By the end of this chapter you'll be able to…

  • 1Define pressure as force per unit area, write Pressure = Force ÷ Area, and state the restriction to perpendicular forces
  • 2Give the SI unit as newton/metre² (N/m²) or pascal (Pa), and derive it from the units of force and area
  • 3Calculate pressure in everyday situations, converting areas to m² and remembering to use the TOTAL contact area
  • 4Explain broad straps, broad handles, head-cloths, sharp knives and pointed nails as choices about area
  • 5State that the pressure exerted by a liquid depends on the HEIGHT of its column, not on the quantity of liquid
  • 6Explain, from Activity 6.1's design, why the weight of water was ruled out as the cause of the bulge
  • 7State that liquids exert pressure on the sides of a container as well as the bottom — in fact in all directions
  • 8Explain overhead tanks, leaking pipes, taps on different floors and the broad base of a dam
  • 9Define atmospheric pressure and describe Activities 6.3 and 6.4 as evidence that air exerts pressure
  • 10Explain why a rubber sucker sticks to a smooth surface and not to a rough one
  • 11State the magnitude of atmospheric pressure the chapter gives, and explain why we are not crushed by it
  • 12State that air moves from high pressure to low pressure, and that wind speed depends on the size of the difference
  • 13Explain sea breeze and land breeze in terms of unequal heating and the resulting pressure differences
  • 14State that high-speed winds are accompanied by reduced pressure, and apply it to roofs, open windows, banners and a paper strip
  • 15Describe the formation of a storm, a thunderstorm and lightning, including why insulating air is necessary for lightning
  • 16Describe how a cyclone forms, what the eye is, and why a cyclone weakens over land
💡
Why this chapter matters
The chapter that gets from a schoolbag strap to a cyclone in sixteen pages, without ever changing the subject. It starts with two equally heavy bags that feel completely different, which forces a new quantity into existence: force per unit area. Then it asks the same question of liquids and of air, and the answers arrive through experiments designed so cleanly that the wrong explanation is eliminated rather than argued away — two pipes of different widths filled to the same height, one chart-paper sheet folded and unfolded so the weight cannot change. Air turns out to press on every 15 cm square of us with the equivalent of 225 kg, and we survive because pressure alone never hurts anything — only a pressure DIFFERENCE does. That single idea then explains everything left in the chapter: why a sucker sticks, why wind blows at all, why fast wind lowers pressure and lifts roofs off houses, why banners have holes in them, and why a cyclone with a 14 millibar dip at its centre can produce winds of 270 km/h.

Pressure, Winds, Storms, and Cyclones — Class 8 Science (Curiosity)

"Both our bags are equally heavy. Why does your bag hurt, and mine doesn't?" — Megha, Curiosity, Grade 8, page 81

1. About the Chapter

This is Chapter 6 of Curiosity (pages 80–97, Reprint 2026-27). It opens with fallen leaves swirling, trees bending and doors slamming, and names the thing they have in common: The force exerted by wind creates wind pressure which causes these effects.

SectionQuestion
6.1What is pressure? Do liquids exert it?
6.2Does air exert pressure?
6.3How does wind form?
6.4What do high-speed winds do to the pressure?
6.5Storms, thunderstorms and lightning
6.6Cyclones

The single thread. Pressure is force per unit area. Everything after page 82 is that one idea applied to liquids, to air, and finally to weather — and the closing insight is that pressure by itself never damages anything. Only a pressure difference does.


2. Pressure

The bag straps

Megha and Pawan carry equally heavy bags. Pawan's hurts; Megha's does not. Pawan works out why himself: My bag has narrow straps while your bag has broad straps.

The weight of the bag with narrow straps acts on a smaller area of our shoulders, whereas the weight of the bag with broad straps is spread out over a larger area.

The force is identical in the two cases, so the force cannot be the explanation. Only the area has changed — which forces a new quantity into existence:

Pressure = Force ÷ Area

At this stage, we will consider only those forces which act perpendicular to the surface on which the pressure is to be computed.

The unit

Force is measured in newton, area in metre². So pressure is measured in newton/metre² (N/m²), also called the pascal (Pa). You never need to memorise it separately — it falls straight out of the formula.

Worked example from the chapter: a force of 100 N on 2 m² gives 100 ÷ 2 = 50 N/m².

