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Chapter 1 of 7

Air & noise pollution control

In the APPSC Assistant Environmental Engineer syllabus under Environmental Engineering & Pollution Control · 2 parts

📑 Contents (20 sections)

Part 1 of 2

Air Pollution & Its Control

Last reviewed 16 Sept 2026 · Facts as of 16 Sept 2026 · 12 min read

Air and air pollution

Clean dry air is about 78% nitrogen, 21% oxygen, 0.93% argon, about 0.04% carbon dioxide and traces of other gases, plus variable water vapour.

Air pollution is the presence in the atmosphere of substances in concentrations and durations that cause harm to human health, living organisms, materials or the environment. In India it is legally defined under the Air (Prevention and Control of Pollution) Act, 1981.

Sources and classification

Basis Classes
Origin Natural (volcanoes, dust storms, forest fires, pollen, sea spray) and anthropogenic (industries, vehicles, power plants, domestic fuel, burning of waste and crop residue, construction dust)
Source geometry Point (stacks), line (highways), area (cities, industrial estates)
Mobility Stationary (industries, power plants) and mobile (vehicles, aircraft, ships)
Formation Primary pollutants — emitted directly (SO₂, NOx, CO, particulates, hydrocarbons); secondary pollutants — formed in the atmosphere by reactions (ozone, PAN — peroxyacetyl nitrate, sulphuric acid mist, secondary nitrate and sulphate aerosols)
Physical state Particulate (dust, fumes, smoke, mist, fog, fly ash, aerosols) and gaseous

Particulate matter terms: dust (solid particles from mechanical processes), fumes (fine solids from condensation of vapours, e.g. metal fumes), smoke (fine particles from incomplete combustion), mist (liquid droplets), fly ash (fine ash from combustion), PM₁₀ (aerodynamic diameter ≤ 10 µm — inhalable) and PM₂.₅ (≤ 2.5 µm — fine, penetrates deep into the lungs).

Major pollutants and their effects

Pollutant Main sources Effects
Particulate matter (PM₁₀, PM₂.₅) Vehicles, road and construction dust, combustion, industries, biomass burning Respiratory and cardiovascular diseases, reduced visibility, soiling
Sulphur dioxide (SO₂) Burning of coal and oil (power plants, smelters) Respiratory irritation; acid rain; damage to vegetation (chlorosis and necrosis of leaves); corrosion of materials
Oxides of nitrogen (NOx) High-temperature combustion — vehicles, power plants Respiratory effects; acid rain; precursor of photochemical smog and ozone
Carbon monoxide (CO) Incomplete combustion — vehicles, stoves Combines with haemoglobin (about 200 times more strongly than oxygen) forming carboxyhaemoglobin — reduces oxygen delivery; headache, dizziness, death at high levels
Ozone (O₃) (ground-level, secondary) NOx + VOCs + sunlight Eye and lung irritation, crop damage, rubber cracking
Hydrocarbons / VOCs (e.g. benzene) Vehicles, solvents, fuel evaporation Smog precursors; benzene is carcinogenic
Lead Earlier from leaded petrol; smelters, batteries Neurotoxic — especially harmful to children
Ammonia Agriculture, fertiliser plants Secondary particle formation, irritation
Fluorides Aluminium smelters, phosphate fertiliser plants Fluorosis in cattle, damage to vegetation
Benzo(a)pyrene, arsenic, nickel Combustion, industries Carcinogenic

Indoor air pollution — from cooking with biomass and kerosene, tobacco smoke, radon, formaldehyde and VOCs — is a major health risk, especially for women and children in rural households.

Bhopal gas tragedy (1984) — leak of methyl isocyanate (MIC) from a pesticide plant; one of the worst industrial disasters, which led to stronger environmental and liability laws in India.

Global and regional issues

Acid rain

SO₂ and NOx oxidise to sulphuric and nitric acids that fall with rain (pH below about 5.6). Effects: acidification of lakes and fish kills, forest damage, leaching of soil nutrients, corrosion of buildings and monuments (e.g. marble cancer concerns for the Taj Mahal).

Greenhouse effect and global warming

Greenhouse gases — CO₂, CH₄, N₂O, CFCs/HFCs, water vapour, tropospheric ozone — absorb outgoing infrared radiation and warm the earth. Increasing concentrations cause global warming, sea-level rise, changing rainfall patterns and extreme events. Gases differ in global warming potential (GWP) relative to CO₂.

Ozone layer depletion

Stratospheric ozone absorbs harmful UV-B radiation. CFCs, halons, carbon tetrachloride, methyl chloroform release chlorine and bromine that destroy ozone (the Antarctic ozone hole). Controlled under the Montreal Protocol (1987); the Kigali Amendment (2016) phases down HFCs (potent greenhouse gases). Ozone thickness is measured in Dobson units.

