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Chapter 4 of 5

Water Supply & Sewerage

In the DSSSB JE Civil syllabus under Basic Civil Engineering · 2 parts

📑 Contents (22 sections)

Part 1 of 2

Water Treatment

Last reviewed 16 Sept 2026 · 13 min read

Treatment flow sheet

A conventional surface water treatment plant:

Intake and screens → (plain sedimentation for very turbid water) → aeration (if needed) → rapid mixing with coagulant → flocculation → sedimentation (clarification) → rapid sand filtration → disinfection → clear water reservoir → distribution

Groundwater often needs only aeration, iron/manganese removal and disinfection; hard or fluoride-rich water needs special treatment.

Unit Main impurity removed
Screening Large floating matter
Aeration Dissolved gases (CO₂, H₂S), tastes and odours; oxidises iron and manganese
Plain sedimentation Settleable suspended solids
Coagulation–flocculation–sedimentation Colloidal turbidity and colour
Filtration Remaining fine flocs, turbidity, some bacteria
Disinfection Pathogens
Softening Hardness

Screening

  • Coarse screens (bar racks) at the intake to exclude floating debris, and fine screens or micro-strainers for smaller matter and algae.
  • Cleaned manually or mechanically; velocity through screens kept low.

Aeration

Brings water into intimate contact with air:

  • Removes CO₂ (reduces corrosiveness), H₂S and volatile tastes and odours.
  • Adds oxygen — oxidises dissolved iron and manganese to insoluble forms that can be settled and filtered.

Types: spray aerators (nozzles), cascade aerators (water flows down steps), multiple tray aerators (perforated trays with coke/gravel), diffused air aerators (compressed air bubbled through water), mechanical aerators.

Sedimentation

Types of settling

Type Description Example
Type I — discrete settling Particles settle individually without interaction at constant velocity Plain sedimentation of sand/silt, grit chambers
Type II — flocculent settling Particles coalesce, grow and settle faster Coagulated water, primary sewage settling
Type III — zone (hindered) settling High concentration; particles settle as a mass with a distinct interface Secondary clarifiers (activated sludge)
Type IV — compression Particles form a structure compressed by the weight above Sludge thickeners, bottom of clarifiers
FormulaDiscrete settling

Stokes' law (laminar, , small particles):

Ideal settling basin (Camp–Hazen):

  • Surface overflow rate (SOR) (m³/m²/day) — equal to the settling velocity of the smallest particle removed completely.
  • Particles with are removed 100%; particles with are removed in the fraction .
  • Removal depends on surface area, not on depth (in theory).

Detention time ; horizontal velocity (kept below the scour velocity); weir loading = ÷ weir length.

Typical design values (clarifiers after coagulation, CPHEEO guidance): detention time about 2–2.5 h; surface loading about 30–40 m³/m²/day; weir loading not exceeding about 300 m³/m/day. Plain sedimentation tanks without coagulant need longer detention.

Types of tanks

  • Horizontal-flow rectangular tanks — long, narrow; inlet and outlet baffles; sludge scraped to a hopper.
  • Circular radial-flow tanks — central feed, peripheral weir; rotating scraper.
  • Upflow (hopper-bottom) tanks and sludge blanket clarifiers.
  • Tube (lamella) settlers — inclined tubes or plates reduce the settling distance, greatly increasing capacity in a small area.

Coagulation and flocculation

Colloidal particles (clay, colour, bacteria) are negatively charged and repel each other, so they do not settle. Coagulation destabilises them; flocculation gently brings them together into large, settleable flocs.

Mechanisms

  1. Charge neutralisation — positively charged hydrolysis products of coagulants neutralise particle charges.
  2. Double-layer compression.
  3. Sweep (enmeshment) coagulation — particles trapped in precipitating metal hydroxide flocs (dominant at usual alum doses).
  4. Inter-particle bridging — by long-chain polymers.