The same idea, used both ways

Want LOW pressure → make the area BIGWant HIGH pressure → make the area SMALL
Broad schoolbag strapsThe pointed end of a nail
Broad bucket handleThe sharp edge of a knife
Cloth ring under a head-loadNeedles, pins, drawing pins
Wide tractor tyres, snowshoesStuds on sports shoes

Table 6.1 asks you to test the second column: a nail driven by its point goes in easily, by its head it does not; a knife cuts with its sharp edge, not its blunt one.

When the area over which a force applied is smaller, the resulting pressure is higher, making it easier to do certain tasks.

Nothing here reduces the load. Broad straps do not make a bag lighter — they lower the pressure. Keeping force and pressure apart is the whole of section 6.1.


3. Liquids Exert Pressure

Activity 6.1 — and why it is designed that way

Two pipes of the same length but different diameters, balloons tied to their lower ends, filled with water to the same level.

Because the pipes differ in width, they hold different weights of water — so the two candidate explanations make different predictions:

If the cause is…Then…
the weight of the waterthe wide pipe's balloon should bulge more
the height of the columnboth should bulge the same

Both bulge equally. This means that the weight of water in the pipes could not be responsible for the extent of the bulge of the balloons.

Then pour more water into one pipe. The bulge grows.

The pressure exerted by a liquid in a vessel depends on the height of its column.

That is the whole result, and it is counter-intuitive: the quantity of water is irrelevant. A wide tank holding far more water, at the same height, gives exactly the same pressure at the tap.

Activity 6.2 — sideways too

Four small holes near the bottom of a bottle, all at the same height, sealed with tape. Fill it, remove all the tapes at once.

Water spurts from all four.

Liquids exert pressure not only at the bottom of the container, but also on its sides. In fact liquids exert pressure in all directions.

What follows

  • Overhead tanks are placed high so the column above the taps is taller — resulting in a good stream of water from the taps.
  • The ground floor gets a stronger stream than the top floor, because the column above it is taller.
  • Water spurts from leaking pipe joints in any direction, because water presses outward on the pipe wall everywhere.
  • A dam's base is broader than its top. The pressure which acts horizontally is very large near its bottom — so the wall is thin where the push is small and thick where it is large. The shape of a dam is a drawing of the pressure it must resist.

4. Air Exerts Pressure

The envelope of air surrounding the Earth is called atmosphere — nitrogen, oxygen, argon, carbon dioxide and other gases in small quantities, extending up to many kilometres.

Activity 6.3 — one sheet, folded and unfolded

An inverted paper plate with a stick, covered first by a chart-paper sheet folded twice, then by an identical sheet unfolded. Lift by the stick each time.

The unfolded sheet is harder to lift — and here is the point of using the same sheet: the weight of the covering sheet has not changed. Only the area has.

Air exerts force on the covering sheet ... this force increases with increase in the area of covering sheets. As force per unit area is pressure, we can conclude that air exerts pressure.

The pressure exerted by the air around us is atmospheric pressure. And it acts in all directions — which is why an inflating balloon expands in all directions.

Activity 6.4 — the sucker

Press a rubber sucker onto a smooth flat surface. It sticks, and is hard to pull off.

Most of the air between its cup and the surface is pushed out and the air pressure inside it is reduced. The sucker sticks because the pressure of air surrounding the sucker is higher than the pressure exerted by the air inside.

Nothing is pulling it in — the outside air is pushing it in. On a rough surface air leaks back in, the difference disappears, and it falls off.

How big is atmospheric pressure?

The force exerted by the atmospheric air column over an area 15 cm × 15 cm is nearly equal to the force of gravity on an object of mass 225 kg (2250 N).

Check it: 0.15 m × 0.15 m = 0.0225 m², so 2250 ÷ 0.0225 = 1,00,000 N/m² — which is 1000 hPa, sitting squarely inside the 994–1008 mb range on Fig. 6.19. The book's figure is internally consistent.

So why are we not crushed? The pressure inside our bodies is also equal to the atmospheric pressure. This balances the pressure exerted from outside.

This is the key idea of the whole chapter. Pressure alone never hurts anything. Only a difference does — which is what holds the sucker on, and what will lift a roof off a house four pages later.

1 millibar (mb) = 1 hectopascal (hPa) = 100 Pa. Weather maps use these because the interesting differences are only a few hundred pascals.


