Showing posts with label SYLLABUS. Show all posts
Showing posts with label SYLLABUS. Show all posts

Wednesday, July 20, 2011

APPSC Assistant Architectural Draughtsman & Surveyors Written Test Patten & Syllabus

APPSC Asst. Architectural Draughtsman and Surveyors in A.P. Town Planning Sub-service (Notification No. 48/ 2008) Written Exam will be held on 24/07/2011 FN & AN. Assistant Architectural Draughtsman & Surveyors Selection Procedure, Written Exam Paper Patten & Syllabus is given below.

Selection Process: Written Test & Interview

APPSC Asst. Architectural Draughtsman & Surveyors Written Test Patten

Paper Subject
Questions
Marks
Duration
PART-A (WRITTEN EXAMINATION – Objective type)
Paper-1 GENERAL STUDIES (SSC standard) 
150
150
150 Minutes
Paper-2 SUBJECT:(Intermediate vocational standard)
150
150
150 Minutes
PART-B  INTERVIEW  -  30 Marks
APPSC Assistant Architectural Draughtsman & Surveyors Syllabus

PAPER-1:  General Studies Syllabus

Syllabus formulated by the Board of Secondary School Certificate, A.P., as prescribed for 10th Class in    History, Geography, Civics, Economics, Physics, Chemistry, Botany, Zoology and Current Affairs.

PAPER-2: -Subject Syllabus

Importance of Lettering and Numbering – Figure Sizes and Proportions IS Standard Practice.

Construction of Plain Geometric Figures (Lines Angles, Triangle, Rhombus, Quadrilaterals, Polygon etc) Orthographic Projection- Recommended methods of Projections as per IS code.

Construction of Ordinary Scale – Plain, & Comparative Diagonal, Vernier, & Scale of Chords.

Drawing Plan and Elevation of Points, Lines, Surfaces & Solids.

Conventional  Signs  and  Symbols  as  per  IS  Code  for  Engineering  Drawings  and  Buildings Drawings.

Drawing and detailing of (a) Brick arrangements – Various  types of Bonds, (b) Stone Masonry & Stone Joints ((c) Foundations – Various types (d) Damp Proof Course & Plinth Protection (e) Roof types – Reinforced Concrete, Madras Terrace & Jack Arch,  (f) Flooring  types – Timber Flooring, Steel  Flooring,  Tile  Flooring,  (g)  Arches  &  Lintels  Carpentry  Joints,  Framing,  Paneling  and Moulding  (h)  Doors  types  –  Paneled,  Glazed,  and  Flush  Door,  (i)  Windows  &  Ventilators  (j) Pitched Roof  –  Various  types  –  King  post,  & Queen  post,  (k)  Steel Roof  Trusses    (l)  Stairs  – Various  types – Wooden, Steel and Reinforced Concrete – Spiral, Doglegged & Open Well  (m) Single  Storied  Residential  House  –  Plan,  Elevation  and  Section  (n)  Cross  section  showing different  types of Roads, Railway Track, Embankment and  layout of Platforms (o) Different  types of Irrigation Structures (p) Pipelines Joints Drainage Works, Manholes, Sanitary fittings, (q) Forms of Rivet Heads, Types of Riveted Joints, Standard Steel Section, Standard Connections.

Surveying of Buildings Sites with Chain, Field Book Entries – Plotting – Calculation of Areas.

Use of Prismatic Compass, Handling of Leveling  Instrument – Differential Leveling, Surveying of Building Sites with Chain and Level  for Calculation of Earth Work. Plotting of Longitudinal/ Cross section, Drawing of Contours.

Sunday, May 15, 2011

JTO SYLLABUS

SECTION – I
1. Materials and components
Structure and properties of Electronic Engineering materials, Conductors,
Semiconductors and Insulators, Magnetic, Ferroelectric, Piezoelectric, Ceramic,
Optical and Superconducting materials. Passive components and characteristics,
Resistors, Capacitors and Inductors; Ferrites, Quartz crystal, Ceramic resonators,
Electromagnetic and Electromechanical components.

2. Physical Electronics, Electron Devices and ICs
Electrons and holes in semiconductors, Carrier Statistics, Mechanics of current flow
in a semi-conductor, Hall effect; Junction theory; Different types of diodes and their
characteristics; Bipolar Junction transistor; Field effect transistors; Power switching
devices like SCRs, CTOs, power MOSFETs; Basics of ICs-bipolar, MOS and CMOS
types; Basics of Opto Electronics.

3. Network theory
Network analysis techniques: Network theorem, transcient and steady state
sinusoidal response, Transmission criteria: delay and rise time Elmore’s and other
definition, effect of cascading. Elements of network synthesis.

4. Electromagnetic Theory
Transmission lines: basic theory, standing waves, matching applications, microstrip
lines; Basics of waveguides and resonators; Elements of antenna theory.

5. Electronic Measurements and instrumentation
Basic concepts, standards and error analysis; Measurements of basic electrical
quantities and parameters; Electronic measuring instruments and their principles of
working: analog and digital, comparison, characteristics, applications. Transducers;
Electronic measurements of non-electrical quantities like temperature, pressure,
humidity etc. Basics of telemetry for industrial use.

6. Power Electronics
Power Semiconductor devices, Thyristor, Power transistor, MOSFETs, Characteristics
and operation. AC to DC convertors; 1-Phase and 3-phase DC to DC Convertors. AC
regulators. Thyristor controlled reactors, switched capacitor networks.
Inverters: Single-phase and 3-phase. Pulse width modulation. Sinusoidal
modulation with uniform sampling. Switched mode power supplies.

SECTION-II
1. Analog Electronic Circuits
Transistor biasing and stabilization, Small Signal analysis. Power amplifiers.
Frequency response, Wide band techniques, Feedback amplifiers. Tuned amplifiers.
Oscillators. Rectifiers and power supplies. Operational Amplifier, other linear
integrated circuits and applications. Pulse shaping circuits and waveform
generators.

