Search here What you want.

Showing posts with label M.Tech 1st Sem. Show all posts
Showing posts with label M.Tech 1st Sem. Show all posts
Friday, January 25

RGPV M.Tech Chemical Engineering 1st Semester (Grading System) Syllabus


                                          MECM 101 - SEPARATION PROCESSES   


Unit I 
Mechanisms of Mass Transport, steady and molecular diffusion, Equimolar counter diffusion, Diffusion as a Mass flux, Thermal Diffusion, Multicomponent gas phase system: Molar Flux in terms of effective diffusivity,Maxwells law of Diffusion, Diffusivities in solids liquids, gases. Steady state molecular diffusion in fluids at rest and in laminar flow, Unsteady State Diffusion.

Unit- II 
Mass transfer in turbulent flow- eddy diffusion and prandtl mizing length,Mass Trasfer through a phase boundry Two film theory, Penetration Theory The Film Penetration theory,Surface Renewal theory,Diffusion in Liquids. Velocity in Mass Transfer. Mass Transfer in Turbulent Flow:Renolds Analogy,Chilton Colburn Analogy

Unit - III
Boundry Layer: Introduction, Momentum Equation , The Turbulent Boundary Layer: The turbulent portion, The laminar sub layer,Boundary Layer Theory applied applied to a pipe flow: Entry Conditions,Application of the Boundary layer theory.

Unit – IV 
Principle of membranes separation process, classification characterization & preparation of membrane, membranes modulus &application ,liquid membranes and industrial application.

Unit - V
Ternary and multicomponent system fractionation theories: Multicomponent Mixture: Equilibrium Data, Feed and Product Composition, Light and Heavy key components,Calaulation of a number of plates required for a given separation, Minimum Reflux Ratio,No of Plates at total reflux, Relation bet Reflux ratio and no of plates. Brief Description about Azeotropic and Extractive distillation.
 


                     MECM 102 - ADVANCED TRANSPORT PHENOMENON     


Unit-I  
Velocity distribution in laminar flow The equations of change for isothermal flow:  creeping  flow  around a solid sphere Equations of continuity, equation of motion, the equation of mechanical energy, application of Navier-Stokes equation to solve problems like falling film, flow in a tube, shape and surface of a rotating fluid.

Unit-II 
Velocity distribution in turbulent flow, microscopic balance for isothermal system macroscopic  balance for non isothermal system.

Unit-III 
Temperature distribution in solids and in laminar flow ,  The equations of change for non- isothermal flow:Equations of energy, ,use of equations of change to set up steady state heat transferproblems ,  

Unit – IV 
Temperature distribution in turbulent flow energy transport by radiation. Temperature fluctuations  and the time smoothed  temperature . time smoothing energy equation semi empirical expression for the turbulent energy flux.

Unit-V  
Concentration distribution in solid and in laminar flow The equations of change for multi component systems: Concentration distribution in turbulent flow macroscopic balance for multicomponent system.



                                             MECM 103- REACTOR DESIGN    


Unit-I 
Models for Non-Ideal flow Reactors: Two- parameter models- Real CSTR modeled using bypass and dead space, real CSTR modeled as two CSTR interchange, testing a model and determining its parameters.

Unit-II
Catalysis and catalytic reactors: Design of reactors for gas solid reactions. Heterogeneous data analysis for reactor design; catalyst deactivation – Types of Deactivation, Moving bed Reactors, Packed Bed Catalytic Reactor, Reactors with Suspended Solid Catalyst.

Unit-III 
External diffusion effects on heterogeneous reactions- External resistance to mass Transfer: Mass transfer coefficient, mass transfer to a single particle, mass transfer limited reactions in packed beds, The Shrinking Core Model.

Unit-IV 
Introduction of Heterogeneous Reactions, Diffusion and reaction in porous catalysts- Diffusion andreaction in spherical Catalyst pellets, internal effectiveness factor, Falsified Kinetics, Overall effectiveness factor.G/L Reactions on Solid Catalyst: Trickle Beds, SlurryReactors, Fluidized Bed Reactors.

Unit-V 
Non- isothermal reactor design- energy balance, nonisothermal adiabatic , CSTR, PFR, Flow, reactors at steady state, equilibrium conversion; multiple steady states- ignition- extinction curve.

Unit-VI 
Distribution of residence times for chemical reactors- ResidenceTime Distribution (RTD) Function, Measurement of the RTD, and Characteristics of the RTD, RTD in Ideal Reactors, Zero-Parameter Models, RTD and Multiple Reactions.



                                         MECM 104- ADVANCED HEAT TRANSFER  



Unit-I 
General equation of change for energy. heat conduction equation in cylindrical coordinate, spherical coordinates. Heat conduction through a hollow cylinder. Critical thickness of insulation.

