આ MCQ મોડ્યુલ આના પર આધારિત છે: Pressure Winds Storms — Exercises
Pressure Winds Storms — Exercises
આ મૂલ્યાંકન આના પર આધારિત હશે: Pressure Winds Storms — Exercises
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Chapter Summary
Air has weight
The atmosphere exerts a pressure of about 1 atm (≈ 105 Pa) at sea level.
Pressure = Force/Area
Smaller area under the same force → greater pressure.
Barometer
Measures atmospheric pressure; 76 cm of mercury at sea level.
Pressure vs altitude
Pressure falls rapidly with height; Everest has ~1/3 of sea-level pressure.
High speed, low pressure
Fast-moving air exerts lower pressure — the principle behind airplane wings.
Winds
Air flows from high-pressure to low-pressure regions; the greater the difference, the faster the wind.
Sea & land breeze
Day: sea → land. Night: land → sea. Same idea drives the Indian monsoons on a giant scale.
Thunderstorm
Rising moist air forms huge clouds; charge separation produces lightning + thunder.
Cyclone
Giant rotating storm over warm oceans, with an eye, eyewall and rain bands.
Safety first
Stay indoors during storms. Never shelter under a tall tree. Follow IMD/NDMA advisories.
Key Terms
NCERT Exercises
A modern aneroid barometer uses a small evacuated metal capsule that expands or contracts as pressure changes; a needle displays the reading on a dial. Barometers are used for weather forecasting — a rapidly falling reading often warns of an approaching storm. They are also used as altimeters in aircraft and on mountains.
Boat A: Force = 2 × 700 = 1400 N; Pressure = 1400 ÷ 7 = 200 Pa.
Boat B: Force = 3 × 700 = 2100 N; Pressure = 2100 ÷ 3.5 = 600 Pa.
Boat B experiences more pressure on its base (600 Pa vs 200 Pa). Boat B has both a larger load and a smaller base area, so the force per unit area is much higher.
Boat B: Force = 3 × 700 = 2100 N; Pressure = 2100 ÷ 3.5 = 600 Pa.
Boat B experiences the greater pressure.
Difference = 600 − 500 = 100 Pa more than boat A.
Although boat A carries more people, its base is twice as large, so the force is spread out more. Boat B packs more weight onto a smaller base, producing higher pressure per square metre.
If the clouds themselves were excellent conductors, charges could not accumulate — any charge would immediately flow away and neutralise. There would be no large voltage difference, no sudden discharge, and hence no lightning flash or thunder.
Reason: Pressure inside a liquid increases with depth according to \(P = h\rho g\). Balloon B is at a greater depth than balloon A, so the water pressure pushing outwards on B is larger. A bigger outward force stretches B's rubber more, so it bulges more. If the water level were below balloon A, then A would not bulge at all (only air at atmospheric pressure would touch it).
- Warm, moist air rises quickly over an ocean whose surface is above 26.5 °C, leaving behind a low-pressure region at the sea surface.
- The rising air cools, water vapour condenses into clouds, releasing heat. The heat warms the air still more, which rises further and pulls up even more moist air.
- Surrounding higher-pressure air rushes in to fill the low. As it moves, it is deflected by the Earth's rotation (the Coriolis effect) and begins to spiral.
- This rotating column draws up enormous quantities of moist air, grows in size, forms an eye at the centre and a ferocious eyewall around it.
- With wind speeds exceeding about 62 km/h the system is officially classified as a cyclonic storm; above 120 km/h it is a full severe cyclone.
On a summer afternoon the land heats up faster than the sea. The air above the land rises, creating a region of low pressure over the land. The cooler, higher-pressure air from over the sea rushes towards the land — this is the sea breeze.
The trees are being pushed in the direction of the wind, which is from A towards B. So the wind is coming from A (the sea) and moving towards B (the land). Therefore B is the land and A is the sea.
- Take an empty plastic bottle with a tight cap.
- Suck out as much air as you can from the mouth of the bottle.
- The bottle collapses inward.
Formation:
- The Sun heats the ground. Air above the ground becomes hot and, because water evaporates from soil and plants, also moist.
- This warm, light, moist air rises rapidly.
- As it rises, it cools. The water vapour condenses into tiny water droplets, forming clouds. Condensation releases latent heat.
- The released heat warms the surrounding air, which rises further and draws up more moist air from below.
- This self-feeding rise builds huge cumulonimbus clouds that can reach up to 10 km tall. Strong up- and down-drafts inside them separate electric charges.
- When the voltage between differently charged regions becomes enormous, electricity jumps as lightning. The super-heated air expands suddenly and produces the sound we call thunder.
Gradually the charges separate: positive charges accumulate at the top of the cloud and negative charges at the bottom. This creates a very large voltage difference between different parts of the cloud, or between the cloud and the ground.
When this voltage becomes so high that the air (normally an insulator) can no longer resist it, a sudden and massive electric discharge takes place — a bright spark streaks between clouds, or from the cloud to the ground. This spark is lightning. The channel of air along the spark is heated to about 30,000 °C and expands explosively, producing the shock wave we hear as thunder.
By cutting small holes in the banner, part of the wind passes through the holes instead of pushing against the whole area. This reduces the effective area on which the wind pushes, and hence reduces the total force. The banner is much less likely to tear or be blown away, especially during strong winds and storms.