2. Digital Electronic Circuits
Transistor as a switching element; Boolean algebra, simplification of Boolean
functions, Karnaugh Map and applications; IC Logic gates and their characteristics;
IC logic families: DTL, TTL, ECL, NMOS, PMOS and CMOS gates and their
comparison; Combinational logic circuits; Half adder, full adder; Digital Compartor;
Multiplexer Demultiplexer; ROM and their applications. Flip-flops, R-S, J-K, D and T
flip-flops; Different types of counters and registers; waveform generators. A/D and
D/A convertors. Semiconductor memories.

3. Control Systems
Transient and steady state response of control systems; Effect of feedback on
stability and sensitivity, Root locus techniques; Frequency response analysis.
Concepts of gain and phase margins; Constant-M and Constant-N Nichol’s Chart;
Approximation of transient response from Constant-N Nichol’s Chart; Approximation
of transient response from closed loop frequency response; Design of Control
Systems, Compensators; Industrial controllers.

4. Communication systems
Basic information theory: Modulation and detection in analogue and digital systems;
Sampling and data reconstruction. Quantization & Coding; Time division and
frequency division multiplexing; Equalisation; Optical Communication: in free space
& fibre optic; Propagation of signals at HF, VHF, UHF and microwave frequency;
Satellite communication.

5. Microwave Engineering
Microwave Tubes and solid state devices, Microwave generation and amplifiers,
Waveguides and other Microwave Components and Circuits, Microstrip circuits,
Microwave antennas, Microwave Measurements, MASERS LASERS; Microwave
Propogation. Microwave Communication Systems-terrestrial and satellite based.

6. Computer Engineering
Number Systems; Data representation; Programming; Elements of a high level
programming language PASCAL/C; use of basic data structures; Fundamentals of
computer architecture processor design; Control unit design; Memory organization.
I/O System Organization. Personal computers and their typical uses.

7. Microprocessors
Microprocessor architecture - Instruction set and simple assembly language
programming. Interfacing for memory and I/O. Applications of Microprocessors in
Telecommunications and power system.
  
SECTION-III
General ability test
The candidate’s comprehension and understanding of General English shall be
tested through simple exercises. Questions on knowledge of current events and of
such matter of everyday observation and experience in their scientific aspects as
may be expected of an educated person. Questions will also be included on events
and developments in Telecommunications, History of India and Geography. These
will be of a nature, which can be answered without special study by an educated
person.
Scheme and Syllabus for the Recruitment of Junior Telecom Officers(Electrical) Examination - 2008
SCHEME
For direct recruitment of JTOs(Electrical), an objective type examination of one
paper of three hours duration consisting of following sections will be conducted :-
Section-I : Electrical Engineering : 50 questions
Section-II : Electrical Engineering : 50 questions
Section-III : General Awareness : 20 questions
The questions will be so designed as to assess the ability of the candidates to apply
their technical knowledge to the solution of the problems.
The syllabus for JTOs(Electrical) Paper will as given below.