Unit-II 
Steady and unsteady state conduction is one, two and three dimensional cases. Finite difference method in steady and unsteady conduction. Two dimension steady state heat conduction in rectangular plates and semi infinite plates. Transient heat conduction in solid with finite conduction and convective resistance.

Unit-III 
Forced Convection: Laminar flow over flat plate Momentum equations of hydrodynamic boundary layer over a flat plate. Blasius solution of laminar boundary layer flows. Laminar and turbulent flow over a flat plate, turbulent flow in tube, cylinder and sphere. Analytical and semi analytical solutions.  Free convectionMomentum and energy equations for laminar free convection heat transfer on a flat plate. Equations for velocity and temperature in vertical and horizontal planes for cylinders and spheres.

Unit-IV
Radiation heat transfer concepts. Angle factor calculation. Network  method of analysis of radiation exchange. Radiation calculation through gas and vapors.

Unit - V 
Design of compact heat exchanges, Heat transfer due to boiling liquefied metal heat transfer. Heat exchanger effectiveness and number of transfer unit.  


                           MECM105 - PROCESS MODELLING AND SIMULATION   


Unit-I 
Introduction to modeling, a systematic approach to model building, classification of models.Conservation principles, thermodynamic principles of process systems.

Unit-II
Development of steady state and dynamic lumped and distributed parameter models based onfirst principles.

Unit-III 
Development of grey box models. Empirical model building. Statistical model calibration and validation. Population balance models. Examples.Solution strategies for lumped parameter models. Stiff differential equations.

Unit-IV
Solutionmethods for initial value and boundary value problems. Euler’s method. R-K methodshooting method, finite difference methods. Solving the problems using matlab library package.

Unit-V 
Solution strategies for distributed parameter models. Solving parabolic, elliptic andhyperbolic partial differential equations. Finite element and finite volume methods.

RGPV M.Tech Energy Technology 1st Semester (Grading System) Syllabus


                          MEEM 101 - Applied Mathematics & Computational Methods  



Unit 1  
Fourier & Laplace Transform, Elementary Properties and application in B.V.P., Finite Elements methods. Complex & Vector analysis, Matrices.  

Unit 2
Axiomatic Approach to Probability, Random or stochastic Variate, Mathematical Expectations. Elementary idea about probability distribution.  Sampling Distribution and confidence interval, time series, testing of hypothesis in analysis of invariance, Chi- Square Test.  

Unit 3  
Error Analysis, Principles of flow charts, Program Testing, Difference Operator, Testing of wrong and missing Data using different Techniques.  

Unit 4  
Linear Programming, Feasible Solutions, Solutions, Simplex and Revised Simplex Methods, Duality.  

Unit 5  
Difference equation, Solving Simultaneous equations using numerical methods, Solving B. V. Problems using difference techniques. Optimization techniques.



                           MEEM 102 – Power Generation, Transmission & Distribution  



Unit 1
Electrical Energy Generation, concepts, various types of generating stations and their locations. Study of Thermal, Hydel, Nuclear and Non Conventional energy generation schemes. Block diagram of various power stations- schemes and sub systems.  
Steam Power Plants: Types of power plants, steam power plant: Design Operation & Thermodynamic Analysis, steam turbine power output, Power Plant Performance Monitoring & Testing, Heat Rate, Efficiency, Optimization of Performance  

Unit 2
Steam Generators: Boiler and steam Generator construction types, Energy Balance and efficiency of steam Generator, Furnace & burners, steam Generators with fluidized based Combustion (FBC): fluidized bed types; emissions reduction in Fluidized bed furnaces, Steam turbines, Condensers, feed Water Heaters and Cooling Water systems  

Unit 3
Gas Turbine Power Plants: Air standard joule Cycle, Actual efficiency of the Gas Turbine Power Plant, Enhancing the Gas Turbine Plant Performance: increasing the compression Pressure Ratio and Turbine inlet Temperature;  

Unit 4
Hydro Power Generation, Hydro Turbine, Large medium and small hydro power station, Micro Hydel Nuclear power generation and peaceful uses of nuclear energy.  
Generation :synchronous generator, operation, power angle characteristics, and the infinite bus concept, dynamic analysis and modeling of synchronous machines, excitation systems, prime mover governing systems, automatic generation control, auxiliaries.  

Unit 5
AC transmission: over head cables, transmission line equations, regulation & transmission losses, performance estimation, reactive power compensation, flexible AC transmission, skin, proximity and Ferranti effects, corona phenomena, critical voltages and power loss. HVDC transmission.  
Distribution system: distribution system, conductor’s size, Kelvin’s law performance calculations and analysis, distribution inside industrial & commercial buildings entrance terminology, substation & feeder circuit design considerations, distribution automation.  