Smog

Classical (London / sulphurous) smog Photochemical (Los Angeles) smog
Smoke + fog + SO₂ NOx + hydrocarbons + sunlight → O₃, PAN, aldehydes
Cool, humid winter conditions; reducing Warm, sunny conditions; oxidising
Respiratory distress (London, 1952) Eye irritation, respiratory effects, crop damage

National Ambient Air Quality Standards (NAAQS, 2009)

Notified by CPCB for 12 pollutants (values for industrial, residential, rural and other areas):

Pollutant Annual average 24-hour average
SO₂ (µg/m³) 50 80
NO₂ (µg/m³) 40 80
PM₁₀ (µg/m³) 60 100
PM₂.₅ (µg/m³) 40 60
Ozone (µg/m³) — 100 (8-hour), 180 (1-hour)
Lead (µg/m³) 0.5 1.0
CO (mg/m³) — 2 (8-hour), 4 (1-hour)
Ammonia (µg/m³) 100 400
Benzene (µg/m³) 5 —
Benzo(a)pyrene (ng/m³) 1 —
Arsenic (ng/m³) 6 —
Nickel (ng/m³) 20 —

(Stricter annual limits apply to SO₂ and NO₂ in ecologically sensitive areas.)

Air Quality Index (AQI)

India's National AQI (launched 2014) combines up to eight pollutants (PM₁₀, PM₂.₅, NO₂, SO₂, CO, O₃, NH₃, Pb) into one number; the overall AQI is the highest sub-index.

AQI Category
0–50 Good
51–100 Satisfactory
101–200 Moderately polluted
201–300 Poor
301–400 Very poor
401–500 Severe

National Clean Air Programme (NCAP) — launched in January 2019 to reduce particulate pollution in non-attainment cities through city action plans (targets have been revised over time; check current MoEFCC documents).

Air pollution meteorology

Lapse rates and stability

  • Environmental lapse rate (ELR) — actual rate of temperature decrease with height.
  • Dry adiabatic lapse rate (DALR) — cooling of a rising dry air parcel ≈ 9.8 °C per km (about 1 °C per 100 m).
  • Wet adiabatic lapse rate — lower (about 6 °C per km) due to latent heat release.
Condition Atmosphere
ELR > DALR (super-adiabatic) Unstable — strong vertical mixing (good dispersion)
ELR = DALR Neutral
ELR < DALR (sub-adiabatic) Stable — little vertical mixing
Temperature increases with height (negative lapse rate) Inversion — very stable; traps pollutants

Inversions: radiation inversion (clear calm nights — ground cools rapidly; common in winter mornings), subsidence inversion (sinking air in high-pressure systems; persistent, at elevation).

Maximum mixing depth (height) — the height up to which convective mixing occurs; low mixing heights (winter nights and mornings) cause high pollution levels.

Plume behaviour

Plume Atmospheric condition Remarks
Looping Super-adiabatic (highly unstable) Large eddies bring the plume to the ground intermittently — high short-term ground concentrations near the stack
Coning Neutral or slightly stable Cone-shaped spread; reaches ground farther away
Fanning Strong inversion/stable (at stack height) Spreads horizontally, little vertical spread; low ground concentration unless terrain rises
Lofting Inversion below the stack, unstable above Pollutants dispersed upwards — most favourable
Fumigation Inversion above the stack, unstable below Pollutants pushed down to the ground — most unfavourable (morning break-up of a night inversion)
Trapping Inversions both above and below the stack Plume confined between layers

Dispersion and stack height

FormulaGaussian plume (ground-level concentration, reflection from ground)

= emission rate; = wind speed at stack height; , = dispersion coefficients (depend on distance and stability class); = effective stack height (physical height + plume rise).

Maximum ground-level concentration on the centreline occurs approximately where .

Plume rise increases with exit velocity and gas temperature (buoyancy) — e.g. Holland's and Briggs' formulas.

FormulaMinimum stack height (Indian emission regulations)
  • Based on SO₂ emission: — in kg/h of SO₂
  • Based on particulate emission: — in tonnes/h of particulates
  • The larger value is adopted, subject to a minimum stack height (commonly 30 m).

Part 2 of 2

Noise Pollution

Last reviewed 16 Sept 2026 · 7 min read

Sound and noise

Sound is a pressure wave transmitted through a medium. Noise is unwanted sound — sound that is loud, unpleasant or disturbing.

  • Frequency (Hz): audible range for healthy young humans is about 20 Hz to 20 000 Hz; below 20 Hz — infrasound; above 20 000 Hz — ultrasound. The ear is most sensitive around 2000–5000 Hz.
  • Wavelength ( ≈ 343 m/s in air at 20 °C).
  • Pitch relates to frequency; loudness relates to intensity (and frequency).

Decibel scale

The ear responds to a very wide range of pressures, so a logarithmic scale is used.

FormulaSound levels

Sound intensity level:

Sound pressure level:

Sound power level:

  • 0 dB — threshold of hearing; about 120–140 dB — threshold of pain.
  • Doubling intensity adds about 3 dB; a 10 dB increase is perceived roughly as twice as loud.

Adding sound levels

  • Two equal sources: dB.
  • equal sources: .
  • If two levels differ by more than about 10 dB, the lower one adds almost nothing.

Attenuation with distance (free field)

  • Point source (spherical spreading): → 6 dB decrease per doubling of distance.
  • Line source (busy road, cylindrical spreading): → 3 dB per doubling.
  • Additional attenuation by air absorption (high frequencies), ground, barriers and vegetation.

Frequency weighting

Sound level meters use weighting networks to approximate human hearing: A-weighting — dB(A) (most common for environmental and occupational noise); C-weighting for high-level and low-frequency noise.

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