Coagulants

Coagulant Features
Alum — aluminium sulphate Most common; cheap; best pH about 6.5–8.5; consumes alkalinity
Ferrous sulphate (copperas) + lime For high pH waters; used where lime is added anyway
Chlorinated copperas (ferric sulphate + ferric chloride) Effective over a wide pH range; removes colour
Ferric chloride / ferric sulphate Wide pH range, dense flocs; corrosive
Sodium aluminate For waters low in alkalinity; also used in softening
Poly-aluminium chloride (PAC) Pre-hydrolysed; effective at low doses and low temperatures; less alkalinity consumed

Coagulant aids: activated silica, bentonite clay, polyelectrolytes (cationic, anionic, non-ionic polymers), lime or soda ash (to supply alkalinity or adjust pH).

Alum reaction with natural alkalinity:

1 mg/L of commercial alum (, molecular weight ≈ 666) consumes about 0.45 mg/L alkalinity as CaCO₃.

Jar test — samples dosed with different coagulant amounts are rapidly mixed, flocculated and settled in a gang stirrer; the dose giving the best clarity at least cost is the optimum dose.

Mixing and flocculation

FormulaVelocity gradient (Camp and Stein)

= power input (W); = dynamic viscosity; = volume of the tank.

Paddle flocculator: , where = relative velocity of paddles with respect to water (≈ 0.75 × paddle tip velocity).

The dimensionless product measures the opportunity for particle collisions.

  • Rapid (flash) mixing — intense agitation for a few seconds to about a minute (high ) to disperse coagulant uniformly: mechanical flash mixers, hydraulic jumps, baffles, in-line mixers.
  • Flocculation (slow mixing) — gentle agitation for about 10–40 minutes with low (commonly about 10–75 s⁻¹) so flocs grow without breaking: paddle flocculators, baffled channels.
  • Clariflocculator — a circular unit combining a central flocculation zone with an outer clarifier; widely used in India.

Part 2 of 2

Sewerage Systems, Sewer Appurtenances & Pumping of Sewage

Last reviewed 16 Sept 2026 · 10 min read

Terminology

Term Meaning
Sewage (wastewater) Liquid waste from toilets, kitchens, baths and industries, conveyed in sewers
Sullage Wastewater from kitchens, baths and wash basins — without human excreta (grey water)
Black water Wastewater from toilets containing excreta
Storm water Runoff from rainfall
Sewer Pipe or conduit carrying sewage
Sewerage The entire system — collection, conveyance, treatment and disposal of sewage
Dry weather flow (DWF) Sewage flow in sewers in the absence of storm water (domestic + industrial + infiltration)
Refuse General term for all wastes — garbage, rubbish, sewage, storm water
Garbage Dry refuse — decomposable food waste, paper, rags

Systems of sanitation

Conservancy system Water-carriage system
Night soil collected separately (dry latrines) and carried by people/carts; sullage and storm water in open drains Excreta and wastewater carried by water through closed sewers
Cheap initially but insanitary, foul smells, health risks; involves manual handling Hygienic, compact buildings, no nuisance; needs adequate water and high capital cost
Obsolete; manual scavenging is prohibited in India Standard for towns and cities

Sewerage systems

System Description Merits Demerits
Separate system Two sets of sewers — one for sanitary sewage, another for storm water Smaller sanitary sewers; less load on treatment plant; storm water discharged directly to streams; pumping cost low Two sets of pipes — costlier in congested streets; sanitary sewers may not be self-cleansing (small flows) needing flushing
Combined system Single sewer carries both sewage and storm water One set of pipes; sewers self-cleansing (large flows); easy house connections Large sewers; heavy load on pumps and treatment in rains; combined sewer overflows pollute streams
Partially separate system Part of storm water (e.g. from roofs and courtyards) admitted to sanitary sewers; the rest in storm drains Sewers reasonably self-cleansing; house drainage simple Increased pumping and treatment in monsoon

Choice: the separate system suits Indian conditions (short intense monsoon, long dry periods) — storm water can go to natural drains while sanitary sewers remain small; the combined system suits places with evenly distributed rainfall and flat areas where pumping is needed anyway.