 

                                  MEEM 103 - Energy Sources, Policy and Planning   


Unit 1
Review of world & Indian energy situation in respect of demand, supply & resources in the historic context. Review of power development in India. Primary & secondary energy resources, their inter convertibility.  
Energy (and Power) in the country, Tariffs and subsidies. Energy Utility interface. Private sector participation in Power Generation. State role and physical properties, Energy and Development; National Energy Plan; Role of modeling in energy policy analysis.  

Unit 2
Energy demand analysis; trend analysis, econometric models; elasticity approach; input –output models; simulation /process models.  
Energy supply analysis; cost of exploration and economics of utilization of depletable and renewable resources; scarcity rent; international energy supply.

Unit 3
Energy demand supply balancing; energy economy iteration; Energy investment planning; Energy environment interaction; Energy pricing  

Unit 4
Energy Action Planning: Key elements, force field analysis, Energy policy purpose, perspective, contents, formulation, ratification, Organizing – location of energy management, top management support, managerial function, roles and responsibilities of energy manager, accountability. Motivating-motivation of employees: Information system-designing barriers, strategies; Marketing and communicating-training and planning.  
Material and Energy balance: Facility as an energy system, methods for preparing process flow, material and energy balance diagrams.  

Unit 5
Energy Monitoring and Targeting: Defining monitoring & targeting, elements of monitoring & targeting, data and information-analysis, techniques –energy consumption, production, cumulative sum of differences (CUSUM).  
     


                                              MEEM 104 – Hydro Power Generation 
  


Unit 1 
Fundamental of Hydraulic  Engineering – Water resource and its potential.
Hydrology- Hydrological cycles, hydrograph, steam flow  characteristics, flow duration curve, mass curve storage, pond age , site selection.

Unit 2
Classification of Hydropower plants- According to water flow, regulation, load, head pumped, storage plant, storage requirement  determination.

Unit 3
Small Hydropower Plants-  Site configurations,  planning  a small  hydropower  scheme, speed increasers, generators and  turbine  control.

Unit 4
Hydraulic turbine classification – Classification criteria,  turbine selection criteria, efficiency, performance characteristics,  Biological aspects, economics analysis.

Unit 5
Environmental Impacts and its mitigation-  Burdens and impacts identification, impacts in the construction phase.

       
 
                             MEEM 105 – Environment Policy, Standards & Regulations   



Unit 1
Global environmental concerns: The Scenario, The Changing Global atmosphere & common concerns. United Nations Framework Convention on Climate Change (UNFCC), Kyoto Protocol, Conference of Parties (COP), Various Clean Development Mechanism (CDM), Prototype Carbon fund (PCF), Earth Summit, Sustainable development.

Unit 2
The Global Program for protected area management, Strategies for environmental improvement plan. Organizations working in the field of energy and environment - UNEP, IPCCC, CPCB etc. Basic features of ISO 14000.

Unit 3
Water Quality: Parameters: Physical, Chemical and Bacteriological .Potable Water Standards, Waste Waster Effluent Standards. Minimal National Standards (MINAS).  

Unit 4
Environment Policies: Water Act 1974, The Air Act, 1981, Environmental (Protection) Act.-1986, M. P. State Environment Policy, Municipal Solid Waste (Management & Handling) Rules, 1998, Biomedical Waste (Management & Handling ) Rules 1998.  

RGPV M.Tech Structural Engineering 1st Semester (Grading System) Syllabus


                           MVS E– 101 Advance Mathematics and Numerical Analysis 


Unit 1 
Numerical solution of Partial Differential Equation (PDE): Numerical solution of PDE of hyperbolic, parabolic and elliptic types by finite difference method.

Unit 2 
Integral transforms: general definition, introduction to Mellin, Hankel and Fourier transforms and fast Fourier transforms, application of transforms to boundary value problems in engineering.

Unit 3 
Integral equations: Conversion of Linear Differential equation (LDE) to an integral equation (IE), conversion of boundary value problems to integral equations using Greens function, solution of Integral equation, IE of convolution type, Abels IE, Integral differential equations, IE with separable variable, solution of Fredholm Equation with separable kernels, solution of Fredholm and Volterra equations by method of successive approximations.

Unit 4 
Calculus of Variation: Functionals and their Variational, Eulers equation for function of one and two independent variables, application to engineering problems.

Unit-5 
FEM: Variational functionals, Euler Lagranges equation, Variational forms, Ritz methods, Galerkins method, descretization, finite elements method for one dimensional problems.

