Explanation

Given: time of flight T = 4s, g = 10ms\(^{-2}\), H\(_{max}\)

\(\theta\) = ?

T = \(\frac{2u sin\theta}{g}\)

4 = \(\frac{2 \times u sin \theta}{10}\)

40 = 2u sin\(\theta\)

sin\(\theta\) = \(\frac{20}{u}\)

But, H\(_{max}\) = \(\frac{u^2 sin^2 \theta}{2g}\)

H\(_{max}\) = \(\frac{u^2 \times (\frac{20}{u})^2}{2 \times 10}\)

H\(_{max}\) = \(\frac{20 \times 20}{20}\) = 20 metres.(u\(^2\)s cancel out)

Thus H\(_{max}\) attained = 20metres.

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