1 Answer

Rhys Ulerich · Answer 1 · 2019-01-11T12:22:50+0000

As seagull drops a shell from rest at a height of 12 m, so we use kinematic equation of motion,

v^(2) = u^(2) +2g h

Here, h is the height, u is initial velocity , v is final velocity and g is acceleration due to gravity.

Given, h = 12 m.

We take,
$g = 9.8 \ m/s^2$ and
u = 0 because seagull drops a shell from rest.

Therefore, the speed of shell when it hits the rocks,

$v^(2) = 0 + 2 * 9.8 m/s^2 * 12 \ m = 235.2 (m/s)^2 \\\\ v = √(235.2 (m/s)^2) = 15.33 \ m/s^2$

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