A particle is dropped from the tower. The distance travelled by it in the last second is 15m. The height of the tower is [Take g=10m/s2]
A
22.5m
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B
20m
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C
25m
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D
30m
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Solution
The correct option is B20m Given, u=0,a=g As per the question we have St−St−1=15 ⇒12gt2−12g(t−1)2=15 ⇒t2−t2+2t−1=3010=3 ⇒2t−1=3⇒t=2sec So, height of the tower is given as h=12gt2=12×10×22=20m