SYLLABUS
SECTION-I - ELECTRICAL ENGINEERING
1. EM Theory
Electric and magnetic fields. Gauss's Law and Amperes Law. Fields in dielectrics,
conductors and magnetic materials. Maxwell's equations. Time varying fields. Plane-
Wave propagating in dielectric and conducting media. Transmission lines.
2. Electrical Materials
Band Theory, Conductors, Semi-conductors. and Insulators. Superconductivity.
Insulators for electrical and electronic applications. Magnetic materials. Ferro and
ferri magnetism. Ceramics, Properties and applications. Hall effect alJd its
applications. Special semi conductors.
3. Electrical Circuits
Circuits elements. Kirchoff's Laws. Mesh and nodal analysis. Network Theorems and
applications. Natural response and forced response. Transient response and steady
state response for arbitrary inputs. Properties of networks in terms of poles and
zeros. Transfer function. Resonant circuits. Three phase circuits. Two-port
networks. Elements of two-element network synthesis.
4. Measurements and Instrumentation
Units and Standards. Error analysis, measurement of current, Voltage, power,
Power-factor and energy. Indicating instruments. Measurement of resistance,
inductance, Capacitance and frequency. Bridge measurements. Electronic
measuring instruments. Digital Voltmeter and frequency counter. Transducers and
their applications to the measurement of non-electrical quantities like temperature,
pressure, flow-rate displacement, acceleration, noise level etc. Data acquisition
systems. AID and D/A converters.
5. Control System
Mathematical modelling of physical systems. Block diagrams and signal flow graphs
and their reduction. Time domain and frequency domain analysis of linear
dynamical system. Errors for different type of inputs and stability criteria for
feedback systems. Stability analysis using Routh-Hurwitz array, Nyquist plot and
Bode plot. Root locus and Nicols chart and the estimation of gain and phase margin.
Basic concepts of compensator design. State variable matrix and its use in system
modelling and design. Sampled data system and performance of such a system with
the samples in the error channel. Stability of sampled data system. Elements of non-
linear control analysis. Control system components, electromechanical, hydraulic,
pneumatic components.
SECTION-II - ELECTRICAL ENGINEERING
1. Electrical Machines and Power Transformers
Magnetic Circuits - Analysis and Design of Power transformers. Construction and
testing. Equivalent circuits. Losses and efficiency. Regulation. Auto-transformer, 3-
phase transformer. Parallel operation.
Basic concepts in rotating machines. EMF, torque, basic machine types.
Construction and operation, leakage losses and efficiency.
D.C. Machines. Construction, Excitation methods. Circuit models. Armature reaction
and commutation. Characteristics and performance analysis. Generators and
motors. Starting and speed control. Testing, Losses and efficiency.
Synchronous Machines. Construction. Circuit model. Operating characteristics and
performance analysis. Synchronous reactance. Efficiency. Voltage regulation.
Salient-pole machine, Parallel operation. . tiunting. Short circuit transients.
Induction Machines. Construction. Principle of operation. Rotating fields.
Characteristics and performance analysis. Determination of circuit model. Circle
diagram. Starting and speed control.
Fractional KW motors. Single-phase synchronous and induction motors.
2. Power systems
Types of Power Stations, Hydro, Thermal and Nuclear Stations. Pumped storage
plants. Economics and operating factors. Power transmission lines. Modeling and
performance characteristics. Voltage control. Load flow studies. Optimal power
system operation. Load frequency control. Symmetrical short circuit analysis. ZBus
formulation. Symmetrical Components. Per Unit representation. Fault analysis.
Transient and steady-state stability of power systems. Equal area criterion. Power
system Transients. Power system Protection Circuit breakers. Relays. HVDC
transmission.
3. Analog and Digital Electronics and Circuits
Semiconductor device physics, PN junctions and transistors, circuit models and
parameters, FET, Zener, tunnel, Schottky, photo diodes and their applications,
rectifier circuits, voltage regulators and multipliers, switching behavior of diodes
and transistors. Small signal amplifiers, biasing circuits, frequency response and
improvement, multistage amplifiers and feed-back amplifiers, D.C. amplifiers,
Oscillators. Large signal amplifiers, coupling methods, push pull amplifiers,
operational amplifiers, wave shaping circuits. Multivibrators and flip-flops and their
applications. Digital logic gate families, universal gates-combination circuits for
arithmetic and logic operational, sequential logic circuits. Counters, registers, RAM
and ROMs.
4. Microprocessor
Microprocessor architecture-Instruction set and simple assembly language
programming. Interfacing for memory and I/O. Applications of Micro-processors in
power system.
5. Communication Systems
Types of modulation; AM, FM and PM. Demodulators. Noise and bandwidth
considerations. Digital communication systems. Pulse code modulation and
demodulation. Elements of sound and vision broadcasting. Carrier communication.
Frequency division and time division multiplexing, Telemetry system in power
engineering.
6. Power Electronics
Power Semiconductor devices. Thyristor. Power transistor, GTOs and MOSFETS.
Characteristics and operation. AC to DC Converters; 1phase and 3-phase DC to
DC Converters; AC regulators. Thyristor controlled reactors; switched capacitor
networks. Inverters; single-phase and 3-phase. Pulse width modulation. Sinusoidal
modulation with uniform sampling. Switched mode power supplies.
SECTION-III - GENERAL ABILITY TEST
The candidate’s comprehension and understanding of general English shall be
tested through simple exercises. Questions on knowledge of current events and of
such matter of everyday observation and experience in their scientific aspects as
may be expected of an educated person. Questions will also be included on events
and developments in Tele Communications, History of India and Geography. These
will be of a nature, which can be answered without special study by an educated
person.
Scheme and Syllabus for the Recruitment of  Engineer Junior Telecom Officers(Civil)
For Direct Recruitment of Junior Telecom Officer(Civil), an objective type Examination of 3 hours duration consisting of following sectional papers will be conducted:
SCHEME
A. Civil Engineering Stream Section - I : 50 questions
B. Civil Engineering Stream Section - II : 50 questions
C. General Ability Test Section - III : 20 questions
1. The standard of paper in Engineering subjects will be that of Engineering
Degree Examination of Indian University.
2. In the general ability test, special attention will be paid to assess the
candidate’s capacity for general awareness. The standard of paper in
general
ability test will be such as may be expected of an Engineering
Graduate.
3. The syllabus for Civil Engineering stream paper will be as given below.

SYLLABUS:
SECTION-I - CIVIL ENGINEERING STREAM
BUILDING MATERIAL:
Timber: Different types and species of structural timber, density-moisture
relationship, strength in different directions, defects, influence of defects on
permissible stress, preservation, dry and wet rots, plywood, codal provision for
design.
Bricks: Types, Indian standard classification, absorption, saturation factor, strength
in masonry, influence of mortar strength and masonary strength.
Cement: Compounds, different types, setting times, strength.
Cement Mortar: Ingredients, proportions, water demands, mortar for plastering and
masonry.
Concrete: Importance of W/C ratio, strength, ingredients including admixtures,
workability, testing, elasticity, non-destructive testing mix design method.

SOLID MECHANICS
Elastic constants, stress, plane stress, Mohr’s circle of stress, strains, plain strain,
Mohr’s circle of strain, combined stress. Elastic theories of Failure, simple and shear
bending, Torsion of circular and rectangular section and simple members.

1. STRUCTURAL ANALYSIS
Analysis of determinate structures- different methods including graphical methods.
Analysis of indeterminate skeletal frames- moment distribution, slope deflection,
stiffness and force methods, energy methods. Muller-Breslau principal and
application. Plastic analysis of indeterminate beams and simple frames-shape
factors.