   

                              MVS E – 102 Strength of material and theory of elasticity  


Unit-I 
Plane Stress & Plane Strain: Plane Stress, Plane Strain, Stress and Strain at a points, Differential equations of equilibrium, constitutive relation : ansisotropic materials Linear elasticity; Stress, strain, constitutive relations; Boundary conditions, Compatibility equation, stress function.

Unit-II 
Two Dimensional Problems in Rectangular Co-ordinates: Solutions by Polynomials , Saint-Venants Principle, Determination of displacements, bending of beams, solution of two dimensional problem in Fourier series.

Unit-III 
Two Dimensional Problems in Polar Coordinates : General equations in Polar coordinates, Pure bending of curved bars, displacements for symmetrical stress distributions, bending of curved bar, stress distribution in plates with circular holes, stresses in a circular disc general solution.

Unit-IV
Analysis of stress and strain in Three Dimensions : Principal stress and strain, shearing stress and strains, elementary equation of equilibrium , compatibility conditions, problems of elasticity involving pure bending of prismatic bars.

Unit-V
Torsion of Prismatic Bars : Torsion of prismatic bars, membrane analogy, torsion of a bar of narrow rectangular cross section, torsion of rectangular bars, solution of torsional problem, torsion of rolled section, torsion of hollow shafts and thin tubes, torsion buckling torsional flexural buckling.
 

                                 
                                    MVS E – 103  Advance Structural Analysis  


Unit-1 
Matrix Method (Flexibility Method) : Force methods, Basic Concepts, evaluation of flexibility, transformation, analysis of a single member of different types, transformation of single member.

Unit-2
Applications to plane and space structures with pin joints and rigid joints, energy approach in flexibility method, effect of support displacement and transformation.

Unit-
Matrix Method (stiffness Method): Displacement methods, Basic concepts, Evaluation of stiffness coefficients, Direct stiffness method, energy approach in stiffness method. Code No. approach for global stiffness matrix, effect of support displacement and temperature.

Unit-
Symmetrical & anti-symmetrical problems, Stiffness of plane & space frames solution of problems, comparison of force and displacement methods of solution.
                                          


                                     MVS E – 104  Design of concrete structures  



Unit 1 
Earthquake and wind effects on structures, loads on structures, reinforced concrete design of flat slabs, grid floors, deep beams, design of buildings load bearing and framed structures, design of foundations, seismic analysis.

Unit 2 
Design of ground and elevated water tanks, design of bridge decks.

Unit 3 
Pre-stressed concrete: analysis and design of sections under flexure using limit state approach, anchorage zone and end block design, composite construction, introduction to statistically indeterminate pre-stressed concrete structures.

Unit 4 
Silos and bunkers, Janseens and Airys theory, rectangular bunkers with sloping bottoms and with high side walls, battery of bunkers.
             
                           

                                    MVS E – 105  Computer aided design


Unit-1
Cpp programming language: Basics of programming, loops, decisions, structures, functions, objects/ classes, arrays.

Unit-2 
Overloading, inheritance, virtual functions and pointers, object oriented programming, Turbo Cpp features and programming, structure engineering problems programming.

Unit-3 
Computer Aided drafting, 2-D and 3-D drawings, Introduction to CAD software, drawing of buildings.

Unit-4 
Introduction to computer graphics, 3-D modeling software and analysis software.

RGPV M.Tech Machine Design and Robotics 1st Semester (Grading System) Syllabus


                                        MMMD 101- Advanced Mathematics  



Unit 1 
Linear Algebra: Linear transformation, vector spaces, hash function, Hermite polynomial, Heavisite’s unit function and error function. Elementary concepts of Modular mathematics.

Unit  2
Solution of Partial Differential Equation (PDE) by separation of variable method, numerical solution of PDE (Laplace, Poisson’s, Parabolic) using finite difference methods, Elementary properties of FT, DFT, WFT, Wavelet transform, Haar transform.

Unit  3
Probability, compound probability and discrete random variable, Binomial, Normal and Poisson’s distributions, Sampling distribution, elementary concept of estimation and theory of hypothesis, recurred relations.

Unit  4  
Stochastic process, Markov process transition probability transition probability matrix, just and higher order Markov process, Application of Eigen value problems in Markov Process, Markov chain. Queuing system, transient and steady state, traffic intensity, distribution queuing system, concepts of queuing models (M/M/1: Infinity/ Infinity/ FC FS), (M/M/1: N/ Infinity/ FC FS), (M/M/S: Infinity/ Infinity/ FC FS)

Unit  5
FEM: Variational functionals, Euler Lagrange’s equation, Variational forms, Ritz method, Galerkin’s method, descretization, finite elements method for one dimensional problems.  



