What is the role of ultraviolet (UV) radiation in the water purification systems? 1. It inactivates/kills the harmful microorganisms in water 2. It removes all the undesirable odours from the water 3. It quickens the sedimentation of solid particles, removes turbidity and improves the clarity of water Which of the statements given above is/are correct?

Updated 11 Apr 2026

Contents13
UPSC Prelims GS2012Science and Technology
  1. A1 only
  2. B2 and 3 only
  3. C1 and 3 only
  4. D1, 2 and 3
Show answer

Answer: (A) 1 only

UV radiation in water purifiers works by damaging the DNA of microorganisms, thereby inactivating or killing bacteria, viruses, and protozoa (statement 1 correct).

However, UV treatment does NOT remove odours from water — that requires activated carbon filters (statement 2 wrong).

UV also does NOT help with sedimentation or turbidity removal — in fact, high turbidity reduces UV effectiveness because particles shield microorganisms from UV rays (statement 3 wrong).

Answer: 1 only.

Why this was asked

UV radiation damages DNA of bacteria, viruses, and protozoa in water, making it a chemical-free disinfection method used in many modern water purifiers.

The trap here is assuming UV does everything in water treatment - it only disinfects, while odour removal needs activated carbon and turbidity removal needs physical filtration or coagulation.

UPSC is testing whether students can distinguish between different water treatment methods and their specific functions rather than assuming one technology does everything.

UV Radiation in Water Purification

Science And Technology ultraviolet UV radiation water purification

UV Radiation in Water Purification: Mechanism & Limitations

Must know

UV radiation kills microorganisms by damaging their DNA structure

UV does NOT remove odours — that requires activated carbon filters

UV does NOT help sedimentation or remove turbidity from water

Good to know

High turbidity reduces UV effectiveness as particles shield microorganisms

How UV Works

UV radiation disinfects water by penetrating microorganisms and damaging their DNA structure. This prevents bacteria, viruses, and protozoa from reproducing, effectively killing them without adding chemicals to the water.

What UV Can & Cannot Do

Water Treatment Need

UV Effectiveness

Alternative Method Required

Kill bacteria/viruses

Highly effective

None

Remove odours

Cannot do

Activated carbon filters

Remove turbidity

Cannot do

Sedimentation, coagulation

Improve water clarity

Cannot do

Filtration, settling tanks

Remove dissolved salts

Cannot do

RO, distillation

UV Disinfection Process

%%{init: {"flowchart": {"wrappingWidth": 460}}}%%
flowchart TD
  s1["`**UV Lamp Emission**
UV-C light (254 nm wavelength) penetrates water`"]
  s2["`**DNA Absorption**
Microorganisms absorb UV radiation through cell walls`"]
  s3["`**DNA Damage**
UV breaks DNA bonds, creating thymine dimers`"]
  s4["`**Reproduction Block**
Damaged DNA prevents cell division and reproduction`"]
  s5["`**Microorganism Death**
Unable to reproduce, pathogens become inactive/die`"]
  s1 --> s2
  s2 --> s3
  s3 --> s4
  s4 --> s5

Key Limitations

Requires pre-filtration — turbid water shields microorganisms from UV rays

No residual protection — water can get recontaminated after UV treatment

Power dependent — needs continuous electricity supply to function

Cannot remove chemical contaminants or dissolved impurities

Exam traps

Trap: Statement 2 confuses UV with activated carbon — only carbon removes odours

Trap: Statement 3 confuses UV with coagulation/sedimentation processes

Common error: Thinking UV is a complete water treatment solution — it only disinfects

Reversal trap: High turbidity reduces UV effectiveness, doesn't improve it

Water Treatment & Purification Methods

Science And Technology water purification systems

Water Treatment Methods: Physical, Chemical & Biological

Must know

Physical methods: sedimentation, filtration, UV — remove particles and kill pathogens

Chemical methods: chlorination, ozonation — disinfect and remove specific contaminants

Activated carbon: removes odours, colours, and organic compounds

Good to know

RO (Reverse Osmosis): removes dissolved salts and heavy metals

Water Treatment Methods Comparison

Method

Primary Function

Removes

Cannot Remove

Sedimentation

Physical settling

Suspended particles, turbidity

Microorganisms, odours

Filtration

Physical straining

Particles, some bacteria

Viruses, dissolved salts

UV Radiation

DNA damage

Bacteria, viruses, protozoa

Particles, odours, chemicals

Chlorination

Chemical oxidation

Microorganisms, some odours

Heavy metals, fluoride

Activated Carbon

Adsorption

Odours, colours, organics

Salts, hardness, fluoride

Reverse Osmosis

Membrane filtration

Salts, heavy metals, most contaminants

Requires high pressure

Multi-Stage Water Treatment

# Complete Water Treatment Plant
## Pre-Treatment
- Screening
- Coagulation
- Flocculation
- Sedimentation
## Primary Treatment
- Sand Filtration
- Activated Carbon
- Turbidity Removal
## Disinfection
- UV Treatment
- Chlorination
- Ozonation
## Advanced Treatment
- RO
- Ion Exchange
- Distillation

Water Treatment Process

Flowchart diagram showing multi-stage water treatment process from raw water intake through sedimentation, filtration, disinfection to final treated water

Complete water treatment requires multiple stages — UV alone cannot purify water

Microorganism Control & Disinfection

Science And Technology harmful microorganisms

Methods of Microorganism Control: Physical vs Chemical

Must know

Physical methods: heat, UV, filtration — kill without chemicals

Chemical methods: chlorine, ozone, iodine — oxidize cell components

Good to know

UV-C wavelength (254 nm) is most effective for DNA damage

Sterilization kills all microorganisms; disinfection reduces to safe levels

Disinfection Methods in Water Treatment

Method

Mechanism

Advantages

Disadvantages

UV Radiation

DNA damage

No chemicals, instant kill

No residual protection, power dependent

Chlorination

Cell wall oxidation

Residual protection, low cost

Forms harmful byproducts (THMs)

Ozonation

Strong oxidation

No harmful byproducts

Expensive, no residual effect

Boiling

Protein denaturation

100% effective, simple

Energy intensive, not practical for large scale

Target Microorganisms

Bacteria: E. coli, Salmonella, Cholera — killed by UV in seconds

Viruses: Hepatitis, Polio — smaller but equally vulnerable to UV

Protozoa: Giardia, Cryptosporidium — larger parasites, need higher UV doses

Spores: Most resistant form — may require combined treatment methods

Question Context

This 2012 UPSC question tested whether students understood that UV only disinfects — it cannot perform other water treatment functions like odour removal or particle settling that require different mechanisms.