5. How Wind Forms

Activity 6.5

One inflated balloon and one empty one, joined by a straw. Predict first, then watch.

The inflated one shrinks, the empty one swells — and then the flow stops, with both nearly the same size.

The air flow stops when the pressure in both balloons becomes equal.

Air moves from a region of high air pressure to a region of low air pressure.

The stopping is the more informative half. That air moved shows a flow happened. That it stopped exactly when the pressures matched — with plenty of air still in both balloons — identifies the pressure difference as the cause.

And: the speed of the air is higher if the pressure difference is higher.

Sea breeze and land breeze

Day — sea breezeNight — land breeze
WarmerLandSea
Air rises overLandSea
Low pressure overLandSea
Wind blowsSea → landLand → sea

Nothing about the mechanism changes between day and night. What reverses is which side is warmer. A breeze is named for where it comes from.


6. Fast Wind Means Low Pressure

Activity 6.6

Two balloons hung 6–10 cm apart. Blow into the gap between them.

They move towards each other — and blowing harder brings them together faster.

When you blow air between the balloons, a low pressure area is created between them. The higher air pressure surrounding the balloon pushes them towards each other.

High speed winds are accompanied by a reduced air pressure.

Almost everyone predicts the opposite. That blowing harder strengthens the effect rules out the obvious alternative — your breath is not simply shoving them.

Three consequences

Roofs blown off. Fast wind over a house lowers the pressure above the roof, while the still air inside stays at high pressure. The roof is pushed up from below — not pulled off from above.

So open the doors and windows. It sounds backwards, and it is exactly right: a sealed house preserves the high indoor pressure that does the lifting. Letting the wind through means the pressure difference between inside of the houses and over the roofs is reduced to a large extent.

Holes in banners and hoardings. Same problem, flat sheet. The holes let air through so the two faces come closer to the same pressure, and the force on the structure drops.


7. Storms, Thunderstorms and Lightning

A storm. Heated land → warm moist air rises → low pressure → cooler air flows in and is heated in turn → continuous circulation. The rising air cools, moisture condenses into clouds, drops merge and fall as rain, hail or snow. The strong winds accompanied by rain is called a storm.

Charges. Air rising high enough turns droplets into ice particles. Strong up-and-down winds rub ice and water together — and rubbing charges things, as you learnt in Exploring Forces.

ParticlesChargeWhere
Ice particles (lighter)PositiveUpper part of the cloud
Water droplets (heavier)NegativeLower part of the cloud

The negative cloud base then makes the ground and nearby objects positively charged.

Lightning. Normally, air acts as an electrical insulator and does not let opposite charges meet. That is why charge accumulates instead of leaking away. But when the build up of charges becomes very large, the insulating property of air breaks down. A sudden flow of charges takes place, producing a bright flash of light called lightning.

It happens within a cloud, between clouds, or between a cloud and the ground. The flash heats the air, which expands and makes thunder.

A storm accompanied by lightning and thunder is called a thunderstorm.

Requirements: moisture and strong winds.

Local Indian thunderstorms

NameRegionUse
KalboishakhiWest Bengal, Bihar, JharkhandPre-monsoon; helps kharif crops
BordoisilaAssamPre-monsoon; helps kharif crops
Mango showersKerala, Karnataka, Tamil NaduSupport the ripening of mangoes
(local storms)KarnatakaHelp coffee plants grow

Safety, as the chapter gives it

  • Stay away from tall objects.
  • Find a low-lying open area and crouch down, minimising contact with the ground.
  • Do not lie down flat.
  • Avoid an umbrella with a metallic rod.
  • Get out of water.
  • If you are inside a bus or a car, you are comparatively safer.

A lightning conductor is a metal rod running the height of a building, its pointed end above the highest point and its other end buried deep in the ground. It does not stop lightning — it provides easy path for the transfer of electric charges into the ground.


8. Cyclones

Cyclones are large storms that form over warm ocean waters.

  1. Warm, moist air over the ocean rises.
  2. Water vapour condenses into raindrops.
  3. Heat is released by that condensation — causing further warming of the ascending air leading it to rise even further, creating an even lower pressure. This is a feedback loop, and it is what makes a cyclone so much stronger than an ordinary storm.
  4. Surrounding air rushes in.
  5. Earth's rotation causes the moving air to spin.
  6. The cycle repeats → a very low-pressure area with high-speed winds revolving around it.

