← Urban & Transportation Engineering · TNPSC AE Civil

Chapter 8 of 11

Railways — permanent way; signalling, interlocking & train control

In the TNPSC AE Civil syllabus under Urban & Transportation Engineering · 2 parts

📑 Contents (23 sections)

Part 1 of 2

Railway Engineering — Permanent Way, Rails, Sleepers & Ballast

Last reviewed 16 Sept 2026 · 15 min read

Railways in India

  • The first passenger train in India ran on 16 April 1853 from Bori Bunder (Mumbai) to Thane, a distance of about 34 km.
  • Indian Railways is one of the world's largest railway networks under a single management, organised into zones and divisions.
  • Advantages of railways: economical for bulk goods and long distances, high carrying capacity, energy efficient, safer, less polluting (especially when electrified), promotes national integration. Limitations: fixed routes, high initial cost, not door-to-door.

Gauges

Gauge is the clear minimum distance between the inner faces of the running rails.

Gauge Width Remarks
Broad gauge (BG) 1676 mm Standard for main lines in India
Standard gauge 1435 mm Used by most metro rail systems in India and widely abroad
Metre gauge (MG) 1000 mm Being converted to BG
Narrow gauge (NG) 762 mm and 610 mm Hill and light railways (e.g. heritage hill railways)

Project Unigauge (launched 1992) converts MG and NG lines to BG for a uniform network.

Factors in choosing gauge: volume and nature of traffic, speed, cost of construction, development of the area, physical features (hilly terrain favours narrower gauges), and uniformity with the existing network.

Permanent way

The permanent way (track) consists of rails, sleepers, fastenings, ballast and formation (subgrade). It is called "permanent" to distinguish it from temporary tracks used during construction.

Requirements of a good track

Correct gauge; proper alignment (straight, curves with transitions); proper cant on curves; smooth and uniform gradients; adequate elasticity and resilience; strong enough for loads and speeds; good drainage; easy maintenance and replacement of components; low initial and maintenance cost; resistance to creep and lateral forces.

Coning of wheels and tilting of rails

  • Coning of wheels: wheel treads are given a slope of 1 in 20 (outward taper). On straight track this keeps the wheel set centred; on curves, the outer wheel rides on a larger diameter and the inner on a smaller one, helping the axle negotiate the curve and reducing slip and wear.
  • Tilting of rails: rails are placed with an inward tilt of 1 in 20 (by adzing of wooden sleepers or by canted bearing plates/sleeper seats) so that the wheel load acts near the centre of the rail head, reducing wear of the rail head edge and of the wheel flange.

Rails

Functions

Provide a continuous, smooth, level surface for wheels; guide the wheel flanges; transmit loads to sleepers; resist lateral forces and bending; act as electrical conductors for signalling track circuits and return current in electrified sections.

Types of rail section

Type Features
Double-headed rail Identical head and foot (intended to be reversed) — obsolete
Bull-headed rail Head larger than foot; needs chairs — used earlier on some railways
Flat-footed (Vignole) rail Wide flat foot resting directly on sleepers — standard in India and most countries; more stable, simpler fastenings

Weight and length

  • Rails are designated by weight per metre; heavy main lines use 52 kg/m and 60 kg/m (UIC 60) rails.
  • Standard rail lengths: 13 m for BG and 12 m for MG (fish-plated track); longer lengths are welded.

Wear of rails

On straight track: wear of the top of rail head and at the rail ends (battered ends at joints). On curves: side wear of the head of the outer rail (flange contact) and top wear of the inner rail. Also at points and crossings, in braking/acceleration zones, near stations and on gradients. Remedies: lubrication of outer rails on curves, interchange of rails, use of harder (head-hardened) rails, proper cant, grinding.

Creep of rails

Creep is the longitudinal movement of rails relative to sleepers in the direction of traffic (or downhill).

  • Causes (theories): wave theory (wave motion of rail under moving loads pushes it forward), percussion theory (impact of wheels at rail ends), drag theory (backward thrust of driving wheels on the rail, forward drag of other wheels); also braking and accelerating forces, temperature variations, poor fastenings, loose sleepers, steep gradients.
  • Effects: sleepers go out of square, gauge and alignment disturbed, joint gaps close or open (buckling or broken fish bolts), points and crossings disturbed.
  • Prevention: tightening fastenings, creep anchors (anti-creepers), elastic fastenings (Pandrol/ERC clips which resist creep), adequate ballast and sleeper density, pulling back the rails to their original position.

