice Based Credit System
Electrical & Electronics Engineering, III-Semester (Mathematics-III)
Integral Transforms:
Erwin Kreyszig: Advanced Engineering Mathematics, Wiley India.
H C Taneja: Advanced Engineering Mathematics, I.K. International Publishing House Pvt. Ltd.
C B Gupta & S R Singh : Engineering Mathematics , Mc Graw Hill Education.
S S Sastri: Engineering Mathematics, PHI
Ramana: Advance Engg. Mathematics, TMH New Delhi
Engineering Mathematics By Samnta Pal and Bhutia, Oxford Publication
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Electrical Measurements and Instrumentation
The primary objective of the course is to introduce operation principles of instruments, terminology related to measurements and to have an adequate knowledge in measurement techniques for voltage, current, power and energy.
Introduction, History and overview of measurement system, Fundamentals of Measurement system, Static and Dynamic Characteristics of measurement systems: Systematic Characteristics, Generalized model, Transfer function, Techniques for dynamic compensation, Accuracy of measurement systems in steady state: Measurement error, Error probability function, Error reduction techniques, Reliability, Choice and Economics of measurement systems. Loading effects due to shunt connected and series connected instruments, calibration curve, Testing & calibration of instruments.
Digital Voltmeter, Ammeter, Multimeter and Wattmeter.
Measurement of low resistance using Kelvin’s Double bridge
Measurement of medium resistance using Wheatstone’s bridge
Measurement of high resistance by loss of charge method
Measurement of Insulation resistance using Megger
Measurement of earth resistance by fall of potential method and verification by using earth tester
Measurement of power in a single phase ac circuit by 3 voltmeter/ 3 Ammeter method
Calibration of a dynamometer type of wattmeter with respect to a standard/Sub Standard wattmeter
Calibration of single phase digital/ Electronic type energy meter.
Calibration of a dynamometer type of wattmeter by Phantom Loading method.
Measurements using Instrument Transformers.
Study of various types of Indicating Instruments.
Measurement of Power in three phase circuit by one, two & three wattmeters.
After successful completion of course, Students are expected to possess an in-depth understanding and Knowledge of the concepts and principles of measurement of electrical and non electrical viz. physical quantities and instruments.
Evaluation will be continuous an integral part of the class as well through external assessment. Laboratory assessment will be based on external assessment, assignments, presentations, and interview of each candidate.
A.K. Sawhney; ‘A course in Electrical & Electronic Measurements & Instrumentation’; Dhanpat Rai & co(p) Ltd ,New Delhi
G. K. Banerjee,’ Electrical and Electronic Measurements’. PHI Learning Pvt.Ltd.
R. B. Northrop,’ Introduction to Instrumentation and Measurement’; CRC press Taylor & Francis
Vijay Singh;’ Fundamentals of Electrical & Electronic Measurements’, New Age International Publishers.
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Network Analysis
This Course introduces examination of electrical & electronic circuit analysis & synthesis tools & techniques such as the Laplace transform, nodal analysis & two port network theory.
Introduction to circuit elements R,L,C and their characteristics in terms of linearity & time dependent nature, voltage & current sources controlled & uncontrolled sources KCL and KVL analysis, Nodal & mesh analysis, analysis of magnetically coupled circuits, Transient analysis :- Transients in RL, RC&RLC Circuits, initial conditions, time constants. Steady state analysis- Concept of phasor & vector, impedance & admittance, Network topology, concept of Network graph, Tree, Tree branch & link, Incidence matrix, cut set and tie set matrices, dual networks, Dot convention, coupling co- efficient, tuned circuits, Series & parallel resonance.
Network Theorems for AC & DC circuits- Thevenins & Norton’s, Superpositions, Reciprocity, Compensation, Substitution, Maximum power transfer, and Millman’s theorem, Tellegen’s theorem, problems with dependent & independent sources.
Frequency domain analysis – Laplace transform solution of Integro-differential equations, transform of waveform synthesized with step ramp, Gate and sinusoidal functions, Initial & final value theorem, Network Theorems in transform domain
Concept of signal spectra, Fourier series co-efficient of a periodic waveform, symmetries as related to Fourier coefficients, Trigonometric & Exponential form of Fourier series.
Network function & Two port networks – concept of complex frequency, Network & Transfer functions for one port & two ports, poles and zeros, Necessary condition for driving point & transfer function. Two port parameters – Z, Y, ABCD, Hybrid parameters, their inverse & image parameters, relationship between parameters, Interconnection of two ports networks, Terminated two port network.
To Verify Thevenin Theorem.
To Verify Superposition Theorem.
To Verify Reciprocity Theorem.
To Verify Maximum Power Transfer Theorem.
To Verify Millman’s Theorem.
To Determine Open Circuit parameters of a Two Port Network and to Determine Short Circuit
parameters of a Two Port Network.
To Determine A,B, C, D parameters of a Two Port Network
To Determine h parameters of a Two Port Network
To Find Frequency Response of RLC Series Circuit.
To Find Frequency Response of RLC parallel Circuit.