This spinning system of clouds, winds, and rain is called a cyclone.

The eye. In a cyclone, the region of lowest pressure is at the centre — and at the eye of the cyclone, the wind is calm, while the surrounding region has strong winds and heavy rain. Not a contradiction: wind is driven by a pressure difference, and at the exact centre the pressure is equally low all around.

Over land it weakens, because the source of moist air is cut off and the condensation feedback starves. But it leaves behind a trail of destruction that can take months or even years to repair.

The chapter's figures: Amphan (2020) reached peak wind speeds of 270 km/h; a storm surge can be 3–12 metres high.

The damage is mostly not the wind. Storm surge and flooding, rivers overflowing, landslides, contaminated drinking water, salt in the farmland, roads blocked by fallen trees, and power outages lasting days.

Protection: stay updated on IMD alerts, keep an emergency kit ready beforehand, and move to a designated cyclone shelter. Satellites let cyclones be tracked and their paths predicted — a cyclone cannot be prevented, but the warning time can be.


9. Summary

  • Pressure = Force ÷ Area, in N/m² or pascal.
  • Liquid pressure depends on the height of the column, and acts in all directions.
  • Air exerts atmospheric pressure — about 1,00,000 Pa, balanced by the pressure inside our bodies.
  • Air flows high pressure → low pressure; that is wind, and it is faster when the difference is bigger.
  • High-speed winds are accompanied by reduced pressure — roofs, banners, hanging balloons.
  • A storm needs moisture and strong winds; a thunderstorm adds ice particles, charge separation and the breakdown of insulating air; a cyclone adds warm ocean water and Earth's rotation.
  • The IMD monitors cyclones and thunderstorms in India.

The one sentence to carry away: nothing in this chapter is damaged by pressure. Everything is damaged by a pressure difference.


Appendix — What Belongs Elsewhere, Not to This Chapter

An earlier version of this page had the right title and the wrong chapter. It taught geography and disaster management in place of the physics, and it carried figures with no source.

Topic on the old pageWhere it belongs
India's summer and winter monsoon systems in detailSocial Science / Geography
Global wind systemsHigher grades
Cyclone category table (Saffir–Simpson, "modified for India")Not in this book — the chapter gives no categories
A list of six named Indian cyclones with a death tollNot in this book — the chapter names one, Amphan 2020
Institutions and named meteorologistsNot in this chapter, which names only the IMD
Atmospheric composition percentagesNot in this book — the chapter lists the gases without percentages

And the unsourced numbers, all removed: "~80% of India's annual rainfall", "70% of cultivated land", "10,000+ deaths", "Cherrapunji ~12,000mm", "IMD 1875, world's oldest national met service". None appears in the chapter and none was sourced. If you want figures like these, take them from a current IMD or government publication and cite it.

What was missing, and is now restored: Activities 6.1 to 6.6, liquid pressure and its dependence on column height, that liquids press in all directions, the overhead-tank and dam reasoning, the rubber sucker, the whole of section 6.4 on high-speed winds, and the lightning conductor. Those sections are where eight of the thirteen exercise questions come from.

Key formulas & results

Everything you need to memorise, in one card. Screenshot this for revision.

Pressure
Pressure = Force ÷ Area
Only forces acting PERPENDICULAR to the surface, at this stage
SI unit of pressure
newton/metre² (N/m²) = pascal (Pa)
Follows directly from the units of force and area
Force from pressure
Force = Pressure × Area
The rearrangement that answers exercise 1(iv)
Practical units of air pressure
1 millibar (mb) = 1 hectopascal (hPa) = 100 Pa
Fig. 6.19 marks 994 to 1008 mb
Same force, smaller area
smaller area → HIGHER pressure
Nail points, knife edges, needles, studs
Same force, larger area
larger area → LOWER pressure
Broad straps, broad handles, head-cloths, wide tyres
Liquid pressure
depends on the HEIGHT of the liquid column
Not on the quantity of liquid, and not on the width of the vessel
Direction of liquid pressure
on the bottom AND the sides — in all directions
Activity 6.2's four side jets
Atmospheric pressure
the pressure exerted by the air around us
2250 N over a 15 cm × 15 cm patch — that is 1,00,000 Pa
Why we are not crushed
the pressure inside our bodies balances it
Damage needs a pressure DIFFERENCE, not pressure
Wind
air moves from HIGH pressure to LOW pressure
It stops when the pressures become equal
Wind speed
higher if the pressure difference is higher
Qualitative only — no formula in this chapter
High-speed winds
fast-moving air → REDUCED pressure
Balloons drawn together, roofs lifted, banners torn
Thunderstorm requirements
moisture + strong winds
Straight from the Snapshots
Charge in a cloud
positive ice particles ABOVE · negative water droplets BELOW
Separated by strong up-and-down winds
Eye of a cyclone
the LOWEST pressure, and the CALMEST wind
The strong winds are just outside it
⚠️