2. DESIGN OF STEEL STRUCTURES
Principle of working stress method. Design of connections of simple members. Built
up sections and frames. Design of Industrial roofs. Principles of ultimate load
design. Design of members and frames.
3. DESIGN OF CONCRETE AND MASONRY STRUCTURES.
Limit state design for bending, shear, axial compression and combined forces, Codal
provisions for slabs, beams, walls and footings. Working stress method of design of
R.C. members. Principles of prestressed concrete design, material, method of
prestressing losses. Design of simple members and determinates structures.
Introductions to prestressing of indeterminate structures. Design of brick masonary
as per I.S. codes.
4. CONSTRUCTION PRACTICE, PLANNING AND MANAGEMENT.
Concreting Equipment:
Weight batcher, Mixer, vibrator, batching plant, concrete pump. Cranes, hoists,
lifting equipment.
Earthwork Equipment:
Power shovel, hoe, dozer, dumper, trailers and tractors, rollers, sheep foot rollers,
pumps.
Construction, Planning and Management:
Bar chart, linked bar chart, work break down structures, Activity-on-arrow
diagrams. Critical path, probabilistic activity durations; Event-based networks.
PERT network: Time-cost study, crashing; Resource allocation.
SECTION- II - CIVIL ENGINEERING STREAM
1. (a) FLUID MECHANICS, OPEN CHANNEL, PIPE FLOW:
Fluid properties, pressure, thrust, Buoyancy, Flow Kinematics, integration, of flow
equation, Flow measurement, Relative motion, Moment of momentum, Viscosity,
Boundary layer and control, Drag, Lift, Dimensional analysis, Modeling, Cavitations,
Flow oscillations, Momentum and Energy principles, in open cannel flow, Flow
control, Hydraulic jump, Flow section and properties, Normal flow, Gradually varied
flow, Flow development and losses in pipe flows, Measurements, Siphons, Surges
and Water hammer, Delivery of Power Pipe networks.
(b) HYDRAULIC MACHINES AND HYDROPOWER
Centrifugal pumps, performance parameters, scaling, pumps in parallel,
Reciprocating pumps, air vessels, performance parameters;
2. (a) HYDROLOGY:
Hydrological cycle, precipitation and related data analysis, PMP, unit and synthetic
hydrographs, Evaporation and transpiration, floods and their management, PMG,
Streams and their gauging, .River morphology. Rooting of floods, Capacity of
reservoirs.
(b) WATER RESOURCES ENGINEERING:
Water resources of the globe: Multipurpose uses of Water, Soil Plant water
relationships, irrigation systems, water demand assessment, Storage and their
yields, ground water yield and well Hydraulics, Water logging, drainage design,
Irrigation revenue, Design of rigid boundary canals, Lacey’ and Tractive force
concepts in canal design, lining of canals; Sediment transport in canals; Non-
Overflow and overflow sections of gravity dams and their design, Energy dissipaters
and tail water rating, Design of head works, distribution work, falls, cross-drainage
work, outlets, River training.
ENVIRONMENT ENGINEERING
3. (a)WATER SUPPLY ENGINEERING.
Sources of supply, yield, design of intakes and conductors, Estimation of
demand, Water quality standards, Control of water born diseases. Primary
and secondary treatment, detailing and maintenance of treatment units.
Conveyance and distribution systems of treated water, leakage and
control, Rural water supply, Institutional and Industrial water supply.
(b) WASTE WATER ENGINEERING
Urban rain water disposal, system of sewage collection and disposal,
Design of sewers and sewerages systems, pumping, Characteristic of
sewage and its treatment, Disposal of products of sewage treatment,
stream flow rejuvenation, Institutional and industrial sewage
management, plumbing system, Rural and semi-urban sanitation.
(c) SOLID WASTE MANAGEMENT
Sources, classification, collection and disposal, Design and Management of
landfills.
(d) AIR AND NOISE POLLUTION AND ECOLOGY.
Sources and effects of air pollution, monitoring of Air pollution, Noise-
pollution and standards; Ecological Chain and balance, Environmental
assessment.
4. (a) SOIL MECHANICS
Properties of soils, classification and interrelationship, Compaction
behavior, method of compaction and their choice, Permeability and
seepage, flow nets, Inverter filters, Compressibility and
consolidation ,shearing resistance, stresses and failure, SO testing in
laboratory and in-situ, Stress path and applications, Earth pressure
theories, stress distribution in soil, soil exploration, samplers, load
tests ,penetration tests.
(b) FOUNDATION ENGINEERING
Type of foundations, Selection criteria, bearing capacity, settlement,
laboratory and field test, Types of piles and their design and layout,
Foundations on expansive soils, swelling and it prevention , foundation on
swelling soils.
5. (a) SURVEYING
Classification of surveys, scales, accuracy, Measurement of distances-direct
and indirect methods, optical and electronic devices, Measurement of
directions, prismatic compass, local attraction, Theodolites-types
Measurment of elevations, Spirit and trigonometric leveling, Relief
representation,Contours,Digital elevation modeling concept, Establishment
of control by triangulations and traversing measurements and adjustment
of observations, computation of coordinates, Field astronomy, concept of
global positioning system, Map preparation by plane tabling and by
photogrammetry, Remote sensing concepts, map substitutes.
(b) TRANSPORTATION ENGINEERING
Planning of highway systems, alignment and geometric design, horizontal
and vertical curves, grade separation, Materials and construction methods
for different surfaces and maintenance, Principles of pavement design,
Drainage.
Traffic surveys, intersections, signalling, Mass transit systems,
accessibility, networking. Planning of railway systems, terminology and
designs, relating to gauge, track controls, transits, rolling stock, tractive
power and track modernization, Maintenance Appurtenant works,
Containerisation.
SECTION-III - GENERAL ABILITY TEST
The candidate’s comprehension and understanding of general English shall be
tested through simple exercises. Questions on knowledge of current events and of
such matter of everyday observation and experience in their scientific aspects as
may be expected of an educated person. Questions will also be included on events
and developments in Tele Communications, History of India and Geography. These
will be of a nature, which can be answered without special study by an educated
person.

