A body is projected with a velocity u at an angle of `60^(@)` to the horizontal. The time interval after which it will be moving in a direction of `30^(@)` to the horizontal is

A ball is projected with a velocity 20 sqrt(3) ms^(-1) at angle 60^(@) to the horizontal. The time interval after which the velocity vector will make an angle 30^(@) to the horizontal is (Take, g = 10 ms^(-2))

A particle is projected with velocity 50 m/s at an angle 60^(@) with the horizontal from the ground. The time after which its velocity will make an angle 45^(@) with the horizontal is

A body is projected with a velocity 60 ms ^(-1) at 30^(@) to horizontal . Its initial velocity vector is

A body projected with a speed u at an angle of 60^(@) with the horizontal explodes in two equal pieces at a point where its velocity makes an angle of 30^(@) with the horizontal for 1^(st) time. One piece start moving vertically upward with a speed of (u)/(2sqrt(3)) after explosion. what is velocity of one piece with respect to other in the vertical direction just after the explosion ?

A body is projected with an initial Velocity 20 m/s at 60° to the horizontal. Its velocity after 1 sec is

A body is thrown with a velocity of 9.8 m/s making an angle of 30^(@) with the horizontal. It will hit the ground after a time

A projectile is thrown with a velocity of 20 m//s, at an angle of 60^(@) with the horizontal. After how much time the velocity vector will make an angle of 45^(@) with the horizontal (in upward direction) is (take g= 10m//s^(2))-

A body is projected with velocity u at an angle of projection theta with the horizontal. The direction of velocity of the body makes angle 30^@ with the horizontal at t = 2 s and then after 1 s it reaches the maximum height. Then

An object is projected with a velocity of 30 ms^(-1) at an angle of 60^(@) with the horizontal. Determine the horizontal range covered by the object.

A body is projected with a velocity of 30m/s to have to horizontal range of 45m. Find the angle of projection .