Correct Answer: Option A

Explanation

\(h = \frac{1}{2} g t^2\), at max height v = 0m/s

Given: h = 20m, g = 10 ms\(^2\)

Rearranging:
\(t^2 = \frac{2h}{g} = \frac{2 \times 20}{10} = 4\)
\(t = \sqrt{4}\) = 2s

Thus, the time to reach the ground is: t = 2s

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