Rail joints and welding

  • Fish-plated joints — fish plates and fish bolts join rail ends; weakest part of the track. Types by support: supported joints (on a sleeper), suspended joints (between two sleepers — common), bridge joints. Arrangement: square joints (both rails at the same point) or staggered joints (on curves).
  • Expansion gap at joints allows for thermal expansion: .
  • Welding of rails eliminates joints, giving a smoother ride and less maintenance:
    • Flash butt welding (in depots, high quality),
    • Thermit (alumino-thermic) welding (in the field),
    • Gas pressure welding, electric arc welding.
  • Short welded rails (SWR) — a few rail lengths welded together (e.g. 3 rails = 39 m on BG).
  • Long welded rails (LWR) / continuous welded rails (CWR) — the central portion cannot expand; thermal forces are resisted by sleepers, ballast and elastic fastenings; ends have switch expansion joints (SEJs); must be laid and destressed within a specified rail temperature range to avoid buckling in summer and fractures in winter.

Rail fastenings

Fish plates and bolts; spikes (dog spikes, screw spikes, round spikes); chairs (for bull-headed rails); bearing plates; keys; elastic fastenings — elastic rail clips (ERC, Pandrol type) with grooved rubber sole plates (GRSP) and liners on concrete sleepers — standard on Indian Railways now.

Rail defects and failures

Transverse fissures, crushed or split heads, piped rails, battered ends, corrugation (short-wave undulations of rail head), wheel burns (from slipping wheels), bent or kinked rails, cracks at bolt holes, weld failures. Detected by visual inspection and ultrasonic flaw detection (USFD).

Sleepers

Functions

Hold rails at the correct gauge and inclination; transfer and distribute loads from rails to ballast; provide elasticity and stability to track; maintain alignment and level; resist lateral and longitudinal (creep) forces; (in some cases) provide electrical insulation between rails.

Types of sleepers

Type Merits Demerits
Wooden sleepers (sal, teak, deodar; treated) Good elasticity and damping, easy handling, suitable for all rail sections, good insulation, used at points and crossings and bridges Short life (decay, insects), fire risk, poor creep resistance, scarcity of timber
Steel (trough) sleepers Long life, good lateral stability, easy manufacture, scrap value Corrosion, poor electrical insulation (problem in track circuits), less elastic, noisy
Cast iron sleepers (pot, plate, CST-9) Durable, less corrosion, good scrap value Brittle, less elastic, need many fittings, gauge maintenance difficult
Concrete sleepers — RCC twin-block, prestressed concrete (PSC) monoblock Very long life, heavy (stable track, suits LWR and high speeds), good creep resistance, no decay or corrosion, suitable for mechanised maintenance Heavy handling, damage on derailment, less elastic (rubber pads needed), not easily used at points and crossings unless specially designed

PSC monoblock sleepers are now the standard on Indian Railways main lines.

Sleeper density

Sleeper density is the number of sleepers per rail length, expressed as (n + x), where n = rail length in metres and is a number depending on traffic (e.g. M + 7). For PSC sleepers on main lines it is also stated as sleepers per kilometre (commonly about 1540–1660 per km, corresponding to spacing of about 65–60 cm). Higher density is used for heavy traffic, LWR, high speeds and curves.

Ballast

Functions

Transfers loads from sleepers to formation over a larger area; holds sleepers in position against lateral and longitudinal movement; provides elasticity and resilience; provides drainage; allows adjustment of track level and alignment by packing; prevents vegetation growth.

Materials

Broken stone (hard crushed rock such as granite, basalt, quartzite — best and standard for main lines), gravel, sand, moorum, kankar, brick ballast, cinders/ash (used in the past in yards and new formations).

Size and depth

  • Broken stone ballast for BG main lines is angular and graded within specified limits (nominal size of the order of 50–65 mm).
  • The ballast cushion (depth below the bottom of sleeper) on main lines is commonly about 250–350 mm, depending on the importance of the route, sleeper type and LWR.
  • For effective load distribution, the minimum depth is sometimes estimated as ( = sleeper spacing, = sleeper width), assuming 45° load dispersion.

Formation (subgrade)

  • The prepared ground surface on which ballast rests — in embankment or cutting.
  • Top of formation is given a cross slope (about 1 in 40) away from the centre for drainage.
  • Width depends on gauge, single/double line, ballast profile and cess (side space).
  • Blanket layer of coarse granular material is provided over weak/clayey formations to prevent mud pumping and improve bearing capacity.
  • Formation failures: slips of embankment slopes, heaving/swelling of expansive soils, settlement, ballast pockets, mud pumping — remedied by drainage, blanketing, sand piles, geosynthetics, slope protection.