Common mistakes & fixes

These are the exact errors that cost students marks in board exams. Read them once, save yourself the trouble.

WATCH OUT
Saying a bigger tank, or more water, gives more pressure at the tap
Liquid pressure depends on the HEIGHT of the column, not the amount of liquid. Activity 6.1 proved it: two pipes of different diameters, holding different weights of water, filled to the same level, gave IDENTICAL bulges. This is exercise 1(iii).
WATCH OUT
Answering exercise 1(iv) with (a), P_A = P_B and F_A = F_B
The pressures ARE equal, because the levels are equal. But Force = Pressure × Area, and vessel B has the wider base, so F_B is larger. The answer is (b): P_A = P_B, F_A < F_B. Two ideas have to be held at once.
WATCH OUT
Writing that liquids exert pressure only at the bottom of a container
Activity 6.2's four side holes all spurt water. 'Liquids exert pressure not only at the bottom of the container, but also on its sides. In fact liquids exert pressure in all directions.' This is exercise 2(ii).
WATCH OUT
Dividing by one foot's area in the elephant question
The elephant stands on FOUR feet, so the total contact area is 4 × 0.25 = 1 m², giving 20000 Pa. Dividing by 0.25 m² gives 80000 Pa — four times too large, and the commonest wrong answer to exercise 4.
WATCH OUT
Comparing the number of people, or the total weight, in the two-boat question
Boat A carries MORE total weight (3500 N against 2100 N) and is under LESS pressure (500 Pa against 600 Pa), because its base is twice as large. Only force per unit area decides it. And the question asks 'by how much' — give the 100 Pa difference.
WATCH OUT
Expecting blowing between two hanging balloons to push them apart
They come together. Fast-moving air between them is at a LOWER pressure, and the still air outside pushes them inward. Blowing harder makes it stronger, not weaker — which rules out the idea that your breath is simply pushing them.
WATCH OUT
Saying the wind lifts a roof off from above
The roof is pushed UP from below. The fast wind only lowers the pressure above it; the lifting is done by ordinary still air inside the house, which was always there and was previously balanced.
WATCH OUT
Saying doors and windows should be shut during a high-wind storm
The chapter says the opposite. A sealed house PRESERVES the high indoor pressure that lifts the roof. Opening up lets the wind through so 'the pressure difference between inside of the houses and over the roofs is reduced to a large extent'.
WATCH OUT
Saying lightning happens because air conducts electricity
Backwards. 'Normally, air acts as an electrical insulator and does not let opposite charges meet' — which is what lets charge build up to an enormous level. Lightning happens when that insulating property BREAKS DOWN. Exercise 6 tests exactly this.
WATCH OUT
Saying the weather is stormy at the eye of a cyclone
At the eye the wind is CALM, though the pressure there is the lowest in the system. The strong winds and heavy rain are in the surrounding region. This is exercise 2(iii), and it is why people caught in the eye sometimes come out too early.
WATCH OUT
Answering exercise 9 without checking the time of day
It is a summer AFTERNOON, so the daytime case applies: land heats faster, low pressure forms over land, and the sea breeze blows from sea to land. The trees lean towards A, so B is the sea and A is the land. At night the answer would reverse.
WATCH OUT
Quoting cyclone categories, casualty figures, monsoon rainfall percentages or air composition percentages
None of these is in the chapter. It names one cyclone (Amphan 2020, 270 km/h), one surge range (3-12 m), one organisation (IMD), and lists the atmospheric gases WITHOUT percentages. Anything more needs a source you have actually checked and cited.
WATCH OUT
Forgetting the unit on a pressure answer
A bare number is not a pressure. Write N/m² or Pa. It is also a check on your working: if the units come out as N or m², you have divided the wrong way round.