                              MMMD 102-  Theory of Elasticity & Plasticity 



Unit 1
UNSYMMETRICAL BENDING: Product of inertia, transfer equation, transformation of coordinate axis, principal moment of inertia, bending stresses due to unsymmetrical bending of beams of symmetrical and unsymmetrical sections, location of neutral axis, deflection of beams subject to unsymmetrical bending.

Unit 2
SHEAR CENTRE: Location of shear centre for the symmetrical sections such as channel, round and I sections. Shear centre for unsymmetrical sections such as unequal angle, Z and channel sections.

Unit 3  
CURVED BEAMS: Bending stresses in beams having initial curvature, location of neutral axis in beams having rectangular, circular, triangular, trapezoidal, I and T sections, variations of bending moment, normal and shear forces in curved beams, crane hooks and chain links, thin rings.

Unit 4
ELEMENTS OF THEORY OF ELASTICITY: Stress components, strain components, equilibrium equations, Generalized Hooks Law, compatibility equations, and stress function equations in Cartesian and Polar coordinate. Plans stress and plane strain problems: saint Venant's principal use of polynomials. Applications to various cases such as pure bending of narrow beams, bending of prismatic bars, thick cylinders. rotating discs, rotating discs of variable thickness, rotating cylinders. Stress concentration due to a small hole in strained plate.

Unit 5  
ELEMENTS OF THEORY OF PLASTICITY: Basic laws of plastic now, criterion or yield under complex stress, the Yon-Mise’s yield criterion, the Tresca and Coulomb yield criteria. Rule for plastic now, condition of plane strain, basic equations for plane strain plasticity, Mohr’s circle and physical plane.
   


                                                   MMMD 103-  Material Science  



Unit 1
Crystal Structure of Metals: General review of crystal structure of metals, Molecular structure, crystallographic notation of atomic planes, imperfections in crystals, surface imperfections.

Unit 2
Electronic Theory of Metals: Electron and Bonding. Bonds in crystals and their effect on the properties of metals, Electron structure of atoms, conductors and insulators and semi-conductors.

Unit 3
Deformation of Metals: Dislocation and slip phenomenon, work-hardening and re- crystallization, elastic deformation of metals, atomic basis of elastic behavior.  Plastic deformation of Metals, grain boundary, strain hardening. strain aging strain rate.

Unit 4
Elasticity: Thermo-elastic effect, relaxation time, measurement of damping capacity, creep phenomenon, hot and cold working of metals, theories of fracture, fatigue limit and its significance, theory of radiation heat treatment of metals.

Unit 5  
Ceramics: Composition, crystal structure, effect of structure on properties. Glass, fabrication of ceramic bodies, reinforced structure.  Polymers: Types, response to change in temperature, elasticity.  



                                               MMMD-104- Theory of Vibration   



Unit 1  
Review of single degree freedom free, damped and forced vibration isolation, Transmissibility.

Unit 2
Two degree freedom System: Free vibrations. principal modes or vibration various examples such as double pendulum, two rotor system torsional oscillations etc. Undamped forced vibrations with harmonic excitation. Principle of vibration absorbers, Undamped dynamic vibration absorber, tuning of vibration absorber, Torsional vibration absorber system.

Unit 3  
Many degrees of freedom systems: Exact analysis. Un-damped free vibrations. Influence numbers and Maxwell's reciprocal theorem, torsional vibrations of multi- rotor system, vibrations of geared systems. Continuous systems: Vibrations of strings, longitudinal vibrations of bars, torsional Vibrations of circular shafts.

Unit 4  
Many degree of freedom system Numerical Methods: Rayleigh's method, Dunkerley’s method, Stodola's method, Matrix iteration method.

Unit 5  
Nonlinear Vibration: Various Examples. Perturbation method, forced vibrations with nonlinear spring forces, Jump phenomenon. Self Excited Vibrations: Elementary idea of stable and ul1stable oscillations, self excited vibrations caused by dry friction, various examples.  



                                    MMMD-105 Computer Aided Design & Drafting   



Unit 1
Fundamentals of CAD, Automation and CAD, Product Cycle & CAD, Introduction to Computer Hardware, Design of Workstation, Graphics terminal, Operator input & output devices, CPU and secondary storage, Introduction to computer software and their applications.

Unit 2
Curve Fitting: Regression Analysis: Introduction, Linear Regression. Polynomials regression, Fitting exponentials and trigonometric functions (accompanied by their Computer Programs in FOR.TRAN OR BASIC) Interpolation: Newton's divided difference interpolation, Polynomials, Lagrange’s, interpolation, polynomials, spline, interpolation.

