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Showing posts with label EE 4th (IV) Semester syllabus. Show all posts
Showing posts with label EE 4th (IV) Semester syllabus. Show all posts
EE 4th sem syllabus RGTU/RGPV Electrical Engineering  EE 4th sem syllabus

EE 4th sem syllabus RGTU/RGPV Electrical Engineering EE 4th sem syllabus

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 Rajiv Gandhi Technological University, Bhopal (MP)
B.E. Electrical Engineering
(EE) Syllabus
RGPV RGTU FOURTH- IV SEMESTER Syllabus

RGTU/RGPV Electrical Engineering EE 4th Semester Syllabus
EE-401 Electromagnetic Theory (EMT) Syllabus

RGTU/RGPV Electrical Engineering EE 4th Semester Syllabus
EE-402 Electrical Engineering Materials (EEM) Syllabus

RGTU/RGPV Electrical Engineering EE 4th Semester Syllabus
EE-403 Power systems Syllabus

RGTU/RGPV Electrical Engineering EE 4th Semester Syllabus
EE-404 Electro Mechanical Energy Conversion –I  Syllabus

RGTU/RGPV Electrical Engineering EE 4th Semester Syllabus
EE-405 Analog and Digital Communication (ADC) Syllabus

RGTU/RGPV Electrical Engineering EE 4th Semester Syllabus
EE 406 Dot.Net Syllabus

EE 4th sem syllabus RGTU/RGPV Electrical Engineering EE 4th sem syllabus
EE 4th sem Electro Mechanical Energy Conversion –I  syllabus RGTU/RGPV Electro Mechanical Energy Conversion –I  syllabus

EE 4th sem Electro Mechanical Energy Conversion –I syllabus RGTU/RGPV Electro Mechanical Energy Conversion –I syllabus

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Related: RGTU/RGPV Electro Mechanical Energy Conversion –I  syllabus, RGTU/RGPV Electro Mechanical Energy Conversion –I  syllabus, BE 4th semester Electro Mechanical Energy Conversion –I  Syllabus
 
EE-404 Electro Mechanical Energy Conversion –I  Syllabus
 RGTU/RGPV Electro Mechanical Energy Conversion –I  SYLLABUS
Electrical Engineering EE 4th Semester Syllabus,

Unit I Transformer: Review of single phase transformer, Phasor diagram, Equivalent circuits, voltage regulation, short circuit and open circuit tests, Back to back test and performance evaluation, parallel operation and load sharing, Tap changers effect of saturation on magnetizing current, Ferroresenance, 3-phase transformers & their connections , constructional features, winding arrangements, cooling, conservators, breathers, buckhloz relay, Scott connections, Autotransformers, Pulse and high frequency transformers.

Unit II D.C. Machines: Review of constructional features. Methods of excitation, Armature reaction,  Commutation, Interpoles & compensating winding, Power, EMF and torque equations,- Operation as generator - Self-excitation principles. Characteristics,

Unit III DC Motor: Operation of D.C. Machines as motor, characteristics. Starting, speed control including solid state controllers, Braking . Losses, Efficiency. Power flow diagram for generator & Motor,Direct testing, Swinburne’s test & Hopkinson’s Test on DC Machines,  applications of dc Machines.

Unit IV: Three phase Induction motor: Constructional details. Production of EMF, steady state analysis, equivalent circuit, Phasor diagram, power flow diagram and torque-speed & power speed characteristics, circle diagram. 

Unit V Three phase Induction motor : Starting Methods, Power factor Control. Speed control schemes including solid state. Braking. Effect of  space/time harmonics and analysis. Crawling & Cogging, Double cage & Deep bar Indication Motor  Testing,  Losses and Efficiency, effect of unbalanced supply, Induction generators.