NCERT exercises (with solutions)

Every NCERT exercise from this chapter — what it covers and how many questions to expect.

Practice problems

Work through this chapter's problems as a readiness check — reveal each solution, mark yourself honestly, and get your gap report at the end.

Readiness check

Are you exam-ready for Pressure, Winds, Storms, and Cyclones?

8 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

8 questions~6 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Pressure is force per unit area: Pressure = Force ÷ Area
  • At this stage, only forces acting perpendicular to the surface are considered
  • SI unit: newton/metre² (N/m²), also called the pascal (Pa)
  • Same force on a smaller area gives higher pressure — nail points, knife edges, needles, studs
  • Same force on a larger area gives lower pressure — broad straps, broad handles, head-cloths, wide tyres
  • A force of 100 N on 2 m² gives a pressure of 50 N/m²
  • The pressure exerted by a liquid depends on the HEIGHT of its column, not the amount of liquid
  • Activity 6.1: equal heights in pipes of different diameters give equal bulges, though the weights of water differ
  • Adding more water raises the column and increases the bulge — pressure grows with height
  • Overhead tanks are placed high so the pressure at the taps is greater
  • Liquids exert pressure on the sides of a container as well as the bottom — in fact in all directions
  • A dam's base is broader than its top because the horizontal pressure is very large near the bottom
  • The atmosphere is the envelope of air around the Earth — nitrogen, oxygen, argon, carbon dioxide and other gases
  • Activity 6.3: the same sheet unfolded is harder to lift than folded, though its weight is unchanged — so air exerts pressure
  • The pressure exerted by the air around us is atmospheric pressure; air presses in all directions
  • A sucker sticks because the outside air pressure is higher than the reduced pressure inside it
  • Air presses on a 15 cm × 15 cm patch with about 2250 N — the weight of 225 kg — which works out to 1,00,000 Pa
  • We are not crushed because the pressure inside our bodies balances it
  • 1 millibar (mb) = 1 hectopascal (hPa) = 100 Pa
  • Air moves from a region of high pressure to a region of low pressure — and stops when they are equal
  • Wind speed is higher when the pressure difference is higher
  • Sea breeze: by day land heats faster, air rises over land, low pressure forms there, wind blows sea → land
  • Land breeze: at night the sea is warmer, low pressure forms over the sea, wind blows land → sea
  • High-speed winds are accompanied by REDUCED air pressure
  • Roofs are pushed up from below when fast wind lowers the pressure above them
  • Keeping doors and windows open in a storm reduces that difference and helps save the roof
  • Holes in banners and hoardings let wind through and reduce the pressure difference across them
  • A storm is strong winds accompanied by rain; requirements for a thunderstorm are moisture and strong winds
  • Strong up-and-down winds rub ice particles and water droplets, charging the cloud
  • Positive ice particles occupy the upper part; negative water droplets the lower part; the ground below becomes positive
  • Air normally insulates; when the charge build-up is very large, the insulation breaks down and lightning flashes
  • Lightning occurs within a cloud, between clouds, or between a cloud and the ground
  • Thunder is the sound of air rapidly heated by the flash and expanding
  • A storm accompanied by lightning and thunder is a thunderstorm
  • Kalboishakhi (WB, Bihar, Jharkhand), Bordoisila (Assam), mango showers (Kerala, Karnataka, Tamil Nadu)
  • A lightning conductor gives charge an easy path into the ground; its point is above the building's highest part
  • Cyclones form over warm ocean water; condensation releases heat, deepening the low pressure further
  • Earth's rotation makes the inrushing air spin — that spinning system is a cyclone
  • At the eye the pressure is lowest and the wind is CALM; the strong winds are just outside it
  • A cyclone weakens over land because its supply of moist air is cut off
  • Amphan (2020) had peak wind speeds of 270 km/h; a storm surge can be 3-12 metres high
  • The India Meteorological Department (IMD) monitors cyclones and thunderstorms and issues warnings

IGCSE marks blueprint

Where the marks come from in this chapter — so you can plan your prep.

