A projectile has initially the same horizontal velocity as it would acquire if it had moved from rest with uniform acceleration of `3 m s^-2` for `0.5 min`. If the maximum height reached by it is `80 m`, then the angle of projection is `(g = 10 ms^-2)`.A. `tan^-1 3`B. `tan^-1(3//2)`C. `tan^-1 (4//9)`D. `sin^-1(4//9)`

A projectile has initially the same horizontal velocity as it would ac

1.	A projectile has initially the same horizontal velocity as it would acquire if it had moved from rest with uniform acceleration of `3 m s^-2` for `0.5 min`. If the maximum height reached by it is `80 m`, then the angle of projection is `(g = 10 ms^-2)`.A. `tan^-1 3`B. `tan^-1(3//2)`C. `tan^-1 (4//9)`D. `sin^-1(4//9)`
Answer» Correct Answer - C ( c) `H = (u^2 sin^2 theta)/(2 g)` or `80 = (u^2 sin^2 theta)/(2 xx 10)` or `u^2 sin^2 theta = 1600` or `u sin theta = 40 ms^-1` Horizontal velocity `= u cos theta = 3 xx 30 = 90 ms^-1` `(u sin theta)/(u cos theta) = (40)/(90)` or `tan theta = (4)/(9)` or `theta = tan^-1 ((4)/(9))`.

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