Unit 3
Introduction to Optimization and its Applications: Statement or an optimization problem, Classification of optimization problems, single variable' optimization, multivariable optimization with no constraints, multivariable optimization with inequality constraints, one dimensional minimization methods, elimination methods (Unrestricted Search), exhaustive search (Fibonaci method).

Unit 4
Computer Graphics: Algorithm for generation of simple drawing elements such as Line, Circle etc, Computer Aided Drafting (Auto CAD)  a) Creating Drawing: Various drawing command Line P-line Ellipse Circle Area Hatch  b) Text, Dimension, Limits, Scale, Grid, Layers, Fill, Snap. Trace, Units. Ortho,  c) Editing Drawing: Various editing commands: Move, Erase, Copy, Zoom, Pan, View, Chamfer, Break. Explode, Extend, Trim, Help. Rotate, Mirror etc.  d) Other Utilities: Block, Array, Save. Quit. Plot. P-plot  e) Advanced Features of Autocad: UCS. 3D-line. JD-objects. DXF & DXB files.  

RGPV M.Tech Digital Communication 1st Semester (Grading System) Syllabus


                                                   MEDC – 101 Advanced Mathematics    


UNIT I 
Solution of Partial Differential Equation (PDE) by separation of variable method, numerical solution of PDE (Laplace, Poisson’s, Parabola) using finite difference methods, Elementary properties of FT, DFT, WFT, Wavelet transform, Haar transform.

UNIT II 
Probability, compound probability and discrete random variable. Binomial, Normal, Poisson’s distribution. Sampling distribution, elementary concept of estimation and theory of hypothesis, recurred relations.

UNIT III 
Stochastic process, Markov process transition probability transition probability matrix, just and higher order Markov process, Markov chain. Queuing system, transient and steady state, traffic intensity, distribution queuing system, concepts of queuing models (M/M/1: Infinity/ Infinity/ FC FS), (M/M/1: N/ Infinity/ FC FS), (M/M/S: Infinity/ Infinity/ FC FS)

UNIT IV 
Operations of fuzzy sets, fuzzy arithmetic & relations, fuzzy relation equations, fuzzy logics. MATLAB introduction, programming in MATLAB scripts, functions and their application.

UNIT V 
Introduction and definition of reliability, derivation of reliability functions, Failure rate, Hazard rate, mean time t future & their relations, concepts of fault tolerant analysis, Elementary idea about decision theory and goal programming.

 

                            MEDC – 102 MICRO CONTROLLER SYSTEM DESIGN  



Unit 1 
Review of 8-Bit and 16-bit microprocessor, support chips and interfacing techniques, single chip micro-computers, architecture, program and data memory, ports, input Output interfacing and programming,

Unit 2 
Single chip micro controllers- INTEL 8051/ 8751, MOTOROLA 68HC0/68HC11 architecture, instruction set and programming, Memory mapping, addressing modes, Registers, expanded modes. Interrupt handling timing and serial I / O.

Unit 3 
Software development Modular approach, integrated software development environment, Object oriented interfacing and programming, Recursion and debugging.

Unit 4 
ATMEL 89C51 / 52 and PIC micro-Controllers- Case studies. Design and application of Micro-Controller in Data acquisition, Embedded controllers, Process control etc.

Unit 5 
DSP Processor architecture and sample design using TI – DSP.

 

                                        MEDC – 103 DSP APPLICATION  



Unit 1
Review of Discrete time signals: sequences, representation. Discrete time systems: linear, time in variant, LTI systems, properties, and constant coefficients difference equations. Frequency Domain representation of discrete time signals and systems

Unit 2 
Review of Z Transform – Properties, ROC, Stability, Causality, Criterion. Inverse Z Transform, Recursive and Non Recursive systems, Realization of discrete time system

Unit 3 
DFT: Properties, Linear and Circular convolution, Discrete Cosine Transform, Relationship between DFT and DCT. Computation of DFT: FFT/Decimation in Time and Decimation in Frequency

Unit 4 
FIR and IIR systems: Basic structure of FIR and IIR, Bilinear Transformation, Design of Discrete time IIR filter-Butterworth , Chebychev , Inverse Chebychev , Elliptic etc. Design of FIR filters by windowing – Rectangular, Bartlett, Hann, Hamming, Kaiser, Window filter, Design method relationship of Kaiser to other window. Application of MATLAB for Design of Digital filter. Effect of Finite register length in filter Design

Unit 5 
Discrete time Random signals: Discrete time random process, Averages, Spectrum Representation of finite energy signals, response of linear systems to random signals. power spectrum estimation: Basic principals of spectrum estimation, estimate of auto con variance, power spectrum ,cross con variance and cross spectrum. Advance signal processing technique and transforms: multi rate signal processing- down sampling/up sampling, introduction to discrete Hilberts Transform, Wavelet Transform, Haar Transform etc.