Typical chapter weightage: High weightage — pressure, winds and cyclones are examined every year

Question typeMarks eachTypical countWhat it tests
MCQ / Very Short13-4SI unit of pressure; connected vessels; the sucker on a rough surface; raising the tank; True/False on air flow, liquid pressure, the eye of a cyclone and safety in a car
Short Answer2-32-3Numericals on pressure; the boy lying versus standing; why balloons at the same height bulge equally; why a dam's base is broad; why banners have holes
Long Answer4-51-2How a storm becomes a cyclone; the formation of a thunderstorm; the process of lightning; the sea-coast trees question; describing an activity to show air flows high to low
Prep strategy
  • Learn the chapter as one idea applied four times: pressure (6.1), in liquids (6.1-6.2), in air (6.2), and driving winds (6.3-6.6)
  • For every activity, be able to say what was CHANGED and what was deliberately KEPT THE SAME — most 'why' questions are really asking that
  • Write 'height of the column' rather than 'amount of water' every single time; the exercises test this repeatedly
  • Practise Force = Pressure × Area as well as Pressure = Force ÷ Area — exercise 1(iv) needs the rearranged form
  • In numericals, convert areas to m² first and always use the TOTAL contact area (four feet, not one)
  • Learn the storm → thunderstorm → cyclone chain as an ordered list; the marks are in the order and completeness, not in any one sentence
  • Do not import cyclone categories, casualty figures or rainfall percentages. The chapter names one cyclone and one organisation

Where this shows up in the real world

This chapter isn't just an exam topic — it lives in the world around you.

Broad schoolbag straps, broad bucket handles and the clot…

Broad schoolbag straps, broad bucket handles and the cloth ring under a head-load — all spreading the same weight over more area to reduce pressure

Pointed nails, sharp knives, needles, pins and sports studs

Pointed nails, sharp knives, needles, pins and sports studs — all shrinking the area to raise the pressure where you want something to give way

Overhead water tanks placed high so that taps run strongly

Overhead water tanks placed high so that taps run strongly, and lower floors getting a better stream than upper ones

The broad base of a dam

The broad base of a dam, built to withstand a horizontal water pressure that is greatest near the bottom

Rubber suckers that hold hooks and fittings to smooth tiles

Rubber suckers that hold hooks and fittings to smooth tiles, held on by nothing but a pressure difference

Keeping doors and windows open during a high-wind storm s…

Keeping doors and windows open during a high-wind storm so that roofs are not pushed off

Holes cut in banners and hoardings so that strong winds p…

Holes cut in banners and hoardings so that strong winds pass through instead of tearing them down

Lightning conductors on buildings

Lightning conductors on buildings, giving the charge an easy path into the ground

IMD cyclone warnings and satellite tracking

IMD cyclone warnings and satellite tracking, and the designated cyclone shelters people move to

Kalboishakhi, Bordoisila and mango showers

Kalboishakhi, Bordoisila and mango showers — pre-monsoon thunderstorms that farmers depend on for kharif crops, mangoes and coffee

Exam strategy

Battle-tested tips from teachers and toppers for this chapter.

1
Write the formula, substitute with units, then give the answer with its unit — a bare number scores nothing in a pressure numerical
2
In every numerical, ask 'what is the TOTAL area the force acts on?' before dividing — four feet, not one
3
Say 'height of the column' and never 'amount of water'; several exercise parts are decided by that one distinction
4
For process questions (storm, thunderstorm, lightning, cyclone), answer as a numbered chain — the marks are in the order and completeness
5
In True/False, look first at the words 'only', 'always' and 'never', and at any statement that compares two things — that is where the reversal usually is
6
Quote the chapter's own definitions: pressure, atmospheric pressure, storm, thunderstorm, lightning, cyclone, the eye. Each is one sentence
7
For safety questions, give the book's advice as the book gives it, and do not add rules of your own
8
In research projects, cite the source next to each fact and say where sources disagree instead of choosing a number

Going beyond the textbook

For olympiad aspirants and curious learners — topics that build on this chapter.

