Question 7(ii)A person standing in front of a cliff fires a gun and hears its echo after 3s. If the speed of sound in air is 336 ms-1.(a) Calculate the distance of the person from the cliff.(b) After moving a certain distance from the cliff, he fires the gun again and this time the echo is heard 1.5 s later than the first. Calculate the distance that the person moved.

Question

Accepted Answer

(a) Given,Time taken to hear the echo = 3sSpeed of sound = 336 ms-1So,Distance of the person from the cliff=Speed of sound×Time taken2=336×32=10082=504 m\text {Distance of the person from the cliff} = \dfrac {\text {Speed of sound} \times \text {Time taken}}{2} \[1em] =\dfrac{336 \times 3}{2} = \dfrac{1008}{2} \[1em] = 504\ \text mDistance of the person from the cliff=2Speed of sound×Time taken​=2336×3​=21008​=504 mSo, distance of the person from the cliff is 504 m.(b) Given,Time taken to hear the new echo = 3 s + 1.5 s = 4.5 sSo,New distance of the person from the cliff=Speed of sound×Time taken2=336×4.52=15122=756 m\text {New distance of the person from the cliff} = \dfrac {\text {Speed of sound} \times \text {Time taken}}{2} \[1em] =\dfrac{336 \times 4.5}{2} = \dfrac{1512}{2} \[1em] = 756\ \text mNew distance of the person from the cliff=2Speed of sound×Time taken​=2336×4.5​=21512​=756 mDistance moved by the person = 756 - 504 = 252 mSo, distance moved by the person is 252 m.

Solved 2025 Specimen Paper ICSE Class 10 Physics — Question 11

Question 7(ii)