Patterns of collection systems

  • Perpendicular pattern — sewers perpendicular to a stream; shortest lengths; for storm water or combined sewers discharging to rivers (untreated — not suitable for sanitary sewage now).
  • Interceptor pattern — an interceptor sewer along the river collects branch sewers and carries sewage to a treatment plant.
  • Radial pattern — sewers radiate outward to the periphery (land disposal around the town).
  • Fan pattern — all sewers converge to a single outlet/trunk sewer.
  • Zone pattern — area divided into zones with separate interceptors (hilly or large towns).

Sewer materials

Material Features
Salt-glazed stoneware (vitrified clay) Highly resistant to corrosion by acids and H₂S; smooth; brittle; small diameters — house and lateral sewers
Reinforced cement concrete (RCC) Most common for medium and large sewers; strong, durable; attacked by H₂S-derived acid at the crown if septic (use sulphate-resisting cement, linings); non-pressure (NP) classes as per IS 458
Brick masonry Large trunk sewers of any shape (older cities)
Cast iron / ductile iron Pressure mains (rising mains), crossings under roads, rail, rivers, and where leakage must be avoided
Steel Force mains, outfalls, crossings; needs corrosion protection
PVC, HDPE, double-wall corrugated (DWC) pipes Light, corrosion-free, smooth, long lengths with fewer joints; increasingly used
Asbestos cement Formerly used; light, smooth; attacked by acids and H₂S
GRP Corrosion-resistant large-diameter pipes

Sewer shapes

  • Circular — most common: minimum perimeter for a given area, easy to make, strong, hydraulically efficient.
  • Egg-shaped (ovoid) — narrow invert gives higher velocity at low flows — good for combined sewers with widely varying flows; costlier and less stable.
  • Horseshoe, semi-elliptical, basket-handle, U-shaped, rectangular — large sewers, tunnels, limited headroom.

Sewer appurtenances

Manholes

Openings to allow inspection, cleaning and repair of sewers.

  • Provided at every change of direction, gradient or diameter, at junctions, at the head of sewers, and at regular intervals on straight runs (spacing increases with sewer size — from about 30 m for small sewers to much larger intervals for big trunk sewers).
  • Types by depth: shallow manholes (inspection chambers, up to about 0.9 m deep), normal manholes (about 1.5 m), deep manholes (greater depth, with steps/ladders and a larger working chamber).
  • Parts: access shaft, working chamber, bottom benching with channels shaped to the sewer, cover and frame (cast iron or ductile iron/ FRP), steps.

Drop manhole — used when an incoming branch sewer is considerably higher than the outgoing sewer (drops of more than about 0.6 m); a vertical drop pipe outside (or inside) the manhole brings the sewage down so that it does not splash and damage the benching or endanger workers.

Other appurtenances

Appurtenance Purpose
Lamp hole Small vertical pipe from sewer to ground with a cover; a lamp lowered into it allows checking obstructions from the next manhole — where a manhole is not feasible
Clean-out Inclined pipe connected to the sewer at its upper end for inserting rods/flushing
Street inlets (gullies) Openings in kerbs or gutters admitting storm water; with gratings
Catch basins Chambers at street inlets that retain grit and debris before water enters the sewer (can breed mosquitoes if not cleaned)
Flushing tanks At the heads of sewers with low flows; periodically release a large volume to flush deposits (automatic tanks work with siphons)
Grease and oil traps Remove grease and oil from wastewater of hotels, restaurants, garages before it enters sewers
Inverted siphon (depressed sewer) Sewer dipping below the hydraulic gradient to pass under a river, railway or valley; flows full under pressure; multiple pipes for varying flows; needs self-cleansing velocity and cleaning provisions
Storm regulators (overflows) Divert excess flow of combined sewers to storm outfalls — leaping weir, side-flow weir, siphon spillway
Ventilating shafts / columns Release sewer gases
House connection Connects building drainage to the sewer through an inspection chamber and a gully/intercepting trap

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