RGTU/RGPV Electro Mechanical Energy Conversion –I References:
1. Nagrath and Kothari; Electrical Machines; TMH
2. Langs dorf; A.C. Machines.
3. Dr.P.S.Bimbhra; Electrical Machines; Khanna Publisher
4. Ashfaq Hussain; Electrical Machines; Dhanpat Rai Publication.
5. M. G. Say; Alternating Current Machines’, (5th Ed.) ELBS, 1986.
6. M.G.Say and E.O.Taylor; Direct Current Machines Second Ed., ELBS, 1985.
7. V.Del Toro; Electrical Machines & Power Systems, 1985, Prentice-Hall, Inc., Englewood Cliffs.
8. V.Del Toro; Electromechanical Devices for Energy Conversion & Control Systems, PHI Pvt. Ltd.

RGTU/RGPV Electro Mechanical Energy Conversion –I  List of Experiments (Expandable):
1. To perform open circuit and short circuit test on 1-phase and 3-phase transformer and determine its equivalent circuit parameters.
2. To perform open circuit and short circuit test on 1-phase and 3-phase transformer and determine its efficiency and regulation at.
  • i  Full load at unity power factor.
  • ii Full load at zero power factor lead and lag.
  • iii Half the full load at 0.8 power factor lead and lag.
3. Perform Sumpner’s test on 2 Single phase Transformers.
4. To perform the parallel operation of two, 1-phase transformer and observe load sharing.
5. To perform the No load and block rotor test of 3-phase induction motor and to determine its equivalent circuit parameters.
6. To perform the No load and block rotor test of 3-phase induction motor to draw the circle diagram.
7. To perform the load test on 3-phase induction motor and draw its performance characteristic
8. Swinburn’s test on D.C. motor & determine its efficiency.
9. To perform  speed control of D.C. motor.
10. To plot OCC on a separately excited D.C. Generator.
11. Perform load test on D.C. Generator. 
EE 4th sem Power systems syllabus RGTU/RGPV Power systems syllabus

EE 4th sem Power systems syllabus RGTU/RGPV Power systems syllabus

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Related: RGTU/RGPV Power systems syllabus, EMT syllabus, EE Power systems syllabus, RGTU/RGPV Power systems syllabus, BE 4th semester Power systems Syllabus
 
RGTU/RGPV EE-403 Power systems Syllabus
 RGTU/RGPV Power systems SYLLABUS
Electrical Engineering EE 4th Semester Syllabus,

Unit I Transmission Systems: Various system of transmission & their comparison, HVDC transmission Converter, inverter, filters & substation layout. Voltage and Reactive Power control.

Unit II Distribution Systems: Primary and secondary distribution systems, concentrated  & uniformly distributed loads on distributors fed at one and both ends, ring distribution, sub mains and tapered mains, voltage drop and power loss calculations, voltage regulators, Feeders Kelvin’s law and modified Kelvin’s law for feeder conductor size and its limitations.

Unit III Overhead Transmission Lines: Types of Conductors, Line Parameters: calculation of inductance and capacitance of single and double circuit transmission lines, three phase lines with stranded and bundle conductors, Generalized ABCD constants and equivalent circuits of short, medium & long lines. Line Performance: circle diagram, regulation and efficiency of short, medium and long lines, Series and shunt compensation, FACTS.

Unit IV Overhead Line Insulators:  Types, string efficiency, grading ring, preventive maintenance.   Mechanical Design of Transmission Lines: Different types of tower, sag-tension calculations, sag-template, string charts, vibration dampers, line supports, spacing of conductors and grounds. Corona-corona losses, radio & audio noise, transmission line - communication line interference

Unit V Cables: Classification, Construction and characteristic of different types. Insulation resistance and capacitance, grading (capacitance and inter sheath), laying, jointing and splicing of cables. phenomenon of dielectric losses, dielectric stress and sheath loss in cables.