     
                                            MEDC – 104 VLSI DESIGN  



Unit 1 
Introduction: Basic concept of integrated circuits and manufacturing, Design fundamental for digital CMOS circuits, Design Abstraction and circuit Validation.

Unit 2
CMOS circuit and Logic Design: CMOS Logic gate design, Basic Physical design, CMOS Logic structure, I /O Structure, Power and Delay consideration

Unit 3 
System Design: CMOS Chip Design, standard cells, Programmable gate array, Design Capture, Simulation and Verification.

Unit 4 
Subsystem Design: Data Operation, CMOS Sub System Design, Memory and Control Strategies, PLA and ROM Implementation

Unit 5 
CAD system and Algorithms: CAD systems, Layout Analysis, Placement and Routing Algorithms, Timing Analysis, Optimization, Logic Synthesis and Simulation, Testability Issues.

         
 
                        MEDC – 105 DATA COMMUNICATION AND COMPUTER NETWORK  



Unit 1 
Review of synchronous and asynchronous transmission, circuit switching, message switching, packet switching and their comparison, various detector techniques, parity check, vertical and longitudinal redundancy check and CRC code and their error detecting capabilities. RS-232 C and X.21 standards, modern operation, null model.

Unit 2 
Data link control, point-to-point and multi-point links, flow control, sliding window protocol, various ARQ technique for eroor control and their comparison and performance analysis, HDLC as a bit oriented link control protocol.

Unit 3 
Communication Network:- Virtual circuit and datagram, routing algorithm, dijkstera and Bellman ford least cost, algorithm, various routing protocol, congestion control technique, deadlock and its avoidance.

Unit 4 
Local Area network:- Various topologies and medium access control schemes such as contention, polling, token parsing and performance analysis, various IEEE standards for LAN, UBS LANs, FDDI.

Unit 5 
Introduction to WAN packet switching technologies such as ATM and Frame relay. Introduction to TCP / IP protocols.

RGPV M.Tech Nano Technology 1st Semester (Grading System) Syllabus


                               MNT 101 – Mathematical Methods & Programming 



UNIT I :
Theory of transforms: Fourier sine, cosine and complex transforms, transforms of derivatives, convolution theorem, Parseval’s relation, momentum representation; example from electromagnetism, Laplace transforms of simple function and derivatives, LT solution of ordinary & partial differential equation, convolution theorem.

UNIT II : 
Bessel function, Hermite, Legendre & Lagurre polynomials occurrence of special functions and applications to physical problems.

UNIT III :
Priory and posteriory probability, Bayes theorem, discrete and contineous distribution, correlation and regression analysis, theory of errors, noise power spectral density, techniques of noise reduction.

UNIT IV : 
C++ programming basics, FOR loops, WHILE loops, DO loops. IF statement, IF ELSE, ELSE IF, BREAK, CONTINUE; Function declaration, calling the function, passing arguments to function, returning values from the function, Array elements, initializing arrays, passing arrays to function. Programming for solution of quadratic equations, partial differential equations and matrices.

UNIT V : 
Mat Lab programming: symbolic & numerical calculations, graphics, 3D plots, equation solving, matrices, mathematical relations, complex numbers, simplifications, algebraic expressions, mathematical operations, inbuilt functions, differentiation, integration, series, and limits.


       
                                              MNT 102 - Synthesis of Nanomaterials 



UNIT I : 
Top-down & Bottom-up techniques: Formation of nanostructures by mechanical milling (ball milling) and mechanical attrition, Chemical vapor deposition (CVD), Physical vapour deposition (PVD) thermal and e beam evaporation, Pulsed laser ablation (PLD).

UNIT II : 
Chemical Routes for synthesis of Nanomaterials:Chemical precipitation and coprecipitation, chemical bath deposition (CBD), Sol-gel synthesis, Microemulsions or reverse micelles, Solvothermal synthesis, Thermolysis routes and spray pyrolysis,

UNIT III : 
Electrodeposition (DC and pulsed DC & AC), Electrodeposion cell in 3-electrode geometry, Procedure of multilayered thinfilm, nanowire and quantum dots electrodeposition, Electrophoresis, and their growth parameters (temperature, pH, surfactants, precursor ion concentration). Self assembly, self-assembled monolayers, directed assembly, layer by layer assembly, self organization, ordered and colloidal dispersion.

UNIT IV : 
Optical lithography: Light sources – photo mask and alignment, Resolution in projection systems – positive and negative photo resists, Electron beam lithography (Maskless lithography), Semiconductor processing. Nanolithography, Nanoimprint lithography, Dip-pen nanolithography.