DRDO SYLLABUS


Syllabus for Chemical Engineering paper DRDO-SET
  1. Process Calculations and Thermodynamics: Laws of conservation of mass and energy; use of tie components; recycle, bypass and purge calculations; degree of freedom analysis. First and Second laws of thermodynamics. First law application to close and open systems. Second law and Entropy Thermodynamic properties of pure substances: equation of state and departure function, properties of mixtures: partial molar properties, fugacity, excess properties and activity coefficients; phase equilibria: predicting VLE of systems; chemical reaction equilibria.
  2. Fluid Mechanics and Mechanical Operations: Fluid statics, Newtonian and non-Newtonian fluids, Bernoulli equation, Macroscopic friction factors, energy balance, dimensional analysis, shell balances, flow through pipeline systems, flow meters, pumps and compressors, packed and fluidized beds, elementary boundary layer theory, size reduction and size separation; free and hindered settling; centrifuge and cyclones; thickening and classification, filtration, mixing and agitation; conveying of solids.
  3. Heat Transfer: Conduction, convection and radiation, heat transfer coefficients, steady and unsteady heat conduction, boiling, condensation and evaporation; types of heat exchangers and evaporators and their design.
  4. Mass Transfer: Fick’s laws, molecular diffusion in fluids, mass transfer coefficients, film, penetration and surface renewal theories; momentum, heat and mass transfer analogies; stagewise and continuous contacting and stage efficiencies; HTU & NTU concepts design and operation of equipment for distillation, absorption, leaching, liquid-liquid extraction, drying, humidification, dehumidification and adsorption.
  5. Chemical Reaction Engineering: Theories of reaction rates; kinetics of homogeneous reactions, interpretation of kinetic data, single and multiple reactions in ideal reactors, non-ideal reactors; residence time distribution, single parameter model; non-isothermal reactors; kinetics of heterogeneous catalytic reactions; diffusion effects in catalysis.
  6. Process Calculations and Thermodynamics: Laws of conservation of mass and energy; use of tie components; recycle, bypass and purge calculations; degree of freedom analysis. First and Second laws of thermodynamics. First law application to close and open systems. Second law and Entropy Thermodynamic properties of pure substances: equation of state and departure function, properties of mixtures: partial molar properties, fugacity, excess properties and activity coefficients; phase equilibria: predicting VLE of systems; chemical reaction equilibria.
  7. Fluid Mechanics and Mechanical Operations: Fluid statics, Newtonian and non-Newtonian fluids, Bernoulli equation, Macroscopic friction factors, energy balance, dimensional analysis, shell balances, flow through pipeline systems, flow meters, pumps and compressors, packed and fluidized beds, elementary boundary layer theory, size reduction and size separation; free and hindered settling; centrifuge and cyclones; thickening and classification, filtration, mixing and agitation; conveying of solids.
  8. Heat Transfer: Conduction, convection and radiation, heat transfer coefficients, steady and unsteady heat conduction, boiling, condensation and evaporation; types of heat exchangers and evaporators and their design.
  9. Mass Transfer: Fick’s laws, molecular diffusion in fluids, mass transfer coefficients, film, penetration and surface renewal theories; momentum, heat and mass transfer analogies; stagewise and continuous contacting and stage efficiencies; HTU & NTU concepts design and operation of equipment for distillation, absorption, leaching, liquid-liquid extraction, drying, humidification, dehumidification and adsorption.
  10. Chemical Reaction Engineering: Theories of reaction rates; kinetics of homogeneous reactions, interpretation of kinetic data, single and multiple reactions in ideal reactors, non-ideal reactors; residence time distribution, single parameter model; non-isothermal reactors; kinetics of heterogeneous catalytic reactions; diffusion effects in catalysis.
Syllabus for Computer Science and Engineering paper DRDO-SET
  1. Theory of Computation: Regular languages and finite automata, Context free languages and Push-down automata, Recursively enumerable sets and Turing machines, Undecidability; NP-completeness.
  2. Digital Logic: Logic functions, Minimization, Design and synthesis of combinational and sequential circuits; Number representation and computer arithmetic (fixed and floating point).
  3. Computer Organization and Architecture: Machine instructions and addressing modes, ALU and data-path, CPU control design, Memory interface, I/O interface (Interrupt and DMA mode), Instruction pipelining, Cache and main memory, Secondary storage.
  4. Programming and Data Structures: Programming in C; Functions, Recursion, Parameter passing, Scope, Binding; Abstract data types, Arrays, Stacks, Queues, Linked Lists, Trees, Binary search trees, Binary heaps.
  5. Algorithms: Analysis, Asymptotic notation, Notions of space and time complexity, Worst and average case analysis; Design: Greedy approach, Dynamic programming, Divide-and-conquer; Tree and graph traversals, Connected components, Spanning trees, Shortest paths; Hashing, Sorting, Searching.
  6. Compiler Design: Lexical analysis, Parsing, Syntax directed translation, Runtime environments, Intermediate and target code generation, Basics of code optimization.
  7. Operating System: Processes, Threads, Inter-process communication, Concurrency, Synchronization, Deadlock, CPU scheduling, Memory management and virtual memory, File systems, I/O systems, Protection and security.
Syllabus for Electronics and Communication Engineering paper DRDO-SET
  1. Networks: Network graphs: matrices associated with graphs; incidence, fundamental cut set and fundamental circuit matrices. Solution methods: nodal and mesh analysis. Network theorems: superposition, Thevenin and Norton’s maximum power transfer, Wye-Delta transformation. Steady state sinusoidal analysis using phasors. Linear constant coefficient differential equations; time domain analysis of simple RLC circuits, Solution of network equations using Laplace transform: frequency domain analysis of RLC circuits. 2-port network parameters: driving point and transfer functions. State equations for networks.
  2. Electronic Devices: Energy bands in silicon, intrinsic and extrinsic silicon. Carrier transport in silicon: diffusion current, drift current, mobility, and resistivity. Generation and recombination of carriers. p-n junction diode, Zener diode, tunnel diode, BJT, JFET, MOS capacitor, MOSFET, LED, p-I-n and avalanche photo diode, Basics of LASERs. Device technology: integrated circuits fabrication process, oxidation, diffusion, ion implantation, photolithography, n-tub, p-tub and twin-tub CMOS process.
  3. Analog Circuits: Small Signal Equivalent circuits of diodes, BJTs, MOSFETs and analog CMOS. Simple diode circuits, clipping, clamping, rectifier. Biasing and bias stability of transistor and FET amplifiers. Amplifiers: single-and multi-stage, differential and operational, feedback, and power. Frequency response of amplifiers. Simple op-amp circuits. Filters. Sinusoidal oscillators; criterion for oscillation; single-transistor and op-amp configurations. Function generators and wave-shaping circuits, 555 Timers. Power supplies.
  4. Digital Circuits: Boolean algebra, minimization of Boolean functions; logic gates; digital IC families (DTL, TTL, ECL, MOS, CMOS). Combinatorial circuits: arithmetic circuits, code converters, multiplexers, decoders, PROMs and PLAs. Sequential circuits: latches and flip-flops, counters and shift-registers. Sample and hold circuits, ADCs, DACs. Semiconductor memories. Microprocessor(8085): architecture, programming, memory and I/O interfacing.