Student after successful completion of course must be able to apply the Thévenin, Norton, nodal and mesh analysis to express complex circuits in their simpler equivalent forms and to apply linearity and superposition concepts to analyze RL, RC, and RLC circuits in time and frequency domains and also to analyze resonant circuits both in time and frequency domains.
Evaluation will be continuous an integral part of the class as well through external assessment. Laboratory assessment will be based on external assessment, assignments, presentations, and interview of each candidate.
M.E. Van Valkenburg, Network Analysis,Pearson
William H Hayt. & Jack E. Kemmerly, Steven M Durbin; Engineering Circuit Analysis;McGrawHill
Richard C Dorf, James A Svoboda, Introduction to Electric Circuits, Wiley India, 2015
Charles K. Alexander & Matthew N.O. Sadiku: Electrical Circuits; McGrawHill
J David Irwin, Robert M Nelms, Engineering Circuit Analysis, Wiley India,2015
Robert L Boylestad, introductory circuit analysis, Pearson,2016
M S Sukhija, T K Nagsarkar; Circuits and Networks, Oxford University Press, 2015
Samarajit Ghosh, Network Theory Analysis and Synthesis
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Analog Electronics
The primary objective of this course is to develop an in-depth understanding of the design principles and applications of integrated analog circuits.
Design & measure the frequency response of an RC coupled amplifier using discrete components.
Design a two stage RC coupled amplifier and determine the effect of cascading on gain and bandwidth.
Study the effect of voltage series, current series, voltage shunt and current shunt feedback on amplifier using discrete components.
Design & realize inverting, non‐inverting and buffer amplifier using 741 op‐amps.
Verify the operation of a differentiator circuit using op amp IC 741 and show that it acts as a high pass filter.
Verify the operation of a integrator circuit using op amp 741 and show that it acts as a low pass filter.
Design & Verify the operation of adder and subtractor circuit using op amp 741.
Plot frequency response of AC coupled amplifier using op amp 741 and study the effect of negative feedback on the bandwidth and gain of the amplifier.
Study of IC 555 as astable and monostable multivibrator.
Design & realize using op amp 741, wein‐bridge oscillator
After successful completion of course, Students are expected to able in applying theory and realize analog filter circuits, Understand the circuit operation of the 555 timer IC and regulator IC and identifying the faulty components within a circuit.
Evaluation will be continuous an integral part of the class as well through external assessment. Laboratory assessment will be based on external assessment, assignments, presentations, and interview of each candidate.
Robert L Boylestad, Louis Nashelsky; Electronic Devices and Circuits; Pearson
Jacob Millman, Cristos C Halkias, Satyabrata Jit; Electronic Devices and Circuits; McGraw- Hill
Anil K Maini, Electronic Devices and Circuits, Wiley
S Salivahanan, N Suresh Kumar; Electronic Devices and Circuits; McGraw- Hill
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Signals and Systems
This course introduces students about the signals and systems mathematically and understands how to perform mathematical operations on them.
Student after successful completion of course must possess an Understanding of various signals and systems properties and be able to identify whether a given system exhibits these properties and its implication for practical systems.
Evaluation will be continuous an integral part of the class as well through external assessment.
Alan V. Oppenheim, Alan S. Willsky, S Hamid Nawab, ‘Signals and Systems’, 2nd edition 2015 Pearson New International Edition
A. Anand Kumar, Signals and Systems, PHI, III edition, 2015
Mahmood Nahvi, Signals and Systems, McGraw Hill
Simon Haykins and Barry Van Veen, Signals and Systems, Wiley India
A. Nagoor Kani; ‘Signals and Systems’ McGraw Hill
Robert A. Gabel and Richard A.Roberts, Signals & Linear Systems, Wiley.
Rodger E. Ziemer, William H. Tranter, D. Ronald Fannin. Signals & systems, Pearson Education.
Choice Based Credit System
Electrical & Electronics Engineering, III-Semester
Communication Skills
Introduction: Communication, definition and role of communication, Process of communication, Importance of professional communication, Levels of communication, Types of communication, Challenges in communication. Non –verbal communication – Body language, personal appearance, posture, gesture and hand movement, eye contact, facial expressions, paralinguistic features - proxemics, haptics, chronemics. Oral presentations. Case studies.
Business Communication, Mc Graw Hill Education, Matthukutty M. Monippally.
Effective Business Communication , Mc Graw Hill Education, Neera Jain, Shoma Mukherji.
Technical Communication , Cengage , P. Subba Rao, B. Anita Kumar, C. Hima Bindu.
Business Correspondence & Report Writing , Mc graw Hills. , R.C. Sharma & Krishna Mohan .
Technical Communication – Principles & Practice , Oxford , Meenakshi Raman.
Business Communication- Mc graw Hills , Peter Cordom.
Communication Skills , Oxford , Sanjay Kumar & Pushpa TMH.
Effective Technical Communication , M. Ashraf Rizvi ,Mc Graw Hill Education.
Language Lab II
Module 1 : Reading comprehension Module 2 : Role plays
Module 3 : Debate
Module 4 : Group discussion Module 5 : Resume writing Module 6 : Interview skills Module 7 : Body language Module 8 : Oral presentations Module 7 : Body language Module 8 : Oral presentations
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