One second after the projection, a stone moves at an angle of ` [email protected]` with the horzontal. Two seconds from the start, it is travelling horizontally. Find the angle of projection with the horizontal. (g=10 ms^(-2))`.

One second after the projection, a stone moves at an angle of ` [email

1.	One second after the projection, a stone moves at an angle of ` [email protected]` with the horzontal. Two seconds from the start, it is travelling horizontally. Find the angle of projection with the horizontal. (g=10 ms^(-2))`.
Answer» After one second, let ` v_x. v_y` be the horizontal and vertical coponent velocites of the projectile whose initial velcoity of projection (u) and angle of projection os ` theta` then ` v_x = u cos theta ` and ` v_y =u sin theta -g xx 1 =u sin theta-g` As the resultant of ` vec _x and vec v_y` makes an angle ` beta (= 45^@) with the horizontal. so ` tan beta =v_y/v_x = ( u sin theta-g)/( u cos theta) =tan 45^@` or ` u sin theta- g = u ` or ` u (sin theta - cos theta ) = g ` ....(i) After two seconds, the vetical component velocity of projectile becomes zero, since the velocity or projectile is horizontal agter tow seconds . So, ` u sin theta - 2 g = 0 ` or u 2 g/sin theta` From (i) , (2 g)/( sin theta) (sin theta-cos theta) = g` or ` 2 ( 1- cot theta ) = ` or ` 1-cot theta = 1/2` or ` cot theta 1- 1/2=1/2 ` or tan theta = 2 ` or ` thata = tan^(-10 (2)`.

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One second after the projection, a stone moves at an angle of ` [email protected]` with the horzontal. Two seconds from the start, it is travelling horizontally. Find the angle of projection with the horizontal. (g=10 ms^(-2))`.

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