    Fourier series, continuous-time and discrete-time Fourier Transform, DFT and FFT, z-transform. Sampling theorem. Linear Time-Invariant (LTI) Systems: definitions and properties; causality, stability, impulse response, convolution, poles and zeros, parallel and cascade structure, frequency response, group delay, phase delay. Signal transmission through LTI systems.
  5. Control Systems: Basic control system components; block diagrammatic description, reduction of block diagrams. Open loop and closed loop (feedback) systems and stability analysis of these systems. Signal flow graphs and their use in determining transfer functions of systems; transient and steady state analysis of LTI control systems and frequency response. Tools and techniques for LTI control system analysis: root loci, Routh-Hurwitz criterion, Bode and Nyquist plots. Control system compensators: elements of lead and lag compensation, elements of Proportional-Integral-Derivative (PID) control. State variable representation and solution of state equation of LTI control systems.
  6. Communications: Random signals and noise: probability, random variables, probability density function, autocorrelation, power spectral density. Analog communication systems: amplitude and angle modulation and demodulation systems, spectral analysis of these operations, superheterodyne receivers; elements of hardware, realizations of analog communication systems; signal-to-noise ratio (SNR) calculations for amplitude modulation (AM) and frequency modulation (FM) for low noise conditions. Fundamentals of information theory and channel capacity theorem. Digital communication systems: pulse code modulation (PCM), differential pulse code modulation (DPCM), digital modulation schemes: amplitude, phase and frequency shift keying schemes (ASK, PSK, FSK), matched filter receivers, bandwidth consideration and probability of error calculations for these schemes. Basics of TDMA, FDMA and CDMA and GSM.
  7. Electromagnetics: Elements of vector calculus: divergence and curl; Gauss’ and Stokes’ theorems, Maxwell’s equations: differential and integral forms. Wave equation, Poynting vector. Plane waves: propagation through various media; reflection and refraction; phase and group velocity; skin depth. Transmission lines: characteristic impedance; impedance transformation; Smith chart; impedance matching; S parameters, pulse excitation. Waveguides: modes in rectangular waveguides; boundary conditions; cut-off frequencies; dispersion relations. Basics of propagation in dielectric waveguide and optical fibers. Basics of Antennas: Dipole antennas; radiation pattern; antenna gain.
Syllabus for Electrical Engineering paper DRDO-SET
  1. 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, Thevenin’s, Norton’s 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; Ampere’s and Biot-Savart’s laws; inductance; dielectrics; capacitance.
  2. 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.
  3. 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.
  4. 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.
  5. 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.
  6. 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.
  7. 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.
  8. 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
Syllabus for Instrumentation Engineering paper DRDO-SET
  1. Basics of Circuits and Measurement Systems: Kirchoff’s laws, mesh and nodal Analysis. Circuit theorems. One-port and two-port Network Functions. Static and dynamic characteristics of Measurement Systems. Error and uncertainty analysis. Statistical analysis of data and curve fitting.
  2. Transducers, Mechanical Measurement and Industrial Instrumentation: Resistive, Capacitive, Inductive and piezoelectric transducers and their signal conditioning. Measurement of displacement, velocity and acceleration (translational and rotational), force, torque, vibration and shock. Measurement of pressure, flow, temperature and liquid level. Measurement of pH, conductivity, viscosity and humidity.
  3. Analog Electronics :Characteristics of diode, BJT, JFET and MOSFET. Diode circuits. Transistors at low and high frequencies, Amplifiers, single and multi-stage. Feedback amplifiers. Operational amplifiers, characteristics and circuit configurations. Instrumentation amplifier. Precision rectifier. V-to-I and I-to-V converter. Op-Amp based active filters. Oscillators and signal generators.
  4. Digital Electronics: Combinational logic circuits, minimization of Boolean functions. IC families, TTL, MOS and CMOS. Arithmetic circuits. Comparators, Schmitt trigger, timers and mono-stable multi-vibrator. Sequential circuits, flip-flops, counters, shift registers. Multiplexer, S/H circuit. Analog-to-Digital and Digital-to-Analog converters. Basics of number system. Microprocessor applications, memory and input-output interfacing. Microcontrollers.
  5. Signals, Systems and Communications: Periodic and aperiodic signals. Impulse response, transfer function and frequency response of first- and second order systems. Convolution, correlation and characteristics of linear time invariant systems. Discrete time system, impulse and frequency response. Pulse transfer function. IIR and FIR filters. Amplitude and frequency modulation and demodulation. Sampling theorem, pulse code modulation. Frequency and time division multiplexing. Amplitude shift keying, frequency shift keying and pulse shift keying for digital modulation.
  6. Electrical and Electronic Measurements: Bridges and potentiometers, measurement of R,L and C. Measurements of voltage, current, power, power factor and energy. A.C & D.C current probes. Extension of instrument ranges. Q-meter and waveform analyzer. Digital voltmeter and multi-meter. Time, phase and frequency measurements. Cathode ray oscilloscope. Serial and parallel communication. Shielding and grounding.
  7. Control Systems and Process Control: Feedback principles. Signal flow graphs. Transient Response, steady-state-errors. Routh and Nyquist criteria. Bode plot, root loci. Time delay systems. Phase and gain margin. State space representation of systems. Mechanical, hydraulic and pneumatic system components. Synchro pair, servo and step motors. On-off, cascade, P, P-I, P-I-D, feed forward and derivative controller, Fuzzy controllers.
  8. Analytical, Optical and Biomedical Instrumentation: Mass spectrometry. UV, visible and IR spectrometry. X-ray and nuclear radiation measurements. Optical sources and detectors, LED, laser, Photo-diode, photo-resistor and their characteristics. Interferometers, applications in metrology. Basics of fiber optics. Biomedical instruments, EEG, ECG and EMG. Clinical measurements. Ultrasonic transducers and Ultrasonography. Principles of Computer Assisted Tomography.
Syllabus for Mechanical Engineering paper DRDO-SET
  1. Engineering Mechanics: Free body diagrams and equilibrium; trusses and frames; virtual work; kinematics and dynamics of particles and of rigid bodies in plane motion, including impulse and momentum (linear and angular) and energy formulations; impact.
  2. Strength of Materials: Stress and strain, stress-strain relationship and elastic constants, Mohr’s circle for plane stress and plane strain, thin cylinders; shear force and bending moment diagrams; bending and shear stresses; deflection of beams; torsion of circular shafts; Euler’s theory of columns; strain energy methods; thermal stresses.
  3. Theory of Machines: Displacement, velocity and acceleration analysis of plane mechanisms; dynamic analysis of slider-crank mechanism; gear trains; flywheels.
  4. Vibrations: Free and forced vibration of single degree of freedom systems; effect of damping; vibration isolation; resonance, critical speeds of shafts.
  5. Design: Design for static and dynamic loading; failure theories; fatigue strength and the S-N diagram; principles of the design of machine elements such as bolted, riveted and welded joints, shafts, spur gears, rolling and sliding contact bearings, brakes and clutches.
  6. Fluid Mechanics: Fluid properties; fluid statics, manometry, buoyancy; control-volume analysis of mass, momentum and energy; fluid acceleration; differential equations of continuity and momentum; Bernoulli’s equation; viscous flow of incompressible fluids; boundary layer; elementary turbulent flow; flow through pipes, head losses in pipes, bends etc.
  7. Heat-Transfer: Modes of heat transfer; one dimensional heat conduction, resistance concept, electrical analogy, unsteady heat conduction, fins; dimensionless parameters in free and forced convective heat transfer, various correlations for heat transfer in flow over flat plates and through pipes; thermal boundary layer; effect of turbulence; radiative heat transfer, black and grey surfaces, shape factors, network analysis; heat exchanger performance, LMTD and NTU methods.
  8. Thermodynamics: Zeroth, First and Second laws of thermodynamics; thermodynamic system and processes; Carnot cycle. irreversibility and availability; behaviour of ideal and real gases, properties of pure substances, calculation of work and heat in ideal processes; analysis of thermodynamic cycles related to energy conversion.
  9. Applications: Power Engineering: Steam Tables, Rankine, Brayton cycles with regeneration and reheat. I.C. Engines: air-standard Otto, Diesel cycles. Refrigeration and air-conditioning: Vapour refrigeration cycle, heat pumps, gas refrigeration, Reverse Brayton cycle; moist air: psychrometric chart, basic psychrometric processes. Turbomachinery: Pelton-wheel, Francis and Kaplan turbines — impulse and reaction principles, velocity diagrams.
  10. Engineering Materials: Structure and properties of engineering materials, heat treatment, stress-strain diagrams for engineering materials.
  11. Metal Casting: Design of patterns, moulds and cores; solidification and cooling; riser and gating design, design considerations.
  12. Forming: Plastic deformation and yield criteria; fundamentals of hot and cold working processes; load estimation for bulk (forging, rolling, extrusion, drawing) and sheet (shearing, deep drawing, bending) metal forming processes; principles of powder metallurgy.
  13. Joining: Physics of welding, brazing and soldering; adhesive bonding; design considerations in welding.
  14. Machining and Machine Tool Operations: Mechanics of machining, single and multi-point cutting tools, tool geometry and materials, tool life and wear; economics of machining; principles of non-traditional machining processes; principles of work holding, principles of design of jigs and fixtures
  15. Metrology and Inspection: Limits, fits and tolerances; linear and angular measurements; comparators; gauge design; interferometry; form and finish measurement; alignment and testing methods; tolerance analysis in manufacturing and assembly.
  16. Computer Integrated Manufacturing: Basic concepts of CAD/CAM and their integration tools.
  17. Production Planning and Control: Forecasting models, aggregate production planning, scheduling, materials requirement planning.
  18. Inventory Control: Deterministic and probabilistic models; safety stock inventory control systems.
  19. Operations Research: Linear programming, simplex and duplex method, transportation, assignment, network flow models, simple queuing models, PERT and CPM.