RGTU/RGPV Power systems References:
1. Nagrath IJ and Kothari DP; “Power System Engineering”, Tata McGraw Hill 
2. John S. Grainger and W. D. Stevenson Jr.,” Power System Analysis”, McGraw Hill.
3. Deshpande MV; “Electric Power System Design”, TMH.
4. Central Electricity Generating Board; “Modem Power System Practice”, Vol 1-8, Pergamon Oxfd
5. James J. Burke,” Power Distribution Engineering: Fundamentals & Applications”; Marcel Dekker 
6. Westinghouse Electric Corp; Electric Transmission & Distribution Reference Book; East Pittsbrg
7. Wadhwa CL; ” Electric Power Systems”; Wiley Eastern Limited.
8. Ashfaq Hussain; ”Electrical Power System
9. Gupta BR; ”Power System Analysis and Design”
10. Ray “ Electrical Power System:Concepts, Theory and practice”, PHI

RGTU/RGPV Power systems List of Experiments (Expandable):
 1 Electrical design of transmission line.
2 Mechanical design of transmission line.
3 Drawing of Tower structure.
4 Drawing of insulators
EE 4th sem Electrical Engineering Materials EEM syllabus EE 402

EE 4th sem Electrical Engineering Materials EEM syllabus EE 402

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Related: Electrical Engineering Materials syllabus, EMT syllabus, EE EEM  syllabus, 4th semester EEM  syllabus, BE 4th semester Electrical Engineering Materials Syllabus
 
EE-402 Electrical Engineering Materials (EEM) Syllabus
 RGTU/RGPV Electrical Engineering Materials (EEM) SYLLABUS
Electrical Engineering EE 4th Semester Syllabus,

Unit I Conducting Material: Classification and main properties, High resistivity alloy: Constant Mangann, Nichrome, Electrochemical, properties of copper, Aluminum, steel tungsten, Molybdenum, Platinum, Tantalum, Niobium, Mercurry, Nickel, Titanum, Carbon, Lead, thermal, Bitmetals, thermocouple, materials, specific resistance, conductance, variation of resistance with temperature, super conductors.

Unit II Semi Conductor Materials: General conception, variation of electrical conductivity, Elements having semiconductor properties, general application, hall effect, energy levels, conduction in semi-conductors, Intrinsic conduction, impurity conduction, P and N type impurities, electrical change, Neutrality, Drift, Mobility current flow in semi conductors P-N junction formation by alloying, Elasing (forward and reverse) of P-n junction, Reverse separation current, Zener effect, Junction, capacitance, hall defects and hall coeffiecient.

Unit III Magnetic Materials: Details of magnetic materials, reduction between B.H. and µ, soft and hard magnetic materials. Di-magnetic,  Para magnetic and Ferromagnetic materials, electrical sheet steel, cast iron. Permanent magnetic materials.
Dynamic and static hysteresis loop. Hysterisis loss, eddy current loss, Magnetisation, magnetic susceptibility, coercive force, core temperature, rectangular hysteresia loop, Magnet rest square loop core materials, iron silicon, Iron alloys.

Unit IV Insulating Materials: General electrical mechanical and chemical properties of insulating material, Electrical characteristics volume and surface resistivity complex permitivity loss, and dielectric loss, equivalent circuits of an imperfect dielectric polarization and polarisability classification of dielectric.

Unit V Mechanical Properties: Classification insulating materials on the basis of temperature rise. General properties of transformer oil, commonly used varnishes, solidifying insulating materials, resins, bituminous waxes, drying oils, Fibrous insulating materials, wood, paper and cardboard, insulating textiles, varnished adhesive tapes, inorganic fibrous material and other insulating materials, such as mica, ceramic, bakelite, ebonite, glass, PVC, rubber, other plastic molded materials.

Electrical Engineering Materials EEM syllabus References:
1. TTTI Madras; Electrical Engineering Materials; TMH.
2. Electrical Engineering Material s & Devices; John Allison ;TMH
3. Materials for Electrical Engineering: B.M. Tareev
4. Anderson; Di-Electrics : 
5. Kortisky; Electrical Engineering Materials: 
6. Indulkar and S. Thruvengadem; Electrical Engineering Materials; S. Chand
7. Dekkor AK; Electrical Engineering Materials; PHI.
EE 4th sem Electromagnetic Theory syllabus EMT syllabus EE 401

EE 4th sem Electromagnetic Theory syllabus EMT syllabus EE 401

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Related: Electromagnetic Theory syllabus, EMT syllabus, EE EMT syllabus, 4th semester EMT syllabus, BE 4th semester EMT Syllabus
 