STRETCH
Activity 6.2 puts four holes at the SAME height. Redesign it with holes at different heights up one side, predict which jet travels furthest, and say what the new version measures that the original does not
STRETCH
Explain why Activity 6.1 needs two pipes of different diameters rather than two of the same diameter, and state exactly which explanation each design can and cannot rule out
STRETCH
The chapter says a cyclone weakens over land because its supply of moist air is cut off. Predict what would happen to a cyclone passing over a very large warm lake, and say what evidence would settle it
STRETCH
A 14 mb pressure drop across a cyclone produced winds of 270 km/h. Estimate what a 7 mb drop might give, then explain why the chapter's qualitative rule does not actually let you calculate this
STRETCH
Design a fair test of whether the pressure at a given depth in a liquid depends on the SHAPE of the vessel, listing everything you would hold constant
STRETCH
Activity 6.3 uses one sheet folded and unfolded. Name three other experiments in this book that use the same trick of changing one variable while provably holding another fixed
STRETCH
The eye of a cyclone is the lowest-pressure point and yet the calmest. Explain this apparent contradiction using only the chapter's rule about what drives wind

Where else this chapter is tested

CBSE board isn't the only one — other exams test this chapter too.

CBSE Class 8 Science annual and periodic tests (Curiosity, Chapter 6)
NCERT-based Olympiads — NSO, SOF and state-level science talent searches
NTSE-style aptitude and science reasoning at Class 8 level
Foundation courses for JEE and NEET, where this chapter is the qualitative base for Class 9 fluid pressure and Class 11 fluid mechanics
Navodaya and Sainik School entrance science sections

Questions students ask

The real ones — pulled from the Q&A community and tutor sessions.

No — only a higher tank does. Liquid pressure depends on the height of the water column above the tap, not on how much water there is. Activity 6.1 settles it: two pipes of different diameters, filled to the same level, held very different weights of water and produced identical bulges in their balloons. A wider tank at the same height simply runs out later; it does not push harder. This is exercise 1(iii), whose answer is 'increase the height H'.

Not unless the bases are the same size. Force = Pressure × Area, so equal pressures on unequal bases give unequal forces. In Fig. 6.22 both vessels are filled to the same level, so P_A = P_B — but B is the wider vessel, so F_A < F_B. The answer to exercise 1(iv) is (b), and it is the one part of that question that needs two ideas held at once rather than one.

Because 'the pressure inside our bodies is also equal to the atmospheric pressure', so the push from outside is balanced by a push from inside — the chapter attributes the inside pressure to the movement of fluids and gases in our tissues and organs. The wider lesson is that pressure by itself never damages anything; only a pressure DIFFERENCE does. That is why a rubber sucker grips so hard, why a roof lifts in a storm, and why a banner tears.

Because fast-moving air is at a reduced pressure. Blowing into the gap makes the air there move quickly, so the pressure between the balloons falls below the pressure of the still air outside — and that still air pushes them together. Blowing harder brings them together faster, which rules out the idea that your breath is simply shoving them apart. The same effect lifts roofs off houses and is why banners have holes cut in them.

It seems backwards, and it is exactly right for this particular danger. Fast wind over a roof lowers the pressure above it, while a sealed house keeps its indoor air at high pressure — and it is that indoor air, pushing up, that lifts the roof off. Opening doors and windows lets the wind move through so the indoor pressure falls too, and 'the pressure difference between inside of the houses and over the roofs is reduced to a large extent'. Note the chapter says reduced, not eliminated.

No. Insulating air is not an obstacle to lightning — it is a necessary part of it. 'Normally, air acts as an electrical insulator and does not let opposite charges meet', which is what allows charge to build up to an enormous level; lightning is what happens when 'the insulating property of air breaks down'. If air conducted, charge would leak away as fast as the rubbing produced it, so there would be no build-up, no sudden discharge, no flash — and no thunder, since thunder is the sound of air heated by the flash.

Read the wind direction off the trees, then check the time of day. The trees lean and their fronds stream in the direction the wind is pushing them. It is a summer AFTERNOON, so this is the daytime case: land heats faster than water, the air over the land rises, low pressure forms there, and a SEA BREEZE blows from sea to land. So the side the trees lean towards is the land. At night the answer reverses, because then the sea is warmer and a land breeze blows the other way. Never answer without checking whether it is day or night.

As many as the chapter gives, which is very few. It names one cyclone — Amphan in 2020, with peak wind speeds of 270 km/h — one storm-surge range of 3 to 12 metres, and one organisation, the IMD. It gives no cyclone categories, no casualty figures, no monsoon rainfall percentages, and it deliberately lists the atmospheric gases without percentages. For the research project you are expected to go further, but then you must name the source you checked and report where sources disagree rather than picking one number.
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Last reviewed on 4 August 2026. Written and reviewed by subject-matter experts — read about our process.
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