UNIT V : 
Preparation of amorphous materials, metallic glass, thermal evaporation techniques such as sputtering, CVD Techniques, quenching. Glasses, theory of glass transition, glass transition temperature. Structure of disordered materials. Experimental techniques, electronic density of states. Localization phenomenon, transport, optical and dielectric properties.



                                       MNT 103 – Mechanics at Nano Scale 




UNIT I : 
Introduction to Quantum Mechanics, Uncertainty relations, Basic postulates of quantum mechanics, Wave functions, Particle in a box, hydrogen atom, linear harmonic oscillator. Schrödinger, Heisenberg & Interaction representations. Angular momention operators : eigen values & eigen vectors of L2 Lz, spin & J2 & Jz.

UNIT II : 
WKB method and their applications to study quantum structures, tunnelling through a barrier.

UNIT III : 
Degenerate perturbation theory and variational approximation, Zeeman & stark like effects.

UNIT IV : 
Time independent perturbation upto second order, time dependent perturbation theory for constant and harmonic perturbation, transition probability, and Fermi Golden rule, atoms in a radiation field, emission and absorption of radiation, selection rules.

UNIT V : 
Maxwell-Boltzmann’s statistics, Fermi-Dirac statistics and fermions, Pauli’s exclusion principle, Bose Einstien statistics, Bosons, Bose condensations.



                                         MNT 104 – Materials at Nano Scale   



Unit I : 
Single crystalline, polycrystalline and amorphous structures, Crystal structure, unit cells, crystal plane, Miller indices, classification of crystal (symmetry group classification), crystal orientation. Imperfection in solids: Grain boundaries their relation to mechanical properties, dislocations in single crystals (linear defects and screw dislocation), imperfection dependent properties of crystals.

Unit II : 
Nanocomposites, Nanopolymers, Nanoceramics, flexible nano ceramics, morphology, crystal structures, imperfections, nano phase diagrams, cemented carbides, ceramics for structural, wear and environmental applications. Composites: Composite materials, large particle and dispersion strengthened composites. Polymer matrix, metal matrix and ceramic matrix composites.

Unit III :
Equilibrium diagrams: The Phase rule, Unary diagrams. Two component systemssolid solubility, Binary diagrams, relative amount of phases, Thermal analysis, Limited solid solubility, the Binary Euctectic diagram, the peritectic diagram. Phase transitions and critical pheneomenon: Broken symmetry and ordered parameters in condensed matter.

Unit IV : 
Diffusion in Solids: Fick’s Law of diffusion. Solution to Fick’s second law. Application based on second law solution, The Kirkendall effect. Nucleation and growth; the nucleation kinetics. The growth and overall transformation kinetics. Applications: transformation in steel.

Unit V : 
Elasticity: Stress, strain, elastic and plastic deformation, tensile properties, compressive, shear and torsional deformation, hardness. Electronic and ionic conduction, electron mobility and electrical resistivity, temperature dependence and carrier conductance , electrical properties of polymers, capacitance, polarization and types, frequency dependence of dielectric constant, ferro and piezo electricity, heat capacity thermal expansion , thermal conductivity and stresses.


         
                                   MNT 105 – Characterization of Nanomaterials 


UNIT I : 
X-ray Diffraction (XRD), powder and single crystal Diffraction, X-ray fluorescence (XRF), X ray photoelectron spectroscopy (XPS), Energy Dispersive X-ray analysis (EDAX), Extended X ray absorption fine structures (EXAFS), Dispersive high pressure XRD and Diamond anvil cells (DAC).

UNIT II : 
Scanning tunneling microscopy (STM), Contact and non contact atomic force microscopy (AFM), Conductive AFM, Magnetic force microscopy (MFM), scanning tunneling spectroscopy (STS), Nano indentation.

UNIT III : 
Nuclear magnetic resonance (NMR) and Raman spectroscopy: description and analysis. Surface analysis methods: Secondary ion mass spectroscopy (SIMS), Auger electron spectroscopy, ESCA, Deep level transient spectroscopy (DLTS), Thermo gravimetric analysis (TGA), Differential scanning calorimetry (DSC).

UNIT IV : 
Spectrophotometers, UV-Vis spectrophotometers, IR spectrophotometers, Fourier Transform Infrared radiation (FTIR), photoluminescence, electroluminesce and thermoluminescence spectroscopy, Nearfield scanning optical microscopy (NSOM).

UNIT V : 
Scanning Electron Microscopy (SEM), Transmission electron microscoy (TEM), High resolution TEM Field emission SEM, Electron energy loss spectroscopy (EELS), Electron probe micro analyzer (EPMA).

 
© Copyright 2022Rajiv Gandhi Proudyogiki Vishwavidyalaya All Rights Reserved.