EE-401 Electromagnetic Theory (EMT) Syllabus
 RGTU/RGPV Electromagnetic Theory (EMT) SYLLABUS
Electrical Engineering EE 4th Semester Syllabus,

Unit I Cartesian, cylindrical & spherical co-ordinate systems, scalar & vector fields, gradient, divergence & curl of a vector field, Divergence theorem & Stokes’s theorem, concept of vectors. Electrostatic Fields – Coulomb’s law, electric field intensity due to different charge distribution viz. line charge, sheet charge, Field due to continuous volume – electric potential, properties of potential function, potential gradient equipotential surfaces, line of force, Gauss law, applications of Gauss law, Gauss law in point form, method of images.

Unit II Laplace’s & Poisson’s equations, solution of Laplace’s equation, Electric dipole, dipole moment, potential & electric field intensity due to dipole, Behavior of conductors in an electric field. Conductor & insulator, electric field inside a dielectric, polarization, Boundary value conditions for electric Field, Capacitance & Capacitances of various types of capacitors, Energy stored and energy density in static electric field, Current density, conduction & convection current density ohms law in point form, equation of continuity.

Unit III Static Magnetic Field, Biot-Savart’s law, Magnetic Field intensity due to straight current carrying filament, circular, square and solenoidal current carrying wire, Relationship between magnetic flux, flux density & magnetic Field intensity; Ampere’s circuital law and its applications, magnetic Field intensity due to infinite sheet and various other configurations, Ampere’s circuital law in point form, Magnetic force, moving charge in a magnetic field, Lorentz Force on straight and long current carrying conductors in magnetic field, force between two long & parallel current carrying conductors. Magnetic dipole & dipole moment, a differential current loop as dipole, torque on a current carrying loop in magnetic field, Magnetic Boundary conditions.

Unit IV Scalar magnetic potential and its limitations, Vector magnetic potential and its properties, vector magnetic potential due to different simple configurations; Self and Mutual inductances, determination of self & mutual inductances, self inductance of solenoid, toroid coils, mutual inductance between a straight long wire & a square loop. Energy stored in magnetic Field & energy density, Faraday’s Law, transformer & motional EMFs, Displacement current, Maxwell’s equations as Generalization of circuit equations, Maxwell’s equation in free space, Maxwell’s equation for harmonically varying Field, static and steady fields, Maxwell’s equations in differential & integral form.

Unit V Electro Magnetic Waves : Uniform plane wave in time domain in free space, Sinusoidally time varying uniform plane wave in free space, Wave equation and solution for material medium, Uniform plane wave in dielectrics and conductors, Pointing  Vector theorem, instantaneous, average and complex poynting vector, power loss in a plane conductor, energy storage, Polarization of waves, Reflection by conductors and dielectric – Normal &  Oblique incidence, Reflection at surface of a conducting medium, surface impedance, transmission line analogy. 
Electromagnetic Theory syllabus EMT References:
1. Mathew N.O Sadiku; Elements of Electromagnetic; Oxford.
2. P.V. Gupta; Electromagnetic Fields; Dhanpat Rai.
3. N.N. Rao; Element of Engineering Electromagnetic; PHI.
4. William H. Hayt; Engineering Electromagnetic; TMH.
5. John D. Kraus; Electromagnetic; TMH.
6. Jordan Balmian; Electromagnetic wave & Radiating System; PHI.
7. David K. Cheng; Fields and Wave Electromagnetic; Addison Wesley.
8. S.P. Seth; Electromagnetic Field ;Dhanpat Rai & Sons

Note: Field plotting of electromagnetic systems on a PC using standard softwares. Application for low and high frequency devices. Suggested softwares, GEMINI(Infolytica), ANSYS, ANSOFT, NISA
EE 4th sem Analog and Digital Communication (ADC) Syllabus EE 405

EE 4th sem Analog and Digital Communication (ADC) Syllabus EE 405

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EE-405 Analog and Digital Communication (ADC) Syllabus
 RGTU/RGPV Analog and Digital Communication (ADC)SYLLABUS
Electrical Engineering EE 4th Semester Syllabus,

Unit-I Time domain and frequency domain representation of signal, Fourier Transform and its properties, Transform of Gate, Periodic gate, Impulse periodic impulse sine and cosine wave, Concept of energy density and power density (Parseval’s theorem), Power density of periodic gate and impulse function, impulse response of a system, convolutions, convolution with impulse function, causal and non causal system impulse response of ideal low pass filter, Correlation & Auto correlation.