Tuesday, February 8, 2011

ANDHRA PRADESH STATE IRRIGATION DEVELOPMENT CORPORATION LIMITED A.E.E., A.E., T.A. SYLLABUS



Syllabus for Written Examination:
Syllabus for Assistant Executive Engineer (Civil)
(for B .Tech degree holders)


Fluid Mechanics and Hydraulic Machinery:

Properties of fluids, pressure measurement, buoyancy and flotation, fluid
kinematics and fluid dynamics, flow through orifices and mouth pieces, notches
and weirs, laminar and turbulent flow, flow through pipes, forces on immersed
bodies, open channel flow, impact of jets, hydraulic turbines and pumps.

Hydrology and Irrigation Engineering:
Definition of duty, delta, base period, crop period, types of rain gauges, methods
of estimating runoff, hydrographs, classification of head works and weirs,
distribution works, types of dams, components of dams, forces acting on dams
and causes of dam failure, components of hydro power plants.

Strength of Materials:
Simple stresses and strains, Hooke’s law, elastic constants, stress strain curve of
mild steel bars, temperature stresses, stresses in compound bars, stresses on
oblique planes, principal stresses and strains, Mohr’s stress circle, shear force
and bending moment for beams, torsion of circular shafts, pure torsion, combined
bending and thrust, deflection of simple beams, thin and thick cylinders, columns
and struts, direct and bending stresses, unsymmetrical bending and shear
centre, analysis of trusses, method of joints and method of sections.