Resistance to traction and hauling capacity

Resistance Expression (typical Indian formulae)
Train resistance (on level straight track) (tonnes), = train weight (t), = speed (km/h) — covers friction, wave action, flange friction and air resistance
Grade resistance ( = gradient as a fraction, e.g. 1 in 200 → 1/200)
Curve resistance BG: ; MG: ; NG: (tonnes), = degree of curve
Resistance due to starting and accelerating Higher starting resistance; acceleration resistance

Hauling capacity of a locomotive — = coefficient of adhesion (about 0.2 for dry rails, lower for wet or greasy rails); = load on each driving axle; = number of driving axles.

Tractive effort of the locomotive must exceed the total resistance for the train to be hauled.

Gradients

Gradient Description
Ruling gradient Maximum gradient on a section to which the track is laid, deciding the maximum load a locomotive can haul — commonly about 1 in 150 to 1 in 200 on BG in plains and 1 in 100 to 1 in 150 in hilly areas
Momentum gradient Steeper than ruling gradient, used where a train approaching down a falling gradient gains enough momentum to climb it
Pusher (helper) gradient Very steep gradients in ghat sections where an extra banking locomotive is used (e.g. about 1 in 37 on ghat sections of the Western Ghats)
Gradients in station yards Kept very flat (not steeper than about 1 in 400, preferably 1 in 1000) so that stationary wagons do not roll

Grade compensation on curves: gradients on curves are reduced to offset curve resistance — 0.04% per degree of curve on BG, 0.03% on MG and 0.02% on NG.

Curves

FormulaDegree of curve

Degree of curve (degrees) subtended by a 30.5 m chord; in m. (A 1° curve has ≈ 1750 m.)

Cant (superelevation)

FormulaCant on railway curves

Equilibrium cant:

in mm; = centre-to-centre distance of rail heads (about 1750 mm for BG, 1058 mm for MG); = equilibrium speed (km/h); in m.

  • Cant deficiency — the difference between the cant needed for the maximum speed and the actual cant provided (trains faster than equilibrium speed). Limits on Indian Railways: about 75 mm on BG (higher on certain high-speed routes) and 50 mm on MG.
  • Cant excess — the difference between actual cant and the cant needed for slow trains. Limits: about 75 mm on BG and 50 mm on MG.
  • Maximum cant: about 165 mm on BG (up to 185 mm on certain high-speed routes) and about 90 mm on MG.

Maximum permissible speed on a curve (considering cant and cant deficiency):

  • BG:
  • MG: ( = actual cant, mm; = cant deficiency, mm; in m; in km/h.)

Equilibrium speed is chosen by considering the maximum sectional speed and the average (booked) speed of trains so that cant excess and deficiency stay within limits.

Negative cant occurs on turnouts taking off from the outer side of a curve, requiring speed restrictions.

Transition curves

Railway transitions (cubic parabola/clothoid) introduce cant and curvature gradually.

FormulaLength of transition curve (Indian Railways) — adopt the maximum

in m; , in mm; = maximum speed (km/h). The first two relate to rate of change of cant and cant deficiency; the third to the maximum cant gradient (1 in 720).

Shift:

Part 2 of 2

Railway Points, Crossings, Stations & Signalling

Last reviewed 16 Sept 2026 · Facts as of 16 Sept 2026 · 11 min read

Points and crossings (turnouts)

Points and crossings enable trains to be diverted from one track to another. A turnout is the simplest arrangement, allowing a train to move from a main line to a branch line.

Components of a turnout

Component Function
Pair of points (switches) Each consists of a stock rail and a movable tongue rail (switch rail); the tongue rails deflect the wheels to the main or diverging track
Lead rails (closure rails) Rails between the heel of the switches and the crossing
Crossing (frog) Allows wheel flanges of one track to cross the rail of the other; consists of a nose (splice and point rails) and wing rails
Check rails (guard rails) Placed opposite the crossing on the outer rails to guide wheel flanges and prevent them from striking the nose
Heel block, stretcher bars, slide chairs, switch rods Hold switches in position and allow movement

Terms: toe of switch (thin end of the tongue), heel of switch (fixed end), throw of switch (distance through which the tongue moves at the toe), flangeway clearance and flangeway depth, theoretical nose (intersection of gauge lines) and actual nose (blunt nose, a short distance behind).

