(a) During monsoons, a metrologist records about 215 cm of rainfall in India i.e., the height of water column, h = 215 cm = 2.15 m

Area of country, A = 3.3 × 10¹² m²

Hence, volume of rain water, V = A × h = 7.09 × 10¹² m³

Density of water, ρ = 1 × 10³ kg m^–3

Hence, mass of rain water = ρ × V = 7.09 × 10¹⁵ kg

Hence, the total mass of rain-bearing clouds over India is approximately 7.09 × 10¹⁵ kg.

(b) Consider a ship of known base area floating in the sea. Measure its depth in sea (say d₁).

Volume of water displaced by the ship, V_b = A d₁

Now, move an elephant on the ship and measure the depth of the ship (d₂) in this case.

Volume of water displaced by the ship with the elephant on board, V_be= Ad₂

Volume of water displaced by the elephant = Ad₂ – Ad₁

Density of water = D

Mass of elephant = AD (d₂ – d₁)

(c) Wind speed during a storm can be measured by an anemometer. As wind blows, it rotates. The rotation made by the anemometer in one second gives the value of wind speed.

(d) Area of the head surface carrying hair = A

With the help of a screw gauge, the diameter and hence, the radius of a hair can be determined. Let it be r.

∴Area of one hair = πr²

Number of strands of hair 

(e) Let the volume of the room be V.

One mole of air at NTP occupies 22.4 l i.e., 22.4 × 10^–3 m³ volume.

Number of molecules in one mole = 6.023 × 10²³

∴Number of molecules in room of volume V

== 134.915 × 10²⁶ V

= 1.35 × 10²⁸ V