Theory of Structures:
Propped cantilevers, fixed beams, continuous beams, arches, cables and
suspension bridges, moving loads and influence lines, static and kinematic
indeterminacies, moment distribution method, Kani’s method and matrix methods
of analysis for beams and frames.

Design of Reinforced Concrete Structures:
Material properties, material grades and tests, workability and mix design of
concrete, basic design principles in working stress and limit state methods, limit
state design of beams, beams, slabs, columns, footings, water tanks, retaining
walls, design bridges, IRC specifications and loadings for bridges, slab type and
T beam bridges, basic concepts of prestressed concrete, losses in prestressed
concrete, design of prestressed beams including end block.

Design of Steel Structures
Riveted and welded joints, tension and compression members, gantry girders,
roof trusses, plate girder and truss bridges, water tanks, transmission towers,
column bases, basic concept of plastic analysis.

Geotechnical Engineering:
Origin and classification of soils, three phase system, basic definitions and
volume relations, consistency limits, soil classification, concepts and tests of
permeability of soil, effective stress concept and its calculation, capillarity and
seepage in soils, flow nets, flow through the earth dams, Boussinesq’s concept of
stresses in soil, basic concepts of consolidation and compaction of soils, shear
strength of soil, stability of slopes, concept of earth pressure and its evaluation,
soil exploration principles and methods of site investigation, bearing capacity of
soils and its evaluation, shallow foundations, settlement analysis of shallow
foundations, types of piles and load carrying capacity of piles, types of caissons
and their installation techniques, scour depth and grip length of caissons.

Other Topics in Civil Engineering:

Surveying: principles of surveying, types of surveying, basic principles and
concepts of chain, compass, plane table and theodolite surveying, principles of
leveling, principles of tacheometry surveying and trigonometric leveling, method
of setting out simple curves.

Building Materials & Construction:
basic properties and tests of stones, bricks,
lime, cement, concrete and wood, Flemish bond, English bond, lintels, roofs, stair
case, damp proof, form work, introduction to CPM and PERT.

Syllabus for Assistant Engineer (Civil)
(for Diploma holders)


Surveying: principles of surveying, types of surveying, basic principles and
concepts of chain, compass, plane table and theodolite surveying, principles of
leveling, principles of tacheometry surveying and trigonometric leveling, method
of setting out simple curves.

Quantity Surveying: basic concepts of quantity surveying, units and
specifications, types of estimates, analysis of rates and abstract estimates,
computation of volume of earth work and reservoir capacity, computation of
building estimate.

Construction Materials: preparation, classification, suitability criteria of
construction materials such as stones, bricks, tiles, aggregate, cement, mortars
and concrete, wood, plastics, glass and asbestos.

Construction Practice:
Classification of buildings, construction of masonry work, types of doors,
windows, ventilators, lintels and sunshades, finishes of roofs and floorings,
scaffolding, stair cases, protective, decorative finishes and termite proofing.
Strength of Materials and Theory of Structures: Simple stresses and strains,
Hooke’s law, elastic constants, stress strain curve of mild steel bars, temperature
stresses, shear force and bending moment for beams, pure torsion of circular
solid and hollow shafts, closely coiled helical spring under axial loading,
deflection of simple beams, internal pressure on thin cylinders, axially loaded
columns, analysis of perfect frames using method of joints, propped cantilevers,
fixed beams, continuous beams.

Hydraulics:
Properties of fluids, pressure measurement, buoyancy and flotation, continuity
equation for fluid flow, fluid kinematics and Bernoulli’s theorem for fluid flow,
principles of flow through orifices and mouth pieces, notches and weirs.

Transportation Engineering:
Basic principles of highways and soil engineering, highway survey and traffic
engineering, highway construction and maintenance, introduction to permanent
way of railways, station yard and maintenance of railways, types of bridges,
culverts and cause ways.

Design of RCC Structures:
Basic concepts of concrete, reinforcing steel, philosophy of limit state design,
design of beams, slabs, lintels, sunshades, T-beams, columns, footings and
staircases.

Design of Steel Structures:
Riveted and welded joints, tension and compression members, roof trusses.

Syllabus for Technical Assistant (Civil)
(for ITI holders)


Building Materials and Components:
Sand types, lime, cement, tiles, terracotta, stone ware and earthen ware, names
of different parts of building, bricks, manufacture of bricks, brick masonry,
Flemish and English bonds, tools and equipments in building construction,
scaffolding, terms used in stone masonry, principles and classification of stone
masonry, timber and its structure, types of foundations, shoring and under
pinning.

Elementary Strength of Materials:
Calculation of moment, centre of gravity, moment of inertia, and section modulus
of simple sections, Shear Force and Bending Moment for simple beams like
simply supported and cantilever and subjected to concentrated loads, and
uniformly distributed loads.

Elementary Hydraulics and Irrigation Engineering:
Pressure of a fluid, total pressure in a surface, center of pressure, velocity and
total heads of fluids, venture meter, flow through orifices and mouth pieces, loss
of head due to friction and other factors of flowing, flow through pipes and open
channels, introduction to water resources engineering, duty, delta, intensity of
irrigation, hydrograph, catchment area, introduction to types of dams, reservoirs,
and canals.

Reinforced and Preliminary Prestressed Concrete:
Advantages of reinforced concrete over other types of construction, bonding and
placing of reinforcement, mixing, laying and consolidation of concrete, finishing of
RCC surfaces.

Surveying:
Types of theodolite survey, uses, methods of plotting, checks and error
adjustments, open and closed traverse and their application to engineering
problems, calculation of area from traverse, determination of heights, setting out
building, culverts, centre lines of dams, bridges and slope of earth work.

Estimating and Costing:
Analysis of rates of typical items, abstracting and building, specifications,
contracts, valuation.

Railways:
Permanent way, station and yards, Points and crossing