Types of switches

  • Stub switch — ends of movable rails butt against fixed rails (obsolete).
  • Split switch — tongue rails lie against stock rails: loose heel type (heel fish-plated) and fixed heel type (flexible tongue).
  • By tongue design: undercut switch (foot of stock rail planed to accept tongue) and overriding switch (tongue rides over the foot of stock rail — stronger, used in modern designs).
  • Straight and curved switches — curved switches allow higher turnout speeds.

Types of crossings

  • Acute angle (V) crossing — the common crossing in turnouts.
  • Obtuse angle (diamond) crossing — at diamond crossings (two tracks crossing each other).
  • Square crossing — tracks crossing at right angles (avoided on main lines).
  • By construction: built-up crossings (machined rails bolted together) and cast manganese steel (CMS) crossings (one-piece castings — very wear resistant, used on main lines).

Crossing number and angle

Crossing number (N) expresses the crossing angle (the angle between the running faces of the point and splice rails):

Method Relation
Right-angle (Cole's) method — used on Indian Railways
Centre-line method
Isosceles triangle method

Standard crossings on Indian Railways include 1 in 8.5 (mostly in yards/goods lines), 1 in 12 (passenger running lines) and 1 in 16 (for higher turnout speeds). Flatter crossings (larger N) permit higher speeds but need longer turnouts.

Lead and radius of turnout (Coles' method, approximate)

FormulaTurnout geometry
  • Curve lead:
  • Radius of turnout curve:
  • Lead (from the heel of switch to theoretical nose) = curve lead − switch lead

= gauge; = crossing number.

Speeds on turnouts are restricted according to crossing number and switch design (e.g. about 30 km/h for 1 in 12 turnouts with curved switches on BG, and lower for 1 in 8.5).

Track junctions and layouts

Layout Purpose
Turnout Diverts trains from one track to another
Crossover Two turnouts connecting two parallel tracks
Scissors crossover Two crossovers superimposed with a diamond crossing — allows movement in both directions within a short length
Diamond crossing Two tracks cross at an angle — two acute and two obtuse crossings
Diamond with slips (single/double slip) Diamond crossing with connections allowing change of tracks
Gauntlet track Two tracks overlap on a narrow bridge or restricted section without switches
Triangle Three turnouts in a triangle — for turning locomotives or rakes
Turntable Rotating platform for turning locomotives in limited space
Symmetrical split (Y-junction) Both tracks diverge equally from the straight
Three-throw switch Three routes from one set of points in restricted space
Double junction Junction of two double lines

Railway stations and yards

Purposes of stations

Exchange of passengers and goods; crossing and overtaking of trains on single lines; reception and despatch of trains; control of train movements; locomotive changing, watering and servicing; marshalling of wagons.

Classification

Operational (Indian Railways):

  • Block stations — control train movement by the block system: Class A, Class B and Class C stations (Class C, e.g. block huts, do not deal with traffic).
  • Non-block stations — Class D (flag stations/halts) where trains stop but no block working is done.
  • Special class stations.

Functional: passenger stations, goods stations, junction stations (where lines meet), terminal stations (line ends), halt stations, flag stations, crossing stations, hill stations etc.

Platforms

  • Passenger platforms — high-level platforms (on BG up to about 840 mm above rail level) for easy boarding; low- and rail-level platforms at smaller stations. Length suited to the longest trains (long-distance trains of 24–26 coaches need platforms of several hundred metres).
  • Goods platforms — for loading/unloading at wagon floor level.
  • Facilities: foot overbridges, subways, shelters, lighting, water, public address, signage.

Yards

Yard Purpose
Passenger yard Reception, despatch and stabling of passenger rakes; carriage washing lines
Goods yard Receiving, loading, unloading and delivery of goods
Marshalling yard Sorting wagons into trains according to destination — flat yards (shunted by locomotives), gravity yards (natural slopes) and hump yards (wagons pushed over a hump and roll into sorting sidings by gravity — most efficient)
Locomotive yard (loco shed) Servicing, fuelling and repair of locomotives

Station equipment and safety features

  • Buffer stops — at dead ends of tracks.
  • Fouling marks — indicate the limit beyond which vehicles on one track would foul the other.
  • Sand humps, scotch blocks, derailing switches — prevent runaway vehicles from fouling running lines.
  • Catch sidings and slip sidings — on steep gradients to trap runaway trains.
  • Water columns, weigh bridges, loading gauges, end loading ramps, cranes.

Finished reading? Test yourself.

A timed chapter test from the TNPSC AE Civil series, on exactly this chapter.

Practice this chapter →