gate syllabus

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 Engineering Mathemati cs Linear Algebra: Matrix Algebra, Systems of linear equations, Eigen values and eigen vectors. Calculus : Mean value theorems, Theorems of integral calculus, Evaluation of denite and imroer integrals, !artial "erivatives, Maxima and minima, Multile integrals, #ourier Series, vector identities, directional derivatives, line surface and volume integrals, sto$es ,gauss and greens theorem. Diferential equations: #irst order equation %linear and nonlinear&, 'igher order linear di(erent ial equat ions )ith cons tant coe*cients , Method of variat ion of arameters, +auchy s and Euler s equati ons, -nitial and boundary value roblems, !artial "i(erential Equations and variable searable method. Complex variables: Analytic functions, +auchys integral theorem and integral formula, T aylors and aurent series, /esidue theorem, solution integrals. Probability and Statistics: Samling theorems, +onditional robability, Mean, median, mode and standard deviation, /andom variables, "iscrete and conti nuous distri butio ns, !oi sson,0orma l and 1inomia l distri bution , +orr elatio n and regression analysis. Numerical Methods: Sol uti ons of non2lin ear algebr aic equati ons, single and multi2ste methods for di(erential equations. rans!orm heory: #ourier transform,alace transform, 32transform. Electrical Engineering "lectric Circuits and #ields$ 0et)or$ grah, 4+, 45, node and mesh analys is, transi ent reso nse of dc and ac net )or $s6 sinuso idal ste ady 2state analy sis, resonanc e, basic lter conc ets6 ideal curr ent and volta ge sour ces,  Thevenins, 0ortons and Suerosition and Maximum !o)er T ransfer theorems, t)o2 ort net)or$s, thr ee hase circuits6 7auss Theorem, electric eld and otential due to oint, line, lane and sherical charge distributions6 Ameres and 1iot2Savarts la)s6 inductance6 dielectrics6 caacitance. Signals and Systems$ /eresentation of continuous and discrete2time signals6 shifting and scaling oerations6 linear, time2invariant and c ausal systems6 #ourier series reresentation of continuous eriodic signals6 samling theorem6 #ourier, alace and 3 transforms. "lectrical Machines$ Single hase transf ormer 8 equivalent cir cui t, hasor di ag ram, te sts, regulatio n and e*ci ency6 th ree hase transformers 8 connections, arallel oeration6 auto2transformer6 energy conversion rinciles6 "+ machines 8 tyes, )indings, generator characteristics, armature reaction and commutation, starting and seed contr ol of motors6 thr ee hase induct ion motors 8 ri nci les , tyes, er for mance character ist ics, sta rtin g and se ed control6 single hase induction motors6 synchronous machines 8 erformance, regulation and arallel oeration of generators, motor starting, characteristics and alications6 servo and steer motors. Po%er Sys tems$ 1asic o)er generation concets6 transmission line models and erformance6 cable erformance, insulation6 corona and radio interference6 distribution systems6 er2uni t quantities6 bus imedance and admi ttance matrices6 load 9o)6 voltage control6 o)er factor correction6 economic oeration6 symmetrical comonents6 fault analysis6 rinciles of over2current, di(erential and distance rotection6 solid state relays and digital rotection6 circuit brea$ers6

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gate syllabus

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Engineering Mathematics Linear Algebra: Matrix Algebra, Systems of linear equations, Eigen values and eigen vectors. Calculus: Mean value theorems, Theorems of integral calculus, Evaluation of definite and improper integrals, Partial Derivatives, Maxima and minima, Multiple integrals, Fourier Series, vector identities, directional derivatives, line surface and volume integrals, stokes ,gauss and greens theorem.Differential equations: First order equation (linear and nonlinear), Higher order linear differential equations with constant coefficients, Method of variation of parameters, Cauchys and Eulers equations, Initial and boundary value problems, Partial Differential Equations and variable separable method. Complex variables: Analytic functions, Cauchys integral theorem and integral formula, Taylors and Laurent series, Residue theorem, solution integrals. Probability and Statistics: Sampling theorems, Conditional probability, Mean, median, mode and standard deviation, Random variables, Discrete and continuous distributions, Poisson,Normal and Binomial distribution, Correlation and regression analysis. Numerical Methods: Solutions of non-linear algebraic equations, single and multi-step methods for differential equations. Transform Theory: Fourier transform,Laplace transform, Z-transform.

Electrical Engineering Electric Circuits and Fields: Network graph, KCL, KVL, node and mesh analysis, transient response of dc and ac networks; sinusoidal steady-state analysis, resonance, basic filter concepts; ideal current and voltage sources, Thevenins, Nortons and Superposition and Maximum Power Transfer theorems, two-port networks, three phase circuits; Gauss Theorem, electric field and potential due to point, line, plane and spherical charge distributions; Amperes and Biot-Savarts laws; inductance; dielectrics; capacitance. Signals and Systems: Representation of continuous and discrete-time signals; shifting and scaling operations; linear, time-invariant and causal systems; Fourier series representation of continuous periodic signals; sampling theorem; Fourier, Laplace and Z transforms. Electrical Machines: Single phase transformer equivalent circuit, phasor diagram, tests, regulation and efficiency; three phase transformers connections, parallel operation; auto-transformer; energy conversion principles; DC machines types, windings, generator characteristics, armature reaction and commutation, starting and speed control of motors; three phase induction motors principles, types, performance characteristics, starting and speed control; single phase induction motors; synchronous machines performance, regulation and parallel operation of generators, motor starting, characteristics and applications; servo and stepper motors. Power Systems: Basic power generation concepts; transmission line models and performance; cable performance, insulation; corona and radio interference; distribution systems; per-unit quantities; bus impedance and admittance matrices; load flow; voltage control; power factor correction; economic operation; symmetrical components; fault analysis; principles of over-current, differential and distance protection; solid state relays and digital protection; circuit breakers; system stability concepts, swing curves and equal area criterion; HVDC transmission and FACTS concepts. Control Systems: Principles of feedback; transfer function; block diagrams; steady-state errors; Routh and Niquist techniques; Bode plots; root loci; lag, lead and lead-lag compensation; state space model; state transition matrix, controllability and observability.

Electrical and Electronic Measurements: Bridges and potentiometers; PMMC, moving iron, dynamometer and induction type instruments; measurement of voltage, current, power, energy and power factor; instrument transformers; digital voltmeters and multimeters; phase, time and frequency measurement; Q-meters; oscilloscopes; potentiometric recorders; error analysis. Analog and Digital Electronics: Characteristics of diodes, BJT, FET; amplifiers biasing, equivalent circuit and frequency response; oscillators and feedback amplifiers; operational amplifiers characteristics and applications; simple active filters; VCOs and timers; combinational and sequential logic circuits; multiplexer; Schmitt trigger; multi-vibrators; sample and hold circuits; A/D and D/A converters; 8-bit microprocessor basics, architecture, programming and interfacing. Power Electronics and Drives: Semiconductor power diodes, transistors, thyristors, triacs, GTOs, MOSFETs and IGBTs static characteristics and principles of operation; triggering circuits; phase control rectifiers; bridge converters fully controlled and half controlled; principles of choppers and inverters; basis concepts of adjustable speed dc and ac drives.