Unit-II Base band signal, need of modulation, Introduction of modulations techniques,Amplitude modulation, Equation and its frequency domain representation, Bandwidth, Power distribution. AM suppressed carrier waveform equation and frequency  domain representation Generation (Balance/Chopper modulator) and synchronous detection technique, errors in synchronous detection, Introduction to SSB and VSB Transmission Angle modulation, Frequency and phase modulation equation and their relative phase and frequency deviations, modulation index frequency spectrum, NBFM and WBFM, Bandwidth comparison of modulation techniques.

Unit-III Sampling of signal, sampling theorem for low pass and Band pass signal, Pulse amplitude modulation (PAM), Time division, multiplexing (TDM). Channel Bandwidth for PAM-TDM signal Type of sampling instantaneous, Natural and flat top, Aperture effect, Introduction to pulse position and pulse duration modulations, Digital signal, Quantization, Quantization error, Pulse code modulation, signal to noise ratio, Companding, Data rate and Baud rate, Bit rate, multiplexed PCM signal, Differential PCM (DPCM), Delta Modulation (DM) and Adaptive Delta Modulation (ADM), comparison of various systems.

Unit-IV Digital modulations techniques, Generation, detection, equation and Bandwidth of amplitude shift keying (ASK) Binary Phase Shift keying (BPSK), Differential phase shift keying (DPSK), offset and non offset quadrature phase shift keying (QPSK), M-Ary PSK, Binary frequency Shift Keying (BFSK), M-Ary FSK Quadrature Amplitude modulation (QAM), MODEM, Introduction to probability of error.

Unit-V Information theory and coding- Information, entropies (Marginal and conditional), Model of a communication system, Mathematical representation of source, channel and receiver characteristics, Mutual information, channel capacity efficiency of noise free channel Binary symmetric channel (BSC) Binary erasure channel (BEC), Repetition of signal, NM symmetric Binary channel, Shannon theorem, Shanon-Hartley theorem (S/N-BW trade off)Source encoding code properties; Shanon, Fano and Huffman coding methods and their efficiency error control coding, Minimum Hamming distance, Linear Block Code, Cyclic code and convolution codes. Line Encoding: Manchester coding, RZ, NRZ coding.

Analog and Digital Communication (ADC) References:
1. Singh & Sapre, Communication System, TMH
2. Taub & shilling, Communication System, TMH
3. Hsu; Analog and digital communication(Schaum); TMH
4. B.P. Lathi, Modern Digital and analog communication system, 
5. Simon Haykins, Communication System. John Willy
6. Wayne Tomasi, Electronic Communication system. 
7. Martin S. Roden, Analog & Digital Communication System;  Discovery Press.
8. Frank R. Dungan, Electronic Communication System, Thomson/Vikas. 

Analog and Digital Communication (ADC) List of Experiments(Expandable)
1. Study of sampling process and signal reconstruction and aliasing.
2. Study of PAM PPM and PDM
3. Study of PCM transmitter and receiver.
4. Time division multiplexing (TDM) and De multiplexing
5. Study of ASK PSK and FSK transmitter and receiver.
6. Study of AM modulation and Demodulation techniques (Transmitter and Receiver) Calculate of parameters
7. Study of FM modulation and demodulation (Transmitter and Receiver) & Calculation of  parameters
8. To construct and verify pre emphasis and de-emphasis and plot the wave forms.
9. Study of super heterodyne receiver and characteristics of ratio radio receiver.
10. To construct frequency multiplier circuit and to observe the waveform
11. Study of AVC and AFC.